Bitcoin Core  29.1.0
P2P Digital Currency
txmempool.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 <txmempool.h>
7 
8 #include <chain.h>
9 #include <coins.h>
10 #include <common/system.h>
11 #include <consensus/consensus.h>
12 #include <consensus/tx_verify.h>
13 #include <consensus/validation.h>
14 #include <logging.h>
15 #include <policy/policy.h>
16 #include <policy/settings.h>
17 #include <random.h>
18 #include <tinyformat.h>
19 #include <util/check.h>
20 #include <util/feefrac.h>
21 #include <util/moneystr.h>
22 #include <util/overflow.h>
23 #include <util/result.h>
24 #include <util/time.h>
25 #include <util/trace.h>
26 #include <util/translation.h>
27 #include <validationinterface.h>
28 
29 #include <algorithm>
30 #include <cmath>
31 #include <numeric>
32 #include <optional>
33 #include <ranges>
34 #include <string_view>
35 #include <utility>
36 
37 TRACEPOINT_SEMAPHORE(mempool, added);
38 TRACEPOINT_SEMAPHORE(mempool, removed);
39 
40 bool TestLockPointValidity(CChain& active_chain, const LockPoints& lp)
41 {
43  // If there are relative lock times then the maxInputBlock will be set
44  // If there are no relative lock times, the LockPoints don't depend on the chain
45  if (lp.maxInputBlock) {
46  // Check whether active_chain is an extension of the block at which the LockPoints
47  // calculation was valid. If not LockPoints are no longer valid
48  if (!active_chain.Contains(lp.maxInputBlock)) {
49  return false;
50  }
51  }
52 
53  // LockPoints still valid
54  return true;
55 }
56 
57 void CTxMemPool::UpdateForDescendants(txiter updateIt, cacheMap& cachedDescendants,
58  const std::set<uint256>& setExclude, std::set<uint256>& descendants_to_remove)
59 {
60  CTxMemPoolEntry::Children stageEntries, descendants;
61  stageEntries = updateIt->GetMemPoolChildrenConst();
62 
63  while (!stageEntries.empty()) {
64  const CTxMemPoolEntry& descendant = *stageEntries.begin();
65  descendants.insert(descendant);
66  stageEntries.erase(descendant);
67  const CTxMemPoolEntry::Children& children = descendant.GetMemPoolChildrenConst();
68  for (const CTxMemPoolEntry& childEntry : children) {
69  cacheMap::iterator cacheIt = cachedDescendants.find(mapTx.iterator_to(childEntry));
70  if (cacheIt != cachedDescendants.end()) {
71  // We've already calculated this one, just add the entries for this set
72  // but don't traverse again.
73  for (txiter cacheEntry : cacheIt->second) {
74  descendants.insert(*cacheEntry);
75  }
76  } else if (!descendants.count(childEntry)) {
77  // Schedule for later processing
78  stageEntries.insert(childEntry);
79  }
80  }
81  }
82  // descendants now contains all in-mempool descendants of updateIt.
83  // Update and add to cached descendant map
84  int32_t modifySize = 0;
85  CAmount modifyFee = 0;
86  int64_t modifyCount = 0;
87  for (const CTxMemPoolEntry& descendant : descendants) {
88  if (!setExclude.count(descendant.GetTx().GetHash())) {
89  modifySize += descendant.GetTxSize();
90  modifyFee += descendant.GetModifiedFee();
91  modifyCount++;
92  cachedDescendants[updateIt].insert(mapTx.iterator_to(descendant));
93  // Update ancestor state for each descendant
94  mapTx.modify(mapTx.iterator_to(descendant), [=](CTxMemPoolEntry& e) {
95  e.UpdateAncestorState(updateIt->GetTxSize(), updateIt->GetModifiedFee(), 1, updateIt->GetSigOpCost());
96  });
97  // Don't directly remove the transaction here -- doing so would
98  // invalidate iterators in cachedDescendants. Mark it for removal
99  // by inserting into descendants_to_remove.
100  if (descendant.GetCountWithAncestors() > uint64_t(m_opts.limits.ancestor_count) || descendant.GetSizeWithAncestors() > m_opts.limits.ancestor_size_vbytes) {
101  descendants_to_remove.insert(descendant.GetTx().GetHash());
102  }
103  }
104  }
105  mapTx.modify(updateIt, [=](CTxMemPoolEntry& e) { e.UpdateDescendantState(modifySize, modifyFee, modifyCount); });
106 }
107 
108 void CTxMemPool::UpdateTransactionsFromBlock(const std::vector<uint256>& vHashesToUpdate)
109 {
111  // For each entry in vHashesToUpdate, store the set of in-mempool, but not
112  // in-vHashesToUpdate transactions, so that we don't have to recalculate
113  // descendants when we come across a previously seen entry.
114  cacheMap mapMemPoolDescendantsToUpdate;
115 
116  // Use a set for lookups into vHashesToUpdate (these entries are already
117  // accounted for in the state of their ancestors)
118  std::set<uint256> setAlreadyIncluded(vHashesToUpdate.begin(), vHashesToUpdate.end());
119 
120  std::set<uint256> descendants_to_remove;
121 
122  // Iterate in reverse, so that whenever we are looking at a transaction
123  // we are sure that all in-mempool descendants have already been processed.
124  // This maximizes the benefit of the descendant cache and guarantees that
125  // CTxMemPoolEntry::m_children will be updated, an assumption made in
126  // UpdateForDescendants.
127  for (const uint256& hash : vHashesToUpdate | std::views::reverse) {
128  // calculate children from mapNextTx
129  txiter it = mapTx.find(hash);
130  if (it == mapTx.end()) {
131  continue;
132  }
133  auto iter = mapNextTx.lower_bound(COutPoint(Txid::FromUint256(hash), 0));
134  // First calculate the children, and update CTxMemPoolEntry::m_children to
135  // include them, and update their CTxMemPoolEntry::m_parents to include this tx.
136  // we cache the in-mempool children to avoid duplicate updates
137  {
139  for (; iter != mapNextTx.end() && iter->first->hash == hash; ++iter) {
140  const uint256 &childHash = iter->second->GetHash();
141  txiter childIter = mapTx.find(childHash);
142  assert(childIter != mapTx.end());
143  // We can skip updating entries we've encountered before or that
144  // are in the block (which are already accounted for).
145  if (!visited(childIter) && !setAlreadyIncluded.count(childHash)) {
146  UpdateChild(it, childIter, true);
147  UpdateParent(childIter, it, true);
148  }
149  }
150  } // release epoch guard for UpdateForDescendants
151  UpdateForDescendants(it, mapMemPoolDescendantsToUpdate, setAlreadyIncluded, descendants_to_remove);
152  }
153 
154  for (const auto& txid : descendants_to_remove) {
155  // This txid may have been removed already in a prior call to removeRecursive.
156  // Therefore we ensure it is not yet removed already.
157  if (const std::optional<txiter> txiter = GetIter(txid)) {
159  }
160  }
161 }
162 
164  int64_t entry_size,
165  size_t entry_count,
166  CTxMemPoolEntry::Parents& staged_ancestors,
167  const Limits& limits) const
168 {
169  int64_t totalSizeWithAncestors = entry_size;
170  setEntries ancestors;
171 
172  while (!staged_ancestors.empty()) {
173  const CTxMemPoolEntry& stage = staged_ancestors.begin()->get();
174  txiter stageit = mapTx.iterator_to(stage);
175 
176  ancestors.insert(stageit);
177  staged_ancestors.erase(stage);
178  totalSizeWithAncestors += stageit->GetTxSize();
179 
180  if (stageit->GetSizeWithDescendants() + entry_size > limits.descendant_size_vbytes) {
181  return util::Error{Untranslated(strprintf("exceeds descendant size limit for tx %s [limit: %u]", stageit->GetTx().GetHash().ToString(), limits.descendant_size_vbytes))};
182  } else if (stageit->GetCountWithDescendants() + entry_count > static_cast<uint64_t>(limits.descendant_count)) {
183  return util::Error{Untranslated(strprintf("too many descendants for tx %s [limit: %u]", stageit->GetTx().GetHash().ToString(), limits.descendant_count))};
184  } else if (totalSizeWithAncestors > limits.ancestor_size_vbytes) {
185  return util::Error{Untranslated(strprintf("exceeds ancestor size limit [limit: %u]", limits.ancestor_size_vbytes))};
186  }
187 
188  const CTxMemPoolEntry::Parents& parents = stageit->GetMemPoolParentsConst();
189  for (const CTxMemPoolEntry& parent : parents) {
190  txiter parent_it = mapTx.iterator_to(parent);
191 
192  // If this is a new ancestor, add it.
193  if (ancestors.count(parent_it) == 0) {
194  staged_ancestors.insert(parent);
195  }
196  if (staged_ancestors.size() + ancestors.size() + entry_count > static_cast<uint64_t>(limits.ancestor_count)) {
197  return util::Error{Untranslated(strprintf("too many unconfirmed ancestors [limit: %u]", limits.ancestor_count))};
198  }
199  }
200  }
201 
202  return ancestors;
203 }
204 
206  const int64_t total_vsize) const
207 {
208  size_t pack_count = package.size();
209 
210  // Package itself is busting mempool limits; should be rejected even if no staged_ancestors exist
211  if (pack_count > static_cast<uint64_t>(m_opts.limits.ancestor_count)) {
212  return util::Error{Untranslated(strprintf("package count %u exceeds ancestor count limit [limit: %u]", pack_count, m_opts.limits.ancestor_count))};
213  } else if (pack_count > static_cast<uint64_t>(m_opts.limits.descendant_count)) {
214  return util::Error{Untranslated(strprintf("package count %u exceeds descendant count limit [limit: %u]", pack_count, m_opts.limits.descendant_count))};
215  } else if (total_vsize > m_opts.limits.ancestor_size_vbytes) {
216  return util::Error{Untranslated(strprintf("package size %u exceeds ancestor size limit [limit: %u]", total_vsize, m_opts.limits.ancestor_size_vbytes))};
217  } else if (total_vsize > m_opts.limits.descendant_size_vbytes) {
218  return util::Error{Untranslated(strprintf("package size %u exceeds descendant size limit [limit: %u]", total_vsize, m_opts.limits.descendant_size_vbytes))};
219  }
220 
221  CTxMemPoolEntry::Parents staged_ancestors;
222  for (const auto& tx : package) {
223  for (const auto& input : tx->vin) {
224  std::optional<txiter> piter = GetIter(input.prevout.hash);
225  if (piter) {
226  staged_ancestors.insert(**piter);
227  if (staged_ancestors.size() + package.size() > static_cast<uint64_t>(m_opts.limits.ancestor_count)) {
228  return util::Error{Untranslated(strprintf("too many unconfirmed parents [limit: %u]", m_opts.limits.ancestor_count))};
229  }
230  }
231  }
232  }
233  // When multiple transactions are passed in, the ancestors and descendants of all transactions
234  // considered together must be within limits even if they are not interdependent. This may be
235  // stricter than the limits for each individual transaction.
