Bitcoin Core  31.0.0
P2P Digital Currency
mini_miner.cpp
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1 // Copyright (c) 2023-present The Bitcoin Core developers
2 // Distributed under the MIT software license, see the accompanying
3 // file COPYING or http://www.opensource.org/licenses/mit-license.php.
4 
5 #include <node/mini_miner.h>
6 
7 #include <boost/multi_index/detail/hash_index_iterator.hpp>
8 #include <boost/operators.hpp>
9 #include <consensus/amount.h>
10 #include <policy/feerate.h>
11 #include <primitives/transaction.h>
12 #include <sync.h>
13 #include <txmempool.h>
14 #include <uint256.h>
15 #include <util/check.h>
16 
17 #include <algorithm>
18 #include <numeric>
19 #include <ranges>
20 #include <utility>
21 
22 namespace node {
23 
24 MiniMiner::MiniMiner(const CTxMemPool& mempool, const std::vector<COutPoint>& outpoints)
25 {
26  LOCK(mempool.cs);
27  // Find which outpoints to calculate bump fees for.
28  // Anything that's spent by the mempool is to-be-replaced
29  // Anything otherwise unavailable just has a bump fee of 0
30  for (const auto& outpoint : outpoints) {
31  if (!mempool.exists(outpoint.hash)) {
32  // This UTXO is either confirmed or not yet submitted to mempool.
33  // If it's confirmed, no bump fee is required.
34  // If it's not yet submitted, we have no information, so return 0.
35  m_bump_fees.emplace(outpoint, 0);
36  continue;
37  }
38 
39  // UXTO is created by transaction in mempool, add to map.
40  // Note: This will either create a missing entry or add the outpoint to an existing entry
41  m_requested_outpoints_by_txid[outpoint.hash].push_back(outpoint);
42 
43  if (const auto ptx{mempool.GetConflictTx(outpoint)}) {
44  // This outpoint is already being spent by another transaction in the mempool. We
45  // assume that the caller wants to replace this transaction and its descendants. It
46  // would be unusual for the transaction to have descendants as the wallet won’t normally
47  // attempt to replace transactions with descendants. If the outpoint is from a mempool
48  // transaction, we still need to calculate its ancestors bump fees (added to
49  // m_requested_outpoints_by_txid below), but after removing the to-be-replaced entries.
50  //
51  // Note that the descendants of a transaction include the transaction itself. Also note,
52  // that this is only calculating bump fees. RBF fee rules should be handled separately.
53  CTxMemPool::setEntries descendants;
54  mempool.CalculateDescendants(mempool.GetIter(ptx->GetHash()).value(), descendants);
55  for (const auto& desc_txiter : descendants) {
56  m_to_be_replaced.insert(desc_txiter->GetTx().GetHash());
57  }
58  }
59  }
60 
61  // No unconfirmed UTXOs, so nothing mempool-related needs to be calculated.
62  if (m_requested_outpoints_by_txid.empty()) return;
63 
64  // Calculate the cluster and construct the entry map.
65  auto txids_needed{m_requested_outpoints_by_txid | std::views::keys};
66  const auto cluster = mempool.GatherClusters({txids_needed.begin(), txids_needed.end()});
67  if (cluster.empty()) {
68  // An empty cluster means that at least one of the transactions is missing from the mempool
69  // (should not be possible given processing above) or DoS limit was hit.
70  m_ready_to_calculate = false;
71  return;
72  }
73 
74  // Add every entry to m_entries_by_txid and m_entries, except the ones that will be replaced.
75  for (const auto& txiter : cluster) {
76  if (!m_to_be_replaced.contains(txiter->GetTx().GetHash())) {
77  auto [ancestor_count, ancestor_size, ancestor_fee] = mempool.CalculateAncestorData(*txiter);
78  auto [mapiter, success] = m_entries_by_txid.emplace(txiter->GetTx().GetHash(),
79  MiniMinerMempoolEntry{/*tx_in=*/txiter->GetSharedTx(),
80  /*vsize_self=*/txiter->GetTxSize(),
81  /*vsize_ancestor=*/int64_t(ancestor_size),
82  /*fee_self=*/txiter->GetModifiedFee(),
83  /*fee_ancestor=*/ancestor_fee});
84  m_entries.push_back(mapiter);
85  } else {
86  auto outpoints_it = m_requested_outpoints_by_txid.find(txiter->GetTx().GetHash());
87  if (outpoints_it != m_requested_outpoints_by_txid.end()) {
88  // This UTXO is the output of a to-be-replaced transaction. Bump fee is 0; spending
89  // this UTXO is impossible as it will no longer exist after the replacement.
