/root/bitcoin/src/policy/fees.cpp
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1 | | // Copyright (c) 2009-2010 Satoshi Nakamoto |
2 | | // Copyright (c) 2009-2022 The Bitcoin Core developers |
3 | | // Distributed under the MIT software license, see the accompanying |
4 | | // file COPYING or http://www.opensource.org/licenses/mit-license.php. |
5 | | |
6 | | #include <policy/fees.h> |
7 | | |
8 | | #include <common/system.h> |
9 | | #include <consensus/amount.h> |
10 | | #include <kernel/mempool_entry.h> |
11 | | #include <logging.h> |
12 | | #include <policy/feerate.h> |
13 | | #include <primitives/transaction.h> |
14 | | #include <random.h> |
15 | | #include <serialize.h> |
16 | | #include <streams.h> |
17 | | #include <sync.h> |
18 | | #include <tinyformat.h> |
19 | | #include <uint256.h> |
20 | | #include <util/fs.h> |
21 | | #include <util/serfloat.h> |
22 | | #include <util/syserror.h> |
23 | | #include <util/time.h> |
24 | | |
25 | | #include <algorithm> |
26 | | #include <cassert> |
27 | | #include <chrono> |
28 | | #include <cmath> |
29 | | #include <cstddef> |
30 | | #include <cstdint> |
31 | | #include <exception> |
32 | | #include <stdexcept> |
33 | | #include <utility> |
34 | | |
35 | | // The current format written, and the version required to read. Must be |
36 | | // increased to at least 289900+1 on the next breaking change. |
37 | | constexpr int CURRENT_FEES_FILE_VERSION{149900}; |
38 | | |
39 | | static constexpr double INF_FEERATE = 1e99; |
40 | | |
41 | | std::string StringForFeeEstimateHorizon(FeeEstimateHorizon horizon) |
42 | 0 | { |
43 | 0 | switch (horizon) { |
44 | 0 | case FeeEstimateHorizon::SHORT_HALFLIFE: return "short"; |
45 | 0 | case FeeEstimateHorizon::MED_HALFLIFE: return "medium"; |
46 | 0 | case FeeEstimateHorizon::LONG_HALFLIFE: return "long"; |
47 | 0 | } // no default case, so the compiler can warn about missing cases |
48 | 0 | assert(false); |
49 | 0 | } |
50 | | |
51 | | namespace { |
52 | | |
53 | | struct EncodedDoubleFormatter |
54 | | { |
55 | | template<typename Stream> void Ser(Stream &s, double v) |
56 | 0 | { |
57 | 0 | s << EncodeDouble(v); |
58 | 0 | } |
59 | | |
60 | | template<typename Stream> void Unser(Stream& s, double& v) |
61 | 0 | { |
62 | 0 | uint64_t encoded; |
63 | 0 | s >> encoded; |
64 | 0 | v = DecodeDouble(encoded); |
65 | 0 | } |
66 | | }; |
67 | | |
68 | | } // namespace |
69 | | |
70 | | /** |
71 | | * We will instantiate an instance of this class to track transactions that were |
72 | | * included in a block. We will lump transactions into a bucket according to their |
73 | | * approximate feerate and then track how long it took for those txs to be included in a block |
74 | | * |
75 | | * The tracking of unconfirmed (mempool) transactions is completely independent of the |
76 | | * historical tracking of transactions that have been confirmed in a block. |
77 | | */ |
78 | | class TxConfirmStats |
79 | | { |
80 | | private: |
81 | | //Define the buckets we will group transactions into |
82 | | const std::vector<double>& buckets; // The upper-bound of the range for the bucket (inclusive) |
83 | | const std::map<double, unsigned int>& bucketMap; // Map of bucket upper-bound to index into all vectors by bucket |
84 | | |
85 | | // For each bucket X: |
86 | | // Count the total # of txs in each bucket |
87 | | // Track the historical moving average of this total over blocks |
88 | | std::vector<double> txCtAvg; |
89 | | |
90 | | // Count the total # of txs confirmed within Y blocks in each bucket |
91 | | // Track the historical moving average of these totals over blocks |
92 | | std::vector<std::vector<double>> confAvg; // confAvg[Y][X] |
93 | | |
94 | | // Track moving avg of txs which have been evicted from the mempool |
95 | | // after failing to be confirmed within Y blocks |
96 | | std::vector<std::vector<double>> failAvg; // failAvg[Y][X] |
97 | | |
98 | | // Sum the total feerate of all tx's in each bucket |
99 | | // Track the historical moving average of this total over blocks |
100 | | std::vector<double> m_feerate_avg; |
101 | | |
102 | | // Combine the conf counts with tx counts to calculate the confirmation % for each Y,X |
103 | | // Combine the total value with the tx counts to calculate the avg feerate per bucket |
104 | | |
105 | | double decay; |
106 | | |
107 | | // Resolution (# of blocks) with which confirmations are tracked |
108 | | unsigned int scale; |
109 | | |
110 | | // Mempool counts of outstanding transactions |
111 | | // For each bucket X, track the number of transactions in the mempool |
112 | | // that are unconfirmed for each possible confirmation value Y |
113 | | std::vector<std::vector<int> > unconfTxs; //unconfTxs[Y][X] |
114 | | // transactions still unconfirmed after GetMaxConfirms for each bucket |
115 | | std::vector<int> oldUnconfTxs; |
116 | | |
117 | | void resizeInMemoryCounters(size_t newbuckets); |
118 | | |
119 | | public: |
120 | | /** |
121 | | * Create new TxConfirmStats. This is called by BlockPolicyEstimator's |
122 | | * constructor with default values. |
123 | | * @param defaultBuckets contains the upper limits for the bucket boundaries |
124 | | * @param maxPeriods max number of periods to track |
125 | | * @param decay how much to decay the historical moving average per block |
126 | | */ |
127 | | TxConfirmStats(const std::vector<double>& defaultBuckets, const std::map<double, unsigned int>& defaultBucketMap, |
128 | | unsigned int maxPeriods, double decay, unsigned int scale); |
129 | | |
130 | | /** Roll the circular buffer for unconfirmed txs*/ |
131 | | void ClearCurrent(unsigned int nBlockHeight); |
132 | | |
133 | | /** |
134 | | * Record a new transaction data point in the current block stats |
135 | | * @param blocksToConfirm the number of blocks it took this transaction to confirm |
136 | | * @param val the feerate of the transaction |
137 | | * @warning blocksToConfirm is 1-based and has to be >= 1 |
138 | | */ |
139 | | void Record(int blocksToConfirm, double val); |
140 | | |
141 | | /** Record a new transaction entering the mempool*/ |
142 | | unsigned int NewTx(unsigned int nBlockHeight, double val); |
143 | | |
144 | | /** Remove a transaction from mempool tracking stats*/ |
145 | | void removeTx(unsigned int entryHeight, unsigned int nBestSeenHeight, |
146 | | unsigned int bucketIndex, bool inBlock); |
147 | | |
148 | | /** Update our estimates by decaying our historical moving average and updating |
149 | | with the data gathered from the current block */ |
150 | | void UpdateMovingAverages(); |
151 | | |
152 | | /** |
153 | | * Calculate a feerate estimate. Find the lowest value bucket (or range of buckets |