236  const auto ancestors{CalculateAncestorsAndCheckLimits(total_vsize, package.size(),
237  staged_ancestors, m_opts.limits)};
238  // It's possible to overestimate the ancestor/descendant totals.
239  if (!ancestors.has_value()) return util::Error{Untranslated("possibly " + util::ErrorString(ancestors).original)};
240  return {};
241 }
242 
244  const CTxMemPoolEntry &entry,
245  const Limits& limits,
246  bool fSearchForParents /* = true */) const
247 {
248  CTxMemPoolEntry::Parents staged_ancestors;
249  const CTransaction &tx = entry.GetTx();
250 
251  if (fSearchForParents) {
252  // Get parents of this transaction that are in the mempool
253  // GetMemPoolParents() is only valid for entries in the mempool, so we
254  // iterate mapTx to find parents.
255  for (unsigned int i = 0; i < tx.vin.size(); i++) {
256  std::optional<txiter> piter = GetIter(tx.vin[i].prevout.hash);
257  if (piter) {
258  staged_ancestors.insert(**piter);
259  if (staged_ancestors.size() + 1 > static_cast<uint64_t>(limits.ancestor_count)) {
260  return util::Error{Untranslated(strprintf("too many unconfirmed parents [limit: %u]", limits.ancestor_count))};
261  }
262  }
263  }
264  } else {
265  // If we're not searching for parents, we require this to already be an
266  // entry in the mempool and use the entry's cached parents.
267  txiter it = mapTx.iterator_to(entry);
268  staged_ancestors = it->GetMemPoolParentsConst();
269  }
270 
271  return CalculateAncestorsAndCheckLimits(entry.GetTxSize(), /*entry_count=*/1, staged_ancestors,
272  limits);
273 }
274 
276  std::string_view calling_fn_name,
277  const CTxMemPoolEntry &entry,
278  const Limits& limits,
279  bool fSearchForParents /* = true */) const
280 {
281  auto result{CalculateMemPoolAncestors(entry, limits, fSearchForParents)};
282  if (!Assume(result)) {
283  LogPrintLevel(BCLog::MEMPOOL, BCLog::Level::Error, "%s: CalculateMemPoolAncestors failed unexpectedly, continuing with empty ancestor set (%s)\n",
284  calling_fn_name, util::ErrorString(result).original);
285  }
286  return std::move(result).value_or(CTxMemPool::setEntries{});
287 }
288 
289 void CTxMemPool::UpdateAncestorsOf(bool add, txiter it, setEntries &setAncestors)
290 {
291  const CTxMemPoolEntry::Parents& parents = it->GetMemPoolParentsConst();
292  // add or remove this tx as a child of each parent
293  for (const CTxMemPoolEntry& parent : parents) {
294  UpdateChild(mapTx.iterator_to(parent), it, add);
295  }
296  const int32_t updateCount = (add ? 1 : -1);
297  const int32_t updateSize{updateCount * it->GetTxSize()};
298  const CAmount updateFee = updateCount * it->GetModifiedFee();
299  for (txiter ancestorIt : setAncestors) {
300  mapTx.modify(ancestorIt, [=](CTxMemPoolEntry& e) { e.UpdateDescendantState(updateSize, updateFee, updateCount); });
301  }
302 }
303 
305 {
306  int64_t updateCount = setAncestors.size();
307  int64_t updateSize = 0;
308  CAmount updateFee = 0;
309  int64_t updateSigOpsCost = 0;
310  for (txiter ancestorIt : setAncestors) {
311  updateSize += ancestorIt->GetTxSize();
312  updateFee += ancestorIt->GetModifiedFee();
313  updateSigOpsCost += ancestorIt->GetSigOpCost();
314  }
315  mapTx.modify(it, [=](CTxMemPoolEntry& e){ e.UpdateAncestorState(updateSize, updateFee, updateCount, updateSigOpsCost); });
316 }
317 
319 {
320  const CTxMemPoolEntry::Children& children = it->GetMemPoolChildrenConst();
321  for (const CTxMemPoolEntry& updateIt : children) {
322  UpdateParent(mapTx.iterator_to(updateIt), it, false);
323  }
324 }
325 
326 void CTxMemPool::UpdateForRemoveFromMempool(const setEntries &entriesToRemove, bool updateDescendants)
327 {
328  // For each entry, walk back all ancestors and decrement size associated with this
329  // transaction
330  if (updateDescendants) {
331  // updateDescendants should be true whenever we're not recursively
332  // removing a tx and all its descendants, eg when a transaction is
333  // confirmed in a block.
334  // Here we only update statistics and not data in CTxMemPool::Parents
335  // and CTxMemPoolEntry::Children (which we need to preserve until we're
336  // finished with all operations that need to traverse the mempool).
337  for (txiter removeIt : entriesToRemove) {
338  setEntries setDescendants;
339  CalculateDescendants(removeIt, setDescendants);
340  setDescendants.erase(removeIt); // don't update state for self
341  int32_t modifySize = -removeIt->GetTxSize();
342  CAmount modifyFee = -removeIt->GetModifiedFee();
343  int modifySigOps = -removeIt->GetSigOpCost();
344  for (txiter dit : setDescendants) {
345  mapTx.modify(dit, [=](CTxMemPoolEntry& e){ e.UpdateAncestorState(modifySize, modifyFee, -1, modifySigOps); });
346  }
347  }
348  }
349  for (txiter removeIt : entriesToRemove) {
350  const CTxMemPoolEntry &entry = *removeIt;
351  // Since this is a tx that is already in the mempool, we can call CMPA
352  // with fSearchForParents = false. If the mempool is in a consistent
353  // state, then using true or false should both be correct, though false
354  // should be a bit faster.
355  // However, if we happen to be in the middle of processing a reorg, then
356  // the mempool can be in an inconsistent state. In this case, the set
357  // of ancestors reachable via GetMemPoolParents()/GetMemPoolChildren()
358  // will be the same as the set of ancestors whose packages include this
359  // transaction, because when we add a new transaction to the mempool in
360  // addNewTransaction(), we assume it has no children, and in the case of a
361  // reorg where that assumption is false, the in-mempool children aren't
362  // linked to the in-block tx's until UpdateTransactionsFromBlock() is
363  // called.
364  // So if we're being called during a reorg, ie before
365  // UpdateTransactionsFromBlock() has been called, then
366  // GetMemPoolParents()/GetMemPoolChildren() will differ from the set of
367  // mempool parents we'd calculate by searching, and it's important that
368  // we use the cached notion of ancestor transactions as the set of
369  // things to update for removal.
370  auto ancestors{AssumeCalculateMemPoolAncestors(__func__, entry, Limits::NoLimits(), /*fSearchForParents=*/false)};
371  // Note that UpdateAncestorsOf severs the child links that point to
372  // removeIt in the entries for the parents of removeIt.
373  UpdateAncestorsOf(false, removeIt, ancestors);
374  }
375  // After updating all the ancestor sizes, we can now sever the link between each
376  // transaction being removed and any mempool children (ie, update CTxMemPoolEntry::m_parents
377  // for each direct child of a transaction being removed).
378  for (txiter removeIt : entriesToRemove) {
379  UpdateChildrenForRemoval(removeIt);
380  }
381 }
382 
383 void CTxMemPoolEntry::UpdateDescendantState(int32_t modifySize, CAmount modifyFee, int64_t modifyCount)
384 {
385  nSizeWithDescendants += modifySize;
388  m_count_with_descendants += modifyCount;
390 }
391 
392 void CTxMemPoolEntry::UpdateAncestorState(int32_t modifySize, CAmount modifyFee, int64_t modifyCount, int64_t modifySigOps)
393 {
394  nSizeWithAncestors += modifySize;
397  m_count_with_ancestors += modifyCount;
399  nSigOpCostWithAncestors += modifySigOps;
400  assert(int(nSigOpCostWithAncestors) >= 0);
401 }
402 
405 {
406  opts.check_ratio = std::clamp<int>(opts.check_ratio, 0, 1'000'000);
407  int64_t descendant_limit_bytes = opts.limits.descendant_size_vbytes * 40;
408  if (opts.max_size_bytes < 0 || opts.max_size_bytes < descendant_limit_bytes) {
409  error = strprintf(_("-maxmempool must be at least %d MB"), std::ceil(descendant_limit_bytes / 1'000'000.0));
410  }
411  return std::move(opts);
412 }
413 
415  : m_opts{Flatten(std::move(opts), error)}
416 {
417 }
418 
419 bool CTxMemPool::isSpent(const COutPoint& outpoint) const
420 {
421  LOCK(cs);
422  return mapNextTx.count(outpoint);
423 }
424 
426 {
427  return nTransactionsUpdated;
428 }
429 
431 {
433 }
434 
435 void CTxMemPool::Apply(ChangeSet* changeset)
436 {
439 
440  for (size_t i=0; i<changeset->m_entry_vec.size(); ++i) {
441  auto tx_entry = changeset->m_entry_vec[i];
442  std::optional<CTxMemPool::setEntries> ancestors;
443  if (i == 0) {
444  // Note: ChangeSet::CalculateMemPoolAncestors() will return a
445  // cached value if mempool ancestors for this transaction were
446  // previously calculated.
447  // We can only use a cached ancestor calculation for the first
448  // transaction in a package, because in-package parents won't be
449  // present in the cached ancestor sets of in-package children.
450  // We pass in Limits::NoLimits() to ensure that this function won't fail
451  // (we're going to be applying this set of transactions whether or
452  // not the mempool policy limits are being respected).
453  ancestors = *Assume(changeset->CalculateMemPoolAncestors(tx_entry, Limits::NoLimits()));
454  }
455  // First splice this entry into mapTx.
456  auto node_handle = changeset->m_to_add.extract(tx_entry);
457  auto result = mapTx.insert(std::move(node_handle));
458 
459  Assume(result.inserted);
460  txiter it = result.position;
461 
462  // Now update the entry for ancestors/descendants.
463  if (ancestors.has_value()) {
464  addNewTransaction(it, *ancestors);
465  } else {
467  }
468  }
469 }
470 
472 {
473  auto ancestors{AssumeCalculateMemPoolAncestors(__func__, *it, Limits::NoLimits())};
474  return addNewTransaction(it, ancestors);
475 }
476 
478 {
479  const CTxMemPoolEntry& entry = *newit;
480 
481  // Update cachedInnerUsage to include contained transaction's usage.
482  // (When we update the entry for in-mempool parents, memory usage will be
483  // further updated.)
