Coverage Report

Created: 2026-06-12 16:48

next uncovered line (L), next uncovered region (R), next uncovered branch (B)
/root/bitcoin/src/net_processing.cpp
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// Copyright (c) 2009-2010 Satoshi Nakamoto
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// Copyright (c) 2009-present The Bitcoin Core developers
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// Distributed under the MIT software license, see the accompanying
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// file COPYING or http://www.opensource.org/licenses/mit-license.php.
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#include <net_processing.h>
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#include <addrman.h>
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#include <arith_uint256.h>
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#include <banman.h>
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#include <blockencodings.h>
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#include <blockfilter.h>
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#include <chain.h>
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#include <chainparams.h>
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#include <common/bloom.h>
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#include <consensus/amount.h>
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#include <consensus/params.h>
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#include <consensus/validation.h>
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#include <core_memusage.h>
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#include <crypto/siphash.h>
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#include <deploymentstatus.h>
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#include <flatfile.h>
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#include <headerssync.h>
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#include <index/blockfilterindex.h>
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#include <kernel/types.h>
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#include <logging.h>
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#include <merkleblock.h>
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#include <net.h>
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#include <net_permissions.h>
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#include <netaddress.h>
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#include <netbase.h>
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#include <netmessagemaker.h>
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#include <node/blockstorage.h>
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#include <node/connection_types.h>
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#include <node/protocol_version.h>
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#include <node/timeoffsets.h>
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#include <node/txdownloadman.h>
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#include <node/txorphanage.h>
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#include <node/txreconciliation.h>
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#include <node/warnings.h>
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#include <policy/feerate.h>
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#include <policy/fees/block_policy_estimator.h>
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#include <policy/packages.h>
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#include <policy/policy.h>
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#include <primitives/block.h>
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#include <primitives/transaction.h>
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#include <private_broadcast.h>
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#include <protocol.h>
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#include <random.h>
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#include <scheduler.h>
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#include <script/script.h>
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#include <serialize.h>
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#include <span.h>
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#include <streams.h>
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#include <sync.h>
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#include <tinyformat.h>
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#include <txmempool.h>
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#include <uint256.h>
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#include <util/check.h>
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#include <util/strencodings.h>
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#include <util/time.h>
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#include <util/trace.h>
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#include <validation.h>
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#include <algorithm>
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#include <array>
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#include <atomic>
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#include <compare>
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#include <cstddef>
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#include <deque>
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#include <exception>
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#include <functional>
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#include <future>
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#include <initializer_list>
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#include <iterator>
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#include <limits>
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#include <list>
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#include <map>
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#include <memory>
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#include <optional>
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#include <queue>
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#include <ranges>
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#include <ratio>
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#include <set>
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#include <span>
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#include <typeinfo>
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#include <utility>
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using kernel::ChainstateRole;
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using namespace util::hex_literals;
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TRACEPOINT_SEMAPHORE(net, inbound_message);
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TRACEPOINT_SEMAPHORE(net, misbehaving_connection);
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/** Headers download timeout.
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 *  Timeout = base + per_header * (expected number of headers) */
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static constexpr auto HEADERS_DOWNLOAD_TIMEOUT_BASE = 15min;
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static constexpr auto HEADERS_DOWNLOAD_TIMEOUT_PER_HEADER = 1ms;
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/** How long to wait for a peer to respond to a getheaders request */
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static constexpr auto HEADERS_RESPONSE_TIME{2min};
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/** Protect at least this many outbound peers from disconnection due to slow/
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 * behind headers chain.
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 */
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static constexpr int32_t MAX_OUTBOUND_PEERS_TO_PROTECT_FROM_DISCONNECT = 4;
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/** Timeout for (unprotected) outbound peers to sync to our chainwork */
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static constexpr auto CHAIN_SYNC_TIMEOUT{20min};
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/** How frequently to check for stale tips */
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static constexpr auto STALE_CHECK_INTERVAL{10min};
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/** How frequently to check for extra outbound peers and disconnect */
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static constexpr auto EXTRA_PEER_CHECK_INTERVAL{45s};
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/** Minimum time an outbound-peer-eviction candidate must be connected for, in order to evict */
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static constexpr auto MINIMUM_CONNECT_TIME{30s};
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/** SHA256("main address relay")[0:8] */
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static constexpr uint64_t RANDOMIZER_ID_ADDRESS_RELAY = 0x3cac0035b5866b90ULL;
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/// Age after which a stale block will no longer be served if requested as
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/// protection against fingerprinting. Set to one month, denominated in seconds.
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static constexpr int STALE_RELAY_AGE_LIMIT = 30 * 24 * 60 * 60;
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/// Age after which a block is considered historical for purposes of rate
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/// limiting block relay. Set to one week, denominated in seconds.
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static constexpr int HISTORICAL_BLOCK_AGE = 7 * 24 * 60 * 60;
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/** Time between pings automatically sent out for latency probing and keepalive */
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static constexpr auto PING_INTERVAL{2min};
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/** The maximum number of entries in a locator */
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static const unsigned int MAX_LOCATOR_SZ = 101;
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/** The maximum number of entries in an 'inv' protocol message */
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static const unsigned int MAX_INV_SZ = 50000;
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/** Limit to avoid sending big packets. Not used in processing incoming GETDATA for compatibility */
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static const unsigned int MAX_GETDATA_SZ = 1000;
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/** Number of blocks that can be requested at any given time from a single peer. */
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static const int MAX_BLOCKS_IN_TRANSIT_PER_PEER = 16;
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/** Default time during which a peer must stall block download progress before being disconnected.
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 * the actual timeout is increased temporarily if peers are disconnected for hitting the timeout */
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static constexpr auto BLOCK_STALLING_TIMEOUT_DEFAULT{2s};
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/** Maximum timeout for stalling block download. */
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static constexpr auto BLOCK_STALLING_TIMEOUT_MAX{64s};
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/** Maximum depth of blocks we're willing to serve as compact blocks to peers
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 *  when requested. For older blocks, a regular BLOCK response will be sent. */
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static const int MAX_CMPCTBLOCK_DEPTH = 5;
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/** Maximum depth of blocks we're willing to respond to GETBLOCKTXN requests for. */
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static const int MAX_BLOCKTXN_DEPTH = 10;
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static_assert(MAX_BLOCKTXN_DEPTH <= MIN_BLOCKS_TO_KEEP, "MAX_BLOCKTXN_DEPTH too high");
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/** Size of the "block download window": how far ahead of our current height do we fetch?
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 *  Larger windows tolerate larger download speed differences between peer, but increase the potential
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 *  degree of disordering of blocks on disk (which make reindexing and pruning harder). We'll probably
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 *  want to make this a per-peer adaptive value at some point. */
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static const unsigned int BLOCK_DOWNLOAD_WINDOW = 1024;
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/** Block download timeout base, expressed in multiples of the block interval (i.e. 10 min) */
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static constexpr double BLOCK_DOWNLOAD_TIMEOUT_BASE = 1;
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/** Additional block download timeout per parallel downloading peer (i.e. 5 min) */
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static constexpr double BLOCK_DOWNLOAD_TIMEOUT_PER_PEER = 0.5;
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/** Maximum number of headers to announce when relaying blocks with headers message.*/
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static const unsigned int MAX_BLOCKS_TO_ANNOUNCE = 8;
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/** Minimum blocks required to signal NODE_NETWORK_LIMITED */
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static const unsigned int NODE_NETWORK_LIMITED_MIN_BLOCKS = 288;
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/** Window, in blocks, for connecting to NODE_NETWORK_LIMITED peers */
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static const unsigned int NODE_NETWORK_LIMITED_ALLOW_CONN_BLOCKS = 144;
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/** Average delay between local address broadcasts */
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static constexpr auto AVG_LOCAL_ADDRESS_BROADCAST_INTERVAL{24h};
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/** Average delay between peer address broadcasts */
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static constexpr auto AVG_ADDRESS_BROADCAST_INTERVAL{30s};
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/** Delay between rotating the peers we relay a particular address to */
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static constexpr auto ROTATE_ADDR_RELAY_DEST_INTERVAL{24h};
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/** Average delay between trickled inventory transmissions for inbound peers.
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 *  Blocks and peers with NetPermissionFlags::NoBan permission bypass this. */
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static constexpr auto INBOUND_INVENTORY_BROADCAST_INTERVAL{5s};
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/** Average delay between trickled inventory transmissions for outbound peers.
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 *  Use a smaller delay as there is less privacy concern for them.
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 *  Blocks and peers with NetPermissionFlags::NoBan permission bypass this. */
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static constexpr auto OUTBOUND_INVENTORY_BROADCAST_INTERVAL{2s};
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/** Maximum rate of inventory items to send per second.
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 *  Limits the impact of low-fee transaction floods. */
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static constexpr unsigned int INVENTORY_BROADCAST_PER_SECOND{14};
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/** Target number of tx inventory items to send per transmission. */
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static constexpr unsigned int INVENTORY_BROADCAST_TARGET = INVENTORY_BROADCAST_PER_SECOND * count_seconds(INBOUND_INVENTORY_BROADCAST_INTERVAL);
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/** Maximum number of inventory items to send per transmission. */
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static constexpr unsigned int INVENTORY_BROADCAST_MAX = 1000;
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static_assert(INVENTORY_BROADCAST_MAX >= INVENTORY_BROADCAST_TARGET, "INVENTORY_BROADCAST_MAX too low");
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static_assert(INVENTORY_BROADCAST_MAX <= node::MAX_PEER_TX_ANNOUNCEMENTS, "INVENTORY_BROADCAST_MAX too high");
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/** Average delay between feefilter broadcasts in seconds. */
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static constexpr auto AVG_FEEFILTER_BROADCAST_INTERVAL{10min};
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/** Maximum feefilter broadcast delay after significant change. */
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static constexpr auto MAX_FEEFILTER_CHANGE_DELAY{5min};
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/** Maximum number of compact filters that may be requested with one getcfilters. See BIP 157. */
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static constexpr uint32_t MAX_GETCFILTERS_SIZE = 1000;
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/** Maximum number of cf hashes that may be requested with one getcfheaders. See BIP 157. */
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static constexpr uint32_t MAX_GETCFHEADERS_SIZE = 2000;
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/** the maximum percentage of addresses from our addrman to return in response to a getaddr message. */
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static constexpr size_t MAX_PCT_ADDR_TO_SEND = 23;
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/** The maximum number of address records permitted in an ADDR message. */
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static constexpr size_t MAX_ADDR_TO_SEND{1000};
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/** The maximum rate of address records we're willing to process on average. Can be bypassed using
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 *  the NetPermissionFlags::Addr permission. */
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static constexpr double MAX_ADDR_RATE_PER_SECOND{0.1};
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/** The soft limit of the address processing token bucket (the regular MAX_ADDR_RATE_PER_SECOND
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 *  based increments won't go above this, but the MAX_ADDR_TO_SEND increment following GETADDR
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 *  is exempt from this limit). */
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static constexpr size_t MAX_ADDR_PROCESSING_TOKEN_BUCKET{MAX_ADDR_TO_SEND};
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/** For private broadcast, send a transaction to this many peers. */
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static constexpr size_t NUM_PRIVATE_BROADCAST_PER_TX{3};
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/** Private broadcast connections must complete within this time. Disconnect the peer if it takes longer. */
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static constexpr auto PRIVATE_BROADCAST_MAX_CONNECTION_LIFETIME{3min};
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// Internal stuff
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namespace {
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/** Blocks that are in flight, and that are in the queue to be downloaded. */
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struct QueuedBlock {
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    /** BlockIndex. We must have this since we only request blocks when we've already validated the header. */
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    const CBlockIndex* pindex;
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    /** Optional, used for CMPCTBLOCK downloads */
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    std::unique_ptr<PartiallyDownloadedBlock> partialBlock;
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};
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/**
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 * Data structure for an individual peer. This struct is not protected by
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 * cs_main since it does not contain validation-critical data.
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 *
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 * Memory is owned by shared pointers and this object is destructed when
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 * the refcount drops to zero.
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 *
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 * Mutexes inside this struct must not be held when locking m_peer_mutex.
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 *
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 * TODO: move most members from CNodeState to this structure.
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 * TODO: move remaining application-layer data members from CNode to this structure.
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 */
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struct Peer {
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    /** Same id as the CNode object for this peer */
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    const NodeId m_id{0};
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    /** Services we offered to this peer.
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     *
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     *  This is supplied by CConnman during peer initialization. It's const
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     *  because there is no protocol defined for renegotiating services
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     *  initially offered to a peer. The set of local services we offer should
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     *  not change after initialization.
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     *
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     *  An interesting example of this is NODE_NETWORK and initial block
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     *  download: a node which starts up from scratch doesn't have any blocks
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     *  to serve, but still advertises NODE_NETWORK because it will eventually
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     *  fulfill this role after IBD completes. P2P code is written in such a
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     *  way that it can gracefully handle peers who don't make good on their
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     *  service advertisements. */
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    const ServiceFlags m_our_services;
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    /** Services this peer offered to us. */
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    std::atomic<ServiceFlags> m_their_services{NODE_NONE};
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    //! Whether this peer is an inbound connection
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    const bool m_is_inbound;
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    /** Protects misbehavior data members */
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    Mutex m_misbehavior_mutex;
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    /** Whether this peer should be disconnected and marked as discouraged (unless it has NetPermissionFlags::NoBan permission). */
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    bool m_should_discourage GUARDED_BY(m_misbehavior_mutex){false};
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    /** Protects block inventory data members */
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    Mutex m_block_inv_mutex;
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    /** List of blocks that we'll announce via an `inv` message.
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     * There is no final sorting before sending, as they are always sent
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     * immediately and in the order requested. */
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    std::vector<uint256> m_blocks_for_inv_relay GUARDED_BY(m_block_inv_mutex);
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    /** Unfiltered list of blocks that we'd like to announce via a `headers`
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     * message. If we can't announce via a `headers` message, we'll fall back to
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     * announcing via `inv`. */
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    std::vector<uint256> m_blocks_for_headers_relay GUARDED_BY(m_block_inv_mutex);
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    /** The final block hash that we sent in an `inv` message to this peer.
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     * When the peer requests this block, we send an `inv` message to trigger
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     * the peer to request the next sequence of block hashes.
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     * Most peers use headers-first syncing, which doesn't use this mechanism */
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    uint256 m_continuation_block GUARDED_BY(m_block_inv_mutex) {};
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    /** Set to true once initial VERSION message was sent (only relevant for outbound peers). */
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    bool m_outbound_version_message_sent GUARDED_BY(NetEventsInterface::g_msgproc_mutex){false};
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    /** The pong reply we're expecting, or 0 if no pong expected. */
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    std::atomic<uint64_t> m_ping_nonce_sent{0};
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    /** When the last ping was sent, or 0 if no ping was ever sent */
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    std::atomic<NodeClock::time_point> m_ping_start{NodeClock::epoch};
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    /** Whether a ping has been requested by the user */
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    std::atomic<bool> m_ping_queued{false};
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    /** Whether this peer relays txs via wtxid */
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    std::atomic<bool> m_wtxid_relay{false};
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    /** The feerate in the most recent BIP133 `feefilter` message sent to the peer.
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     *  It is *not* a p2p protocol violation for the peer to send us
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     *  transactions with a lower fee rate than this. See BIP133. */
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    CAmount m_fee_filter_sent GUARDED_BY(NetEventsInterface::g_msgproc_mutex){0};
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    /** Timestamp after which we will send the next BIP133 `feefilter` message
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      * to the peer. */
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    std::chrono::microseconds m_next_send_feefilter GUARDED_BY(NetEventsInterface::g_msgproc_mutex){0};
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    struct TxRelay {
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        mutable RecursiveMutex m_bloom_filter_mutex;
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        /** Whether we relay transactions to this peer. */
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        bool m_relay_txs GUARDED_BY(m_bloom_filter_mutex){false};
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        /** A bloom filter for which transactions to announce to the peer. See BIP37. */
295
        std::unique_ptr<CBloomFilter> m_bloom_filter PT_GUARDED_BY(m_bloom_filter_mutex) GUARDED_BY(m_bloom_filter_mutex){nullptr};
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        mutable RecursiveMutex m_tx_inventory_mutex;
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        /** A filter of all the (w)txids that the peer has announced to
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         *  us or we have announced to the peer. We use this to avoid announcing
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         *  the same (w)txid to a peer that already has the transaction. */
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        CRollingBloomFilter m_tx_inventory_known_filter GUARDED_BY(m_tx_inventory_mutex){50000, 0.000001};
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        /** Set of wtxids we still have to announce. For non-wtxid-relay peers,
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         *  we retrieve the txid from the corresponding mempool transaction when
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         *  constructing the `inv` message. We use the mempool to sort transactions
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         *  in dependency order before relay, so this does not have to be sorted. */
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        std::set<Wtxid> m_tx_inventory_to_send GUARDED_BY(m_tx_inventory_mutex);
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        /** Whether the peer has requested us to send our complete mempool. Only
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         *  permitted if the peer has NetPermissionFlags::Mempool or we advertise
309
         *  NODE_BLOOM. See BIP35. */
310
        bool m_send_mempool GUARDED_BY(m_tx_inventory_mutex){false};
311
        /** The next time after which we will send an `inv` message containing
312
         *  transaction announcements to this peer. */
313
        std::chrono::microseconds m_next_inv_send_time GUARDED_BY(m_tx_inventory_mutex){0};
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        /** The mempool sequence num at which we sent the last `inv` message to this peer.
315
         *  Can relay txs with lower sequence numbers than this (see CTxMempool::info_for_relay). */
316
        uint64_t m_last_inv_sequence GUARDED_BY(m_tx_inventory_mutex){1};
317
318
        /** Minimum fee rate with which to filter transaction announcements to this node. See BIP133. */
319
        std::atomic<CAmount> m_fee_filter_received{0};
320
    };
321
322
    /* Initializes a TxRelay struct for this peer. Can be called at most once for a peer. */
323
    TxRelay* SetTxRelay() EXCLUSIVE_LOCKS_REQUIRED(!m_tx_relay_mutex)
324
0
    {
325
0
        LOCK(m_tx_relay_mutex);
326
0
        Assume(!m_tx_relay);
327
0
        m_tx_relay = std::make_unique<Peer::TxRelay>();
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0
        return m_tx_relay.get();
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0
    };
330
331
    TxRelay* GetTxRelay() EXCLUSIVE_LOCKS_REQUIRED(!m_tx_relay_mutex)
332
0
    {
333
0
        return WITH_LOCK(m_tx_relay_mutex, return m_tx_relay.get());
334
0
    };
335
336
    /** A vector of addresses to send to the peer, limited to MAX_ADDR_TO_SEND. */
337
    std::vector<CAddress> m_addrs_to_send GUARDED_BY(NetEventsInterface::g_msgproc_mutex);
338
    /** Probabilistic filter to track recent addr messages relayed with this
339
     *  peer. Used to avoid relaying redundant addresses to this peer.
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     *
341
     *  We initialize this filter for outbound peers (other than
342
     *  block-relay-only connections) or when an inbound peer sends us an
343
     *  address related message (ADDR, ADDRV2, GETADDR).
344
     *
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     *  Presence of this filter must correlate with m_addr_relay_enabled.
346
     **/
347
    std::unique_ptr<CRollingBloomFilter> m_addr_known GUARDED_BY(NetEventsInterface::g_msgproc_mutex);
348
    /** Whether we are participating in address relay with this connection.
349
     *
350
     *  We set this bool to true for outbound peers (other than
351
     *  block-relay-only connections), or when an inbound peer sends us an
352
     *  address related message (ADDR, ADDRV2, GETADDR).
353
     *
354
     *  We use this bool to decide whether a peer is eligible for gossiping
355
     *  addr messages. This avoids relaying to peers that are unlikely to
356
     *  forward them, effectively blackholing self announcements. Reasons
357
     *  peers might support addr relay on the link include that they connected
358
     *  to us as a block-relay-only peer or they are a light client.
359
     *
360
     *  This field must correlate with whether m_addr_known has been
361
     *  initialized.*/
362
    std::atomic_bool m_addr_relay_enabled{false};
363
    /** Whether a getaddr request to this peer is outstanding. */
364
    bool m_getaddr_sent GUARDED_BY(NetEventsInterface::g_msgproc_mutex){false};
365
    /** Guards address sending timers. */
366
    mutable Mutex m_addr_send_times_mutex;
367
    /** Time point to send the next ADDR message to this peer. */
368
    std::chrono::microseconds m_next_addr_send GUARDED_BY(m_addr_send_times_mutex){0};
369
    /** Time point to possibly re-announce our local address to this peer. */
370
    std::chrono::microseconds m_next_local_addr_send GUARDED_BY(m_addr_send_times_mutex){0};
371
    /** Whether the peer has signaled support for receiving ADDRv2 (BIP155)
372
     *  messages, indicating a preference to receive ADDRv2 instead of ADDR ones. */
373
    std::atomic_bool m_wants_addrv2{false};
374
    /** Whether this peer has already sent us a getaddr message. */
375
    bool m_getaddr_recvd GUARDED_BY(NetEventsInterface::g_msgproc_mutex){false};
376
    /** Number of addresses that can be processed from this peer. Start at 1 to
377
     *  permit self-announcement. */
378
    double m_addr_token_bucket GUARDED_BY(NetEventsInterface::g_msgproc_mutex){1.0};
379
    /** When m_addr_token_bucket was last updated */
380
    NodeClock::time_point m_addr_token_timestamp GUARDED_BY(NetEventsInterface::g_msgproc_mutex){NodeClock::now()};
381
    /** Total number of addresses that were dropped due to rate limiting. */
382
    std::atomic<uint64_t> m_addr_rate_limited{0};
383
    /** Total number of addresses that were processed (excludes rate-limited ones). */
384
    std::atomic<uint64_t> m_addr_processed{0};
385
386
    /** Whether we've sent this peer a getheaders in response to an inv prior to initial-headers-sync completing */
387
    bool m_inv_triggered_getheaders_before_sync GUARDED_BY(NetEventsInterface::g_msgproc_mutex){false};
388
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    /** Protects m_getdata_requests **/
390
    Mutex m_getdata_requests_mutex;
391
    /** Work queue of items requested by this peer **/
392
    std::deque<CInv> m_getdata_requests GUARDED_BY(m_getdata_requests_mutex);
393
394
    /** Time of the last getheaders message to this peer */
395
    NodeClock::time_point m_last_getheaders_timestamp GUARDED_BY(NetEventsInterface::g_msgproc_mutex){};
396
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    /** Protects m_headers_sync **/
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    Mutex m_headers_sync_mutex;
399
    /** Headers-sync state for this peer (eg for initial sync, or syncing large
400
     * reorgs) **/
401
    std::unique_ptr<HeadersSyncState> m_headers_sync PT_GUARDED_BY(m_headers_sync_mutex) GUARDED_BY(m_headers_sync_mutex) {};
402
403
    /** Whether we've sent our peer a sendheaders message. **/
404
    std::atomic<bool> m_sent_sendheaders{false};
405
406
    /** When to potentially disconnect peer for stalling headers download */
407
    std::chrono::microseconds m_headers_sync_timeout GUARDED_BY(NetEventsInterface::g_msgproc_mutex){0us};
408
409
    /** Whether this peer wants invs or headers (when possible) for block announcements */
410
    bool m_prefers_headers GUARDED_BY(NetEventsInterface::g_msgproc_mutex){false};
411
412
    /** Time offset computed during the version handshake based on the
413
     * timestamp the peer sent in the version message. */
414
    std::atomic<std::chrono::seconds> m_time_offset{0s};
415
416
    explicit Peer(NodeId id, ServiceFlags our_services, bool is_inbound)
417
0
        : m_id{id}
418
0
        , m_our_services{our_services}
419
0
        , m_is_inbound{is_inbound}
420
0
    {}
421
422
private:
423
    mutable Mutex m_tx_relay_mutex;
424
425
    /** Transaction relay data. May be a nullptr. */
426
    std::unique_ptr<TxRelay> m_tx_relay GUARDED_BY(m_tx_relay_mutex);
427
};
428
429
using PeerRef = std::shared_ptr<Peer>;
430
431
/**
432
 * Maintain validation-specific state about nodes, protected by cs_main, instead
433
 * by CNode's own locks. This simplifies asynchronous operation, where
434
 * processing of incoming data is done after the ProcessMessage call returns,
435
 * and we're no longer holding the node's locks.
436
 */
437
struct CNodeState {
438
    //! The best known block we know this peer has announced.
439
    const CBlockIndex* pindexBestKnownBlock{nullptr};
440
    //! The hash of the last unknown block this peer has announced.
441
    uint256 hashLastUnknownBlock{};
442
    //! The last full block we both have.
443
    const CBlockIndex* pindexLastCommonBlock{nullptr};
444
    //! The best header we have sent our peer.
445
    const CBlockIndex* pindexBestHeaderSent{nullptr};
446
    //! Whether we've started headers synchronization with this peer.
447
    bool fSyncStarted{false};
448
    //! Since when we're stalling block download progress (in microseconds), or 0.
449
    std::chrono::microseconds m_stalling_since{0us};
450
    std::list<QueuedBlock> vBlocksInFlight;
451
    //! When the first entry in vBlocksInFlight started downloading. Don't care when vBlocksInFlight is empty.
452
    std::chrono::microseconds m_downloading_since{0us};
453
    //! Whether we consider this a preferred download peer.
454
    bool fPreferredDownload{false};
455
    /** Whether this peer wants invs or cmpctblocks (when possible) for block announcements. */
456
    bool m_requested_hb_cmpctblocks{false};
457
    /** Whether this peer will send us cmpctblocks if we request them. */
458
    bool m_provides_cmpctblocks{false};
459
460
    /** State used to enforce CHAIN_SYNC_TIMEOUT and EXTRA_PEER_CHECK_INTERVAL logic.
461
      *
462
      * Both are only in effect for outbound, non-manual, non-protected connections.
463
      * Any peer protected (m_protect = true) is not chosen for eviction. A peer is
464
      * marked as protected if all of these are true:
465
      *   - its connection type is IsBlockOnlyConn() == false
466
      *   - it gave us a valid connecting header
467
      *   - we haven't reached MAX_OUTBOUND_PEERS_TO_PROTECT_FROM_DISCONNECT yet
468
      *   - its chain tip has at least as much work as ours
469
      *
470
      * CHAIN_SYNC_TIMEOUT: if a peer's best known block has less work than our tip,
471
      * set a timeout CHAIN_SYNC_TIMEOUT in the future:
472
      *   - If at timeout their best known block now has more work than our tip
473
      *     when the timeout was set, then either reset the timeout or clear it
474
      *     (after comparing against our current tip's work)
475
      *   - If at timeout their best known block still has less work than our
476
      *     tip did when the timeout was set, then send a getheaders message,
477
      *     and set a shorter timeout, HEADERS_RESPONSE_TIME seconds in future.
478
      *     If their best known block is still behind when that new timeout is
479
      *     reached, disconnect.
480
      *
481
      * EXTRA_PEER_CHECK_INTERVAL: after each interval, if we have too many outbound peers,
482
      * drop the outbound one that least recently announced us a new block.
483
      */
484
    struct ChainSyncTimeoutState {
485
        //! A timeout used for checking whether our peer has sufficiently synced
486
        std::chrono::seconds m_timeout{0s};
487
        //! A header with the work we require on our peer's chain
488
        const CBlockIndex* m_work_header{nullptr};
489
        //! After timeout is reached, set to true after sending getheaders
490
        bool m_sent_getheaders{false};
491
        //! Whether this peer is protected from disconnection due to a bad/slow chain
492
        bool m_protect{false};
493
    };
494
495
    ChainSyncTimeoutState m_chain_sync;
496
497
    //! Time of last new block announcement
498
    int64_t m_last_block_announcement{0};
499
};
500
501
class PeerManagerImpl final : public PeerManager
502
{
503
public:
504
    PeerManagerImpl(CConnman& connman, AddrMan& addrman,
505
                    BanMan* banman, ChainstateManager& chainman,
506
                    CTxMemPool& pool, node::Warnings& warnings, Options opts);
507
508
    /** Overridden from CValidationInterface. */
509
    void ActiveTipChange(const CBlockIndex& new_tip, bool) override
510
        EXCLUSIVE_LOCKS_REQUIRED(!m_tx_download_mutex);
511
    void BlockConnected(const ChainstateRole& role, const std::shared_ptr<const CBlock>& pblock, const CBlockIndex* pindexConnected) override
512
        EXCLUSIVE_LOCKS_REQUIRED(!m_tx_download_mutex);
513
    void BlockDisconnected(const std::shared_ptr<const CBlock> &block, const CBlockIndex* pindex) override
514
        EXCLUSIVE_LOCKS_REQUIRED(!m_tx_download_mutex);
515
    void UpdatedBlockTip(const CBlockIndex *pindexNew, const CBlockIndex *pindexFork, bool fInitialDownload) override
516
        EXCLUSIVE_LOCKS_REQUIRED(!m_peer_mutex);
517
    void BlockChecked(const std::shared_ptr<const CBlock>& block, const BlockValidationState& state) override
518
        EXCLUSIVE_LOCKS_REQUIRED(!m_peer_mutex);
519
    void NewPoWValidBlock(const CBlockIndex *pindex, const std::shared_ptr<const CBlock>& pblock) override
520
        EXCLUSIVE_LOCKS_REQUIRED(!m_most_recent_block_mutex);
521
522
    /** Implement NetEventsInterface */
523
    void InitializeNode(const CNode& node, ServiceFlags our_services) override EXCLUSIVE_LOCKS_REQUIRED(!m_peer_mutex, !m_tx_download_mutex);
524
    void FinalizeNode(const CNode& node) override EXCLUSIVE_LOCKS_REQUIRED(!m_peer_mutex, !m_headers_presync_mutex, !m_tx_download_mutex);
525
    bool HasAllDesirableServiceFlags(ServiceFlags services) const override;
526
    bool ProcessMessages(CNode& node, std::atomic<bool>& interrupt) override
527
        EXCLUSIVE_LOCKS_REQUIRED(!m_peer_mutex, !m_most_recent_block_mutex, !m_headers_presync_mutex, g_msgproc_mutex, !m_tx_download_mutex);
528
    bool SendMessages(CNode& node) override
529
        EXCLUSIVE_LOCKS_REQUIRED(!m_peer_mutex, !m_most_recent_block_mutex, g_msgproc_mutex, !m_tx_download_mutex);
530
531
    /** Implement PeerManager */
532
    void StartScheduledTasks(CScheduler& scheduler) override;
533
    void CheckForStaleTipAndEvictPeers() override;
534
    util::Expected<void, std::string> FetchBlock(NodeId peer_id, const CBlockIndex& block_index) override
535
        EXCLUSIVE_LOCKS_REQUIRED(!m_peer_mutex);
536
    bool GetNodeStateStats(NodeId nodeid, CNodeStateStats& stats) const override EXCLUSIVE_LOCKS_REQUIRED(!m_peer_mutex);
537
    std::vector<node::TxOrphanage::OrphanInfo> GetOrphanTransactions() override EXCLUSIVE_LOCKS_REQUIRED(!m_tx_download_mutex);
538
    PeerManagerInfo GetInfo() const override EXCLUSIVE_LOCKS_REQUIRED(!m_peer_mutex);
539
    std::vector<PrivateBroadcast::TxBroadcastInfo> GetPrivateBroadcastInfo() const override EXCLUSIVE_LOCKS_REQUIRED(!m_peer_mutex);
540
    std::vector<CTransactionRef> AbortPrivateBroadcast(const uint256& id) override EXCLUSIVE_LOCKS_REQUIRED(!m_peer_mutex);
541
    void SendPings() override EXCLUSIVE_LOCKS_REQUIRED(!m_peer_mutex);
542
    void InitiateTxBroadcastToAll(const Txid& txid, const Wtxid& wtxid) override EXCLUSIVE_LOCKS_REQUIRED(!m_peer_mutex);
543
    void InitiateTxBroadcastPrivate(const CTransactionRef& tx) override EXCLUSIVE_LOCKS_REQUIRED(!m_peer_mutex);
544
    void SetBestBlock(int height, std::chrono::seconds time) override
545
0
    {
546
0
        m_best_height = height;
547
0
        m_best_block_time = time;
548
0
    };
549
0
    void UnitTestMisbehaving(NodeId peer_id) override EXCLUSIVE_LOCKS_REQUIRED(!m_peer_mutex) { Misbehaving(*Assert(GetPeerRef(peer_id)), ""); };
550
    void UpdateLastBlockAnnounceTime(NodeId node, int64_t time_in_seconds) override;
551
    ServiceFlags GetDesirableServiceFlags(ServiceFlags services) const override;
552
553
private:
554
    void ProcessMessage(Peer& peer, CNode& pfrom, const std::string& msg_type, DataStream& vRecv, NodeClock::time_point time_received,
555
                        const std::atomic<bool>& interruptMsgProc)
556
        EXCLUSIVE_LOCKS_REQUIRED(!m_peer_mutex, !m_most_recent_block_mutex, !m_headers_presync_mutex, g_msgproc_mutex, !m_tx_download_mutex);
557
558
    /** Consider evicting an outbound peer based on the amount of time they've been behind our tip */
559
    void ConsiderEviction(CNode& pto, Peer& peer, std::chrono::seconds time_in_seconds) EXCLUSIVE_LOCKS_REQUIRED(cs_main, g_msgproc_mutex);
560
561
    /** If we have extra outbound peers, try to disconnect the one with the oldest block announcement */
562
    void EvictExtraOutboundPeers(NodeClock::time_point now) EXCLUSIVE_LOCKS_REQUIRED(cs_main);
563
564
    /** Retrieve unbroadcast transactions from the mempool and reattempt sending to peers */
565
    void ReattemptInitialBroadcast(CScheduler& scheduler) EXCLUSIVE_LOCKS_REQUIRED(!m_peer_mutex);
566
567
    /** Rebroadcast stale private transactions (already broadcast but not received back from the network). */
568
    void ReattemptPrivateBroadcast(CScheduler& scheduler);
569
570
    /** Get a shared pointer to the Peer object.
571
     *  May return an empty shared_ptr if the Peer object can't be found. */
572
    PeerRef GetPeerRef(NodeId id) const EXCLUSIVE_LOCKS_REQUIRED(!m_peer_mutex);
573
574
    /** Get a shared pointer to the Peer object and remove it from m_peer_map.
575
     *  May return an empty shared_ptr if the Peer object can't be found. */
576
    PeerRef RemovePeer(NodeId id) EXCLUSIVE_LOCKS_REQUIRED(!m_peer_mutex);
577
578
    /// Get all existing peers in m_peer_map.
579
    std::vector<PeerRef> GetAllPeers() const EXCLUSIVE_LOCKS_REQUIRED(!m_peer_mutex);
580
581
    /** Mark a peer as misbehaving, which will cause it to be disconnected and its
582
     *  address discouraged. */
583
    void Misbehaving(Peer& peer, const std::string& message);
584
585
    /**
586
     * Potentially mark a node discouraged based on the contents of a BlockValidationState object
587
     *
588
     * @param[in] via_compact_block this bool is passed in because net_processing should
589
     * punish peers differently depending on whether the data was provided in a compact
590
     * block message or not. If the compact block had a valid header, but contained invalid
591
     * txs, the peer should not be punished. See BIP 152.
592
     */
593
    void MaybePunishNodeForBlock(NodeId nodeid, const BlockValidationState& state,
594
                                 bool via_compact_block, const std::string& message = "")
595
        EXCLUSIVE_LOCKS_REQUIRED(!m_peer_mutex);
596
597
    /** Maybe disconnect a peer and discourage future connections from its address.
598
     *
599
     * @param[in]   pnode     The node to check.
600
     * @param[in]   peer      The peer object to check.
601
     * @return                True if the peer was marked for disconnection in this function
602
     */
603
    bool MaybeDiscourageAndDisconnect(CNode& pnode, Peer& peer);
604
605
    /** Handle a transaction whose result was not MempoolAcceptResult::ResultType::VALID.
606
     * @param[in]   first_time_failure            Whether we should consider inserting into vExtraTxnForCompact, adding
607
     *                                            a new orphan to resolve, or looking for a package to submit.
608
     *                                            Set to true for transactions just received over p2p.
609
     *                                            Set to false if the tx has already been rejected before,
610
     *                                            e.g. is already in the orphanage, to avoid adding duplicate entries.
611
     * Updates m_txrequest, m_lazy_recent_rejects, m_lazy_recent_rejects_reconsiderable, m_orphanage, and vExtraTxnForCompact.
612
     *
613
     * @returns a PackageToValidate if this transaction has a reconsiderable failure and an eligible package was found,
614
     * or std::nullopt otherwise.
615
     */
616
    std::optional<node::PackageToValidate> ProcessInvalidTx(NodeId nodeid, const CTransactionRef& tx, const TxValidationState& result,
617
                                                      bool first_time_failure)
618
        EXCLUSIVE_LOCKS_REQUIRED(!m_peer_mutex, g_msgproc_mutex, m_tx_download_mutex);
619
620
    /** Handle a transaction whose result was MempoolAcceptResult::ResultType::VALID.
621
     * Updates m_txrequest, m_orphanage, and vExtraTxnForCompact. Also queues the tx for relay. */
622
    void ProcessValidTx(NodeId nodeid, const CTransactionRef& tx, const std::list<CTransactionRef>& replaced_transactions)
623
        EXCLUSIVE_LOCKS_REQUIRED(!m_peer_mutex, g_msgproc_mutex, m_tx_download_mutex);
624
625
    /** Handle the results of package validation: calls ProcessValidTx and ProcessInvalidTx for
626
     * individual transactions, and caches rejection for the package as a group.
627
     */
628
    void ProcessPackageResult(const node::PackageToValidate& package_to_validate, const PackageMempoolAcceptResult& package_result)
629
        EXCLUSIVE_LOCKS_REQUIRED(!m_peer_mutex, g_msgproc_mutex, m_tx_download_mutex);
630
631
    /**
632
     * Reconsider orphan transactions after a parent has been accepted to the mempool.
633
     *
634
     * @peer[in]  peer     The peer whose orphan transactions we will reconsider. Generally only
635
     *                     one orphan will be reconsidered on each call of this function. If an
636
     *                     accepted orphan has orphaned children, those will need to be
637
     *                     reconsidered, creating more work, possibly for other peers.
638
     * @return             True if meaningful work was done (an orphan was accepted/rejected).
639
     *                     If no meaningful work was done, then the work set for this peer
640
     *                     will be empty.
641
     */
642
    bool ProcessOrphanTx(Peer& peer)
643
        EXCLUSIVE_LOCKS_REQUIRED(!m_peer_mutex, g_msgproc_mutex, !m_tx_download_mutex);
644
645
    /** Process a single headers message from a peer.
646
     *
647
     * @param[in]   pfrom     CNode of the peer
648
     * @param[in]   peer      The peer sending us the headers
649
     * @param[in]   headers   The headers received. Note that this may be modified within ProcessHeadersMessage.
650
     * @param[in]   via_compact_block   Whether this header came in via compact block handling.
651
    */
652
    void ProcessHeadersMessage(CNode& pfrom, Peer& peer,
653
                               std::vector<CBlockHeader>&& headers,
654
                               bool via_compact_block)
655
        EXCLUSIVE_LOCKS_REQUIRED(!m_peer_mutex, !m_headers_presync_mutex, g_msgproc_mutex);
656
    /** Various helpers for headers processing, invoked by ProcessHeadersMessage() */
657
    /** Return true if headers are continuous and have valid proof-of-work (DoS points assigned on failure) */
658
    bool CheckHeadersPoW(const std::vector<CBlockHeader>& headers, Peer& peer);
659
    /** Calculate an anti-DoS work threshold for headers chains */
660
    arith_uint256 GetAntiDoSWorkThreshold();
661
    /** Deal with state tracking and headers sync for peers that send
662
     * non-connecting headers (this can happen due to BIP 130 headers
663
     * announcements for blocks interacting with the 2hr (MAX_FUTURE_BLOCK_TIME) rule). */
664
    void HandleUnconnectingHeaders(CNode& pfrom, Peer& peer, const std::vector<CBlockHeader>& headers) EXCLUSIVE_LOCKS_REQUIRED(g_msgproc_mutex);
665
    /** Return true if the headers connect to each other, false otherwise */
666
    bool CheckHeadersAreContinuous(const std::vector<CBlockHeader>& headers) const;
667
    /** Try to continue a low-work headers sync that has already begun.
668
     * Assumes the caller has already verified the headers connect, and has
669
     * checked that each header satisfies the proof-of-work target included in
670
     * the header.
671
     *  @param[in]  peer                            The peer we're syncing with.
672
     *  @param[in]  pfrom                           CNode of the peer
673
     *  @param[in,out] headers                      The headers to be processed.
674
     *  @return     True if the passed in headers were successfully processed
675
     *              as the continuation of a low-work headers sync in progress;
676
     *              false otherwise.
677
     *              If false, the passed in headers will be returned back to
678
     *              the caller.
679
     *              If true, the returned headers may be empty, indicating
680
     *              there is no more work for the caller to do; or the headers
681
     *              may be populated with entries that have passed anti-DoS
682
     *              checks (and therefore may be validated for block index
683
     *              acceptance by the caller).
684
     */
685
    bool IsContinuationOfLowWorkHeadersSync(Peer& peer, CNode& pfrom,
686
            std::vector<CBlockHeader>& headers)
687
        EXCLUSIVE_LOCKS_REQUIRED(peer.m_headers_sync_mutex, !m_headers_presync_mutex, g_msgproc_mutex);
688
    /** Check work on a headers chain to be processed, and if insufficient,
689
     * initiate our anti-DoS headers sync mechanism.
690
     *
691
     * @param[in]   peer                The peer whose headers we're processing.
692
     * @param[in]   pfrom               CNode of the peer
693
     * @param[in]   chain_start_header  Where these headers connect in our index.
694
     * @param[in,out]   headers             The headers to be processed.
695
     *
696
     * @return      True if chain was low work (headers will be empty after
697
     *              calling); false otherwise.
698
     */
699
    bool TryLowWorkHeadersSync(Peer& peer, CNode& pfrom,
700
                               const CBlockIndex& chain_start_header,
701
                               std::vector<CBlockHeader>& headers)
702
        EXCLUSIVE_LOCKS_REQUIRED(!peer.m_headers_sync_mutex, !m_peer_mutex, !m_headers_presync_mutex, g_msgproc_mutex);
703
704
    /** Return true if the given header is an ancestor of
705
     *  m_chainman.m_best_header or our current tip */
706
    bool IsAncestorOfBestHeaderOrTip(const CBlockIndex* header) EXCLUSIVE_LOCKS_REQUIRED(cs_main);
707
708
    /** Request further headers from this peer with a given locator.
709
     * We don't issue a getheaders message if we have a recent one outstanding.
710
     * This returns true if a getheaders is actually sent, and false otherwise.
711
     */
712
    bool MaybeSendGetHeaders(CNode& pfrom, const CBlockLocator& locator, Peer& peer) EXCLUSIVE_LOCKS_REQUIRED(g_msgproc_mutex);
713
    /** Potentially fetch blocks from this peer upon receipt of a new headers tip */
714
    void HeadersDirectFetchBlocks(CNode& pfrom, const Peer& peer, const CBlockIndex& last_header);
715
    /** Update peer state based on received headers message */
716
    void UpdatePeerStateForReceivedHeaders(CNode& pfrom, Peer& peer, const CBlockIndex& last_header, bool received_new_header, bool may_have_more_headers)
717
        EXCLUSIVE_LOCKS_REQUIRED(g_msgproc_mutex);
718
719
    void SendBlockTransactions(CNode& pfrom, Peer& peer, const CBlock& block, const BlockTransactionsRequest& req);
720
721
    /** Send a message to a peer */
722
0
    void PushMessage(CNode& node, CSerializedNetMsg&& msg) const { m_connman.PushMessage(&node, std::move(msg)); }
723
    template <typename... Args>
724
    void MakeAndPushMessage(CNode& node, std::string msg_type, Args&&... args) const
725
0
    {
726
0
        m_connman.PushMessage(&node, NetMsg::Make(std::move(msg_type), std::forward<Args>(args)...));
727
0
    }
Unexecuted instantiation: net_processing.cpp:_ZNK12_GLOBAL__N_115PeerManagerImpl18MakeAndPushMessageIJbRKmEEEvR5CNodeNSt7__cxx1112basic_stringIcSt11char_traitsIcESaIcEEEDpOT_
Unexecuted instantiation: net_processing.cpp:_ZNK12_GLOBAL__N_115PeerManagerImpl18MakeAndPushMessageIJRSt6vectorI4CInvSaIS3_EEEEEvR5CNodeNSt7__cxx1112basic_stringIcSt11char_traitsIcESaIcEEEDpOT_
Unexecuted instantiation: net_processing.cpp:_ZNK12_GLOBAL__N_115PeerManagerImpl18MakeAndPushMessageIJ13ParamsWrapperI20TransactionSerParamsK12CTransactionEEEEvR5CNodeNSt7__cxx1112basic_stringIcSt11char_traitsIcESaIcEEEDpOT_
Unexecuted instantiation: net_processing.cpp:_ZNK12_GLOBAL__N_115PeerManagerImpl18MakeAndPushMessageIJSt4spanIKSt4byteLm18446744073709551615EEEEEvR5CNodeNSt7__cxx1112basic_stringIcSt11char_traitsIcESaIcEEEDpOT_
Unexecuted instantiation: net_processing.cpp:_ZNK12_GLOBAL__N_115PeerManagerImpl18MakeAndPushMessageIJ13ParamsWrapperI20TransactionSerParamsK6CBlockEEEEvR5CNodeNSt7__cxx1112basic_stringIcSt11char_traitsIcESaIcEEEDpOT_
Unexecuted instantiation: net_processing.cpp:_ZNK12_GLOBAL__N_115PeerManagerImpl18MakeAndPushMessageIJR12CMerkleBlockEEEvR5CNodeNSt7__cxx1112basic_stringIcSt11char_traitsIcESaIcEEEDpOT_
Unexecuted instantiation: net_processing.cpp:_ZNK12_GLOBAL__N_115PeerManagerImpl18MakeAndPushMessageIJRK25CBlockHeaderAndShortTxIDsEEEvR5CNodeNSt7__cxx1112basic_stringIcSt11char_traitsIcESaIcEEEDpOT_
Unexecuted instantiation: net_processing.cpp:_ZNK12_GLOBAL__N_115PeerManagerImpl18MakeAndPushMessageIJR25CBlockHeaderAndShortTxIDsEEEvR5CNodeNSt7__cxx1112basic_stringIcSt11char_traitsIcESaIcEEEDpOT_
Unexecuted instantiation: net_processing.cpp:_ZNK12_GLOBAL__N_115PeerManagerImpl18MakeAndPushMessageIJiRmRlS2_13ParamsWrapperIN8CNetAddr9SerParamsE8CServiceES2_S8_mRNSt7__cxx1112basic_stringIcSt11char_traitsIcESaIcEEERiRbEEEvR5CNodeSE_DpOT_
Unexecuted instantiation: net_processing.cpp:_ZNK12_GLOBAL__N_115PeerManagerImpl18MakeAndPushMessageIJEEEvR5CNodeNSt7__cxx1112basic_stringIcSt11char_traitsIcESaIcEEEDpOT_
Unexecuted instantiation: net_processing.cpp:_ZNK12_GLOBAL__N_115PeerManagerImpl18MakeAndPushMessageIJRKjRKmEEEvR5CNodeNSt7__cxx1112basic_stringIcSt11char_traitsIcESaIcEEEDpOT_
Unexecuted instantiation: net_processing.cpp:_ZNK12_GLOBAL__N_115PeerManagerImpl18MakeAndPushMessageIJRKSt5arrayISt4byteLm168EEEEEvR5CNodeNSt7__cxx1112basic_stringIcSt11char_traitsIcESaIcEEEDpOT_
Unexecuted instantiation: net_processing.cpp:_ZNK12_GLOBAL__N_115PeerManagerImpl18MakeAndPushMessageIJSt6vectorI4CInvSaIS3_EEEEEvR5CNodeNSt7__cxx1112basic_stringIcSt11char_traitsIcESaIcEEEDpOT_
Unexecuted instantiation: net_processing.cpp:_ZNK12_GLOBAL__N_115PeerManagerImpl18MakeAndPushMessageIJRK13CBlockLocator7uint256EEEvR5CNodeNSt7__cxx1112basic_stringIcSt11char_traitsIcESaIcEEEDpOT_
Unexecuted instantiation: net_processing.cpp:_ZNK12_GLOBAL__N_115PeerManagerImpl18MakeAndPushMessageIJR17BlockTransactionsEEEvR5CNodeNSt7__cxx1112basic_stringIcSt11char_traitsIcESaIcEEEDpOT_
Unexecuted instantiation: net_processing.cpp:_ZNK12_GLOBAL__N_115PeerManagerImpl18MakeAndPushMessageIJSt6vectorI12CBlockHeaderSaIS3_EEEEEvR5CNodeNSt7__cxx1112basic_stringIcSt11char_traitsIcESaIcEEEDpOT_
Unexecuted instantiation: net_processing.cpp:_ZNK12_GLOBAL__N_115PeerManagerImpl18MakeAndPushMessageIJ13ParamsWrapperI20TransactionSerParamsSt6vectorI6CBlockSaIS5_EEEEEEvR5CNodeNSt7__cxx1112basic_stringIcSt11char_traitsIcESaIcEEEDpOT_
Unexecuted instantiation: net_processing.cpp:_ZNK12_GLOBAL__N_115PeerManagerImpl18MakeAndPushMessageIJR24BlockTransactionsRequestEEEvR5CNodeNSt7__cxx1112basic_stringIcSt11char_traitsIcESaIcEEEDpOT_
Unexecuted instantiation: net_processing.cpp:_ZNK12_GLOBAL__N_115PeerManagerImpl18MakeAndPushMessageIJRmEEEvR5CNodeNSt7__cxx1112basic_stringIcSt11char_traitsIcESaIcEEEDpOT_
Unexecuted instantiation: net_processing.cpp:_ZNK12_GLOBAL__N_115PeerManagerImpl18MakeAndPushMessageIJRK11BlockFilterEEEvR5CNodeNSt7__cxx1112basic_stringIcSt11char_traitsIcESaIcEEEDpOT_
Unexecuted instantiation: net_processing.cpp:_ZNK12_GLOBAL__N_115PeerManagerImpl18MakeAndPushMessageIJRh7uint256RS3_RSt6vectorIS3_SaIS3_EEEEEvR5CNodeNSt7__cxx1112basic_stringIcSt11char_traitsIcESaIcEEEDpOT_
Unexecuted instantiation: net_processing.cpp:_ZNK12_GLOBAL__N_115PeerManagerImpl18MakeAndPushMessageIJRh7uint256RSt6vectorIS3_SaIS3_EEEEEvR5CNodeNSt7__cxx1112basic_stringIcSt11char_traitsIcESaIcEEEDpOT_
Unexecuted instantiation: net_processing.cpp:_ZNK12_GLOBAL__N_115PeerManagerImpl18MakeAndPushMessageIJ13ParamsWrapperIN8CAddress9SerParamsESt6vectorIS3_SaIS3_EEEEEEvR5CNodeNSt7__cxx1112basic_stringIcSt11char_traitsIcESaIcEEEDpOT_
Unexecuted instantiation: net_processing.cpp:_ZNK12_GLOBAL__N_115PeerManagerImpl18MakeAndPushMessageIJRlEEEvR5CNodeNSt7__cxx1112basic_stringIcSt11char_traitsIcESaIcEEEDpOT_
728
    template <typename... Args>
729
    void MakeAndPushFeature(CNode& node, std::string_view feature_id, Args&&... args) const
730
    {
731
        if (!Assume(feature_id.size() >= 4 && feature_id.size() <= MAX_FEATUREID_LENGTH)) return;
732
        std::vector<unsigned char> feature_data;
733
        VectorWriter{feature_data, 0, std::forward<Args>(args)...};
734
        if (!Assume(feature_data.size() <= MAX_FEATUREDATA_LENGTH)) return;
735
        MakeAndPushMessage(node, NetMsgType::FEATURE, feature_id, std::move(feature_data));
736
    }
737
738
    /** Send a version message to a peer */
739
    void PushNodeVersion(CNode& pnode, const Peer& peer);
740
741
    /** Send a ping message every PING_INTERVAL or if requested via RPC (peer.m_ping_queued is true).