154 | | * to make sure we have enough data points) whose transactions still have sufficient likelihood |
155 | | * of being confirmed within the target number of confirmations |
156 | | * @param confTarget target number of confirmations |
157 | | * @param sufficientTxVal required average number of transactions per block in a bucket range |
158 | | * @param minSuccess the success probability we require |
159 | | * @param nBlockHeight the current block height |
160 | | */ |
161 | | double EstimateMedianVal(int confTarget, double sufficientTxVal, |
162 | | double minSuccess, unsigned int nBlockHeight, |
163 | | EstimationResult *result = nullptr) const; |
164 | | |
165 | | /** Return the max number of confirms we're tracking */ |
166 | 0 | unsigned int GetMaxConfirms() const { return scale * confAvg.size(); } |
167 | | |
168 | | /** Write state of estimation data to a file*/ |
169 | | void Write(AutoFile& fileout) const; |
170 | | |
171 | | /** |
172 | | * Read saved state of estimation data from a file and replace all internal data structures and |
173 | | * variables with this state. |
174 | | */ |
175 | | void Read(AutoFile& filein, size_t numBuckets); |
176 | | }; |
177 | | |
178 | | |
179 | | TxConfirmStats::TxConfirmStats(const std::vector<double>& defaultBuckets, |
180 | | const std::map<double, unsigned int>& defaultBucketMap, |
181 | | unsigned int maxPeriods, double _decay, unsigned int _scale) |
182 | 0 | : buckets(defaultBuckets), bucketMap(defaultBucketMap), decay(_decay), scale(_scale) |
183 | 0 | { |
184 | 0 | assert(_scale != 0 && "_scale must be non-zero"); |
185 | 0 | confAvg.resize(maxPeriods); |
186 | 0 | failAvg.resize(maxPeriods); |
187 | 0 | for (unsigned int i = 0; i < maxPeriods; i++) { |
188 | 0 | confAvg[i].resize(buckets.size()); |
189 | 0 | failAvg[i].resize(buckets.size()); |
190 | 0 | } |
191 | |
|
192 | 0 | txCtAvg.resize(buckets.size()); |
193 | 0 | m_feerate_avg.resize(buckets.size()); |
194 | |
|
195 | 0 | resizeInMemoryCounters(buckets.size()); |
196 | 0 | } |
197 | | |
198 | 0 | void TxConfirmStats::resizeInMemoryCounters(size_t newbuckets) { |
199 | | // newbuckets must be passed in because the buckets referred to during Read have not been updated yet. |
200 | 0 | unconfTxs.resize(GetMaxConfirms()); |
201 | 0 | for (unsigned int i = 0; i < unconfTxs.size(); i++) { |
202 | 0 | unconfTxs[i].resize(newbuckets); |
203 | 0 | } |
204 | 0 | oldUnconfTxs.resize(newbuckets); |
205 | 0 | } |
206 | | |
207 | | // Roll the unconfirmed txs circular buffer |
208 | | void TxConfirmStats::ClearCurrent(unsigned int nBlockHeight) |
209 | 0 | { |
210 | 0 | for (unsigned int j = 0; j < buckets.size(); j++) { |
211 | 0 | oldUnconfTxs[j] += unconfTxs[nBlockHeight % unconfTxs.size()][j]; |
212 | 0 | unconfTxs[nBlockHeight%unconfTxs.size()][j] = 0; |
213 | 0 | } |
214 | 0 | } |
215 | | |
216 | | |
217 | | void TxConfirmStats::Record(int blocksToConfirm, double feerate) |
218 | 0 | { |
219 | | // blocksToConfirm is 1-based |
220 | 0 | if (blocksToConfirm < 1) |
221 | 0 | return; |
222 | 0 | int periodsToConfirm = (blocksToConfirm + scale - 1) / scale; |
223 | 0 | unsigned int bucketindex = bucketMap.lower_bound(feerate)->second; |
224 | 0 | for (size_t i = periodsToConfirm; i <= confAvg.size(); i++) { |
225 | 0 | confAvg[i - 1][bucketindex]++; |
226 | 0 | } |
227 | 0 | txCtAvg[bucketindex]++; |
228 | 0 | m_feerate_avg[bucketindex] += feerate; |
229 | 0 | } |
230 | | |
231 | | void TxConfirmStats::UpdateMovingAverages() |
232 | 0 | { |
233 | 0 | assert(confAvg.size() == failAvg.size()); |
234 | 0 | for (unsigned int j = 0; j < buckets.size(); j++) { |
235 | 0 | for (unsigned int i = 0; i < confAvg.size(); i++) { |
236 | 0 | confAvg[i][j] *= decay; |
237 | 0 | failAvg[i][j] *= decay; |
238 | 0 | } |
239 | 0 | m_feerate_avg[j] *= decay; |
240 | 0 | txCtAvg[j] *= decay; |
241 | 0 | } |
242 | 0 | } |
243 | | |
244 | | // returns -1 on error conditions |
245 | | double TxConfirmStats::EstimateMedianVal(int confTarget, double sufficientTxVal, |
246 | | double successBreakPoint, unsigned int nBlockHeight, |
247 | | EstimationResult *result) const |
248 | 0 | { |
249 | | // Counters for a bucket (or range of buckets) |
250 | 0 | double nConf = 0; // Number of tx's confirmed within the confTarget |
251 | 0 | double totalNum = 0; // Total number of tx's that were ever confirmed |
252 | 0 | int extraNum = 0; // Number of tx's still in mempool for confTarget or longer |
253 | 0 | double failNum = 0; // Number of tx's that were never confirmed but removed from the mempool after confTarget |
254 | 0 | const int periodTarget = (confTarget + scale - 1) / scale; |
255 | 0 | const int maxbucketindex = buckets.size() - 1; |
256 | | |
257 | | // We'll combine buckets until we have enough samples. |
258 | | // The near and far variables will define the range we've combined |
259 | | // The best variables are the last range we saw which still had a high |
260 | | // enough confirmation rate to count as success. |
261 | | // The cur variables are the current range we're counting. |
262 | 0 | unsigned int curNearBucket = maxbucketindex; |
263 | 0 | unsigned int bestNearBucket = maxbucketindex; |
264 | 0 | unsigned int curFarBucket = maxbucketindex; |
265 | 0 | unsigned int bestFarBucket = maxbucketindex; |
266 | | |
267 | | // We'll always group buckets into sets that meet sufficientTxVal -- |
268 | | // this ensures that we're using consistent groups between different |
269 | | // confirmation targets. |
270 | 0 | double partialNum = 0; |
271 | |
|
272 | 0 | bool foundAnswer = false; |
273 | 0 | unsigned int bins = unconfTxs.size(); |
274 | 0 | bool newBucketRange = true; |
275 | 0 | bool passing = true; |
276 | 0 | EstimatorBucket passBucket; |
277 | 0 | EstimatorBucket failBucket; |
278 | | |
279 | | // Start counting from highest feerate transactions |
280 | 0 | for (int bucket = maxbucketindex; bucket >= 0; --bucket) { |
281 | 0 | if (newBucketRange) { |
282 | 0 | curNearBucket = bucket; |
283 | 0 | newBucketRange = false; |
284 | 0 | } |
285 | 0 | curFarBucket = bucket; |
286 | 0 | nConf += confAvg[periodTarget - 1][bucket]; |
287 | 0 | partialNum += txCtAvg[bucket]; |
288 | 0 | totalNum += txCtAvg[bucket]; |
289 | 0 | failNum += failAvg[periodTarget - 1][bucket]; |
290 | 0 | for (unsigned int confct = confTarget; confct < GetMaxConfirms(); confct++) |
291 | 0 | extraNum += unconfTxs[(nBlockHeight - confct) % bins][bucket]; |
292 | 0 | extraNum += oldUnconfTxs[bucket]; |
293 | | // If we have enough transaction data points in this range of buckets, |
294 | | // we can test for success |