484  cachedInnerUsage += entry.DynamicMemoryUsage();
485 
486  const CTransaction& tx = newit->GetTx();
487  std::set<Txid> setParentTransactions;
488  for (unsigned int i = 0; i < tx.vin.size(); i++) {
489  mapNextTx.insert(std::make_pair(&tx.vin[i].prevout, &tx));
490  setParentTransactions.insert(tx.vin[i].prevout.hash);
491  }
492  // Don't bother worrying about child transactions of this one.
493  // Normal case of a new transaction arriving is that there can't be any
494  // children, because such children would be orphans.
495  // An exception to that is if a transaction enters that used to be in a block.
496  // In that case, our disconnect block logic will call UpdateTransactionsFromBlock
497  // to clean up the mess we're leaving here.
498 
499  // Update ancestors with information about this tx
500  for (const auto& pit : GetIterSet(setParentTransactions)) {
501  UpdateParent(newit, pit, true);
502  }
503  UpdateAncestorsOf(true, newit, setAncestors);
504  UpdateEntryForAncestors(newit, setAncestors);
505 
507  totalTxSize += entry.GetTxSize();
508  m_total_fee += entry.GetFee();
509 
510  txns_randomized.emplace_back(newit->GetSharedTx());
511  newit->idx_randomized = txns_randomized.size() - 1;
512 
513  TRACEPOINT(mempool, added,
514  entry.GetTx().GetHash().data(),
515  entry.GetTxSize(),
516  entry.GetFee()
517  );
518 }
519 
521 {
522  // We increment mempool sequence value no matter removal reason
523  // even if not directly reported below.
524  uint64_t mempool_sequence = GetAndIncrementSequence();
525 
526  if (reason != MemPoolRemovalReason::BLOCK && m_opts.signals) {
527  // Notify clients that a transaction has been removed from the mempool
528  // for any reason except being included in a block. Clients interested
529  // in transactions included in blocks can subscribe to the BlockConnected
530  // notification.
531  m_opts.signals->TransactionRemovedFromMempool(it->GetSharedTx(), reason, mempool_sequence);
532  }
533  TRACEPOINT(mempool, removed,
534  it->GetTx().GetHash().data(),
535  RemovalReasonToString(reason).c_str(),
536  it->GetTxSize(),
537  it->GetFee(),
538  std::chrono::duration_cast<std::chrono::duration<std::uint64_t>>(it->GetTime()).count()
539  );
540 
541  for (const CTxIn& txin : it->GetTx().vin)
542  mapNextTx.erase(txin.prevout);
543 
544  RemoveUnbroadcastTx(it->GetTx().GetHash(), true /* add logging because unchecked */);
545 
546  if (txns_randomized.size() > 1) {
547  // Update idx_randomized of the to-be-moved entry.
548  Assert(GetEntry(txns_randomized.back()->GetHash()))->idx_randomized = it->idx_randomized;
549  // Remove entry from txns_randomized by replacing it with the back and deleting the back.
550  txns_randomized[it->idx_randomized] = std::move(txns_randomized.back());
551  txns_randomized.pop_back();
552  if (txns_randomized.size() * 2 < txns_randomized.capacity())
553  txns_randomized.shrink_to_fit();
554  } else
555  txns_randomized.clear();
556 
557  totalTxSize -= it->GetTxSize();
558  m_total_fee -= it->GetFee();
559  cachedInnerUsage -= it->DynamicMemoryUsage();
560  cachedInnerUsage -= memusage::DynamicUsage(it->GetMemPoolParentsConst()) + memusage::DynamicUsage(it->GetMemPoolChildrenConst());
561  mapTx.erase(it);
563 }
564 
565 // Calculates descendants of entry that are not already in setDescendants, and adds to
566 // setDescendants. Assumes entryit is already a tx in the mempool and CTxMemPoolEntry::m_children
567 // is correct for tx and all descendants.
568 // Also assumes that if an entry is in setDescendants already, then all
569 // in-mempool descendants of it are already in setDescendants as well, so that we
570 // can save time by not iterating over those entries.
571 void CTxMemPool::CalculateDescendants(txiter entryit, setEntries& setDescendants) const
572 {
573  setEntries stage;
574  if (setDescendants.count(entryit) == 0) {
575  stage.insert(entryit);
576  }
577  // Traverse down the children of entry, only adding children that are not
578  // accounted for in setDescendants already (because those children have either
579  // already been walked, or will be walked in this iteration).
580  while (!stage.empty()) {
581  txiter it = *stage.begin();
582  setDescendants.insert(it);
583  stage.erase(it);
584 
585  const CTxMemPoolEntry::Children& children = it->GetMemPoolChildrenConst();
586  for (const CTxMemPoolEntry& child : children) {
587  txiter childiter = mapTx.iterator_to(child);
588  if (!setDescendants.count(childiter)) {
589  stage.insert(childiter);
590  }
591  }
592  }
593 }
594 
596 {
597  // Remove transaction from memory pool
599  Assume(!m_have_changeset);
600  setEntries txToRemove;
601  txiter origit = mapTx.find(origTx.GetHash());
602  if (origit != mapTx.end()) {
603  txToRemove.insert(origit);
604  } else {
605  // When recursively removing but origTx isn't in the mempool
606  // be sure to remove any children that are in the pool. This can
607  // happen during chain re-orgs if origTx isn't re-accepted into
608  // the mempool for any reason.
609  for (unsigned int i = 0; i < origTx.vout.size(); i++) {
610  auto it = mapNextTx.find(COutPoint(origTx.GetHash(), i));
611  if (it == mapNextTx.end())
612  continue;
613  txiter nextit = mapTx.find(it->second->GetHash());
614  assert(nextit != mapTx.end());
615  txToRemove.insert(nextit);
616  }
617  }
618  setEntries setAllRemoves;
619  for (txiter it : txToRemove) {
620  CalculateDescendants(it, setAllRemoves);
621  }
622 
623  RemoveStaged(setAllRemoves, false, reason);
624 }
625 
626 void CTxMemPool::removeForReorg(CChain& chain, std::function<bool(txiter)> check_final_and_mature)
627 {
628  // Remove transactions spending a coinbase which are now immature and no-longer-final transactions
631  Assume(!m_have_changeset);
632 
633  setEntries txToRemove;
634  for (indexed_transaction_set::const_iterator it = mapTx.begin(); it != mapTx.end(); it++) {
635  if (check_final_and_mature(it)) txToRemove.insert(it);
636  }
637  setEntries setAllRemoves;
638  for (txiter it : txToRemove) {
639  CalculateDescendants(it, setAllRemoves);
640  }
641  RemoveStaged(setAllRemoves, false, MemPoolRemovalReason::REORG);
642  for (indexed_transaction_set::const_iterator it = mapTx.begin(); it != mapTx.end(); it++) {
643  assert(TestLockPointValidity(chain, it->GetLockPoints()));
644  }
645 }
646 
648 {
649  // Remove transactions which depend on inputs of tx, recursively
651  for (const CTxIn &txin : tx.vin) {
652  auto it = mapNextTx.find(txin.prevout);
653  if (it != mapNextTx.end()) {
654  const CTransaction &txConflict = *it->second;
655  if (txConflict != tx)
656  {
657  ClearPrioritisation(txConflict.GetHash());
659  }
660  }
661  }
662 }
663 
667 void CTxMemPool::removeForBlock(const std::vector<CTransactionRef>& vtx, unsigned int nBlockHeight)
668 {
670  Assume(!m_have_changeset);
671  std::vector<RemovedMempoolTransactionInfo> txs_removed_for_block;
672  txs_removed_for_block.reserve(vtx.size());
673  for (const auto& tx : vtx)
674  {
675  txiter it = mapTx.find(tx->GetHash());
676  if (it != mapTx.end()) {
677  setEntries stage;
678  stage.insert(it);
679  txs_removed_for_block.emplace_back(*it);
681  }
682  removeConflicts(*tx);
683  ClearPrioritisation(tx->GetHash());
684  }
685  if (m_opts.signals) {
686  m_opts.signals->MempoolTransactionsRemovedForBlock(txs_removed_for_block, nBlockHeight);
687  }
688  lastRollingFeeUpdate = GetTime();
689  blockSinceLastRollingFeeBump = true;
690 }
691 
692 void CTxMemPool::check(const CCoinsViewCache& active_coins_tip, int64_t spendheight) const
693 {
694  if (m_opts.check_ratio == 0) return;
695 
696  if (FastRandomContext().randrange(m_opts.check_ratio) >= 1) return;
697 
699  LOCK(cs);
700  LogDebug(BCLog::MEMPOOL, "Checking mempool with %u transactions and %u inputs\n", (unsigned int)mapTx.size(), (unsigned int)mapNextTx.size());
701 
702  uint64_t checkTotal = 0;
703  CAmount check_total_fee{0};
704  uint64_t innerUsage = 0;
705  uint64_t prev_ancestor_count{0};
706 
707  CCoinsViewCache mempoolDuplicate(const_cast<CCoinsViewCache*>(&active_coins_tip));
708 
709  for (const auto& it : GetSortedDepthAndScore()) {
710  checkTotal += it->GetTxSize();
711  check_total_fee += it->GetFee();
712  innerUsage += it->DynamicMemoryUsage();
713  const CTransaction& tx = it->GetTx();
714  innerUsage += memusage::DynamicUsage(it->GetMemPoolParentsConst()) + memusage::DynamicUsage(it->GetMemPoolChildrenConst());
715  CTxMemPoolEntry::Parents setParentCheck;
716  for (const CTxIn &txin : tx.vin) {
717  // Check that every mempool transaction's inputs refer to available coins, or other mempool tx's.
718  indexed_transaction_set::const_iterator it2 = mapTx.find(txin.prevout.hash);
719  if (it2 != mapTx.end()) {
720  const CTransaction& tx2 = it2->GetTx();
721  assert(tx2.vout.size() > txin.prevout.n && !tx2.vout[txin.prevout.n].IsNull());
722  setParentCheck.insert(*it2);
723  }
724  // We are iterating through the mempool entries sorted in order by ancestor count.
725  // All parents must have been checked before their children and their coins added to
726  // the mempoolDuplicate coins cache.
727  assert(mempoolDuplicate.HaveCoin(txin.prevout));
728  // Check whether its inputs are marked in mapNextTx.
729  auto it3 = mapNextTx.find(txin.prevout);
730  assert(it3 != mapNextTx.end());
731  assert(it3->first == &txin.prevout);
732  assert(it3->second == &tx);
733  }
734  auto comp = [](const CTxMemPoolEntry& a, const CTxMemPoolEntry& b) -> bool {
735  return a.GetTx().GetHash() == b.GetTx().GetHash();
736  };
737  assert(setParentCheck.size() == it->GetMemPoolParentsConst().size());
738  assert(std::equal(setParentCheck.begin(), setParentCheck.end(), it->GetMemPoolParentsConst().begin(), comp));
739  // Verify ancestor state is correct.