90  for (const auto& outpoint : outpoints_it->second) {
91  m_bump_fees.emplace(outpoint, 0);
92  }
93  m_requested_outpoints_by_txid.erase(outpoints_it);
94  }
95  }
96  }
97 
98  // Build the m_descendant_set_by_txid cache.
99  for (const auto& txiter : cluster) {
100  const auto& txid = txiter->GetTx().GetHash();
101  // Cache descendants for future use. Unlike the real mempool, a descendant MiniMinerMempoolEntry
102  // will not exist without its ancestor MiniMinerMempoolEntry, so these sets won't be invalidated.
103  std::vector<MockEntryMap::iterator> cached_descendants;
104  const bool remove{m_to_be_replaced.contains(txid)};
105  CTxMemPool::setEntries descendants;
106  mempool.CalculateDescendants(txiter, descendants);
107  Assume(descendants.contains(txiter));
108  for (const auto& desc_txiter : descendants) {
109  const auto txid_desc = desc_txiter->GetTx().GetHash();
110  const bool remove_desc{m_to_be_replaced.contains(txid_desc)};
111  auto desc_it{m_entries_by_txid.find(txid_desc)};
112  Assume((desc_it == m_entries_by_txid.end()) == remove_desc);
113  if (remove) Assume(remove_desc);
114  // It's possible that remove=false but remove_desc=true.
115  if (!remove && !remove_desc) {
116  cached_descendants.push_back(desc_it);
117  }
118  }
119  if (remove) {
120  Assume(cached_descendants.empty());
121  } else {
122  m_descendant_set_by_txid.emplace(txid, cached_descendants);
123  }
124  }
125 
126  // Release the mempool lock; we now have all the information we need for a subset of the entries
127  // we care about. We will solely operate on the MiniMinerMempoolEntry map from now on.
128  Assume(m_in_block.empty());
129  Assume(m_requested_outpoints_by_txid.size() <= outpoints.size());
130  SanityCheck();
131 }
132 
133 MiniMiner::MiniMiner(const std::vector<MiniMinerMempoolEntry>& manual_entries,
134  const std::map<Txid, std::set<Txid>>& descendant_caches)
135 {
136  for (const auto& entry : manual_entries) {
137  const auto& txid = entry.GetTx().GetHash();
138  // We need to know the descendant set of every transaction.
139  if (!Assume(descendant_caches.contains(txid))) {
140  m_ready_to_calculate = false;
141  return;
142  }
143  // Just forward these args onto MiniMinerMempoolEntry
144  auto [mapiter, success] = m_entries_by_txid.emplace(txid, entry);
145  // Txids must be unique; this txid shouldn't already be an entry in m_entries_by_txid
146  if (Assume(success)) m_entries.push_back(mapiter);
147  }
148  // Descendant cache is already built, but we need to translate them to m_entries_by_txid iters.
149  for (const auto& [txid, desc_txids] : descendant_caches) {
150  // Descendant cache should include at least the tx itself.
151  if (!Assume(!desc_txids.empty())) {
152  m_ready_to_calculate = false;
153  return;
154  }
155  std::vector<MockEntryMap::iterator> descendants;
156  for (const auto& desc_txid : desc_txids) {
157  auto desc_it{m_entries_by_txid.find(desc_txid)};
158  // Descendants should only include transactions with corresponding entries.
159  if (!Assume(desc_it != m_entries_by_txid.end())) {
160  m_ready_to_calculate = false;
161  return;
162  } else {
163  descendants.emplace_back(desc_it);
164  }
165  }
166  m_descendant_set_by_txid.emplace(txid, descendants);
167  }
168  Assume(m_to_be_replaced.empty());
170  Assume(m_bump_fees.empty());
171  Assume(m_inclusion_order.empty());
172  SanityCheck();
173 }
174 
175 // Compare by min(ancestor feerate, individual feerate), then txid
176 //
177 // Under the ancestor-based mining approach, high-feerate children can pay for parents, but high-feerate
178 // parents do not incentive inclusion of their children. Therefore the mining algorithm only considers
179 // transactions for inclusion on basis of the minimum of their own feerate or their ancestor feerate.