295 | | // (Only count the confirmed data points, so that each confirmation count |
296 | | // will be looking at the same amount of data and same bucket breaks) |
297 | |
|
298 | 0 | if (partialNum < sufficientTxVal / (1 - decay)) { |
299 | | // the buckets we've added in this round aren't sufficient |
300 | | // so keep adding |
301 | 0 | continue; |
302 | 0 | } else { |
303 | 0 | partialNum = 0; // reset for the next range we'll add |
304 | |
|
305 | 0 | double curPct = nConf / (totalNum + failNum + extraNum); |
306 | | |
307 | | // Check to see if we are no longer getting confirmed at the success rate |
308 | 0 | if (curPct < successBreakPoint) { |
309 | 0 | if (passing == true) { |
310 | | // First time we hit a failure record the failed bucket |
311 | 0 | unsigned int failMinBucket = std::min(curNearBucket, curFarBucket); |
312 | 0 | unsigned int failMaxBucket = std::max(curNearBucket, curFarBucket); |
313 | 0 | failBucket.start = failMinBucket ? buckets[failMinBucket - 1] : 0; |
314 | 0 | failBucket.end = buckets[failMaxBucket]; |
315 | 0 | failBucket.withinTarget = nConf; |
316 | 0 | failBucket.totalConfirmed = totalNum; |
317 | 0 | failBucket.inMempool = extraNum; |
318 | 0 | failBucket.leftMempool = failNum; |
319 | 0 | passing = false; |
320 | 0 | } |
321 | 0 | continue; |
322 | 0 | } |
323 | | // Otherwise update the cumulative stats, and the bucket variables |
324 | | // and reset the counters |
325 | 0 | else { |
326 | 0 | failBucket = EstimatorBucket(); // Reset any failed bucket, currently passing |
327 | 0 | foundAnswer = true; |
328 | 0 | passing = true; |
329 | 0 | passBucket.withinTarget = nConf; |
330 | 0 | nConf = 0; |
331 | 0 | passBucket.totalConfirmed = totalNum; |
332 | 0 | totalNum = 0; |
333 | 0 | passBucket.inMempool = extraNum; |
334 | 0 | passBucket.leftMempool = failNum; |
335 | 0 | failNum = 0; |
336 | 0 | extraNum = 0; |
337 | 0 | bestNearBucket = curNearBucket; |
338 | 0 | bestFarBucket = curFarBucket; |
339 | 0 | newBucketRange = true; |
340 | 0 | } |
341 | 0 | } |
342 | 0 | } |
343 | |
|
344 | 0 | double median = -1; |
345 | 0 | double txSum = 0; |
346 | | |
347 | | // Calculate the "average" feerate of the best bucket range that met success conditions |
348 | | // Find the bucket with the median transaction and then report the average feerate from that bucket |
349 | | // This is a compromise between finding the median which we can't since we don't save all tx's |
350 | | // and reporting the average which is less accurate |
351 | 0 | unsigned int minBucket = std::min(bestNearBucket, bestFarBucket); |
352 | 0 | unsigned int maxBucket = std::max(bestNearBucket, bestFarBucket); |
353 | 0 | for (unsigned int j = minBucket; j <= maxBucket; j++) { |
354 | 0 | txSum += txCtAvg[j]; |
355 | 0 | } |
356 | 0 | if (foundAnswer && txSum != 0) { |
357 | 0 | txSum = txSum / 2; |
358 | 0 | for (unsigned int j = minBucket; j <= maxBucket; j++) { |
359 | 0 | if (txCtAvg[j] < txSum) |
360 | 0 | txSum -= txCtAvg[j]; |
361 | 0 | else { // we're in the right bucket |
362 | 0 | median = m_feerate_avg[j] / txCtAvg[j]; |
363 | 0 | break; |
364 | 0 | } |
365 | 0 | } |
366 | |
|
367 | 0 | passBucket.start = minBucket ? buckets[minBucket-1] : 0; |
368 | 0 | passBucket.end = buckets[maxBucket]; |
369 | 0 | } |
370 | | |
371 | | // If we were passing until we reached last few buckets with insufficient data, then report those as failed |
372 | 0 | if (passing && !newBucketRange) { |
373 | 0 | unsigned int failMinBucket = std::min(curNearBucket, curFarBucket); |
374 | 0 | unsigned int failMaxBucket = std::max(curNearBucket, curFarBucket); |
375 | 0 | failBucket.start = failMinBucket ? buckets[failMinBucket - 1] : 0; |
376 | 0 | failBucket.end = buckets[failMaxBucket]; |
377 | 0 | failBucket.withinTarget = nConf; |
378 | 0 | failBucket.totalConfirmed = totalNum; |
379 | 0 | failBucket.inMempool = extraNum; |
380 | 0 | failBucket.leftMempool = failNum; |
381 | 0 | } |
382 | |
|
383 | 0 | float passed_within_target_perc = 0.0; |
384 | 0 | float failed_within_target_perc = 0.0; |
385 | 0 | if ((passBucket.totalConfirmed + passBucket.inMempool + passBucket.leftMempool)) { |
386 | 0 | passed_within_target_perc = 100 * passBucket.withinTarget / (passBucket.totalConfirmed + passBucket.inMempool + passBucket.leftMempool); |
387 | 0 | } |
388 | 0 | if ((failBucket.totalConfirmed + failBucket.inMempool + failBucket.leftMempool)) { |
389 | 0 | failed_within_target_perc = 100 * failBucket.withinTarget / (failBucket.totalConfirmed + failBucket.inMempool + failBucket.leftMempool); |
390 | 0 | } |
391 | |
|
392 | 0 | LogDebug(BCLog::ESTIMATEFEE, "FeeEst: %d > %.0f%% decay %.5f: feerate: %g from (%g - %g) %.2f%% %.1f/(%.1f %d mem %.1f out) Fail: (%g - %g) %.2f%% %.1f/(%.1f %d mem %.1f out)\n", |
393 | 0 | confTarget, 100.0 * successBreakPoint, decay, |
394 | 0 | median, passBucket.start, passBucket.end, |
395 | 0 | passed_within_target_perc, |
396 | 0 | passBucket.withinTarget, passBucket.totalConfirmed, passBucket.inMempool, passBucket.leftMempool, |
397 | 0 | failBucket.start, failBucket.end, |
398 | 0 | failed_within_target_perc, |
399 | 0 | failBucket.withinTarget, failBucket.totalConfirmed, failBucket.inMempool, failBucket.leftMempool); |
400 | | |
401 | |
|
402 | 0 | if (result) { |
403 | 0 | result->pass = passBucket; |
404 | 0 | result->fail = failBucket; |
405 | 0 | result->decay = decay; |
406 | 0 | result->scale = scale; |
407 | 0 | } |
408 | 0 | return median; |
409 | 0 | } |
410 | | |
411 | | void TxConfirmStats::Write(AutoFile& fileout) const |
412 | 0 | { |
413 | 0 | fileout << Using<EncodedDoubleFormatter>(decay); |
414 | 0 | fileout << scale; |
415 | 0 | fileout << Using<VectorFormatter<EncodedDoubleFormatter>>(m_feerate_avg); |
416 | 0 | fileout << Using<VectorFormatter<EncodedDoubleFormatter>>(txCtAvg); |
417 | 0 | fileout << Using<VectorFormatter<VectorFormatter<EncodedDoubleFormatter>>>(confAvg); |
418 | 0 | fileout << Using<VectorFormatter<VectorFormatter<EncodedDoubleFormatter>>>(failAvg); |
419 | 0 | } |
420 | | |
421 | | void TxConfirmStats::Read(AutoFile& filein, size_t numBuckets) |
422 | 0 | { |
423 | | // Read data file and do some very basic sanity checking |
424 | | // buckets and bucketMap are not updated yet, so don't access them |
425 | | // If there is a read failure, we'll just discard this entire object anyway |
426 | 0 | size_t maxConfirms, maxPeriods; |
427 | | |
428 | | // The current version will store the decay with each individual TxConfirmStats and also keep a scale factor |
429 | 0 | filein >> Using<EncodedDoubleFormatter>(decay); |
430 | 0 | if (decay <= 0 || decay >= 1) { |