740  auto ancestors{AssumeCalculateMemPoolAncestors(__func__, *it, Limits::NoLimits())};
741  uint64_t nCountCheck = ancestors.size() + 1;
742  int32_t nSizeCheck = it->GetTxSize();
743  CAmount nFeesCheck = it->GetModifiedFee();
744  int64_t nSigOpCheck = it->GetSigOpCost();
745 
746  for (txiter ancestorIt : ancestors) {
747  nSizeCheck += ancestorIt->GetTxSize();
748  nFeesCheck += ancestorIt->GetModifiedFee();
749  nSigOpCheck += ancestorIt->GetSigOpCost();
750  }
751 
752  assert(it->GetCountWithAncestors() == nCountCheck);
753  assert(it->GetSizeWithAncestors() == nSizeCheck);
754  assert(it->GetSigOpCostWithAncestors() == nSigOpCheck);
755  assert(it->GetModFeesWithAncestors() == nFeesCheck);
756  // Sanity check: we are walking in ascending ancestor count order.
757  assert(prev_ancestor_count <= it->GetCountWithAncestors());
758  prev_ancestor_count = it->GetCountWithAncestors();
759 
760  // Check children against mapNextTx
761  CTxMemPoolEntry::Children setChildrenCheck;
762  auto iter = mapNextTx.lower_bound(COutPoint(it->GetTx().GetHash(), 0));
763  int32_t child_sizes{0};
764  for (; iter != mapNextTx.end() && iter->first->hash == it->GetTx().GetHash(); ++iter) {
765  txiter childit = mapTx.find(iter->second->GetHash());
766  assert(childit != mapTx.end()); // mapNextTx points to in-mempool transactions
767  if (setChildrenCheck.insert(*childit).second) {
768  child_sizes += childit->GetTxSize();
769  }
770  }
771  assert(setChildrenCheck.size() == it->GetMemPoolChildrenConst().size());
772  assert(std::equal(setChildrenCheck.begin(), setChildrenCheck.end(), it->GetMemPoolChildrenConst().begin(), comp));
773  // Also check to make sure size is greater than sum with immediate children.
774  // just a sanity check, not definitive that this calc is correct...
775  assert(it->GetSizeWithDescendants() >= child_sizes + it->GetTxSize());
776 
777  TxValidationState dummy_state; // Not used. CheckTxInputs() should always pass
778  CAmount txfee = 0;
779  assert(!tx.IsCoinBase());
780  assert(Consensus::CheckTxInputs(tx, dummy_state, mempoolDuplicate, spendheight, txfee));
781  for (const auto& input: tx.vin) mempoolDuplicate.SpendCoin(input.prevout);
782  AddCoins(mempoolDuplicate, tx, std::numeric_limits<int>::max());
783  }
784  for (auto it = mapNextTx.cbegin(); it != mapNextTx.cend(); it++) {
785  uint256 hash = it->second->GetHash();
786  indexed_transaction_set::const_iterator it2 = mapTx.find(hash);
787  const CTransaction& tx = it2->GetTx();
788  assert(it2 != mapTx.end());
789  assert(&tx == it->second);
790  }
791 
792  assert(totalTxSize == checkTotal);
793  assert(m_total_fee == check_total_fee);
794  assert(innerUsage == cachedInnerUsage);
795 }
796 
797 bool CTxMemPool::CompareDepthAndScore(const uint256& hasha, const uint256& hashb, bool wtxid)
798 {
799  /* Return `true` if hasha should be considered sooner than hashb. Namely when:
800  * a is not in the mempool, but b is
801  * both are in the mempool and a has fewer ancestors than b
802  * both are in the mempool and a has a higher score than b
803  */
804  LOCK(cs);
805  indexed_transaction_set::const_iterator j = wtxid ? get_iter_from_wtxid(hashb) : mapTx.find(hashb);
806  if (j == mapTx.end()) return false;
807  indexed_transaction_set::const_iterator i = wtxid ? get_iter_from_wtxid(hasha) : mapTx.find(hasha);
808  if (i == mapTx.end()) return true;
809  uint64_t counta = i->GetCountWithAncestors();
810  uint64_t countb = j->GetCountWithAncestors();
811  if (counta == countb) {
812  return CompareTxMemPoolEntryByScore()(*i, *j);
813  }
814  return counta < countb;
815 }
816 
817 namespace {
818 class DepthAndScoreComparator
819 {
820 public:
821  bool operator()(const CTxMemPool::indexed_transaction_set::const_iterator& a, const CTxMemPool::indexed_transaction_set::const_iterator& b)
822  {
823  uint64_t counta = a->GetCountWithAncestors();
824  uint64_t countb = b->GetCountWithAncestors();
825  if (counta == countb) {
826  return CompareTxMemPoolEntryByScore()(*a, *b);
827  }
828  return counta < countb;
829  }
830 };
831 } // namespace
832 
833 std::vector<CTxMemPool::indexed_transaction_set::const_iterator> CTxMemPool::GetSortedDepthAndScore() const
834 {
835  std::vector<indexed_transaction_set::const_iterator> iters;
837 
838  iters.reserve(mapTx.size());
839 
840  for (indexed_transaction_set::iterator mi = mapTx.begin(); mi != mapTx.end(); ++mi) {
841  iters.push_back(mi);
842  }
843  std::sort(iters.begin(), iters.end(), DepthAndScoreComparator());
844  return iters;
845 }
846 
847 static TxMempoolInfo GetInfo(CTxMemPool::indexed_transaction_set::const_iterator it) {
848  return TxMempoolInfo{it->GetSharedTx(), it->GetTime(), it->GetFee(), it->GetTxSize(), it->GetModifiedFee() - it->GetFee()};
849 }
850 
851 std::vector<CTxMemPoolEntryRef> CTxMemPool::entryAll() const
852 {
854 
855  std::vector<CTxMemPoolEntryRef> ret;
856  ret.reserve(mapTx.size());
857  for (const auto& it : GetSortedDepthAndScore()) {
858  ret.emplace_back(*it);
859  }
860  return ret;
861 }
862 
863 std::vector<TxMempoolInfo> CTxMemPool::infoAll() const
864 {
865  LOCK(cs);
866  auto iters = GetSortedDepthAndScore();
867 
868  std::vector<TxMempoolInfo> ret;
869  ret.reserve(mapTx.size());
870  for (auto it : iters) {
871  ret.push_back(GetInfo(it));
872  }
873 
874  return ret;
875 }
876 
877 const CTxMemPoolEntry* CTxMemPool::GetEntry(const Txid& txid) const
878 {
880  const auto i = mapTx.find(txid);
881  return i == mapTx.end() ? nullptr : &(*i);
882 }
883 
885 {
886  LOCK(cs);
887  indexed_transaction_set::const_iterator i = mapTx.find(hash);
888  if (i == mapTx.end())
889  return nullptr;
890  return i->GetSharedTx();
891 }
892 
894 {
895  LOCK(cs);
896  indexed_transaction_set::const_iterator i = (gtxid.IsWtxid() ? get_iter_from_wtxid(gtxid.GetHash()) : mapTx.find(gtxid.GetHash()));
897  if (i == mapTx.end())
898  return TxMempoolInfo();
899  return GetInfo(i);
900 }
901 
902 TxMempoolInfo CTxMemPool::info_for_relay(const GenTxid& gtxid, uint64_t last_sequence) const
903 {
904  LOCK(cs);
905  indexed_transaction_set::const_iterator i = (gtxid.IsWtxid() ? get_iter_from_wtxid(gtxid.GetHash()) : mapTx.find(gtxid.GetHash()));
906  if (i != mapTx.end() && i->GetSequence() < last_sequence) {
907  return GetInfo(i);
908  } else {
909  return TxMempoolInfo();
910  }
911 }
912 
913 void CTxMemPool::PrioritiseTransaction(const uint256& hash, const CAmount& nFeeDelta)
914 {
915  {
916  LOCK(cs);
917  CAmount &delta = mapDeltas[hash];
918  delta = SaturatingAdd(delta, nFeeDelta);
919  txiter it = mapTx.find(hash);
920  if (it != mapTx.end()) {
921  mapTx.modify(it, [&nFeeDelta](CTxMemPoolEntry& e) { e.UpdateModifiedFee(nFeeDelta); });
922  // Now update all ancestors' modified fees with descendants
923  auto ancestors{AssumeCalculateMemPoolAncestors(__func__, *it, Limits::NoLimits(), /*fSearchForParents=*/false)};
924  for (txiter ancestorIt : ancestors) {
925  mapTx.modify(ancestorIt, [=](CTxMemPoolEntry& e){ e.UpdateDescendantState(0, nFeeDelta, 0);});
926  }
927  // Now update all descendants' modified fees with ancestors
928  setEntries setDescendants;
929  CalculateDescendants(it, setDescendants);
930  setDescendants.erase(it);
931  for (txiter descendantIt : setDescendants) {
932  mapTx.modify(descendantIt, [=](CTxMemPoolEntry& e){ e.UpdateAncestorState(0, nFeeDelta, 0, 0); });
933  }
935  }
936  if (delta == 0) {
937  mapDeltas.erase(hash);
938  LogPrintf("PrioritiseTransaction: %s (%sin mempool) delta cleared\n", hash.ToString(), it == mapTx.end() ? "not " : "");
939  } else {
940  LogPrintf("PrioritiseTransaction: %s (%sin mempool) fee += %s, new delta=%s\n",
941  hash.ToString(),
942  it == mapTx.end() ? "not " : "",
943  FormatMoney(nFeeDelta),
944  FormatMoney(delta));
945  }
946  }
947 }
948 
949 void CTxMemPool::ApplyDelta(const uint256& hash, CAmount &nFeeDelta) const
950 {
952  std::map<uint256, CAmount>::const_iterator pos = mapDeltas.find(hash);
953  if (pos == mapDeltas.end())
954  return;
955  const CAmount &delta = pos->second;
956  nFeeDelta += delta;
957 }
958 
960 {
962  mapDeltas.erase(hash);
963 }
964 
965 std::vector<CTxMemPool::delta_info> CTxMemPool::GetPrioritisedTransactions() const
966 {
968  LOCK(cs);
969  std::vector<delta_info> result;
970  result.reserve(mapDeltas.size());
971  for (const auto& [txid, delta] : mapDeltas) {
972  const auto iter{mapTx.find(txid)};
973  const bool in_mempool{iter != mapTx.end()};
974  std::optional<CAmount> modified_fee;
975  if (in_mempool) modified_fee = iter->GetModifiedFee();
976  result.emplace_back(delta_info{in_mempool, delta, modified_fee, txid});
977  }
978  return result;
979 }
980 
982 {
983  const auto it = mapNextTx.find(prevout);
984  return it == mapNextTx.end() ? nullptr : it->second;
985 }
986 
987 std::optional<CTxMemPool::txiter> CTxMemPool::GetIter(const uint256& txid) const
988 {
989  auto it = mapTx.find(txid);
990  if (it != mapTx.end()) return it;
991  return std::nullopt;
992 }
993 
994 CTxMemPool::setEntries CTxMemPool::GetIterSet(const std::set<Txid>& hashes) const
995 {
997  for (const auto& h : hashes) {
998  const auto mi = GetIter(h);
999  if (mi) ret.insert(*mi);
1000  }
1001  return ret;
1002 }
1003 
1004 std::vector<CTxMemPool::txiter> CTxMemPool::GetIterVec(const std::vector<uint256>& txids) const
1005 {
1006  AssertLockHeld(cs);
1007  std::vector<txiter> ret;
1008  ret.reserve(txids.size());
1009  for (const auto& txid : txids) {
1010  const auto it{GetIter(txid)};
1011  if (!it) return {};
1012  ret.push_back(*it);
1013  }
1014  return ret;
1015 }
1016 
1018 {
1019  for (unsigned int i = 0; i < tx.vin.size(); i++)
1020  if (exists(GenTxid::Txid(tx.vin[i].prevout.hash)))
1021  return false;
1022  return true;
1023 }
1024 
1025 CCoinsViewMemPool::CCoinsViewMemPool(CCoinsView* baseIn, const CTxMemPool& mempoolIn) : CCoinsViewBacked(baseIn), mempool(mempoolIn) { }
1026 
1027 std::optional<Coin> CCoinsViewMemPool::GetCoin(const COutPoint& outpoint) const
1028 {
1029  // Check to see if the inputs are made available by another tx in the package.