742
     *  May mark the peer to be disconnected if a ping has timed out.
743
     *  We use mockable time for ping timeouts, so setmocktime may cause pings
744
     *  to time out. */
745
    void MaybeSendPing(CNode& node_to, Peer& peer, NodeClock::time_point now);
746
747
    /** Send `addr` messages on a regular schedule. */
748
    void MaybeSendAddr(CNode& node, Peer& peer, std::chrono::microseconds current_time) EXCLUSIVE_LOCKS_REQUIRED(g_msgproc_mutex);
749
750
    /** Send a single `sendheaders` message, after we have completed headers sync with a peer. */
751
    void MaybeSendSendHeaders(CNode& node, Peer& peer) EXCLUSIVE_LOCKS_REQUIRED(g_msgproc_mutex);
752
753
    /** Relay (gossip) an address to a few randomly chosen nodes.
754
     *
755
     * @param[in] originator   The id of the peer that sent us the address. We don't want to relay it back.
756
     * @param[in] addr         Address to relay.
757
     * @param[in] fReachable   Whether the address' network is reachable. We relay unreachable
758
     *                         addresses less.
759
     */
760
    void RelayAddress(NodeId originator, const CAddress& addr, bool fReachable) EXCLUSIVE_LOCKS_REQUIRED(!m_peer_mutex, g_msgproc_mutex);
761
762
    /** Send `feefilter` message. */
763
    void MaybeSendFeefilter(CNode& node, Peer& peer, std::chrono::microseconds current_time) EXCLUSIVE_LOCKS_REQUIRED(g_msgproc_mutex);
764
765
    FastRandomContext m_rng GUARDED_BY(NetEventsInterface::g_msgproc_mutex);
766
767
    FeeFilterRounder m_fee_filter_rounder GUARDED_BY(NetEventsInterface::g_msgproc_mutex);
768
769
    const CChainParams& m_chainparams;
770
    CConnman& m_connman;
771
    AddrMan& m_addrman;
772
    /** Pointer to this node's banman. May be nullptr - check existence before dereferencing. */
773
    BanMan* const m_banman;
774
    ChainstateManager& m_chainman;
775
    CTxMemPool& m_mempool;
776
777
    /** Synchronizes tx download including TxRequestTracker, rejection filters, and TxOrphanage.
778
     * Lock invariants:
779
     * - A txhash (txid or wtxid) in m_txrequest is not also in m_orphanage.
780
     * - A txhash (txid or wtxid) in m_txrequest is not also in m_lazy_recent_rejects.
781
     * - A txhash (txid or wtxid) in m_txrequest is not also in m_lazy_recent_rejects_reconsiderable.
782
     * - A txhash (txid or wtxid) in m_txrequest is not also in m_lazy_recent_confirmed_transactions.
783
     * - Each data structure's limits hold (m_orphanage max size, m_txrequest per-peer limits, etc).
784
     */
785
    Mutex m_tx_download_mutex ACQUIRED_BEFORE(m_mempool.cs);
786
    node::TxDownloadManager m_txdownloadman GUARDED_BY(m_tx_download_mutex);
787
788
    std::unique_ptr<TxReconciliationTracker> m_txreconciliation;
789
790
    /** The height of the best chain */
791
    std::atomic<int> m_best_height{-1};
792
    /** The time of the best chain tip block */
793
    std::atomic<std::chrono::seconds> m_best_block_time{0s};
794
795
    /** Next time to check for stale tip */
796
    std::chrono::seconds m_stale_tip_check_time GUARDED_BY(cs_main){0s};
797
798
    node::Warnings& m_warnings;
799
    TimeOffsets m_outbound_time_offsets{m_warnings};
800
801
    const Options m_opts;
802
803
    bool RejectIncomingTxs(const CNode& peer) const;
804
805
    /** Whether we've completed initial sync yet, for determining when to turn
806
      * on extra block-relay-only peers. */
807
    bool m_initial_sync_finished GUARDED_BY(cs_main){false};
808
809
    /** Protects m_peer_map. This mutex must not be locked while holding a lock
810
     *  on any of the mutexes inside a Peer object. */
811
    mutable Mutex m_peer_mutex;
812
    /**
813
     * Map of all Peer objects, keyed by peer id. This map is protected
814
     * by the m_peer_mutex. Once a shared pointer reference is
815
     * taken, the lock may be released. Individual fields are protected by
816
     * their own locks.
817
     */
818
    std::map<NodeId, PeerRef> m_peer_map GUARDED_BY(m_peer_mutex);
819
820
    /** Map maintaining per-node state. */
821
    std::map<NodeId, CNodeState> m_node_states GUARDED_BY(cs_main);
822
823
    /** Get a pointer to a const CNodeState, used when not mutating the CNodeState object. */
824
    const CNodeState* State(NodeId pnode) const EXCLUSIVE_LOCKS_REQUIRED(cs_main);
825
    /** Get a pointer to a mutable CNodeState. */
826
    CNodeState* State(NodeId pnode) EXCLUSIVE_LOCKS_REQUIRED(cs_main);
827
828
    uint32_t GetFetchFlags(const Peer& peer) const;
829
830
    std::map<uint64_t, std::chrono::microseconds> m_next_inv_to_inbounds_per_network_key GUARDED_BY(g_msgproc_mutex);
831
832
    /** Number of nodes with fSyncStarted. */
833
    int nSyncStarted GUARDED_BY(cs_main) = 0;
834
835
    /** Hash of the last block we received via INV */
836
    uint256 m_last_block_inv_triggering_headers_sync GUARDED_BY(g_msgproc_mutex){};
837
838
    /**
839
     * Sources of received blocks, saved to be able punish them when processing
840
     * happens afterwards.
841
     * Set mapBlockSource[hash].second to false if the node should not be
842
     * punished if the block is invalid.
843
     */
844
    std::map<uint256, std::pair<NodeId, bool>> mapBlockSource GUARDED_BY(cs_main);
845
846
    /** Number of peers with wtxid relay. */
847
    std::atomic<int> m_wtxid_relay_peers{0};
848
849
    /** Number of outbound peers with m_chain_sync.m_protect. */
850
    int m_outbound_peers_with_protect_from_disconnect GUARDED_BY(cs_main) = 0;
851
852
    /** Number of preferable block download peers. */
853
    int m_num_preferred_download_peers GUARDED_BY(cs_main){0};
854
855
    /** Stalling timeout for blocks in IBD */
856
    std::atomic<std::chrono::seconds> m_block_stalling_timeout{BLOCK_STALLING_TIMEOUT_DEFAULT};
857
858
    /**
859
     * For sending `inv`s to inbound peers, we use a single (exponentially
860
     * distributed) timer for all peers with the same network key. If we used a separate timer for each
861
     * peer, a spy node could make multiple inbound connections to us to
862
     * accurately determine when we received a transaction (and potentially
863
     * determine the transaction's origin). Each network key has its own timer
864
     * to make fingerprinting harder. */
865
    std::chrono::microseconds NextInvToInbounds(std::chrono::microseconds now,
866
                                                std::chrono::seconds average_interval,
867
                                                uint64_t network_key) EXCLUSIVE_LOCKS_REQUIRED(g_msgproc_mutex);
868
869
870
    // All of the following cache a recent block, and are protected by m_most_recent_block_mutex
871
    Mutex m_most_recent_block_mutex;
872
    std::shared_ptr<const CBlock> m_most_recent_block GUARDED_BY(m_most_recent_block_mutex);
873
    std::shared_ptr<const CBlockHeaderAndShortTxIDs> m_most_recent_compact_block GUARDED_BY(m_most_recent_block_mutex);
874
    uint256 m_most_recent_block_hash GUARDED_BY(m_most_recent_block_mutex);
875
    std::unique_ptr<const std::map<GenTxid, CTransactionRef>> m_most_recent_block_txs GUARDED_BY(m_most_recent_block_mutex);
876
877
    // Data about the low-work headers synchronization, aggregated from all peers' HeadersSyncStates.
878
    /** Mutex guarding the other m_headers_presync_* variables. */
879
    Mutex m_headers_presync_mutex;
880
    /** A type to represent statistics about a peer's low-work headers sync.
881
     *
882
     * - The first field is the total verified amount of work in that synchronization.
883
     * - The second is:
884
     *   - nullopt: the sync is in REDOWNLOAD phase (phase 2).
885
     *   - {height, timestamp}: the sync has the specified tip height and block timestamp (phase 1).
886
     */
887
    using HeadersPresyncStats = std::pair<arith_uint256, std::optional<std::pair<int64_t, uint32_t>>>;
888
    /** Statistics for all peers in low-work headers sync. */
889
    std::map<NodeId, HeadersPresyncStats> m_headers_presync_stats GUARDED_BY(m_headers_presync_mutex) {};
890
    /** The peer with the most-work entry in m_headers_presync_stats. */
891
    NodeId m_headers_presync_bestpeer GUARDED_BY(m_headers_presync_mutex) {-1};
892
    /** The m_headers_presync_stats improved, and needs signalling. */
893
    std::atomic_bool m_headers_presync_should_signal{false};
894
895
    /** Height of the highest block announced using BIP 152 high-bandwidth mode. */
896
    int m_highest_fast_announce GUARDED_BY(::cs_main){0};
897
898
    /** Have we requested this block from a peer */
899
    bool IsBlockRequested(const uint256& hash) EXCLUSIVE_LOCKS_REQUIRED(cs_main);
900
901
    /** Have we requested this block from an outbound peer */
902
    bool IsBlockRequestedFromOutbound(const uint256& hash) EXCLUSIVE_LOCKS_REQUIRED(cs_main, !m_peer_mutex);
903
904
    /** Remove this block from our tracked requested blocks. Called if:
905
     *  - the block has been received from a peer
906
     *  - the request for the block has timed out
907
     * If "from_peer" is specified, then only remove the block if it is in
908
     * flight from that peer (to avoid one peer's network traffic from
909
     * affecting another's state).
910
     */
911
    void RemoveBlockRequest(const uint256& hash, std::optional<NodeId> from_peer) EXCLUSIVE_LOCKS_REQUIRED(cs_main);
912
913
    /* Mark a block as in flight
914
     * Returns false, still setting pit, if the block was already in flight from the same peer
915
     * pit will only be valid as long as the same cs_main lock is being held
916
     */
917
    bool BlockRequested(NodeId nodeid, const CBlockIndex& block, std::list<QueuedBlock>::iterator** pit = nullptr) EXCLUSIVE_LOCKS_REQUIRED(cs_main);
918
919
    bool TipMayBeStale() EXCLUSIVE_LOCKS_REQUIRED(cs_main);
920
921
    /** Update pindexLastCommonBlock and add not-in-flight missing successors to vBlocks, until it has
922
     *  at most count entries.
923
     */
924
    void FindNextBlocksToDownload(const Peer& peer, unsigned int count, std::vector<const CBlockIndex*>& vBlocks, NodeId& nodeStaller) EXCLUSIVE_LOCKS_REQUIRED(cs_main);
925
926
    /** Request blocks for the background chainstate, if one is in use. */
927
    void TryDownloadingHistoricalBlocks(const Peer& peer, unsigned int count, std::vector<const CBlockIndex*>& vBlocks, const CBlockIndex* from_tip, const CBlockIndex* target_block) EXCLUSIVE_LOCKS_REQUIRED(cs_main);
928
929
    /**
930
    * \brief Find next blocks to download from a peer after a starting block.
931
    *
932
    * \param vBlocks      Vector of blocks to download which will be appended to.
933
    * \param peer         Peer which blocks will be downloaded from.
934
    * \param state        Pointer to the state of the peer.
935
    * \param pindexWalk   Pointer to the starting block to add to vBlocks.
936
    * \param count        Maximum number of blocks to allow in vBlocks. No more
937
    *                     blocks will be added if it reaches this size.
938
    * \param nWindowEnd   Maximum height of blocks to allow in vBlocks. No
939
    *                     blocks will be added above this height.
940
    * \param activeChain  Optional pointer to a chain to compare against. If
941
    *                     provided, any next blocks which are already contained
942
    *                     in this chain will not be appended to vBlocks, but
943
    *                     instead will be used to update the
944
    *                     state->pindexLastCommonBlock pointer.
945
    * \param nodeStaller  Optional pointer to a NodeId variable that will receive
946
    *                     the ID of another peer that might be causing this peer
947
    *                     to stall. This is set to the ID of the peer which
948
    *                     first requested the first in-flight block in the
949
    *                     download window. It is only set if vBlocks is empty at
950
    *                     the end of this function call and if increasing
951
    *                     nWindowEnd by 1 would cause it to be non-empty (which
952
    *                     indicates the download might be stalled because every
953
    *                     block in the window is in flight and no other peer is
954
    *                     trying to download the next block).
955
    */
956
    void FindNextBlocks(std::vector<const CBlockIndex*>& vBlocks, const Peer& peer, CNodeState *state, const CBlockIndex *pindexWalk, unsigned int count, int nWindowEnd, const CChain* activeChain=nullptr, NodeId* nodeStaller=nullptr) EXCLUSIVE_LOCKS_REQUIRED(cs_main);
957
958
    /* Multimap used to preserve insertion order */
959
    typedef std::multimap<uint256, std::pair<NodeId, std::list<QueuedBlock>::iterator>> BlockDownloadMap;
960
    BlockDownloadMap mapBlocksInFlight GUARDED_BY(cs_main);
961
962
    /** When our tip was last updated. */
963
    std::atomic<std::chrono::seconds> m_last_tip_update{0s};
964
965
    /** Determine whether or not a peer can request a transaction, and return it (or nullptr if not found or not allowed). */
966
    CTransactionRef FindTxForGetData(const Peer::TxRelay& tx_relay, const GenTxid& gtxid)
967
        EXCLUSIVE_LOCKS_REQUIRED(!m_most_recent_block_mutex, !tx_relay.m_tx_inventory_mutex);
968
969
    void ProcessGetData(CNode& pfrom, Peer& peer, const std::atomic<bool>& interruptMsgProc)
970
        EXCLUSIVE_LOCKS_REQUIRED(!m_most_recent_block_mutex, peer.m_getdata_requests_mutex, NetEventsInterface::g_msgproc_mutex)
971
        LOCKS_EXCLUDED(::cs_main);
972
973
    /** Process a new block. Perform any post-processing housekeeping */
974
    void ProcessBlock(CNode& node, const std::shared_ptr<const CBlock>& block, bool force_processing, bool min_pow_checked);
975
976
    /** Process compact block txns  */
977
    void ProcessCompactBlockTxns(CNode& pfrom, Peer& peer, const BlockTransactions& block_transactions)
978
        EXCLUSIVE_LOCKS_REQUIRED(g_msgproc_mutex, !m_most_recent_block_mutex);
979
980
    /**
981
     * Schedule an INV for a transaction to be sent to the given peer (via `PushMessage()`).
982
     * The transaction is picked from the list of transactions for private broadcast.
983
     * It is assumed that the connection to the peer is `ConnectionType::PRIVATE_BROADCAST`.
984
     * Avoid calling this for other peers since it will degrade privacy.
985
     */
986
    void PushPrivateBroadcastTx(CNode& node) EXCLUSIVE_LOCKS_REQUIRED(g_msgproc_mutex, !m_most_recent_block_mutex);
987
988
    /**
989
     * When a peer sends us a valid block, instruct it to announce blocks to us
990
     * using CMPCTBLOCK if possible by adding its nodeid to the end of
991
     * lNodesAnnouncingHeaderAndIDs, and keeping that list under a certain size by
992
     * removing the first element if necessary.
993
     */
994
    void MaybeSetPeerAsAnnouncingHeaderAndIDs(NodeId nodeid) EXCLUSIVE_LOCKS_REQUIRED(cs_main, !m_peer_mutex);
995
996
    /** Stack of nodes which we have set to announce using compact blocks */
997
    std::list<NodeId> lNodesAnnouncingHeaderAndIDs GUARDED_BY(cs_main);
998
999
    /** Number of peers from which we're downloading blocks. */
1000
    int m_peers_downloading_from GUARDED_BY(cs_main) = 0;
1001
1002
    void AddToCompactExtraTransactions(const CTransactionRef& tx) EXCLUSIVE_LOCKS_REQUIRED(g_msgproc_mutex);
1003
1004
    /** Orphan/conflicted/etc transactions that are kept for compact block reconstruction.
1005
     *  The last -blockreconstructionextratxn/DEFAULT_BLOCK_RECONSTRUCTION_EXTRA_TXN of
1006
     *  these are kept in a ring buffer */
1007
    std::vector<std::pair<Wtxid, CTransactionRef>> vExtraTxnForCompact GUARDED_BY(g_msgproc_mutex);
1008
    /** Offset into vExtraTxnForCompact to insert the next tx */
1009
    size_t vExtraTxnForCompactIt GUARDED_BY(g_msgproc_mutex) = 0;
1010
1011
    /** Check whether the last unknown block a peer advertised is not yet known. */
1012
    void ProcessBlockAvailability(NodeId nodeid) EXCLUSIVE_LOCKS_REQUIRED(cs_main);
1013
    /** Update tracking information about which blocks a peer is assumed to have. */
1014
    void UpdateBlockAvailability(NodeId nodeid, const uint256& hash) EXCLUSIVE_LOCKS_REQUIRED(cs_main);
1015
    bool CanDirectFetch() EXCLUSIVE_LOCKS_REQUIRED(cs_main);
1016
1017
    /**
1018
     * Estimates the distance, in blocks, between the best-known block and the network chain tip.
1019
     * Utilizes the best-block time and the chainparams blocks spacing to approximate it.
1020
     */
1021
    int64_t ApproximateBestBlockDepth() const;
1022
1023
    /**
1024
     * To prevent fingerprinting attacks, only send blocks/headers outside of
1025
     * the active chain if they are no more than a month older (both in time,
1026
     * and in best equivalent proof of work) than the best header chain we know
1027
     * about and we fully-validated them at some point.
1028
     */
1029
    bool BlockRequestAllowed(const CBlockIndex& block_index) EXCLUSIVE_LOCKS_REQUIRED(cs_main);
1030
    bool AlreadyHaveBlock(const uint256& block_hash) EXCLUSIVE_LOCKS_REQUIRED(cs_main);
1031
    void ProcessGetBlockData(CNode& pfrom, Peer& peer, const CInv& inv)
1032
        EXCLUSIVE_LOCKS_REQUIRED(g_msgproc_mutex, !m_most_recent_block_mutex);
1033
1034
    /**
1035
     * Validation logic for compact filters request handling.
1036
     *
1037
     * May disconnect from the peer in the case of a bad request.
1038
     *
1039
     * @param[in]   node            The node that we received the request from
1040
     * @param[in]   peer            The peer that we received the request from
1041
     * @param[in]   filter_type     The filter type the request is for. Must be basic filters.
1042
     * @param[in]   start_height    The start height for the request
1043
     * @param[in]   stop_hash       The stop_hash for the request
1044
     * @param[in]   max_height_diff The maximum number of items permitted to request, as specified in BIP 157
1045
     * @param[out]  stop_index      The CBlockIndex for the stop_hash block, if the request can be serviced.
1046
     * @param[out]  filter_index    The filter index, if the request can be serviced.
1047
     * @return                      True if the request can be serviced.
1048
     */
1049
    bool PrepareBlockFilterRequest(CNode& node, Peer& peer,
1050
                                   BlockFilterType filter_type, uint32_t start_height,
1051
                                   const uint256& stop_hash, uint32_t max_height_diff,
1052
                                   const CBlockIndex*& stop_index,
1053
                                   BlockFilterIndex*& filter_index);
1054
1055
    /**
1056
     * Handle a cfilters request.
1057
     *
1058
     * May disconnect from the peer in the case of a bad request.
1059
     *
1060
     * @param[in]   node            The node that we received the request from
1061
     * @param[in]   peer            The peer that we received the request from
1062
     * @param[in]   vRecv           The raw message received
1063
     */
1064
    void ProcessGetCFilters(CNode& node, Peer& peer, DataStream& vRecv);
1065
1066
    /**
1067
     * Handle a cfheaders request.
1068
     *
1069
     * May disconnect from the peer in the case of a bad request.
1070
     *
1071
     * @param[in]   node            The node that we received the request from
1072
     * @param[in]   peer            The peer that we received the request from
1073
     * @param[in]   vRecv           The raw message received
1074
     */
1075
    void ProcessGetCFHeaders(CNode& node, Peer& peer, DataStream& vRecv);
1076
1077
    /**
1078
     * Handle a getcfcheckpt request.
1079
     *
1080
     * May disconnect from the peer in the case of a bad request.
1081
     *
1082
     * @param[in]   node            The node that we received the request from
1083
     * @param[in]   peer            The peer that we received the request from
1084
     * @param[in]   vRecv           The raw message received
1085
     */
1086
    void ProcessGetCFCheckPt(CNode& node, Peer& peer, DataStream& vRecv);
1087
1088
    void ProcessPong(CNode& pfrom, Peer& peer, NodeClock::time_point ping_end, DataStream& vRecv);
1089
1090
    /** Checks if address relay is permitted with peer. If needed, initializes
1091
     * the m_addr_known bloom filter and sets m_addr_relay_enabled to true.
1092
     *
1093
     *  @return   True if address relay is enabled with peer
1094
     *            False if address relay is disallowed
1095
     */
1096
    bool SetupAddressRelay(const CNode& node, Peer& peer) EXCLUSIVE_LOCKS_REQUIRED(g_msgproc_mutex);
1097
1098
    void ProcessAddrs(std::string_view msg_type, CNode& pfrom, Peer& peer, std::vector<CAddress>&& vAddr, const std::atomic<bool>& interruptMsgProc)
1099
        EXCLUSIVE_LOCKS_REQUIRED(g_msgproc_mutex, !m_peer_mutex);
1100
1101
    void AddAddressKnown(Peer& peer, const CAddress& addr) EXCLUSIVE_LOCKS_REQUIRED(g_msgproc_mutex);
1102
    void PushAddress(Peer& peer, const CAddress& addr) EXCLUSIVE_LOCKS_REQUIRED(g_msgproc_mutex);
1103
1104
    void LogBlockHeader(const CBlockIndex& index, const CNode& peer, bool via_compact_block);
1105
1106
    /// The transactions to be broadcast privately.
1107
    PrivateBroadcast m_tx_for_private_broadcast;
1108
};
1109
1110
const CNodeState* PeerManagerImpl::State(NodeId pnode) const
1111
0
{
1112
0
    std::map<NodeId, CNodeState>::const_iterator it = m_node_states.find(pnode);
1113
0
    if (it == m_node_states.end())
  Branch (1113:9): [True: 0, False: 0]
1114
0
        return nullptr;
1115
0
    return &it->second;
1116
0
}
1117
1118
CNodeState* PeerManagerImpl::State(NodeId pnode)
1119
0
{
1120
0
    return const_cast<CNodeState*>(std::as_const(*this).State(pnode));
1121
0
}
1122
1123
/**
1124
 * Whether the peer supports the address. For example, a peer that does not
1125
 * implement BIP155 cannot receive Tor v3 addresses because it requires
1126
 * ADDRv2 (BIP155) encoding.
1127
 */
1128
static bool IsAddrCompatible(const Peer& peer, const CAddress& addr)
1129
0
{
1130
0
    return peer.m_wants_addrv2 || addr.IsAddrV1Compatible();
  Branch (1130:12): [True: 0, False: 0]
  Branch (1130:35): [True: 0, False: 0]
1131
0
}
1132
1133
void PeerManagerImpl::AddAddressKnown(Peer& peer, const CAddress& addr)
1134
0
{
1135
0
    assert(peer.m_addr_known);
  Branch (1135:5): [True: 0, False: 0]
1136
0
    peer.m_addr_known->insert(addr.GetKey());
1137
0
}
1138
1139
void PeerManagerImpl::PushAddress(Peer& peer, const CAddress& addr)
1140
0
{
1141
    // Known checking here is only to save space from duplicates.
1142
    // Before sending, we'll filter it again for known addresses that were
1143
    // added after addresses were pushed.
1144
0
    assert(peer.m_addr_known);
  Branch (1144:5): [True: 0, False: 0]
1145
0
    if (addr.IsValid() && !peer.m_addr_known->contains(addr.GetKey()) && IsAddrCompatible(peer, addr)) {
  Branch (1145:9): [True: 0, False: 0]
  Branch (1145:9): [True: 0, False: 0]
  Branch (1145:27): [True: 0, False: 0]
  Branch (1145:74): [True: 0, False: 0]
1146
0
        if (peer.m_addrs_to_send.size() >= MAX_ADDR_TO_SEND) {
  Branch (1146:13): [True: 0, False: 0]
1147
0
            peer.m_addrs_to_send[m_rng.randrange(peer.m_addrs_to_send.size())] = addr;
1148
0
        } else {
1149
0
            peer.m_addrs_to_send.push_back(addr);
1150
0
        }
1151
0
    }
1152
0
}
1153
1154
static void AddKnownTx(Peer& peer, const uint256& hash)
1155
0
{
1156
0
    auto tx_relay = peer.GetTxRelay();
1157
0
    if (!tx_relay) return;
  Branch (1157:9): [True: 0, False: 0]
1158
1159
0
    LOCK(tx_relay->m_tx_inventory_mutex);
1160
0
    tx_relay->m_tx_inventory_known_filter.insert(hash);
1161
0
}
1162
1163
/** Whether this peer can serve us blocks. */
1164
static bool CanServeBlocks(const Peer& peer)
1165
0
{
1166
0
    return peer.m_their_services & (NODE_NETWORK|NODE_NETWORK_LIMITED);
1167
0
}
1168
1169
/** Whether this peer can only serve limited recent blocks (e.g. because
1170
 *  it prunes old blocks) */
1171
static bool IsLimitedPeer(const Peer& peer)
1172
0
{
1173
0
    return (!(peer.m_their_services & NODE_NETWORK) &&
  Branch (1173:13): [True: 0, False: 0]
1174
0
             (peer.m_their_services & NODE_NETWORK_LIMITED));
  Branch (1174:14): [True: 0, False: 0]
1175
0
}
1176
1177
/** Whether this peer can serve us witness data */
1178
static bool CanServeWitnesses(const Peer& peer)
1179
0
{
1180
0
    return peer.m_their_services & NODE_WITNESS;
1181
0
}
1182
1183
std::chrono::microseconds PeerManagerImpl::NextInvToInbounds(std::chrono::microseconds now,
1184
                                                             std::chrono::seconds average_interval,
1185
                                                             uint64_t network_key)
1186
0
{
1187
0
    auto [it, inserted] = m_next_inv_to_inbounds_per_network_key.try_emplace(network_key, 0us);
1188
0
    auto& timer{it->second};
1189
0
    if (timer < now) {
  Branch (1189:9): [True: 0, False: 0]
1190
0
        timer = now + m_rng.rand_exp_duration(average_interval);
1191
0
    }
1192
0
    return timer;
1193
0
}
1194
1195
bool PeerManagerImpl::IsBlockRequested(const uint256& hash)
1196
0
{
1197
0
    return mapBlocksInFlight.contains(hash);
1198
0
}
1199
1200
bool PeerManagerImpl::IsBlockRequestedFromOutbound(const uint256& hash)
1201
0
{
1202
0
    for (auto range = mapBlocksInFlight.equal_range(hash); range.first != range.second; range.first++) {
  Branch (1202:60): [True: 0, False: 0]
1203
0
        auto [nodeid, block_it] = range.first->second;
1204
0
        PeerRef peer{GetPeerRef(nodeid)};
1205
0
        if (peer && !peer->m_is_inbound) return true;
  Branch (1205:13): [True: 0, False: 0]
  Branch (1205:21): [True: 0, False: 0]
1206
0
    }
1207
1208
0
    return false;
1209
0
}
1210
1211
void PeerManagerImpl::RemoveBlockRequest(const uint256& hash, std::optional<NodeId> from_peer)
1212
0
{
1213
0
    auto range = mapBlocksInFlight.equal_range(hash);
1214
0
    if (range.first == range.second) {
  Branch (1214:9): [True: 0, False: 0]
1215
        // Block was not requested from any peer
1216
0
        return;
1217
0
    }
1218
1219
    // We should not have requested too many of this block
1220
0
    Assume(mapBlocksInFlight.count(hash) <= MAX_CMPCTBLOCKS_INFLIGHT_PER_BLOCK);
1221
1222
0
    while (range.first != range.second) {
  Branch (1222:12): [True: 0, False: 0]
1223
0
        const auto& [node_id, list_it]{range.first->second};
1224
1225
0
        if (from_peer && *from_peer != node_id) {
  Branch (1225:13): [True: 0, False: 0]
  Branch (1225:26): [True: 0, False: 0]
1226
0
            range.first++;
1227
0
            continue;
1228
0
        }
1229
1230
0
        CNodeState& state = *Assert(State(node_id));
1231
1232
0
        if (state.vBlocksInFlight.begin() == list_it) {
  Branch (1232:13): [True: 0, False: 0]
1233
            // First block on the queue was received, update the start download time for the next one
1234
0
            state.m_downloading_since = std::max(state.m_downloading_since, GetTime<std::chrono::microseconds>());
1235
0
        }
1236
0
        state.vBlocksInFlight.erase(list_it);
1237
1238
0
        if (state.vBlocksInFlight.empty()) {
  Branch (1238:13): [True: 0, False: 0]
1239
            // Last validated block on the queue for this peer was received.
1240
0
            m_peers_downloading_from--;
1241
0
        }
1242
0
        state.m_stalling_since = 0us;
1243
1244
0
        range.first = mapBlocksInFlight.erase(range.first);
1245
0
    }
1246
0
}
1247
1248
bool PeerManagerImpl::BlockRequested(NodeId nodeid, const CBlockIndex& block, std::list<QueuedBlock>::iterator** pit)
1249
0
{
1250
0
    const uint256& hash{block.GetBlockHash()};
1251
1252
0
    CNodeState *state = State(nodeid);
1253
0
    assert(state != nullptr);
  Branch (1253:5): [True: 0, False: 0]
1254
1255
0
    Assume(mapBlocksInFlight.count(hash) <= MAX_CMPCTBLOCKS_INFLIGHT_PER_BLOCK);
1256
1257
    // Short-circuit most stuff in case it is from the same node
1258
0
    for (auto range = mapBlocksInFlight.equal_range(hash); range.first != range.second; range.first++) {
  Branch (1258:60): [True: 0, False: 0]
1259
0
        if (range.first->second.first == nodeid) {
  Branch (1259:13): [True: 0, False: 0]
1260
0
            if (pit) {
  Branch (1260:17): [True: 0, False: 0]
1261
0
                *pit = &range.first->second.second;
1262
0
            }
1263
0
            return false;
1264
0
        }
1265
0
    }
1266
1267
    // Make sure it's not being fetched already from same peer.
1268
0
    RemoveBlockRequest(hash, nodeid);
1269
1270
0
    std::list<QueuedBlock>::iterator it = state->vBlocksInFlight.insert(state->vBlocksInFlight.end(),
1271
0
            {&block, std::unique_ptr<PartiallyDownloadedBlock>(pit ? new PartiallyDownloadedBlock(&m_mempool) : nullptr)});
  Branch (1271:64): [True: 0, False: 0]
1272
0
    if (state->vBlocksInFlight.size() == 1) {
  Branch (1272:9): [True: 0, False: 0]
1273
        // We're starting a block download (batch) from this peer.
1274
0
        state->m_downloading_since = GetTime<std::chrono::microseconds>();
1275
0
        m_peers_downloading_from++;
1276
0
    }
1277
0
    auto itInFlight = mapBlocksInFlight.insert(std::make_pair(hash, std::make_pair(nodeid, it)));
1278
0
    if (pit) {
  Branch (1278:9): [True: 0, False: 0]
1279
0
        *pit = &itInFlight->second.second;
1280
0
    }
1281
0
    return true;
1282
0
}
1283
1284
void PeerManagerImpl::MaybeSetPeerAsAnnouncingHeaderAndIDs(NodeId nodeid)
1285
0
{
1286
0
    AssertLockHeld(cs_main);
1287
1288
    // When in -blocksonly mode, never request high-bandwidth mode from peers. Our
1289
    // mempool will not contain the transactions necessary to reconstruct the
1290
    // compact block.
1291
0
    if (m_opts.ignore_incoming_txs) return;
  Branch (1291:9): [True: 0, False: 0]
1292
1293
0
    CNodeState* nodestate = State(nodeid);
1294
0
    PeerRef peer{GetPeerRef(nodeid)};
1295
0
    if (!nodestate || !nodestate->m_provides_cmpctblocks) {
  Branch (1295:9): [True: 0, False: 0]
  Branch (1295:23): [True: 0, False: 0]
1296
        // Don't request compact blocks if the peer has not signalled support
1297
0
        return;
1298
0
    }
1299
1300
0
    int num_outbound_hb_peers = 0;
1301
0
    for (std::list<NodeId>::iterator it = lNodesAnnouncingHeaderAndIDs.begin(); it != lNodesAnnouncingHeaderAndIDs.end(); it++) {
  Branch (1301:81): [True: 0, False: 0]
1302
0
        if (*it == nodeid) {
  Branch (1302:13): [True: 0, False: 0]
1303
0
            lNodesAnnouncingHeaderAndIDs.erase(it);
1304
0
            lNodesAnnouncingHeaderAndIDs.push_back(nodeid);
1305
0
            return;
1306
0
        }
1307
0
        PeerRef peer_ref{GetPeerRef(*it)};
1308
0
        if (peer_ref && !peer_ref->m_is_inbound) ++num_outbound_hb_peers;
  Branch (1308:13): [True: 0, False: 0]
  Branch (1308:25): [True: 0, False: 0]
1309
0
    }
1310
0
    if (peer && peer->m_is_inbound) {
  Branch (1310:9): [True: 0, False: 0]
  Branch (1310:17): [True: 0, False: 0]
1311
        // If we're adding an inbound HB peer, make sure we're not removing
1312
        // our last outbound HB peer in the process.
1313
0
        if (lNodesAnnouncingHeaderAndIDs.size() >= 3 && num_outbound_hb_peers == 1) {
  Branch (1313:13): [True: 0, False: 0]
  Branch (1313:57): [True: 0, False: 0]
1314
0
            PeerRef remove_peer{GetPeerRef(lNodesAnnouncingHeaderAndIDs.front())};
1315
0
            if (remove_peer && !remove_peer->m_is_inbound) {
  Branch (1315:17): [True: 0, False: 0]
  Branch (1315:32): [True: 0, False: 0]
1316
                // Put the HB outbound peer in the second slot, so that it
1317
                // doesn't get removed.
1318
0
                std::swap(lNodesAnnouncingHeaderAndIDs.front(), *std::next(lNodesAnnouncingHeaderAndIDs.begin()));
1319
0
            }
1320
0
        }
1321
0
    }
1322
0
    const bool nodeid_was_appended{m_connman.ForNode(nodeid, [this](CNode* pfrom) EXCLUSIVE_LOCKS_REQUIRED(::cs_main) {
1323
0
        AssertLockHeld(::cs_main);
1324
0
        MakeAndPushMessage(*pfrom, NetMsgType::SENDCMPCT, /*high_bandwidth=*/true, /*version=*/CMPCTBLOCKS_VERSION);
1325
        // save BIP152 bandwidth state: we select peer to be high-bandwidth
1326
0
        pfrom->m_bip152_highbandwidth_to = true;
1327
0
        lNodesAnnouncingHeaderAndIDs.push_back(pfrom->GetId());
1328
0
        return true;
1329
0
    })};
1330
0
    if (nodeid_was_appended && lNodesAnnouncingHeaderAndIDs.size() > 3) {
  Branch (1330:9): [True: 0, False: 0]
  Branch (1330:32): [True: 0, False: 0]
1331
        // As per BIP152, we only get 3 of our peers to announce
1332
        // blocks using compact encodings.
1333
0
        m_connman.ForNode(lNodesAnnouncingHeaderAndIDs.front(), [this](CNode* pnodeStop) {
1334
0
            MakeAndPushMessage(*pnodeStop, NetMsgType::SENDCMPCT, /*high_bandwidth=*/false, /*version=*/CMPCTBLOCKS_VERSION);
1335
            // save BIP152 bandwidth state: we select peer to be low-bandwidth
1336
0
            pnodeStop->m_bip152_highbandwidth_to = false;
1337
0
            return true;
1338
0
        });
1339
0
        lNodesAnnouncingHeaderAndIDs.pop_front();
1340
0
    }
1341
0
}
1342
1343
bool PeerManagerImpl::TipMayBeStale()
1344
0
{
1345
0
    AssertLockHeld(cs_main);
1346
0
    const Consensus::Params& consensusParams = m_chainparams.GetConsensus();
1347
0
    if (m_last_tip_update.load() == 0s) {
  Branch (1347:9): [True: 0, False: 0]
1348
0
        m_last_tip_update = GetTime<std::chrono::seconds>();
1349
0
    }
1350
0
    return m_last_tip_update.load() < GetTime<std::chrono::seconds>() - std::chrono::seconds{consensusParams.nPowTargetSpacing * 3} && mapBlocksInFlight.empty();
  Branch (1350:12): [True: 0, False: 0]
  Branch (1350:136): [True: 0, False: 0]
1351
0
}
1352
1353
int64_t PeerManagerImpl::ApproximateBestBlockDepth() const
1354
0
{
1355
0
    return (GetTime<std::chrono::seconds>() - m_best_block_time.load()).count() / m_chainparams.GetConsensus().nPowTargetSpacing;
1356
0
}
1357
1358
bool PeerManagerImpl::CanDirectFetch()
1359
0
{
1360
0
    return m_chainman.ActiveChain().Tip()->Time() > NodeClock::now() - m_chainparams.GetConsensus().PowTargetSpacing() * 20;
1361
0
}
1362
1363
static bool PeerHasHeader(CNodeState *state, const CBlockIndex *pindex) EXCLUSIVE_LOCKS_REQUIRED(cs_main)
1364
0
{
1365
0
    if (state->pindexBestKnownBlock && pindex == state->pindexBestKnownBlock->GetAncestor(pindex->nHeight))
  Branch (1365:9): [True: 0, False: 0]
  Branch (1365:40): [True: 0, False: 0]
1366
0
        return true;
1367
0
    if (state->pindexBestHeaderSent && pindex == state->pindexBestHeaderSent->GetAncestor(pindex->nHeight))
  Branch (1367:9): [True: 0, False: 0]
  Branch (1367:40): [True: 0, False: 0]
1368
0
        return true;
1369
0
    return false;
1370
0
}
1371
1372
0
void PeerManagerImpl::ProcessBlockAvailability(NodeId nodeid) {
1373
0
    CNodeState *state = State(nodeid);
1374
0
    assert(state != nullptr);
  Branch (1374:5): [True: 0, False: 0]
1375
1376
0
    if (!state->hashLastUnknownBlock.IsNull()) {
  Branch (1376:9): [True: 0, False: 0]
1377
0
        const CBlockIndex* pindex = m_chainman.m_blockman.LookupBlockIndex(state->hashLastUnknownBlock);
1378
0
        if (pindex && pindex->nChainWork > 0) {
  Branch (1378:13): [True: 0, False: 0]
  Branch (1378:13): [True: 0, False: 0]
  Branch (1378:23): [True: 0, False: 0]
1379
0
            if (state->pindexBestKnownBlock == nullptr || pindex->nChainWork >= state->pindexBestKnownBlock->nChainWork) {
  Branch (1379:17): [True: 0, False: 0]
  Branch (1379:59): [True: 0, False: 0]
1380
0
                state->pindexBestKnownBlock = pindex;
1381
0
            }
1382
0
            state->hashLastUnknownBlock.SetNull();
1383
0
        }
1384
0
    }
1385
0
}
1386
1387
0
void PeerManagerImpl::UpdateBlockAvailability(NodeId nodeid, const uint256 &hash) {
1388
0
    CNodeState *state = State(nodeid);
1389
0
    assert(state != nullptr);
  Branch (1389:5): [True: 0, False: 0]
1390
1391
0
    ProcessBlockAvailability(nodeid);
1392
1393
0
    const CBlockIndex* pindex = m_chainman.m_blockman.LookupBlockIndex(hash);
1394
0
    if (pindex && pindex->nChainWork > 0) {
  Branch (1394:9): [True: 0, False: 0]
  Branch (1394:9): [True: 0, False: 0]
  Branch (1394:19): [True: 0, False: 0]
1395
        // An actually better block was announced.
1396
0
        if (state->pindexBestKnownBlock == nullptr || pindex->nChainWork >= state->pindexBestKnownBlock->nChainWork) {
  Branch (1396:13): [True: 0, False: 0]
  Branch (1396:55): [True: 0, False: 0]
1397
0
            state->pindexBestKnownBlock = pindex;
1398
0
        }
1399
0
    } else {
1400
        // An unknown block was announced; just assume that the latest one is the best one.
1401
0
        state->hashLastUnknownBlock = hash;
1402
0
    }
1403
0
}
1404
1405
// Logic for calculating which blocks to download from a given peer, given our current tip.
1406
void PeerManagerImpl::FindNextBlocksToDownload(const Peer& peer, unsigned int count, std::vector<const CBlockIndex*>& vBlocks, NodeId& nodeStaller)
1407
0
{
1408
0
    if (count == 0)
  Branch (1408:9): [True: 0, False: 0]
1409
0
        return;
1410
1411
0
    vBlocks.reserve(vBlocks.size() + count);
1412
0
    CNodeState *state = State(peer.m_id);
1413
0
    assert(state != nullptr);
  Branch (1413:5): [True: 0, False: 0]
1414
1415
    // Make sure pindexBestKnownBlock is up to date, we'll need it.
1416
0
    ProcessBlockAvailability(peer.m_id);
1417
1418
0
    if (state->pindexBestKnownBlock == nullptr || state->pindexBestKnownBlock->nChainWork < m_chainman.ActiveChain().Tip()->nChainWork || state->pindexBestKnownBlock->nChainWork < m_chainman.MinimumChainWork()) {
  Branch (1418:9): [True: 0, False: 0]
  Branch (1418:51): [True: 0, False: 0]
  Branch (1418:139): [True: 0, False: 0]
1419
        // This peer has nothing interesting.
1420
0
        return;
1421
0
    }
1422
1423
    // When syncing with AssumeUtxo and the snapshot has not yet been validated,
1424
    // abort downloading blocks from peers that don't have the snapshot block in their best chain.
1425
    // We can't reorg to this chain due to missing undo data until validation completes,
1426
    // so downloading blocks from it would be futile.
1427
0
    const CBlockIndex* snap_base{m_chainman.CurrentChainstate().SnapshotBase()};
1428
0
    if (snap_base && m_chainman.CurrentChainstate().m_assumeutxo == Assumeutxo::UNVALIDATED &&
  Branch (1428:9): [True: 0, False: 0]
  Branch (1428:22): [True: 0, False: 0]
1429
0
        state->pindexBestKnownBlock->GetAncestor(snap_base->nHeight) != snap_base) {
  Branch (1429:9): [True: 0, False: 0]
1430
0
        LogDebug(BCLog::NET, "Not downloading blocks from peer=%d, which doesn't have the snapshot block in its best chain.\n", peer.m_id);
1431
0
        return;
1432
0
    }
1433
1434
    // Determine the forking point between the peer's chain and our chain:
1435
    // pindexLastCommonBlock is required to be an ancestor of pindexBestKnownBlock, and will be used as a starting point.
1436
    // It is being set to the fork point between the peer's best known block and the current tip, unless it is already set to
1437
    // an ancestor with more work than the fork point.
1438
0
    auto fork_point = LastCommonAncestor(state->pindexBestKnownBlock, m_chainman.ActiveTip());
1439
0
    if (state->pindexLastCommonBlock == nullptr ||
  Branch (1439:9): [True: 0, False: 0]
1440
0
        fork_point->nChainWork > state->pindexLastCommonBlock->nChainWork ||
  Branch (1440:9): [True: 0, False: 0]
1441
0
        state->pindexBestKnownBlock->GetAncestor(state->pindexLastCommonBlock->nHeight) != state->pindexLastCommonBlock) {
  Branch (1441:9): [True: 0, False: 0]
1442
0
        state->pindexLastCommonBlock = fork_point;
1443
0
    }
1444
0
    if (state->pindexLastCommonBlock == state->pindexBestKnownBlock)
  Branch (1444:9): [True: 0, False: 0]
1445
0
        return;
1446
1447
0
    const CBlockIndex *pindexWalk = state->pindexLastCommonBlock;
1448
    // Never fetch further than the best block we know the peer has, or more than BLOCK_DOWNLOAD_WINDOW + 1 beyond the last
1449
    // linked block we have in common with this peer. The +1 is so we can detect stalling, namely if we would be able to
1450
    // download that next block if the window were 1 larger.
1451
0
    int nWindowEnd = state->pindexLastCommonBlock->nHeight + BLOCK_DOWNLOAD_WINDOW;
1452
1453
0
    FindNextBlocks(vBlocks, peer, state, pindexWalk, count, nWindowEnd, &m_chainman.ActiveChain(), &nodeStaller);
1454
0
}
1455
1456
void PeerManagerImpl::TryDownloadingHistoricalBlocks(const Peer& peer, unsigned int count, std::vector<const CBlockIndex*>& vBlocks, const CBlockIndex *from_tip, const CBlockIndex* target_block)
1457
0
{
1458
0
    Assert(from_tip);
1459
0
    Assert(target_block);
1460
1461
0
    if (vBlocks.size() >= count) {
  Branch (1461:9): [True: 0, False: 0]
1462
0
        return;
1463
0
    }
1464
1465
0
    vBlocks.reserve(count);
1466
0
    CNodeState *state = Assert(State(peer.m_id));
1467
1468
0
    if (state->pindexBestKnownBlock == nullptr || state->pindexBestKnownBlock->GetAncestor(target_block->nHeight) != target_block) {
  Branch (1468:9): [True: 0, False: 0]
  Branch (1468:51): [True: 0, False: 0]
1469
        // This peer can't provide us the complete series of blocks leading up to the
1470
        // assumeutxo snapshot base.
1471
        //
1472
        // Presumably this peer's chain has less work than our ActiveChain()'s tip, or else we
1473
        // will eventually crash when we try to reorg to it. Let other logic
1474
        // deal with whether we disconnect this peer.
1475
        //
1476
        // TODO at some point in the future, we might choose to request what blocks
1477
        // this peer does have from the historical chain, despite it not having a
1478
        // complete history beneath the snapshot base.
1479
0
        return;
1480
0
    }
1481
1482
0
    FindNextBlocks(vBlocks, peer, state, from_tip, count, std::min<int>(from_tip->nHeight + BLOCK_DOWNLOAD_WINDOW, target_block->nHeight));
1483
0
}
1484
1485
void PeerManagerImpl::FindNextBlocks(std::vector<const CBlockIndex*>& vBlocks, const Peer& peer, CNodeState *state, const CBlockIndex *pindexWalk, unsigned int count, int nWindowEnd, const CChain* activeChain, NodeId* nodeStaller)
1486
0
{
1487
0
    std::vector<const CBlockIndex*> vToFetch;
1488
0
    int nMaxHeight = std::min<int>(state->pindexBestKnownBlock->nHeight, nWindowEnd + 1);
1489
0
    bool is_limited_peer = IsLimitedPeer(peer);
1490
0
    NodeId waitingfor = -1;
1491
0
    while (pindexWalk->nHeight < nMaxHeight) {
  Branch (1491:12): [True: 0, False: 0]
1492
        // Read up to 128 (or more, if more blocks than that are needed) successors of pindexWalk (towards
1493
        // pindexBestKnownBlock) into vToFetch. We fetch 128, because CBlockIndex::GetAncestor may be as expensive
1494
        // as iterating over ~100 CBlockIndex* entries anyway.
1495
0
        int nToFetch = std::min(nMaxHeight - pindexWalk->nHeight, std::max<int>(count - vBlocks.size(), 128));
1496
0
        vToFetch.resize(nToFetch);
1497
0
        pindexWalk = state->pindexBestKnownBlock->GetAncestor(pindexWalk->nHeight + nToFetch);
1498
0
        vToFetch[nToFetch - 1] = pindexWalk;
1499
0
        for (unsigned int i = nToFetch - 1; i > 0; i--) {
  Branch (1499:45): [True: 0, False: 0]
1500
0
            vToFetch[i - 1] = vToFetch[i]->pprev;
1501
0
        }
1502
1503
        // Iterate over those blocks in vToFetch (in forward direction), adding the ones that
1504
        // are not yet downloaded and not in flight to vBlocks. In the meantime, update
1505
        // pindexLastCommonBlock as long as all ancestors are already downloaded, or if it's
1506
        // already part of our chain (and therefore don't need it even if pruned).
1507
0
        for (const CBlockIndex* pindex : vToFetch) {
  Branch (1507:40): [True: 0, False: 0]
1508
0
            if (!pindex->IsValid(BLOCK_VALID_TREE)) {
  Branch (1508:17): [True: 0, False: 0]
1509
                // We consider the chain that this peer is on invalid.
1510
0
                return;
1511
0
            }
1512
1513
0
            if (!CanServeWitnesses(peer) && DeploymentActiveAt(*pindex, m_chainman, Consensus::DEPLOYMENT_SEGWIT)) {
  Branch (1513:17): [True: 0, False: 0]
  Branch (1513:45): [True: 0, False: 0]
1514
                // We wouldn't download this block or its descendants from this peer.
1515
0
                return;
1516
0
            }
1517
1518
0
            if (pindex->nStatus & BLOCK_HAVE_DATA || (activeChain && activeChain->Contains(*pindex))) {
  Branch (1518:17): [True: 0, False: 0]
  Branch (1518:55): [True: 0, False: 0]
  Branch (1518:70): [True: 0, False: 0]
1519
0
                if (activeChain && pindex->HaveNumChainTxs()) {
  Branch (1519:21): [True: 0, False: 0]
  Branch (1519:36): [True: 0, False: 0]
1520
0
                    state->pindexLastCommonBlock = pindex;
1521
0
                }
1522
0
                continue;
1523
0
            }
1524
1525
            // Is block in-flight?
1526
0
            if (IsBlockRequested(pindex->GetBlockHash())) {
  Branch (1526:17): [True: 0, False: 0]
1527
0
                if (waitingfor == -1) {
  Branch (1527:21): [True: 0, False: 0]
1528
                    // This is the first already-in-flight block.
1529
0
                    waitingfor = mapBlocksInFlight.lower_bound(pindex->GetBlockHash())->second.first;
1530
0
                }
1531
0
                continue;
1532
0
            }
1533
1534
            // The block is not already downloaded, and not yet in flight.