431 | 0 | throw std::runtime_error("Corrupt estimates file. Decay must be between 0 and 1 (non-inclusive)"); |
432 | 0 | } |
433 | 0 | filein >> scale; |
434 | 0 | if (scale == 0) { |
435 | 0 | throw std::runtime_error("Corrupt estimates file. Scale must be non-zero"); |
436 | 0 | } |
437 | | |
438 | 0 | filein >> Using<VectorFormatter<EncodedDoubleFormatter>>(m_feerate_avg); |
439 | 0 | if (m_feerate_avg.size() != numBuckets) { |
440 | 0 | throw std::runtime_error("Corrupt estimates file. Mismatch in feerate average bucket count"); |
441 | 0 | } |
442 | 0 | filein >> Using<VectorFormatter<EncodedDoubleFormatter>>(txCtAvg); |
443 | 0 | if (txCtAvg.size() != numBuckets) { |
444 | 0 | throw std::runtime_error("Corrupt estimates file. Mismatch in tx count bucket count"); |
445 | 0 | } |
446 | 0 | filein >> Using<VectorFormatter<VectorFormatter<EncodedDoubleFormatter>>>(confAvg); |
447 | 0 | maxPeriods = confAvg.size(); |
448 | 0 | maxConfirms = scale * maxPeriods; |
449 | |
|
450 | 0 | if (maxConfirms <= 0 || maxConfirms > 6 * 24 * 7) { // one week |
451 | 0 | throw std::runtime_error("Corrupt estimates file. Must maintain estimates for between 1 and 1008 (one week) confirms"); |
452 | 0 | } |
453 | 0 | for (unsigned int i = 0; i < maxPeriods; i++) { |
454 | 0 | if (confAvg[i].size() != numBuckets) { |
455 | 0 | throw std::runtime_error("Corrupt estimates file. Mismatch in feerate conf average bucket count"); |
456 | 0 | } |
457 | 0 | } |
458 | | |
459 | 0 | filein >> Using<VectorFormatter<VectorFormatter<EncodedDoubleFormatter>>>(failAvg); |
460 | 0 | if (maxPeriods != failAvg.size()) { |
461 | 0 | throw std::runtime_error("Corrupt estimates file. Mismatch in confirms tracked for failures"); |
462 | 0 | } |
463 | 0 | for (unsigned int i = 0; i < maxPeriods; i++) { |
464 | 0 | if (failAvg[i].size() != numBuckets) { |
465 | 0 | throw std::runtime_error("Corrupt estimates file. Mismatch in one of failure average bucket counts"); |
466 | 0 | } |
467 | 0 | } |
468 | | |
469 | | // Resize the current block variables which aren't stored in the data file |
470 | | // to match the number of confirms and buckets |
471 | 0 | resizeInMemoryCounters(numBuckets); |
472 | |
|
473 | 0 | LogDebug(BCLog::ESTIMATEFEE, "Reading estimates: %u buckets counting confirms up to %u blocks\n", |
474 | 0 | numBuckets, maxConfirms); |
475 | 0 | } |
476 | | |
477 | | unsigned int TxConfirmStats::NewTx(unsigned int nBlockHeight, double val) |
478 | 0 | { |
479 | 0 | unsigned int bucketindex = bucketMap.lower_bound(val)->second; |
480 | 0 | unsigned int blockIndex = nBlockHeight % unconfTxs.size(); |
481 | 0 | unconfTxs[blockIndex][bucketindex]++; |
482 | 0 | return bucketindex; |
483 | 0 | } |
484 | | |
485 | | void TxConfirmStats::removeTx(unsigned int entryHeight, unsigned int nBestSeenHeight, unsigned int bucketindex, bool inBlock) |
486 | 0 | { |
487 | | //nBestSeenHeight is not updated yet for the new block |
488 | 0 | int blocksAgo = nBestSeenHeight - entryHeight; |
489 | 0 | if (nBestSeenHeight == 0) // the BlockPolicyEstimator hasn't seen any blocks yet |
490 | 0 | blocksAgo = 0; |
491 | 0 | if (blocksAgo < 0) { |
492 | 0 | LogDebug(BCLog::ESTIMATEFEE, "Blockpolicy error, blocks ago is negative for mempool tx\n"); |
493 | 0 | return; //This can't happen because we call this with our best seen height, no entries can have higher |
494 | 0 | } |
495 | | |
496 | 0 | if (blocksAgo >= (int)unconfTxs.size()) { |
497 | 0 | if (oldUnconfTxs[bucketindex] > 0) { |
498 | 0 | oldUnconfTxs[bucketindex]--; |
499 | 0 | } else { |
500 | 0 | LogDebug(BCLog::ESTIMATEFEE, "Blockpolicy error, mempool tx removed from >25 blocks,bucketIndex=%u already\n", |
501 | 0 | bucketindex); |
502 | 0 | } |
503 | 0 | } |
504 | 0 | else { |
505 | 0 | unsigned int blockIndex = entryHeight % unconfTxs.size(); |
506 | 0 | if (unconfTxs[blockIndex][bucketindex] > 0) { |
507 | 0 | unconfTxs[blockIndex][bucketindex]--; |
508 | 0 | } else { |
509 | 0 | LogDebug(BCLog::ESTIMATEFEE, "Blockpolicy error, mempool tx removed from blockIndex=%u,bucketIndex=%u already\n", |
510 | 0 | blockIndex, bucketindex); |
511 | 0 | } |
512 | 0 | } |
513 | 0 | if (!inBlock && (unsigned int)blocksAgo >= scale) { // Only counts as a failure if not confirmed for entire period |
514 | 0 | assert(scale != 0); |
515 | 0 | unsigned int periodsAgo = blocksAgo / scale; |
516 | 0 | for (size_t i = 0; i < periodsAgo && i < failAvg.size(); i++) { |
517 | 0 | failAvg[i][bucketindex]++; |
518 | 0 | } |
519 | 0 | } |
520 | 0 | } |
521 | | |
522 | | bool CBlockPolicyEstimator::removeTx(Txid hash) |
523 | 0 | { |
524 | 0 | LOCK(m_cs_fee_estimator); |
525 | 0 | return _removeTx(hash, /*inBlock=*/false); |
526 | 0 | } |
527 | | |
528 | | bool CBlockPolicyEstimator::_removeTx(const Txid& hash, bool inBlock) |
529 | 0 | { |
530 | 0 | AssertLockHeld(m_cs_fee_estimator); |
531 | 0 | std::map<Txid, TxStatsInfo>::iterator pos = mapMemPoolTxs.find(hash); |
532 | 0 | if (pos != mapMemPoolTxs.end()) { |
533 | 0 | feeStats->removeTx(pos->second.blockHeight, nBestSeenHeight, pos->second.bucketIndex, inBlock); |
534 | 0 | shortStats->removeTx(pos->second.blockHeight, nBestSeenHeight, pos->second.bucketIndex, inBlock); |
535 | 0 | longStats->removeTx(pos->second.blockHeight, nBestSeenHeight, pos->second.bucketIndex, inBlock); |
536 | 0 | mapMemPoolTxs.erase(hash); |
537 | 0 | return true; |
538 | 0 | } else { |
539 | 0 | return false; |
540 | 0 | } |
541 | 0 | } |
542 | | |
543 | | CBlockPolicyEstimator::CBlockPolicyEstimator(const fs::path& estimation_filepath, const bool read_stale_estimates) |
544 | 0 | : m_estimation_filepath{estimation_filepath} |
545 | 0 | { |
546 | 0 | static_assert(MIN_BUCKET_FEERATE > 0, "Min feerate must be nonzero"); |
547 | 0 | size_t bucketIndex = 0; |
548 | |
|
549 | 0 | for (double bucketBoundary = MIN_BUCKET_FEERATE; bucketBoundary <= MAX_BUCKET_FEERATE; bucketBoundary *= FEE_SPACING, bucketIndex++) { |
550 | 0 | buckets.push_back(bucketBoundary); |
551 | 0 | bucketMap[bucketBoundary] = bucketIndex; |
552 | 0 | } |
553 | 0 | buckets.push_back(INF_FEERATE); |
554 | 0 | bucketMap[INF_FEERATE] = bucketIndex; |
555 | 0 | assert(bucketMap.size() == buckets.size()); |
556 | | |
557 | 0 | feeStats = std::unique_ptr<TxConfirmStats>(new TxConfirmStats(buckets, bucketMap, MED_BLOCK_PERIODS, MED_DECAY, MED_SCALE)); |
558 | 0 | shortStats = std::unique_ptr<TxConfirmStats>(new TxConfirmStats(buckets, bucketMap, SHORT_BLOCK_PERIODS, SHORT_DECAY, SHORT_SCALE)); |
559 | 0 | longStats = std::unique_ptr<TxConfirmStats>(new TxConfirmStats(buckets, bucketMap, LONG_BLOCK_PERIODS, LONG_DECAY, LONG_SCALE)); |
560 | |
|