1030  // These Coins would not be available in the underlying CoinsView.
1031  if (auto it = m_temp_added.find(outpoint); it != m_temp_added.end()) {
1032  return it->second;
1033  }
1034 
1035  // If an entry in the mempool exists, always return that one, as it's guaranteed to never
1036  // conflict with the underlying cache, and it cannot have pruned entries (as it contains full)
1037  // transactions. First checking the underlying cache risks returning a pruned entry instead.
1038  CTransactionRef ptx = mempool.get(outpoint.hash);
1039  if (ptx) {
1040  if (outpoint.n < ptx->vout.size()) {
1041  Coin coin(ptx->vout[outpoint.n], MEMPOOL_HEIGHT, false);
1042  m_non_base_coins.emplace(outpoint);
1043  return coin;
1044  }
1045  return std::nullopt;
1046  }
1047  return base->GetCoin(outpoint);
1048 }
1049 
1051 {
1052  for (unsigned int n = 0; n < tx->vout.size(); ++n) {
1053  m_temp_added.emplace(COutPoint(tx->GetHash(), n), Coin(tx->vout[n], MEMPOOL_HEIGHT, false));
1054  m_non_base_coins.emplace(tx->GetHash(), n);
1055  }
1056 }
1058 {
1059  m_temp_added.clear();
1060  m_non_base_coins.clear();
1061 }
1062 
1064  LOCK(cs);
1065  // Estimate the overhead of mapTx to be 15 pointers + an allocation, as no exact formula for boost::multi_index_contained is implemented.
1066  return memusage::MallocUsage(sizeof(CTxMemPoolEntry) + 15 * sizeof(void*)) * mapTx.size() + memusage::DynamicUsage(mapNextTx) + memusage::DynamicUsage(mapDeltas) + memusage::DynamicUsage(txns_randomized) + cachedInnerUsage;
1067 }
1068 
1069 void CTxMemPool::RemoveUnbroadcastTx(const uint256& txid, const bool unchecked) {
1070  LOCK(cs);
1071 
1072  if (m_unbroadcast_txids.erase(txid))
1073  {
1074  LogDebug(BCLog::MEMPOOL, "Removed %i from set of unbroadcast txns%s\n", txid.GetHex(), (unchecked ? " before confirmation that txn was sent out" : ""));
1075  }
1076 }
1077 
1078 void CTxMemPool::RemoveStaged(setEntries &stage, bool updateDescendants, MemPoolRemovalReason reason) {
1079  AssertLockHeld(cs);
1080  UpdateForRemoveFromMempool(stage, updateDescendants);
1081  for (txiter it : stage) {
1082  removeUnchecked(it, reason);
1083  }
1084 }
1085 
1086 int CTxMemPool::Expire(std::chrono::seconds time)
1087 {
1088  AssertLockHeld(cs);
1089  Assume(!m_have_changeset);
1090  indexed_transaction_set::index<entry_time>::type::iterator it = mapTx.get<entry_time>().begin();
1091  setEntries toremove;
1092  while (it != mapTx.get<entry_time>().end() && it->GetTime() < time) {
1093  toremove.insert(mapTx.project<0>(it));
1094  it++;
1095  }
1096  setEntries stage;
1097  for (txiter removeit : toremove) {
1098  CalculateDescendants(removeit, stage);
1099  }
1101  return stage.size();
1102 }
1103 
1104 void CTxMemPool::UpdateChild(txiter entry, txiter child, bool add)
1105 {
1106  AssertLockHeld(cs);
1108  if (add && entry->GetMemPoolChildren().insert(*child).second) {
1109  cachedInnerUsage += memusage::IncrementalDynamicUsage(s);
1110  } else if (!add && entry->GetMemPoolChildren().erase(*child)) {
1111  cachedInnerUsage -= memusage::IncrementalDynamicUsage(s);
1112  }
1113 }
1114 
1115 void CTxMemPool::UpdateParent(txiter entry, txiter parent, bool add)
1116 {
1117  AssertLockHeld(cs);
1119  if (add && entry->GetMemPoolParents().insert(*parent).second) {
1120  cachedInnerUsage += memusage::IncrementalDynamicUsage(s);
1121  } else if (!add && entry->GetMemPoolParents().erase(*parent)) {
1122  cachedInnerUsage -= memusage::IncrementalDynamicUsage(s);
1123  }
1124 }
1125 
1126 CFeeRate CTxMemPool::GetMinFee(size_t sizelimit) const {
1127  LOCK(cs);
1128  if (!blockSinceLastRollingFeeBump || rollingMinimumFeeRate == 0)
1129  return CFeeRate(llround(rollingMinimumFeeRate));
1130 
1131  int64_t time = GetTime();
1132  if (time > lastRollingFeeUpdate + 10) {
1133  double halflife = ROLLING_FEE_HALFLIFE;
1134  if (DynamicMemoryUsage() < sizelimit / 4)
1135  halflife /= 4;
1136  else if (DynamicMemoryUsage() < sizelimit / 2)
1137  halflife /= 2;
1138 
1139  rollingMinimumFeeRate = rollingMinimumFeeRate / pow(2.0, (time - lastRollingFeeUpdate) / halflife);
1140  lastRollingFeeUpdate = time;
1141 
1142  if (rollingMinimumFeeRate < (double)m_opts.incremental_relay_feerate.GetFeePerK() / 2) {
1143  rollingMinimumFeeRate = 0;
1144  return CFeeRate(0);
1145  }
1146  }
1147  return std::max(CFeeRate(llround(rollingMinimumFeeRate)), m_opts.incremental_relay_feerate);
1148 }
1149 
1151  AssertLockHeld(cs);
1152  if (rate.GetFeePerK() > rollingMinimumFeeRate) {
1153  rollingMinimumFeeRate = rate.GetFeePerK();
1154  blockSinceLastRollingFeeBump = false;
1155  }
1156 }
1157 
1158 void CTxMemPool::TrimToSize(size_t sizelimit, std::vector<COutPoint>* pvNoSpendsRemaining) {
1159  AssertLockHeld(cs);
1160  Assume(!m_have_changeset);
1161 
1162  unsigned nTxnRemoved = 0;
1163  CFeeRate maxFeeRateRemoved(0);
1164  while (!mapTx.empty() && DynamicMemoryUsage() > sizelimit) {
1165  indexed_transaction_set::index<descendant_score>::type::iterator it = mapTx.get<descendant_score>().begin();
1166 
1167  // We set the new mempool min fee to the feerate of the removed set, plus the
1168  // "minimum reasonable fee rate" (ie some value under which we consider txn
1169  // to have 0 fee). This way, we don't allow txn to enter mempool with feerate
1170  // equal to txn which were removed with no block in between.
1171  CFeeRate removed(it->GetModFeesWithDescendants(), it->GetSizeWithDescendants());
1172  removed += m_opts.incremental_relay_feerate;
1173  trackPackageRemoved(removed);
1174  maxFeeRateRemoved = std::max(maxFeeRateRemoved, removed);
1175 
1176  setEntries stage;
1177  CalculateDescendants(mapTx.project<0>(it), stage);
1178  nTxnRemoved += stage.size();
1179 
1180  std::vector<CTransaction> txn;
1181  if (pvNoSpendsRemaining) {
1182  txn.reserve(stage.size());
1183  for (txiter iter : stage)
1184  txn.push_back(iter->GetTx());
1185  }
1187  if (pvNoSpendsRemaining) {
1188  for (const CTransaction& tx : txn) {
1189  for (const CTxIn& txin : tx.vin) {
1190  if (exists(GenTxid::Txid(txin.prevout.hash))) continue;
1191  pvNoSpendsRemaining->push_back(txin.prevout);
1192  }
1193  }
1194  }
1195  }
1196 
1197  if (maxFeeRateRemoved > CFeeRate(0)) {
1198  LogDebug(BCLog::MEMPOOL, "Removed %u txn, rolling minimum fee bumped to %s\n", nTxnRemoved, maxFeeRateRemoved.ToString());
1199  }
1200 }
1201 
1203  // find parent with highest descendant count
1204  std::vector<txiter> candidates;
1205  setEntries counted;
1206  candidates.push_back(entry);
1207  uint64_t maximum = 0;
1208  while (candidates.size()) {
1209  txiter candidate = candidates.back();
1210  candidates.pop_back();
1211  if (!counted.insert(candidate).second) continue;
1212  const CTxMemPoolEntry::Parents& parents = candidate->GetMemPoolParentsConst();
1213  if (parents.size() == 0) {
1214  maximum = std::max(maximum, candidate->GetCountWithDescendants());
1215  } else {
1216  for (const CTxMemPoolEntry& i : parents) {
1217  candidates.push_back(mapTx.iterator_to(i));
1218  }
1219  }
1220  }
1221  return maximum;
1222 }
1223 
1224 void CTxMemPool::GetTransactionAncestry(const uint256& txid, size_t& ancestors, size_t& descendants, size_t* const ancestorsize, CAmount* const ancestorfees) const {
1225  LOCK(cs);
1226  auto it = mapTx.find(txid);
1227  ancestors = descendants = 0;
1228  if (it != mapTx.end()) {
1229  ancestors = it->GetCountWithAncestors();
1230  if (ancestorsize) *ancestorsize = it->GetSizeWithAncestors();
1231  if (ancestorfees) *ancestorfees = it->GetModFeesWithAncestors();
1232  descendants = CalculateDescendantMaximum(it);
1233  }
1234 }
1235 
1237 {
1238  LOCK(cs);
1239  return m_load_tried;
1240 }
1241 
1242 void CTxMemPool::SetLoadTried(bool load_tried)
1243 {
1244  LOCK(cs);
1245  m_load_tried = load_tried;
1246 }
1247 
1248 std::vector<CTxMemPool::txiter> CTxMemPool::GatherClusters(const std::vector<uint256>& txids) const
1249 {
1250  AssertLockHeld(cs);
1251  std::vector<txiter> clustered_txs{GetIterVec(txids)};
1252  // Use epoch: visiting an entry means we have added it to the clustered_txs vector. It does not
1253  // necessarily mean the entry has been processed.