1535
0
            if (pindex->nHeight > nWindowEnd) {
  Branch (1535:17): [True: 0, False: 0]
1536
                // We reached the end of the window.
1537
0
                if (vBlocks.size() == 0 && waitingfor != peer.m_id) {
  Branch (1537:21): [True: 0, False: 0]
  Branch (1537:44): [True: 0, False: 0]
1538
                    // We aren't able to fetch anything, but we would be if the download window was one larger.
1539
0
                    if (nodeStaller) *nodeStaller = waitingfor;
  Branch (1539:25): [True: 0, False: 0]
1540
0
                }
1541
0
                return;
1542
0
            }
1543
1544
            // Don't request blocks that go further than what limited peers can provide
1545
0
            if (is_limited_peer && (state->pindexBestKnownBlock->nHeight - pindex->nHeight >= static_cast<int>(NODE_NETWORK_LIMITED_MIN_BLOCKS) - 2 /* two blocks buffer for possible races */)) {
  Branch (1545:17): [True: 0, False: 0]
  Branch (1545:36): [True: 0, False: 0]
1546
0
                continue;
1547
0
            }
1548
1549
0
            vBlocks.push_back(pindex);
1550
0
            if (vBlocks.size() == count) {
  Branch (1550:17): [True: 0, False: 0]
1551
0
                return;
1552
0
            }
1553
0
        }
1554
0
    }
1555
0
}
1556
1557
} // namespace
1558
1559
void PeerManagerImpl::PushNodeVersion(CNode& pnode, const Peer& peer)
1560
0
{
1561
0
    uint64_t my_services;
1562
0
    int64_t my_time;
1563
0
    uint64_t your_services;
1564
0
    CService your_addr;
1565
0
    std::string my_user_agent;
1566
0
    int my_height;
1567
0
    bool my_tx_relay;
1568
0
    if (pnode.IsPrivateBroadcastConn()) {
  Branch (1568:9): [True: 0, False: 0]
1569
0
        my_services = NODE_NONE;
1570
0
        my_time = 0;
1571
0
        your_services = NODE_NONE;
1572
0
        your_addr = CService{};
1573
0
        my_user_agent = "/pynode:0.0.1/"; // Use a constant other than the default (or user-configured). See https://github.com/bitcoin/bitcoin/pull/27509#discussion_r1214671917
1574
0
        my_height = 0;
1575
0
        my_tx_relay = false;
1576
0
    } else {
1577
0
        const CAddress& addr{pnode.addr};
1578
0
        my_services = peer.m_our_services;
1579
0
        my_time = TicksSinceEpoch<std::chrono::seconds>(NodeClock::now());
1580
0
        your_services = addr.nServices;
1581
0
        your_addr = addr.IsRoutable() && !IsProxy(addr) && addr.IsAddrV1Compatible() ? CService{addr} : CService{};
  Branch (1581:21): [True: 0, False: 0]
  Branch (1581:42): [True: 0, False: 0]
  Branch (1581:60): [True: 0, False: 0]
1582
0
        my_user_agent = strSubVersion;
1583
0
        my_height = m_best_height;
1584
0
        my_tx_relay = !RejectIncomingTxs(pnode);
1585
0
    }
1586
1587
0
    MakeAndPushMessage(
1588
0
        pnode,
1589
0
        NetMsgType::VERSION,
1590
0
        pnode.AdvertisedVersion(),
1591
0
        my_services,
1592
0
        my_time,
1593
        // your_services + CNetAddr::V1(your_addr) is the pre-version-31402 serialization of your_addr (without nTime)
1594
0
        your_services, CNetAddr::V1(your_addr),
1595
        // same, for a dummy address
1596
0
        my_services, CNetAddr::V1(CService{}),
1597
0
        pnode.GetLocalNonce(),
1598
0
        my_user_agent,
1599
0
        my_height,
1600
0
        my_tx_relay);
1601
1602
0
    LogDebug(
1603
0
        BCLog::NET, "send version message: version=%d, blocks=%d%s, txrelay=%d, peer=%d\n",
1604
0
        pnode.AdvertisedVersion(), my_height,
1605
0
        fLogIPs ? strprintf(", them=%s", your_addr.ToStringAddrPort()) : "",
1606
0
        my_tx_relay, pnode.GetId());
1607
0
}
1608
1609
void PeerManagerImpl::UpdateLastBlockAnnounceTime(NodeId node, int64_t time_in_seconds)
1610
0
{
1611
0
    LOCK(cs_main);
1612
0
    CNodeState *state = State(node);
1613
0
    if (state) state->m_last_block_announcement = time_in_seconds;
  Branch (1613:9): [True: 0, False: 0]
1614
0
}
1615
1616
void PeerManagerImpl::InitializeNode(const CNode& node, ServiceFlags our_services)
1617
0
{
1618
0
    NodeId nodeid = node.GetId();
1619
0
    {
1620
0
        LOCK(cs_main); // For m_node_states
1621
0
        m_node_states.try_emplace(m_node_states.end(), nodeid);
1622
0
    }
1623
0
    WITH_LOCK(m_tx_download_mutex, m_txdownloadman.CheckIsEmpty(nodeid));
1624
1625
0
    if (NetPermissions::HasFlag(node.m_permission_flags, NetPermissionFlags::BloomFilter)) {
  Branch (1625:9): [True: 0, False: 0]
1626
0
        our_services = static_cast<ServiceFlags>(our_services | NODE_BLOOM);
1627
0
    }
1628
1629
0
    PeerRef peer = std::make_shared<Peer>(nodeid, our_services, node.IsInboundConn());
1630
0
    {
1631
0
        LOCK(m_peer_mutex);
1632
0
        m_peer_map.emplace_hint(m_peer_map.end(), nodeid, peer);
1633
0
    }
1634
0
}
1635
1636
void PeerManagerImpl::ReattemptInitialBroadcast(CScheduler& scheduler)
1637
0
{
1638
0
    std::set<Txid> unbroadcast_txids = m_mempool.GetUnbroadcastTxs();
1639
1640
0
    for (const auto& txid : unbroadcast_txids) {
  Branch (1640:27): [True: 0, False: 0]
1641
0
        CTransactionRef tx = m_mempool.get(txid);
1642
1643
0
        if (tx != nullptr) {
  Branch (1643:13): [True: 0, False: 0]
1644
0
            InitiateTxBroadcastToAll(txid, tx->GetWitnessHash());
1645
0
        } else {
1646
0
            m_mempool.RemoveUnbroadcastTx(txid, true);
1647
0
        }
1648
0
    }
1649
1650
    // Schedule next run for 10-15 minutes in the future.
1651
    // We add randomness on every cycle to avoid the possibility of P2P fingerprinting.
1652
0
    const auto delta = 10min + FastRandomContext().randrange<std::chrono::milliseconds>(5min);
1653
0
    scheduler.scheduleFromNow([&] { ReattemptInitialBroadcast(scheduler); }, delta);
1654
0
}
1655
1656
void PeerManagerImpl::ReattemptPrivateBroadcast(CScheduler& scheduler)
1657
0
{
1658
    // Remove stale transactions that are no longer relevant (e.g. already in
1659
    // the mempool or mined) and count the remaining ones.
1660
0
    size_t num_for_rebroadcast{0};
1661
0
    const auto stale_txs = m_tx_for_private_broadcast.GetStale();
1662
0
    if (!stale_txs.empty()) {
  Branch (1662:9): [True: 0, False: 0]
1663
0
        LOCK(cs_main);
1664
0
        for (const auto& stale_tx : stale_txs) {
  Branch (1664:35): [True: 0, False: 0]
1665
0
            auto mempool_acceptable = m_chainman.ProcessTransaction(stale_tx, /*test_accept=*/true);
1666
0
            if (mempool_acceptable.m_result_type == MempoolAcceptResult::ResultType::VALID) {
  Branch (1666:17): [True: 0, False: 0]
1667
0
                LogDebug(BCLog::PRIVBROADCAST,
1668
0
                         "Reattempting broadcast of stale txid=%s wtxid=%s",
1669
0
                         stale_tx->GetHash().ToString(), stale_tx->GetWitnessHash().ToString());
1670
0
                ++num_for_rebroadcast;
1671
0
            } else {
1672
0
                LogDebug(BCLog::PRIVBROADCAST, "Giving up broadcast attempts for txid=%s wtxid=%s: %s",
1673
0
                         stale_tx->GetHash().ToString(), stale_tx->GetWitnessHash().ToString(),
1674
0
                         mempool_acceptable.m_state.ToString());
1675
0
                m_tx_for_private_broadcast.Remove(stale_tx);
1676
0
            }
1677
0
        }
1678
1679
        // This could overshoot, but that is ok - we will open some private connections in vain.
1680
0
        m_connman.m_private_broadcast.NumToOpenAdd(num_for_rebroadcast);
1681
0
    }
1682
1683
0
    const auto delta{2min + FastRandomContext().randrange<std::chrono::milliseconds>(1min)};
1684
0
    scheduler.scheduleFromNow([&] { ReattemptPrivateBroadcast(scheduler); }, delta);
1685
0
}
1686
1687
void PeerManagerImpl::FinalizeNode(const CNode& node)
1688
0
{
1689
0
    NodeId nodeid = node.GetId();
1690
0
    {
1691
0
    LOCK(cs_main);
1692
0
    {
1693
        // We remove the PeerRef from g_peer_map here, but we don't always
1694
        // destruct the Peer. Sometimes another thread is still holding a
1695
        // PeerRef, so the refcount is >= 1. Be careful not to do any
1696
        // processing here that assumes Peer won't be changed before it's
1697
        // destructed.
1698
0
        PeerRef peer = RemovePeer(nodeid);
1699
0
        assert(peer != nullptr);
  Branch (1699:9): [True: 0, False: 0]
1700
0
        m_wtxid_relay_peers -= peer->m_wtxid_relay;
1701
0
        assert(m_wtxid_relay_peers >= 0);
  Branch (1701:9): [True: 0, False: 0]
1702
0
    }
1703
0
    CNodeState *state = State(nodeid);
1704
0
    assert(state != nullptr);
  Branch (1704:5): [True: 0, False: 0]
1705
1706
0
    if (state->fSyncStarted)
  Branch (1706:9): [True: 0, False: 0]
1707
0
        nSyncStarted--;
1708
1709
0
    for (const QueuedBlock& entry : state->vBlocksInFlight) {
  Branch (1709:35): [True: 0, False: 0]
1710
0
        auto range = mapBlocksInFlight.equal_range(entry.pindex->GetBlockHash());
1711
0
        while (range.first != range.second) {
  Branch (1711:16): [True: 0, False: 0]
1712
0
            auto [node_id, list_it] = range.first->second;
1713
0
            if (node_id != nodeid) {
  Branch (1713:17): [True: 0, False: 0]
1714
0
                range.first++;
1715
0
            } else {
1716
0
                range.first = mapBlocksInFlight.erase(range.first);
1717
0
            }
1718
0
        }
1719
0
    }
1720
0
    {
1721
0
        LOCK(m_tx_download_mutex);
1722
0
        m_txdownloadman.DisconnectedPeer(nodeid);
1723
0
    }
1724
0
    if (m_txreconciliation) m_txreconciliation->ForgetPeer(nodeid);
  Branch (1724:9): [True: 0, False: 0]
1725
0
    m_num_preferred_download_peers -= state->fPreferredDownload;
1726
0
    m_peers_downloading_from -= (!state->vBlocksInFlight.empty());
1727
0
    assert(m_peers_downloading_from >= 0);
  Branch (1727:5): [True: 0, False: 0]
1728
0
    m_outbound_peers_with_protect_from_disconnect -= state->m_chain_sync.m_protect;
1729
0
    assert(m_outbound_peers_with_protect_from_disconnect >= 0);
  Branch (1729:5): [True: 0, False: 0]
1730
1731
0
    m_node_states.erase(nodeid);
1732
1733
0
    if (m_node_states.empty()) {
  Branch (1733:9): [True: 0, False: 0]
1734
        // Do a consistency check after the last peer is removed.
1735
0
        assert(mapBlocksInFlight.empty());
  Branch (1735:9): [True: 0, False: 0]
1736
0
        assert(m_num_preferred_download_peers == 0);
  Branch (1736:9): [True: 0, False: 0]
1737
0
        assert(m_peers_downloading_from == 0);
  Branch (1737:9): [True: 0, False: 0]
1738
0
        assert(m_outbound_peers_with_protect_from_disconnect == 0);
  Branch (1738:9): [True: 0, False: 0]
1739
0
        assert(m_wtxid_relay_peers == 0);
  Branch (1739:9): [True: 0, False: 0]
1740
0
        WITH_LOCK(m_tx_download_mutex, m_txdownloadman.CheckIsEmpty());
1741
0
    }
1742
0
    } // cs_main
1743
0
    if (node.fSuccessfullyConnected &&
  Branch (1743:9): [True: 0, False: 0]
1744
0
        !node.IsBlockOnlyConn() && !node.IsPrivateBroadcastConn() && !node.IsInboundConn()) {
  Branch (1744:9): [True: 0, False: 0]
  Branch (1744:36): [True: 0, False: 0]
  Branch (1744:70): [True: 0, False: 0]
1745
        // Only change visible addrman state for full outbound peers.  We don't
1746
        // call Connected() for feeler connections since they don't have
1747
        // fSuccessfullyConnected set. Also don't call Connected() for private broadcast
1748
        // connections since they could leak information in addrman.
1749
0
        m_addrman.Connected(node.addr);
1750
0
    }
1751
0
    {
1752
0
        LOCK(m_headers_presync_mutex);
1753
0
        m_headers_presync_stats.erase(nodeid);
1754
0
    }
1755
0
    if (node.IsPrivateBroadcastConn() &&
  Branch (1755:9): [True: 0, False: 0]
1756
0
        !m_tx_for_private_broadcast.DidNodeConfirmReception(nodeid) &&
  Branch (1756:9): [True: 0, False: 0]
1757
0
        m_tx_for_private_broadcast.HavePendingTransactions()) {
  Branch (1757:9): [True: 0, False: 0]
1758
1759
0
        m_connman.m_private_broadcast.NumToOpenAdd(1);
1760
0
    }
1761
0
    LogDebug(BCLog::NET, "Cleared nodestate for peer=%d\n", nodeid);
1762
0
}
1763
1764
bool PeerManagerImpl::HasAllDesirableServiceFlags(ServiceFlags services) const
1765
0
{
1766
    // Shortcut for (services & GetDesirableServiceFlags(services)) == GetDesirableServiceFlags(services)
1767
0
    return !(GetDesirableServiceFlags(services) & (~services));
1768
0
}
1769
1770
ServiceFlags PeerManagerImpl::GetDesirableServiceFlags(ServiceFlags services) const
1771
0
{
1772
0
    if (services & NODE_NETWORK_LIMITED) {
  Branch (1772:9): [True: 0, False: 0]
1773
        // Limited peers are desirable when we are close to the tip.
1774
0
        if (ApproximateBestBlockDepth() < NODE_NETWORK_LIMITED_ALLOW_CONN_BLOCKS) {
  Branch (1774:13): [True: 0, False: 0]
1775
0
            return ServiceFlags(NODE_NETWORK_LIMITED | NODE_WITNESS);
1776
0
        }
1777
0
    }
1778
0
    return ServiceFlags(NODE_NETWORK | NODE_WITNESS);
1779
0
}
1780
1781
PeerRef PeerManagerImpl::GetPeerRef(NodeId id) const
1782
0
{
1783
0
    LOCK(m_peer_mutex);
1784
0
    auto it = m_peer_map.find(id);
1785
0
    return it != m_peer_map.end() ? it->second : nullptr;
  Branch (1785:12): [True: 0, False: 0]
1786
0
}
1787
1788
PeerRef PeerManagerImpl::RemovePeer(NodeId id)
1789
0
{
1790
0
    PeerRef ret;
1791
0
    LOCK(m_peer_mutex);
1792
0
    auto it = m_peer_map.find(id);
1793
0
    if (it != m_peer_map.end()) {
  Branch (1793:9): [True: 0, False: 0]
1794
0
        ret = std::move(it->second);
1795
0
        m_peer_map.erase(it);
1796
0
    }
1797
0
    return ret;
1798
0
}
1799
1800
std::vector<PeerRef> PeerManagerImpl::GetAllPeers() const
1801
0
{
1802
0
    std::vector<PeerRef> peers;
1803
0
    LOCK(m_peer_mutex);
1804
0
    peers.reserve(m_peer_map.size());
1805
0
    for (const auto& [_, peer] : m_peer_map) {
  Branch (1805:32): [True: 0, False: 0]
1806
0
        peers.push_back(peer);
1807
0
    }
1808
0
    return peers;
1809
0
}
1810
1811
bool PeerManagerImpl::GetNodeStateStats(NodeId nodeid, CNodeStateStats& stats) const
1812
0
{
1813
0
    {
1814
0
        LOCK(cs_main);
1815
0
        const CNodeState* state = State(nodeid);
1816
0
        if (state == nullptr)
  Branch (1816:13): [True: 0, False: 0]
1817
0
            return false;
1818
0
        stats.nSyncHeight = state->pindexBestKnownBlock ? state->pindexBestKnownBlock->nHeight : -1;
  Branch (1818:29): [True: 0, False: 0]
1819
0
        stats.nCommonHeight = state->pindexLastCommonBlock ? state->pindexLastCommonBlock->nHeight : -1;
  Branch (1819:31): [True: 0, False: 0]
1820
0
        for (const QueuedBlock& queue : state->vBlocksInFlight) {
  Branch (1820:39): [True: 0, False: 0]
1821
0
            if (queue.pindex)
  Branch (1821:17): [True: 0, False: 0]
1822
0
                stats.vHeightInFlight.push_back(queue.pindex->nHeight);
1823
0
        }
1824
0
    }
1825
1826
0
    PeerRef peer = GetPeerRef(nodeid);
1827
0
    if (peer == nullptr) return false;
  Branch (1827:9): [True: 0, False: 0]
1828
0
    stats.their_services = peer->m_their_services;
1829
    // It is common for nodes with good ping times to suddenly become lagged,
1830
    // due to a new block arriving or other large transfer.
1831
    // Merely reporting pingtime might fool the caller into thinking the node was still responsive,
1832
    // since pingtime does not update until the ping is complete, which might take a while.
1833
    // So, if a ping is taking an unusually long time in flight,
1834
    // the caller can immediately detect that this is happening.
1835
0
    NodeClock::duration ping_wait{0us};
1836
0
    if ((0 != peer->m_ping_nonce_sent) && (peer->m_ping_start.load() > NodeClock::epoch)) {
  Branch (1836:9): [True: 0, False: 0]
  Branch (1836:9): [True: 0, False: 0]
  Branch (1836:43): [True: 0, False: 0]
1837
0
        ping_wait = NodeClock::now() - peer->m_ping_start.load();
1838
0
    }
1839
1840
0
    if (auto tx_relay = peer->GetTxRelay(); tx_relay != nullptr) {
  Branch (1840:45): [True: 0, False: 0]
1841
0
        stats.m_relay_txs = WITH_LOCK(tx_relay->m_bloom_filter_mutex, return tx_relay->m_relay_txs);
1842
0
        stats.m_fee_filter_received = tx_relay->m_fee_filter_received.load();
1843
0
        LOCK(tx_relay->m_tx_inventory_mutex);
1844
0
        stats.m_last_inv_seq = tx_relay->m_last_inv_sequence;
1845
0
        stats.m_inv_to_send = tx_relay->m_tx_inventory_to_send.size();
1846
0
    } else {
1847
0
        stats.m_relay_txs = false;
1848
0
        stats.m_fee_filter_received = 0;
1849
0
        stats.m_inv_to_send = 0;
1850
0
    }
1851
1852
0
    stats.m_ping_wait = ping_wait;
1853
0
    stats.m_addr_processed = peer->m_addr_processed.load();
1854
0
    stats.m_addr_rate_limited = peer->m_addr_rate_limited.load();
1855
0
    stats.m_addr_relay_enabled = peer->m_addr_relay_enabled.load();
1856
0
    {
1857
0
        LOCK(peer->m_headers_sync_mutex);
1858
0
        if (peer->m_headers_sync) {
  Branch (1858:13): [True: 0, False: 0]
1859
0
            stats.presync_height = peer->m_headers_sync->GetPresyncHeight();
1860
0
        }
1861
0
    }
1862
0
    stats.time_offset = peer->m_time_offset;
1863
1864
0
    return true;
1865
0
}
1866
1867
std::vector<node::TxOrphanage::OrphanInfo> PeerManagerImpl::GetOrphanTransactions()
1868
0
{
1869
0
    LOCK(m_tx_download_mutex);
1870
0
    return m_txdownloadman.GetOrphanTransactions();
1871
0
}
1872
1873
PeerManagerInfo PeerManagerImpl::GetInfo() const
1874
0
{
1875
0
    return PeerManagerInfo{
1876
0
        .median_outbound_time_offset = m_outbound_time_offsets.Median(),
1877
0
        .ignores_incoming_txs = m_opts.ignore_incoming_txs,
1878
0
        .private_broadcast = m_opts.private_broadcast,
1879
0
    };
1880
0
}
1881
1882
std::vector<PrivateBroadcast::TxBroadcastInfo> PeerManagerImpl::GetPrivateBroadcastInfo() const
1883
0
{
1884
0
    return m_tx_for_private_broadcast.GetBroadcastInfo();
1885
0
}
1886
1887
std::vector<CTransactionRef> PeerManagerImpl::AbortPrivateBroadcast(const uint256& id)
1888
0
{
1889
0
    const auto snapshot{m_tx_for_private_broadcast.GetBroadcastInfo()};
1890
0
    std::vector<CTransactionRef> removed_txs;
1891
1892
0
    size_t connections_cancelled{0};
1893
0
    for (const auto& tx_info : snapshot) {
  Branch (1893:30): [True: 0, False: 0]
1894
0
        const CTransactionRef& tx{tx_info.tx};
1895
0
        if (tx->GetHash().ToUint256() != id && tx->GetWitnessHash().ToUint256() != id) continue;
  Branch (1895:13): [True: 0, False: 0]
  Branch (1895:48): [True: 0, False: 0]
1896
0
        if (const auto peer_acks{m_tx_for_private_broadcast.Remove(tx)}) {
  Branch (1896:24): [True: 0, False: 0]
1897
0
            removed_txs.push_back(tx);
1898
0
            if (NUM_PRIVATE_BROADCAST_PER_TX > *peer_acks) {
  Branch (1898:17): [True: 0, False: 0]
1899
0
                connections_cancelled += (NUM_PRIVATE_BROADCAST_PER_TX - *peer_acks);
1900
0
            }
1901
0
        }
1902
0
    }
1903
0
    m_connman.m_private_broadcast.NumToOpenSub(connections_cancelled);
1904
1905
0
    return removed_txs;
1906
0
}
1907
1908
void PeerManagerImpl::AddToCompactExtraTransactions(const CTransactionRef& tx)
1909
0
{
1910
0
    if (m_opts.max_extra_txs <= 0)
  Branch (1910:9): [True: 0, False: 0]
1911
0
        return;
1912
0
    if (!vExtraTxnForCompact.size())
  Branch (1912:9): [True: 0, False: 0]
1913
0
        vExtraTxnForCompact.resize(m_opts.max_extra_txs);
1914
0
    vExtraTxnForCompact[vExtraTxnForCompactIt] = std::make_pair(tx->GetWitnessHash(), tx);
1915
0
    vExtraTxnForCompactIt = (vExtraTxnForCompactIt + 1) % m_opts.max_extra_txs;
1916
0
}
1917
1918
void PeerManagerImpl::Misbehaving(Peer& peer, const std::string& message)
1919
0
{
1920
0
    LOCK(peer.m_misbehavior_mutex);
1921
1922
0
    const std::string message_prefixed = message.empty() ? "" : (": " + message);
  Branch (1922:42): [True: 0, False: 0]
1923
0
    peer.m_should_discourage = true;
1924
0
    LogDebug(BCLog::NET, "Misbehaving: peer=%d%s\n", peer.m_id, message_prefixed);
1925
0
    TRACEPOINT(net, misbehaving_connection,
1926
0
        peer.m_id,
1927
0
        message.c_str()
1928
0
    );
1929
0
}
1930
1931
void PeerManagerImpl::MaybePunishNodeForBlock(NodeId nodeid, const BlockValidationState& state,
1932
                                              bool via_compact_block, const std::string& message)
1933
0
{
1934
0
    PeerRef peer{GetPeerRef(nodeid)};
1935
0
    switch (state.GetResult()) {
  Branch (1935:13): [True: 0, False: 0]
1936
0
    case BlockValidationResult::BLOCK_RESULT_UNSET:
  Branch (1936:5): [True: 0, False: 0]
1937
0
        break;
1938
0
    case BlockValidationResult::BLOCK_HEADER_LOW_WORK:
  Branch (1938:5): [True: 0, False: 0]
1939
        // We didn't try to process the block because the header chain may have
1940
        // too little work.
1941
0
        break;
1942
    // The node is providing invalid data:
1943
0
    case BlockValidationResult::BLOCK_CONSENSUS:
  Branch (1943:5): [True: 0, False: 0]
1944
0
    case BlockValidationResult::BLOCK_MUTATED:
  Branch (1944:5): [True: 0, False: 0]
1945
0
        if (!via_compact_block) {
  Branch (1945:13): [True: 0, False: 0]
1946
0
            if (peer) Misbehaving(*peer, message);
  Branch (1946:17): [True: 0, False: 0]
1947
0
            return;
1948
0
        }
1949
0
        break;
1950
0
    case BlockValidationResult::BLOCK_CACHED_INVALID:
  Branch (1950:5): [True: 0, False: 0]
1951
0
        {
1952
            // Discourage outbound (but not inbound) peers if on an invalid chain.
1953
            // Exempt HB compact block peers. Manual connections are always protected from discouragement.
1954
0
            if (peer && !via_compact_block && !peer->m_is_inbound) {
  Branch (1954:17): [True: 0, False: 0]
  Branch (1954:25): [True: 0, False: 0]
  Branch (1954:47): [True: 0, False: 0]
1955
0
                if (peer) Misbehaving(*peer, message);
  Branch (1955:21): [True: 0, False: 0]
1956
0
                return;
1957
0
            }
1958
0
            break;
1959
0
        }
1960
0
    case BlockValidationResult::BLOCK_INVALID_HEADER:
  Branch (1960:5): [True: 0, False: 0]
1961
0
    case BlockValidationResult::BLOCK_INVALID_PREV:
  Branch (1961:5): [True: 0, False: 0]
1962
0
        if (peer) Misbehaving(*peer, message);
  Branch (1962:13): [True: 0, False: 0]
1963
0
        return;
1964
    // Conflicting (but not necessarily invalid) data or different policy:
1965
0
    case BlockValidationResult::BLOCK_MISSING_PREV:
  Branch (1965:5): [True: 0, False: 0]
1966
0
        if (peer) Misbehaving(*peer, message);
  Branch (1966:13): [True: 0, False: 0]
1967
0
        return;
1968
0
    case BlockValidationResult::BLOCK_TIME_FUTURE:
  Branch (1968:5): [True: 0, False: 0]
1969
0
        break;
1970
0
    }
1971
0
    if (message != "") {
  Branch (1971:9): [True: 0, False: 0]
1972
0
        LogDebug(BCLog::NET, "peer=%d: %s\n", nodeid, message);
1973
0
    }
1974
0
}
1975
1976
bool PeerManagerImpl::BlockRequestAllowed(const CBlockIndex& block_index)
1977
0
{
1978
0
    AssertLockHeld(cs_main);
1979
0
    if (m_chainman.ActiveChain().Contains(block_index)) return true;
  Branch (1979:9): [True: 0, False: 0]
1980
0
    return block_index.IsValid(BLOCK_VALID_SCRIPTS) && (m_chainman.m_best_header != nullptr) &&
  Branch (1980:12): [True: 0, False: 0]
  Branch (1980:56): [True: 0, False: 0]
1981
0
           (m_chainman.m_best_header->GetBlockTime() - block_index.GetBlockTime() < STALE_RELAY_AGE_LIMIT) &&
  Branch (1981:12): [True: 0, False: 0]
1982
0
           (GetBlockProofEquivalentTime(*m_chainman.m_best_header, block_index, *m_chainman.m_best_header, m_chainparams.GetConsensus()) < STALE_RELAY_AGE_LIMIT);
  Branch (1982:12): [True: 0, False: 0]
1983
0
}
1984
1985
util::Expected<void, std::string> PeerManagerImpl::FetchBlock(NodeId peer_id, const CBlockIndex& block_index)
1986
0
{
1987
0
    if (m_chainman.m_blockman.LoadingBlocks()) return util::Unexpected{"Loading blocks ..."};
  Branch (1987:9): [True: 0, False: 0]
1988
1989
    // Ensure this peer exists and hasn't been disconnected
1990
0
    PeerRef peer = GetPeerRef(peer_id);
1991
0
    if (peer == nullptr) return util::Unexpected{"Peer does not exist"};
  Branch (1991:9): [True: 0, False: 0]
1992
1993
    // Ignore pre-segwit peers
1994
0
    if (!CanServeWitnesses(*peer)) return util::Unexpected{"Pre-SegWit peer"};
  Branch (1994:9): [True: 0, False: 0]
1995
1996
0
    LOCK(cs_main);
1997
1998
    // Forget about all prior requests
1999
0
    RemoveBlockRequest(block_index.GetBlockHash(), std::nullopt);
2000
2001
    // Mark block as in-flight
2002
0
    if (!BlockRequested(peer_id, block_index)) return util::Unexpected{"Already requested from this peer"};
  Branch (2002:9): [True: 0, False: 0]
2003
2004
    // Construct message to request the block
2005
0
    const uint256& hash{block_index.GetBlockHash()};
2006
0
    std::vector<CInv> invs{CInv(MSG_BLOCK | MSG_WITNESS_FLAG, hash)};
2007
2008
    // Send block request message to the peer
2009
0
    bool success = m_connman.ForNode(peer_id, [this, &invs](CNode* node) {
2010
0
        this->MakeAndPushMessage(*node, NetMsgType::GETDATA, invs);
2011
0
        return true;
2012
0
    });
2013
2014
0
    if (!success) return util::Unexpected{"Peer not fully connected"};
  Branch (2014:9): [True: 0, False: 0]
2015
2016
0
    LogDebug(BCLog::NET, "Requesting block %s from peer=%d\n",
2017
0
                 hash.ToString(), peer_id);
2018
0
    return {};
2019
0
}
2020
2021
std::unique_ptr<PeerManager> PeerManager::make(CConnman& connman, AddrMan& addrman,
2022
                                               BanMan* banman, ChainstateManager& chainman,
2023
                                               CTxMemPool& pool, node::Warnings& warnings, Options opts)
2024
0
{
2025
0
    return std::make_unique<PeerManagerImpl>(connman, addrman, banman, chainman, pool, warnings, opts);
2026
0
}
2027
2028
PeerManagerImpl::PeerManagerImpl(CConnman& connman, AddrMan& addrman,
2029
                                 BanMan* banman, ChainstateManager& chainman,
2030
                                 CTxMemPool& pool, node::Warnings& warnings, Options opts)
2031
0
    : m_rng{opts.deterministic_rng},
2032
0
      m_fee_filter_rounder{CFeeRate{DEFAULT_MIN_RELAY_TX_FEE}, m_rng},
2033
0
      m_chainparams(chainman.GetParams()),
2034
0
      m_connman(connman),
2035
0
      m_addrman(addrman),
2036
0
      m_banman(banman),
2037
0
      m_chainman(chainman),
2038
0
      m_mempool(pool),
2039
0
      m_txdownloadman(node::TxDownloadOptions{pool, m_rng, opts.deterministic_rng}),
2040
0
      m_warnings{warnings},
2041
0
      m_opts{opts}
2042
0
{
2043
    // While Erlay support is incomplete, it must be enabled explicitly via -txreconciliation.
2044
    // This argument can go away after Erlay support is complete.
2045
0
    if (opts.reconcile_txs) {
  Branch (2045:9): [True: 0, False: 0]
2046
0
        m_txreconciliation = std::make_unique<TxReconciliationTracker>(TXRECONCILIATION_VERSION);
2047
0
    }
2048
0
}
2049
2050
void PeerManagerImpl::StartScheduledTasks(CScheduler& scheduler)
2051
0
{
2052
    // Stale tip checking and peer eviction are on two different timers, but we
2053
    // don't want them to get out of sync due to drift in the scheduler, so we
2054
    // combine them in one function and schedule at the quicker (peer-eviction)
2055
    // timer.
2056
0
    static_assert(EXTRA_PEER_CHECK_INTERVAL < STALE_CHECK_INTERVAL, "peer eviction timer should be less than stale tip check timer");
2057
0
    scheduler.scheduleEvery([this] { this->CheckForStaleTipAndEvictPeers(); }, std::chrono::seconds{EXTRA_PEER_CHECK_INTERVAL});
2058
2059
    // schedule next run for 10-15 minutes in the future
2060
0
    const auto delta = 10min + FastRandomContext().randrange<std::chrono::milliseconds>(5min);
2061
0
    scheduler.scheduleFromNow([&] { ReattemptInitialBroadcast(scheduler); }, delta);
2062
2063
0
    if (m_opts.private_broadcast) {
  Branch (2063:9): [True: 0, False: 0]
2064
0
        scheduler.scheduleFromNow([&] { ReattemptPrivateBroadcast(scheduler); }, 0min);
2065
0
    }
2066
0
}
2067
2068
void PeerManagerImpl::ActiveTipChange(const CBlockIndex& new_tip, bool is_ibd)
2069
0
{
2070
    // Ensure mempool mutex was released, otherwise deadlock may occur if another thread holding
2071
    // m_tx_download_mutex waits on the mempool mutex.
2072
0
    AssertLockNotHeld(m_mempool.cs);
2073
0
    AssertLockNotHeld(m_tx_download_mutex);
2074
2075
0
    if (!is_ibd) {
  Branch (2075:9): [True: 0, False: 0]
2076
0
        LOCK(m_tx_download_mutex);
2077
        // If the chain tip has changed, previously rejected transactions might now be valid, e.g. due
2078
        // to a timelock. Reset the rejection filters to give those transactions another chance if we
2079
        // see them again.
2080
0
        m_txdownloadman.ActiveTipChange();
2081
0
    }
2082
0
}
2083
2084
/**
2085
 * Evict orphan txn pool entries based on a newly connected
2086
 * block, remember the recently confirmed transactions, and delete tracked
2087
 * announcements for them. Also save the time of the last tip update and
2088
 * possibly reduce dynamic block stalling timeout.
2089
 */
2090
void PeerManagerImpl::BlockConnected(
2091
    const ChainstateRole& role,
2092
    const std::shared_ptr<const CBlock>& pblock,
2093
    const CBlockIndex* pindex)
2094
0
{
2095
    // Update this for all chainstate roles so that we don't mistakenly see peers
2096
    // helping us do background IBD as having a stale tip.
2097
0
    m_last_tip_update = GetTime<std::chrono::seconds>();
2098
2099
    // In case the dynamic timeout was doubled once or more, reduce it slowly back to its default value
2100
0
    auto stalling_timeout = m_block_stalling_timeout.load();
2101
0
    Assume(stalling_timeout >= BLOCK_STALLING_TIMEOUT_DEFAULT);
2102
0
    if (stalling_timeout != BLOCK_STALLING_TIMEOUT_DEFAULT) {
  Branch (2102:9): [True: 0, False: 0]
2103
0
        const auto new_timeout = std::max(std::chrono::duration_cast<std::chrono::seconds>(stalling_timeout * 0.85), BLOCK_STALLING_TIMEOUT_DEFAULT);
2104
0
        if (m_block_stalling_timeout.compare_exchange_strong(stalling_timeout, new_timeout)) {
  Branch (2104:13): [True: 0, False: 0]
2105
0
            LogDebug(BCLog::NET, "Decreased stalling timeout to %d seconds\n", count_seconds(new_timeout));
2106
0
        }
2107
0
    }
2108
2109
    // The following task can be skipped since we don't maintain a mempool for
2110
    // the historical chainstate, or during ibd since we don't receive incoming
2111
    // transactions from peers into the mempool.
2112
0
    if (!role.historical && !m_chainman.IsInitialBlockDownload()) {
  Branch (2112:9): [True: 0, False: 0]
  Branch (2112:29): [True: 0, False: 0]
2113
0
        LOCK(m_tx_download_mutex);
2114
0
        m_txdownloadman.BlockConnected(pblock);
2115
0
    }
2116
0
}
2117
2118
void PeerManagerImpl::BlockDisconnected(const std::shared_ptr<const CBlock> &block, const CBlockIndex* pindex)
2119
0
{
2120
0
    LOCK(m_tx_download_mutex);
2121
0
    m_txdownloadman.BlockDisconnected();
2122
0
}
2123
2124
/**
2125
 * Maintain state about the best-seen block and fast-announce a compact block
2126
 * to compatible peers.
2127
 */
2128
void PeerManagerImpl::NewPoWValidBlock(const CBlockIndex *pindex, const std::shared_ptr<const CBlock>& pblock)
2129
0
{
2130
0
    auto pcmpctblock = std::make_shared<const CBlockHeaderAndShortTxIDs>(*pblock, FastRandomContext().rand64());
2131
2132
0
    LOCK(cs_main);
2133
2134
0
    if (pindex->nHeight <= m_highest_fast_announce)
  Branch (2134:9): [True: 0, False: 0]
2135
0
        return;
2136
0
    m_highest_fast_announce = pindex->nHeight;
2137
2138
0
    if (!DeploymentActiveAt(*pindex, m_chainman, Consensus::DEPLOYMENT_SEGWIT)) return;
  Branch (2138:9): [True: 0, False: 0]
2139
2140
0
    uint256 hashBlock(pblock->GetHash());
2141
0
    const std::shared_future<CSerializedNetMsg> lazy_ser{
2142
0
        std::async(std::launch::deferred, [&] { return NetMsg::Make(NetMsgType::CMPCTBLOCK, *pcmpctblock); })};
2143
2144
0
    {
2145
0
        auto most_recent_block_txs = std::make_unique<std::map<GenTxid, CTransactionRef>>();
2146
0
        for (const auto& tx : pblock->vtx) {
  Branch (2146:29): [True: 0, False: 0]
2147
0
            most_recent_block_txs->emplace(tx->GetHash(), tx);
2148
0
            most_recent_block_txs->emplace(tx->GetWitnessHash(), tx);
2149
0
        }
2150
2151
0
        LOCK(m_most_recent_block_mutex);
2152
0
        m_most_recent_block_hash = hashBlock;
2153
0
        m_most_recent_block = pblock;
2154
0
        m_most_recent_compact_block = pcmpctblock;
2155
0
        m_most_recent_block_txs = std::move(most_recent_block_txs);
2156
0
    }
2157
2158
0
    m_connman.ForEachNode([this, pindex, &lazy_ser, &hashBlock](CNode* pnode) EXCLUSIVE_LOCKS_REQUIRED(::cs_main) {
2159
0
        AssertLockHeld(::cs_main);
2160
2161
0
        if (pnode->GetCommonVersion() < INVALID_CB_NO_BAN_VERSION || pnode->fDisconnect)
  Branch (2161:13): [True: 0, False: 0]
  Branch (2161:70): [True: 0, False: 0]
2162
0
            return;
2163
0
        ProcessBlockAvailability(pnode->GetId());
2164
0
        CNodeState &state = *State(pnode->GetId());
2165
        // If the peer has, or we announced to them the previous block already,
2166
        // but we don't think they have this one, go ahead and announce it
2167
0
        if (state.m_requested_hb_cmpctblocks && !PeerHasHeader(&state, pindex) && PeerHasHeader(&state, pindex->pprev)) {
  Branch (2167:13): [True: 0, False: 0]
  Branch (2167:49): [True: 0, False: 0]
  Branch (2167:83): [True: 0, False: 0]
2168
2169
0
            LogDebug(BCLog::NET, "%s sending header-and-ids %s to peer=%d\n", "PeerManager::NewPoWValidBlock",
2170
0
                    hashBlock.ToString(), pnode->GetId());
2171
2172
0
            const CSerializedNetMsg& ser_cmpctblock{lazy_ser.get()};
2173
0
            PushMessage(*pnode, ser_cmpctblock.Copy());
2174
0
            state.pindexBestHeaderSent = pindex;
2175
0
        }
2176
0
    });
2177
0
}
2178
2179
/**
2180
 * Update our best height and announce any block hashes which weren't previously
2181
 * in m_chainman.ActiveChain() to our peers.
2182
 */
2183
void PeerManagerImpl::UpdatedBlockTip(const CBlockIndex *pindexNew, const CBlockIndex *pindexFork, bool fInitialDownload)
2184
0
{
2185
0
    SetBestBlock(pindexNew->nHeight, std::chrono::seconds{pindexNew->GetBlockTime()});
2186
2187
    // Don't relay inventory during initial block download.
2188
0
    if (fInitialDownload) return;
  Branch (2188:9): [True: 0, False: 0]
2189
2190
    // Find the hashes of all blocks that weren't previously in the best chain.
2191
0
    std::vector<uint256> vHashes;
2192
0
    const CBlockIndex *pindexToAnnounce = pindexNew;
2193
0
    while (pindexToAnnounce != pindexFork) {
  Branch (2193:12): [True: 0, False: 0]
2194
0
        vHashes.push_back(pindexToAnnounce->GetBlockHash());
2195
0
        pindexToAnnounce = pindexToAnnounce->pprev;
2196
0
        if (vHashes.size() == MAX_BLOCKS_TO_ANNOUNCE) {
  Branch (2196:13): [True: 0, False: 0]
2197
            // Limit announcements in case of a huge reorganization.
2198
            // Rely on the peer's synchronization mechanism in that case.
2199
0
            break;
2200
0
        }
2201
0
    }
2202
2203
0
    {
2204
0
        LOCK(m_peer_mutex);
2205
0
        for (auto& it : m_peer_map) {
  Branch (2205:23): [True: 0, False: 0]
2206
0
            Peer& peer = *it.second;
2207
0
            LOCK(peer.m_block_inv_mutex);
2208
0
            for (const uint256& hash : vHashes | std::views::reverse) {
  Branch (2208:38): [True: 0, False: 0]
2209
0
                peer.m_blocks_for_headers_relay.push_back(hash);
2210
0
            }
2211
0
        }
2212
0
    }
2213
2214
0
    m_connman.WakeMessageHandler();
2215
0
}
2216
2217
/**
2218
 * Handle invalid block rejection and consequent peer discouragement, maintain which
2219
 * peers announce compact blocks.
2220
 */
2221
void PeerManagerImpl::BlockChecked(const std::shared_ptr<const CBlock>& block, const BlockValidationState& state)
2222
0
{
2223
0
    LOCK(cs_main);
2224
2225
0
    const uint256 hash(block->GetHash());
2226
0
    std::map<uint256, std::pair<NodeId, bool>>::iterator it = mapBlockSource.find(hash);
2227
2228
    // If the block failed validation, we know where it came from and we're still connected
2229
    // to that peer, maybe punish.
2230
0
    if (state.IsInvalid() &&
  Branch (2230:9): [True: 0, False: 0]
  Branch (2230:9): [True: 0, False: 0]
2231
0
        it != mapBlockSource.end() &&
  Branch (2231:9): [True: 0, False: 0]
2232
0
        State(it->second.first)) {
  Branch (2232:9): [True: 0, False: 0]
2233
0
            MaybePunishNodeForBlock(/*nodeid=*/ it->second.first, state, /*via_compact_block=*/ !it->second.second);
2234
0
    }
2235
    // Check that:
2236
    // 1. The block is valid
2237
    // 2. We're not in initial block download
2238
    // 3. This is currently the best block we're aware of. We haven't updated
2239
    //    the tip yet so we have no way to check this directly here. Instead we
2240
    //    just check that there are currently no other blocks in flight.
2241
0
    else if (state.IsValid() &&
  Branch (2241:14): [True: 0, False: 0]
2242
0
             !m_chainman.IsInitialBlockDownload() &&
  Branch (2242:14): [True: 0, False: 0]
2243
0
             mapBlocksInFlight.count(hash) == mapBlocksInFlight.size()) {
  Branch (2243:14): [True: 0, False: 0]
2244
0
        if (it != mapBlockSource.end()) {
  Branch (2244:13): [True: 0, False: 0]
2245
0
            MaybeSetPeerAsAnnouncingHeaderAndIDs(it->second.first);
2246
0
        }
2247
0
    }
2248
0
    if (it != mapBlockSource.end())
  Branch (2248:9): [True: 0, False: 0]
2249
0
        mapBlockSource.erase(it);
2250
0
}
2251
2252
//////////////////////////////////////////////////////////////////////////////
2253
//
2254
// Messages
2255
//
2256
2257
bool PeerManagerImpl::AlreadyHaveBlock(const uint256& block_hash)
2258
0
{
2259
0
    return m_chainman.m_blockman.LookupBlockIndex(block_hash) != nullptr;
2260
0
}
2261
2262
void PeerManagerImpl::SendPings()
2263
0
{
2264
0
    LOCK(m_peer_mutex);
2265
0
    for(auto& it : m_peer_map) it.second->m_ping_queued = true;
  Branch (2265:18): [True: 0, False: 0]
2266
0
}
2267
2268
void PeerManagerImpl::InitiateTxBroadcastToAll(const Txid& txid, const Wtxid& wtxid)
2269
0
{
2270
0
    for (const PeerRef& peer_ref : GetAllPeers()) {
  Branch (2270:34): [True: 0, False: 0]
2271
0
        if (!peer_ref) continue;
  Branch (2271:13): [True: 0, False: 0]
2272
0
        Peer& peer{*peer_ref};
2273
2274
0
        auto tx_relay = peer.GetTxRelay();
2275
0
        if (!tx_relay) continue;
  Branch (2275:13): [True: 0, False: 0]
2276
2277
0
        LOCK(tx_relay->m_tx_inventory_mutex);
2278
        // Only queue transactions for announcement once the version handshake
2279
        // is completed. The time of arrival for these transactions is
2280
        // otherwise at risk of leaking to a spy, if the spy is able to
2281
        // distinguish transactions received during the handshake from the rest
2282
        // in the announcement.
2283
0
        if (tx_relay->m_next_inv_send_time == 0s) continue;
  Branch (2283:13): [True: 0, False: 0]
2284
2285
0
        const uint256& hash{peer.m_wtxid_relay ? wtxid.ToUint256() : txid.ToUint256()};
  Branch (2285:29): [True: 0, False: 0]
2286
0
        if (!tx_relay->m_tx_inventory_known_filter.contains(hash)) {
  Branch (2286:13): [True: 0, False: 0]
2287
0
            tx_relay->m_tx_inventory_to_send.insert(wtxid);
2288
0
        }
2289
0
    }
2290
0
}
2291
2292
void PeerManagerImpl::InitiateTxBroadcastPrivate(const CTransactionRef& tx)
2293
0
{
2294
0
    const auto txstr{strprintf("txid=%s, wtxid=%s", tx->GetHash().ToString(), tx->GetWitnessHash().ToString())};
2295
0
    if (m_tx_for_private_broadcast.Add(tx)) {
  Branch (2295:9): [True: 0, False: 0]
2296
0
        LogDebug(BCLog::PRIVBROADCAST, "Requesting %d new connections due to %s", NUM_PRIVATE_BROADCAST_PER_TX, txstr);
2297
0
        m_connman.m_private_broadcast.NumToOpenAdd(NUM_PRIVATE_BROADCAST_PER_TX);
2298
0
    } else {
2299
0
        LogDebug(BCLog::PRIVBROADCAST, "Ignoring unnecessary request to schedule an already scheduled transaction: %s", txstr);
2300
0
    }
2301
0
}
2302
2303
void PeerManagerImpl::RelayAddress(NodeId originator,
2304
                                   const CAddress& addr,
2305
                                   bool fReachable)
2306
0
{
2307
    // We choose the same nodes within a given 24h window (if the list of connected
2308
    // nodes does not change) and we don't relay to nodes that already know an
2309
    // address. So within 24h we will likely relay a given address once. This is to
2310
    // prevent a peer from unjustly giving their address better propagation by sending
2311
    // it to us repeatedly.
2312
2313
0
    if (!fReachable && !addr.IsRelayable()) return;
  Branch (2313:9): [True: 0, False: 0]
  Branch (2313:24): [True: 0, False: 0]
2314
2315
    // Relay to a limited number of other nodes
2316
    // Use deterministic randomness to send to the same nodes for 24 hours
2317
    // at a time so the m_addr_knowns of the chosen nodes prevent repeats
2318
0
    const uint64_t hash_addr{CServiceHash(0, 0)(addr)};
2319
0
    const auto current_time{GetTime<std::chrono::seconds>()};
2320
    // Adding address hash makes exact rotation time different per address, while preserving periodicity.
2321
0
    const uint64_t time_addr{(static_cast<uint64_t>(count_seconds(current_time)) + hash_addr) / count_seconds(ROTATE_ADDR_RELAY_DEST_INTERVAL)};
2322
0
    const CSipHasher hasher{m_connman.GetDeterministicRandomizer(RANDOMIZER_ID_ADDRESS_RELAY)
2323
0
                                .Write(hash_addr)
2324
0
                                .Write(time_addr)};
2325
2326
    // Relay reachable addresses to 2 peers. Unreachable addresses are relayed randomly to 1 or 2 peers.
2327
0
    unsigned int nRelayNodes = (fReachable || (hasher.Finalize() & 1)) ? 2 : 1;
  Branch (2327:33): [True: 0, False: 0]
  Branch (2327:47): [True: 0, False: 0]
2328
2329
0
    std::array<std::pair<uint64_t, Peer*>, 2> best{{{0, nullptr}, {0, nullptr}}};
2330
0
    assert(nRelayNodes <= best.size());
  Branch (2330:5): [True: 0, False: 0]
2331
2332
0
    LOCK(m_peer_mutex);
2333
2334
0
    for (auto& [id, peer] : m_peer_map) {
  Branch (2334:27): [True: 0, False: 0]
2335
0
        if (peer->m_addr_relay_enabled && id != originator && IsAddrCompatible(*peer, addr)) {
  Branch (2335:13): [True: 0, False: 0]
  Branch (2335:43): [True: 0, False: 0]
  Branch (2335:63): [True: 0, False: 0]
2336
0
            uint64_t hashKey = CSipHasher(hasher).Write(id).Finalize();
2337
0
            for (unsigned int i = 0; i < nRelayNodes; i++) {
  Branch (2337:38): [True: 0, False: 0]
2338
0
                 if (hashKey > best[i].first) {
  Branch (2338:22): [True: 0, False: 0]
2339
0
                     std::copy(best.begin() + i, best.begin() + nRelayNodes - 1, best.begin() + i + 1);
2340
0
                     best[i] = std::make_pair(hashKey, peer.get());
2341
0
                     break;
2342
0
                 }
2343
0
            }
2344
0
        }
2345
0
    };
2346
2347
0
    for (unsigned int i = 0; i < nRelayNodes && best[i].first != 0; i++) {
  Branch (2347:30): [True: 0, False: 0]
  Branch (2347:49): [True: 0, False: 0]
2348
0
        PushAddress(*best[i].second, addr);
2349
0
    }
2350
0
}
2351
2352
void PeerManagerImpl::ProcessGetBlockData(CNode& pfrom, Peer& peer, const CInv& inv)
2353
0
{
2354
0
    std::shared_ptr<const CBlock> a_recent_block;
2355
0
    std::shared_ptr<const CBlockHeaderAndShortTxIDs> a_recent_compact_block;
2356
0
    {
2357
0
        LOCK(m_most_recent_block_mutex);
2358
0
        a_recent_block = m_most_recent_block;
2359
0
        a_recent_compact_block = m_most_recent_compact_block;
2360
0
    }
2361
2362
0
    bool need_activate_chain = false;
2363
0
    {
2364
0
        LOCK(cs_main);
2365
0
        const CBlockIndex* pindex = m_chainman.m_blockman.LookupBlockIndex(inv.hash);
2366
0
        if (pindex) {
  Branch (2366:13): [True: 0, False: 0]
2367
0
            if (pindex->HaveNumChainTxs() && !pindex->IsValid(BLOCK_VALID_SCRIPTS) &&
  Branch (2367:17): [True: 0, False: 0]
  Branch (2367:46): [True: 0, False: 0]
2368
0
                    pindex->IsValid(BLOCK_VALID_TREE)) {
  Branch (2368:21): [True: 0, False: 0]
2369
                // If we have the block and all of its parents, but have not yet validated it,
2370
                // we might be in the middle of connecting it (ie in the unlock of cs_main
2371
                // before ActivateBestChain but after AcceptBlock).