561 | 0 | AutoFile est_file{fsbridge::fopen(m_estimation_filepath, "rb")}; |
562 | |
|
563 | 0 | if (est_file.IsNull()) { |
564 | 0 | LogInfo("%s is not found. Continue anyway.", fs::PathToString(m_estimation_filepath)); |
565 | 0 | return; |
566 | 0 | } |
567 | | |
568 | 0 | std::chrono::hours file_age = GetFeeEstimatorFileAge(); |
569 | 0 | if (file_age > MAX_FILE_AGE && !read_stale_estimates) { |
570 | 0 | LogPrintf("Fee estimation file %s too old (age=%lld > %lld hours) and will not be used to avoid serving stale estimates.\n", fs::PathToString(m_estimation_filepath), Ticks<std::chrono::hours>(file_age), Ticks<std::chrono::hours>(MAX_FILE_AGE)); |
571 | 0 | return; |
572 | 0 | } |
573 | | |
574 | 0 | if (!Read(est_file)) { |
575 | 0 | LogPrintf("Failed to read fee estimates from %s. Continue anyway.\n", fs::PathToString(m_estimation_filepath)); |
576 | 0 | } |
577 | 0 | } |
578 | | |
579 | 0 | CBlockPolicyEstimator::~CBlockPolicyEstimator() = default; |
580 | | |
581 | | void CBlockPolicyEstimator::TransactionAddedToMempool(const NewMempoolTransactionInfo& tx, uint64_t /*unused*/) |
582 | 0 | { |
583 | 0 | processTransaction(tx); |
584 | 0 | } |
585 | | |
586 | | void CBlockPolicyEstimator::TransactionRemovedFromMempool(const CTransactionRef& tx, MemPoolRemovalReason /*unused*/, uint64_t /*unused*/) |
587 | 0 | { |
588 | 0 | removeTx(tx->GetHash()); |
589 | 0 | } |
590 | | |
591 | | void CBlockPolicyEstimator::MempoolTransactionsRemovedForBlock(const std::vector<RemovedMempoolTransactionInfo>& txs_removed_for_block, unsigned int nBlockHeight) |
592 | 0 | { |
593 | 0 | processBlock(txs_removed_for_block, nBlockHeight); |
594 | 0 | } |
595 | | |
596 | | void CBlockPolicyEstimator::processTransaction(const NewMempoolTransactionInfo& tx) |
597 | 0 | { |
598 | 0 | LOCK(m_cs_fee_estimator); |
599 | 0 | const unsigned int txHeight = tx.info.txHeight; |
600 | 0 | const auto& hash = tx.info.m_tx->GetHash(); |
601 | 0 | if (mapMemPoolTxs.count(hash)) { |
602 | 0 | LogDebug(BCLog::ESTIMATEFEE, "Blockpolicy error mempool tx %s already being tracked\n", |
603 | 0 | hash.ToString()); |
604 | 0 | return; |
605 | 0 | } |
606 | | |
607 | 0 | if (txHeight != nBestSeenHeight) { |
608 | | // Ignore side chains and re-orgs; assuming they are random they don't |
609 | | // affect the estimate. We'll potentially double count transactions in 1-block reorgs. |
610 | | // Ignore txs if BlockPolicyEstimator is not in sync with ActiveChain().Tip(). |
611 | | // It will be synced next time a block is processed. |
612 | 0 | return; |
613 | 0 | } |
614 | | // This transaction should only count for fee estimation if: |
615 | | // - it's not being re-added during a reorg which bypasses typical mempool fee limits |
616 | | // - the node is not behind |
617 | | // - the transaction is not dependent on any other transactions in the mempool |
618 | | // - it's not part of a package. |
619 | 0 | const bool validForFeeEstimation = !tx.m_mempool_limit_bypassed && !tx.m_submitted_in_package && tx.m_chainstate_is_current && tx.m_has_no_mempool_parents; |
620 | | |
621 | | // Only want to be updating estimates when our blockchain is synced, |
622 | | // otherwise we'll miscalculate how many blocks its taking to get included. |
623 | 0 | if (!validForFeeEstimation) { |
624 | 0 | untrackedTxs++; |
625 | 0 | return; |
626 | 0 | } |
627 | 0 | trackedTxs++; |
628 | | |
629 | | // Feerates are stored and reported as BTC-per-kb: |
630 | 0 | const CFeeRate feeRate(tx.info.m_fee, tx.info.m_virtual_transaction_size); |
631 | |
|
632 | 0 | mapMemPoolTxs[hash].blockHeight = txHeight; |
633 | 0 | unsigned int bucketIndex = feeStats->NewTx(txHeight, static_cast<double>(feeRate.GetFeePerK())); |
634 | 0 | mapMemPoolTxs[hash].bucketIndex = bucketIndex; |
635 | 0 | unsigned int bucketIndex2 = shortStats->NewTx(txHeight, static_cast<double>(feeRate.GetFeePerK())); |
636 | 0 | assert(bucketIndex == bucketIndex2); |
637 | 0 | unsigned int bucketIndex3 = longStats->NewTx(txHeight, static_cast<double>(feeRate.GetFeePerK())); |
638 | 0 | assert(bucketIndex == bucketIndex3); |
639 | 0 | } |
640 | | |
641 | | bool CBlockPolicyEstimator::processBlockTx(unsigned int nBlockHeight, const RemovedMempoolTransactionInfo& tx) |
642 | 0 | { |
643 | 0 | AssertLockHeld(m_cs_fee_estimator); |
644 | 0 | if (!_removeTx(tx.info.m_tx->GetHash(), true)) { |
645 | | // This transaction wasn't being tracked for fee estimation |
646 | 0 | return false; |
647 | 0 | } |
648 | | |
649 | | // How many blocks did it take for miners to include this transaction? |
650 | | // blocksToConfirm is 1-based, so a transaction included in the earliest |
651 | | // possible block has confirmation count of 1 |
652 | 0 | int blocksToConfirm = nBlockHeight - tx.info.txHeight; |
653 | 0 | if (blocksToConfirm <= 0) { |
654 | | // This can't happen because we don't process transactions from a block with a height |
655 | | // lower than our greatest seen height |
656 | 0 | LogDebug(BCLog::ESTIMATEFEE, "Blockpolicy error Transaction had negative blocksToConfirm\n"); |
657 | 0 | return false; |
658 | 0 | } |
659 | | |
660 | | // Feerates are stored and reported as BTC-per-kb: |
661 | 0 | CFeeRate feeRate(tx.info.m_fee, tx.info.m_virtual_transaction_size); |
662 | |
|
663 | 0 | feeStats->Record(blocksToConfirm, static_cast<double>(feeRate.GetFeePerK())); |
664 | 0 | shortStats->Record(blocksToConfirm, static_cast<double>(feeRate.GetFeePerK())); |
665 | 0 | longStats->Record(blocksToConfirm, static_cast<double>(feeRate.GetFeePerK())); |
666 | 0 | return true; |
667 | 0 | } |
668 | | |
669 | | void CBlockPolicyEstimator::processBlock(const std::vector<RemovedMempoolTransactionInfo>& txs_removed_for_block, |
670 | | unsigned int nBlockHeight) |
671 | 0 | { |
672 | 0 | LOCK(m_cs_fee_estimator); |
673 | 0 | if (nBlockHeight <= nBestSeenHeight) { |
674 | | // Ignore side chains and re-orgs; assuming they are random |
675 | | // they don't affect the estimate. |
676 | | // And if an attacker can re-org the chain at will, then |
677 | | // you've got much bigger problems than "attacker can influence |
678 | | // transaction fees." |
679 | 0 | return; |
680 | 0 | } |
681 | | |
682 | | // Must update nBestSeenHeight in sync with ClearCurrent so that |
683 | | // calls to removeTx (via processBlockTx) correctly calculate age |
684 | | // of unconfirmed txs to remove from tracking. |
685 | 0 | nBestSeenHeight = nBlockHeight; |
686 | | |
687 | | // Update unconfirmed circular buffer |
688 | 0 | feeStats->ClearCurrent(nBlockHeight); |
689 | 0 | shortStats->ClearCurrent(nBlockHeight); |
690 | 0 | longStats->ClearCurrent(nBlockHeight); |
691 | | |
692 | | // Decay all exponential averages |