1255  for (const auto& it : clustered_txs) {
1256  visited(it);
1257  }
1258  // i = index of where the list of entries to process starts
1259  for (size_t i{0}; i < clustered_txs.size(); ++i) {
1260  // DoS protection: if there are 500 or more entries to process, just quit.
1261  if (clustered_txs.size() > 500) return {};
1262  const txiter& tx_iter = clustered_txs.at(i);
1263  for (const auto& entries : {tx_iter->GetMemPoolParentsConst(), tx_iter->GetMemPoolChildrenConst()}) {
1264  for (const CTxMemPoolEntry& entry : entries) {
1265  const auto entry_it = mapTx.iterator_to(entry);
1266  if (!visited(entry_it)) {
1267  clustered_txs.push_back(entry_it);
1268  }
1269  }
1270  }
1271  }
1272  return clustered_txs;
1273 }
1274 
1275 std::optional<std::string> CTxMemPool::CheckConflictTopology(const setEntries& direct_conflicts)
1276 {
1277  for (const auto& direct_conflict : direct_conflicts) {
1278  // Ancestor and descendant counts are inclusive of the tx itself.
1279  const auto ancestor_count{direct_conflict->GetCountWithAncestors()};
1280  const auto descendant_count{direct_conflict->GetCountWithDescendants()};
1281  const bool has_ancestor{ancestor_count > 1};
1282  const bool has_descendant{descendant_count > 1};
1283  const auto& txid_string{direct_conflict->GetSharedTx()->GetHash().ToString()};
1284  // The only allowed configurations are:
1285  // 1 ancestor and 0 descendant
1286  // 0 ancestor and 1 descendant
1287  // 0 ancestor and 0 descendant
1288  if (ancestor_count > 2) {
1289  return strprintf("%s has %u ancestors, max 1 allowed", txid_string, ancestor_count - 1);
1290  } else if (descendant_count > 2) {
1291  return strprintf("%s has %u descendants, max 1 allowed", txid_string, descendant_count - 1);
1292  } else if (has_ancestor && has_descendant) {
1293  return strprintf("%s has both ancestor and descendant, exceeding cluster limit of 2", txid_string);
1294  }
1295  // Additionally enforce that:
1296  // If we have a child, we are its only parent.
1297  // If we have a parent, we are its only child.
1298  if (has_descendant) {
1299  const auto& our_child = direct_conflict->GetMemPoolChildrenConst().begin();
1300  if (our_child->get().GetCountWithAncestors() > 2) {
1301  return strprintf("%s is not the only parent of child %s",
1302  txid_string, our_child->get().GetSharedTx()->GetHash().ToString());
1303  }
1304  } else if (has_ancestor) {
1305  const auto& our_parent = direct_conflict->GetMemPoolParentsConst().begin();
1306  if (our_parent->get().GetCountWithDescendants() > 2) {
1307  return strprintf("%s is not the only child of parent %s",
1308  txid_string, our_parent->get().GetSharedTx()->GetHash().ToString());
1309  }
1310  }
1311  }
1312  return std::nullopt;
1313 }
1314 
1316 {
1317  LOCK(m_pool->cs);
1318  FeeFrac replacement_feerate{0, 0};
1319  for (auto it : m_entry_vec) {
1320  replacement_feerate += {it->GetModifiedFee(), it->GetTxSize()};
1321  }
1322 
1323  auto err_string{m_pool->CheckConflictTopology(m_to_remove)};
1324  if (err_string.has_value()) {
1325  // Unsupported topology for calculating a feerate diagram
1326  return util::Error{Untranslated(err_string.value())};
1327  }
1328 
1329  // new diagram will have chunks that consist of each ancestor of
1330  // direct_conflicts that is at its own fee/size, along with the replacement
1331  // tx/package at its own fee/size
1332 
1333  // old diagram will consist of the ancestors and descendants of each element of
1334  // all_conflicts. every such transaction will either be at its own feerate (followed
1335  // by any descendant at its own feerate), or as a single chunk at the descendant's
1336  // ancestor feerate.
1337 
1338  std::vector<FeeFrac> old_chunks;
1339  // Step 1: build the old diagram.
1340 
1341  // The above clusters are all trivially linearized;
1342  // they have a strict topology of 1 or two connected transactions.
1343 
1344  // OLD: Compute existing chunks from all affected clusters
1345  for (auto txiter : m_to_remove) {
1346  // Does this transaction have descendants?
1347  if (txiter->GetCountWithDescendants() > 1) {
1348  // Consider this tx when we consider the descendant.
1349  continue;
1350  }
1351  // Does this transaction have ancestors?
1352  FeeFrac individual{txiter->GetModifiedFee(), txiter->GetTxSize()};
1353  if (txiter->GetCountWithAncestors() > 1) {
1354  // We'll add chunks for either the ancestor by itself and this tx
1355  // by itself, or for a combined package.
1356  FeeFrac package{txiter->GetModFeesWithAncestors(), static_cast<int32_t>(txiter->GetSizeWithAncestors())};
1357  if (individual >> package) {
1358  // The individual feerate is higher than the package, and
1359  // therefore higher than the parent's fee. Chunk these
1360  // together.
1361  old_chunks.emplace_back(package);
1362  } else {
1363  // Add two points, one for the parent and one for this child.
1364  old_chunks.emplace_back(package - individual);
1365  old_chunks.emplace_back(individual);
1366  }
1367  } else {
1368  old_chunks.emplace_back(individual);
1369  }
1370  }
1371 
1372  // No topology restrictions post-chunking; sort
1373  std::sort(old_chunks.begin(), old_chunks.end(), std::greater());
1374 
1375  std::vector<FeeFrac> new_chunks;
1376 
1377  /* Step 2: build the NEW diagram
1378  * CON = Conflicts of proposed chunk
1379  * CNK = Proposed chunk
1380  * NEW = OLD - CON + CNK: New diagram includes all chunks in OLD, minus
1381  * the conflicts, plus the proposed chunk
1382  */
1383 
1384  // OLD - CON: Add any parents of direct conflicts that are not conflicted themselves
1385  for (auto direct_conflict : m_to_remove) {
1386  // If a direct conflict has an ancestor that is not in all_conflicts,
1387  // it can be affected by the replacement of the child.
1388  if (direct_conflict->GetMemPoolParentsConst().size() > 0) {
1389  // Grab the parent.
1390  const CTxMemPoolEntry& parent = direct_conflict->GetMemPoolParentsConst().begin()->get();
1391  if (!m_to_remove.contains(m_pool->mapTx.iterator_to(parent))) {
1392  // This transaction would be left over, so add to the NEW
1393  // diagram.
1394  new_chunks.emplace_back(parent.GetModifiedFee(), parent.GetTxSize());
1395  }
1396  }
1397  }
1398  // + CNK: Add the proposed chunk itself
1399  new_chunks.emplace_back(replacement_feerate);
1400 
1401  // No topology restrictions post-chunking; sort
1402  std::sort(new_chunks.begin(), new_chunks.end(), std::greater());
1403  return std::make_pair(old_chunks, new_chunks);
1404 }
1405 
1406 CTxMemPool::ChangeSet::TxHandle CTxMemPool::ChangeSet::StageAddition(const CTransactionRef& tx, const CAmount fee, int64_t time, unsigned int entry_height, uint64_t entry_sequence, bool spends_coinbase, int64_t sigops_cost, LockPoints lp)
1407 {
1408  LOCK(m_pool->cs);
1409  Assume(m_to_add.find(tx->GetHash()) == m_to_add.end());
1410  auto newit = m_to_add.emplace(tx, fee, time, entry_height, entry_sequence, spends_coinbase, sigops_cost, lp).first;
1411  CAmount delta{0};
1412  m_pool->ApplyDelta(tx->GetHash(), delta);
1413  if (delta) m_to_add.modify(newit, [&delta](CTxMemPoolEntry& e) { e.UpdateModifiedFee(delta); });
1414 
1415  m_entry_vec.push_back(newit);
1416  return newit;
1417 }
1418 
1420 {
1421  LOCK(m_pool->cs);
1422  m_pool->Apply(this);
1423  m_to_add.clear();
1424  m_to_remove.clear();
1425  m_entry_vec.clear();
1426  m_ancestors.clear();
1427 }
std::shared_ptr< const CTransaction > CTransactionRef
Definition: transaction.h:423
void UpdateDescendantState(int32_t modifySize, CAmount modifyFee, int64_t modifyCount)
Definition: txmempool.cpp:383
Information about a mempool transaction.
Definition: txmempool.h:212
std::vector< txiter > GetIterVec(const std::vector< uint256 > &txids) const EXCLUSIVE_LOCKS_REQUIRED(cs)
Translate a list of hashes into a list of mempool iterators to avoid repeated lookups.
Definition: txmempool.cpp:1004
std::unordered_set< COutPoint, SaltedOutpointHasher > m_non_base_coins
Set of all coins that have been fetched from mempool or created using PackageAddTransaction (not base...
Definition: txmempool.h:936
int ret
bool CheckTxInputs(const CTransaction &tx, TxValidationState &state, const CCoinsViewCache &inputs, int nSpendHeight, CAmount &txfee)
Check whether all inputs of this transaction are valid (no double spends and amounts) This does not m...
Definition: tx_verify.cpp:164
CAmount nModFeesWithDescendants
... and total fees (all including us)
Definition: mempool_entry.h:99
std::string RemovalReasonToString(const MemPoolRemovalReason &r) noexcept
void UpdateModifiedFee(CAmount fee_diff)
util::Result< CTxMemPool::setEntries > CalculateMemPoolAncestors(TxHandle tx, const Limits &limits)
Definition: txmempool.h:837
AssertLockHeld(pool.cs)
CTxMemPool(Options opts, bilingual_str &error)
Create a new CTxMemPool.
Definition: txmempool.cpp:414
indexed_transaction_set::nth_index< 0 >::type::const_iterator txiter
Definition: txmempool.h:393
assert(!tx.IsCoinBase())
std::vector< TxMempoolInfo > infoAll() const
Definition: txmempool.cpp:863
void Apply(CTxMemPool::ChangeSet *changeset) EXCLUSIVE_LOCKS_REQUIRED(cs)
Definition: txmempool.cpp:435
int32_t GetTxSize() const
A UTXO entry.
