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108 lines
3.9 KiB
C++
108 lines
3.9 KiB
C++
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// Copyright (c) 2021 The Bitcoin Core developers
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// Distributed under the MIT software license, see the accompanying
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// file COPYING or http://www.opensource.org/licenses/mit-license.php.
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#include <txorphanage.h>
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#include <consensus/validation.h>
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#include <logging.h>
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#include <policy/policy.h>
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#include <cassert>
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/** Minimum time between orphan transactions expire time checks in seconds */
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static constexpr int64_t ORPHAN_TX_EXPIRE_INTERVAL = 5 * 60;
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RecursiveMutex g_cs_orphans;
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std::map<uint256, COrphanTx> mapOrphanTransactions GUARDED_BY(g_cs_orphans);
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std::map<uint256, std::map<uint256, COrphanTx>::iterator> g_orphans_by_wtxid GUARDED_BY(g_cs_orphans);
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std::map<COutPoint, std::set<std::map<uint256, COrphanTx>::iterator, IteratorComparator>> mapOrphanTransactionsByPrev GUARDED_BY(g_cs_orphans);
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std::vector<std::map<uint256, COrphanTx>::iterator> g_orphan_list GUARDED_BY(g_cs_orphans);
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int EraseOrphanTx(uint256 hash)
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{
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std::map<uint256, COrphanTx>::iterator it = mapOrphanTransactions.find(hash);
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if (it == mapOrphanTransactions.end())
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return 0;
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for (const CTxIn& txin : it->second.tx->vin)
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{
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auto itPrev = mapOrphanTransactionsByPrev.find(txin.prevout);
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if (itPrev == mapOrphanTransactionsByPrev.end())
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continue;
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itPrev->second.erase(it);
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if (itPrev->second.empty())
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mapOrphanTransactionsByPrev.erase(itPrev);
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}
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size_t old_pos = it->second.list_pos;
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assert(g_orphan_list[old_pos] == it);
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if (old_pos + 1 != g_orphan_list.size()) {
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// Unless we're deleting the last entry in g_orphan_list, move the last
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// entry to the position we're deleting.
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auto it_last = g_orphan_list.back();
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g_orphan_list[old_pos] = it_last;
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it_last->second.list_pos = old_pos;
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}
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g_orphan_list.pop_back();
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g_orphans_by_wtxid.erase(it->second.tx->GetWitnessHash());
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mapOrphanTransactions.erase(it);
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return 1;
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}
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void EraseOrphansFor(NodeId peer)
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{
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LOCK(g_cs_orphans);
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int nErased = 0;
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std::map<uint256, COrphanTx>::iterator iter = mapOrphanTransactions.begin();
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while (iter != mapOrphanTransactions.end())
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{
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std::map<uint256, COrphanTx>::iterator maybeErase = iter++; // increment to avoid iterator becoming invalid
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if (maybeErase->second.fromPeer == peer)
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{
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nErased += EraseOrphanTx(maybeErase->second.tx->GetHash());
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}
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}
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if (nErased > 0) LogPrint(BCLog::MEMPOOL, "Erased %d orphan tx from peer=%d\n", nErased, peer);
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}
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unsigned int LimitOrphanTxSize(unsigned int nMaxOrphans)
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{
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LOCK(g_cs_orphans);
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unsigned int nEvicted = 0;
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static int64_t nNextSweep;
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int64_t nNow = GetTime();
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if (nNextSweep <= nNow) {
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// Sweep out expired orphan pool entries:
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int nErased = 0;
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int64_t nMinExpTime = nNow + ORPHAN_TX_EXPIRE_TIME - ORPHAN_TX_EXPIRE_INTERVAL;
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std::map<uint256, COrphanTx>::iterator iter = mapOrphanTransactions.begin();
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while (iter != mapOrphanTransactions.end())
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{
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std::map<uint256, COrphanTx>::iterator maybeErase = iter++;
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if (maybeErase->second.nTimeExpire <= nNow) {
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nErased += EraseOrphanTx(maybeErase->second.tx->GetHash());
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} else {
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nMinExpTime = std::min(maybeErase->second.nTimeExpire, nMinExpTime);
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}
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}
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// Sweep again 5 minutes after the next entry that expires in order to batch the linear scan.
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nNextSweep = nMinExpTime + ORPHAN_TX_EXPIRE_INTERVAL;
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if (nErased > 0) LogPrint(BCLog::MEMPOOL, "Erased %d orphan tx due to expiration\n", nErased);
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}
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FastRandomContext rng;
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while (mapOrphanTransactions.size() > nMaxOrphans)
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{
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// Evict a random orphan:
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size_t randompos = rng.randrange(g_orphan_list.size());
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EraseOrphanTx(g_orphan_list[randompos]->first);
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++nEvicted;
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}
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return nEvicted;
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}
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