693 | 0 | feeStats->UpdateMovingAverages(); |
694 | 0 | shortStats->UpdateMovingAverages(); |
695 | 0 | longStats->UpdateMovingAverages(); |
696 | |
|
697 | 0 | unsigned int countedTxs = 0; |
698 | | // Update averages with data points from current block |
699 | 0 | for (const auto& tx : txs_removed_for_block) { |
700 | 0 | if (processBlockTx(nBlockHeight, tx)) |
701 | 0 | countedTxs++; |
702 | 0 | } |
703 | |
|
704 | 0 | if (firstRecordedHeight == 0 && countedTxs > 0) { |
705 | 0 | firstRecordedHeight = nBestSeenHeight; |
706 | 0 | LogDebug(BCLog::ESTIMATEFEE, "Blockpolicy first recorded height %u\n", firstRecordedHeight); |
707 | 0 | } |
708 | | |
709 | |
|
710 | 0 | LogDebug(BCLog::ESTIMATEFEE, "Blockpolicy estimates updated by %u of %u block txs, since last block %u of %u tracked, mempool map size %u, max target %u from %s\n", |
711 | 0 | countedTxs, txs_removed_for_block.size(), trackedTxs, trackedTxs + untrackedTxs, mapMemPoolTxs.size(), |
712 | 0 | MaxUsableEstimate(), HistoricalBlockSpan() > BlockSpan() ? "historical" : "current"); |
713 | |
|
714 | 0 | trackedTxs = 0; |
715 | 0 | untrackedTxs = 0; |
716 | 0 | } |
717 | | |
718 | | CFeeRate CBlockPolicyEstimator::estimateFee(int confTarget) const |
719 | 0 | { |
720 | | // It's not possible to get reasonable estimates for confTarget of 1 |
721 | 0 | if (confTarget <= 1) |
722 | 0 | return CFeeRate(0); |
723 | | |
724 | 0 | return estimateRawFee(confTarget, DOUBLE_SUCCESS_PCT, FeeEstimateHorizon::MED_HALFLIFE); |
725 | 0 | } |
726 | | |
727 | | CFeeRate CBlockPolicyEstimator::estimateRawFee(int confTarget, double successThreshold, FeeEstimateHorizon horizon, EstimationResult* result) const |
728 | 0 | { |
729 | 0 | TxConfirmStats* stats = nullptr; |
730 | 0 | double sufficientTxs = SUFFICIENT_FEETXS; |
731 | 0 | switch (horizon) { |
732 | 0 | case FeeEstimateHorizon::SHORT_HALFLIFE: { |
733 | 0 | stats = shortStats.get(); |
734 | 0 | sufficientTxs = SUFFICIENT_TXS_SHORT; |
735 | 0 | break; |
736 | 0 | } |
737 | 0 | case FeeEstimateHorizon::MED_HALFLIFE: { |
738 | 0 | stats = feeStats.get(); |
739 | 0 | break; |
740 | 0 | } |
741 | 0 | case FeeEstimateHorizon::LONG_HALFLIFE: { |
742 | 0 | stats = longStats.get(); |
743 | 0 | break; |
744 | 0 | } |
745 | 0 | } // no default case, so the compiler can warn about missing cases |
746 | 0 | assert(stats); |
747 | | |
748 | 0 | LOCK(m_cs_fee_estimator); |
749 | | // Return failure if trying to analyze a target we're not tracking |
750 | 0 | if (confTarget <= 0 || (unsigned int)confTarget > stats->GetMaxConfirms()) |
751 | 0 | return CFeeRate(0); |
752 | 0 | if (successThreshold > 1) |
753 | 0 | return CFeeRate(0); |
754 | | |
755 | 0 | double median = stats->EstimateMedianVal(confTarget, sufficientTxs, successThreshold, nBestSeenHeight, result); |
756 | |
|
757 | 0 | if (median < 0) |
758 | 0 | return CFeeRate(0); |
759 | | |
760 | 0 | return CFeeRate(llround(median)); |
761 | 0 | } |
762 | | |
763 | | unsigned int CBlockPolicyEstimator::HighestTargetTracked(FeeEstimateHorizon horizon) const |
764 | 0 | { |
765 | 0 | LOCK(m_cs_fee_estimator); |
766 | 0 | switch (horizon) { |
767 | 0 | case FeeEstimateHorizon::SHORT_HALFLIFE: { |
768 | 0 | return shortStats->GetMaxConfirms(); |
769 | 0 | } |
770 | 0 | case FeeEstimateHorizon::MED_HALFLIFE: { |
771 | 0 | return feeStats->GetMaxConfirms(); |
772 | 0 | } |
773 | 0 | case FeeEstimateHorizon::LONG_HALFLIFE: { |
774 | 0 | return longStats->GetMaxConfirms(); |
775 | 0 | } |
776 | 0 | } // no default case, so the compiler can warn about missing cases |
777 | 0 | assert(false); |
778 | 0 | } |
779 | | |
780 | | unsigned int CBlockPolicyEstimator::BlockSpan() const |
781 | 0 | { |
782 | 0 | if (firstRecordedHeight == 0) return 0; |
783 | 0 | assert(nBestSeenHeight >= firstRecordedHeight); |
784 | | |
785 | 0 | return nBestSeenHeight - firstRecordedHeight; |
786 | 0 | } |
787 | | |
788 | | unsigned int CBlockPolicyEstimator::HistoricalBlockSpan() const |
789 | 0 | { |
790 | 0 | if (historicalFirst == 0) return 0; |
791 | 0 | assert(historicalBest >= historicalFirst); |
792 | | |
793 | 0 | if (nBestSeenHeight - historicalBest > OLDEST_ESTIMATE_HISTORY) return 0; |
794 | | |
795 | 0 | return historicalBest - historicalFirst; |
796 | 0 | } |
797 | | |
798 | | unsigned int CBlockPolicyEstimator::MaxUsableEstimate() const |
799 | 0 | { |
800 | | // Block spans are divided by 2 to make sure there are enough potential failing data points for the estimate |
801 | 0 | return std::min(longStats->GetMaxConfirms(), std::max(BlockSpan(), HistoricalBlockSpan()) / 2); |
802 | 0 | } |
803 | | |
804 | | /** Return a fee estimate at the required successThreshold from the shortest |
805 | | * time horizon which tracks confirmations up to the desired target. If |
806 | | * checkShorterHorizon is requested, also allow short time horizon estimates |
807 | | * for a lower target to reduce the given answer */ |
808 | | double CBlockPolicyEstimator::estimateCombinedFee(unsigned int confTarget, double successThreshold, bool checkShorterHorizon, EstimationResult *result) const |
809 | 0 | { |
810 | 0 | double estimate = -1; |
811 | 0 | if (confTarget >= 1 && confTarget <= longStats->GetMaxConfirms()) { |
812 | | // Find estimate from shortest time horizon possible |
813 | 0 | if (confTarget <= shortStats->GetMaxConfirms()) { // short horizon |
814 | 0 | estimate = shortStats->EstimateMedianVal(confTarget, SUFFICIENT_TXS_SHORT, successThreshold, nBestSeenHeight, result); |
815 | 0 | } |
816 | 0 | else if (confTarget <= feeStats->GetMaxConfirms()) { // medium horizon |
817 | 0 | estimate = feeStats->EstimateMedianVal(confTarget, SUFFICIENT_FEETXS, successThreshold, nBestSeenHeight, result); |
818 | 0 | } |
819 | 0 | else { // long horizon |
820 | 0 | estimate = longStats->EstimateMedianVal(confTarget, SUFFICIENT_FEETXS, successThreshold, nBestSeenHeight, result); |
821 | 0 | } |
822 | 0 | if (checkShorterHorizon) { |
823 | 0 | EstimationResult tempResult; |
824 | | // If a lower confTarget from a more recent horizon returns a lower answer use it. |
825 | 0 | if (confTarget > feeStats->GetMaxConfirms()) { |
826 | 0 | double medMax = feeStats->EstimateMedianVal(feeStats->GetMaxConfirms(), SUFFICIENT_FEETXS, successThreshold, nBestSeenHeight, &tempResult); |
827 | 0 | if (medMax > 0 && (estimate == -1 || medMax < estimate)) { |
828 | 0 | estimate = medMax; |
829 | 0 | if (result) *result = tempResult; |
830 | 0 | } |
831 | 0 | } |
832 | 0 | if (confTarget > shortStats->GetMaxConfirms()) { |
833 | 0 | double shortMax = shortStats->EstimateMedianVal(shortStats->GetMaxConfirms(), SUFFICIENT_TXS_SHORT, successThreshold, nBestSeenHeight, &tempResult); |