181 {
182  template<typename I>
183  bool operator()(const I& a, const I& b) const {
184  auto min_feerate = [](const MiniMinerMempoolEntry& e) -> FeeFrac {
185  FeeFrac self_feerate(e.GetModifiedFee(), e.GetTxSize());
186  FeeFrac ancestor_feerate(e.GetModFeesWithAncestors(), e.GetSizeWithAncestors());
187  return std::min(ancestor_feerate, self_feerate);
188  };
189  FeeFrac a_feerate{min_feerate(a->second)};
190  FeeFrac b_feerate{min_feerate(b->second)};
191  if (a_feerate != b_feerate) {
192  return a_feerate > b_feerate;
193  }
194  // Use txid as tiebreaker for stable sorting
195  return a->first < b->first;
196  }
197 };
198 
199 void MiniMiner::DeleteAncestorPackage(const std::set<MockEntryMap::iterator, IteratorComparator>& ancestors)
200 {
201  Assume(ancestors.size() >= 1);
202  // "Mine" all transactions in this ancestor set.
203  for (auto& anc : ancestors) {
204  Assume(!m_in_block.contains(anc->first));
205  m_in_block.insert(anc->first);
206  m_total_fees += anc->second.GetModifiedFee();
207  m_total_vsize += anc->second.GetTxSize();
208  auto it = m_descendant_set_by_txid.find(anc->first);
209  // Each entry’s descendant set includes itself
210  Assume(it != m_descendant_set_by_txid.end());
211  for (auto& descendant : it->second) {
212  // If this fails, we must be double-deducting. Don't check fees because negative is possible.
213  Assume(descendant->second.GetSizeWithAncestors() >= anc->second.GetTxSize());
214  descendant->second.UpdateAncestorState(-anc->second.GetTxSize(), -anc->second.GetModifiedFee());
215  }
216  }
217  // Delete these entries.
218  for (const auto& anc : ancestors) {
219  m_descendant_set_by_txid.erase(anc->first);
220  // The above loop should have deducted each ancestor's size and fees from each of their
221  // respective descendants exactly once.
222  Assume(anc->second.GetModFeesWithAncestors() == 0);
223  Assume(anc->second.GetSizeWithAncestors() == 0);
224  auto vec_it = std::find(m_entries.begin(), m_entries.end(), anc);
225  Assume(vec_it != m_entries.end());
226  m_entries.erase(vec_it);
227  m_entries_by_txid.erase(anc);
228  }
229 }
230 
232 {
233  // m_entries, m_entries_by_txid, and m_descendant_set_by_txid all same size
234  Assume(m_entries.size() == m_entries_by_txid.size());
235  Assume(m_entries.size() == m_descendant_set_by_txid.size());
236  // Cached ancestor values should be at least as large as the transaction's own size
237  Assume(std::all_of(m_entries.begin(), m_entries.end(), [](const auto& entry) {
238  return entry->second.GetSizeWithAncestors() >= entry->second.GetTxSize();}));
239  // None of the entries should be to-be-replaced transactions
240  Assume(std::all_of(m_to_be_replaced.begin(), m_to_be_replaced.end(),
241  [&](const auto& txid){ return !m_entries_by_txid.contains(txid); }));
242 }
243 
244 void MiniMiner::BuildMockTemplate(std::optional<CFeeRate> target_feerate)
245 {
246  const auto num_txns{m_entries_by_txid.size()};
247  uint32_t sequence_num{0};
248  while (!m_entries_by_txid.empty()) {
249  // Sort again, since transaction removal may change some m_entries' ancestor feerates.
250  std::sort(m_entries.begin(), m_entries.end(), AncestorFeerateComparator());
251 
252  // Pick highest ancestor feerate entry.
253  auto best_iter = m_entries.begin();
254  Assume(best_iter != m_entries.end());
255  const auto ancestor_package_size = (*best_iter)->second.GetSizeWithAncestors();
256  const auto ancestor_package_fee = (*best_iter)->second.GetModFeesWithAncestors();
257  // Stop here. Everything that didn't "make it into the block" has bumpfee.