2372
                // In this case, we need to run ActivateBestChain prior to checking the relay
2373
                // conditions below.
2374
0
                need_activate_chain = true;
2375
0
            }
2376
0
        }
2377
0
    } // release cs_main before calling ActivateBestChain
2378
0
    if (need_activate_chain) {
  Branch (2378:9): [True: 0, False: 0]
2379
0
        BlockValidationState state;
2380
0
        if (!m_chainman.ActiveChainstate().ActivateBestChain(state, a_recent_block)) {
  Branch (2380:13): [True: 0, False: 0]
2381
0
            LogDebug(BCLog::NET, "failed to activate chain (%s)\n", state.ToString());
2382
0
        }
2383
0
    }
2384
2385
0
    const CBlockIndex* pindex{nullptr};
2386
0
    const CBlockIndex* tip{nullptr};
2387
0
    bool can_direct_fetch{false};
2388
0
    FlatFilePos block_pos{};
2389
0
    {
2390
0
        LOCK(cs_main);
2391
0
        pindex = m_chainman.m_blockman.LookupBlockIndex(inv.hash);
2392
0
        if (!pindex) {
  Branch (2392:13): [True: 0, False: 0]
2393
0
            return;
2394
0
        }
2395
0
        if (!BlockRequestAllowed(*pindex)) {
  Branch (2395:13): [True: 0, False: 0]
2396
0
            LogDebug(BCLog::NET, "%s: ignoring request from peer=%i for old block that isn't in the main chain\n", __func__, pfrom.GetId());
2397
0
            return;
2398
0
        }
2399
        // disconnect node in case we have reached the outbound limit for serving historical blocks
2400
0
        if (m_connman.OutboundTargetReached(true) &&
  Branch (2400:13): [True: 0, False: 0]
2401
0
            (((m_chainman.m_best_header != nullptr) && (m_chainman.m_best_header->GetBlockTime() - pindex->GetBlockTime() > HISTORICAL_BLOCK_AGE)) || inv.IsMsgFilteredBlk()) &&
  Branch (2401:15): [True: 0, False: 0]
  Branch (2401:56): [True: 0, False: 0]
  Branch (2401:151): [True: 0, False: 0]
2402
0
            !pfrom.HasPermission(NetPermissionFlags::Download) // nodes with the download permission may exceed target
  Branch (2402:13): [True: 0, False: 0]
2403
0
        ) {
2404
0
            LogDebug(BCLog::NET, "historical block serving limit reached, %s", pfrom.DisconnectMsg());
2405
0
            pfrom.fDisconnect = true;
2406
0
            return;
2407
0
        }
2408
0
        tip = m_chainman.ActiveChain().Tip();
2409
        // Avoid leaking prune-height by never sending blocks below the NODE_NETWORK_LIMITED threshold
2410
0
        if (!pfrom.HasPermission(NetPermissionFlags::NoBan) && (
  Branch (2410:13): [True: 0, False: 0]
2411
0
                (((peer.m_our_services & NODE_NETWORK_LIMITED) == NODE_NETWORK_LIMITED) && ((peer.m_our_services & NODE_NETWORK) != NODE_NETWORK) && (tip->nHeight - pindex->nHeight > (int)NODE_NETWORK_LIMITED_MIN_BLOCKS + 2 /* add two blocks buffer extension for possible races */) )
  Branch (2411:18): [True: 0, False: 0]
  Branch (2411:92): [True: 0, False: 0]
  Branch (2411:150): [True: 0, False: 0]
2412
0
           )) {
2413
0
            LogDebug(BCLog::NET, "Ignore block request below NODE_NETWORK_LIMITED threshold, %s", pfrom.DisconnectMsg());
2414
            //disconnect node and prevent it from stalling (would otherwise wait for the missing block)
2415
0
            pfrom.fDisconnect = true;
2416
0
            return;
2417
0
        }
2418
        // Pruned nodes may have deleted the block, so check whether
2419
        // it's available before trying to send.
2420
0
        if (!(pindex->nStatus & BLOCK_HAVE_DATA)) {
  Branch (2420:13): [True: 0, False: 0]
2421
0
            return;
2422
0
        }
2423
0
        can_direct_fetch = CanDirectFetch();
2424
0
        block_pos = pindex->GetBlockPos();
2425
0
    }
2426
2427
0
    std::shared_ptr<const CBlock> pblock;
2428
0
    if (a_recent_block && a_recent_block->GetHash() == inv.hash) {
  Branch (2428:9): [True: 0, False: 0]
  Branch (2428:9): [True: 0, False: 0]
  Branch (2428:27): [True: 0, False: 0]
2429
0
        pblock = a_recent_block;
2430
0
    } else if (inv.IsMsgWitnessBlk()) {
  Branch (2430:16): [True: 0, False: 0]
2431
        // Fast-path: in this case it is possible to serve the block directly from disk,
2432
        // as the network format matches the format on disk
2433
0
        if (const auto block_data{m_chainman.m_blockman.ReadRawBlock(block_pos)}) {
  Branch (2433:24): [True: 0, False: 0]
2434
0
            MakeAndPushMessage(pfrom, NetMsgType::BLOCK, std::span{*block_data});
2435
0
        } else {
2436
0
            if (WITH_LOCK(m_chainman.GetMutex(), return m_chainman.m_blockman.IsBlockPruned(*pindex))) {
2437
0
                LogDebug(BCLog::NET, "Block was pruned before it could be read, %s", pfrom.DisconnectMsg());
2438
0
            } else {
2439
0
                LogError("Cannot load block from disk, %s", pfrom.DisconnectMsg());
2440
0
            }
2441
0
            pfrom.fDisconnect = true;
2442
0
            return;
2443
0
        }
2444
        // Don't set pblock as we've sent the block
2445
0
    } else {
2446
        // Send block from disk
2447
0
        std::shared_ptr<CBlock> pblockRead = std::make_shared<CBlock>();
2448
0
        if (!m_chainman.m_blockman.ReadBlock(*pblockRead, block_pos, inv.hash)) {
  Branch (2448:13): [True: 0, False: 0]
2449
0
            if (WITH_LOCK(m_chainman.GetMutex(), return m_chainman.m_blockman.IsBlockPruned(*pindex))) {
2450
0
                LogDebug(BCLog::NET, "Block was pruned before it could be read, %s", pfrom.DisconnectMsg());
2451
0
            } else {
2452
0
                LogError("Cannot load block from disk, %s", pfrom.DisconnectMsg());
2453
0
            }
2454
0
            pfrom.fDisconnect = true;
2455
0
            return;
2456
0
        }
2457
0
        pblock = pblockRead;
2458
0
    }
2459
0
    if (pblock) {
  Branch (2459:9): [True: 0, False: 0]
2460
0
        if (inv.IsMsgBlk()) {
  Branch (2460:13): [True: 0, False: 0]
2461
0
            MakeAndPushMessage(pfrom, NetMsgType::BLOCK, TX_NO_WITNESS(*pblock));
2462
0
        } else if (inv.IsMsgWitnessBlk()) {
  Branch (2462:20): [True: 0, False: 0]
2463
0
            MakeAndPushMessage(pfrom, NetMsgType::BLOCK, TX_WITH_WITNESS(*pblock));
2464
0
        } else if (inv.IsMsgFilteredBlk()) {
  Branch (2464:20): [True: 0, False: 0]
2465
0
            bool sendMerkleBlock = false;
2466
0
            CMerkleBlock merkleBlock;
2467
0
            if (auto tx_relay = peer.GetTxRelay(); tx_relay != nullptr) {
  Branch (2467:52): [True: 0, False: 0]
2468
0
                LOCK(tx_relay->m_bloom_filter_mutex);
2469
0
                if (tx_relay->m_bloom_filter) {
  Branch (2469:21): [True: 0, False: 0]
2470
0
                    sendMerkleBlock = true;
2471
0
                    merkleBlock = CMerkleBlock(*pblock, *tx_relay->m_bloom_filter);
2472
0
                }
2473
0
            }
2474
0
            if (sendMerkleBlock) {
  Branch (2474:17): [True: 0, False: 0]
2475
0
                MakeAndPushMessage(pfrom, NetMsgType::MERKLEBLOCK, merkleBlock);
2476
                // CMerkleBlock just contains hashes, so also push any transactions in the block the client did not see
2477
                // This avoids hurting performance by pointlessly requiring a round-trip
2478
                // Note that there is currently no way for a node to request any single transactions we didn't send here -
2479
                // they must either disconnect and retry or request the full block.
2480
                // Thus, the protocol spec specified allows for us to provide duplicate txn here,
2481
                // however we MUST always provide at least what the remote peer needs
2482
0
                for (const auto& [tx_idx, _] : merkleBlock.vMatchedTxn)
  Branch (2482:46): [True: 0, False: 0]
2483
0
                    MakeAndPushMessage(pfrom, NetMsgType::TX, TX_NO_WITNESS(*pblock->vtx[tx_idx]));
2484
0
            }
2485
            // else
2486
            // no response
2487
0
        } else if (inv.IsMsgCmpctBlk()) {
  Branch (2487:20): [True: 0, False: 0]
2488
            // If a peer is asking for old blocks, we're almost guaranteed
2489
            // they won't have a useful mempool to match against a compact block,
2490
            // and we don't feel like constructing the object for them, so
2491
            // instead we respond with the full, non-compact block.
2492
0
            if (can_direct_fetch && pindex->nHeight >= tip->nHeight - MAX_CMPCTBLOCK_DEPTH) {
  Branch (2492:17): [True: 0, False: 0]
  Branch (2492:37): [True: 0, False: 0]
2493
0
                if (a_recent_compact_block && a_recent_compact_block->header.GetHash() == inv.hash) {
  Branch (2493:21): [True: 0, False: 0]
  Branch (2493:21): [True: 0, False: 0]
  Branch (2493:47): [True: 0, False: 0]
2494
0
                    MakeAndPushMessage(pfrom, NetMsgType::CMPCTBLOCK, *a_recent_compact_block);
2495
0
                } else {
2496
0
                    CBlockHeaderAndShortTxIDs cmpctblock{*pblock, m_rng.rand64()};
2497
0
                    MakeAndPushMessage(pfrom, NetMsgType::CMPCTBLOCK, cmpctblock);
2498
0
                }
2499
0
            } else {
2500
0
                MakeAndPushMessage(pfrom, NetMsgType::BLOCK, TX_WITH_WITNESS(*pblock));
2501
0
            }
2502
0
        }
2503
0
    }
2504
2505
0
    {
2506
0
        LOCK(peer.m_block_inv_mutex);
2507
        // Trigger the peer node to send a getblocks request for the next batch of inventory
2508
0
        if (inv.hash == peer.m_continuation_block) {
  Branch (2508:13): [True: 0, False: 0]
2509
            // Send immediately. This must send even if redundant,
2510
            // and we want it right after the last block so they don't
2511
            // wait for other stuff first.
2512
0
            std::vector<CInv> vInv;
2513
0
            vInv.emplace_back(MSG_BLOCK, tip->GetBlockHash());
2514
0
            MakeAndPushMessage(pfrom, NetMsgType::INV, vInv);
2515
0
            peer.m_continuation_block.SetNull();
2516
0
        }
2517
0
    }
2518
0
}
2519
2520
CTransactionRef PeerManagerImpl::FindTxForGetData(const Peer::TxRelay& tx_relay, const GenTxid& gtxid)
2521
0
{
2522
    // If a tx was in the mempool prior to the last INV for this peer, permit the request.
2523
0
    auto txinfo{std::visit(
2524
0
        [&](const auto& id) {
2525
0
            return m_mempool.info_for_relay(id, WITH_LOCK(tx_relay.m_tx_inventory_mutex, return tx_relay.m_last_inv_sequence));
2526
0
        },
Unexecuted instantiation: net_processing.cpp:_ZZN12_GLOBAL__N_115PeerManagerImpl16FindTxForGetDataERKNS_4Peer7TxRelayERK7GenTxidENK3$_0clI22transaction_identifierILb0EEEEDaRKT_
Unexecuted instantiation: net_processing.cpp:_ZZN12_GLOBAL__N_115PeerManagerImpl16FindTxForGetDataERKNS_4Peer7TxRelayERK7GenTxidENK3$_0clI22transaction_identifierILb1EEEEDaRKT_
2527
0
        gtxid)};
2528
0
    if (txinfo.tx) {
  Branch (2528:9): [True: 0, False: 0]
2529
0
        return std::move(txinfo.tx);
2530
0
    }
2531
2532
    // Or it might be from the most recent block
2533
0
    {
2534
0
        LOCK(m_most_recent_block_mutex);
2535
0
        if (m_most_recent_block_txs != nullptr) {
  Branch (2535:13): [True: 0, False: 0]
2536
0
            auto it = m_most_recent_block_txs->find(gtxid);
2537
0
            if (it != m_most_recent_block_txs->end()) return it->second;
  Branch (2537:17): [True: 0, False: 0]
2538
0
        }
2539
0
    }
2540
2541
0
    return {};
2542
0
}
2543
2544
void PeerManagerImpl::ProcessGetData(CNode& pfrom, Peer& peer, const std::atomic<bool>& interruptMsgProc)
2545
0
{
2546
0
    AssertLockNotHeld(cs_main);
2547
2548
0
    auto tx_relay = peer.GetTxRelay();
2549
2550
0
    std::deque<CInv>::iterator it = peer.m_getdata_requests.begin();
2551
0
    std::vector<CInv> vNotFound;
2552
2553
    // Process as many TX items from the front of the getdata queue as
2554
    // possible, since they're common and it's efficient to batch process
2555
    // them.
2556
0
    while (it != peer.m_getdata_requests.end() && it->IsGenTxMsg()) {
  Branch (2556:12): [True: 0, False: 0]
  Branch (2556:12): [True: 0, False: 0]
  Branch (2556:51): [True: 0, False: 0]
2557
0
        if (interruptMsgProc) return;
  Branch (2557:13): [True: 0, False: 0]
2558
        // The send buffer provides backpressure. If there's no space in
2559
        // the buffer, pause processing until the next call.
2560
0
        if (pfrom.fPauseSend) break;
  Branch (2560:13): [True: 0, False: 0]
2561
2562
0
        const CInv &inv = *it++;
2563
2564
0
        if (tx_relay == nullptr) {
  Branch (2564:13): [True: 0, False: 0]
2565
            // Ignore GETDATA requests for transactions from block-relay-only
2566
            // peers and peers that asked us not to announce transactions.
2567
0
            continue;
2568
0
        }
2569
2570
0
        if (auto tx{FindTxForGetData(*tx_relay, ToGenTxid(inv))}) {
  Branch (2570:18): [True: 0, False: 0]
2571
            // WTX and WITNESS_TX imply we serialize with witness
2572
0
            const auto maybe_with_witness = (inv.IsMsgTx() ? TX_NO_WITNESS : TX_WITH_WITNESS);
  Branch (2572:46): [True: 0, False: 0]
2573
0
            MakeAndPushMessage(pfrom, NetMsgType::TX, maybe_with_witness(*tx));
2574
0
            m_mempool.RemoveUnbroadcastTx(tx->GetHash());
2575
0
        } else {
2576
0
            vNotFound.push_back(inv);
2577
0
        }
2578
0
    }
2579
2580
    // Only process one BLOCK item per call, since they're uncommon and can be
2581
    // expensive to process.
2582
0
    if (it != peer.m_getdata_requests.end() && !pfrom.fPauseSend) {
  Branch (2582:9): [True: 0, False: 0]
  Branch (2582:9): [True: 0, False: 0]
  Branch (2582:48): [True: 0, False: 0]
2583
0
        const CInv &inv = *it++;
2584
0
        if (inv.IsGenBlkMsg()) {
  Branch (2584:13): [True: 0, False: 0]
2585
0
            ProcessGetBlockData(pfrom, peer, inv);
2586
0
        }
2587
        // else: If the first item on the queue is an unknown type, we erase it
2588
        // and continue processing the queue on the next call.
2589
        // NOTE: previously we wouldn't do so and the peer sending us a malformed GETDATA could
2590
        // result in never making progress and this thread using 100% allocated CPU. See
2591
        // https://bitcoincore.org/en/2024/07/03/disclose-getdata-cpu.
2592
0
    }
2593
2594
0
    peer.m_getdata_requests.erase(peer.m_getdata_requests.begin(), it);
2595
2596
0
    if (!vNotFound.empty()) {
  Branch (2596:9): [True: 0, False: 0]
2597
        // Let the peer know that we didn't find what it asked for, so it doesn't
2598
        // have to wait around forever.
2599
        // SPV clients care about this message: it's needed when they are
2600
        // recursively walking the dependencies of relevant unconfirmed
2601
        // transactions. SPV clients want to do that because they want to know
2602
        // about (and store and rebroadcast and risk analyze) the dependencies
2603
        // of transactions relevant to them, without having to download the
2604
        // entire memory pool.
2605
        // Also, other nodes can use these messages to automatically request a
2606
        // transaction from some other peer that announced it, and stop
2607
        // waiting for us to respond.
2608
        // In normal operation, we often send NOTFOUND messages for parents of
2609
        // transactions that we relay; if a peer is missing a parent, they may
2610
        // assume we have them and request the parents from us.
2611
0
        MakeAndPushMessage(pfrom, NetMsgType::NOTFOUND, vNotFound);
2612
0
    }
2613
0
}
2614
2615
uint32_t PeerManagerImpl::GetFetchFlags(const Peer& peer) const
2616
0
{
2617
0
    uint32_t nFetchFlags = 0;
2618
0
    if (CanServeWitnesses(peer)) {
  Branch (2618:9): [True: 0, False: 0]
2619
0
        nFetchFlags |= MSG_WITNESS_FLAG;
2620
0
    }
2621
0
    return nFetchFlags;
2622
0
}
2623
2624
void PeerManagerImpl::SendBlockTransactions(CNode& pfrom, Peer& peer, const CBlock& block, const BlockTransactionsRequest& req)
2625
0
{
2626
0
    BlockTransactions resp(req);
2627
0
    for (size_t i = 0; i < req.indexes.size(); i++) {
  Branch (2627:24): [True: 0, False: 0]
2628
0
        if (req.indexes[i] >= block.vtx.size()) {
  Branch (2628:13): [True: 0, False: 0]
2629
0
            Misbehaving(peer, "getblocktxn with out-of-bounds tx indices");
2630
0
            return;
2631
0
        }
2632
0
        resp.txn[i] = block.vtx[req.indexes[i]];
2633
0
    }
2634
2635
0
    if (util::log::ShouldDebugLog(BCLog::CMPCTBLOCK)) {
  Branch (2635:9): [True: 0, False: 0]
2636
0
        uint32_t tx_requested_size{0};
2637
0
        for (const auto& tx : resp.txn) tx_requested_size += tx->ComputeTotalSize();
  Branch (2637:29): [True: 0, False: 0]
2638
0
        LogDebug(BCLog::CMPCTBLOCK, "Peer %d sent us a GETBLOCKTXN for block %s, sending a BLOCKTXN with %u txns. (%u bytes)\n", pfrom.GetId(), block.GetHash().ToString(), resp.txn.size(), tx_requested_size);
2639
0
    }
2640
0
    MakeAndPushMessage(pfrom, NetMsgType::BLOCKTXN, resp);
2641
0
}
2642
2643
bool PeerManagerImpl::CheckHeadersPoW(const std::vector<CBlockHeader>& headers, Peer& peer)
2644
0
{
2645
    // Do these headers have proof-of-work matching what's claimed?
2646
0
    if (!HasValidProofOfWork(headers, m_chainparams.GetConsensus())) {
  Branch (2646:9): [True: 0, False: 0]
2647
0
        Misbehaving(peer, "header with invalid proof of work");
2648
0
        return false;
2649
0
    }
2650
2651
    // Are these headers connected to each other?
2652
0
    if (!CheckHeadersAreContinuous(headers)) {
  Branch (2652:9): [True: 0, False: 0]
2653
0
        Misbehaving(peer, "non-continuous headers sequence");
2654
0
        return false;
2655
0
    }
2656
0
    return true;
2657
0
}
2658
2659
arith_uint256 PeerManagerImpl::GetAntiDoSWorkThreshold()
2660
0
{
2661
0
    arith_uint256 near_chaintip_work = 0;
2662
0
    LOCK(cs_main);
2663
0
    if (m_chainman.ActiveChain().Tip() != nullptr) {
  Branch (2663:9): [True: 0, False: 0]
2664
0
        const CBlockIndex *tip = m_chainman.ActiveChain().Tip();
2665
        // Use a 144 block buffer, so that we'll accept headers that fork from
2666
        // near our tip.
2667
0
        near_chaintip_work = tip->nChainWork - std::min<arith_uint256>(144*GetBlockProof(*tip), tip->nChainWork);
2668
0
    }
2669
0
    return std::max(near_chaintip_work, m_chainman.MinimumChainWork());
2670
0
}
2671
2672
/**
2673
 * Special handling for unconnecting headers that might be part of a block
2674
 * announcement.
2675
 *
2676
 * We'll send a getheaders message in response to try to connect the chain.
2677
 */
2678
void PeerManagerImpl::HandleUnconnectingHeaders(CNode& pfrom, Peer& peer,
2679
        const std::vector<CBlockHeader>& headers)
2680
0
{
2681
    // Try to fill in the missing headers.
2682
0
    const CBlockIndex* best_header{WITH_LOCK(cs_main, return m_chainman.m_best_header)};
2683
0
    if (MaybeSendGetHeaders(pfrom, GetLocator(best_header), peer)) {
  Branch (2683:9): [True: 0, False: 0]
2684
0
        LogDebug(BCLog::NET, "received header %s: missing prev block %s, sending getheaders (%d) to end (peer=%d)\n",
2685
0
            headers[0].GetHash().ToString(),
2686
0
            headers[0].hashPrevBlock.ToString(),
2687
0
            best_header->nHeight,
2688
0
            pfrom.GetId());
2689
0
    }
2690
2691
    // Set hashLastUnknownBlock for this peer, so that if we
2692
    // eventually get the headers - even from a different peer -
2693
    // we can use this peer to download.
2694
0
    WITH_LOCK(cs_main, UpdateBlockAvailability(pfrom.GetId(), headers.back().GetHash()));
2695
0
}
2696
2697
bool PeerManagerImpl::CheckHeadersAreContinuous(const std::vector<CBlockHeader>& headers) const
2698
0
{
2699
0
    uint256 hashLastBlock;
2700
0
    for (const CBlockHeader& header : headers) {
  Branch (2700:37): [True: 0, False: 0]
2701
0
        if (!hashLastBlock.IsNull() && header.hashPrevBlock != hashLastBlock) {
  Branch (2701:13): [True: 0, False: 0]
  Branch (2701:40): [True: 0, False: 0]
2702
0
            return false;
2703
0
        }
2704
0
        hashLastBlock = header.GetHash();
2705
0
    }
2706
0
    return true;
2707
0
}
2708
2709
bool PeerManagerImpl::IsContinuationOfLowWorkHeadersSync(Peer& peer, CNode& pfrom, std::vector<CBlockHeader>& headers)
2710
0
{
2711
0
    if (peer.m_headers_sync) {
  Branch (2711:9): [True: 0, False: 0]
2712
0
        auto result = peer.m_headers_sync->ProcessNextHeaders(headers, headers.size() == m_opts.max_headers_result);
2713
        // If it is a valid continuation, we should treat the existing getheaders request as responded to.
2714
0
        if (result.success) peer.m_last_getheaders_timestamp = {};
  Branch (2714:13): [True: 0, False: 0]
2715
0
        if (result.request_more) {
  Branch (2715:13): [True: 0, False: 0]
2716
0
            auto locator = peer.m_headers_sync->NextHeadersRequestLocator();
2717
            // If we were instructed to ask for a locator, it should not be empty.
2718
0
            Assume(!locator.vHave.empty());
2719
            // We can only be instructed to request more if processing was successful.
2720
0
            Assume(result.success);
2721
0
            if (!locator.vHave.empty()) {
  Branch (2721:17): [True: 0, False: 0]
2722
                // It should be impossible for the getheaders request to fail,
2723
                // because we just cleared the last getheaders timestamp.
2724
0
                bool sent_getheaders = MaybeSendGetHeaders(pfrom, locator, peer);
2725
0
                Assume(sent_getheaders);
2726
0
                LogDebug(BCLog::NET, "more getheaders (from %s) to peer=%d\n",
2727
0
                    locator.vHave.front().ToString(), pfrom.GetId());
2728
0
            }
2729
0
        }
2730
2731
0
        if (peer.m_headers_sync->GetState() == HeadersSyncState::State::FINAL) {
  Branch (2731:13): [True: 0, False: 0]
2732
0
            peer.m_headers_sync.reset(nullptr);
2733
2734
            // Delete this peer's entry in m_headers_presync_stats.
2735
            // If this is m_headers_presync_bestpeer, it will be replaced later
2736
            // by the next peer that triggers the else{} branch below.
2737
0
            LOCK(m_headers_presync_mutex);
2738
0
            m_headers_presync_stats.erase(pfrom.GetId());
2739
0
        } else {
2740
            // Build statistics for this peer's sync.
2741
0
            HeadersPresyncStats stats;
2742
0
            stats.first = peer.m_headers_sync->GetPresyncWork();
2743
0
            if (peer.m_headers_sync->GetState() == HeadersSyncState::State::PRESYNC) {
  Branch (2743:17): [True: 0, False: 0]
2744
0
                stats.second = {peer.m_headers_sync->GetPresyncHeight(),
2745
0
                                peer.m_headers_sync->GetPresyncTime()};
2746
0
            }
2747
2748
            // Update statistics in stats.
2749
0
            LOCK(m_headers_presync_mutex);
2750
0
            m_headers_presync_stats[pfrom.GetId()] = stats;
2751
0
            auto best_it = m_headers_presync_stats.find(m_headers_presync_bestpeer);
2752
0
            bool best_updated = false;
2753
0
            if (best_it == m_headers_presync_stats.end()) {
  Branch (2753:17): [True: 0, False: 0]
2754
                // If the cached best peer is outdated, iterate over all remaining ones (including
2755
                // newly updated one) to find the best one.
2756
0
                NodeId peer_best{-1};
2757
0
                const HeadersPresyncStats* stat_best{nullptr};
2758
0
                for (const auto& [peer, stat] : m_headers_presync_stats) {
  Branch (2758:47): [True: 0, False: 0]
2759
0
                    if (!stat_best || stat > *stat_best) {
  Branch (2759:25): [True: 0, False: 0]
  Branch (2759:39): [True: 0, False: 0]
2760
0
                        peer_best = peer;
2761
0
                        stat_best = &stat;
2762
0
                    }
2763
0
                }
2764
0
                m_headers_presync_bestpeer = peer_best;
2765
0
                best_updated = (peer_best == pfrom.GetId());
2766
0
            } else if (best_it->first == pfrom.GetId() || stats > best_it->second) {
  Branch (2766:24): [True: 0, False: 0]
  Branch (2766:59): [True: 0, False: 0]
2767
                // pfrom was and remains the best peer, or pfrom just became best.
2768
0
                m_headers_presync_bestpeer = pfrom.GetId();
2769
0
                best_updated = true;
2770
0
            }
2771
0
            if (best_updated && stats.second.has_value()) {
  Branch (2771:17): [True: 0, False: 0]
  Branch (2771:33): [True: 0, False: 0]
2772
                // If the best peer updated, and it is in its first phase, signal.
2773
0
                m_headers_presync_should_signal = true;
2774
0
            }
2775
0
        }
2776
2777
0
        if (result.success) {
  Branch (2777:13): [True: 0, False: 0]
2778
            // We only overwrite the headers passed in if processing was
2779
            // successful.
2780
0
            headers.swap(result.pow_validated_headers);
2781
0
        }
2782
2783
0
        return result.success;
2784
0
    }
2785
    // Either we didn't have a sync in progress, or something went wrong
2786
    // processing these headers, or we are returning headers to the caller to
2787
    // process.
2788
0
    return false;
2789
0
}
2790
2791
bool PeerManagerImpl::TryLowWorkHeadersSync(Peer& peer, CNode& pfrom, const CBlockIndex& chain_start_header, std::vector<CBlockHeader>& headers)
2792
0
{
2793
    // Calculate the claimed total work on this chain.
2794
0
    arith_uint256 total_work = chain_start_header.nChainWork + CalculateClaimedHeadersWork(headers);
2795
2796
    // Our dynamic anti-DoS threshold (minimum work required on a headers chain
2797
    // before we'll store it)
2798
0
    arith_uint256 minimum_chain_work = GetAntiDoSWorkThreshold();
2799
2800
    // Avoid DoS via low-difficulty-headers by only processing if the headers
2801
    // are part of a chain with sufficient work.
2802
0
    if (total_work < minimum_chain_work) {
  Branch (2802:9): [True: 0, False: 0]
2803
        // Only try to sync with this peer if their headers message was full;
2804
        // otherwise they don't have more headers after this so no point in
2805
        // trying to sync their too-little-work chain.
2806
0
        if (headers.size() == m_opts.max_headers_result) {
  Branch (2806:13): [True: 0, False: 0]
2807
            // Note: we could advance to the last header in this set that is
2808
            // known to us, rather than starting at the first header (which we
2809
            // may already have); however this is unlikely to matter much since
2810
            // ProcessHeadersMessage() already handles the case where all
2811
            // headers in a received message are already known and are
2812
            // ancestors of m_best_header or chainActive.Tip(), by skipping
2813
            // this logic in that case. So even if the first header in this set
2814
            // of headers is known, some header in this set must be new, so
2815
            // advancing to the first unknown header would be a small effect.
2816
0
            LOCK(peer.m_headers_sync_mutex);
2817
0
            peer.m_headers_sync.reset(new HeadersSyncState(peer.m_id, m_chainparams.GetConsensus(),
2818
0
                m_chainparams.HeadersSync(), chain_start_header, minimum_chain_work));
2819
2820
            // Now a HeadersSyncState object for tracking this synchronization
2821
            // is created, process the headers using it as normal. Failures are
2822
            // handled inside of IsContinuationOfLowWorkHeadersSync.
2823
0
            (void)IsContinuationOfLowWorkHeadersSync(peer, pfrom, headers);
2824
0
        } else {
2825
0
            LogDebug(BCLog::NET, "Ignoring low-work chain (height=%u) from peer=%d\n", chain_start_header.nHeight + headers.size(), pfrom.GetId());
2826
0
        }
2827
2828
        // The peer has not yet given us a chain that meets our work threshold,
2829
        // so we want to prevent further processing of the headers in any case.
2830
0
        headers = {};
2831
0
        return true;
2832
0
    }
2833
2834
0
    return false;
2835
0
}
2836
2837
bool PeerManagerImpl::IsAncestorOfBestHeaderOrTip(const CBlockIndex* header)
2838
0
{
2839
0
    if (header == nullptr) {
  Branch (2839:9): [True: 0, False: 0]
2840
0
        return false;
2841
0
    } else if (m_chainman.m_best_header != nullptr && header == m_chainman.m_best_header->GetAncestor(header->nHeight)) {
  Branch (2841:16): [True: 0, False: 0]
  Branch (2841:55): [True: 0, False: 0]
2842
0
        return true;
2843
0
    } else if (m_chainman.ActiveChain().Contains(*header)) {
  Branch (2843:16): [True: 0, False: 0]
2844
0
        return true;
2845
0
    }
2846
0
    return false;
2847
0
}
2848
2849
bool PeerManagerImpl::MaybeSendGetHeaders(CNode& pfrom, const CBlockLocator& locator, Peer& peer)
2850
0
{
2851
0
    const auto current_time = NodeClock::now();
2852
2853
    // Only allow a new getheaders message to go out if we don't have a recent
2854
    // one already in-flight
2855
0
    if (current_time - peer.m_last_getheaders_timestamp > HEADERS_RESPONSE_TIME) {
  Branch (2855:9): [True: 0, False: 0]
2856
0
        MakeAndPushMessage(pfrom, NetMsgType::GETHEADERS, locator, uint256());
2857
0
        peer.m_last_getheaders_timestamp = current_time;
2858
0
        return true;
2859
0
    }
2860
0
    return false;
2861
0
}
2862
2863
/*
2864
 * Given a new headers tip ending in last_header, potentially request blocks towards that tip.
2865
 * We require that the given tip have at least as much work as our tip, and for
2866
 * our current tip to be "close to synced" (see CanDirectFetch()).
2867
 */
2868
void PeerManagerImpl::HeadersDirectFetchBlocks(CNode& pfrom, const Peer& peer, const CBlockIndex& last_header)
2869
0
{
2870
0
    LOCK(cs_main);
2871
0
    CNodeState *nodestate = State(pfrom.GetId());
2872
2873
0
    if (CanDirectFetch() && last_header.IsValid(BLOCK_VALID_TREE) && m_chainman.ActiveChain().Tip()->nChainWork <= last_header.nChainWork) {
  Branch (2873:9): [True: 0, False: 0]
  Branch (2873:29): [True: 0, False: 0]
  Branch (2873:70): [True: 0, False: 0]
2874
0
        std::vector<const CBlockIndex*> vToFetch;
2875
0
        const CBlockIndex* pindexWalk{&last_header};
2876
        // Calculate all the blocks we'd need to switch to last_header, up to a limit.
2877
0
        while (pindexWalk && !m_chainman.ActiveChain().Contains(*pindexWalk) && vToFetch.size() <= MAX_BLOCKS_IN_TRANSIT_PER_PEER) {
  Branch (2877:16): [True: 0, False: 0]
  Branch (2877:30): [True: 0, False: 0]
  Branch (2877:81): [True: 0, False: 0]
2878
0
            if (!(pindexWalk->nStatus & BLOCK_HAVE_DATA) &&
  Branch (2878:17): [True: 0, False: 0]
  Branch (2878:17): [True: 0, False: 0]
2879
0
                    !IsBlockRequested(pindexWalk->GetBlockHash()) &&
  Branch (2879:21): [True: 0, False: 0]
2880
0
                    (!DeploymentActiveAt(*pindexWalk, m_chainman, Consensus::DEPLOYMENT_SEGWIT) || CanServeWitnesses(peer))) {
  Branch (2880:22): [True: 0, False: 0]
  Branch (2880:100): [True: 0, False: 0]
2881
                // We don't have this block, and it's not yet in flight.
2882
0
                vToFetch.push_back(pindexWalk);
2883
0
            }
2884
0
            pindexWalk = pindexWalk->pprev;
2885
0
        }
2886
        // If pindexWalk still isn't on our main chain, we're looking at a
2887
        // very large reorg at a time we think we're close to caught up to
2888
        // the main chain -- this shouldn't really happen.  Bail out on the
2889
        // direct fetch and rely on parallel download instead.
2890
        // Common ancestor must exist (genesis).
2891
0
        if (!m_chainman.ActiveChain().Contains(*Assert(pindexWalk))) {
  Branch (2891:13): [True: 0, False: 0]
2892
0
            LogDebug(BCLog::NET, "Large reorg, won't direct fetch to %s (%d)\n",
2893
0
                     last_header.GetBlockHash().ToString(),
2894
0
                     last_header.nHeight);
2895
0
        } else {
2896
0
            std::vector<CInv> vGetData;
2897
            // Download as much as possible, from earliest to latest.
2898
0
            for (const CBlockIndex* pindex : vToFetch | std::views::reverse) {
  Branch (2898:44): [True: 0, False: 0]
2899
0
                if (nodestate->vBlocksInFlight.size() >= MAX_BLOCKS_IN_TRANSIT_PER_PEER) {
  Branch (2899:21): [True: 0, False: 0]
2900
                    // Can't download any more from this peer
2901
0
                    break;
2902
0
                }
2903
0
                uint32_t nFetchFlags = GetFetchFlags(peer);
2904
0
                vGetData.emplace_back(MSG_BLOCK | nFetchFlags, pindex->GetBlockHash());
2905
0
                BlockRequested(pfrom.GetId(), *pindex);
2906
0
                LogDebug(BCLog::NET, "Requesting block %s from peer=%d",
2907
0
                         pindex->GetBlockHash().ToString(), pfrom.GetId());
2908
0
            }
2909
0
            if (vGetData.size() > 1) {
  Branch (2909:17): [True: 0, False: 0]
2910
0
                LogDebug(BCLog::NET, "Downloading blocks toward %s (%d) via headers direct fetch\n",
2911
0
                         last_header.GetBlockHash().ToString(),
2912
0
                         last_header.nHeight);
2913
0
            }
2914
0
            if (vGetData.size() > 0) {
  Branch (2914:17): [True: 0, False: 0]
2915
0
                if (!m_opts.ignore_incoming_txs &&
  Branch (2915:21): [True: 0, False: 0]
2916
0
                        nodestate->m_provides_cmpctblocks &&
  Branch (2916:25): [True: 0, False: 0]
2917
0
                        vGetData.size() == 1 &&
  Branch (2917:25): [True: 0, False: 0]
2918
0
                        mapBlocksInFlight.size() == 1 &&
  Branch (2918:25): [True: 0, False: 0]
2919
0
                        last_header.pprev->IsValid(BLOCK_VALID_CHAIN)) {
  Branch (2919:25): [True: 0, False: 0]
2920
                    // In any case, we want to download using a compact block, not a regular one
2921
0
                    vGetData[0] = CInv(MSG_CMPCT_BLOCK, vGetData[0].hash);
2922
0
                }
2923
0
                MakeAndPushMessage(pfrom, NetMsgType::GETDATA, vGetData);
2924
0
            }
2925
0
        }
2926
0
    }
2927
0
}
2928
2929
/**
2930
 * Given receipt of headers from a peer ending in last_header, along with
2931
 * whether that header was new and whether the headers message was full,
2932
 * update the state we keep for the peer.
2933
 */
2934
void PeerManagerImpl::UpdatePeerStateForReceivedHeaders(CNode& pfrom, Peer& peer,
2935
        const CBlockIndex& last_header, bool received_new_header, bool may_have_more_headers)
2936
0
{
2937
0
    LOCK(cs_main);
2938
0
    CNodeState *nodestate = State(pfrom.GetId());
2939
2940
0
    UpdateBlockAvailability(pfrom.GetId(), last_header.GetBlockHash());
2941
2942
    // From here, pindexBestKnownBlock should be guaranteed to be non-null,
2943
    // because it is set in UpdateBlockAvailability. Some nullptr checks
2944
    // are still present, however, as belt-and-suspenders.
2945
2946
0
    if (received_new_header && last_header.nChainWork > m_chainman.ActiveChain().Tip()->nChainWork) {
  Branch (2946:9): [True: 0, False: 0]
  Branch (2946:32): [True: 0, False: 0]
2947
0
        nodestate->m_last_block_announcement = GetTime();
2948
0
    }
2949
2950
    // If we're in IBD, we want outbound peers that will serve us a useful
2951
    // chain. Disconnect peers that are on chains with insufficient work.
2952
0
    if (m_chainman.IsInitialBlockDownload() && !may_have_more_headers) {
  Branch (2952:9): [True: 0, False: 0]
  Branch (2952:48): [True: 0, False: 0]
2953
        // If the peer has no more headers to give us, then we know we have
2954
        // their tip.
2955
0
        if (nodestate->pindexBestKnownBlock && nodestate->pindexBestKnownBlock->nChainWork < m_chainman.MinimumChainWork()) {
  Branch (2955:13): [True: 0, False: 0]
  Branch (2955:48): [True: 0, False: 0]
2956
            // This peer has too little work on their headers chain to help
2957
            // us sync -- disconnect if it is an outbound disconnection
2958
            // candidate.
2959
            // Note: We compare their tip to the minimum chain work (rather than
2960
            // m_chainman.ActiveChain().Tip()) because we won't start block download
2961
            // until we have a headers chain that has at least
2962
            // the minimum chain work, even if a peer has a chain past our tip,
2963
            // as an anti-DoS measure.
2964
0
            if (pfrom.IsOutboundOrBlockRelayConn()) {
  Branch (2964:17): [True: 0, False: 0]
2965
0
                LogInfo("outbound peer headers chain has insufficient work, %s", pfrom.DisconnectMsg());
2966
0
                pfrom.fDisconnect = true;
2967
0
            }
2968
0
        }
2969
0
    }
2970
2971
    // If this is an outbound full-relay peer, check to see if we should protect
2972
    // it from the bad/lagging chain logic.
2973
    // Note that outbound block-relay peers are excluded from this protection, and
2974
    // thus always subject to eviction under the bad/lagging chain logic.
2975
    // See ChainSyncTimeoutState.
2976
0
    if (!pfrom.fDisconnect && pfrom.IsFullOutboundConn() && nodestate->pindexBestKnownBlock != nullptr) {
  Branch (2976:9): [True: 0, False: 0]
  Branch (2976:31): [True: 0, False: 0]
  Branch (2976:61): [True: 0, False: 0]
2977
0
        if (m_outbound_peers_with_protect_from_disconnect < MAX_OUTBOUND_PEERS_TO_PROTECT_FROM_DISCONNECT && nodestate->pindexBestKnownBlock->nChainWork >= m_chainman.ActiveChain().Tip()->nChainWork && !nodestate->m_chain_sync.m_protect) {
  Branch (2977:13): [True: 0, False: 0]
  Branch (2977:110): [True: 0, False: 0]
  Branch (2977:203): [True: 0, False: 0]
2978
0
            LogDebug(BCLog::NET, "Protecting outbound peer=%d from eviction\n", pfrom.GetId());
2979
0
            nodestate->m_chain_sync.m_protect = true;
2980
0
            ++m_outbound_peers_with_protect_from_disconnect;
2981
0
        }
2982
0
    }
2983
0
}
2984
2985
void PeerManagerImpl::ProcessHeadersMessage(CNode& pfrom, Peer& peer,
2986
                                            std::vector<CBlockHeader>&& headers,
2987
                                            bool via_compact_block)
2988
0
{
2989
0
    size_t nCount = headers.size();
2990
2991
0
    if (nCount == 0) {
  Branch (2991:9): [True: 0, False: 0]
2992
        // Nothing interesting. Stop asking this peers for more headers.
2993
        // If we were in the middle of headers sync, receiving an empty headers
2994
        // message suggests that the peer suddenly has nothing to give us
2995
        // (perhaps it reorged to our chain). Clear download state for this peer.
2996
0
        LOCK(peer.m_headers_sync_mutex);
2997
0
        if (peer.m_headers_sync) {
  Branch (2997:13): [True: 0, False: 0]
2998
0
            peer.m_headers_sync.reset(nullptr);
2999
0
            LOCK(m_headers_presync_mutex);
3000
0
            m_headers_presync_stats.erase(pfrom.GetId());
3001
0
        }
3002
        // A headers message with no headers cannot be an announcement, so assume
3003
        // it is a response to our last getheaders request, if there is one.
3004
0
        peer.m_last_getheaders_timestamp = {};
3005
0
        return;
3006
0
    }
3007
3008
    // Before we do any processing, make sure these pass basic sanity checks.
3009
    // We'll rely on headers having valid proof-of-work further down, as an
3010
    // anti-DoS criteria (note: this check is required before passing any
3011
    // headers into HeadersSyncState).
3012
0
    if (!CheckHeadersPoW(headers, peer)) {
  Branch (3012:9): [True: 0, False: 0]
3013
        // Misbehaving() calls are handled within CheckHeadersPoW(), so we can
3014
        // just return. (Note that even if a header is announced via compact
3015
        // block, the header itself should be valid, so this type of error can
3016
        // always be punished.)
3017
0
        return;
3018
0
    }
3019
3020
0
    const CBlockIndex *pindexLast = nullptr;
3021
3022
    // We'll set already_validated_work to true if these headers are
3023
    // successfully processed as part of a low-work headers sync in progress
3024
    // (either in PRESYNC or REDOWNLOAD phase).
3025
    // If true, this will mean that any headers returned to us (ie during
3026
    // REDOWNLOAD) can be validated without further anti-DoS checks.
3027
0
    bool already_validated_work = false;
3028
3029
    // If we're in the middle of headers sync, let it do its magic.
3030
0
    bool have_headers_sync = false;
3031
0
    {
3032
0
        LOCK(peer.m_headers_sync_mutex);
3033
3034
0
        already_validated_work = IsContinuationOfLowWorkHeadersSync(peer, pfrom, headers);
3035
3036
        // The headers we passed in may have been:
3037
        // - untouched, perhaps if no headers-sync was in progress, or some
3038
        //   failure occurred
3039
        // - erased, such as if the headers were successfully processed and no
3040
        //   additional headers processing needs to take place (such as if we
3041
        //   are still in PRESYNC)
3042
        // - replaced with headers that are now ready for validation, such as
3043
        //   during the REDOWNLOAD phase of a low-work headers sync.
3044
        // So just check whether we still have headers that we need to process,
3045
        // or not.
3046
0
        if (headers.empty()) {
  Branch (3046:13): [True: 0, False: 0]
3047
0
            return;
3048
0
        }
3049
3050
0
        have_headers_sync = !!peer.m_headers_sync;
3051
0
    }
3052
3053
    // Do these headers connect to something in our block index?
3054
0
    const CBlockIndex *chain_start_header{WITH_LOCK(::cs_main, return m_chainman.m_blockman.LookupBlockIndex(headers[0].hashPrevBlock))};
3055
0
    bool headers_connect_blockindex{chain_start_header != nullptr};
3056
3057
0
    if (!headers_connect_blockindex) {
  Branch (3057:9): [True: 0, False: 0]
3058
        // This could be a BIP 130 block announcement, use
3059
        // special logic for handling headers that don't connect, as this
3060
        // could be benign.
3061
0
        HandleUnconnectingHeaders(pfrom, peer, headers);
3062
0
        return;
3063
0
    }
3064
3065
    // If headers connect, assume that this is in response to any outstanding getheaders
3066
    // request we may have sent, and clear out the time of our last request. Non-connecting
3067
    // headers cannot be a response to a getheaders request.
3068
0
    peer.m_last_getheaders_timestamp = {};
3069
3070
    // If the headers we received are already in memory and an ancestor of
3071
    // m_best_header or our tip, skip anti-DoS checks. These headers will not
3072
    // use any more memory (and we are not leaking information that could be
3073
    // used to fingerprint us).
3074
0
    const CBlockIndex *last_received_header{nullptr};
3075
0
    {
3076
0
        LOCK(cs_main);
3077
0
        last_received_header = m_chainman.m_blockman.LookupBlockIndex(headers.back().GetHash());
3078
0
        already_validated_work = already_validated_work || IsAncestorOfBestHeaderOrTip(last_received_header);
  Branch (3078:34): [True: 0, False: 0]
  Branch (3078:60): [True: 0, False: 0]
3079
0
    }
3080
3081
    // If our peer has NetPermissionFlags::NoBan privileges, then bypass our
3082
    // anti-DoS logic (this saves bandwidth when we connect to a trusted peer
3083
    // on startup).
3084
0
    if (pfrom.HasPermission(NetPermissionFlags::NoBan)) {
  Branch (3084:9): [True: 0, False: 0]
3085
0
        already_validated_work = true;
3086
0
    }
3087
3088
    // At this point, the headers connect to something in our block index.
3089
    // Do anti-DoS checks to determine if we should process or store for later
3090
    // processing.
3091
0
    if (!already_validated_work && TryLowWorkHeadersSync(peer, pfrom,
  Branch (3091:9): [True: 0, False: 0]
  Branch (3091:36): [True: 0, False: 0]
3092
0
                                                         *chain_start_header, headers)) {
3093
        // If we successfully started a low-work headers sync, then there
3094
        // should be no headers to process any further.
3095
0
        Assume(headers.empty());
3096
0
        return;
3097
0
    }
3098
3099
    // At this point, we have a set of headers with sufficient work on them
3100
    // which can be processed.
3101
3102
    // If we don't have the last header, then this peer will have given us
3103
    // something new (if these headers are valid).
3104
0
    bool received_new_header{last_received_header == nullptr};
3105
3106
    // Now process all the headers.
3107
0
    BlockValidationState state;
3108
0
    const bool processed{m_chainman.ProcessNewBlockHeaders(headers,
3109
0
                                                           /*min_pow_checked=*/true,
3110
0
                                                           state, &pindexLast)};
3111
0
    if (!processed) {
  Branch (3111:9): [True: 0, False: 0]
3112
0
        if (state.IsInvalid()) {
  Branch (3112:13): [True: 0, False: 0]
3113
0
            if (!pfrom.IsInboundConn() && state.GetResult() == BlockValidationResult::BLOCK_CACHED_INVALID) {
  Branch (3113:17): [True: 0, False: 0]
  Branch (3113:43): [True: 0, False: 0]
3114
                // Warn user if outgoing peers send us headers of blocks that we previously marked as invalid.
3115
0
                LogWarning("%s (received from peer=%i). "
3116
0
                           "If this happens with all peers, consider database corruption (that -reindex may fix) "
3117
0
                           "or a potential consensus incompatibility.",
3118
0
                           state.GetDebugMessage(), pfrom.GetId());
3119
0
            }
3120
0
            MaybePunishNodeForBlock(pfrom.GetId(), state, via_compact_block, "invalid header received");
3121
0
            return;
3122
0
        }
3123
0
    }
3124
0
    assert(pindexLast);
  Branch (3124:5): [True: 0, False: 0]
3125
3126
0
    if (processed && received_new_header) {
  Branch (3126:9): [True: 0, False: 0]
  Branch (3126:22): [True: 0, False: 0]
3127
0
        LogBlockHeader(*pindexLast, pfrom, /*via_compact_block=*/false);
3128
0
    }
3129
3130
    // Consider fetching more headers if we are not using our headers-sync mechanism.
3131
0
    if (nCount == m_opts.max_headers_result && !have_headers_sync) {
  Branch (3131:9): [True: 0, False: 0]
  Branch (3131:48): [True: 0, False: 0]
3132
        // Headers message had its maximum size; the peer may have more headers.
3133
0
        if (MaybeSendGetHeaders(pfrom, GetLocator(pindexLast), peer)) {
  Branch (3133:13): [True: 0, False: 0]
3134
0
            LogDebug(BCLog::NET, "more getheaders (%d) to end to peer=%d", pindexLast->nHeight, pfrom.GetId());
3135
0
        }
3136
0
    }
3137
3138
0
    UpdatePeerStateForReceivedHeaders(pfrom, peer, *pindexLast, received_new_header, nCount == m_opts.max_headers_result);
3139
3140
    // Consider immediately downloading blocks.