Definition: coins.h:32
Bilingual messages:
Definition: translation.h:24
bool exists(const GenTxid &gtxid) const
Definition: txmempool.h:647
void UpdateTransactionsFromBlock(const std::vector< uint256 > &vHashesToUpdate) EXCLUSIVE_LOCKS_REQUIRED(cs
UpdateTransactionsFromBlock is called when adding transactions from a disconnected block back to the ...
Definition: txmempool.cpp:108
#define strprintf
Format arguments and return the string or write to given std::ostream (see tinyformat::format doc for...
Definition: tinyformat.h:1172
Options struct containing limit options for a CTxMemPool.
An in-memory indexed chain of blocks.
Definition: chain.h:416
void CalculateDescendants(txiter it, setEntries &setDescendants) const EXCLUSIVE_LOCKS_REQUIRED(cs)
Populate setDescendants with all in-mempool descendants of hash.
Definition: txmempool.cpp:571
static size_t DynamicUsage(const int8_t &v)
Dynamic memory usage for built-in types is zero.
Definition: memusage.h:31
size_t DynamicMemoryUsage() const
Definition: txmempool.cpp:1063
ValidationSignals * signals
bilingual_str Untranslated(std::string original)
Mark a bilingual_str as untranslated.
Definition: translation.h:82
std::vector< CTransactionRef > Package
A package is an ordered list of transactions.
Definition: packages.h:50
MemPoolRemovalReason
Reason why a transaction was removed from the mempool, this is passed to the notification signal...
void removeConflicts(const CTransaction &tx) EXCLUSIVE_LOCKS_REQUIRED(cs)
Definition: txmempool.cpp:647
void RemoveStaged(setEntries &stage, bool updateDescendants, MemPoolRemovalReason reason) EXCLUSIVE_LOCKS_REQUIRED(cs)
Remove a set of transactions from the mempool.
Definition: txmempool.cpp:1078
Removed for conflict with in-block transaction.
bool CompareDepthAndScore(const uint256 &hasha, const uint256 &hashb, bool wtxid=false)
Definition: txmempool.cpp:797
std::set< txiter, CompareIteratorByHash > setEntries
Definition: txmempool.h:396
const Children & GetMemPoolChildrenConst() const
std::atomic< unsigned int > nTransactionsUpdated
Used by getblocktemplate to trigger CreateNewBlock() invocation.
Definition: txmempool.h:306
void check(const CCoinsViewCache &active_coins_tip, int64_t spendheight) const EXCLUSIVE_LOCKS_REQUIRED(void removeRecursive(const CTransaction &tx, MemPoolRemovalReason reason) EXCLUSIVE_LOCKS_REQUIRED(cs)
If sanity-checking is turned on, check makes sure the pool is consistent (does not contain two transa...
Definition: txmempool.h:457
void SetLoadTried(bool load_tried)
Set whether or not an initial attempt to load the persisted mempool was made (regardless of whether t...
Definition: txmempool.cpp:1242
CFeeRate GetMinFee() const
The minimum fee to get into the mempool, which may itself not be enough for larger-sized transactions...
Definition: txmempool.h:596
consteval auto _(util::TranslatedLiteral str)
Definition: translation.h:79
setEntries AssumeCalculateMemPoolAncestors(std::string_view calling_fn_name, const CTxMemPoolEntry &entry, const Limits &limits, bool fSearchForParents=true) const EXCLUSIVE_LOCKS_REQUIRED(cs)
Same as CalculateMemPoolAncestors, but always returns a (non-optional) setEntries.
Definition: txmempool.cpp:275
std::optional< Coin > GetCoin(const COutPoint &outpoint) const override
GetCoin, returning whether it exists and is not spent.
Definition: txmempool.cpp:1027
CTxMemPool::indexed_transaction_set m_to_add
Definition: txmempool.h:875
CAmount GetModifiedFee() const
#define WITH_FRESH_EPOCH(epoch)
Definition: epochguard.h:100
bool IsCoinBase() const
Definition: transaction.h:356
util::Result< setEntries > CalculateMemPoolAncestors(const CTxMemPoolEntry &entry, const Limits &limits, bool fSearchForParents=true) const EXCLUSIVE_LOCKS_REQUIRED(cs)
Try to calculate all in-mempool ancestors of entry.
Definition: txmempool.cpp:243
bool isSpent(const COutPoint &outpoint) const
Definition: txmempool.cpp:419
const std::vector< CTxIn > vin
Definition: transaction.h:306
void removeForReorg(CChain &chain, std::function< bool(txiter)> filter_final_and_mature) EXCLUSIVE_LOCKS_REQUIRED(cs
After reorg, filter the entries that would no longer be valid in the next block, and update the entri...
Definition: txmempool.cpp:626
std::vector< txiter > GatherClusters(const std::vector< uint256 > &txids) const EXCLUSIVE_LOCKS_REQUIRED(cs)
Collect the entire cluster of connected transactions for each transaction in txids.
Definition: txmempool.cpp:1248
Expired from mempool.
CTxMemPoolEntry stores data about the corresponding transaction, as well as data about all in-mempool...
Definition: mempool_entry.h:65
int64_t nSizeWithAncestors
void UpdateAncestorsOf(bool add, txiter hash, setEntries &setAncestors) EXCLUSIVE_LOCKS_REQUIRED(cs)
Update ancestors of hash to add/remove it as a descendant transaction.
Definition: txmempool.cpp:289
int64_t CAmount
Amount in satoshis (Can be negative)
Definition: amount.h:12
void UpdateForDescendants(txiter updateIt, cacheMap &cachedDescendants, const std::set< uint256 > &setExclude, std::set< uint256 > &descendants_to_remove) EXCLUSIVE_LOCKS_REQUIRED(cs)
UpdateForDescendants is used by UpdateTransactionsFromBlock to update the descendants for a single tr...
Definition: txmempool.cpp:57
void AddCoins(CCoinsViewCache &cache, const CTransaction &tx, int nHeight, bool check_for_overwrite)
Utility function to add all of a transaction&#39;s outputs to a cache.
Definition: coins.cpp:119
CTxMemPool * m_pool
Definition: txmempool.h:874
static const uint32_t MEMPOOL_HEIGHT
Fake height value used in Coin to signify they are only in the memory pool (since 0...
Definition: txmempool.h:49
int64_t nSigOpCostWithAncestors
util::Result< std::pair< std::vector< FeeFrac >, std::vector< FeeFrac > > > CalculateChunksForRBF()
Calculate the sorted chunks for the old and new mempool relating to the clusters that would be affect...
Definition: txmempool.cpp:1315
std::set< CTxMemPoolEntryRef, CompareIteratorByHash > Parents
Definition: mempool_entry.h:70
static TxMempoolInfo GetInfo(CTxMemPool::indexed_transaction_set::const_iterator it)
Definition: txmempool.cpp:847
int64_t m_count_with_descendants
number of descendant transactions
Definition: mempool_entry.h:96
Abstract view on the open txout dataset.
Definition: coins.h:309
size_t DynamicMemoryUsage() const
int Expire(std::chrono::seconds time) EXCLUSIVE_LOCKS_REQUIRED(cs)
Expire all transaction (and their dependencies) in the mempool older than time.
Definition: txmempool.cpp:1086
An input of a transaction.
Definition: transaction.h:66
int64_t descendant_count
The maximum allowed number of transactions in a package including the entry and its descendants...
Removed for reorganization.
#define LOCK(cs)
Definition: sync.h:257
CCoinsView * base
Definition: coins.h:346
const CAmount & GetFee() const
std::vector< CTxMemPool::txiter > m_entry_vec
Definition: txmempool.h:876
TRACEPOINT_SEMAPHORE(mempool, added)
bool Contains(const CBlockIndex *pindex) const
Efficiently check whether a block is present in this chain.
Definition: chain.h:447
Fast randomness source.
Definition: random.h:376
Txid hash
Definition: transaction.h:31
void removeUnchecked(txiter entry, MemPoolRemovalReason reason) EXCLUSIVE_LOCKS_REQUIRED(cs)
Before calling removeUnchecked for a given transaction, UpdateForRemoveFromMempool must be called on ...
Definition: txmempool.cpp:520
std::string ToString(const FeeEstimateMode &fee_estimate_mode=FeeEstimateMode::BTC_KVB) const
Definition: feerate.cpp:39
uint32_t n
Definition: transaction.h:32
const std::vector< CTxOut > vout
Definition: transaction.h:307
Removed in size limiting.
bool TestLockPointValidity(CChain &active_chain, const LockPoints &lp)
Test whether the LockPoints height and time are still valid on the current chain. ...
Definition: txmempool.cpp:40
std::vector< delta_info > GetPrioritisedTransactions() const EXCLUSIVE_LOCKS_REQUIRED(!cs)
Return a vector of all entries in mapDeltas with their corresponding delta_info.
Definition: txmempool.cpp:965
#define LogPrintLevel(category, level,...)
Definition: logging.h:372
CTxMemPool::txiter TxHandle
Definition: txmempool.h:830
static const int ROLLING_FEE_HALFLIFE
Definition: txmempool.h:330
CAmount nModFeesWithAncestors
std::string ToString() const
Definition: uint256.cpp:47
constexpr const std::byte * data() const
const CTransaction * GetConflictTx(const COutPoint &prevout) const EXCLUSIVE_LOCKS_REQUIRED(cs)
Get the transaction in the pool that spends the same prevout.
Definition: txmempool.cpp:981
int64_t m_count_with_ancestors
An outpoint - a combination of a transaction hash and an index n into its vout.
Definition: transaction.h:28
void AddTransactionsUpdated(unsigned int n)
Definition: txmempool.cpp:430
void ApplyDelta(const uint256 &hash, CAmount &nFeeDelta) const EXCLUSIVE_LOCKS_REQUIRED(cs)
Definition: txmempool.cpp:949
TxHandle StageAddition(const CTransactionRef &tx, const CAmount fee, int64_t time, unsigned int entry_height, uint64_t entry_sequence, bool spends_coinbase, int64_t sigops_cost, LockPoints lp)
Definition: txmempool.cpp:1406
#define Assume(val)
Assume is the identity function.
Definition: check.h:97
int64_t ancestor_size_vbytes
The maximum allowed size in virtual bytes of an entry and its ancestors within a package.
bool IsWtxid() const
Definition: transaction.h:436
uint64_t CalculateDescendantMaximum(txiter entry) const EXCLUSIVE_LOCKS_REQUIRED(cs)
Definition: txmempool.cpp:1202
static size_t MallocUsage(size_t alloc)
Compute the total memory used by allocating alloc bytes.