258  if (target_feerate.has_value() &&
259  ancestor_package_fee < target_feerate->GetFee(ancestor_package_size)) {
260  break;
261  }
262 
263  // Calculate ancestors on the fly. This lookup should be fairly cheap, and ancestor sets
264  // change at every iteration, so this is more efficient than maintaining a cache.
265  std::set<MockEntryMap::iterator, IteratorComparator> ancestors;
266  {
267  std::set<MockEntryMap::iterator, IteratorComparator> to_process;
268  to_process.insert(*best_iter);
269  while (!to_process.empty()) {
270  auto iter = to_process.begin();
271  Assume(iter != to_process.end());
272  ancestors.insert(*iter);
273  for (const auto& input : (*iter)->second.GetTx().vin) {
274  if (auto parent_it{m_entries_by_txid.find(input.prevout.hash)}; parent_it != m_entries_by_txid.end()) {
275  if (!ancestors.contains(parent_it)) {
276  to_process.insert(parent_it);
277  }
278  }
279  }
280  to_process.erase(iter);
281  }
282  }
283  // Track the order in which transactions were selected.
284  for (const auto& ancestor : ancestors) {
285  m_inclusion_order.emplace(ancestor->first, sequence_num);
286  }
287  DeleteAncestorPackage(ancestors);
288  SanityCheck();
289  ++sequence_num;
290  }
291  if (!target_feerate.has_value()) {
292  Assume(m_in_block.size() == num_txns);
293  } else {
294  Assume(m_in_block.empty() || m_total_fees >= target_feerate->GetFee(m_total_vsize));
295  }
296  Assume(m_in_block.empty() || sequence_num > 0);
297  Assume(m_in_block.size() == m_inclusion_order.size());
298  // Do not try to continue building the block template with a different feerate.
299  m_ready_to_calculate = false;
300 }
301 
302 
303 std::map<Txid, uint32_t> MiniMiner::Linearize()
304 {
305  BuildMockTemplate(std::nullopt);
306  return m_inclusion_order;
307 }
308 
309 std::map<COutPoint, CAmount> MiniMiner::CalculateBumpFees(const CFeeRate& target_feerate)
310 {
311  if (!m_ready_to_calculate) return {};
312  // Build a block template until the target feerate is hit.
313  BuildMockTemplate(target_feerate);
314 
315  // Each transaction that "made it into the block" has a bumpfee of 0, i.e. they are part of an
316  // ancestor package with at least the target feerate and don't need to be bumped.
317  for (const auto& txid : m_in_block) {
318  // Not all of the block transactions were necessarily requested.
319  auto it = m_requested_outpoints_by_txid.find(txid);
320  if (it != m_requested_outpoints_by_txid.end()) {
321  for (const auto& outpoint : it->second) {
322  m_bump_fees.emplace(outpoint, 0);
323  }
325  }
326  }
327 
328  // A transactions and its ancestors will only be picked into a block when
329  // both the ancestor set feerate and the individual feerate meet the target
330  // feerate.
331  //
332  // We had to convince ourselves that after running the mini miner and
333  // picking all eligible transactions into our MockBlockTemplate, there
334  // could still be transactions remaining that have a lower individual
335  // feerate than their ancestor feerate. So here is an example:
336  //
337  // ┌─────────────────┐
338  // │ │
339  // │ Grandparent │
340  // │ 1700 vB │
341  // │ 1700 sats │ Target feerate: 10 s/vB
342  // │ 1 s/vB │ GP Ancestor Set Feerate (ASFR): 1 s/vB
343  // │ │ P1_ASFR: 9.84 s/vB
344  // └──────▲───▲──────┘ P2_ASFR: 2.47 s/vB
345  // │ │ C_ASFR: 10.27 s/vB
346  // ┌───────────────┐ │ │ ┌──────────────┐
347  // │ ├────┘ └────┤ │ ⇒ C_FR < TFR < C_ASFR
348  // │ Parent 1 │ │ Parent 2 │
349  // │ 200 vB │ │ 200 vB │
350  // │ 17000 sats │ │ 3000 sats │
351  // │ 85 s/vB │ │ 15 s/vB │
352  // │ │ │ │
353  // └───────────▲───┘ └───▲──────────┘
354  // │ │
355  // │ ┌───────────┐ │
356  // └────┤ ├────┘
357  // │ Child │
358  // │ 100 vB │
359  // │ 900 sats │
360  // │ 9 s/vB │
361  // │ │
362  // └───────────┘
363  //
364  // We therefore calculate both the bump fee that is necessary to elevate
365  // the individual transaction to the target feerate:
366  // target_feerate × tx_size - tx_fees
367  // and the bump fee that is necessary to bump the entire ancestor set to
368  // the target feerate:
369  // target_feerate × ancestor_set_size - ancestor_set_fees
370  // By picking the maximum from the two, we ensure that a transaction meets
371  // both criteria.