3141
0
    HeadersDirectFetchBlocks(pfrom, peer, *pindexLast);
3142
3143
0
    return;
3144
0
}
3145
3146
std::optional<node::PackageToValidate> PeerManagerImpl::ProcessInvalidTx(NodeId nodeid, const CTransactionRef& ptx, const TxValidationState& state,
3147
                                       bool first_time_failure)
3148
0
{
3149
0
    AssertLockNotHeld(m_peer_mutex);
3150
0
    AssertLockHeld(g_msgproc_mutex);
3151
0
    AssertLockHeld(m_tx_download_mutex);
3152
3153
0
    PeerRef peer{GetPeerRef(nodeid)};
3154
3155
0
    LogDebug(BCLog::MEMPOOLREJ, "%s (wtxid=%s) from peer=%d was not accepted: %s\n",
3156
0
        ptx->GetHash().ToString(),
3157
0
        ptx->GetWitnessHash().ToString(),
3158
0
        nodeid,
3159
0
        state.ToString());
3160
3161
0
    const auto& [add_extra_compact_tx, unique_parents, package_to_validate] = m_txdownloadman.MempoolRejectedTx(ptx, state, nodeid, first_time_failure);
3162
3163
0
    if (add_extra_compact_tx && RecursiveDynamicUsage(*ptx) < 100000) {
  Branch (3163:9): [True: 0, False: 0]
  Branch (3163:33): [True: 0, False: 0]
3164
0
        AddToCompactExtraTransactions(ptx);
3165
0
    }
3166
0
    for (const Txid& parent_txid : unique_parents) {
  Branch (3166:34): [True: 0, False: 0]
3167
0
        if (peer) AddKnownTx(*peer, parent_txid.ToUint256());
  Branch (3167:13): [True: 0, False: 0]
3168
0
    }
3169
3170
0
    return package_to_validate;
3171
0
}
3172
3173
void PeerManagerImpl::ProcessValidTx(NodeId nodeid, const CTransactionRef& tx, const std::list<CTransactionRef>& replaced_transactions)
3174
0
{
3175
0
    AssertLockNotHeld(m_peer_mutex);
3176
0
    AssertLockHeld(g_msgproc_mutex);
3177
0
    AssertLockHeld(m_tx_download_mutex);
3178
3179
0
    m_txdownloadman.MempoolAcceptedTx(tx);
3180
3181
0
    LogDebug(BCLog::MEMPOOL, "AcceptToMemoryPool: peer=%d: accepted %s (wtxid=%s) (poolsz %u txn, %u kB)\n",
3182
0
             nodeid,
3183
0
             tx->GetHash().ToString(),
3184
0
             tx->GetWitnessHash().ToString(),
3185
0
             m_mempool.size(), m_mempool.DynamicMemoryUsage() / 1000);
3186
3187
0
    InitiateTxBroadcastToAll(tx->GetHash(), tx->GetWitnessHash());
3188
3189
0
    for (const CTransactionRef& removedTx : replaced_transactions) {
  Branch (3189:43): [True: 0, False: 0]
3190
0
        AddToCompactExtraTransactions(removedTx);
3191
0
    }
3192
0
}
3193
3194
void PeerManagerImpl::ProcessPackageResult(const node::PackageToValidate& package_to_validate, const PackageMempoolAcceptResult& package_result)
3195
0
{
3196
0
    AssertLockNotHeld(m_peer_mutex);
3197
0
    AssertLockHeld(g_msgproc_mutex);
3198
0
    AssertLockHeld(m_tx_download_mutex);
3199
3200
0
    const auto& package = package_to_validate.m_txns;
3201
0
    const auto& senders = package_to_validate.m_senders;
3202
3203
0
    if (package_result.m_state.IsInvalid()) {
  Branch (3203:9): [True: 0, False: 0]
3204
0
        m_txdownloadman.MempoolRejectedPackage(package);
3205
0
    }
3206
    // We currently only expect to process 1-parent-1-child packages. Remove if this changes.
3207
0
    if (!Assume(package.size() == 2)) return;
  Branch (3207:9): [True: 0, False: 0]
3208
3209
    // Iterate backwards to erase in-package descendants from the orphanage before they become
3210
    // relevant in AddChildrenToWorkSet.
3211
0
    auto package_iter = package.rbegin();
3212
0
    auto senders_iter = senders.rbegin();
3213
0
    while (package_iter != package.rend()) {
  Branch (3213:12): [True: 0, False: 0]
3214
0
        const auto& tx = *package_iter;
3215
0
        const NodeId nodeid = *senders_iter;
3216
0
        const auto it_result{package_result.m_tx_results.find(tx->GetWitnessHash())};
3217
3218
        // It is not guaranteed that a result exists for every transaction.
3219
0
        if (it_result != package_result.m_tx_results.end()) {
  Branch (3219:13): [True: 0, False: 0]
3220
0
            const auto& tx_result = it_result->second;
3221
0
            switch (tx_result.m_result_type) {
  Branch (3221:21): [True: 0, False: 0]
3222
0
                case MempoolAcceptResult::ResultType::VALID:
  Branch (3222:17): [True: 0, False: 0]
3223
0
                {
3224
0
                    ProcessValidTx(nodeid, tx, tx_result.m_replaced_transactions);
3225
0
                    break;
3226
0
                }
3227
0
                case MempoolAcceptResult::ResultType::INVALID:
  Branch (3227:17): [True: 0, False: 0]
3228
0
                case MempoolAcceptResult::ResultType::DIFFERENT_WITNESS:
  Branch (3228:17): [True: 0, False: 0]
3229
0
                {
3230
                    // Don't add to vExtraTxnForCompact, as these transactions should have already been
3231
                    // added there when added to the orphanage or rejected for TX_RECONSIDERABLE.
3232
                    // This should be updated if package submission is ever used for transactions
3233
                    // that haven't already been validated before.
3234
0
                    ProcessInvalidTx(nodeid, tx, tx_result.m_state, /*first_time_failure=*/false);
3235
0
                    break;
3236
0
                }
3237
0
                case MempoolAcceptResult::ResultType::MEMPOOL_ENTRY:
  Branch (3237:17): [True: 0, False: 0]
3238
0
                {
3239
                    // AlreadyHaveTx() should be catching transactions that are already in mempool.
3240
0
                    Assume(false);
3241
0
                    break;
3242
0
                }
3243
0
            }
3244
0
        }
3245
0
        package_iter++;
3246
0
        senders_iter++;
3247
0
    }
3248
0
}
3249
3250
// NOTE: the orphan processing used to be uninterruptible and quadratic, which could allow a peer to stall the node for
3251
// hours with specially crafted transactions. See https://bitcoincore.org/en/2024/07/03/disclose-orphan-dos.
3252
bool PeerManagerImpl::ProcessOrphanTx(Peer& peer)
3253
0
{
3254
0
    AssertLockHeld(g_msgproc_mutex);
3255
0
    LOCK2(::cs_main, m_tx_download_mutex);
3256
3257
0
    CTransactionRef porphanTx = nullptr;
3258
3259
0
    while (CTransactionRef porphanTx = m_txdownloadman.GetTxToReconsider(peer.m_id)) {
  Branch (3259:28): [True: 0, False: 0]
3260
0
        const MempoolAcceptResult result = m_chainman.ProcessTransaction(porphanTx);
3261
0
        const TxValidationState& state = result.m_state;
3262
0
        const Txid& orphanHash = porphanTx->GetHash();
3263
0
        const Wtxid& orphan_wtxid = porphanTx->GetWitnessHash();
3264
3265
0
        if (result.m_result_type == MempoolAcceptResult::ResultType::VALID) {
  Branch (3265:13): [True: 0, False: 0]
3266
0
            LogDebug(BCLog::TXPACKAGES, "   accepted orphan tx %s (wtxid=%s)\n", orphanHash.ToString(), orphan_wtxid.ToString());
3267
0
            ProcessValidTx(peer.m_id, porphanTx, result.m_replaced_transactions);
3268
0
            return true;
3269
0
        } else if (state.GetResult() != TxValidationResult::TX_MISSING_INPUTS) {
  Branch (3269:20): [True: 0, False: 0]
3270
0
            LogDebug(BCLog::TXPACKAGES, "   invalid orphan tx %s (wtxid=%s) from peer=%d. %s\n",
3271
0
                orphanHash.ToString(),
3272
0
                orphan_wtxid.ToString(),
3273
0
                peer.m_id,
3274
0
                state.ToString());
3275
3276
0
            if (Assume(state.IsInvalid() &&
3277
0
                       state.GetResult() != TxValidationResult::TX_UNKNOWN &&
3278
0
                       state.GetResult() != TxValidationResult::TX_NO_MEMPOOL &&
3279
0
                       state.GetResult() != TxValidationResult::TX_RESULT_UNSET)) {
3280
0
                ProcessInvalidTx(peer.m_id, porphanTx, state, /*first_time_failure=*/false);
3281
0
            }
3282
0
            return true;
3283
0
        }
3284
0
    }
3285
3286
0
    return false;
3287
0
}
3288
3289
bool PeerManagerImpl::PrepareBlockFilterRequest(CNode& node, Peer& peer,
3290
                                                BlockFilterType filter_type, uint32_t start_height,
3291
                                                const uint256& stop_hash, uint32_t max_height_diff,
3292
                                                const CBlockIndex*& stop_index,
3293
                                                BlockFilterIndex*& filter_index)
3294
0
{
3295
0
    const bool supported_filter_type =
3296
0
        (filter_type == BlockFilterType::BASIC &&
  Branch (3296:10): [True: 0, False: 0]
3297
0
         (peer.m_our_services & NODE_COMPACT_FILTERS));
  Branch (3297:10): [True: 0, False: 0]
3298
0
    if (!supported_filter_type) {
  Branch (3298:9): [True: 0, False: 0]
3299
0
        LogDebug(BCLog::NET, "peer requested unsupported block filter type: %d, %s",
3300
0
                 static_cast<uint8_t>(filter_type), node.DisconnectMsg());
3301
0
        node.fDisconnect = true;
3302
0
        return false;
3303
0
    }
3304
3305
0
    {
3306
0
        LOCK(cs_main);
3307
0
        stop_index = m_chainman.m_blockman.LookupBlockIndex(stop_hash);
3308
3309
        // Check that the stop block exists and the peer would be allowed to fetch it.
3310
0
        if (!stop_index || !BlockRequestAllowed(*stop_index)) {
  Branch (3310:13): [True: 0, False: 0]
  Branch (3310:28): [True: 0, False: 0]
3311
0
            LogDebug(BCLog::NET, "peer requested invalid block hash: %s, %s",
3312
0
                     stop_hash.ToString(), node.DisconnectMsg());
3313
0
            node.fDisconnect = true;
3314
0
            return false;
3315
0
        }
3316
0
    }
3317
3318
0
    uint32_t stop_height = stop_index->nHeight;
3319
0
    if (start_height > stop_height) {
  Branch (3319:9): [True: 0, False: 0]
3320
0
        LogDebug(BCLog::NET, "peer sent invalid getcfilters/getcfheaders with "
3321
0
                 "start height %d and stop height %d, %s",
3322
0
                 start_height, stop_height, node.DisconnectMsg());
3323
0
        node.fDisconnect = true;
3324
0
        return false;
3325
0
    }
3326
0
    if (stop_height - start_height >= max_height_diff) {
  Branch (3326:9): [True: 0, False: 0]
3327
0
        LogDebug(BCLog::NET, "peer requested too many cfilters/cfheaders: %d / %d, %s",
3328
0
                 stop_height - start_height + 1, max_height_diff, node.DisconnectMsg());
3329
0
        node.fDisconnect = true;
3330
0
        return false;
3331
0
    }
3332
3333
0
    filter_index = GetBlockFilterIndex(filter_type);
3334
0
    if (!filter_index) {
  Branch (3334:9): [True: 0, False: 0]
3335
0
        LogDebug(BCLog::NET, "Filter index for supported type %s not found\n", BlockFilterTypeName(filter_type));
3336
0
        return false;
3337
0
    }
3338
3339
0
    return true;
3340
0
}
3341
3342
void PeerManagerImpl::ProcessGetCFilters(CNode& node, Peer& peer, DataStream& vRecv)
3343
0
{
3344
0
    uint8_t filter_type_ser;
3345
0
    uint32_t start_height;
3346
0
    uint256 stop_hash;
3347
3348
0
    vRecv >> filter_type_ser >> start_height >> stop_hash;
3349
3350
0
    const BlockFilterType filter_type = static_cast<BlockFilterType>(filter_type_ser);
3351
3352
0
    const CBlockIndex* stop_index;
3353
0
    BlockFilterIndex* filter_index;
3354
0
    if (!PrepareBlockFilterRequest(node, peer, filter_type, start_height, stop_hash,
  Branch (3354:9): [True: 0, False: 0]
3355
0
                                   MAX_GETCFILTERS_SIZE, stop_index, filter_index)) {
3356
0
        return;
3357
0
    }
3358
3359
0
    std::vector<BlockFilter> filters;
3360
0
    if (!filter_index->LookupFilterRange(start_height, stop_index, filters)) {
  Branch (3360:9): [True: 0, False: 0]
3361
0
        LogDebug(BCLog::NET, "Failed to find block filter in index: filter_type=%s, start_height=%d, stop_hash=%s\n",
3362
0
                     BlockFilterTypeName(filter_type), start_height, stop_hash.ToString());
3363
0
        return;
3364
0
    }
3365
3366
0
    for (const auto& filter : filters) {
  Branch (3366:29): [True: 0, False: 0]
3367
0
        MakeAndPushMessage(node, NetMsgType::CFILTER, filter);
3368
0
    }
3369
0
}
3370
3371
void PeerManagerImpl::ProcessGetCFHeaders(CNode& node, Peer& peer, DataStream& vRecv)
3372
0
{
3373
0
    uint8_t filter_type_ser;
3374
0
    uint32_t start_height;
3375
0
    uint256 stop_hash;
3376
3377
0
    vRecv >> filter_type_ser >> start_height >> stop_hash;
3378
3379
0
    const BlockFilterType filter_type = static_cast<BlockFilterType>(filter_type_ser);
3380
3381
0
    const CBlockIndex* stop_index;
3382
0
    BlockFilterIndex* filter_index;
3383
0
    if (!PrepareBlockFilterRequest(node, peer, filter_type, start_height, stop_hash,
  Branch (3383:9): [True: 0, False: 0]
3384
0
                                   MAX_GETCFHEADERS_SIZE, stop_index, filter_index)) {
3385
0
        return;
3386
0
    }
3387
3388
0
    uint256 prev_header;
3389
0
    if (start_height > 0) {
  Branch (3389:9): [True: 0, False: 0]
3390
0
        const CBlockIndex* const prev_block =
3391
0
            stop_index->GetAncestor(static_cast<int>(start_height - 1));
3392
0
        if (!filter_index->LookupFilterHeader(prev_block, prev_header)) {
  Branch (3392:13): [True: 0, False: 0]
3393
0
            LogDebug(BCLog::NET, "Failed to find block filter header in index: filter_type=%s, block_hash=%s\n",
3394
0
                         BlockFilterTypeName(filter_type), prev_block->GetBlockHash().ToString());
3395
0
            return;
3396
0
        }
3397
0
    }
3398
3399
0
    std::vector<uint256> filter_hashes;
3400
0
    if (!filter_index->LookupFilterHashRange(start_height, stop_index, filter_hashes)) {
  Branch (3400:9): [True: 0, False: 0]
3401
0
        LogDebug(BCLog::NET, "Failed to find block filter hashes in index: filter_type=%s, start_height=%d, stop_hash=%s\n",
3402
0
                     BlockFilterTypeName(filter_type), start_height, stop_hash.ToString());
3403
0
        return;
3404
0
    }
3405
3406
0
    MakeAndPushMessage(node, NetMsgType::CFHEADERS,
3407
0
              filter_type_ser,
3408
0
              stop_index->GetBlockHash(),
3409
0
              prev_header,
3410
0
              filter_hashes);
3411
0
}
3412
3413
void PeerManagerImpl::ProcessGetCFCheckPt(CNode& node, Peer& peer, DataStream& vRecv)
3414
0
{
3415
0
    uint8_t filter_type_ser;
3416
0
    uint256 stop_hash;
3417
3418
0
    vRecv >> filter_type_ser >> stop_hash;
3419
3420
0
    const BlockFilterType filter_type = static_cast<BlockFilterType>(filter_type_ser);
3421
3422
0
    const CBlockIndex* stop_index;
3423
0
    BlockFilterIndex* filter_index;
3424
0
    if (!PrepareBlockFilterRequest(node, peer, filter_type, /*start_height=*/0, stop_hash,
  Branch (3424:9): [True: 0, False: 0]
3425
0
                                   /*max_height_diff=*/std::numeric_limits<uint32_t>::max(),
3426
0
                                   stop_index, filter_index)) {
3427
0
        return;
3428
0
    }
3429
3430
0
    std::vector<uint256> headers(stop_index->nHeight / CFCHECKPT_INTERVAL);
3431
3432
    // Populate headers.
3433
0
    const CBlockIndex* block_index = stop_index;
3434
0
    for (int i = headers.size() - 1; i >= 0; i--) {
  Branch (3434:38): [True: 0, False: 0]
3435
0
        int height = (i + 1) * CFCHECKPT_INTERVAL;
3436
0
        block_index = block_index->GetAncestor(height);
3437
3438
0
        if (!filter_index->LookupFilterHeader(block_index, headers[i])) {
  Branch (3438:13): [True: 0, False: 0]
3439
0
            LogDebug(BCLog::NET, "Failed to find block filter header in index: filter_type=%s, block_hash=%s\n",
3440
0
                         BlockFilterTypeName(filter_type), block_index->GetBlockHash().ToString());
3441
0
            return;
3442
0
        }
3443
0
    }
3444
3445
0
    MakeAndPushMessage(node, NetMsgType::CFCHECKPT,
3446
0
              filter_type_ser,
3447
0
              stop_index->GetBlockHash(),
3448
0
              headers);
3449
0
}
3450
3451
void PeerManagerImpl::ProcessBlock(CNode& node, const std::shared_ptr<const CBlock>& block, bool force_processing, bool min_pow_checked)
3452
0
{
3453
0
    bool new_block{false};
3454
0
    m_chainman.ProcessNewBlock(block, force_processing, min_pow_checked, &new_block);
3455
0
    if (new_block) {
  Branch (3455:9): [True: 0, False: 0]
3456
0
        node.m_last_block_time = GetTime<std::chrono::seconds>();
3457
        // In case this block came from a different peer than we requested
3458
        // from, we can erase the block request now anyway (as we just stored
3459
        // this block to disk).
3460
0
        LOCK(cs_main);
3461
0
        RemoveBlockRequest(block->GetHash(), std::nullopt);
3462
0
    } else {
3463
0
        LOCK(cs_main);
3464
0
        mapBlockSource.erase(block->GetHash());
3465
0
    }
3466
0
}
3467
3468
void PeerManagerImpl::ProcessCompactBlockTxns(CNode& pfrom, Peer& peer, const BlockTransactions& block_transactions)
3469
0
{
3470
0
    std::shared_ptr<CBlock> pblock = std::make_shared<CBlock>();
3471
0
    bool fBlockRead{false};
3472
0
    {
3473
0
        LOCK(cs_main);
3474
3475
0
        auto range_flight = mapBlocksInFlight.equal_range(block_transactions.blockhash);
3476
0
        size_t already_in_flight = std::distance(range_flight.first, range_flight.second);
3477
0
        bool requested_block_from_this_peer{false};
3478
3479
        // Multimap ensures ordering of outstanding requests. It's either empty or first in line.
3480
0
        bool first_in_flight = already_in_flight == 0 || (range_flight.first->second.first == pfrom.GetId());
  Branch (3480:32): [True: 0, False: 0]
  Branch (3480:58): [True: 0, False: 0]
3481
3482
0
        while (range_flight.first != range_flight.second) {
  Branch (3482:16): [True: 0, False: 0]
3483
0
            auto [node_id, block_it] = range_flight.first->second;
3484
0
            if (node_id == pfrom.GetId() && block_it->partialBlock) {
  Branch (3484:17): [True: 0, False: 0]
  Branch (3484:45): [True: 0, False: 0]
3485
0
                requested_block_from_this_peer = true;
3486
0
                break;
3487
0
            }
3488
0
            range_flight.first++;
3489
0
        }
3490
3491
0
        if (!requested_block_from_this_peer) {
  Branch (3491:13): [True: 0, False: 0]
3492
0
            LogDebug(BCLog::NET, "Peer %d sent us block transactions for block we weren't expecting\n", pfrom.GetId());
3493
0
            return;
3494
0
        }
3495
3496
0
        PartiallyDownloadedBlock& partialBlock = *range_flight.first->second.second->partialBlock;
3497
3498
0
        if (partialBlock.header.IsNull()) {
  Branch (3498:13): [True: 0, False: 0]
3499
            // It is possible for the header to be empty if a previous call to FillBlock wiped the header, but left
3500
            // the PartiallyDownloadedBlock pointer around (i.e. did not call RemoveBlockRequest). In this case, we
3501
            // should not call LookupBlockIndex below.
3502
0
            RemoveBlockRequest(block_transactions.blockhash, pfrom.GetId());
3503
0
            Misbehaving(peer, "previous compact block reconstruction attempt failed");
3504
0
            LogDebug(BCLog::NET, "Peer %d sent compact block transactions multiple times", pfrom.GetId());
3505
0
            return;
3506
0
        }
3507
3508
        // We should not have gotten this far in compact block processing unless it's attached to a known header
3509
0
        const CBlockIndex* prev_block{Assume(m_chainman.m_blockman.LookupBlockIndex(partialBlock.header.hashPrevBlock))};
3510
0
        ReadStatus status = partialBlock.FillBlock(*pblock, block_transactions.txn,
3511
0
                                                   /*segwit_active=*/DeploymentActiveAfter(prev_block, m_chainman, Consensus::DEPLOYMENT_SEGWIT));
3512
0
        if (status == READ_STATUS_INVALID) {
  Branch (3512:13): [True: 0, False: 0]
3513
0
            RemoveBlockRequest(block_transactions.blockhash, pfrom.GetId()); // Reset in-flight state in case Misbehaving does not result in a disconnect
3514
0
            Misbehaving(peer, "invalid compact block/non-matching block transactions");
3515
0
            return;
3516
0
        } else if (status == READ_STATUS_FAILED) {
  Branch (3516:20): [True: 0, False: 0]
3517
0
            if (first_in_flight) {
  Branch (3517:17): [True: 0, False: 0]
3518
                // Might have collided, fall back to getdata now :(
3519
                // We keep the failed partialBlock to disallow processing another compact block announcement from the same
3520
                // peer for the same block. We let the full block download below continue under the same m_downloading_since
3521
                // timer.
3522
0
                std::vector<CInv> invs;
3523
0
                invs.emplace_back(MSG_BLOCK | GetFetchFlags(peer), block_transactions.blockhash);
3524
0
                MakeAndPushMessage(pfrom, NetMsgType::GETDATA, invs);
3525
0
            } else {
3526
0
                RemoveBlockRequest(block_transactions.blockhash, pfrom.GetId());
3527
0
                LogDebug(BCLog::NET, "Peer %d sent us a compact block but it failed to reconstruct, waiting on first download to complete\n", pfrom.GetId());
3528
0
                return;
3529
0
            }
3530
0
        } else {
3531
            // Block is okay for further processing
3532
0
            RemoveBlockRequest(block_transactions.blockhash, pfrom.GetId()); // it is now an empty pointer
3533
0
            fBlockRead = true;
3534
            // mapBlockSource is used for potentially punishing peers and
3535
            // updating which peers send us compact blocks, so the race
3536
            // between here and cs_main in ProcessNewBlock is fine.
3537
            // BIP 152 permits peers to relay compact blocks after validating
3538
            // the header only; we should not punish peers if the block turns
3539
            // out to be invalid.
3540
0
            mapBlockSource.emplace(block_transactions.blockhash, std::make_pair(pfrom.GetId(), false));
3541
0
        }
3542
0
    } // Don't hold cs_main when we call into ProcessNewBlock
3543
0
    if (fBlockRead) {
  Branch (3543:9): [True: 0, False: 0]
3544
        // Since we requested this block (it was in mapBlocksInFlight), force it to be processed,
3545
        // even if it would not be a candidate for new tip (missing previous block, chain not long enough, etc)
3546
        // This bypasses some anti-DoS logic in AcceptBlock (eg to prevent
3547
        // disk-space attacks), but this should be safe due to the
3548
        // protections in the compact block handler -- see related comment
3549
        // in compact block optimistic reconstruction handling.
3550
0
        ProcessBlock(pfrom, pblock, /*force_processing=*/true, /*min_pow_checked=*/true);
3551
0
    }
3552
0
    return;
3553
0
}
3554
3555
0
void PeerManagerImpl::LogBlockHeader(const CBlockIndex& index, const CNode& peer, bool via_compact_block) {
3556
    // To prevent log spam, this function should only be called after it was determined that a
3557
    // header is both new and valid.
3558
    //
3559
    // These messages are valuable for detecting potential selfish mining behavior;
3560
    // if multiple displacing headers are seen near simultaneously across many
3561
    // nodes in the network, this might be an indication of selfish mining.
3562
    // In addition it can be used to identify peers which send us a header, but
3563
    // don't followup with a complete and valid (compact) block.
3564
    // Having this log by default when not in IBD ensures broad availability of
3565
    // this data in case investigation is merited.
3566
0
    const auto msg = strprintf(
3567
0
        "Saw new %sheader hash=%s height=%d %s",
3568
0
        via_compact_block ? "cmpctblock " : "",
  Branch (3568:9): [True: 0, False: 0]
3569
0
        index.GetBlockHash().ToString(),
3570
0
        index.nHeight,
3571
0
        peer.LogPeer()
3572
0
    );
3573
0
    if (m_chainman.IsInitialBlockDownload()) {
  Branch (3573:9): [True: 0, False: 0]
3574
0
        LogDebug(BCLog::VALIDATION, "%s", msg);
3575
0
    } else {
3576
0
        LogInfo("%s", msg);
3577
0
    }
3578
0
}
3579
3580
void PeerManagerImpl::PushPrivateBroadcastTx(CNode& node)
3581
0
{
3582
0
    Assume(node.IsPrivateBroadcastConn());
3583
3584
0
    const auto opt_tx{m_tx_for_private_broadcast.PickTxForSend(node.GetId(), CService{node.addr})};
3585
0
    if (!opt_tx) {
  Branch (3585:9): [True: 0, False: 0]
3586
0
        LogDebug(BCLog::PRIVBROADCAST, "Disconnecting: no more transactions for private broadcast (connected in vain), %s", node.LogPeer());
3587
0
        node.fDisconnect = true;
3588
0
        return;
3589
0
    }
3590
0
    const CTransactionRef& tx{*opt_tx};
3591
3592
0
    LogDebug(BCLog::PRIVBROADCAST, "P2P handshake completed, sending INV for txid=%s%s, %s",
3593
0
             tx->GetHash().ToString(), tx->HasWitness() ? strprintf(", wtxid=%s", tx->GetWitnessHash().ToString()) : "",
3594
0
             node.LogPeer());
3595
3596
0
    MakeAndPushMessage(node, NetMsgType::INV, std::vector<CInv>{{CInv{MSG_TX, tx->GetHash().ToUint256()}}});
3597
0
}
3598
3599
void PeerManagerImpl::ProcessMessage(Peer& peer, CNode& pfrom, const std::string& msg_type, DataStream& vRecv,
3600
                                     const NodeClock::time_point time_received,
3601
                                     const std::atomic<bool>& interruptMsgProc)
3602
0
{
3603
0
    AssertLockHeld(g_msgproc_mutex);
3604
3605
0
    LogDebug(BCLog::NET, "received: %s (%u bytes) peer=%d\n", SanitizeString(msg_type), vRecv.size(), pfrom.GetId());
3606
3607
3608
0
    if (msg_type == NetMsgType::VERSION) {
  Branch (3608:9): [True: 0, False: 0]
3609
0
        if (pfrom.nVersion != 0) {
  Branch (3609:13): [True: 0, False: 0]
3610
0
            LogDebug(BCLog::NET, "redundant version message from peer=%d\n", pfrom.GetId());
3611
0
            return;
3612
0
        }
3613
3614
0
        int64_t nTime;
3615
0
        CService addrMe;
3616
0
        uint64_t nNonce = 1;
3617
0
        ServiceFlags nServices;
3618
0
        int nVersion;
3619
0
        std::string cleanSubVer;
3620
0
        int starting_height = -1;
3621
0
        bool fRelay = true;
3622
3623
0
        vRecv >> nVersion >> Using<CustomUintFormatter<8>>(nServices) >> nTime;
3624
0
        if (nTime < 0) {
  Branch (3624:13): [True: 0, False: 0]
3625
0
            nTime = 0;
3626
0
        }
3627
0
        vRecv.ignore(8); // Ignore the addrMe service bits sent by the peer
3628
0
        vRecv >> CNetAddr::V1(addrMe);
3629
0
        if (!pfrom.IsInboundConn() && !pfrom.IsPrivateBroadcastConn())
  Branch (3629:13): [True: 0, False: 0]
  Branch (3629:39): [True: 0, False: 0]
3630
0
        {
3631
            // Overwrites potentially existing services. In contrast to this,
3632
            // unvalidated services received via gossip relay in ADDR/ADDRV2
3633
            // messages are only ever added but cannot replace existing ones.
3634
0
            m_addrman.SetServices(pfrom.addr, nServices);
3635
0
        }
3636
0
        if (pfrom.ExpectServicesFromConn() && !HasAllDesirableServiceFlags(nServices))
  Branch (3636:13): [True: 0, False: 0]
  Branch (3636:47): [True: 0, False: 0]
3637
0
        {
3638
0
            LogDebug(BCLog::NET, "peer does not offer the expected services (%08x offered, %08x expected), %s",
3639
0
                     nServices,
3640
0
                     GetDesirableServiceFlags(nServices),
3641
0
                     pfrom.DisconnectMsg());
3642
0
            pfrom.fDisconnect = true;
3643
0
            return;
3644
0
        }
3645
3646
0
        if (nVersion < MIN_PEER_PROTO_VERSION) {
  Branch (3646:13): [True: 0, False: 0]
3647
            // disconnect from peers older than this proto version
3648
0
            LogDebug(BCLog::NET, "peer using obsolete version %i, %s", nVersion, pfrom.DisconnectMsg());
3649
0
            pfrom.fDisconnect = true;
3650
0
            return;
3651
0
        }
3652
3653
0
        if (!vRecv.empty()) {
  Branch (3653:13): [True: 0, False: 0]
3654
            // The version message includes information about the sending node which we don't use:
3655
            //   - 8 bytes (service bits)
3656
            //   - 16 bytes (ipv6 address)
3657
            //   - 2 bytes (port)
3658
0
            vRecv.ignore(26);
3659
0
            vRecv >> nNonce;
3660
0
        }
3661
0
        if (!vRecv.empty()) {
  Branch (3661:13): [True: 0, False: 0]
3662
0
            std::string strSubVer;
3663
0
            vRecv >> LIMITED_STRING(strSubVer, MAX_SUBVERSION_LENGTH);
3664
0
            cleanSubVer = SanitizeString(strSubVer);
3665
0
        }
3666
0
        if (!vRecv.empty()) {
  Branch (3666:13): [True: 0, False: 0]
3667
0
            vRecv >> starting_height;
3668
0
        }
3669
0
        if (!vRecv.empty())
  Branch (3669:13): [True: 0, False: 0]
3670
0
            vRecv >> fRelay;
3671
        // Disconnect if we connected to ourself
3672
0
        if (pfrom.IsInboundConn() && !m_connman.CheckIncomingNonce(nNonce))
  Branch (3672:13): [True: 0, False: 0]
  Branch (3672:38): [True: 0, False: 0]
3673
0
        {
3674
0
            LogInfo("connected to self at %s, disconnecting\n", pfrom.addr.ToStringAddrPort());
3675
0
            pfrom.fDisconnect = true;
3676
0
            return;
3677
0
        }
3678
3679
0
        if (pfrom.IsInboundConn() && addrMe.IsRoutable())
  Branch (3679:13): [True: 0, False: 0]
  Branch (3679:38): [True: 0, False: 0]
3680
0
        {
3681
0
            SeenLocal(addrMe);
3682
0
        }
3683
3684
        // Inbound peers send us their version message when they connect.
3685
        // We send our version message in response.
3686
0
        if (pfrom.IsInboundConn()) {
  Branch (3686:13): [True: 0, False: 0]
3687
0
            PushNodeVersion(pfrom, peer);
3688
0
        }
3689
3690
        // Change version
3691
0
        const int greatest_common_version = std::min(nVersion, pfrom.AdvertisedVersion());
3692
0
        pfrom.SetCommonVersion(greatest_common_version);
3693
0
        pfrom.nVersion = nVersion;
3694
3695
0
        pfrom.m_has_all_wanted_services = HasAllDesirableServiceFlags(nServices);
3696
0
        peer.m_their_services = nServices;
3697
0
        pfrom.SetAddrLocal(addrMe);
3698
0
        {
3699
0
            LOCK(pfrom.m_subver_mutex);
3700
0
            pfrom.cleanSubVer = cleanSubVer;
3701
0
        }
3702
3703
        // Only initialize the Peer::TxRelay m_relay_txs data structure if:
3704
        // - this isn't an outbound block-relay-only connection, and
3705
        // - this isn't an outbound feeler connection, and
3706
        // - fRelay=true (the peer wishes to receive transaction announcements)
3707
        //   or we're offering NODE_BLOOM to this peer. NODE_BLOOM means that
3708
        //   the peer may turn on transaction relay later.
3709
0
        if (!pfrom.IsBlockOnlyConn() &&
  Branch (3709:13): [True: 0, False: 0]
3710
0
            !pfrom.IsFeelerConn() &&
  Branch (3710:13): [True: 0, False: 0]
3711
0
            (fRelay || (peer.m_our_services & NODE_BLOOM))) {
  Branch (3711:14): [True: 0, False: 0]
  Branch (3711:24): [True: 0, False: 0]
3712
0
            auto* const tx_relay = peer.SetTxRelay();
3713
0
            {
3714
0
                LOCK(tx_relay->m_bloom_filter_mutex);
3715
0
                tx_relay->m_relay_txs = fRelay; // set to true after we get the first filter* message
3716
0
            }
3717
0
            if (fRelay) pfrom.m_relays_txs = true;
  Branch (3717:17): [True: 0, False: 0]
3718
0
        }
3719
3720
0
        const auto mapped_as{m_connman.GetMappedAS(pfrom.addr)};
3721
0
        LogDebug(BCLog::NET, "receive version message: %s: version %d, blocks=%d, us=%s, txrelay=%d, %s%s",
3722
0
                  cleanSubVer.empty() ? "<no user agent>" : cleanSubVer, pfrom.nVersion,
3723
0
                  starting_height, addrMe.ToStringAddrPort(), fRelay, pfrom.LogPeer(),
3724
0
                  (mapped_as ? strprintf(", mapped_as=%d", mapped_as) : ""));
3725
3726
0
        if (pfrom.IsPrivateBroadcastConn()) {
  Branch (3726:13): [True: 0, False: 0]
3727
0
            if (fRelay) {
  Branch (3727:17): [True: 0, False: 0]
3728
0
                MakeAndPushMessage(pfrom, NetMsgType::VERACK);
3729
0
            } else {
3730
0
                LogDebug(BCLog::PRIVBROADCAST, "Disconnecting: does not support transaction relay (connected in vain), %s",
3731
0
                         pfrom.LogPeer());
3732
0
                pfrom.fDisconnect = true;
3733
0
            }
3734
0
            return;
3735
0
        }
3736
3737
0
        if (greatest_common_version >= WTXID_RELAY_VERSION) {
  Branch (3737:13): [True: 0, False: 0]
3738
0
            MakeAndPushMessage(pfrom, NetMsgType::WTXIDRELAY);
3739
0
        }
3740
3741
        // Signal ADDRv2 support (BIP155).
3742
0
        if (greatest_common_version >= 70016) {
  Branch (3742:13): [True: 0, False: 0]
3743
            // BIP155 defines addrv2 and sendaddrv2 for all protocol versions, but some
3744
            // implementations reject messages they don't know. As a courtesy, don't send
3745
            // it to nodes with a version before 70016, as no software is known to support
3746
            // BIP155 that doesn't announce at least that protocol version number.
3747
0
            MakeAndPushMessage(pfrom, NetMsgType::SENDADDRV2);
3748
0
        }
3749
3750
0
        if (greatest_common_version >= WTXID_RELAY_VERSION && m_txreconciliation) {
  Branch (3750:13): [True: 0, False: 0]
  Branch (3750:63): [True: 0, False: 0]
3751
            // Per BIP-330, we announce txreconciliation support if:
3752
            // - protocol version per the peer's VERSION message supports WTXID_RELAY;
3753
            // - transaction relay is supported per the peer's VERSION message
3754
            // - this is not a block-relay-only connection and not a feeler
3755
            // - this is not an addr fetch connection;
3756
            // - we are not in -blocksonly mode.
3757
0
            const auto* tx_relay = peer.GetTxRelay();
3758
0
            if (tx_relay && WITH_LOCK(tx_relay->m_bloom_filter_mutex, return tx_relay->m_relay_txs) &&
  Branch (3758:17): [True: 0, False: 0]
  Branch (3758:17): [True: 0, False: 0]
3759
0
                !pfrom.IsAddrFetchConn() && !m_opts.ignore_incoming_txs) {
  Branch (3759:17): [True: 0, False: 0]
  Branch (3759:45): [True: 0, False: 0]
3760
0
                const uint64_t recon_salt = m_txreconciliation->PreRegisterPeer(pfrom.GetId());
3761
0
                MakeAndPushMessage(pfrom, NetMsgType::SENDTXRCNCL,
3762
0
                                   TXRECONCILIATION_VERSION, recon_salt);
3763
0
            }
3764
0
        }
3765
3766
0
        if (greatest_common_version >= FEATURE_VERSION) {
  Branch (3766:13): [True: 0, False: 0]
3767
            // announce supported features
3768
            // MakeAndPushFeature(pfrom, NetMsgFeature::FOO, uint32_t{1});
3769
0
        }
3770
3771
0
        MakeAndPushMessage(pfrom, NetMsgType::VERACK);
3772
3773
        // Potentially mark this peer as a preferred download peer.
3774
0
        {
3775
0
            LOCK(cs_main);
3776
0
            CNodeState* state = State(pfrom.GetId());
3777
0
            state->fPreferredDownload = (!pfrom.IsInboundConn() || pfrom.HasPermission(NetPermissionFlags::NoBan)) && !pfrom.IsAddrFetchConn() && CanServeBlocks(peer);
  Branch (3777:42): [True: 0, False: 0]
  Branch (3777:68): [True: 0, False: 0]
  Branch (3777:119): [True: 0, False: 0]
  Branch (3777:147): [True: 0, False: 0]
3778
0
            m_num_preferred_download_peers += state->fPreferredDownload;
3779
0
        }
3780
3781
        // Attempt to initialize address relay for outbound peers and use result
3782
        // to decide whether to send GETADDR, so that we don't send it to
3783
        // inbound or outbound block-relay-only peers.
3784
0
        bool send_getaddr{false};
3785
0
        if (!pfrom.IsInboundConn()) {
  Branch (3785:13): [True: 0, False: 0]
3786
0
            send_getaddr = SetupAddressRelay(pfrom, peer);
3787
0
        }
3788
0
        if (send_getaddr) {
  Branch (3788:13): [True: 0, False: 0]
3789
            // Do a one-time address fetch to help populate/update our addrman.
3790
            // If we're starting up for the first time, our addrman may be pretty
3791
            // empty, so this mechanism is important to help us connect to the network.
3792
            // We skip this for block-relay-only peers. We want to avoid
3793
            // potentially leaking addr information and we do not want to
3794
            // indicate to the peer that we will participate in addr relay.
3795
0
            MakeAndPushMessage(pfrom, NetMsgType::GETADDR);
3796
0
            peer.m_getaddr_sent = true;
3797
            // When requesting a getaddr, accept an additional MAX_ADDR_TO_SEND addresses in response
3798
            // (bypassing the MAX_ADDR_PROCESSING_TOKEN_BUCKET limit).
3799
0
            peer.m_addr_token_bucket += MAX_ADDR_TO_SEND;
3800
0
        }
3801
3802
0
        if (!pfrom.IsInboundConn()) {
  Branch (3802:13): [True: 0, False: 0]
3803
            // For non-inbound connections, we update the addrman to record
3804
            // connection success so that addrman will have an up-to-date
3805
            // notion of which peers are online and available.
3806
            //
3807
            // While we strive to not leak information about block-relay-only
3808
            // connections via the addrman, not moving an address to the tried
3809
            // table is also potentially detrimental because new-table entries
3810
            // are subject to eviction in the event of addrman collisions.  We
3811
            // mitigate the information-leak by never calling
3812
            // AddrMan::Connected() on block-relay-only peers; see
3813
            // FinalizeNode().
3814
            //
3815
            // This moves an address from New to Tried table in Addrman,
3816
            // resolves tried-table collisions, etc.
3817
0
            m_addrman.Good(pfrom.addr);
3818
0
        }
3819
3820
0
        peer.m_time_offset = NodeSeconds{std::chrono::seconds{nTime}} - Now<NodeSeconds>();
3821
0
        if (!pfrom.IsInboundConn()) {
  Branch (3821:13): [True: 0, False: 0]
3822
            // Don't use timedata samples from inbound peers to make it
3823
            // harder for others to create false warnings about our clock being out of sync.
3824
0
            m_outbound_time_offsets.Add(peer.m_time_offset);
3825
0
            m_outbound_time_offsets.WarnIfOutOfSync();
3826
0
        }
3827
3828
        // If the peer is old enough to have the old alert system, send it the final alert.
3829
0
        if (greatest_common_version <= 70012) {
  Branch (3829:13): [True: 0, False: 0]
3830
0
            constexpr auto finalAlert{"60010000000000000000000000ffffff7f00000000ffffff7ffeffff7f01ffffff7f00000000ffffff7f00ffffff7f002f555247454e543a20416c657274206b657920636f6d70726f6d697365642c2075706772616465207265717569726564004630440220653febd6410f470f6bae11cad19c48413becb1ac2c17f908fd0fd53bdc3abd5202206d0e9c96fe88d4a0f01ed9dedae2b6f9e00da94cad0fecaae66ecf689bf71b50"_hex};
3831
0
            MakeAndPushMessage(pfrom, "alert", finalAlert);
3832
0
        }
3833
3834
        // Feeler connections exist only to verify if address is online.
3835
0
        if (pfrom.IsFeelerConn()) {
  Branch (3835:13): [True: 0, False: 0]
3836
0
            LogDebug(BCLog::NET, "feeler connection completed, %s", pfrom.DisconnectMsg());
3837
0
            pfrom.fDisconnect = true;
3838
0
        }
3839
0
        return;
3840
0
    }
3841
3842
0
    if (pfrom.nVersion == 0) {
  Branch (3842:9): [True: 0, False: 0]
3843
        // Must have a version message before anything else
3844
0
        LogDebug(BCLog::NET, "non-version message before version handshake. Message \"%s\" from peer=%d\n", SanitizeString(msg_type), pfrom.GetId());
3845
0
        return;
3846
0
    }
3847
3848
0
    if (msg_type == NetMsgType::VERACK) {
  Branch (3848:9): [True: 0, False: 0]
3849
0
        if (pfrom.fSuccessfullyConnected) {
  Branch (3849:13): [True: 0, False: 0]
3850
0
            LogDebug(BCLog::NET, "ignoring redundant verack message from peer=%d\n", pfrom.GetId());
3851
0
            return;
3852
0
        }
3853
3854
0
        auto new_peer_msg = [&]() {
3855
0
            const auto mapped_as{m_connman.GetMappedAS(pfrom.addr)};
3856
0
            return strprintf("New %s peer connected: transport: %s, version: %d, %s%s",
3857
0
                pfrom.ConnectionTypeAsString(),
3858
0
                TransportTypeAsString(pfrom.m_transport->GetInfo().transport_type),
3859
0
                pfrom.nVersion.load(), pfrom.LogPeer(),
3860
0
                (mapped_as ? strprintf(", mapped_as=%d", mapped_as) : ""));
  Branch (3860:18): [True: 0, False: 0]
3861
0
        };
3862
3863
        // Log successful connections unconditionally for outbound, but not for inbound as those
3864
        // can be triggered by an attacker at high rate.
3865
0
        if (pfrom.IsInboundConn()) {
  Branch (3865:13): [True: 0, False: 0]
3866
0
            LogDebug(BCLog::NET, "%s", new_peer_msg());
3867
0
        } else {
3868
0
            LogInfo("%s", new_peer_msg());
3869
0
        }
3870
3871
0
        if (auto tx_relay = peer.GetTxRelay()) {
  Branch (3871:18): [True: 0, False: 0]
3872
            // `TxRelay::m_tx_inventory_to_send` must be empty before the
3873
            // version handshake is completed as
3874
            // `TxRelay::m_next_inv_send_time` is first initialised in
3875
            // `SendMessages` after the verack is received. Any transactions
3876
            // received during the version handshake would otherwise
3877
            // immediately be advertised without random delay, potentially
3878
            // leaking the time of arrival to a spy.
3879
0
            Assume(WITH_LOCK(
3880
0
                tx_relay->m_tx_inventory_mutex,
3881
0
                return tx_relay->m_tx_inventory_to_send.empty() &&
3882
0
                       tx_relay->m_next_inv_send_time == 0s));
3883
0
        }
3884
3885
0
        if (pfrom.IsPrivateBroadcastConn()) {
  Branch (3885:13): [True: 0, False: 0]
3886
0
            pfrom.fSuccessfullyConnected = true;
3887
            // The peer may intend to later send us NetMsgType::FEEFILTER limiting
3888
            // cheap transactions, but we don't wait for that and thus we may send
3889
            // them a transaction below their threshold. This is ok because this
3890
            // relay logic is designed to work even in cases when the peer drops
3891
            // the transaction (due to it being too cheap, or for other reasons).
3892
0
            PushPrivateBroadcastTx(pfrom);
3893
0
            return;
3894
0
        }
3895
3896
0
        if (pfrom.GetCommonVersion() >= SHORT_IDS_BLOCKS_VERSION) {
  Branch (3896:13): [True: 0, False: 0]
3897
            // Tell our peer we are willing to provide version 2 cmpctblocks.
3898
            // However, we do not request new block announcements using
3899
            // cmpctblock messages.
3900
            // We send this to non-NODE NETWORK peers as well, because
3901
            // they may wish to request compact blocks from us
3902
0
            MakeAndPushMessage(pfrom, NetMsgType::SENDCMPCT, /*high_bandwidth=*/false, /*version=*/CMPCTBLOCKS_VERSION);
3903
0
        }
3904
3905
0
        if (m_txreconciliation) {
  Branch (3905:13): [True: 0, False: 0]
3906
0
            if (!peer.m_wtxid_relay || !m_txreconciliation->IsPeerRegistered(pfrom.GetId())) {
  Branch (3906:17): [True: 0, False: 0]
  Branch (3906:40): [True: 0, False: 0]
3907
                // We could have optimistically pre-registered/registered the peer. In that case,
3908
                // we should forget about the reconciliation state here if this wasn't followed
3909
                // by WTXIDRELAY (since WTXIDRELAY can't be announced later).
3910
0
                m_txreconciliation->ForgetPeer(pfrom.GetId());
3911
0
            }
3912
0
        }
3913
3914
0
        {
3915
0
            LOCK2(::cs_main, m_tx_download_mutex);
3916
0
            const CNodeState* state = State(pfrom.GetId());
3917
0
            m_txdownloadman.ConnectedPeer(pfrom.GetId(), node::TxDownloadConnectionInfo {
3918
0
                .m_preferred = state->fPreferredDownload,
3919
0
                .m_relay_permissions = pfrom.HasPermission(NetPermissionFlags::Relay),
3920
0
                .m_wtxid_relay = peer.m_wtxid_relay,
3921
0
            });
3922
0
        }
3923
3924
0
        pfrom.fSuccessfullyConnected = true;
3925
0
        return;
3926
0
    }
3927
3928
0
    if (msg_type == NetMsgType::SENDHEADERS) {
  Branch (3928:9): [True: 0, False: 0]
3929
0
        peer.m_prefers_headers = true;
3930
0
        return;
3931
0
    }
3932
3933
0
    if (msg_type == NetMsgType::SENDCMPCT) {
  Branch (3933:9): [True: 0, False: 0]
3934
0
        bool sendcmpct_hb{false};
3935
0
        uint64_t sendcmpct_version{0};
3936
0
        vRecv >> sendcmpct_hb >> sendcmpct_version;
3937
3938
        // Only support compact block relay with witnesses
3939
0
        if (sendcmpct_version != CMPCTBLOCKS_VERSION) return;
  Branch (3939:13): [True: 0, False: 0]
3940
3941
0
        LOCK(cs_main);
3942
0
        CNodeState* nodestate = State(pfrom.GetId());
3943
0
        nodestate->m_provides_cmpctblocks = true;
3944
0
        nodestate->m_requested_hb_cmpctblocks = sendcmpct_hb;
3945
        // save whether peer selects us as BIP152 high-bandwidth peer
3946
        // (receiving sendcmpct(1) signals high-bandwidth, sendcmpct(0) low-bandwidth)
3947
0
        pfrom.m_bip152_highbandwidth_from = sendcmpct_hb;
3948
0
        return;
3949
0
    }
3950
3951
    // BIP339 defines feature negotiation of wtxidrelay, which must happen between
3952
    // VERSION and VERACK to avoid relay problems from switching after a connection is up.
3953
0
    if (msg_type == NetMsgType::WTXIDRELAY) {
  Branch (3953:9): [True: 0, False: 0]
3954
0
        if (pfrom.fSuccessfullyConnected) {
  Branch (3954:13): [True: 0, False: 0]
3955
            // Disconnect peers that send a wtxidrelay message after VERACK.
3956
0
            LogDebug(BCLog::NET, "wtxidrelay received after verack, %s", pfrom.DisconnectMsg());
3957
0
            pfrom.fDisconnect = true;
3958
0
            return;
3959
0
        }
3960
0
        if (pfrom.GetCommonVersion() >= WTXID_RELAY_VERSION) {
  Branch (3960:13): [True: 0, False: 0]
3961
0
            if (!peer.m_wtxid_relay) {
  Branch (3961:17): [True: 0, False: 0]
3962
0
                peer.m_wtxid_relay = true;
3963
0
                m_wtxid_relay_peers++;
3964
0
            } else {
3965
0
                LogDebug(BCLog::NET, "ignoring duplicate wtxidrelay from peer=%d\n", pfrom.GetId());
3966
0
            }
3967
0
        } else {
3968
0
            LogDebug(BCLog::NET, "ignoring wtxidrelay due to old common version=%d from peer=%d\n", pfrom.GetCommonVersion(), pfrom.GetId());
3969
0
        }
3970
0
        return;
3971
0
    }
3972
3973
    // BIP155 defines feature negotiation of addrv2 and sendaddrv2, which must happen
3974
    // between VERSION and VERACK.
3975
0
    if (msg_type == NetMsgType::SENDADDRV2) {
  Branch (3975:9): [True: 0, False: 0]
3976
0
        if (pfrom.fSuccessfullyConnected) {
  Branch (3976:13): [True: 0, False: 0]
3977
            // Disconnect peers that send a SENDADDRV2 message after VERACK.