Definition: memusage.h:52
bool GetLoadTried() const
Definition: txmempool.cpp:1236
TxMempoolInfo info_for_relay(const GenTxid &gtxid, uint64_t last_sequence) const
Returns info for a transaction if its entry_sequence < last_sequence.
Definition: txmempool.cpp:902
std::optional< txiter > GetIter(const uint256 &txid) const EXCLUSIVE_LOCKS_REQUIRED(cs)
Returns an iterator to the given hash, if found.
Definition: txmempool.cpp:987
void cs_main
Definition: txmempool.h:465
std::string FormatMoney(const CAmount n)
Money parsing/formatting utilities.
Definition: moneystr.cpp:19
256-bit opaque blob.
Definition: uint256.h:201
void Apply() EXCLUSIVE_LOCKS_REQUIRED(cs_main)
Definition: txmempool.cpp:1419
T SaturatingAdd(const T i, const T j) noexcept
Definition: overflow.h:35
const CTxMemPoolEntry * GetEntry(const Txid &txid) const LIFETIMEBOUND EXCLUSIVE_LOCKS_REQUIRED(cs)
Definition: txmempool.cpp:877
uint64_t GetAndIncrementSequence() const EXCLUSIVE_LOCKS_REQUIRED(cs)
Guards this internal counter for external reporting.
Definition: txmempool.h:701
std::vector< indexed_transaction_set::const_iterator > GetSortedDepthAndScore() const EXCLUSIVE_LOCKS_REQUIRED(cs)
Definition: txmempool.cpp:833
bool visited(const txiter it) const EXCLUSIVE_LOCKS_REQUIRED(cs
visited marks a CTxMemPoolEntry as having been traversed during the lifetime of the most recently cre...
void MempoolTransactionsRemovedForBlock(const std::vector< RemovedMempoolTransactionInfo > &, unsigned int nBlockHeight)
Data structure storing a fee and size, ordered by increasing fee/size.
Definition: feefrac.h:38
CTxMemPool stores valid-according-to-the-current-best-chain transactions that may be included in the ...
Definition: txmempool.h:303
auto result
Definition: common-types.h:74
#define LogDebug(category,...)
Definition: logging.h:381
bool HasNoInputsOf(const CTransaction &tx) const EXCLUSIVE_LOCKS_REQUIRED(cs)
Check that none of this transactions inputs are in the mempool, and thus the tx is not dependent on o...
Definition: txmempool.cpp:1017
CTxMemPool::setEntries m_to_remove
Definition: txmempool.h:879
void UpdateAncestorState(int32_t modifySize, CAmount modifyFee, int64_t modifyCount, int64_t modifySigOps)
Definition: txmempool.cpp:392
void Reset()
Clear m_temp_added and m_non_base_coins.
Definition: txmempool.cpp:1057
int64_t nSizeWithDescendants
... and size
Definition: mempool_entry.h:98
std::map< txiter, setEntries, CompareIteratorByHash > cacheMap
Definition: txmempool.h:402
Removed for block.
static transaction_identifier FromUint256(const uint256 &id)
int64_t descendant_size_vbytes
The maximum allowed size in virtual bytes of an entry and its descendants within a package...
const CTransaction & GetTx() const
void UpdateEntryForAncestors(txiter it, const setEntries &setAncestors) EXCLUSIVE_LOCKS_REQUIRED(cs)
Set ancestor state for an entry.
Definition: txmempool.cpp:304
#define TRACEPOINT(context,...)
Definition: trace.h:49
bool m_epoch
Definition: txmempool.h:784
TxMempoolInfo info(const GenTxid &gtxid) const
Definition: txmempool.cpp:893
txiter get_iter_from_wtxid(const uint256 &wtxid) const EXCLUSIVE_LOCKS_REQUIRED(cs)
Definition: txmempool.h:659
void UpdateChild(txiter entry, txiter child, bool add) EXCLUSIVE_LOCKS_REQUIRED(cs)
Definition: txmempool.cpp:1104
void ClearPrioritisation(const uint256 &hash) EXCLUSIVE_LOCKS_REQUIRED(cs)
Definition: txmempool.cpp:959
virtual std::optional< Coin > GetCoin(const COutPoint &outpoint) const
Retrieve the Coin (unspent transaction output) for a given outpoint.
Definition: coins.cpp:16
void GetTransactionAncestry(const uint256 &txid, size_t &ancestors, size_t &descendants, size_t *ancestorsize=nullptr, CAmount *ancestorfees=nullptr) const
Calculate the ancestor and descendant count for the given transaction.
Definition: txmempool.cpp:1224
std::string GetHex() const
Definition: uint256.cpp:11
std::optional< std::string > CheckConflictTopology(const setEntries &direct_conflicts)
Definition: txmempool.cpp:1275
std::set< CTxMemPoolEntryRef, CompareIteratorByHash > Children
Definition: mempool_entry.h:71
Fee rate in satoshis per kilovirtualbyte: CAmount / kvB.
Definition: feerate.h:32
#define AssertLockNotHeld(cs)
Definition: sync.h:147
unsigned int GetTransactionsUpdated() const
Definition: txmempool.cpp:425
static int count
bilingual_str ErrorString(const Result< T > &result)
Definition: result.h:93
static size_t IncrementalDynamicUsage(const std::set< X, Y > &s)
Definition: memusage.h:119
void PackageAddTransaction(const CTransactionRef &tx)
Add the coins created by this transaction.
Definition: txmempool.cpp:1050
static CTxMemPool::Options && Flatten(CTxMemPool::Options &&opts, bilingual_str &error)
Clamp option values and populate the error if options are not valid.
Definition: txmempool.cpp:404
void TrimToSize(size_t sizelimit, std::vector< COutPoint > *pvNoSpendsRemaining=nullptr) EXCLUSIVE_LOCKS_REQUIRED(cs)
Remove transactions from the mempool until its dynamic size is <= sizelimit.
Definition: txmempool.cpp:1158
CTransactionRef get(const uint256 &hash) const
Definition: txmempool.cpp:884
util::Result< setEntries > CalculateAncestorsAndCheckLimits(int64_t entry_size, size_t entry_count, CTxMemPoolEntry::Parents &staged_ancestors, const Limits &limits) const EXCLUSIVE_LOCKS_REQUIRED(cs)
Helper function to calculate all in-mempool ancestors of staged_ancestors and apply ancestor and desc...
Definition: txmempool.cpp:163
void RemoveUnbroadcastTx(const uint256 &txid, const bool unchecked=false)
Removes a transaction from the unbroadcast set.
Definition: txmempool.cpp:1069
void trackPackageRemoved(const CFeeRate &rate) EXCLUSIVE_LOCKS_REQUIRED(cs)
Definition: txmempool.cpp:1150
CCoinsViewMemPool(CCoinsView *baseIn, const CTxMemPool &mempoolIn)
Definition: txmempool.cpp:1025
static constexpr MemPoolLimits NoLimits()
Options struct containing options for constructing a CTxMemPool.
The basic transaction that is broadcasted on the network and contained in blocks. ...
Definition: transaction.h:295
CCoinsView backed by another CCoinsView.
Definition: coins.h:343
int64_t ancestor_count
The maximum allowed number of transactions in a package including the entry and its ancestors...
CCoinsView that adds a memory cache for transactions to another CCoinsView.
Definition: coins.h:362
Sort by feerate of entry (fee/size) in descending order This is only used for transaction relay...
Definition: txmempool.h:136
void UpdateParent(txiter entry, txiter parent, bool add) EXCLUSIVE_LOCKS_REQUIRED(cs)
Definition: txmempool.cpp:1115
#define LogPrintf(...)
Definition: logging.h:361
const CTxMemPool & mempool
Definition: txmempool.h:938
int64_t GetTime()
DEPRECATED, see GetTime.
Definition: time.cpp:76
COutPoint prevout
Definition: transaction.h:69
void UpdateChildrenForRemoval(txiter entry) EXCLUSIVE_LOCKS_REQUIRED(cs)
Sever link between specified transaction and direct children.
Definition: txmempool.cpp:318
const Parents & GetMemPoolParentsConst() const
CBlockIndex * maxInputBlock
Definition: mempool_entry.h:35
Removed for replacement.
RecursiveMutex cs_main
Mutex to guard access to validation specific variables, such as reading or changing the chainstate...
Definition: cs_main.cpp:8
return !it visited * it
Definition: txmempool.h:791
void addNewTransaction(CTxMemPool::txiter it) EXCLUSIVE_LOCKS_REQUIRED(cs)
Definition: txmempool.cpp:471
util::Result< void > CheckPackageLimits(const Package &package, int64_t total_vsize) const EXCLUSIVE_LOCKS_REQUIRED(cs)
Calculate all in-mempool ancestors of a set of transactions not already in the mempool and check ance...
Definition: txmempool.cpp:205
void removeForBlock(const std::vector< CTransactionRef > &vtx, unsigned int nBlockHeight) EXCLUSIVE_LOCKS_REQUIRED(cs)
Called when a block is connected.
Definition: txmempool.cpp:667
LockPoints lp
setEntries GetIterSet(const std::set< Txid > &hashes) const EXCLUSIVE_LOCKS_REQUIRED(cs)
Translate a set of hashes into a set of pool iterators to avoid repeated lookups. ...
Definition: txmempool.cpp:994
void PrioritiseTransaction(const uint256 &hash, const CAmount &nFeeDelta)
Affect CreateNewBlock prioritisation of transactions.
Definition: txmempool.cpp:913
A generic txid reference (txid or wtxid).
Definition: transaction.h:427
CAmount GetFeePerK() const
Return the fee in satoshis for a vsize of 1000 vbytes.
Definition: feerate.h:60
std::unordered_map< COutPoint, Coin, SaltedOutpointHasher > m_temp_added
Coins made available by transactions being validated.
Definition: txmempool.h:930
static GenTxid Txid(const uint256 &hash)
Definition: transaction.h:434
std::vector< CTxMemPoolEntryRef > entryAll() const EXCLUSIVE_LOCKS_REQUIRED(cs)
Definition: txmempool.cpp:851
uint64_t fee
void UpdateForRemoveFromMempool(const setEntries &entriesToRemove, bool updateDescendants) EXCLUSIVE_LOCKS_REQUIRED(cs)
For each transaction being removed, update ancestors and any direct children.
Definition: txmempool.cpp:326
const uint256 & GetHash() const LIFETIMEBOUND
Definition: transaction.h:437
RecursiveMutex cs
This mutex needs to be locked when accessing mapTx or other members that are guarded by it...
Definition: txmempool.h:390
#define Assert(val)
Identity function.
Definition: check.h:85
const Txid & GetHash() const LIFETIMEBOUND
Definition: transaction.h:343
CFeeRate incremental_relay_feerate
void TransactionRemovedFromMempool(const CTransactionRef &, MemPoolRemovalReason, uint64_t mempool_sequence)
const Options m_opts
Definition: txmempool.h:439