372  for (const auto& [txid, outpoints] : m_requested_outpoints_by_txid) {
373  auto it = m_entries_by_txid.find(txid);
374  Assume(it != m_entries_by_txid.end());
375  if (it != m_entries_by_txid.end()) {
376  Assume(target_feerate.GetFee(it->second.GetSizeWithAncestors()) > std::min(it->second.GetModifiedFee(), it->second.GetModFeesWithAncestors()));
377  CAmount bump_fee_with_ancestors = target_feerate.GetFee(it->second.GetSizeWithAncestors()) - it->second.GetModFeesWithAncestors();
378  CAmount bump_fee_individual = target_feerate.GetFee(it->second.GetTxSize()) - it->second.GetModifiedFee();
379  const CAmount bump_fee{std::max(bump_fee_with_ancestors, bump_fee_individual)};
380  Assume(bump_fee >= 0);
381  for (const auto& outpoint : outpoints) {
382  m_bump_fees.emplace(outpoint, bump_fee);
383  }
384  }
385  }
386  return m_bump_fees;
387 }
388 
389 std::optional<CAmount> MiniMiner::CalculateTotalBumpFees(const CFeeRate& target_feerate)
390 {
391  if (!m_ready_to_calculate) return std::nullopt;
392  // Build a block template until the target feerate is hit.
393  BuildMockTemplate(target_feerate);
394 
395  // All remaining ancestors that are not part of m_in_block must be bumped, but no other relatives
396  std::set<MockEntryMap::iterator, IteratorComparator> ancestors;
397  std::set<MockEntryMap::iterator, IteratorComparator> to_process;
398  for (const auto& [txid, outpoints] : m_requested_outpoints_by_txid) {
399  // Skip any ancestors that already have a miner score higher than the target feerate
400  // (already "made it" into the block)
401  if (m_in_block.contains(txid)) continue;
402  auto iter = m_entries_by_txid.find(txid);
403  if (iter == m_entries_by_txid.end()) continue;
404  to_process.insert(iter);
405  ancestors.insert(iter);
406  }
407 
408  std::set<Txid> has_been_processed;
409  while (!to_process.empty()) {
410  auto iter = to_process.begin();
411  const CTransaction& tx = (*iter)->second.GetTx();
412  for (const auto& input : tx.vin) {
413  if (auto parent_it{m_entries_by_txid.find(input.prevout.hash)}; parent_it != m_entries_by_txid.end()) {
414  if (!has_been_processed.contains(input.prevout.hash)) {
415  to_process.insert(parent_it);
416  }
417  ancestors.insert(parent_it);
418  }
419  }
420  has_been_processed.insert(tx.GetHash());
421  to_process.erase(iter);
422  }
423  const auto ancestor_package_size = std::accumulate(ancestors.cbegin(), ancestors.cend(), int64_t{0},
424  [](int64_t sum, const auto it) {return sum + it->second.GetTxSize();});
425  const auto ancestor_package_fee = std::accumulate(ancestors.cbegin(), ancestors.cend(), CAmount{0},
426  [](CAmount sum, const auto it) {return sum + it->second.GetModifiedFee();});
427  return target_feerate.GetFee(ancestor_package_size) - ancestor_package_fee;
428 }
429 } // namespace node
std::set< Txid > m_in_block
Definition: mini_miner.h:101
std::optional< CAmount > CalculateTotalBumpFees(const CFeeRate &target_feerate)
Construct a new block template and, calculate the cost of bumping all transactions that did not make ...
Definition: mini_miner.cpp:389
std::map< Txid, uint32_t > m_inclusion_order
Definition: mini_miner.h:96
MiniMiner(const CTxMemPool &mempool, const std::vector< COutPoint > &outpoints)
Constructor that takes a list of outpoints that may or may not belong to transactions in the mempool...