3978
0
            LogDebug(BCLog::NET, "sendaddrv2 received after verack, %s", pfrom.DisconnectMsg());
3979
0
            pfrom.fDisconnect = true;
3980
0
            return;
3981
0
        }
3982
0
        peer.m_wants_addrv2 = true;
3983
0
        return;
3984
0
    }
3985
3986
0
    if (msg_type == NetMsgType::FEATURE) {
  Branch (3986:9): [True: 0, False: 0]
3987
0
        if (pfrom.fSuccessfullyConnected) {
  Branch (3987:13): [True: 0, False: 0]
3988
            // Disconnect peers that send a FEATURE message after VERACK.
3989
0
            LogDebug(BCLog::NET, "feature received after verack, %s", pfrom.DisconnectMsg());
3990
0
            pfrom.fDisconnect = true;
3991
0
            return;
3992
0
        } else if (pfrom.GetCommonVersion() < FEATURE_VERSION) {
  Branch (3992:20): [True: 0, False: 0]
3993
            // Disconnect peers that send a FEATURE message without valid version negotiation.
3994
0
            LogDebug(BCLog::NET, "feature received with incompatible version %d, %s", pfrom.GetCommonVersion(), pfrom.DisconnectMsg());
3995
0
            pfrom.fDisconnect = true;
3996
0
            return;
3997
0
        }
3998
3999
0
        std::string feature_id;
4000
0
        DataStream feature_data;
4001
0
        try {
4002
0
            vRecv >> LIMITED_STRING(feature_id, MAX_FEATUREID_LENGTH);
4003
0
            std::vector<unsigned char> feature_data_vec;
4004
0
            vRecv >> LIMITED_VECTOR(feature_data_vec, MAX_FEATUREDATA_LENGTH);
4005
0
            feature_data = DataStream(feature_data_vec);
4006
0
        } catch (const std::exception&) {
4007
0
            feature_id.clear(); // use empty feature_id as error indicator
4008
0
        }
4009
0
        if (feature_id.size() < 4 || !vRecv.empty()) {
  Branch (4009:13): [True: 0, False: 0]
  Branch (4009:38): [True: 0, False: 0]
4010
0
            LogDebug(BCLog::NET, "invalid feature payload, %s", pfrom.DisconnectMsg());
4011
0
            pfrom.fDisconnect = true;
4012
0
            return;
4013
0
        }
4014
4015
        // if (feature_id == NetMsgFeature::FOO) {
4016
        //     ...
4017
        //     return;
4018
        // }
4019
4020
        // ignore unknown feature_id
4021
0
        LogDebug(BCLog::NET, "unknown feature advertised: %s", SanitizeString(feature_id));
4022
0
        return;
4023
0
    }
4024
4025
    // Received from a peer demonstrating readiness to announce transactions via reconciliations.
4026
    // This feature negotiation must happen between VERSION and VERACK to avoid relay problems
4027
    // from switching announcement protocols after the connection is up.
4028
0
    if (msg_type == NetMsgType::SENDTXRCNCL) {
  Branch (4028:9): [True: 0, False: 0]
4029
0
        if (!m_txreconciliation) {
  Branch (4029:13): [True: 0, False: 0]
4030
0
            LogDebug(BCLog::NET, "sendtxrcncl from peer=%d ignored, as our node does not have txreconciliation enabled\n", pfrom.GetId());
4031
0
            return;
4032
0
        }
4033
4034
0
        if (pfrom.fSuccessfullyConnected) {
  Branch (4034:13): [True: 0, False: 0]
4035
0
            LogDebug(BCLog::NET, "sendtxrcncl received after verack, %s", pfrom.DisconnectMsg());
4036
0
            pfrom.fDisconnect = true;
4037
0
            return;
4038
0
        }
4039
4040
        // Peer must not offer us reconciliations if we specified no tx relay support in VERSION.
4041
0
        if (RejectIncomingTxs(pfrom)) {
  Branch (4041:13): [True: 0, False: 0]
4042
0
            LogDebug(BCLog::NET, "sendtxrcncl received to which we indicated no tx relay, %s", pfrom.DisconnectMsg());
4043
0
            pfrom.fDisconnect = true;
4044
0
            return;
4045
0
        }
4046
4047
        // Peer must not offer us reconciliations if they specified no tx relay support in VERSION.
4048
        // This flag might also be false in other cases, but the RejectIncomingTxs check above
4049
        // eliminates them, so that this flag fully represents what we are looking for.
4050
0
        const auto* tx_relay = peer.GetTxRelay();
4051
0
        if (!tx_relay || !WITH_LOCK(tx_relay->m_bloom_filter_mutex, return tx_relay->m_relay_txs)) {
  Branch (4051:13): [True: 0, False: 0]
  Branch (4051:13): [True: 0, False: 0]
  Branch (4051:26): [True: 0, False: 0]
4052
0
            LogDebug(BCLog::NET, "sendtxrcncl received which indicated no tx relay to us, %s", pfrom.DisconnectMsg());
4053
0
            pfrom.fDisconnect = true;
4054
0
            return;
4055
0
        }
4056
4057
0
        uint32_t peer_txreconcl_version;
4058
0
        uint64_t remote_salt;
4059
0
        vRecv >> peer_txreconcl_version >> remote_salt;
4060
4061
0
        const ReconciliationRegisterResult result = m_txreconciliation->RegisterPeer(pfrom.GetId(), pfrom.IsInboundConn(),
4062
0
                                                                                     peer_txreconcl_version, remote_salt);
4063
0
        switch (result) {
  Branch (4063:17): [True: 0, False: 0]
4064
0
        case ReconciliationRegisterResult::NOT_FOUND:
  Branch (4064:9): [True: 0, False: 0]
4065
0
            LogDebug(BCLog::NET, "Ignore unexpected txreconciliation signal from peer=%d\n", pfrom.GetId());
4066
0
            break;
4067
0
        case ReconciliationRegisterResult::SUCCESS:
  Branch (4067:9): [True: 0, False: 0]
4068
0
            break;
4069
0
        case ReconciliationRegisterResult::ALREADY_REGISTERED:
  Branch (4069:9): [True: 0, False: 0]
4070
0
            LogDebug(BCLog::NET, "txreconciliation protocol violation (sendtxrcncl received from already registered peer), %s", pfrom.DisconnectMsg());
4071
0
            pfrom.fDisconnect = true;
4072
0
            return;
4073
0
        case ReconciliationRegisterResult::PROTOCOL_VIOLATION:
  Branch (4073:9): [True: 0, False: 0]
4074
0
            LogDebug(BCLog::NET, "txreconciliation protocol violation, %s", pfrom.DisconnectMsg());
4075
0
            pfrom.fDisconnect = true;
4076
0
            return;
4077
0
        }
4078
0
        return;
4079
0
    }
4080
4081
0
    if (!pfrom.fSuccessfullyConnected) {
  Branch (4081:9): [True: 0, False: 0]
4082
0
        LogDebug(BCLog::NET, "Unsupported message \"%s\" prior to verack from peer=%d\n", SanitizeString(msg_type), pfrom.GetId());
4083
0
        return;
4084
0
    }
4085
4086
0
    if (pfrom.IsPrivateBroadcastConn()) {
  Branch (4086:9): [True: 0, False: 0]
4087
0
        if (msg_type != NetMsgType::PONG && msg_type != NetMsgType::GETDATA) {
  Branch (4087:13): [True: 0, False: 0]
  Branch (4087:45): [True: 0, False: 0]
4088
0
            LogDebug(BCLog::PRIVBROADCAST, "Ignoring incoming message '%s', %s", msg_type, pfrom.LogPeer());
4089
0
            return;
4090
0
        }
4091
0
    }
4092
4093
0
    if (msg_type == NetMsgType::ADDR || msg_type == NetMsgType::ADDRV2) {
  Branch (4093:9): [True: 0, False: 0]
  Branch (4093:41): [True: 0, False: 0]
4094
0
        const auto ser_params{
4095
0
            msg_type == NetMsgType::ADDRV2 ?
  Branch (4095:13): [True: 0, False: 0]
4096
            // Set V2 param so that the CNetAddr and CAddress
4097
            // unserialize methods know that an address in v2 format is coming.
4098
0
            CAddress::V2_NETWORK :
4099
0
            CAddress::V1_NETWORK,
4100
0
        };
4101
4102
0
        std::vector<CAddress> vAddr;
4103
0
        vRecv >> ser_params(vAddr);
4104
0
        ProcessAddrs(msg_type, pfrom, peer, std::move(vAddr), interruptMsgProc);
4105
0
        return;
4106
0
    }
4107
4108
0
    if (msg_type == NetMsgType::INV) {
  Branch (4108:9): [True: 0, False: 0]
4109
0
        std::vector<CInv> vInv;
4110
0
        vRecv >> vInv;
4111
0
        if (vInv.size() > MAX_INV_SZ)
  Branch (4111:13): [True: 0, False: 0]
4112
0
        {
4113
0
            Misbehaving(peer, strprintf("inv message size = %u", vInv.size()));
4114
0
            return;
4115
0
        }
4116
4117
0
        const bool reject_tx_invs{RejectIncomingTxs(pfrom)};
4118
4119
0
        LOCK2(cs_main, m_tx_download_mutex);
4120
4121
0
        const auto current_time{GetTime<std::chrono::microseconds>()};
4122
0
        uint256* best_block{nullptr};
4123
4124
0
        for (CInv& inv : vInv) {
  Branch (4124:24): [True: 0, False: 0]
4125
0
            if (interruptMsgProc) return;
  Branch (4125:17): [True: 0, False: 0]
4126
4127
            // Ignore INVs that don't match wtxidrelay setting.
4128
            // Note that orphan parent fetching always uses MSG_TX GETDATAs regardless of the wtxidrelay setting.
4129
            // This is fine as no INV messages are involved in that process.
4130
0
            if (peer.m_wtxid_relay) {
  Branch (4130:17): [True: 0, False: 0]
4131
0
                if (inv.IsMsgTx()) continue;
  Branch (4131:21): [True: 0, False: 0]
4132
0
            } else {
4133
0
                if (inv.IsMsgWtx()) continue;
  Branch (4133:21): [True: 0, False: 0]
4134
0
            }
4135
4136
0
            if (inv.IsMsgBlk()) {
  Branch (4136:17): [True: 0, False: 0]
4137
0
                const bool fAlreadyHave = AlreadyHaveBlock(inv.hash);
4138
0
                LogDebug(BCLog::NET, "got inv: %s %s peer=%d", inv.ToString(), fAlreadyHave ? "have" : "new", pfrom.GetId());
4139
4140
0
                UpdateBlockAvailability(pfrom.GetId(), inv.hash);
4141
0
                if (!fAlreadyHave && !m_chainman.m_blockman.LoadingBlocks() && !IsBlockRequested(inv.hash)) {
  Branch (4141:21): [True: 0, False: 0]
  Branch (4141:38): [True: 0, False: 0]
  Branch (4141:80): [True: 0, False: 0]
4142
                    // Headers-first is the primary method of announcement on
4143
                    // the network. If a node fell back to sending blocks by
4144
                    // inv, it may be for a re-org, or because we haven't
4145
                    // completed initial headers sync. The final block hash
4146
                    // provided should be the highest, so send a getheaders and
4147
                    // then fetch the blocks we need to catch up.
4148
0
                    best_block = &inv.hash;
4149
0
                }
4150
0
            } else if (inv.IsGenTxMsg()) {
  Branch (4150:24): [True: 0, False: 0]
4151
0
                if (reject_tx_invs) {
  Branch (4151:21): [True: 0, False: 0]
4152
0
                    LogDebug(BCLog::NET, "transaction (%s) inv sent in violation of protocol, %s", inv.hash.ToString(), pfrom.DisconnectMsg());
4153
0
                    pfrom.fDisconnect = true;
4154
0
                    return;
4155
0
                }
4156
0
                const GenTxid gtxid = ToGenTxid(inv);
4157
0
                AddKnownTx(peer, inv.hash);
4158
4159
0
                if (!m_chainman.IsInitialBlockDownload()) {
  Branch (4159:21): [True: 0, False: 0]
4160
0
                    const bool fAlreadyHave{m_txdownloadman.AddTxAnnouncement(pfrom.GetId(), gtxid, current_time)};
4161
0
                    LogDebug(BCLog::NET, "got inv: %s %s peer=%d", inv.ToString(), fAlreadyHave ? "have" : "new", pfrom.GetId());
4162
0
                }
4163
0
            } else {
4164
0
                LogDebug(BCLog::NET, "Unknown inv type \"%s\" received from peer=%d\n", inv.ToString(), pfrom.GetId());
4165
0
            }
4166
0
        }
4167
4168
0
        if (best_block != nullptr) {
  Branch (4168:13): [True: 0, False: 0]
4169
            // If we haven't started initial headers-sync with this peer, then
4170
            // consider sending a getheaders now. On initial startup, there's a
4171
            // reliability vs bandwidth tradeoff, where we are only trying to do
4172
            // initial headers sync with one peer at a time, with a long
4173
            // timeout (at which point, if the sync hasn't completed, we will
4174
            // disconnect the peer and then choose another). In the meantime,
4175
            // as new blocks are found, we are willing to add one new peer per
4176
            // block to sync with as well, to sync quicker in the case where
4177
            // our initial peer is unresponsive (but less bandwidth than we'd
4178
            // use if we turned on sync with all peers).
4179
0
            CNodeState& state{*Assert(State(pfrom.GetId()))};
4180
0
            if (state.fSyncStarted || (!peer.m_inv_triggered_getheaders_before_sync && *best_block != m_last_block_inv_triggering_headers_sync)) {
  Branch (4180:17): [True: 0, False: 0]
  Branch (4180:40): [True: 0, False: 0]
  Branch (4180:88): [True: 0, False: 0]
4181
0
                if (MaybeSendGetHeaders(pfrom, GetLocator(m_chainman.m_best_header), peer)) {
  Branch (4181:21): [True: 0, False: 0]
4182
0
                    LogDebug(BCLog::NET, "getheaders (%d) %s to peer=%d\n",
4183
0
                            m_chainman.m_best_header->nHeight, best_block->ToString(),
4184
0
                            pfrom.GetId());
4185
0
                }
4186
0
                if (!state.fSyncStarted) {
  Branch (4186:21): [True: 0, False: 0]
4187
0
                    peer.m_inv_triggered_getheaders_before_sync = true;
4188
                    // Update the last block hash that triggered a new headers
4189
                    // sync, so that we don't turn on headers sync with more
4190
                    // than 1 new peer every new block.
4191
0
                    m_last_block_inv_triggering_headers_sync = *best_block;
4192
0
                }
4193
0
            }
4194
0
        }
4195
4196
0
        return;
4197
0
    }
4198
4199
0
    if (msg_type == NetMsgType::GETDATA) {
  Branch (4199:9): [True: 0, False: 0]
4200
0
        std::vector<CInv> vInv;
4201
0
        vRecv >> vInv;
4202
0
        if (vInv.size() > MAX_INV_SZ)
  Branch (4202:13): [True: 0, False: 0]
4203
0
        {
4204
0
            Misbehaving(peer, strprintf("getdata message size = %u", vInv.size()));
4205
0
            return;
4206
0
        }
4207
4208
0
        LogDebug(BCLog::NET, "received getdata (%u invsz) peer=%d\n", vInv.size(), pfrom.GetId());
4209
4210
0
        if (vInv.size() > 0) {
  Branch (4210:13): [True: 0, False: 0]
4211
0
            LogDebug(BCLog::NET, "received getdata for: %s peer=%d\n", vInv[0].ToString(), pfrom.GetId());
4212
0
        }
4213
4214
0
        if (pfrom.IsPrivateBroadcastConn()) {
  Branch (4214:13): [True: 0, False: 0]
4215
0
            const auto pushed_tx_opt{m_tx_for_private_broadcast.GetTxForNode(pfrom.GetId())};
4216
0
            if (!pushed_tx_opt) {
  Branch (4216:17): [True: 0, False: 0]
4217
0
                LogDebug(BCLog::PRIVBROADCAST, "Disconnecting: got GETDATA without sending an INV, %s",
4218
0
                         pfrom.LogPeer());
4219
0
                pfrom.fDisconnect = true;
4220
0
                return;
4221
0
            }
4222
4223
0
            const CTransactionRef& pushed_tx{*pushed_tx_opt};
4224
4225
            // The GETDATA request must contain exactly one inv and it must be for the transaction
4226
            // that we INVed to the peer earlier.
4227
0
            if (vInv.size() == 1 && vInv[0].IsMsgTx() && vInv[0].hash == pushed_tx->GetHash().ToUint256()) {
  Branch (4227:17): [True: 0, False: 0]
  Branch (4227:37): [True: 0, False: 0]
  Branch (4227:58): [True: 0, False: 0]
4228
4229
0
                MakeAndPushMessage(pfrom, NetMsgType::TX, TX_WITH_WITNESS(*pushed_tx));
4230
4231
0
                peer.m_ping_queued = true; // Ensure a ping will be sent: mimic a request via RPC.
4232
0
                MaybeSendPing(pfrom, peer, NodeClock::now());
4233
0
            } else {
4234
0
                LogDebug(BCLog::PRIVBROADCAST, "Disconnecting: got an unexpected GETDATA message, %s",
4235
0
                         pfrom.LogPeer());
4236
0
                pfrom.fDisconnect = true;
4237
0
            }
4238
0
            return;
4239
0
        }
4240
4241
0
        {
4242
0
            LOCK(peer.m_getdata_requests_mutex);
4243
0
            peer.m_getdata_requests.insert(peer.m_getdata_requests.end(), vInv.begin(), vInv.end());
4244
0
            ProcessGetData(pfrom, peer, interruptMsgProc);
4245
0
        }
4246
4247
0
        return;
4248
0
    }
4249
4250
0
    if (msg_type == NetMsgType::GETBLOCKS) {
  Branch (4250:9): [True: 0, False: 0]
4251
0
        CBlockLocator locator;
4252
0
        uint256 hashStop;
4253
0
        vRecv >> locator >> hashStop;
4254
4255
0
        if (locator.vHave.size() > MAX_LOCATOR_SZ) {
  Branch (4255:13): [True: 0, False: 0]
4256
0
            LogDebug(BCLog::NET, "getblocks locator size %lld > %d, %s", locator.vHave.size(), MAX_LOCATOR_SZ, pfrom.DisconnectMsg());
4257
0
            pfrom.fDisconnect = true;
4258
0
            return;
4259
0
        }
4260
4261
        // We might have announced the currently-being-connected tip using a
4262
        // compact block, which resulted in the peer sending a getblocks
4263
        // request, which we would otherwise respond to without the new block.
4264
        // To avoid this situation we simply verify that we are on our best
4265
        // known chain now. This is super overkill, but we handle it better
4266
        // for getheaders requests, and there are no known nodes which support
4267
        // compact blocks but still use getblocks to request blocks.
4268
0
        {
4269
0
            std::shared_ptr<const CBlock> a_recent_block;
4270
0
            {
4271
0
                LOCK(m_most_recent_block_mutex);
4272
0
                a_recent_block = m_most_recent_block;
4273
0
            }
4274
0
            BlockValidationState state;
4275
0
            if (!m_chainman.ActiveChainstate().ActivateBestChain(state, a_recent_block)) {
  Branch (4275:17): [True: 0, False: 0]
4276
0
                LogDebug(BCLog::NET, "failed to activate chain (%s)\n", state.ToString());
4277
0
            }
4278
0
        }
4279
4280
0
        LOCK(cs_main);
4281
4282
        // Find the last block the caller has in the main chain
4283
0
        const CBlockIndex* pindex = m_chainman.ActiveChainstate().FindForkInGlobalIndex(locator);
4284
4285
        // Send the rest of the chain
4286
0
        if (pindex)
  Branch (4286:13): [True: 0, False: 0]
4287
0
            pindex = m_chainman.ActiveChain().Next(*pindex);
4288
0
        int nLimit = 500;
4289
0
        LogDebug(BCLog::NET, "getblocks %d to %s limit %d from peer=%d\n", (pindex ? pindex->nHeight : -1), hashStop.IsNull() ? "end" : hashStop.ToString(), nLimit, pfrom.GetId());
4290
0
        for (; pindex; pindex = m_chainman.ActiveChain().Next(*pindex))
  Branch (4290:16): [True: 0, False: 0]
4291
0
        {
4292
0
            if (pindex->GetBlockHash() == hashStop)
  Branch (4292:17): [True: 0, False: 0]
4293
0
            {
4294
0
                LogDebug(BCLog::NET, " getblocks stopping at %d %s", pindex->nHeight, pindex->GetBlockHash().ToString());
4295
0
                break;
4296
0
            }
4297
            // If pruning, don't inv blocks unless we have on disk and are likely to still have
4298
            // for some reasonable time window (1 hour) that block relay might require.
4299
0
            const int nPrunedBlocksLikelyToHave = MIN_BLOCKS_TO_KEEP - 3600 / m_chainparams.GetConsensus().nPowTargetSpacing;
4300
0
            if (m_chainman.m_blockman.IsPruneMode() && (!(pindex->nStatus & BLOCK_HAVE_DATA) || pindex->nHeight <= m_chainman.ActiveChain().Tip()->nHeight - nPrunedBlocksLikelyToHave)) {
  Branch (4300:17): [True: 0, False: 0]
  Branch (4300:57): [True: 0, False: 0]
  Branch (4300:97): [True: 0, False: 0]
4301
0
                LogDebug(BCLog::NET, " getblocks stopping, pruned or too old block at %d %s\n", pindex->nHeight, pindex->GetBlockHash().ToString());
4302
0
                break;
4303
0
            }
4304
0
            WITH_LOCK(peer.m_block_inv_mutex, peer.m_blocks_for_inv_relay.push_back(pindex->GetBlockHash()));
4305
0
            if (--nLimit <= 0) {
  Branch (4305:17): [True: 0, False: 0]
4306
                // When this block is requested, we'll send an inv that'll
4307
                // trigger the peer to getblocks the next batch of inventory.
4308
0
                LogDebug(BCLog::NET, " getblocks stopping at limit %d %s", pindex->nHeight, pindex->GetBlockHash().ToString());
4309
0
                WITH_LOCK(peer.m_block_inv_mutex, {peer.m_continuation_block = pindex->GetBlockHash();});
4310
0
                break;
4311
0
            }
4312
0
        }
4313
0
        return;
4314
0
    }
4315
4316
0
    if (msg_type == NetMsgType::GETBLOCKTXN) {
  Branch (4316:9): [True: 0, False: 0]
4317
0
        BlockTransactionsRequest req;
4318
0
        vRecv >> req;
4319
        // Verify differential encoding invariant: indexes must be strictly increasing
4320
        // DifferenceFormatter should guarantee this property during deserialization
4321
0
        for (size_t i = 1; i < req.indexes.size(); ++i) {
  Branch (4321:28): [True: 0, False: 0]
4322
0
            Assume(req.indexes[i] > req.indexes[i-1]);
4323
0
        }
4324
4325
0
        std::shared_ptr<const CBlock> recent_block;
4326
0
        {
4327
0
            LOCK(m_most_recent_block_mutex);
4328
0
            if (m_most_recent_block_hash == req.blockhash)
  Branch (4328:17): [True: 0, False: 0]
4329
0
                recent_block = m_most_recent_block;
4330
            // Unlock m_most_recent_block_mutex to avoid cs_main lock inversion
4331
0
        }
4332
0
        if (recent_block) {
  Branch (4332:13): [True: 0, False: 0]
4333
0
            SendBlockTransactions(pfrom, peer, *recent_block, req);
4334
0
            return;
4335
0
        }
4336
4337
0
        FlatFilePos block_pos{};
4338
0
        {
4339
0
            LOCK(cs_main);
4340
4341
0
            const CBlockIndex* pindex = m_chainman.m_blockman.LookupBlockIndex(req.blockhash);
4342
0
            if (!pindex || !(pindex->nStatus & BLOCK_HAVE_DATA)) {
  Branch (4342:17): [True: 0, False: 0]
  Branch (4342:28): [True: 0, False: 0]
4343
0
                LogDebug(BCLog::NET, "Peer %d sent us a getblocktxn for a block we don't have\n", pfrom.GetId());
4344
0
                return;
4345
0
            }
4346
4347
0
            if (pindex->nHeight >= m_chainman.ActiveChain().Height() - MAX_BLOCKTXN_DEPTH) {
  Branch (4347:17): [True: 0, False: 0]
4348
0
                block_pos = pindex->GetBlockPos();
4349
0
            }
4350
0
        }
4351
4352
0
        if (!block_pos.IsNull()) {
  Branch (4352:13): [True: 0, False: 0]
4353
0
            CBlock block;
4354
0
            const bool ret{m_chainman.m_blockman.ReadBlock(block, block_pos, req.blockhash)};
4355
            // If height is above MAX_BLOCKTXN_DEPTH then this block cannot get
4356
            // pruned after we release cs_main above, so this read should never fail.
4357
0
            assert(ret);
  Branch (4357:13): [True: 0, False: 0]
4358
4359
0
            SendBlockTransactions(pfrom, peer, block, req);
4360
0
            return;
4361
0
        }
4362
4363
        // If an older block is requested (should never happen in practice,
4364
        // but can happen in tests) send a block response instead of a
4365
        // blocktxn response. Sending a full block response instead of a
4366
        // small blocktxn response is preferable in the case where a peer
4367
        // might maliciously send lots of getblocktxn requests to trigger
4368
        // expensive disk reads, because it will require the peer to
4369
        // actually receive all the data read from disk over the network.
4370
0
        LogDebug(BCLog::NET, "Peer %d sent us a getblocktxn for a block > %i deep\n", pfrom.GetId(), MAX_BLOCKTXN_DEPTH);
4371
0
        CInv inv{MSG_WITNESS_BLOCK, req.blockhash};
4372
0
        WITH_LOCK(peer.m_getdata_requests_mutex, peer.m_getdata_requests.push_back(inv));
4373
        // The message processing loop will go around again (without pausing) and we'll respond then
4374
0
        return;
4375
0
    }
4376
4377
0
    if (msg_type == NetMsgType::GETHEADERS) {
  Branch (4377:9): [True: 0, False: 0]
4378
0
        CBlockLocator locator;
4379
0
        uint256 hashStop;
4380
0
        vRecv >> locator >> hashStop;
4381
4382
0
        if (locator.vHave.size() > MAX_LOCATOR_SZ) {
  Branch (4382:13): [True: 0, False: 0]
4383
0
            LogDebug(BCLog::NET, "getheaders locator size %lld > %d, %s", locator.vHave.size(), MAX_LOCATOR_SZ, pfrom.DisconnectMsg());
4384
0
            pfrom.fDisconnect = true;
4385
0
            return;
4386
0
        }
4387
4388
0
        if (m_chainman.m_blockman.LoadingBlocks()) {
  Branch (4388:13): [True: 0, False: 0]
4389
0
            LogDebug(BCLog::NET, "Ignoring getheaders from peer=%d while importing/reindexing\n", pfrom.GetId());
4390
0
            return;
4391
0
        }
4392
4393
0
        LOCK(cs_main);
4394
4395
        // Don't serve headers from our active chain until our chainwork is at least
4396
        // the minimum chain work. This prevents us from starting a low-work headers
4397
        // sync that will inevitably be aborted by our peer.
4398
0
        if (m_chainman.ActiveTip() == nullptr ||
  Branch (4398:13): [True: 0, False: 0]
4399
0
                (m_chainman.ActiveTip()->nChainWork < m_chainman.MinimumChainWork() && !pfrom.HasPermission(NetPermissionFlags::Download))) {
  Branch (4399:18): [True: 0, False: 0]
  Branch (4399:88): [True: 0, False: 0]
4400
0
            LogDebug(BCLog::NET, "Ignoring getheaders from peer=%d because active chain has too little work; sending empty response\n", pfrom.GetId());
4401
            // Just respond with an empty headers message, to tell the peer to
4402
            // go away but not treat us as unresponsive.
4403
0
            MakeAndPushMessage(pfrom, NetMsgType::HEADERS, std::vector<CBlockHeader>());
4404
0
            return;
4405
0
        }
4406
4407
0
        CNodeState *nodestate = State(pfrom.GetId());
4408
0
        const CBlockIndex* pindex = nullptr;
4409
0
        if (locator.IsNull())
  Branch (4409:13): [True: 0, False: 0]
4410
0
        {
4411
            // If locator is null, return the hashStop block
4412
0
            pindex = m_chainman.m_blockman.LookupBlockIndex(hashStop);
4413
0
            if (!pindex) {
  Branch (4413:17): [True: 0, False: 0]
4414
0
                return;
4415
0
            }
4416
0
            if (!BlockRequestAllowed(*pindex)) {
  Branch (4416:17): [True: 0, False: 0]
4417
0
                LogDebug(BCLog::NET, "%s: ignoring request from peer=%i for old block header that isn't in the main chain\n", __func__, pfrom.GetId());
4418
0
                return;
4419
0
            }
4420
0
        }
4421
0
        else
4422
0
        {
4423
            // Find the last block the caller has in the main chain
4424
0
            pindex = m_chainman.ActiveChainstate().FindForkInGlobalIndex(locator);
4425
0
            if (pindex)
  Branch (4425:17): [True: 0, False: 0]
4426
0
                pindex = m_chainman.ActiveChain().Next(*pindex);
4427
0
        }
4428
4429
        // we must use CBlocks, as CBlockHeaders won't include the 0x00 nTx count at the end
4430
0
        std::vector<CBlock> vHeaders;
4431
0
        int nLimit = m_opts.max_headers_result;
4432
0
        LogDebug(BCLog::NET, "getheaders %d to %s from peer=%d\n", (pindex ? pindex->nHeight : -1), hashStop.IsNull() ? "end" : hashStop.ToString(), pfrom.GetId());
4433
0
        for (; pindex; pindex = m_chainman.ActiveChain().Next(*pindex))
  Branch (4433:16): [True: 0, False: 0]
4434
0
        {
4435
0
            vHeaders.emplace_back(pindex->GetBlockHeader());
4436
0
            if (--nLimit <= 0 || pindex->GetBlockHash() == hashStop)
  Branch (4436:17): [True: 0, False: 0]
  Branch (4436:17): [True: 0, False: 0]
  Branch (4436:34): [True: 0, False: 0]
4437
0
                break;
4438
0
        }
4439
        // pindex can be nullptr either if we sent m_chainman.ActiveChain().Tip() OR
4440
        // if our peer has m_chainman.ActiveChain().Tip() (and thus we are sending an empty
4441
        // headers message). In both cases it's safe to update
4442
        // pindexBestHeaderSent to be our tip.
4443
        //
4444
        // It is important that we simply reset the BestHeaderSent value here,
4445
        // and not max(BestHeaderSent, newHeaderSent). We might have announced
4446
        // the currently-being-connected tip using a compact block, which
4447
        // resulted in the peer sending a headers request, which we respond to
4448
        // without the new block. By resetting the BestHeaderSent, we ensure we
4449
        // will re-announce the new block via headers (or compact blocks again)
4450
        // in the SendMessages logic.
4451
0
        nodestate->pindexBestHeaderSent = pindex ? pindex : m_chainman.ActiveChain().Tip();
  Branch (4451:43): [True: 0, False: 0]
4452
0
        MakeAndPushMessage(pfrom, NetMsgType::HEADERS, TX_WITH_WITNESS(vHeaders));
4453
0
        return;
4454
0
    }
4455
4456
0
    if (msg_type == NetMsgType::TX) {
  Branch (4456:9): [True: 0, False: 0]
4457
0
        if (RejectIncomingTxs(pfrom)) {
  Branch (4457:13): [True: 0, False: 0]
4458
0
            LogDebug(BCLog::NET, "transaction sent in violation of protocol, %s", pfrom.DisconnectMsg());
4459
0
            pfrom.fDisconnect = true;
4460
0
            return;
4461
0
        }
4462
4463
        // Stop processing the transaction early if we are still in IBD since we don't
4464
        // have enough information to validate it yet. Sending unsolicited transactions
4465
        // is not considered a protocol violation, so don't punish the peer.
4466
0
        if (m_chainman.IsInitialBlockDownload()) return;
  Branch (4466:13): [True: 0, False: 0]
4467
4468
0
        CTransactionRef ptx;
4469
0
        vRecv >> TX_WITH_WITNESS(ptx);
4470
4471
0
        const Txid& txid = ptx->GetHash();
4472
0
        const Wtxid& wtxid = ptx->GetWitnessHash();
4473
4474
0
        const uint256& hash = peer.m_wtxid_relay ? wtxid.ToUint256() : txid.ToUint256();
  Branch (4474:31): [True: 0, False: 0]
4475
0
        AddKnownTx(peer, hash);
4476
4477
0
        if (const auto num_broadcasted{m_tx_for_private_broadcast.Remove(ptx)}) {
  Branch (4477:24): [True: 0, False: 0]
4478
0
            LogDebug(BCLog::PRIVBROADCAST, "Received our privately broadcast transaction (txid=%s) from the "
4479
0
                                           "network from %s; stopping private broadcast attempts",
4480
0
                     txid.ToString(), pfrom.LogPeer());
4481
0
            if (NUM_PRIVATE_BROADCAST_PER_TX > num_broadcasted.value()) {
  Branch (4481:17): [True: 0, False: 0]
4482
                // Not all of the initial NUM_PRIVATE_BROADCAST_PER_TX connections were needed.
4483
                // Tell CConnman it does not need to start the remaining ones.
4484
0
                m_connman.m_private_broadcast.NumToOpenSub(NUM_PRIVATE_BROADCAST_PER_TX - num_broadcasted.value());
4485
0
            }
4486
0
        }
4487
4488
0
        LOCK2(cs_main, m_tx_download_mutex);
4489
4490
0
        const auto& [should_validate, package_to_validate] = m_txdownloadman.ReceivedTx(pfrom.GetId(), ptx);
4491
0
        if (!should_validate) {
  Branch (4491:13): [True: 0, False: 0]
4492
0
            if (pfrom.HasPermission(NetPermissionFlags::ForceRelay)) {
  Branch (4492:17): [True: 0, False: 0]
4493
                // Always relay transactions received from peers with forcerelay
4494
                // permission, even if they were already in the mempool, allowing
4495
                // the node to function as a gateway for nodes hidden behind it.
4496
0
                if (!m_mempool.exists(txid)) {
  Branch (4496:21): [True: 0, False: 0]
4497
0
                    LogInfo("Not relaying non-mempool transaction %s (wtxid=%s) from forcerelay peer=%d\n",
4498
0
                              txid.ToString(), wtxid.ToString(), pfrom.GetId());
4499
0
                } else {
4500
0
                    LogInfo("Force relaying tx %s (wtxid=%s) from peer=%d\n",
4501
0
                              txid.ToString(), wtxid.ToString(), pfrom.GetId());
4502
0
                    InitiateTxBroadcastToAll(txid, wtxid);
4503
0
                }
4504
0
            }
4505
4506
0
            if (package_to_validate) {
  Branch (4506:17): [True: 0, False: 0]
4507
0
                const auto package_result{ProcessNewPackage(m_chainman.ActiveChainstate(), m_mempool, package_to_validate->m_txns, /*test_accept=*/false, /*client_maxfeerate=*/std::nullopt)};
4508
0
                LogDebug(BCLog::TXPACKAGES, "package evaluation for %s: %s\n", package_to_validate->ToString(),
4509
0
                         package_result.m_state.IsValid() ? "package accepted" : "package rejected");
4510
0
                ProcessPackageResult(package_to_validate.value(), package_result);
4511
0
            }
4512
0
            return;
4513
0
        }
4514
4515
        // ReceivedTx should not be telling us to validate the tx and a package.
4516
0
        Assume(!package_to_validate.has_value());
4517
4518
0
        const MempoolAcceptResult result = m_chainman.ProcessTransaction(ptx);
4519
0
        const TxValidationState& state = result.m_state;
4520
4521
0
        if (result.m_result_type == MempoolAcceptResult::ResultType::VALID) {
  Branch (4521:13): [True: 0, False: 0]
4522
0
            ProcessValidTx(pfrom.GetId(), ptx, result.m_replaced_transactions);
4523
0
            pfrom.m_last_tx_time = GetTime<std::chrono::seconds>();
4524
0
        }
4525
0
        if (state.IsInvalid()) {
  Branch (4525:13): [True: 0, False: 0]
4526
0
            if (auto package_to_validate{ProcessInvalidTx(pfrom.GetId(), ptx, state, /*first_time_failure=*/true)}) {
  Branch (4526:22): [True: 0, False: 0]
4527
0
                const auto package_result{ProcessNewPackage(m_chainman.ActiveChainstate(), m_mempool, package_to_validate->m_txns, /*test_accept=*/false, /*client_maxfeerate=*/std::nullopt)};
4528
0
                LogDebug(BCLog::TXPACKAGES, "package evaluation for %s: %s\n", package_to_validate->ToString(),
4529
0
                         package_result.m_state.IsValid() ? "package accepted" : "package rejected");
4530
0
                ProcessPackageResult(package_to_validate.value(), package_result);
4531
0
            }
4532
0
        }
4533
4534
0
        return;
4535
0
    }
4536
4537
0
    if (msg_type == NetMsgType::CMPCTBLOCK)
  Branch (4537:9): [True: 0, False: 0]
4538
0
    {
4539
        // Ignore cmpctblock received while importing
4540
0
        if (m_chainman.m_blockman.LoadingBlocks()) {
  Branch (4540:13): [True: 0, False: 0]
4541
0
            LogDebug(BCLog::NET, "Unexpected cmpctblock message received from peer %d\n", pfrom.GetId());
4542
0
            return;
4543
0
        }
4544
4545
0
        CBlockHeaderAndShortTxIDs cmpctblock;
4546
0
        vRecv >> cmpctblock;
4547
4548
0
        bool received_new_header = false;
4549
0
        const auto blockhash = cmpctblock.header.GetHash();
4550
4551
0
        {
4552
0
        LOCK(cs_main);
4553
4554
0
        const CBlockIndex* prev_block = m_chainman.m_blockman.LookupBlockIndex(cmpctblock.header.hashPrevBlock);
4555
0
        if (!prev_block) {
  Branch (4555:13): [True: 0, False: 0]
4556
            // Doesn't connect (or is genesis), instead of DoSing in AcceptBlockHeader, request deeper headers
4557
0
            if (!m_chainman.IsInitialBlockDownload()) {
  Branch (4557:17): [True: 0, False: 0]
4558
0
                MaybeSendGetHeaders(pfrom, GetLocator(m_chainman.m_best_header), peer);
4559
0
            }
4560
0
            return;
4561
0
        } else if (prev_block->nChainWork + GetBlockProof(cmpctblock.header) < GetAntiDoSWorkThreshold()) {
  Branch (4561:20): [True: 0, False: 0]
4562
            // If we get a low-work header in a compact block, we can ignore it.
4563
0
            LogDebug(BCLog::NET, "Ignoring low-work compact block from peer %d\n", pfrom.GetId());
4564
0
            return;
4565
0
        }
4566
4567
0
        if (!m_chainman.m_blockman.LookupBlockIndex(blockhash)) {
  Branch (4567:13): [True: 0, False: 0]
4568
0
            received_new_header = true;
4569
0
        }
4570
0
        }
4571
4572
0
        const CBlockIndex *pindex = nullptr;
4573
0
        BlockValidationState state;
4574
0
        if (!m_chainman.ProcessNewBlockHeaders({{cmpctblock.header}}, /*min_pow_checked=*/true, state, &pindex)) {
  Branch (4574:13): [True: 0, False: 0]
4575
0
            if (state.IsInvalid()) {
  Branch (4575:17): [True: 0, False: 0]
4576
0
                MaybePunishNodeForBlock(pfrom.GetId(), state, /*via_compact_block=*/true, "invalid header via cmpctblock");
4577
0
                return;
4578
0
            }
4579
0
        }
4580
4581
        // If AcceptBlockHeader returned true, it set pindex
4582
0
        Assert(pindex);
4583
0
        if (received_new_header) {
  Branch (4583:13): [True: 0, False: 0]
4584
0
            LogBlockHeader(*pindex, pfrom, /*via_compact_block=*/true);
4585
0
        }
4586
4587
0
        bool fProcessBLOCKTXN = false;
4588
4589
        // If we end up treating this as a plain headers message, call that as well
4590
        // without cs_main.
4591
0
        bool fRevertToHeaderProcessing = false;
4592
4593
        // Keep a CBlock for "optimistic" compactblock reconstructions (see
4594
        // below)
4595
0
        std::shared_ptr<CBlock> pblock = std::make_shared<CBlock>();
4596
0
        bool fBlockReconstructed = false;
4597
4598
0
        {
4599
0
        LOCK(cs_main);
4600
0
        UpdateBlockAvailability(pfrom.GetId(), pindex->GetBlockHash());
4601
4602
0
        CNodeState *nodestate = State(pfrom.GetId());
4603
4604
        // If this was a new header with more work than our tip, update the
4605
        // peer's last block announcement time
4606
0
        if (received_new_header && pindex->nChainWork > m_chainman.ActiveChain().Tip()->nChainWork) {
  Branch (4606:13): [True: 0, False: 0]
  Branch (4606:36): [True: 0, False: 0]
4607
0
            nodestate->m_last_block_announcement = GetTime();
4608
0
        }
4609
4610
0
        if (pindex->nStatus & BLOCK_HAVE_DATA) // Nothing to do here
  Branch (4610:13): [True: 0, False: 0]
4611
0
            return;
4612
4613
0
        auto range_flight = mapBlocksInFlight.equal_range(pindex->GetBlockHash());
4614
0
        size_t already_in_flight = std::distance(range_flight.first, range_flight.second);
4615
0
        bool requested_block_from_this_peer{false};
4616
4617
        // Multimap ensures ordering of outstanding requests. It's either empty or first in line.
4618
0
        bool first_in_flight = already_in_flight == 0 || (range_flight.first->second.first == pfrom.GetId());
  Branch (4618:32): [True: 0, False: 0]
  Branch (4618:58): [True: 0, False: 0]
4619
4620
0
        while (range_flight.first != range_flight.second) {
  Branch (4620:16): [True: 0, False: 0]
4621
0
            if (range_flight.first->second.first == pfrom.GetId()) {
  Branch (4621:17): [True: 0, False: 0]
4622
0
                requested_block_from_this_peer = true;
4623
0
                break;
4624
0
            }
4625
0
            range_flight.first++;
4626
0
        }
4627
4628
0
        if (pindex->nChainWork <= m_chainman.ActiveChain().Tip()->nChainWork || // We know something better
  Branch (4628:13): [True: 0, False: 0]
4629
0
                pindex->nTx != 0) { // We had this block at some point, but pruned it
  Branch (4629:17): [True: 0, False: 0]
4630
0
            if (requested_block_from_this_peer) {
  Branch (4630:17): [True: 0, False: 0]
4631
                // We requested this block for some reason, but our mempool will probably be useless
4632
                // so we just grab the block via normal getdata
4633
0
                std::vector<CInv> vInv(1);
4634
0
                vInv[0] = CInv(MSG_BLOCK | GetFetchFlags(peer), blockhash);
4635
0
                MakeAndPushMessage(pfrom, NetMsgType::GETDATA, vInv);
4636
0
            }
4637
0
            return;
4638
0
        }
4639
4640
        // If we're not close to tip yet, give up and let parallel block fetch work its magic
4641
0
        if (!already_in_flight && !CanDirectFetch()) {
  Branch (4641:13): [True: 0, False: 0]
  Branch (4641:35): [True: 0, False: 0]
4642
0
            return;
4643
0
        }
4644
4645
        // We want to be a bit conservative just to be extra careful about DoS
4646
        // possibilities in compact block processing...
4647
0
        if (pindex->nHeight <= m_chainman.ActiveChain().Height() + 2) {
  Branch (4647:13): [True: 0, False: 0]
4648
0
            if ((already_in_flight < MAX_CMPCTBLOCKS_INFLIGHT_PER_BLOCK && nodestate->vBlocksInFlight.size() < MAX_BLOCKS_IN_TRANSIT_PER_PEER) ||
  Branch (4648:18): [True: 0, False: 0]
  Branch (4648:76): [True: 0, False: 0]
4649
0
                 requested_block_from_this_peer) {
  Branch (4649:18): [True: 0, False: 0]
4650
0
                std::list<QueuedBlock>::iterator* queuedBlockIt = nullptr;
4651
0
                if (!BlockRequested(pfrom.GetId(), *pindex, &queuedBlockIt)) {
  Branch (4651:21): [True: 0, False: 0]
4652
0
                    if (!(*queuedBlockIt)->partialBlock)
  Branch (4652:25): [True: 0, False: 0]
4653
0
                        (*queuedBlockIt)->partialBlock.reset(new PartiallyDownloadedBlock(&m_mempool));
4654
0
                    else {
4655
                        // The block was already in flight using compact blocks from the same peer
4656
0
                        LogDebug(BCLog::NET, "Peer sent us compact block we were already syncing!\n");
4657
0
                        return;
4658
0
                    }
4659
0
                }
4660
4661
0
                PartiallyDownloadedBlock& partialBlock = *(*queuedBlockIt)->partialBlock;
4662
0
                ReadStatus status = partialBlock.InitData(cmpctblock, vExtraTxnForCompact);
4663
0
                if (status == READ_STATUS_INVALID) {
  Branch (4663:21): [True: 0, False: 0]
4664
0
                    RemoveBlockRequest(pindex->GetBlockHash(), pfrom.GetId()); // Reset in-flight state in case Misbehaving does not result in a disconnect
4665
0
                    Misbehaving(peer, "invalid compact block");
4666
0
                    return;
4667
0
                } else if (status == READ_STATUS_FAILED) {
  Branch (4667:28): [True: 0, False: 0]
4668
0
                    if (first_in_flight)  {
  Branch (4668:25): [True: 0, False: 0]
4669
                        // Duplicate txindexes, the block is now in-flight, so just request it
4670
0
                        std::vector<CInv> vInv(1);
4671
0
                        vInv[0] = CInv(MSG_BLOCK | GetFetchFlags(peer), blockhash);
4672
0
                        MakeAndPushMessage(pfrom, NetMsgType::GETDATA, vInv);
4673
0
                    } else {
4674
                        // Give up for this peer and wait for other peer(s)
4675
0
                        RemoveBlockRequest(pindex->GetBlockHash(), pfrom.GetId());
4676
0
                    }
4677
0
                    return;
4678
0
                }
4679
4680
0
                BlockTransactionsRequest req;
4681
0
                for (size_t i = 0; i < cmpctblock.BlockTxCount(); i++) {
  Branch (4681:36): [True: 0, False: 0]
4682
0
                    if (!partialBlock.IsTxAvailable(i))
  Branch (4682:25): [True: 0, False: 0]
4683
0
                        req.indexes.push_back(i);
4684
0
                }
4685
0
                if (req.indexes.empty()) {
  Branch (4685:21): [True: 0, False: 0]
4686
0
                    fProcessBLOCKTXN = true;
4687
0
                } else if (first_in_flight) {
  Branch (4687:28): [True: 0, False: 0]
4688
                    // We will try to round-trip any compact blocks we get on failure,
4689
                    // as long as it's first...
4690
0
                    req.blockhash = pindex->GetBlockHash();
4691
0
                    MakeAndPushMessage(pfrom, NetMsgType::GETBLOCKTXN, req);
4692
0
                } else if (pfrom.m_bip152_highbandwidth_to &&
  Branch (4692:28): [True: 0, False: 0]
4693
0
                    (!pfrom.IsInboundConn() ||
  Branch (4693:22): [True: 0, False: 0]
4694
0
                    IsBlockRequestedFromOutbound(blockhash) ||
  Branch (4694:21): [True: 0, False: 0]
4695
0
                    already_in_flight < MAX_CMPCTBLOCKS_INFLIGHT_PER_BLOCK - 1)) {
  Branch (4695:21): [True: 0, False: 0]
4696
                    // ... or it's a hb relay peer and:
4697
                    // - peer is outbound, or
4698
                    // - we already have an outbound attempt in flight(so we'll take what we can get), or
4699
                    // - it's not the final parallel download slot (which we may reserve for first outbound)
4700
0
                    req.blockhash = pindex->GetBlockHash();
4701
0
                    MakeAndPushMessage(pfrom, NetMsgType::GETBLOCKTXN, req);
4702
0
                } else {
4703
                    // Give up for this peer and wait for other peer(s)
4704
0
                    RemoveBlockRequest(pindex->GetBlockHash(), pfrom.GetId());
4705
0
                }
4706
0
            } else {
4707
                // This block is either already in flight from a different
4708
                // peer, or this peer has too many blocks outstanding to
4709
                // download from.
4710
                // Optimistically try to reconstruct anyway since we might be
4711
                // able to without any round trips.
4712
0
                PartiallyDownloadedBlock tempBlock(&m_mempool);
4713
0
                ReadStatus status = tempBlock.InitData(cmpctblock, vExtraTxnForCompact);
4714
0
                if (status != READ_STATUS_OK) {
  Branch (4714:21): [True: 0, False: 0]
4715
                    // TODO: don't ignore failures
4716
0
                    return;
4717
0
                }
4718
0
                std::vector<CTransactionRef> dummy;
4719
0
                const CBlockIndex* prev_block{Assume(m_chainman.m_blockman.LookupBlockIndex(cmpctblock.header.hashPrevBlock))};
4720
0
                status = tempBlock.FillBlock(*pblock, dummy,
4721
0
                                             /*segwit_active=*/DeploymentActiveAfter(prev_block, m_chainman, Consensus::DEPLOYMENT_SEGWIT));
4722
0
                if (status == READ_STATUS_OK) {
  Branch (4722:21): [True: 0, False: 0]
4723
0
                    fBlockReconstructed = true;
4724
0
                }
4725
0
            }
4726
0
        } else {
4727
0
            if (requested_block_from_this_peer) {
  Branch (4727:17): [True: 0, False: 0]
4728
                // We requested this block, but its far into the future, so our
4729
                // mempool will probably be useless - request the block normally
4730
0
                std::vector<CInv> vInv(1);
4731
0
                vInv[0] = CInv(MSG_BLOCK | GetFetchFlags(peer), blockhash);
4732
0
                MakeAndPushMessage(pfrom, NetMsgType::GETDATA, vInv);
4733
0
                return;
4734
0
            } else {
4735
                // If this was an announce-cmpctblock, we want the same treatment as a header message
4736
0
                fRevertToHeaderProcessing = true;
4737
0
            }
4738
0
        }
4739
0
        } // cs_main
4740
4741
0
        if (fProcessBLOCKTXN) {
  Branch (4741:13): [True: 0, False: 0]
4742
0
            BlockTransactions txn;
4743
0
            txn.blockhash = blockhash;
4744
0
            return ProcessCompactBlockTxns(pfrom, peer, txn);
4745
0
        }
4746
4747
0
        if (fRevertToHeaderProcessing) {
  Branch (4747:13): [True: 0, False: 0]
4748
            // Headers received from HB compact block peers are permitted to be
4749
            // relayed before full validation (see BIP 152), so we don't want to disconnect
4750
            // the peer if the header turns out to be for an invalid block.
4751
            // Note that if a peer tries to build on an invalid chain, that
4752
            // will be detected and the peer will be disconnected/discouraged.
4753
0
            return ProcessHeadersMessage(pfrom, peer, {cmpctblock.header}, /*via_compact_block=*/true);
4754
0
        }
4755
4756
0
        if (fBlockReconstructed) {
  Branch (4756:13): [True: 0, False: 0]
4757
            // If we got here, we were able to optimistically reconstruct a
4758
            // block that is in flight from some other peer.