834 | 0 | if (shortMax > 0 && (estimate == -1 || shortMax < estimate)) { |
835 | 0 | estimate = shortMax; |
836 | 0 | if (result) *result = tempResult; |
837 | 0 | } |
838 | 0 | } |
839 | 0 | } |
840 | 0 | } |
841 | 0 | return estimate; |
842 | 0 | } |
843 | | |
844 | | /** Ensure that for a conservative estimate, the DOUBLE_SUCCESS_PCT is also met |
845 | | * at 2 * target for any longer time horizons. |
846 | | */ |
847 | | double CBlockPolicyEstimator::estimateConservativeFee(unsigned int doubleTarget, EstimationResult *result) const |
848 | 0 | { |
849 | 0 | double estimate = -1; |
850 | 0 | EstimationResult tempResult; |
851 | 0 | if (doubleTarget <= shortStats->GetMaxConfirms()) { |
852 | 0 | estimate = feeStats->EstimateMedianVal(doubleTarget, SUFFICIENT_FEETXS, DOUBLE_SUCCESS_PCT, nBestSeenHeight, result); |
853 | 0 | } |
854 | 0 | if (doubleTarget <= feeStats->GetMaxConfirms()) { |
855 | 0 | double longEstimate = longStats->EstimateMedianVal(doubleTarget, SUFFICIENT_FEETXS, DOUBLE_SUCCESS_PCT, nBestSeenHeight, &tempResult); |
856 | 0 | if (longEstimate > estimate) { |
857 | 0 | estimate = longEstimate; |
858 | 0 | if (result) *result = tempResult; |
859 | 0 | } |
860 | 0 | } |
861 | 0 | return estimate; |
862 | 0 | } |
863 | | |
864 | | /** estimateSmartFee returns the max of the feerates calculated with a 60% |
865 | | * threshold required at target / 2, an 85% threshold required at target and a |
866 | | * 95% threshold required at 2 * target. Each calculation is performed at the |
867 | | * shortest time horizon which tracks the required target. Conservative |
868 | | * estimates, however, required the 95% threshold at 2 * target be met for any |
869 | | * longer time horizons also. |
870 | | */ |
871 | | CFeeRate CBlockPolicyEstimator::estimateSmartFee(int confTarget, FeeCalculation *feeCalc, bool conservative) const |
872 | 0 | { |
873 | 0 | LOCK(m_cs_fee_estimator); |
874 | |
|
875 | 0 | if (feeCalc) { |
876 | 0 | feeCalc->desiredTarget = confTarget; |
877 | 0 | feeCalc->returnedTarget = confTarget; |
878 | 0 | } |
879 | |
|
880 | 0 | double median = -1; |
881 | 0 | EstimationResult tempResult; |
882 | | |
883 | | // Return failure if trying to analyze a target we're not tracking |
884 | 0 | if (confTarget <= 0 || (unsigned int)confTarget > longStats->GetMaxConfirms()) { |
885 | 0 | return CFeeRate(0); // error condition |
886 | 0 | } |
887 | | |
888 | | // It's not possible to get reasonable estimates for confTarget of 1 |
889 | 0 | if (confTarget == 1) confTarget = 2; |
890 | |
|
891 | 0 | unsigned int maxUsableEstimate = MaxUsableEstimate(); |
892 | 0 | if ((unsigned int)confTarget > maxUsableEstimate) { |
893 | 0 | confTarget = maxUsableEstimate; |
894 | 0 | } |
895 | 0 | if (feeCalc) feeCalc->returnedTarget = confTarget; |
896 | |
|
897 | 0 | if (confTarget <= 1) return CFeeRate(0); // error condition |
898 | | |
899 | 0 | assert(confTarget > 0); //estimateCombinedFee and estimateConservativeFee take unsigned ints |
900 | | /** true is passed to estimateCombined fee for target/2 and target so |
901 | | * that we check the max confirms for shorter time horizons as well. |
902 | | * This is necessary to preserve monotonically increasing estimates. |
903 | | * For non-conservative estimates we do the same thing for 2*target, but |
904 | | * for conservative estimates we want to skip these shorter horizons |
905 | | * checks for 2*target because we are taking the max over all time |
906 | | * horizons so we already have monotonically increasing estimates and |
907 | | * the purpose of conservative estimates is not to let short term |
908 | | * fluctuations lower our estimates by too much. |
909 | | * |
910 | | * Note: In certain rare edge cases, monotonically increasing estimates may |
911 | | * not be guaranteed. Specifically, given two targets N and M, where M > N, |
912 | | * if a sub-estimate for target N fails to return a valid fee rate, while |
913 | | * target M has valid fee rate for that sub-estimate, target M may result |
914 | | * in a higher fee rate estimate than target N. |
915 | | * |
916 | | * See: https://github.com/bitcoin/bitcoin/issues/11800#issuecomment-349697807 |
917 | | */ |
918 | 0 | double halfEst = estimateCombinedFee(confTarget/2, HALF_SUCCESS_PCT, true, &tempResult); |
919 | 0 | if (feeCalc) { |
920 | 0 | feeCalc->est = tempResult; |
921 | 0 | feeCalc->reason = FeeReason::HALF_ESTIMATE; |
922 | 0 | } |
923 | 0 | median = halfEst; |
924 | 0 | double actualEst = estimateCombinedFee(confTarget, SUCCESS_PCT, true, &tempResult); |
925 | 0 | if (actualEst > median) { |
926 | 0 | median = actualEst; |
927 | 0 | if (feeCalc) { |
928 | 0 | feeCalc->est = tempResult; |
929 | 0 | feeCalc->reason = FeeReason::FULL_ESTIMATE; |
930 | 0 | } |
931 | 0 | } |
932 | 0 | double doubleEst = estimateCombinedFee(2 * confTarget, DOUBLE_SUCCESS_PCT, !conservative, &tempResult); |
933 | 0 | if (doubleEst > median) { |
934 | 0 | median = doubleEst; |
935 | 0 | if (feeCalc) { |
936 | 0 | feeCalc->est = tempResult; |
937 | 0 | feeCalc->reason = FeeReason::DOUBLE_ESTIMATE; |
938 | 0 | } |
939 | 0 | } |
940 | |
|
941 | 0 | if (conservative || median == -1) { |
942 | 0 | double consEst = estimateConservativeFee(2 * confTarget, &tempResult); |
943 | 0 | if (consEst > median) { |
944 | 0 | median = consEst; |
945 | 0 | if (feeCalc) { |
946 | 0 | feeCalc->est = tempResult; |
947 | 0 | feeCalc->reason = FeeReason::CONSERVATIVE; |
948 | 0 | } |
949 | 0 | } |
950 | 0 | } |
951 | |
|
952 | 0 | if (median < 0) return CFeeRate(0); // error condition |
953 | | |
954 | 0 | return CFeeRate(llround(median)); |
955 | 0 | } |
956 | | |
957 | 0 | void CBlockPolicyEstimator::Flush() { |
958 | 0 | FlushUnconfirmed(); |
959 | 0 | FlushFeeEstimates(); |
960 | 0 | } |
961 | | |
962 | | void CBlockPolicyEstimator::FlushFeeEstimates() |
963 | 0 | { |
964 | 0 | AutoFile est_file{fsbridge::fopen(m_estimation_filepath, "wb")}; |
965 | 0 | if (est_file.IsNull() || !Write(est_file)) { |
966 | 0 | LogPrintf("Failed to write fee estimates to %s. Continue anyway.\n", fs::PathToString(m_estimation_filepath)); |
967 | 0 | (void)est_file.fclose(); |
968 | 0 | return; |
969 | 0 | } |
970 | 0 | if (est_file.fclose() != 0) { |
971 | 0 | LogError("Failed to close fee estimates file %s: %s. Continuing anyway.", fs::PathToString(m_estimation_filepath), SysErrorString(errno)); |
972 | 0 | return; |
973 | 0 | } |
974 | 0 | LogInfo("Flushed fee estimates to %s.", fs::PathToString(m_estimation_filepath.filename())); |
975 | 0 | } |
976 | | |
977 | | bool CBlockPolicyEstimator::Write(AutoFile& fileout) const |