Definition: mini_miner.cpp:24
void CalculateDescendants(txiter it, setEntries &setDescendants) const EXCLUSIVE_LOCKS_REQUIRED(cs)
Populate setDescendants with all in-mempool descendants of given transaction.
Definition: txmempool.cpp:309
std::vector< txiter > GatherClusters(const std::vector< Txid > &txids) const EXCLUSIVE_LOCKS_REQUIRED(cs)
Collect the entire cluster of connected transactions for each transaction in txids.
Definition: txmempool.cpp:968
CAmount m_total_fees
Definition: mini_miner.h:104
std::set< txiter, CompareIteratorByHash > setEntries
Definition: txmempool.h:268
void SanityCheck() const
Perform some checks.
Definition: mini_miner.cpp:231
std::map< Txid, std::vector< COutPoint > > m_requested_outpoints_by_txid
Definition: mini_miner.h:91
std::map< Txid, uint32_t > Linearize()
Construct a new block template with all of the transactions and calculate the order in which they are...
Definition: mini_miner.cpp:303
std::optional< txiter > GetIter(const Txid &txid) const EXCLUSIVE_LOCKS_REQUIRED(cs)
Returns an iterator to the given hash, if found.
Definition: txmempool.cpp:695
std::tuple< size_t, size_t, CAmount > CalculateAncestorData(const CTxMemPoolEntry &entry) const EXCLUSIVE_LOCKS_REQUIRED(cs)
Definition: txmempool.cpp:913
void BuildMockTemplate(std::optional< CFeeRate > target_feerate)
Build a block template until the target feerate is hit.
Definition: mini_miner.cpp:244
std::set< Txid > m_to_be_replaced
Definition: mini_miner.h:86
const std::vector< CTxIn > vin
Definition: transaction.h:291
volatile double sum
Definition: examples.cpp:10
int32_t m_total_vsize
Definition: mini_miner.h:105
int64_t CAmount
Amount in satoshis (Can be negative)
Definition: amount.h:12
std::map< COutPoint, CAmount > CalculateBumpFees(const CFeeRate &target_feerate)
Construct a new block template and, for each outpoint corresponding to a transaction that did not mak...
Definition: mini_miner.cpp:309
std::map< Txid, std::vector< MockEntryMap::iterator > > m_descendant_set_by_txid
Map of txid to its descendants.
Definition: mini_miner.h:115
#define LOCK(cs)
Definition: sync.h:258
std::map< COutPoint, CAmount > m_bump_fees
Definition: mini_miner.h:98
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:689
#define Assume(val)
Assume is the identity function.
Definition: check.h:125
bool exists(const Txid &txid) const
Definition: txmempool.h:503
Definition: messages.h:21
Data structure storing a fee and size, ordered by increasing fee/size.
Definition: feefrac.h:39
CTxMemPool stores valid-according-to-the-current-best-chain transactions that may be included in the ...
Definition: txmempool.h:186
bool m_ready_to_calculate
Definition: mini_miner.h:82
Definition: mini_miner.h:25
std::vector< MockEntryMap::iterator > m_entries
Vector of entries, can be sorted by ancestor feerate.
Definition: mini_miner.h:112
Fee rate in satoshis per virtualbyte: CAmount / vB the feerate is represented internally as FeeFrac...
Definition: feerate.h:31
std::map< Txid, MiniMinerMempoolEntry > m_entries_by_txid
Main data structure holding the entries, can be indexed by txid.
Definition: mini_miner.h:108
The basic transaction that is broadcasted on the network and contained in blocks. ...
Definition: transaction.h:280
CAmount GetFee(int32_t virtual_bytes) const
Return the fee in satoshis for the given vsize in vbytes.
Definition: feerate.cpp:20
void DeleteAncestorPackage(const std::set< MockEntryMap::iterator, IteratorComparator > &ancestors)
Consider this ancestor package "mined" so remove all these entries from our data structures.
Definition: mini_miner.cpp:199
bool operator()(const I &a, const I &b) const
Definition: mini_miner.cpp:183
int64_t GetTxSize() const
Definition: mini_miner.h:51
RecursiveMutex cs
This mutex needs to be locked when accessing mapTx or other members that are guarded by it...
Definition: txmempool.h:260
const Txid & GetHash() const LIFETIMEBOUND
Definition: transaction.h:328