4759
0
            {
4760
0
                LOCK(cs_main);
4761
0
                mapBlockSource.emplace(pblock->GetHash(), std::make_pair(pfrom.GetId(), false));
4762
0
            }
4763
            // Setting force_processing to true means that we bypass some of
4764
            // our anti-DoS protections in AcceptBlock, which filters
4765
            // unrequested blocks that might be trying to waste our resources
4766
            // (eg disk space). Because we only try to reconstruct blocks when
4767
            // we're close to caught up (via the CanDirectFetch() requirement
4768
            // above, combined with the behavior of not requesting blocks until
4769
            // we have a chain with at least the minimum chain work), and we ignore
4770
            // compact blocks with less work than our tip, it is safe to treat
4771
            // reconstructed compact blocks as having been requested.
4772
0
            ProcessBlock(pfrom, pblock, /*force_processing=*/true, /*min_pow_checked=*/true);
4773
0
            LOCK(cs_main); // hold cs_main for CBlockIndex::IsValid()
4774
0
            if (pindex->IsValid(BLOCK_VALID_TRANSACTIONS)) {
  Branch (4774:17): [True: 0, False: 0]
4775
                // Clear download state for this block, which is in
4776
                // process from some other peer.  We do this after calling
4777
                // ProcessNewBlock so that a malleated cmpctblock announcement
4778
                // can't be used to interfere with block relay.
4779
0
                RemoveBlockRequest(pblock->GetHash(), std::nullopt);
4780
0
            }
4781
0
        }
4782
0
        return;
4783
0
    }
4784
4785
0
    if (msg_type == NetMsgType::BLOCKTXN)
  Branch (4785:9): [True: 0, False: 0]
4786
0
    {
4787
        // Ignore blocktxn received while importing
4788
0
        if (m_chainman.m_blockman.LoadingBlocks()) {
  Branch (4788:13): [True: 0, False: 0]
4789
0
            LogDebug(BCLog::NET, "Unexpected blocktxn message received from peer %d\n", pfrom.GetId());
4790
0
            return;
4791
0
        }
4792
4793
0
        BlockTransactions resp;
4794
0
        vRecv >> resp;
4795
4796
0
        return ProcessCompactBlockTxns(pfrom, peer, resp);
4797
0
    }
4798
4799
0
    if (msg_type == NetMsgType::HEADERS)
  Branch (4799:9): [True: 0, False: 0]
4800
0
    {
4801
        // Ignore headers received while importing
4802
0
        if (m_chainman.m_blockman.LoadingBlocks()) {
  Branch (4802:13): [True: 0, False: 0]
4803
0
            LogDebug(BCLog::NET, "Unexpected headers message received from peer %d\n", pfrom.GetId());
4804
0
            return;
4805
0
        }
4806
4807
0
        std::vector<CBlockHeader> headers;
4808
4809
        // Bypass the normal CBlock deserialization, as we don't want to risk deserializing 2000 full blocks.
4810
0
        unsigned int nCount = ReadCompactSize(vRecv);
4811
0
        if (nCount > m_opts.max_headers_result) {
  Branch (4811:13): [True: 0, False: 0]
4812
0
            Misbehaving(peer, strprintf("headers message size = %u", nCount));
4813
0
            return;
4814
0
        }
4815
0
        headers.resize(nCount);
4816
0
        for (unsigned int n = 0; n < nCount; n++) {
  Branch (4816:34): [True: 0, False: 0]
4817
0
            vRecv >> headers[n];
4818
0
            ReadCompactSize(vRecv); // ignore tx count; assume it is 0.
4819
0
        }
4820
4821
0
        ProcessHeadersMessage(pfrom, peer, std::move(headers), /*via_compact_block=*/false);
4822
4823
        // Check if the headers presync progress needs to be reported to validation.
4824
        // This needs to be done without holding the m_headers_presync_mutex lock.
4825
0
        if (m_headers_presync_should_signal.exchange(false)) {
  Branch (4825:13): [True: 0, False: 0]
4826
0
            HeadersPresyncStats stats;
4827
0
            {
4828
0
                LOCK(m_headers_presync_mutex);
4829
0
                auto it = m_headers_presync_stats.find(m_headers_presync_bestpeer);
4830
0
                if (it != m_headers_presync_stats.end()) stats = it->second;
  Branch (4830:21): [True: 0, False: 0]
4831
0
            }
4832
0
            if (stats.second) {
  Branch (4832:17): [True: 0, False: 0]
4833
0
                m_chainman.ReportHeadersPresync(stats.second->first, stats.second->second);
4834
0
            }
4835
0
        }
4836
4837
0
        return;
4838
0
    }
4839
4840
0
    if (msg_type == NetMsgType::BLOCK)
  Branch (4840:9): [True: 0, False: 0]
4841
0
    {
4842
        // Ignore block received while importing
4843
0
        if (m_chainman.m_blockman.LoadingBlocks()) {
  Branch (4843:13): [True: 0, False: 0]
4844
0
            LogDebug(BCLog::NET, "Unexpected block message received from peer %d\n", pfrom.GetId());
4845
0
            return;
4846
0
        }
4847
4848
0
        std::shared_ptr<CBlock> pblock = std::make_shared<CBlock>();
4849
0
        vRecv >> TX_WITH_WITNESS(*pblock);
4850
4851
0
        LogDebug(BCLog::NET, "received block %s peer=%d\n", pblock->GetHash().ToString(), pfrom.GetId());
4852
4853
0
        const CBlockIndex* prev_block{WITH_LOCK(m_chainman.GetMutex(), return m_chainman.m_blockman.LookupBlockIndex(pblock->hashPrevBlock))};
4854
4855
        // Check for possible mutation if it connects to something we know so we can check for DEPLOYMENT_SEGWIT being active
4856
0
        if (prev_block && IsBlockMutated(/*block=*/*pblock,
  Branch (4856:13): [True: 0, False: 0]
  Branch (4856:27): [True: 0, False: 0]
4857
0
                           /*check_witness_root=*/DeploymentActiveAfter(prev_block, m_chainman, Consensus::DEPLOYMENT_SEGWIT))) {
4858
0
            LogDebug(BCLog::NET, "Received mutated block from peer=%d\n", peer.m_id);
4859
0
            Misbehaving(peer, "mutated block");
4860
0
            WITH_LOCK(cs_main, RemoveBlockRequest(pblock->GetHash(), peer.m_id));
4861
0
            return;
4862
0
        }
4863
4864
0
        bool forceProcessing = false;
4865
0
        const uint256 hash(pblock->GetHash());
4866
0
        bool min_pow_checked = false;
4867
0
        {
4868
0
            LOCK(cs_main);
4869
            // Always process the block if we requested it, since we may
4870
            // need it even when it's not a candidate for a new best tip.
4871
0
            forceProcessing = IsBlockRequested(hash);
4872
0
            RemoveBlockRequest(hash, pfrom.GetId());
4873
            // mapBlockSource is only used for punishing peers and setting
4874
            // which peers send us compact blocks, so the race between here and
4875
            // cs_main in ProcessNewBlock is fine.
4876
0
            mapBlockSource.emplace(hash, std::make_pair(pfrom.GetId(), true));
4877
4878
            // Check claimed work on this block against our anti-dos thresholds.
4879
0
            if (prev_block && prev_block->nChainWork + GetBlockProof(*pblock) >= GetAntiDoSWorkThreshold()) {
  Branch (4879:17): [True: 0, False: 0]
  Branch (4879:17): [True: 0, False: 0]
  Branch (4879:31): [True: 0, False: 0]
4880
0
                min_pow_checked = true;
4881
0
            }
4882
0
        }
4883
0
        ProcessBlock(pfrom, pblock, forceProcessing, min_pow_checked);
4884
0
        return;
4885
0
    }
4886
4887
0
    if (msg_type == NetMsgType::GETADDR) {
  Branch (4887:9): [True: 0, False: 0]
4888
        // This asymmetric behavior for inbound and outbound connections was introduced
4889
        // to prevent a fingerprinting attack: an attacker can send specific fake addresses
4890
        // to users' AddrMan and later request them by sending getaddr messages.
4891
        // Making nodes which are behind NAT and can only make outgoing connections ignore
4892
        // the getaddr message mitigates the attack.
4893
0
        if (!pfrom.IsInboundConn()) {
  Branch (4893:13): [True: 0, False: 0]
4894
0
            LogDebug(BCLog::NET, "Ignoring \"getaddr\" from %s connection. peer=%d\n", pfrom.ConnectionTypeAsString(), pfrom.GetId());
4895
0
            return;
4896
0
        }
4897
4898
        // Since this must be an inbound connection, SetupAddressRelay will
4899
        // never fail.
4900
0
        Assume(SetupAddressRelay(pfrom, peer));
4901
4902
        // Only send one GetAddr response per connection to reduce resource waste
4903
        // and discourage addr stamping of INV announcements.
4904
0
        if (peer.m_getaddr_recvd) {
  Branch (4904:13): [True: 0, False: 0]
4905
0
            LogDebug(BCLog::NET, "Ignoring repeated \"getaddr\". peer=%d\n", pfrom.GetId());
4906
0
            return;
4907
0
        }
4908
0
        peer.m_getaddr_recvd = true;
4909
4910
0
        peer.m_addrs_to_send.clear();
4911
0
        std::vector<CAddress> vAddr;
4912
0
        if (pfrom.HasPermission(NetPermissionFlags::Addr)) {
  Branch (4912:13): [True: 0, False: 0]
4913
0
            vAddr = m_connman.GetAddressesUnsafe(MAX_ADDR_TO_SEND, MAX_PCT_ADDR_TO_SEND, /*network=*/std::nullopt);
4914
0
        } else {
4915
0
            vAddr = m_connman.GetAddresses(pfrom, MAX_ADDR_TO_SEND, MAX_PCT_ADDR_TO_SEND);
4916
0
        }
4917
0
        for (const CAddress &addr : vAddr) {
  Branch (4917:35): [True: 0, False: 0]
4918
0
            PushAddress(peer, addr);
4919
0
        }
4920
0
        return;
4921
0
    }
4922
4923
0
    if (msg_type == NetMsgType::MEMPOOL) {
  Branch (4923:9): [True: 0, False: 0]
4924
        // Only process received mempool messages if we advertise NODE_BLOOM
4925
        // or if the peer has mempool permissions.
4926
0
        if (!(peer.m_our_services & NODE_BLOOM) && !pfrom.HasPermission(NetPermissionFlags::Mempool))
  Branch (4926:13): [True: 0, False: 0]
  Branch (4926:52): [True: 0, False: 0]
4927
0
        {
4928
0
            if (!pfrom.HasPermission(NetPermissionFlags::NoBan))
  Branch (4928:17): [True: 0, False: 0]
4929
0
            {
4930
0
                LogDebug(BCLog::NET, "mempool request with bloom filters disabled, %s", pfrom.DisconnectMsg());
4931
0
                pfrom.fDisconnect = true;
4932
0
            }
4933
0
            return;
4934
0
        }
4935
4936
0
        if (m_connman.OutboundTargetReached(false) && !pfrom.HasPermission(NetPermissionFlags::Mempool))
  Branch (4936:13): [True: 0, False: 0]
  Branch (4936:55): [True: 0, False: 0]
4937
0
        {
4938
0
            if (!pfrom.HasPermission(NetPermissionFlags::NoBan))
  Branch (4938:17): [True: 0, False: 0]
4939
0
            {
4940
0
                LogDebug(BCLog::NET, "mempool request with bandwidth limit reached, %s", pfrom.DisconnectMsg());
4941
0
                pfrom.fDisconnect = true;
4942
0
            }
4943
0
            return;
4944
0
        }
4945
4946
0
        if (auto tx_relay = peer.GetTxRelay(); tx_relay != nullptr) {
  Branch (4946:48): [True: 0, False: 0]
4947
0
            LOCK(tx_relay->m_tx_inventory_mutex);
4948
0
            tx_relay->m_send_mempool = true;
4949
0
        }
4950
0
        return;
4951
0
    }
4952
4953
0
    if (msg_type == NetMsgType::PING) {
  Branch (4953:9): [True: 0, False: 0]
4954
0
        if (pfrom.GetCommonVersion() > BIP0031_VERSION) {
  Branch (4954:13): [True: 0, False: 0]
4955
0
            uint64_t nonce = 0;
4956
0
            vRecv >> nonce;
4957
            // Echo the message back with the nonce. This allows for two useful features:
4958
            //
4959
            // 1) A remote node can quickly check if the connection is operational
4960
            // 2) Remote nodes can measure the latency of the network thread. If this node
4961
            //    is overloaded it won't respond to pings quickly and the remote node can
4962
            //    avoid sending us more work, like chain download requests.
4963
            //
4964
            // The nonce stops the remote getting confused between different pings: without
4965
            // it, if the remote node sends a ping once per second and this node takes 5
4966
            // seconds to respond to each, the 5th ping the remote sends would appear to
4967
            // return very quickly.
4968
0
            MakeAndPushMessage(pfrom, NetMsgType::PONG, nonce);
4969
0
        }
4970
0
        return;
4971
0
    }
4972
4973
0
    if (msg_type == NetMsgType::PONG) {
  Branch (4973:9): [True: 0, False: 0]
4974
0
        ProcessPong(pfrom, peer, /*ping_end=*/time_received, vRecv);
4975
0
        return;
4976
0
    }
4977
4978
0
    if (msg_type == NetMsgType::FILTERLOAD) {
  Branch (4978:9): [True: 0, False: 0]
4979
0
        if (!(peer.m_our_services & NODE_BLOOM)) {
  Branch (4979:13): [True: 0, False: 0]
4980
0
            LogDebug(BCLog::NET, "filterload received despite not offering bloom services, %s", pfrom.DisconnectMsg());
4981
0
            pfrom.fDisconnect = true;
4982
0
            return;
4983
0
        }
4984
0
        CBloomFilter filter;
4985
0
        vRecv >> filter;
4986
4987
0
        if (!filter.IsWithinSizeConstraints())
  Branch (4987:13): [True: 0, False: 0]
4988
0
        {
4989
            // There is no excuse for sending a too-large filter
4990
0
            Misbehaving(peer, "too-large bloom filter");
4991
0
        } else if (auto tx_relay = peer.GetTxRelay(); tx_relay != nullptr) {
  Branch (4991:55): [True: 0, False: 0]
4992
0
            {
4993
0
                LOCK(tx_relay->m_bloom_filter_mutex);
4994
0
                tx_relay->m_bloom_filter.reset(new CBloomFilter(filter));
4995
0
                tx_relay->m_relay_txs = true;
4996
0
            }
4997
0
            pfrom.m_bloom_filter_loaded = true;
4998
0
            pfrom.m_relays_txs = true;
4999
0
        }
5000
0
        return;
5001
0
    }
5002
5003
0
    if (msg_type == NetMsgType::FILTERADD) {
  Branch (5003:9): [True: 0, False: 0]
5004
0
        if (!(peer.m_our_services & NODE_BLOOM)) {
  Branch (5004:13): [True: 0, False: 0]
5005
0
            LogDebug(BCLog::NET, "filteradd received despite not offering bloom services, %s", pfrom.DisconnectMsg());
5006
0
            pfrom.fDisconnect = true;
5007
0
            return;
5008
0
        }
5009
0
        std::vector<unsigned char> vData;
5010
0
        vRecv >> vData;
5011
5012
        // Nodes must NEVER send a data item > MAX_SCRIPT_ELEMENT_SIZE bytes (the max size for a script data object,
5013
        // and thus, the maximum size any matched object can have) in a filteradd message
5014
0
        bool bad = false;
5015
0
        if (vData.size() > MAX_SCRIPT_ELEMENT_SIZE) {
  Branch (5015:13): [True: 0, False: 0]
5016
0
            bad = true;
5017
0
        } else if (auto tx_relay = peer.GetTxRelay(); tx_relay != nullptr) {
  Branch (5017:55): [True: 0, False: 0]
5018
0
            LOCK(tx_relay->m_bloom_filter_mutex);
5019
0
            if (tx_relay->m_bloom_filter) {
  Branch (5019:17): [True: 0, False: 0]
5020
0
                tx_relay->m_bloom_filter->insert(vData);
5021
0
            } else {
5022
0
                bad = true;
5023
0
            }
5024
0
        }
5025
0
        if (bad) {
  Branch (5025:13): [True: 0, False: 0]
5026
0
            Misbehaving(peer, "bad filteradd message");
5027
0
        }
5028
0
        return;
5029
0
    }
5030
5031
0
    if (msg_type == NetMsgType::FILTERCLEAR) {
  Branch (5031:9): [True: 0, False: 0]
5032
0
        if (!(peer.m_our_services & NODE_BLOOM)) {
  Branch (5032:13): [True: 0, False: 0]
5033
0
            LogDebug(BCLog::NET, "filterclear received despite not offering bloom services, %s", pfrom.DisconnectMsg());
5034
0
            pfrom.fDisconnect = true;
5035
0
            return;
5036
0
        }
5037
0
        auto tx_relay = peer.GetTxRelay();
5038
0
        if (!tx_relay) return;
  Branch (5038:13): [True: 0, False: 0]
5039
5040
0
        {
5041
0
            LOCK(tx_relay->m_bloom_filter_mutex);
5042
0
            tx_relay->m_bloom_filter = nullptr;
5043
0
            tx_relay->m_relay_txs = true;
5044
0
        }
5045
0
        pfrom.m_bloom_filter_loaded = false;
5046
0
        pfrom.m_relays_txs = true;
5047
0
        return;
5048
0
    }
5049
5050
0
    if (msg_type == NetMsgType::FEEFILTER) {
  Branch (5050:9): [True: 0, False: 0]
5051
0
        CAmount newFeeFilter = 0;
5052
0
        vRecv >> newFeeFilter;
5053
0
        if (MoneyRange(newFeeFilter)) {
  Branch (5053:13): [True: 0, False: 0]
5054
0
            if (auto tx_relay = peer.GetTxRelay(); tx_relay != nullptr) {
  Branch (5054:52): [True: 0, False: 0]
5055
0
                tx_relay->m_fee_filter_received = newFeeFilter;
5056
0
            }
5057
0
            LogDebug(BCLog::NET, "received: feefilter of %s from peer=%d\n", CFeeRate(newFeeFilter).ToString(), pfrom.GetId());
5058
0
        }
5059
0
        return;
5060
0
    }
5061
5062
0
    if (msg_type == NetMsgType::GETCFILTERS) {
  Branch (5062:9): [True: 0, False: 0]
5063
0
        ProcessGetCFilters(pfrom, peer, vRecv);
5064
0
        return;
5065
0
    }
5066
5067
0
    if (msg_type == NetMsgType::GETCFHEADERS) {
  Branch (5067:9): [True: 0, False: 0]
5068
0
        ProcessGetCFHeaders(pfrom, peer, vRecv);
5069
0
        return;
5070
0
    }
5071
5072
0
    if (msg_type == NetMsgType::GETCFCHECKPT) {
  Branch (5072:9): [True: 0, False: 0]
5073
0
        ProcessGetCFCheckPt(pfrom, peer, vRecv);
5074
0
        return;
5075
0
    }
5076
5077
0
    if (msg_type == NetMsgType::NOTFOUND) {
  Branch (5077:9): [True: 0, False: 0]
5078
0
        std::vector<CInv> vInv;
5079
0
        vRecv >> vInv;
5080
0
        std::vector<GenTxid> tx_invs;
5081
0
        if (vInv.size() <= node::MAX_PEER_TX_ANNOUNCEMENTS + MAX_BLOCKS_IN_TRANSIT_PER_PEER) {
  Branch (5081:13): [True: 0, False: 0]
5082
0
            for (CInv &inv : vInv) {
  Branch (5082:28): [True: 0, False: 0]
5083
0
                if (inv.IsGenTxMsg()) {
  Branch (5083:21): [True: 0, False: 0]
5084
0
                    tx_invs.emplace_back(ToGenTxid(inv));
5085
0
                }
5086
0
            }
5087
0
        }
5088
0
        LOCK(m_tx_download_mutex);
5089
0
        m_txdownloadman.ReceivedNotFound(pfrom.GetId(), tx_invs);
5090
0
        return;
5091
0
    }
5092
5093
    // Ignore unknown message types for extensibility
5094
0
    LogDebug(BCLog::NET, "Unknown message type \"%s\" from peer=%d", SanitizeString(msg_type), pfrom.GetId());
5095
0
    return;
5096
0
}
5097
5098
bool PeerManagerImpl::MaybeDiscourageAndDisconnect(CNode& pnode, Peer& peer)
5099
0
{
5100
0
    {
5101
0
        LOCK(peer.m_misbehavior_mutex);
5102
5103
        // There's nothing to do if the m_should_discourage flag isn't set
5104
0
        if (!peer.m_should_discourage) return false;
  Branch (5104:13): [True: 0, False: 0]
5105
5106
0
        peer.m_should_discourage = false;
5107
0
    } // peer.m_misbehavior_mutex
5108
5109
0
    if (pnode.HasPermission(NetPermissionFlags::NoBan)) {
  Branch (5109:9): [True: 0, False: 0]
5110
        // We never disconnect or discourage peers for bad behavior if they have NetPermissionFlags::NoBan permission
5111
0
        LogWarning("Not punishing noban peer %d!", peer.m_id);
5112
0
        return false;
5113
0
    }
5114
5115
0
    if (pnode.IsManualConn()) {
  Branch (5115:9): [True: 0, False: 0]
5116
        // We never disconnect or discourage manual peers for bad behavior
5117
0
        LogWarning("Not punishing manually connected peer %d!", peer.m_id);
5118
0
        return false;
5119
0
    }
5120
5121
0
    if (pnode.addr.IsLocal()) {
  Branch (5121:9): [True: 0, False: 0]
5122
        // We disconnect local peers for bad behavior but don't discourage (since that would discourage
5123
        // all peers on the same local address)
5124
0
        LogDebug(BCLog::NET, "Warning: disconnecting but not discouraging %s peer %d!\n",
5125
0
                 pnode.m_inbound_onion ? "inbound onion" : "local", peer.m_id);
5126
0
        pnode.fDisconnect = true;
5127
0
        return true;
5128
0
    }
5129
5130
    // Normal case: Disconnect the peer and discourage all nodes sharing the address
5131
0
    LogDebug(BCLog::NET, "Disconnecting and discouraging peer %d!\n", peer.m_id);
5132
0
    if (m_banman) m_banman->Discourage(pnode.addr);
  Branch (5132:9): [True: 0, False: 0]
5133
0
    m_connman.DisconnectNode(pnode.addr);
5134
0
    return true;
5135
0
}
5136
5137
bool PeerManagerImpl::ProcessMessages(CNode& node, std::atomic<bool>& interruptMsgProc)
5138
0
{
5139
0
    AssertLockNotHeld(m_tx_download_mutex);
5140
0
    AssertLockHeld(g_msgproc_mutex);
5141
5142
0
    PeerRef maybe_peer{GetPeerRef(node.GetId())};
5143
0
    if (maybe_peer == nullptr) return false;
  Branch (5143:9): [True: 0, False: 0]
5144
0
    Peer& peer{*maybe_peer};
5145
5146
    // For outbound connections, ensure that the initial VERSION message
5147
    // has been sent first before processing any incoming messages
5148
0
    if (!node.IsInboundConn() && !peer.m_outbound_version_message_sent) return false;
  Branch (5148:9): [True: 0, False: 0]
  Branch (5148:34): [True: 0, False: 0]
5149
5150
0
    {
5151
0
        LOCK(peer.m_getdata_requests_mutex);
5152
0
        if (!peer.m_getdata_requests.empty()) {
  Branch (5152:13): [True: 0, False: 0]
5153
0
            ProcessGetData(node, peer, interruptMsgProc);
5154
0
        }
5155
0
    }
5156
5157
0
    const bool processed_orphan = ProcessOrphanTx(peer);
5158
5159
0
    if (node.fDisconnect)
  Branch (5159:9): [True: 0, False: 0]
5160
0
        return false;
5161
5162
0
    if (processed_orphan) return true;
  Branch (5162:9): [True: 0, False: 0]
5163
5164
    // this maintains the order of responses
5165
    // and prevents m_getdata_requests to grow unbounded
5166
0
    {
5167
0
        LOCK(peer.m_getdata_requests_mutex);
5168
0
        if (!peer.m_getdata_requests.empty()) return true;
  Branch (5168:13): [True: 0, False: 0]
5169
0
    }
5170
5171
    // Don't bother if send buffer is too full to respond anyway
5172
0
    if (node.fPauseSend) return false;
  Branch (5172:9): [True: 0, False: 0]
5173
5174
0
    auto poll_result{node.PollMessage()};
5175
0
    if (!poll_result) {
  Branch (5175:9): [True: 0, False: 0]
5176
        // No message to process
5177
0
        return false;
5178
0
    }
5179
5180
0
    CNetMessage& msg{poll_result->first};
5181
0
    bool fMoreWork = poll_result->second;
5182
5183
0
    TRACEPOINT(net, inbound_message,
5184
0
        node.GetId(),
5185
0
        node.m_addr_name.c_str(),
5186
0
        node.ConnectionTypeAsString().c_str(),
5187
0
        msg.m_type.c_str(),
5188
0
        msg.m_recv.size(),
5189
0
        msg.m_recv.data()
5190
0
    );
5191
5192
0
    if (m_opts.capture_messages) {
  Branch (5192:9): [True: 0, False: 0]
5193
0
        CaptureMessage(node.addr, msg.m_type, MakeUCharSpan(msg.m_recv), /*is_incoming=*/true);
5194
0
    }
5195
5196
0
    try {
5197
0
        ProcessMessage(peer, node, msg.m_type, msg.m_recv, msg.m_time, interruptMsgProc);
5198
0
        if (interruptMsgProc) return false;
  Branch (5198:13): [True: 0, False: 0]
5199
0
        {
5200
0
            LOCK(peer.m_getdata_requests_mutex);
5201
0
            if (!peer.m_getdata_requests.empty()) fMoreWork = true;
  Branch (5201:17): [True: 0, False: 0]
5202
0
        }
5203
        // Does this peer have an orphan ready to reconsider?
5204
        // (Note: we may have provided a parent for an orphan provided
5205
        //  by another peer that was already processed; in that case,
5206
        //  the extra work may not be noticed, possibly resulting in an
5207
        //  unnecessary 100ms delay)
5208
0
        LOCK(m_tx_download_mutex);
5209
0
        if (m_txdownloadman.HaveMoreWork(peer.m_id)) fMoreWork = true;
  Branch (5209:13): [True: 0, False: 0]
5210
0
    } catch (const std::exception& e) {
5211
0
        LogDebug(BCLog::NET, "%s(%s, %u bytes): Exception '%s' (%s) caught\n", __func__, SanitizeString(msg.m_type), msg.m_message_size, e.what(), typeid(e).name());
5212
0
    } catch (...) {
5213
0
        LogDebug(BCLog::NET, "%s(%s, %u bytes): Unknown exception caught\n", __func__, SanitizeString(msg.m_type), msg.m_message_size);
5214
0
    }
5215
5216
0
    return fMoreWork;
5217
0
}
5218
5219
void PeerManagerImpl::ConsiderEviction(CNode& pto, Peer& peer, std::chrono::seconds time_in_seconds)
5220
0
{
5221
0
    AssertLockHeld(cs_main);
5222
5223
0
    CNodeState &state = *State(pto.GetId());
5224
5225
0
    if (!state.m_chain_sync.m_protect && pto.IsOutboundOrBlockRelayConn() && state.fSyncStarted) {
  Branch (5225:9): [True: 0, False: 0]
  Branch (5225:42): [True: 0, False: 0]
  Branch (5225:78): [True: 0, False: 0]
5226
        // This is an outbound peer subject to disconnection if they don't
5227
        // announce a block with as much work as the current tip within
5228
        // CHAIN_SYNC_TIMEOUT + HEADERS_RESPONSE_TIME seconds (note: if
5229
        // their chain has more work than ours, we should sync to it,
5230
        // unless it's invalid, in which case we should find that out and
5231
        // disconnect from them elsewhere).
5232
0
        if (state.pindexBestKnownBlock != nullptr && state.pindexBestKnownBlock->nChainWork >= m_chainman.ActiveChain().Tip()->nChainWork) {
  Branch (5232:13): [True: 0, False: 0]
  Branch (5232:54): [True: 0, False: 0]
5233
            // The outbound peer has sent us a block with at least as much work as our current tip, so reset the timeout if it was set
5234
0
            if (state.m_chain_sync.m_timeout != 0s) {
  Branch (5234:17): [True: 0, False: 0]
5235
0
                state.m_chain_sync.m_timeout = 0s;
5236
0
                state.m_chain_sync.m_work_header = nullptr;
5237
0
                state.m_chain_sync.m_sent_getheaders = false;
5238
0
            }
5239
0
        } else if (state.m_chain_sync.m_timeout == 0s || (state.m_chain_sync.m_work_header != nullptr && state.pindexBestKnownBlock != nullptr && state.pindexBestKnownBlock->nChainWork >= state.m_chain_sync.m_work_header->nChainWork)) {
  Branch (5239:20): [True: 0, False: 0]
  Branch (5239:20): [True: 0, False: 0]
  Branch (5239:59): [True: 0, False: 0]
  Branch (5239:106): [True: 0, False: 0]
  Branch (5239:147): [True: 0, False: 0]
5240
            // At this point we know that the outbound peer has either never sent us a block/header or they have, but its tip is behind ours
5241
            // AND
5242
            // we are noticing this for the first time (m_timeout is 0)
5243
            // OR we noticed this at some point within the last CHAIN_SYNC_TIMEOUT + HEADERS_RESPONSE_TIME seconds and set a timeout
5244
            // for them, they caught up to our tip at the time of setting the timer but not to our current one (we've also advanced).
5245
            // Either way, set a new timeout based on our current tip.
5246
0
            state.m_chain_sync.m_timeout = time_in_seconds + CHAIN_SYNC_TIMEOUT;
5247
0
            state.m_chain_sync.m_work_header = m_chainman.ActiveChain().Tip();
5248
0
            state.m_chain_sync.m_sent_getheaders = false;
5249
0
        } else if (state.m_chain_sync.m_timeout > 0s && time_in_seconds > state.m_chain_sync.m_timeout) {
  Branch (5249:20): [True: 0, False: 0]
  Branch (5249:20): [True: 0, False: 0]
  Branch (5249:57): [True: 0, False: 0]
5250
            // No evidence yet that our peer has synced to a chain with work equal to that
5251
            // of our tip, when we first detected it was behind. Send a single getheaders
5252
            // message to give the peer a chance to update us.
5253
0
            if (state.m_chain_sync.m_sent_getheaders) {
  Branch (5253:17): [True: 0, False: 0]
5254
                // They've run out of time to catch up!
5255
0
                LogInfo("Outbound peer has old chain, best known block = %s, %s", state.pindexBestKnownBlock != nullptr ? state.pindexBestKnownBlock->GetBlockHash().ToString() : "<none>", pto.DisconnectMsg());
5256
0
                pto.fDisconnect = true;
5257
0
            } else {
5258
0
                assert(state.m_chain_sync.m_work_header);
  Branch (5258:17): [True: 0, False: 0]
5259
                // Here, we assume that the getheaders message goes out,
5260
                // because it'll either go out or be skipped because of a
5261
                // getheaders in-flight already, in which case the peer should
5262
                // still respond to us with a sufficiently high work chain tip.
5263
0
                MaybeSendGetHeaders(pto,
5264
0
                        GetLocator(state.m_chain_sync.m_work_header->pprev),
5265
0
                        peer);
5266
0
                LogDebug(BCLog::NET, "sending getheaders to outbound peer=%d to verify chain work (current best known block:%s, benchmark blockhash: %s)\n", pto.GetId(), state.pindexBestKnownBlock != nullptr ? state.pindexBestKnownBlock->GetBlockHash().ToString() : "<none>", state.m_chain_sync.m_work_header->GetBlockHash().ToString());
5267
0
                state.m_chain_sync.m_sent_getheaders = true;
5268
                // Bump the timeout to allow a response, which could clear the timeout
5269
                // (if the response shows the peer has synced), reset the timeout (if
5270
                // the peer syncs to the required work but not to our tip), or result
5271
                // in disconnect (if we advance to the timeout and pindexBestKnownBlock
5272
                // has not sufficiently progressed)
5273
0
                state.m_chain_sync.m_timeout = time_in_seconds + HEADERS_RESPONSE_TIME;
5274
0
            }
5275
0
        }
5276
0
    }
5277
0
}
5278
5279
void PeerManagerImpl::EvictExtraOutboundPeers(NodeClock::time_point now)
5280
0
{
5281
    // If we have any extra block-relay-only peers, disconnect the youngest unless
5282
    // it's given us a block -- in which case, compare with the second-youngest, and
5283
    // out of those two, disconnect the peer who least recently gave us a block.
5284
    // The youngest block-relay-only peer would be the extra peer we connected
5285
    // to temporarily in order to sync our tip; see net.cpp.
5286
    // Note that we use higher nodeid as a measure for most recent connection.
5287
0
    if (m_connman.GetExtraBlockRelayCount() > 0) {
  Branch (5287:9): [True: 0, False: 0]
5288
0
        std::pair<NodeId, std::chrono::seconds> youngest_peer{-1, 0}, next_youngest_peer{-1, 0};
5289
5290
0
        m_connman.ForEachNode([&](CNode* pnode) {
5291
0
            if (!pnode->IsBlockOnlyConn() || pnode->fDisconnect) return;
  Branch (5291:17): [True: 0, False: 0]
  Branch (5291:46): [True: 0, False: 0]
5292
0
            if (pnode->GetId() > youngest_peer.first) {
  Branch (5292:17): [True: 0, False: 0]
5293
0
                next_youngest_peer = youngest_peer;
5294
0
                youngest_peer.first = pnode->GetId();
5295
0
                youngest_peer.second = pnode->m_last_block_time;
5296
0
            }
5297
0
        });
5298
0
        NodeId to_disconnect = youngest_peer.first;
5299
0
        if (youngest_peer.second > next_youngest_peer.second) {
  Branch (5299:13): [True: 0, False: 0]
5300
            // Our newest block-relay-only peer gave us a block more recently;
5301
            // disconnect our second youngest.
5302
0
            to_disconnect = next_youngest_peer.first;
5303
0
        }
5304
0
        m_connman.ForNode(to_disconnect, [&](CNode* pnode) EXCLUSIVE_LOCKS_REQUIRED(::cs_main) {
5305
0
            AssertLockHeld(::cs_main);
5306
            // Make sure we're not getting a block right now, and that
5307
            // we've been connected long enough for this eviction to happen
5308
            // at all.
5309
            // Note that we only request blocks from a peer if we learn of a
5310
            // valid headers chain with at least as much work as our tip.
5311
0
            CNodeState *node_state = State(pnode->GetId());
5312
0
            if (node_state == nullptr ||
  Branch (5312:17): [True: 0, False: 0]
  Branch (5312:17): [True: 0, False: 0]
5313
0
                (now - pnode->m_connected >= MINIMUM_CONNECT_TIME && node_state->vBlocksInFlight.empty())) {
  Branch (5313:18): [True: 0, False: 0]
  Branch (5313:70): [True: 0, False: 0]
5314
0
                pnode->fDisconnect = true;
5315
0
                LogDebug(BCLog::NET, "disconnecting extra block-relay-only peer=%d (last block received at time %d)\n",
5316
0
                         pnode->GetId(), count_seconds(pnode->m_last_block_time));
5317
0
                return true;
5318
0
            } else {
5319
0
                LogDebug(BCLog::NET, "keeping block-relay-only peer=%d chosen for eviction (connect time: %d, blocks_in_flight: %d)\n",
5320
0
                         pnode->GetId(), TicksSinceEpoch<std::chrono::seconds>(pnode->m_connected), node_state->vBlocksInFlight.size());
5321
0
            }
5322
0
            return false;
5323
0
        });
5324
0
    }
5325
5326
    // Check whether we have too many outbound-full-relay peers
5327
0
    if (m_connman.GetExtraFullOutboundCount() > 0) {
  Branch (5327:9): [True: 0, False: 0]
5328
        // If we have more outbound-full-relay peers than we target, disconnect one.
5329
        // Pick the outbound-full-relay peer that least recently announced
5330
        // us a new block, with ties broken by choosing the more recent
5331
        // connection (higher node id)
5332
        // Protect peers from eviction if we don't have another connection
5333
        // to their network, counting both outbound-full-relay and manual peers.
5334
0
        NodeId worst_peer = -1;
5335
0
        int64_t oldest_block_announcement = std::numeric_limits<int64_t>::max();
5336
5337
0
        m_connman.ForEachNode([&](CNode* pnode) EXCLUSIVE_LOCKS_REQUIRED(::cs_main, m_connman.GetNodesMutex()) {
5338
0
            AssertLockHeld(::cs_main);
5339
5340
            // Only consider outbound-full-relay peers that are not already
5341
            // marked for disconnection
5342
0
            if (!pnode->IsFullOutboundConn() || pnode->fDisconnect) return;
  Branch (5342:17): [True: 0, False: 0]
  Branch (5342:49): [True: 0, False: 0]
5343
0
            CNodeState *state = State(pnode->GetId());
5344
0
            if (state == nullptr) return; // shouldn't be possible, but just in case
  Branch (5344:17): [True: 0, False: 0]
5345
            // Don't evict our protected peers
5346
0
            if (state->m_chain_sync.m_protect) return;
  Branch (5346:17): [True: 0, False: 0]
5347
            // If this is the only connection on a particular network that is
5348
            // OUTBOUND_FULL_RELAY or MANUAL, protect it.
5349
0
            if (!m_connman.MultipleManualOrFullOutboundConns(pnode->addr.GetNetwork())) return;
  Branch (5349:17): [True: 0, False: 0]
5350
0
            if (state->m_last_block_announcement < oldest_block_announcement || (state->m_last_block_announcement == oldest_block_announcement && pnode->GetId() > worst_peer)) {
  Branch (5350:17): [True: 0, False: 0]
  Branch (5350:82): [True: 0, False: 0]
  Branch (5350:147): [True: 0, False: 0]
5351
0
                worst_peer = pnode->GetId();
5352
0
                oldest_block_announcement = state->m_last_block_announcement;
5353
0
            }
5354
0
        });
5355
0
        if (worst_peer != -1) {
  Branch (5355:13): [True: 0, False: 0]
5356
0
            bool disconnected = m_connman.ForNode(worst_peer, [&](CNode* pnode) EXCLUSIVE_LOCKS_REQUIRED(::cs_main) {
5357
0
                AssertLockHeld(::cs_main);
5358
5359
                // Only disconnect a peer that has been connected to us for
5360
                // some reasonable fraction of our check-frequency, to give
5361
                // it time for new information to have arrived.
5362
                // Also don't disconnect any peer we're trying to download a
5363
                // block from.
5364
0
                CNodeState &state = *State(pnode->GetId());
5365
0
                if (now - pnode->m_connected > MINIMUM_CONNECT_TIME && state.vBlocksInFlight.empty()) {
  Branch (5365:21): [True: 0, False: 0]
  Branch (5365:21): [True: 0, False: 0]
  Branch (5365:72): [True: 0, False: 0]
5366
0
                    LogDebug(BCLog::NET, "disconnecting extra outbound peer=%d (last block announcement received at time %d)\n", pnode->GetId(), oldest_block_announcement);
5367
0
                    pnode->fDisconnect = true;
5368
0
                    return true;
5369
0
                } else {
5370
0
                    LogDebug(BCLog::NET, "keeping outbound peer=%d chosen for eviction (connect time: %d, blocks_in_flight: %d)\n",
5371
0
                             pnode->GetId(), TicksSinceEpoch<std::chrono::seconds>(pnode->m_connected), state.vBlocksInFlight.size());
5372
0
                    return false;
5373
0
                }
5374
0
            });
5375
0
            if (disconnected) {
  Branch (5375:17): [True: 0, False: 0]
5376
                // If we disconnected an extra peer, that means we successfully
5377
                // connected to at least one peer after the last time we
5378
                // detected a stale tip. Don't try any more extra peers until
5379
                // we next detect a stale tip, to limit the load we put on the
5380
                // network from these extra connections.
5381
0
                m_connman.SetTryNewOutboundPeer(false);
5382
0
            }
5383
0
        }
5384
0
    }
5385
0
}
5386
5387
void PeerManagerImpl::CheckForStaleTipAndEvictPeers()
5388
0
{
5389
0
    LOCK(cs_main);
5390
5391
0
    const auto current_time{NodeClock::now()};
5392
0
    auto now{GetTime<std::chrono::seconds>()};
5393
5394
0
    EvictExtraOutboundPeers(current_time);
5395
5396
0
    if (now > m_stale_tip_check_time) {
  Branch (5396:9): [True: 0, False: 0]
5397
        // Check whether our tip is stale, and if so, allow using an extra
5398
        // outbound peer
5399
0
        if (!m_chainman.m_blockman.LoadingBlocks() && m_connman.GetNetworkActive() && m_connman.GetUseAddrmanOutgoing() && TipMayBeStale()) {
  Branch (5399:13): [True: 0, False: 0]
  Branch (5399:55): [True: 0, False: 0]
  Branch (5399:87): [True: 0, False: 0]
  Branch (5399:124): [True: 0, False: 0]
5400
0
            LogInfo("Potential stale tip detected, will try using extra outbound peer (last tip update: %d seconds ago)\n",
5401
0
                      count_seconds(now - m_last_tip_update.load()));
5402
0
            m_connman.SetTryNewOutboundPeer(true);
5403
0
        } else if (m_connman.GetTryNewOutboundPeer()) {
  Branch (5403:20): [True: 0, False: 0]
5404
0
            m_connman.SetTryNewOutboundPeer(false);
5405
0
        }
5406
0
        m_stale_tip_check_time = now + STALE_CHECK_INTERVAL;
5407
0
    }
5408
5409
0
    if (!m_initial_sync_finished && CanDirectFetch()) {
  Branch (5409:9): [True: 0, False: 0]
  Branch (5409:37): [True: 0, False: 0]
5410
0
        m_connman.StartExtraBlockRelayPeers();
5411
0
        m_initial_sync_finished = true;
5412
0
    }
5413
0
}
5414
5415
void PeerManagerImpl::MaybeSendPing(CNode& node_to, Peer& peer, NodeClock::time_point now)
5416
0
{
5417
0
    if (m_connman.ShouldRunInactivityChecks(node_to, now) &&
  Branch (5417:9): [True: 0, False: 0]
  Branch (5417:9): [True: 0, False: 0]
5418
0
        peer.m_ping_nonce_sent &&
  Branch (5418:9): [True: 0, False: 0]
5419
0
        now > peer.m_ping_start.load() + TIMEOUT_INTERVAL)
  Branch (5419:9): [True: 0, False: 0]
5420
0
    {
5421
        // The ping timeout is using mocktime. To disable the check during
5422
        // testing, increase -peertimeout.
5423
0
        LogDebug(BCLog::NET, "ping timeout: %fs, %s", Ticks<SecondsDouble>(now - peer.m_ping_start.load()), node_to.DisconnectMsg());
5424
0
        node_to.fDisconnect = true;
5425
0
        return;
5426
0
    }
5427
5428
0
    bool pingSend = false;
5429
5430
0
    if (peer.m_ping_queued) {
  Branch (5430:9): [True: 0, False: 0]
5431
        // RPC ping request by user
5432
0
        pingSend = true;
5433
0
    }
5434
5435
0
    if (peer.m_ping_nonce_sent == 0 && now > peer.m_ping_start.load() + PING_INTERVAL) {
  Branch (5435:9): [True: 0, False: 0]
  Branch (5435:9): [True: 0, False: 0]
  Branch (5435:40): [True: 0, False: 0]
5436
        // Ping automatically sent as a latency probe & keepalive.
5437
0
        pingSend = true;
5438
0
    }
5439
5440
0
    if (pingSend) {
  Branch (5440:9): [True: 0, False: 0]
5441
0
        uint64_t nonce;
5442
0
        do {
5443
0
            nonce = FastRandomContext().rand64();
5444
0
        } while (nonce == 0);
  Branch (5444:18): [True: 0, False: 0]
5445
0
        peer.m_ping_queued = false;
5446
0
        peer.m_ping_start = now;
5447
0
        if (node_to.GetCommonVersion() > BIP0031_VERSION) {
  Branch (5447:13): [True: 0, False: 0]
5448
0
            peer.m_ping_nonce_sent = nonce;
5449
0
            MakeAndPushMessage(node_to, NetMsgType::PING, nonce);
5450
0
        } else {
5451
            // Peer is too old to support ping message type with nonce, pong will never arrive.
5452
0
            peer.m_ping_nonce_sent = 0;
5453
0
            MakeAndPushMessage(node_to, NetMsgType::PING);
5454
0
        }
5455
0
    }
5456
0
}
5457
5458
void PeerManagerImpl::MaybeSendAddr(CNode& node, Peer& peer, std::chrono::microseconds current_time)
5459
0
{
5460
    // Nothing to do for non-address-relay peers
5461
0
    if (!peer.m_addr_relay_enabled) return;
  Branch (5461:9): [True: 0, False: 0]
5462
5463
0
    LOCK(peer.m_addr_send_times_mutex);
5464
    // Periodically advertise our local address to the peer.
5465
0
    if (fListen && !m_chainman.IsInitialBlockDownload() &&
  Branch (5465:9): [True: 0, False: 0]
  Branch (5465:20): [True: 0, False: 0]
5466
0
        peer.m_next_local_addr_send < current_time) {
  Branch (5466:9): [True: 0, False: 0]
5467
        // If we've sent before, clear the bloom filter for the peer, so that our
5468
        // self-announcement will actually go out.
5469
        // This might be unnecessary if the bloom filter has already rolled
5470
        // over since our last self-announcement, but there is only a small
5471
        // bandwidth cost that we can incur by doing this (which happens
5472
        // once a day on average).
5473
0
        if (peer.m_next_local_addr_send != 0us) {
  Branch (5473:13): [True: 0, False: 0]
5474
0
            peer.m_addr_known->reset();
5475
0
        }
5476
0
        if (std::optional<CService> local_service = GetLocalAddrForPeer(node)) {
  Branch (5476:37): [True: 0, False: 0]
5477
0
            CAddress local_addr{*local_service, peer.m_our_services, Now<NodeSeconds>()};
5478
0
            if (peer.m_next_local_addr_send == 0us) {
  Branch (5478:17): [True: 0, False: 0]
5479
                // Send the initial self-announcement in its own message. This makes sure
5480
                // rate-limiting with limited start-tokens doesn't ignore it if the first
5481
                // message ends up containing multiple addresses.
5482
0
                if (IsAddrCompatible(peer, local_addr)) {
  Branch (5482:21): [True: 0, False: 0]
5483
0
                    std::vector<CAddress> self_announcement{local_addr};
5484
0
                    if (peer.m_wants_addrv2) {
  Branch (5484:25): [True: 0, False: 0]
5485
0
                        MakeAndPushMessage(node, NetMsgType::ADDRV2, CAddress::V2_NETWORK(self_announcement));
5486
0
                    } else {
5487
0
                        MakeAndPushMessage(node, NetMsgType::ADDR, CAddress::V1_NETWORK(self_announcement));
5488
0
                    }
5489
0
                }
5490
0
            } else {
5491
                // All later self-announcements are sent together with the other addresses.
5492
0
                PushAddress(peer, local_addr);
5493
0
            }
5494
0
        }
5495
0
        peer.m_next_local_addr_send = current_time + m_rng.rand_exp_duration(AVG_LOCAL_ADDRESS_BROADCAST_INTERVAL);
5496
0
    }
5497
5498
    // We sent an `addr` message to this peer recently. Nothing more to do.
5499
0
    if (current_time <= peer.m_next_addr_send) return;
  Branch (5499:9): [True: 0, False: 0]
5500
5501
0
    peer.m_next_addr_send = current_time + m_rng.rand_exp_duration(AVG_ADDRESS_BROADCAST_INTERVAL);
5502
5503
0
    if (!Assume(peer.m_addrs_to_send.size() <= MAX_ADDR_TO_SEND)) {
  Branch (5503:9): [True: 0, False: 0]
5504
        // Should be impossible since we always check size before adding to
5505
        // m_addrs_to_send. Recover by trimming the vector.
5506
0
        peer.m_addrs_to_send.resize(MAX_ADDR_TO_SEND);
5507
0
    }
5508
5509
    // Remove addr records that the peer already knows about, and add new
5510
    // addrs to the m_addr_known filter on the same pass.
5511
0
    auto addr_already_known = [&peer](const CAddress& addr) EXCLUSIVE_LOCKS_REQUIRED(g_msgproc_mutex) {
5512
0
        bool ret = peer.m_addr_known->contains(addr.GetKey());
5513
0
        if (!ret) peer.m_addr_known->insert(addr.GetKey());
  Branch (5513:13): [True: 0, False: 0]
5514
0
        return ret;
5515
0
    };
5516
0
    peer.m_addrs_to_send.erase(std::remove_if(peer.m_addrs_to_send.begin(), peer.m_addrs_to_send.end(), addr_already_known),
5517
0
                           peer.m_addrs_to_send.end());
5518
5519
    // No addr messages to send
5520
0
    if (peer.m_addrs_to_send.empty()) return;
  Branch (5520:9): [True: 0, False: 0]
5521
5522
0
    if (peer.m_wants_addrv2) {
  Branch (5522:9): [True: 0, False: 0]
5523
0
        MakeAndPushMessage(node, NetMsgType::ADDRV2, CAddress::V2_NETWORK(peer.m_addrs_to_send));
5524
0
    } else {
5525
0
        MakeAndPushMessage(node, NetMsgType::ADDR, CAddress::V1_NETWORK(peer.m_addrs_to_send));
5526
0
    }
5527
0
    peer.m_addrs_to_send.clear();
5528
5529
    // we only send the big addr message once
5530
0
    if (peer.m_addrs_to_send.capacity() > 40) {
  Branch (5530:9): [True: 0, False: 0]
5531
0
        peer.m_addrs_to_send.shrink_to_fit();
5532
0
    }
5533
0
}
5534
5535
void PeerManagerImpl::MaybeSendSendHeaders(CNode& node, Peer& peer)
5536
0
{
5537
    // Delay sending SENDHEADERS (BIP 130) until we're done with an
5538
    // initial-headers-sync with this peer. Receiving headers announcements for
5539
    // new blocks while trying to sync their headers chain is problematic,
5540
    // because of the state tracking done.
5541
0
    if (!peer.m_sent_sendheaders && node.GetCommonVersion() >= SENDHEADERS_VERSION) {
  Branch (5541:9): [True: 0, False: 0]
  Branch (5541:37): [True: 0, False: 0]
5542
0
        LOCK(cs_main);
5543
0
        CNodeState &state = *State(node.GetId());
5544
0
        if (state.pindexBestKnownBlock != nullptr &&
  Branch (5544:13): [True: 0, False: 0]
5545
0
                state.pindexBestKnownBlock->nChainWork > m_chainman.MinimumChainWork()) {
  Branch (5545:17): [True: 0, False: 0]
5546
            // Tell our peer we prefer to receive headers rather than inv's
5547
            // We send this to non-NODE NETWORK peers as well, because even
5548
            // non-NODE NETWORK peers can announce blocks (such as pruning
5549
            // nodes)
5550
0
            MakeAndPushMessage(node, NetMsgType::SENDHEADERS);
5551
0
            peer.m_sent_sendheaders = true;
5552
0
        }
5553
0
    }
5554
0
}
5555
5556
void PeerManagerImpl::MaybeSendFeefilter(CNode& pto, Peer& peer, std::chrono::microseconds current_time)
5557
0
{
5558
0
    if (m_opts.ignore_incoming_txs) return;
  Branch (5558:9): [True: 0, False: 0]
5559
0
    if (pto.GetCommonVersion() < FEEFILTER_VERSION) return;
  Branch (5559:9): [True: 0, False: 0]
5560
    // peers with the forcerelay permission should not filter txs to us
5561
0
    if (pto.HasPermission(NetPermissionFlags::ForceRelay)) return;
  Branch (5561:9): [True: 0, False: 0]
5562
    // Don't send feefilter messages to outbound block-relay-only peers since they should never announce
5563
    // transactions to us, regardless of feefilter state.