978 | 0 | { |
979 | 0 | try { |
980 | 0 | LOCK(m_cs_fee_estimator); |
981 | 0 | fileout << CURRENT_FEES_FILE_VERSION; |
982 | 0 | fileout << int{0}; // Unused dummy field. Written files may contain any value in [0, 289900] |
983 | 0 | fileout << nBestSeenHeight; |
984 | 0 | if (BlockSpan() > HistoricalBlockSpan()/2) { |
985 | 0 | fileout << firstRecordedHeight << nBestSeenHeight; |
986 | 0 | } |
987 | 0 | else { |
988 | 0 | fileout << historicalFirst << historicalBest; |
989 | 0 | } |
990 | 0 | fileout << Using<VectorFormatter<EncodedDoubleFormatter>>(buckets); |
991 | 0 | feeStats->Write(fileout); |
992 | 0 | shortStats->Write(fileout); |
993 | 0 | longStats->Write(fileout); |
994 | 0 | } |
995 | 0 | catch (const std::exception&) { |
996 | 0 | LogWarning("Unable to write policy estimator data (non-fatal)"); |
997 | 0 | return false; |
998 | 0 | } |
999 | 0 | return true; |
1000 | 0 | } |
1001 | | |
1002 | | bool CBlockPolicyEstimator::Read(AutoFile& filein) |
1003 | 0 | { |
1004 | 0 | try { |
1005 | 0 | LOCK(m_cs_fee_estimator); |
1006 | 0 | int nVersionRequired, dummy; |
1007 | 0 | filein >> nVersionRequired >> dummy; |
1008 | 0 | if (nVersionRequired > CURRENT_FEES_FILE_VERSION) { |
1009 | 0 | throw std::runtime_error{strprintf("File version (%d) too high to be read.", nVersionRequired)}; |
1010 | 0 | } |
1011 | | |
1012 | | // Read fee estimates file into temporary variables so existing data |
1013 | | // structures aren't corrupted if there is an exception. |
1014 | 0 | unsigned int nFileBestSeenHeight; |
1015 | 0 | filein >> nFileBestSeenHeight; |
1016 | |
|
1017 | 0 | if (nVersionRequired < CURRENT_FEES_FILE_VERSION) { |
1018 | 0 | LogWarning("Incompatible old fee estimation data (non-fatal). Version: %d", nVersionRequired); |
1019 | 0 | } else { // nVersionRequired == CURRENT_FEES_FILE_VERSION |
1020 | 0 | unsigned int nFileHistoricalFirst, nFileHistoricalBest; |
1021 | 0 | filein >> nFileHistoricalFirst >> nFileHistoricalBest; |
1022 | 0 | if (nFileHistoricalFirst > nFileHistoricalBest || nFileHistoricalBest > nFileBestSeenHeight) { |
1023 | 0 | throw std::runtime_error("Corrupt estimates file. Historical block range for estimates is invalid"); |
1024 | 0 | } |
1025 | 0 | std::vector<double> fileBuckets; |
1026 | 0 | filein >> Using<VectorFormatter<EncodedDoubleFormatter>>(fileBuckets); |
1027 | 0 | size_t numBuckets = fileBuckets.size(); |
1028 | 0 | if (numBuckets <= 1 || numBuckets > 1000) { |
1029 | 0 | throw std::runtime_error("Corrupt estimates file. Must have between 2 and 1000 feerate buckets"); |
1030 | 0 | } |
1031 | | |
1032 | 0 | std::unique_ptr<TxConfirmStats> fileFeeStats(new TxConfirmStats(buckets, bucketMap, MED_BLOCK_PERIODS, MED_DECAY, MED_SCALE)); |
1033 | 0 | std::unique_ptr<TxConfirmStats> fileShortStats(new TxConfirmStats(buckets, bucketMap, SHORT_BLOCK_PERIODS, SHORT_DECAY, SHORT_SCALE)); |
1034 | 0 | std::unique_ptr<TxConfirmStats> fileLongStats(new TxConfirmStats(buckets, bucketMap, LONG_BLOCK_PERIODS, LONG_DECAY, LONG_SCALE)); |
1035 | 0 | fileFeeStats->Read(filein, numBuckets); |
1036 | 0 | fileShortStats->Read(filein, numBuckets); |
1037 | 0 | fileLongStats->Read(filein, numBuckets); |
1038 | | |
1039 | | // Fee estimates file parsed correctly |
1040 | | // Copy buckets from file and refresh our bucketmap |
1041 | 0 | buckets = fileBuckets; |
1042 | 0 | bucketMap.clear(); |
1043 | 0 | for (unsigned int i = 0; i < buckets.size(); i++) { |
1044 | 0 | bucketMap[buckets[i]] = i; |
1045 | 0 | } |
1046 | | |
1047 | | // Destroy old TxConfirmStats and point to new ones that already reference buckets and bucketMap |
1048 | 0 | feeStats = std::move(fileFeeStats); |
1049 | 0 | shortStats = std::move(fileShortStats); |
1050 | 0 | longStats = std::move(fileLongStats); |
1051 | |
|
1052 | 0 | nBestSeenHeight = nFileBestSeenHeight; |
1053 | 0 | historicalFirst = nFileHistoricalFirst; |
1054 | 0 | historicalBest = nFileHistoricalBest; |
1055 | 0 | } |
1056 | 0 | } |
1057 | 0 | catch (const std::exception& e) { |
1058 | 0 | LogWarning("Unable to read policy estimator data (non-fatal): %s", e.what()); |
1059 | 0 | return false; |
1060 | 0 | } |
1061 | 0 | return true; |
1062 | 0 | } |
1063 | | |
1064 | | void CBlockPolicyEstimator::FlushUnconfirmed() |
1065 | 0 | { |
1066 | 0 | const auto startclear{SteadyClock::now()}; |
1067 | 0 | LOCK(m_cs_fee_estimator); |
1068 | 0 | size_t num_entries = mapMemPoolTxs.size(); |
1069 | | // Remove every entry in mapMemPoolTxs |
1070 | 0 | while (!mapMemPoolTxs.empty()) { |
1071 | 0 | auto mi = mapMemPoolTxs.begin(); |
1072 | 0 | _removeTx(mi->first, false); // this calls erase() on mapMemPoolTxs |
1073 | 0 | } |
1074 | 0 | const auto endclear{SteadyClock::now()}; |
1075 | 0 | LogDebug(BCLog::ESTIMATEFEE, "Recorded %u unconfirmed txs from mempool in %.3fs\n", num_entries, Ticks<SecondsDouble>(endclear - startclear)); |
1076 | 0 | } |
1077 | | |
1078 | | std::chrono::hours CBlockPolicyEstimator::GetFeeEstimatorFileAge() |
1079 | 0 | { |
1080 | 0 | auto file_time{fs::last_write_time(m_estimation_filepath)}; |
1081 | 0 | auto now{fs::file_time_type::clock::now()}; |
1082 | 0 | return std::chrono::duration_cast<std::chrono::hours>(now - file_time); |
1083 | 0 | } |
1084 | | |
1085 | | static std::set<double> MakeFeeSet(const CFeeRate& min_incremental_fee, |
1086 | | double max_filter_fee_rate, |
1087 | | double fee_filter_spacing) |
1088 | 0 | { |
1089 | 0 | std::set<double> fee_set; |
1090 | |
|
1091 | 0 | const CAmount min_fee_limit{std::max(CAmount(1), min_incremental_fee.GetFeePerK() / 2)}; |
1092 | 0 | fee_set.insert(0); |
1093 | 0 | for (double bucket_boundary = min_fee_limit; |
1094 | 0 | bucket_boundary <= max_filter_fee_rate; |
1095 | 0 | bucket_boundary *= fee_filter_spacing) { |
1096 | |
|
1097 | 0 | fee_set.insert(bucket_boundary); |
1098 | 0 | } |
1099 | |
|
1100 | 0 | return fee_set; |
1101 | 0 | } |
1102 | | |
1103 | | FeeFilterRounder::FeeFilterRounder(const CFeeRate& minIncrementalFee, FastRandomContext& rng) |
1104 | 0 | : m_fee_set{MakeFeeSet(minIncrementalFee, MAX_FILTER_FEERATE, FEE_FILTER_SPACING)}, |
1105 | 0 | insecure_rand{rng} |
1106 | 0 | { |
1107 | 0 | } |
1108 | | |
1109 | | CAmount FeeFilterRounder::round(CAmount currentMinFee) |
1110 | 0 | { |
1111 | 0 | AssertLockNotHeld(m_insecure_rand_mutex); |
1112 | 0 | std::set<double>::iterator it = m_fee_set.lower_bound(currentMinFee); |
1113 | 0 | if (it == m_fee_set.end() || |
1114 | 0 | (it != m_fee_set.begin() && |
1115 | 0 | WITH_LOCK(m_insecure_rand_mutex, return insecure_rand.rand32()) % 3 != 0)) { |
1116 | 0 | --it; |
1117 | 0 | } |
1118 | 0 | return static_cast<CAmount>(*it); |
1119 | 0 | } |