5564
0
    if (pto.IsBlockOnlyConn()) return;
  Branch (5564:9): [True: 0, False: 0]
5565
5566
0
    CAmount currentFilter = m_mempool.GetMinFee().GetFeePerK();
5567
5568
0
    if (m_chainman.IsInitialBlockDownload()) {
  Branch (5568:9): [True: 0, False: 0]
5569
        // Received tx-inv messages are discarded when the active
5570
        // chainstate is in IBD, so tell the peer to not send them.
5571
0
        currentFilter = MAX_MONEY;
5572
0
    } else {
5573
0
        static const CAmount MAX_FILTER{m_fee_filter_rounder.round(MAX_MONEY)};
5574
0
        if (peer.m_fee_filter_sent == MAX_FILTER) {
  Branch (5574:13): [True: 0, False: 0]
5575
            // Send the current filter if we sent MAX_FILTER previously
5576
            // and made it out of IBD.
5577
0
            peer.m_next_send_feefilter = 0us;
5578
0
        }
5579
0
    }
5580
0
    if (current_time > peer.m_next_send_feefilter) {
  Branch (5580:9): [True: 0, False: 0]
5581
0
        CAmount filterToSend = m_fee_filter_rounder.round(currentFilter);
5582
        // We always have a fee filter of at least the min relay fee
5583
0
        filterToSend = std::max(filterToSend, m_mempool.m_opts.min_relay_feerate.GetFeePerK());
5584
0
        if (filterToSend != peer.m_fee_filter_sent) {
  Branch (5584:13): [True: 0, False: 0]
5585
0
            MakeAndPushMessage(pto, NetMsgType::FEEFILTER, filterToSend);
5586
0
            peer.m_fee_filter_sent = filterToSend;
5587
0
        }
5588
0
        peer.m_next_send_feefilter = current_time + m_rng.rand_exp_duration(AVG_FEEFILTER_BROADCAST_INTERVAL);
5589
0
    }
5590
    // If the fee filter has changed substantially and it's still more than MAX_FEEFILTER_CHANGE_DELAY
5591
    // until scheduled broadcast, then move the broadcast to within MAX_FEEFILTER_CHANGE_DELAY.
5592
0
    else if (current_time + MAX_FEEFILTER_CHANGE_DELAY < peer.m_next_send_feefilter &&
  Branch (5592:14): [True: 0, False: 0]
  Branch (5592:14): [True: 0, False: 0]
5593
0
                (currentFilter < 3 * peer.m_fee_filter_sent / 4 || currentFilter > 4 * peer.m_fee_filter_sent / 3)) {
  Branch (5593:18): [True: 0, False: 0]
  Branch (5593:68): [True: 0, False: 0]
5594
0
        peer.m_next_send_feefilter = current_time + m_rng.randrange<std::chrono::microseconds>(MAX_FEEFILTER_CHANGE_DELAY);
5595
0
    }
5596
0
}
5597
5598
namespace {
5599
class CompareInvMempoolOrder
5600
{
5601
    const CTxMemPool* m_mempool;
5602
public:
5603
0
    explicit CompareInvMempoolOrder(CTxMemPool* mempool) : m_mempool{mempool} {}
5604
5605
    bool operator()(std::set<Wtxid>::iterator a, std::set<Wtxid>::iterator b)
5606
0
    {
5607
        /* As std::make_heap produces a max-heap, we want the entries with the
5608
         * higher mining score to sort later. */
5609
0
        return m_mempool->CompareMiningScoreWithTopology(*b, *a);
5610
0
    }
5611
};
5612
} // namespace
5613
5614
bool PeerManagerImpl::RejectIncomingTxs(const CNode& peer) const
5615
0
{
5616
    // block-relay-only peers may never send txs to us
5617
0
    if (peer.IsBlockOnlyConn()) return true;
  Branch (5617:9): [True: 0, False: 0]
5618
0
    if (peer.IsFeelerConn()) return true;
  Branch (5618:9): [True: 0, False: 0]
5619
    // In -blocksonly mode, peers need the 'relay' permission to send txs to us
5620
0
    if (m_opts.ignore_incoming_txs && !peer.HasPermission(NetPermissionFlags::Relay)) return true;
  Branch (5620:9): [True: 0, False: 0]
  Branch (5620:39): [True: 0, False: 0]
5621
0
    return false;
5622
0
}
5623
5624
void PeerManagerImpl::ProcessPong(CNode& pfrom, Peer& peer, const NodeClock::time_point ping_end, DataStream& vRecv)
5625
0
{
5626
0
    uint64_t nonce = 0;
5627
0
    const size_t nAvail{vRecv.size()};
5628
0
    bool bPingFinished = false;
5629
0
    std::string sProblem;
5630
5631
0
    if (nAvail >= sizeof(nonce)) {
  Branch (5631:9): [True: 0, False: 0]
5632
0
        vRecv >> nonce;
5633
5634
        // Only process pong message if there is an outstanding ping (old ping without nonce should never pong)
5635
0
        if (peer.m_ping_nonce_sent != 0) {
  Branch (5635:13): [True: 0, False: 0]
5636
0
            if (nonce == peer.m_ping_nonce_sent) {
  Branch (5636:17): [True: 0, False: 0]
5637
                // Matching pong received, this ping is no longer outstanding
5638
0
                bPingFinished = true;
5639
0
                const auto ping_time = ping_end - peer.m_ping_start.load();
5640
0
                if (ping_time.count() >= 0) {
  Branch (5640:21): [True: 0, False: 0]
5641
                    // Let connman know about this successful ping-pong
5642
0
                    pfrom.PongReceived(ping_time);
5643
0
                    if (pfrom.IsPrivateBroadcastConn()) {
  Branch (5643:25): [True: 0, False: 0]
5644
0
                        m_tx_for_private_broadcast.NodeConfirmedReception(pfrom.GetId());
5645
0
                        LogDebug(BCLog::PRIVBROADCAST, "Got a PONG (the transaction will probably reach the network), marking for disconnect, %s",
5646
0
                                 pfrom.LogPeer());
5647
0
                        pfrom.fDisconnect = true;
5648
0
                    }
5649
0
                } else {
5650
                    // This should never happen
5651
0
                    sProblem = "Timing mishap";
5652
0
                }
5653
0
            } else {
5654
                // Nonce mismatches are normal when pings are overlapping
5655
0
                sProblem = "Nonce mismatch";
5656
0
                if (nonce == 0) {
  Branch (5656:21): [True: 0, False: 0]
5657
                    // This is most likely a bug in another implementation somewhere; cancel this ping
5658
0
                    bPingFinished = true;
5659
0
                    sProblem = "Nonce zero";
5660
0
                }
5661
0
            }
5662
0
        } else {
5663
0
            sProblem = "Unsolicited pong without ping";
5664
0
        }
5665
0
    } else {
5666
        // This is most likely a bug in another implementation somewhere; cancel this ping
5667
0
        bPingFinished = true;
5668
0
        sProblem = "Short payload";
5669
0
    }
5670
5671
0
    if (!(sProblem.empty())) {
  Branch (5671:9): [True: 0, False: 0]
5672
0
        LogDebug(BCLog::NET, "pong peer=%d: %s, %x expected, %x received, %u bytes\n",
5673
0
                 pfrom.GetId(),
5674
0
                 sProblem,
5675
0
                 peer.m_ping_nonce_sent,
5676
0
                 nonce,
5677
0
                 nAvail);
5678
0
    }
5679
0
    if (bPingFinished) {
  Branch (5679:9): [True: 0, False: 0]
5680
0
        peer.m_ping_nonce_sent = 0;
5681
0
    }
5682
0
}
5683
5684
bool PeerManagerImpl::SetupAddressRelay(const CNode& node, Peer& peer)
5685
0
{
5686
    // We don't participate in addr relay with outbound block-relay-only
5687
    // connections to prevent providing adversaries with the additional
5688
    // information of addr traffic to infer the link.
5689
0
    if (node.IsBlockOnlyConn()) return false;
  Branch (5689:9): [True: 0, False: 0]
5690
5691
0
    if (!peer.m_addr_relay_enabled.exchange(true)) {
  Branch (5691:9): [True: 0, False: 0]
5692
        // During version message processing (non-block-relay-only outbound peers)
5693
        // or on first addr-related message we have received (inbound peers), initialize
5694
        // m_addr_known.
5695
0
        peer.m_addr_known = std::make_unique<CRollingBloomFilter>(5000, 0.001);
5696
0
    }
5697
5698
0
    return true;
5699
0
}
5700
5701
void PeerManagerImpl::ProcessAddrs(std::string_view msg_type, CNode& pfrom, Peer& peer, std::vector<CAddress>&& vAddr, const std::atomic<bool>& interruptMsgProc)
5702
0
{
5703
0
    AssertLockNotHeld(m_peer_mutex);
5704
0
    AssertLockHeld(g_msgproc_mutex);
5705
5706
0
    if (!SetupAddressRelay(pfrom, peer)) {
  Branch (5706:9): [True: 0, False: 0]
5707
0
        LogDebug(BCLog::NET, "ignoring %s message from %s peer=%d\n", msg_type, pfrom.ConnectionTypeAsString(), pfrom.GetId());
5708
0
        return;
5709
0
    }
5710
5711
0
    if (vAddr.size() > MAX_ADDR_TO_SEND)
  Branch (5711:9): [True: 0, False: 0]
5712
0
    {
5713
0
        Misbehaving(peer, strprintf("%s message size = %u", msg_type, vAddr.size()));
5714
0
        return;
5715
0
    }
5716
5717
    // Store the new addresses
5718
0
    std::vector<CAddress> vAddrOk;
5719
5720
    // Update/increment addr rate limiting bucket.
5721
0
    const auto current_time{NodeClock::now()};
5722
0
    if (peer.m_addr_token_bucket < MAX_ADDR_PROCESSING_TOKEN_BUCKET) {
  Branch (5722:9): [True: 0, False: 0]
5723
        // Don't increment bucket if it's already full
5724
0
        const auto time_diff{current_time - peer.m_addr_token_timestamp};
5725
0
        const double increment{std::max(Ticks<SecondsDouble>(time_diff), 0.0) * MAX_ADDR_RATE_PER_SECOND};
5726
0
        peer.m_addr_token_bucket = std::min<double>(peer.m_addr_token_bucket + increment, MAX_ADDR_PROCESSING_TOKEN_BUCKET);
5727
0
    }
5728
0
    peer.m_addr_token_timestamp = current_time;
5729
5730
0
    const bool rate_limited = !pfrom.HasPermission(NetPermissionFlags::Addr);
5731
0
    uint64_t num_proc = 0;
5732
0
    uint64_t num_rate_limit = 0;
5733
0
    std::shuffle(vAddr.begin(), vAddr.end(), m_rng);
5734
0
    for (CAddress& addr : vAddr)
  Branch (5734:25): [True: 0, False: 0]
5735
0
    {
5736
0
        if (interruptMsgProc)
  Branch (5736:13): [True: 0, False: 0]
5737
0
            return;
5738
5739
        // Apply rate limiting.
5740
0
        if (peer.m_addr_token_bucket < 1.0) {
  Branch (5740:13): [True: 0, False: 0]
5741
0
            if (rate_limited) {
  Branch (5741:17): [True: 0, False: 0]
5742
0
                ++num_rate_limit;
5743
0
                continue;
5744
0
            }
5745
0
        } else {
5746
0
            peer.m_addr_token_bucket -= 1.0;
5747
0
        }
5748
        // We only bother storing full nodes, though this may include
5749
        // things which we would not make an outbound connection to, in
5750
        // part because we may make feeler connections to them.
5751
0
        if (!MayHaveUsefulAddressDB(addr.nServices) && !HasAllDesirableServiceFlags(addr.nServices))
  Branch (5751:13): [True: 0, False: 0]
  Branch (5751:56): [True: 0, False: 0]
5752
0
            continue;
5753
5754
0
        if (addr.nTime <= NodeSeconds{100000000s} || addr.nTime > current_time + 10min) {
  Branch (5754:13): [True: 0, False: 0]
  Branch (5754:13): [True: 0, False: 0]
  Branch (5754:54): [True: 0, False: 0]
5755
0
            addr.nTime = std::chrono::time_point_cast<std::chrono::seconds>(current_time - 5 * 24h);
5756
0
        }
5757
0
        AddAddressKnown(peer, addr);
5758
0
        if (m_banman && (m_banman->IsDiscouraged(addr) || m_banman->IsBanned(addr))) {
  Branch (5758:13): [True: 0, False: 0]
  Branch (5758:26): [True: 0, False: 0]
  Branch (5758:59): [True: 0, False: 0]
5759
            // Do not process banned/discouraged addresses beyond remembering we received them
5760
0
            continue;
5761
0
        }
5762
0
        ++num_proc;
5763
0
        const bool reachable{g_reachable_nets.Contains(addr)};
5764
0
        if (addr.nTime > current_time - 10min && !peer.m_getaddr_sent && vAddr.size() <= 10 && addr.IsRoutable()) {
  Branch (5764:13): [True: 0, False: 0]
  Branch (5764:13): [True: 0, False: 0]
  Branch (5764:50): [True: 0, False: 0]
  Branch (5764:74): [True: 0, False: 0]
  Branch (5764:96): [True: 0, False: 0]
5765
            // Relay to a limited number of other nodes
5766
0
            RelayAddress(pfrom.GetId(), addr, reachable);
5767
0
        }
5768
        // Do not store addresses outside our network
5769
0
        if (reachable) {
  Branch (5769:13): [True: 0, False: 0]
5770
0
            vAddrOk.push_back(addr);
5771
0
        }
5772
0
    }
5773
0
    peer.m_addr_processed += num_proc;
5774
0
    peer.m_addr_rate_limited += num_rate_limit;
5775
0
    LogDebug(BCLog::NET, "Received addr: %u addresses (%u processed, %u rate-limited) from peer=%d\n",
5776
0
             vAddr.size(), num_proc, num_rate_limit, pfrom.GetId());
5777
5778
0
    m_addrman.Add(vAddrOk, pfrom.addr, /*time_penalty=*/2h);
5779
0
    if (vAddr.size() < 1000) peer.m_getaddr_sent = false;
  Branch (5779:9): [True: 0, False: 0]
5780
5781
    // AddrFetch: Require multiple addresses to avoid disconnecting on self-announcements
5782
0
    if (pfrom.IsAddrFetchConn() && vAddr.size() > 1) {
  Branch (5782:9): [True: 0, False: 0]
  Branch (5782:36): [True: 0, False: 0]
5783
0
        LogDebug(BCLog::NET, "addrfetch connection completed, %s", pfrom.DisconnectMsg());
5784
0
        pfrom.fDisconnect = true;
5785
0
    }
5786
0
}
5787
5788
bool PeerManagerImpl::SendMessages(CNode& node)
5789
0
{
5790
0
    AssertLockNotHeld(m_tx_download_mutex);
5791
0
    AssertLockHeld(g_msgproc_mutex);
5792
5793
0
    PeerRef maybe_peer{GetPeerRef(node.GetId())};
5794
0
    if (!maybe_peer) return false;
  Branch (5794:9): [True: 0, False: 0]
5795
0
    Peer& peer{*maybe_peer};
5796
0
    const Consensus::Params& consensusParams = m_chainparams.GetConsensus();
5797
5798
    // We must call MaybeDiscourageAndDisconnect first, to ensure that we'll
5799
    // disconnect misbehaving peers even before the version handshake is complete.
5800
0
    if (MaybeDiscourageAndDisconnect(node, peer)) return true;
  Branch (5800:9): [True: 0, False: 0]
5801
5802
    // Initiate version handshake for outbound connections
5803
0
    if (!node.IsInboundConn() && !peer.m_outbound_version_message_sent) {
  Branch (5803:9): [True: 0, False: 0]
  Branch (5803:34): [True: 0, False: 0]
5804
0
        PushNodeVersion(node, peer);
5805
0
        peer.m_outbound_version_message_sent = true;
5806
0
    }
5807
5808
    // Don't send anything until the version handshake is complete
5809
0
    if (!node.fSuccessfullyConnected || node.fDisconnect)
  Branch (5809:9): [True: 0, False: 0]
  Branch (5809:41): [True: 0, False: 0]
5810
0
        return true;
5811
5812
0
    const auto now{NodeClock::now()};
5813
0
    const auto current_time{GetTime<std::chrono::microseconds>()};
5814
5815
    // The logic below does not apply to private broadcast peers, so skip it.
5816
    // Also in CConnman::PushMessage() we make sure that unwanted messages are
5817
    // not sent. This here is just an optimization.
5818
0
    if (node.IsPrivateBroadcastConn()) {
  Branch (5818:9): [True: 0, False: 0]
5819
0
        if (node.m_connected + PRIVATE_BROADCAST_MAX_CONNECTION_LIFETIME < now) {
  Branch (5819:13): [True: 0, False: 0]
5820
0
            LogDebug(BCLog::PRIVBROADCAST, "Disconnecting: did not complete the transaction send within %d seconds, %s",
5821
0
                     count_seconds(PRIVATE_BROADCAST_MAX_CONNECTION_LIFETIME), node.LogPeer());
5822
0
            node.fDisconnect = true;
5823
0
        }
5824
0
        return true;
5825
0
    }
5826
5827
0
    if (node.IsAddrFetchConn() && now - node.m_connected > 10 * AVG_ADDRESS_BROADCAST_INTERVAL) {
  Branch (5827:9): [True: 0, False: 0]
  Branch (5827:9): [True: 0, False: 0]
  Branch (5827:35): [True: 0, False: 0]
5828
0
        LogDebug(BCLog::NET, "addrfetch connection timeout, %s", node.DisconnectMsg());
5829
0
        node.fDisconnect = true;
5830
0
        return true;
5831
0
    }
5832
5833
0
    MaybeSendPing(node, peer, now);
5834
5835
    // MaybeSendPing may have marked peer for disconnection
5836
0
    if (node.fDisconnect) return true;
  Branch (5836:9): [True: 0, False: 0]
5837
5838
0
    MaybeSendAddr(node, peer, current_time);
5839
5840
0
    MaybeSendSendHeaders(node, peer);
5841
5842
0
    {
5843
0
        LOCK(cs_main);
5844
5845
0
        CNodeState &state = *State(node.GetId());
5846
5847
        // Start block sync
5848
0
        if (m_chainman.m_best_header == nullptr) {
  Branch (5848:13): [True: 0, False: 0]
5849
0
            m_chainman.m_best_header = m_chainman.ActiveChain().Tip();
5850
0
        }
5851
5852
        // Determine whether we might try initial headers sync or parallel
5853
        // block download from this peer -- this mostly affects behavior while
5854
        // in IBD (once out of IBD, we sync from all peers).
5855
0
        bool sync_blocks_and_headers_from_peer = false;
5856
0
        if (state.fPreferredDownload) {
  Branch (5856:13): [True: 0, False: 0]
5857
0
            sync_blocks_and_headers_from_peer = true;
5858
0
        } else if (CanServeBlocks(peer) && !node.IsAddrFetchConn()) {
  Branch (5858:20): [True: 0, False: 0]
  Branch (5858:44): [True: 0, False: 0]
5859
            // Typically this is an inbound peer. If we don't have any outbound
5860
            // peers, or if we aren't downloading any blocks from such peers,
5861
            // then allow block downloads from this peer, too.
5862
            // We prefer downloading blocks from outbound peers to avoid
5863
            // putting undue load on (say) some home user who is just making
5864
            // outbound connections to the network, but if our only source of
5865
            // the latest blocks is from an inbound peer, we have to be sure to
5866
            // eventually download it (and not just wait indefinitely for an
5867
            // outbound peer to have it).
5868
0
            if (m_num_preferred_download_peers == 0 || mapBlocksInFlight.empty()) {
  Branch (5868:17): [True: 0, False: 0]
  Branch (5868:56): [True: 0, False: 0]
5869
0
                sync_blocks_and_headers_from_peer = true;
5870
0
            }
5871
0
        }
5872
5873
0
        if (!state.fSyncStarted && CanServeBlocks(peer) && !m_chainman.m_blockman.LoadingBlocks()) {
  Branch (5873:13): [True: 0, False: 0]
  Branch (5873:36): [True: 0, False: 0]
  Branch (5873:60): [True: 0, False: 0]
5874
            // Only actively request headers from a single peer, unless we're close to today.
5875
0
            if ((nSyncStarted == 0 && sync_blocks_and_headers_from_peer) || m_chainman.m_best_header->Time() > NodeClock::now() - 24h) {
  Branch (5875:17): [True: 0, False: 0]
  Branch (5875:18): [True: 0, False: 0]
  Branch (5875:39): [True: 0, False: 0]
  Branch (5875:77): [True: 0, False: 0]
5876
0
                const CBlockIndex* pindexStart = m_chainman.m_best_header;
5877
                /* If possible, start at the block preceding the currently
5878
                   best known header.  This ensures that we always get a
5879
                   non-empty list of headers back as long as the peer
5880
                   is up-to-date.  With a non-empty response, we can initialise
5881
                   the peer's known best block.  This wouldn't be possible
5882
                   if we requested starting at m_chainman.m_best_header and
5883
                   got back an empty response.  */
5884
0
                if (pindexStart->pprev)
  Branch (5884:21): [True: 0, False: 0]
5885
0
                    pindexStart = pindexStart->pprev;
5886
0
                if (MaybeSendGetHeaders(node, GetLocator(pindexStart), peer)) {
  Branch (5886:21): [True: 0, False: 0]
5887
0
                    LogDebug(BCLog::NET, "initial getheaders (%d) to peer=%d", pindexStart->nHeight, node.GetId());
5888
5889
0
                    state.fSyncStarted = true;
5890
0
                    peer.m_headers_sync_timeout = current_time + HEADERS_DOWNLOAD_TIMEOUT_BASE +
5891
0
                        (
5892
                         // Convert HEADERS_DOWNLOAD_TIMEOUT_PER_HEADER to microseconds before scaling
5893
                         // to maintain precision
5894
0
                         std::chrono::microseconds{HEADERS_DOWNLOAD_TIMEOUT_PER_HEADER} *
5895
0
                         Ticks<std::chrono::seconds>(NodeClock::now() - m_chainman.m_best_header->Time()) / consensusParams.nPowTargetSpacing
5896
0
                        );
5897
0
                    nSyncStarted++;
5898
0
                }
5899
0
            }
5900
0
        }
5901
5902
        //
5903
        // Try sending block announcements via headers
5904
        //
5905
0
        {
5906
            // If we have no more than MAX_BLOCKS_TO_ANNOUNCE in our
5907
            // list of block hashes we're relaying, and our peer wants
5908
            // headers announcements, then find the first header
5909
            // not yet known to our peer but would connect, and send.
5910
            // If no header would connect, or if we have too many
5911
            // blocks, or if the peer doesn't want headers, just
5912
            // add all to the inv queue.
5913
0
            LOCK(peer.m_block_inv_mutex);
5914
0
            std::vector<CBlock> vHeaders;
5915
0
            bool fRevertToInv = ((!peer.m_prefers_headers &&
  Branch (5915:35): [True: 0, False: 0]
5916
0
                                 (!state.m_requested_hb_cmpctblocks || peer.m_blocks_for_headers_relay.size() > 1)) ||
  Branch (5916:35): [True: 0, False: 0]
  Branch (5916:72): [True: 0, False: 0]
5917
0
                                 peer.m_blocks_for_headers_relay.size() > MAX_BLOCKS_TO_ANNOUNCE);
  Branch (5917:34): [True: 0, False: 0]
5918
0
            const CBlockIndex *pBestIndex = nullptr; // last header queued for delivery
5919
0
            ProcessBlockAvailability(node.GetId()); // ensure pindexBestKnownBlock is up-to-date
5920
5921
0
            if (!fRevertToInv) {
  Branch (5921:17): [True: 0, False: 0]
5922
0
                bool fFoundStartingHeader = false;
5923
                // Try to find first header that our peer doesn't have, and
5924
                // then send all headers past that one.  If we come across any
5925
                // headers that aren't on m_chainman.ActiveChain(), give up.
5926
0
                for (const uint256& hash : peer.m_blocks_for_headers_relay) {
  Branch (5926:42): [True: 0, False: 0]
5927
0
                    const CBlockIndex* pindex = m_chainman.m_blockman.LookupBlockIndex(hash);
5928
0
                    assert(pindex);
  Branch (5928:21): [True: 0, False: 0]
5929
0
                    if (m_chainman.ActiveChain()[pindex->nHeight] != pindex) {
  Branch (5929:25): [True: 0, False: 0]
5930
                        // Bail out if we reorged away from this block
5931
0
                        fRevertToInv = true;
5932
0
                        break;
5933
0
                    }
5934
0
                    if (pBestIndex != nullptr && pindex->pprev != pBestIndex) {
  Branch (5934:25): [True: 0, False: 0]
  Branch (5934:50): [True: 0, False: 0]
5935
                        // This means that the list of blocks to announce don't
5936
                        // connect to each other.
5937
                        // This shouldn't really be possible to hit during
5938
                        // regular operation (because reorgs should take us to
5939
                        // a chain that has some block not on the prior chain,
5940
                        // which should be caught by the prior check), but one
5941
                        // way this could happen is by using invalidateblock /
5942
                        // reconsiderblock repeatedly on the tip, causing it to
5943
                        // be added multiple times to m_blocks_for_headers_relay.
5944
                        // Robustly deal with this rare situation by reverting
5945
                        // to an inv.
5946
0
                        fRevertToInv = true;
5947
0
                        break;
5948
0
                    }
5949
0
                    pBestIndex = pindex;
5950
0
                    if (fFoundStartingHeader) {
  Branch (5950:25): [True: 0, False: 0]
5951
                        // add this to the headers message
5952
0
                        vHeaders.emplace_back(pindex->GetBlockHeader());
5953
0
                    } else if (PeerHasHeader(&state, pindex)) {
  Branch (5953:32): [True: 0, False: 0]
5954
0
                        continue; // keep looking for the first new block
5955
0
                    } else if (pindex->pprev == nullptr || PeerHasHeader(&state, pindex->pprev)) {
  Branch (5955:32): [True: 0, False: 0]
  Branch (5955:60): [True: 0, False: 0]
5956
                        // Peer doesn't have this header but they do have the prior one.
5957
                        // Start sending headers.
5958
0
                        fFoundStartingHeader = true;
5959
0
                        vHeaders.emplace_back(pindex->GetBlockHeader());
5960
0
                    } else {
5961
                        // Peer doesn't have this header or the prior one -- nothing will
5962
                        // connect, so bail out.
5963
0
                        fRevertToInv = true;
5964
0
                        break;
5965
0
                    }
5966
0
                }
5967
0
            }
5968
0
            if (!fRevertToInv && !vHeaders.empty()) {
  Branch (5968:17): [True: 0, False: 0]
  Branch (5968:34): [True: 0, False: 0]
5969
0
                if (vHeaders.size() == 1 && state.m_requested_hb_cmpctblocks) {
  Branch (5969:21): [True: 0, False: 0]
  Branch (5969:45): [True: 0, False: 0]
5970
                    // We only send up to 1 block as header-and-ids, as otherwise
5971
                    // probably means we're doing an initial-ish-sync or they're slow
5972
0
                    LogDebug(BCLog::NET, "%s sending header-and-ids %s to peer=%d\n", __func__,
5973
0
                            vHeaders.front().GetHash().ToString(), node.GetId());
5974
5975
0
                    std::optional<CSerializedNetMsg> cached_cmpctblock_msg;
5976
0
                    {
5977
0
                        LOCK(m_most_recent_block_mutex);
5978
0
                        if (m_most_recent_block_hash == pBestIndex->GetBlockHash()) {
  Branch (5978:29): [True: 0, False: 0]
5979
0
                            cached_cmpctblock_msg = NetMsg::Make(NetMsgType::CMPCTBLOCK, *m_most_recent_compact_block);
5980
0
                        }
5981
0
                    }
5982
0
                    if (cached_cmpctblock_msg.has_value()) {
  Branch (5982:25): [True: 0, False: 0]
5983
0
                        PushMessage(node, std::move(cached_cmpctblock_msg.value()));
5984
0
                    } else {
5985
0
                        CBlock block;
5986
0
                        const bool ret{m_chainman.m_blockman.ReadBlock(block, *pBestIndex)};
5987
0
                        assert(ret);
  Branch (5987:25): [True: 0, False: 0]
5988
0
                        CBlockHeaderAndShortTxIDs cmpctblock{block, m_rng.rand64()};
5989
0
                        MakeAndPushMessage(node, NetMsgType::CMPCTBLOCK, cmpctblock);
5990
0
                    }
5991
0
                    state.pindexBestHeaderSent = pBestIndex;
5992
0
                } else if (peer.m_prefers_headers) {
  Branch (5992:28): [True: 0, False: 0]
5993
0
                    if (vHeaders.size() > 1) {
  Branch (5993:25): [True: 0, False: 0]
5994
0
                        LogDebug(BCLog::NET, "%s: %u headers, range (%s, %s), to peer=%d\n", __func__,
5995
0
                                vHeaders.size(),
5996
0
                                vHeaders.front().GetHash().ToString(),
5997
0
                                vHeaders.back().GetHash().ToString(), node.GetId());
5998
0
                    } else {
5999
0
                        LogDebug(BCLog::NET, "%s: sending header %s to peer=%d\n", __func__,
6000
0
                                vHeaders.front().GetHash().ToString(), node.GetId());
6001
0
                    }
6002
0
                    MakeAndPushMessage(node, NetMsgType::HEADERS, TX_WITH_WITNESS(vHeaders));
6003
0
                    state.pindexBestHeaderSent = pBestIndex;
6004
0
                } else
6005
0
                    fRevertToInv = true;
6006
0
            }
6007
0
            if (fRevertToInv) {
  Branch (6007:17): [True: 0, False: 0]
6008
                // If falling back to using an inv, just try to inv the tip.
6009
                // The last entry in m_blocks_for_headers_relay was our tip at some point
6010
                // in the past.
6011
0
                if (!peer.m_blocks_for_headers_relay.empty()) {
  Branch (6011:21): [True: 0, False: 0]
6012
0
                    const uint256& hashToAnnounce = peer.m_blocks_for_headers_relay.back();
6013
0
                    const CBlockIndex* pindex = m_chainman.m_blockman.LookupBlockIndex(hashToAnnounce);
6014
0
                    assert(pindex);
  Branch (6014:21): [True: 0, False: 0]
6015
6016
                    // Warn if we're announcing a block that is not on the main chain.
6017
                    // This should be very rare and could be optimized out.
6018
                    // Just log for now.
6019
0
                    if (m_chainman.ActiveChain()[pindex->nHeight] != pindex) {
  Branch (6019:25): [True: 0, False: 0]
6020
0
                        LogDebug(BCLog::NET, "Announcing block %s not on main chain (tip=%s)\n",
6021
0
                            hashToAnnounce.ToString(), m_chainman.ActiveChain().Tip()->GetBlockHash().ToString());
6022
0
                    }
6023
6024
                    // If the peer's chain has this block, don't inv it back.
6025
0
                    if (!PeerHasHeader(&state, pindex)) {
  Branch (6025:25): [True: 0, False: 0]
6026
0
                        peer.m_blocks_for_inv_relay.push_back(hashToAnnounce);
6027
0
                        LogDebug(BCLog::NET, "%s: sending inv peer=%d hash=%s\n", __func__,
6028
0
                            node.GetId(), hashToAnnounce.ToString());
6029
0
                    }
6030
0
                }
6031
0
            }
6032
0
            peer.m_blocks_for_headers_relay.clear();
6033
0
        }
6034
6035
        //
6036
        // Message: inventory
6037
        //
6038
0
        std::vector<CInv> vInv;
6039
0
        {
6040
0
            LOCK(peer.m_block_inv_mutex);
6041
0
            vInv.reserve(std::max<size_t>(peer.m_blocks_for_inv_relay.size(), INVENTORY_BROADCAST_TARGET));
6042
6043
            // Add blocks
6044
0
            for (const uint256& hash : peer.m_blocks_for_inv_relay) {
  Branch (6044:38): [True: 0, False: 0]
6045
0
                vInv.emplace_back(MSG_BLOCK, hash);
6046
0
                if (vInv.size() == MAX_INV_SZ) {
  Branch (6046:21): [True: 0, False: 0]
6047
0
                    MakeAndPushMessage(node, NetMsgType::INV, vInv);
6048
0
                    vInv.clear();
6049
0
                }
6050
0
            }
6051
0
            peer.m_blocks_for_inv_relay.clear();
6052
0
        }
6053
6054
0
        if (auto tx_relay = peer.GetTxRelay(); tx_relay != nullptr) {
  Branch (6054:48): [True: 0, False: 0]
6055
0
                LOCK(tx_relay->m_tx_inventory_mutex);
6056
                // Check whether periodic sends should happen
6057
0
                bool fSendTrickle = node.HasPermission(NetPermissionFlags::NoBan);
6058
0
                if (tx_relay->m_next_inv_send_time < current_time) {
  Branch (6058:21): [True: 0, False: 0]
6059
0
                    fSendTrickle = true;
6060
0
                    if (node.IsInboundConn()) {
  Branch (6060:25): [True: 0, False: 0]
6061
0
                        tx_relay->m_next_inv_send_time = NextInvToInbounds(current_time, INBOUND_INVENTORY_BROADCAST_INTERVAL, node.m_network_key);
6062
0
                    } else {
6063
0
                        tx_relay->m_next_inv_send_time = current_time + m_rng.rand_exp_duration(OUTBOUND_INVENTORY_BROADCAST_INTERVAL);
6064
0
                    }
6065
0
                }
6066
6067
                // Time to send but the peer has requested we not relay transactions.
6068
0
                if (fSendTrickle) {
  Branch (6068:21): [True: 0, False: 0]
6069
0
                    LOCK(tx_relay->m_bloom_filter_mutex);
6070
0
                    if (!tx_relay->m_relay_txs) tx_relay->m_tx_inventory_to_send.clear();
  Branch (6070:25): [True: 0, False: 0]
6071
0
                }
6072
6073
                // Respond to BIP35 mempool requests
6074
0
                if (fSendTrickle && tx_relay->m_send_mempool) {
  Branch (6074:21): [True: 0, False: 0]
  Branch (6074:37): [True: 0, False: 0]
6075
0
                    auto vtxinfo = m_mempool.infoAll();
6076
0
                    tx_relay->m_send_mempool = false;
6077
0
                    const CFeeRate filterrate{tx_relay->m_fee_filter_received.load()};
6078
6079
0
                    LOCK(tx_relay->m_bloom_filter_mutex);
6080
6081
0
                    for (const auto& txinfo : vtxinfo) {
  Branch (6081:45): [True: 0, False: 0]
6082
0
                        const Txid& txid{txinfo.tx->GetHash()};
6083
0
                        const Wtxid& wtxid{txinfo.tx->GetWitnessHash()};
6084
0
                        const auto inv = peer.m_wtxid_relay ?
  Branch (6084:42): [True: 0, False: 0]
6085
0
                                             CInv{MSG_WTX, wtxid.ToUint256()} :
6086
0
                                             CInv{MSG_TX, txid.ToUint256()};
6087
0
                        tx_relay->m_tx_inventory_to_send.erase(wtxid);
6088
6089
                        // Don't send transactions that peers will not put into their mempool
6090
0
                        if (txinfo.fee < filterrate.GetFee(txinfo.vsize)) {
  Branch (6090:29): [True: 0, False: 0]
6091
0
                            continue;
6092
0
                        }
6093
0
                        if (tx_relay->m_bloom_filter) {
  Branch (6093:29): [True: 0, False: 0]
6094
0
                            if (!tx_relay->m_bloom_filter->IsRelevantAndUpdate(*txinfo.tx)) continue;
  Branch (6094:33): [True: 0, False: 0]
6095
0
                        }
6096
0
                        tx_relay->m_tx_inventory_known_filter.insert(inv.hash);
6097
0
                        vInv.push_back(inv);
6098
0
                        if (vInv.size() == MAX_INV_SZ) {
  Branch (6098:29): [True: 0, False: 0]
6099
0
                            MakeAndPushMessage(node, NetMsgType::INV, vInv);
6100
0
                            vInv.clear();
6101
0
                        }
6102
0
                    }
6103
0
                }
6104
6105
                // Determine transactions to relay
6106
0
                if (fSendTrickle) {
  Branch (6106:21): [True: 0, False: 0]
6107
                    // Produce a vector with all candidates for sending
6108
0
                    std::vector<std::set<Wtxid>::iterator> vInvTx;
6109
0
                    vInvTx.reserve(tx_relay->m_tx_inventory_to_send.size());
6110
0
                    for (std::set<Wtxid>::iterator it = tx_relay->m_tx_inventory_to_send.begin(); it != tx_relay->m_tx_inventory_to_send.end(); it++) {
  Branch (6110:99): [True: 0, False: 0]
6111
0
                        vInvTx.push_back(it);
6112
0
                    }
6113
0
                    const CFeeRate filterrate{tx_relay->m_fee_filter_received.load()};
6114
                    // Topologically and fee-rate sort the inventory we send for privacy and priority reasons.
6115
                    // A heap is used so that not all items need sorting if only a few are being sent.
6116
0
                    CompareInvMempoolOrder compareInvMempoolOrder(&m_mempool);
6117
0
                    std::make_heap(vInvTx.begin(), vInvTx.end(), compareInvMempoolOrder);
6118
                    // No reason to drain out at many times the network's capacity,
6119
                    // especially since we have many peers and some will draw much shorter delays.
6120
0
                    unsigned int nRelayedTransactions = 0;
6121
0
                    LOCK(tx_relay->m_bloom_filter_mutex);
6122
0
                    size_t broadcast_max{INVENTORY_BROADCAST_TARGET + (tx_relay->m_tx_inventory_to_send.size()/1000)*5};
6123
0
                    broadcast_max = std::min<size_t>(INVENTORY_BROADCAST_MAX, broadcast_max);
6124
0
                    while (!vInvTx.empty() && nRelayedTransactions < broadcast_max) {
  Branch (6124:28): [True: 0, False: 0]
  Branch (6124:47): [True: 0, False: 0]
6125
                        // Fetch the top element from the heap
6126
0
                        std::pop_heap(vInvTx.begin(), vInvTx.end(), compareInvMempoolOrder);
6127
0
                        std::set<Wtxid>::iterator it = vInvTx.back();
6128
0
                        vInvTx.pop_back();
6129
0
                        auto wtxid = *it;
6130
                        // Remove it from the to-be-sent set
6131
0
                        tx_relay->m_tx_inventory_to_send.erase(it);
6132
                        // Not in the mempool anymore? don't bother sending it.
6133
0
                        auto txinfo = m_mempool.info(wtxid);
6134
0
                        if (!txinfo.tx) {
  Branch (6134:29): [True: 0, False: 0]
6135
0
                            continue;
6136
0
                        }
6137
                        // `TxRelay::m_tx_inventory_known_filter` contains either txids or wtxids
6138
                        // depending on whether our peer supports wtxid-relay. Therefore, first
6139
                        // construct the inv and then use its hash for the filter check.
6140
0
                        const auto inv = peer.m_wtxid_relay ?
  Branch (6140:42): [True: 0, False: 0]
6141
0
                                             CInv{MSG_WTX, wtxid.ToUint256()} :
6142
0
                                             CInv{MSG_TX, txinfo.tx->GetHash().ToUint256()};
6143
                        // Check if not in the filter already
6144
0
                        if (tx_relay->m_tx_inventory_known_filter.contains(inv.hash)) {
  Branch (6144:29): [True: 0, False: 0]
6145
0
                            continue;
6146
0
                        }
6147
                        // Peer told you to not send transactions at that feerate? Don't bother sending it.
6148
0
                        if (txinfo.fee < filterrate.GetFee(txinfo.vsize)) {
  Branch (6148:29): [True: 0, False: 0]
6149
0
                            continue;
6150
0
                        }
6151
0
                        if (tx_relay->m_bloom_filter && !tx_relay->m_bloom_filter->IsRelevantAndUpdate(*txinfo.tx)) continue;
  Branch (6151:29): [True: 0, False: 0]
  Branch (6151:57): [True: 0, False: 0]
6152
                        // Send
6153
0
                        vInv.push_back(inv);
6154
0
                        nRelayedTransactions++;
6155
0
                        if (vInv.size() == MAX_INV_SZ) {
  Branch (6155:29): [True: 0, False: 0]
6156
0
                            MakeAndPushMessage(node, NetMsgType::INV, vInv);
6157
0
                            vInv.clear();
6158
0
                        }
6159
0
                        tx_relay->m_tx_inventory_known_filter.insert(inv.hash);
6160
0
                    }
6161
6162
                    // Ensure we'll respond to GETDATA requests for anything we've just announced
6163
0
                    LOCK(m_mempool.cs);
6164
0
                    tx_relay->m_last_inv_sequence = m_mempool.GetSequence();
6165
0
                }
6166
0
        }
6167
0
        if (!vInv.empty())
  Branch (6167:13): [True: 0, False: 0]
6168
0
            MakeAndPushMessage(node, NetMsgType::INV, vInv);
6169
6170
        // Detect whether we're stalling
6171
0
        auto stalling_timeout = m_block_stalling_timeout.load();
6172
0
        if (state.m_stalling_since.count() && state.m_stalling_since < current_time - stalling_timeout) {
  Branch (6172:13): [True: 0, False: 0]
  Branch (6172:13): [True: 0, False: 0]
  Branch (6172:47): [True: 0, False: 0]
6173
            // Stalling only triggers when the block download window cannot move. During normal steady state,
6174
            // the download window should be much larger than the to-be-downloaded set of blocks, so disconnection
6175
            // should only happen during initial block download.
6176
0
            LogInfo("Peer is stalling block download, %s", node.DisconnectMsg());
6177
0
            node.fDisconnect = true;
6178
            // Increase timeout for the next peer so that we don't disconnect multiple peers if our own
6179
            // bandwidth is insufficient.
6180
0
            const auto new_timeout = std::min(2 * stalling_timeout, BLOCK_STALLING_TIMEOUT_MAX);
6181
0
            if (stalling_timeout != new_timeout && m_block_stalling_timeout.compare_exchange_strong(stalling_timeout, new_timeout)) {
  Branch (6181:17): [True: 0, False: 0]
  Branch (6181:52): [True: 0, False: 0]
6182
0
                LogDebug(BCLog::NET, "Increased stalling timeout temporarily to %d seconds\n", count_seconds(new_timeout));
6183
0
            }
6184
0
            return true;
6185
0
        }
6186
        // In case there is a block that has been in flight from this peer for block_interval * (1 + 0.5 * N)
6187
        // (with N the number of peers from which we're downloading validated blocks), disconnect due to timeout.
6188
        // We compensate for other peers to prevent killing off peers due to our own downstream link
6189
        // being saturated. We only count validated in-flight blocks so peers can't advertise non-existing block hashes
6190
        // to unreasonably increase our timeout.
6191
0
        if (state.vBlocksInFlight.size() > 0) {
  Branch (6191:13): [True: 0, False: 0]
6192
0
            QueuedBlock &queuedBlock = state.vBlocksInFlight.front();
6193
0
            int nOtherPeersWithValidatedDownloads = m_peers_downloading_from - 1;
6194
0
            if (current_time > state.m_downloading_since + std::chrono::seconds{consensusParams.nPowTargetSpacing} * (BLOCK_DOWNLOAD_TIMEOUT_BASE + BLOCK_DOWNLOAD_TIMEOUT_PER_PEER * nOtherPeersWithValidatedDownloads)) {
  Branch (6194:17): [True: 0, False: 0]
6195
0
                LogInfo("Timeout downloading block %s, %s", queuedBlock.pindex->GetBlockHash().ToString(), node.DisconnectMsg());
6196
0
                node.fDisconnect = true;
6197
0
                return true;
6198
0
            }
6199
0
        }
6200
        // Check for headers sync timeouts
6201
0
        if (state.fSyncStarted && peer.m_headers_sync_timeout < std::chrono::microseconds::max()) {
  Branch (6201:13): [True: 0, False: 0]
  Branch (6201:13): [True: 0, False: 0]
  Branch (6201:35): [True: 0, False: 0]
6202
            // Detect whether this is a stalling initial-headers-sync peer
6203
0
            if (m_chainman.m_best_header->Time() <= NodeClock::now() - 24h) {
  Branch (6203:17): [True: 0, False: 0]
6204
0
                if (current_time > peer.m_headers_sync_timeout && nSyncStarted == 1 && (m_num_preferred_download_peers - state.fPreferredDownload >= 1)) {
  Branch (6204:21): [True: 0, False: 0]
  Branch (6204:67): [True: 0, False: 0]
  Branch (6204:88): [True: 0, False: 0]
6205
                    // Disconnect a peer (without NetPermissionFlags::NoBan permission) if it is our only sync peer,
6206
                    // and we have others we could be using instead.
6207
                    // Note: If all our peers are inbound, then we won't
6208
                    // disconnect our sync peer for stalling; we have bigger
6209
                    // problems if we can't get any outbound peers.
6210
0
                    if (!node.HasPermission(NetPermissionFlags::NoBan)) {
  Branch (6210:25): [True: 0, False: 0]
6211
0
                        LogInfo("Timeout downloading headers, %s", node.DisconnectMsg());
6212
0
                        node.fDisconnect = true;
6213
0
                        return true;
6214
0
                    } else {
6215
0
                        LogInfo("Timeout downloading headers from noban peer, not %s", node.DisconnectMsg());
6216
                        // Reset the headers sync state so that we have a
6217
                        // chance to try downloading from a different peer.
6218
                        // Note: this will also result in at least one more
6219
                        // getheaders message to be sent to
6220
                        // this peer (eventually).
6221
0
                        state.fSyncStarted = false;
6222
0
                        nSyncStarted--;
6223
0
                        peer.m_headers_sync_timeout = 0us;
6224
0
                    }
6225
0
                }
6226
0
            } else {
6227
                // After we've caught up once, reset the timeout so we can't trigger
6228
                // disconnect later.
6229
0
                peer.m_headers_sync_timeout = std::chrono::microseconds::max();
6230
0
            }
6231
0
        }
6232
6233
        // Check that outbound peers have reasonable chains
6234
        // GetTime() is used by this anti-DoS logic so we can test this using mocktime
6235
0
        ConsiderEviction(node, peer, GetTime<std::chrono::seconds>());
6236
6237
        //
6238
        // Message: getdata (blocks)
6239
        //
6240
0
        std::vector<CInv> vGetData;
6241
0
        if (CanServeBlocks(peer) && ((sync_blocks_and_headers_from_peer && !IsLimitedPeer(peer)) || !m_chainman.IsInitialBlockDownload()) && state.vBlocksInFlight.size() < MAX_BLOCKS_IN_TRANSIT_PER_PEER) {
  Branch (6241:13): [True: 0, False: 0]
  Branch (6241:39): [True: 0, False: 0]
  Branch (6241:76): [True: 0, False: 0]
  Branch (6241:101): [True: 0, False: 0]
  Branch (6241:142): [True: 0, False: 0]
6242
0
            std::vector<const CBlockIndex*> vToDownload;
6243
0
            NodeId staller = -1;
6244
0
            auto get_inflight_budget = [&state]() {
6245
0
                return std::max(0, MAX_BLOCKS_IN_TRANSIT_PER_PEER - static_cast<int>(state.vBlocksInFlight.size()));
6246
0
            };
6247
6248
            // If there are multiple chainstates, download blocks for the
6249
            // current chainstate first, to prioritize getting to network tip
6250
            // before downloading historical blocks.
6251
0
            FindNextBlocksToDownload(peer, get_inflight_budget(), vToDownload, staller);
6252
0
            auto historical_blocks{m_chainman.GetHistoricalBlockRange()};
6253
0
            if (historical_blocks && !IsLimitedPeer(peer)) {
  Branch (6253:17): [True: 0, False: 0]
  Branch (6253:38): [True: 0, False: 0]
6254
                // If the first needed historical block is not an ancestor of the last,
6255
                // we need to start requesting blocks from their last common ancestor.
6256
0
                const CBlockIndex* from_tip = LastCommonAncestor(historical_blocks->first, historical_blocks->second);
6257
0
                TryDownloadingHistoricalBlocks(
6258
0
                    peer,
6259
0
                    get_inflight_budget(),
6260
0
                    vToDownload, from_tip, historical_blocks->second);
6261
0
            }
6262
0
            for (const CBlockIndex *pindex : vToDownload) {
  Branch (6262:44): [True: 0, False: 0]
6263
0
                uint32_t nFetchFlags = GetFetchFlags(peer);
6264
0
                vGetData.emplace_back(MSG_BLOCK | nFetchFlags, pindex->GetBlockHash());
6265
0
                BlockRequested(node.GetId(), *pindex);
6266
0
                LogDebug(BCLog::NET, "Requesting block %s (%d) peer=%d\n", pindex->GetBlockHash().ToString(),
6267
0
                    pindex->nHeight, node.GetId());
6268
0
            }
6269
0
            if (state.vBlocksInFlight.empty() && staller != -1) {
  Branch (6269:17): [True: 0, False: 0]
  Branch (6269:50): [True: 0, False: 0]
6270
0
                if (State(staller)->m_stalling_since == 0us) {
  Branch (6270:21): [True: 0, False: 0]
6271
0
                    State(staller)->m_stalling_since = current_time;
6272
0
                    LogDebug(BCLog::NET, "Stall started peer=%d\n", staller);
6273
0
                }
6274
0
            }
6275
0
        }
6276
6277
        //
6278
        // Message: getdata (transactions)
6279
        //
6280
0
        {
6281
0
            LOCK(m_tx_download_mutex);
6282
0
            for (const GenTxid& gtxid : m_txdownloadman.GetRequestsToSend(node.GetId(), current_time)) {
  Branch (6282:39): [True: 0, False: 0]
6283
0
                vGetData.emplace_back(gtxid.IsWtxid() ? MSG_WTX : (MSG_TX | GetFetchFlags(peer)), gtxid.ToUint256());
  Branch (6283:39): [True: 0, False: 0]
6284
0
                if (vGetData.size() >= MAX_GETDATA_SZ) {
  Branch (6284:21): [True: 0, False: 0]
6285
0
                    MakeAndPushMessage(node, NetMsgType::GETDATA, vGetData);
6286
0
                    vGetData.clear();
6287
0
                }
6288
0
            }
6289
0
        }
6290
6291
0
        if (!vGetData.empty())
  Branch (6291:13): [True: 0, False: 0]
6292
0
            MakeAndPushMessage(node, NetMsgType::GETDATA, vGetData);
6293
0
    } // release cs_main
6294
0
    MaybeSendFeefilter(node, peer, current_time);
6295
0
    return true;
6296
0
}