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582 lines
24 KiB
C++
582 lines
24 KiB
C++
// Copyright (c) 2009-2010 Satoshi Nakamoto
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// Copyright (c) 2009-2022 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 <node/miner.h>
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#include <chain.h>
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#include <chainparams.h>
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#include <coins.h>
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#include <common/args.h>
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#include <consensus/amount.h>
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#include <consensus/consensus.h>
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#include <consensus/merkle.h>
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#include <consensus/tx_verify.h>
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#include <consensus/validation.h>
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#include <deploymentstatus.h>
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#include <logging.h>
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#include <node/context.h>
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#include <node/kernel_notifications.h>
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#include <policy/feerate.h>
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#include <policy/policy.h>
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#include <pow.h>
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#include <primitives/transaction.h>
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#include <util/moneystr.h>
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#include <util/signalinterrupt.h>
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#include <util/time.h>
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#include <validation.h>
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#include <algorithm>
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#include <utility>
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namespace node {
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int64_t GetMinimumTime(const CBlockIndex* pindexPrev, const int64_t difficulty_adjustment_interval)
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{
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int64_t min_time{pindexPrev->GetMedianTimePast() + 1};
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// Height of block to be mined.
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const int height{pindexPrev->nHeight + 1};
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// Account for BIP94 timewarp rule on all networks. This makes future
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// activation safer.
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if (height % difficulty_adjustment_interval == 0) {
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min_time = std::max<int64_t>(min_time, pindexPrev->GetBlockTime() - MAX_TIMEWARP);
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}
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return min_time;
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}
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int64_t UpdateTime(CBlockHeader* pblock, const Consensus::Params& consensusParams, const CBlockIndex* pindexPrev)
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{
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int64_t nOldTime = pblock->nTime;
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int64_t nNewTime{std::max<int64_t>(GetMinimumTime(pindexPrev, consensusParams.DifficultyAdjustmentInterval()),
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TicksSinceEpoch<std::chrono::seconds>(NodeClock::now()))};
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if (nOldTime < nNewTime) {
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pblock->nTime = nNewTime;
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}
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// Updating time can change work required on testnet:
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if (consensusParams.fPowAllowMinDifficultyBlocks) {
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pblock->nBits = GetNextWorkRequired(pindexPrev, pblock, consensusParams);
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}
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return nNewTime - nOldTime;
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}
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void RegenerateCommitments(CBlock& block, ChainstateManager& chainman)
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{
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CMutableTransaction tx{*block.vtx.at(0)};
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tx.vout.erase(tx.vout.begin() + GetWitnessCommitmentIndex(block));
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block.vtx.at(0) = MakeTransactionRef(tx);
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const CBlockIndex* prev_block = WITH_LOCK(::cs_main, return chainman.m_blockman.LookupBlockIndex(block.hashPrevBlock));
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chainman.GenerateCoinbaseCommitment(block, prev_block);
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block.hashMerkleRoot = BlockMerkleRoot(block);
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}
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static BlockAssembler::Options ClampOptions(BlockAssembler::Options options)
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{
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options.block_reserved_weight = std::clamp<size_t>(options.block_reserved_weight, MINIMUM_BLOCK_RESERVED_WEIGHT, MAX_BLOCK_WEIGHT);
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options.coinbase_output_max_additional_sigops = std::clamp<size_t>(options.coinbase_output_max_additional_sigops, 0, MAX_BLOCK_SIGOPS_COST);
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// Limit weight to between block_reserved_weight and MAX_BLOCK_WEIGHT for sanity:
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// block_reserved_weight can safely exceed -blockmaxweight, but the rest of the block template will be empty.
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options.nBlockMaxWeight = std::clamp<size_t>(options.nBlockMaxWeight, options.block_reserved_weight, MAX_BLOCK_WEIGHT);
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return options;
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}
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BlockAssembler::BlockAssembler(Chainstate& chainstate, const CTxMemPool* mempool, const Options& options)
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: chainparams{chainstate.m_chainman.GetParams()},
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m_mempool{options.use_mempool ? mempool : nullptr},
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m_chainstate{chainstate},
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m_options{ClampOptions(options)}
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{
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}
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void ApplyArgsManOptions(const ArgsManager& args, BlockAssembler::Options& options)
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{
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// Block resource limits
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options.nBlockMaxWeight = args.GetIntArg("-blockmaxweight", options.nBlockMaxWeight);
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if (const auto blockmintxfee{args.GetArg("-blockmintxfee")}) {
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if (const auto parsed{ParseMoney(*blockmintxfee)}) options.blockMinFeeRate = CFeeRate{*parsed};
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}
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options.print_modified_fee = args.GetBoolArg("-printpriority", options.print_modified_fee);
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options.block_reserved_weight = args.GetIntArg("-blockreservedweight", options.block_reserved_weight);
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}
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void BlockAssembler::resetBlock()
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{
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inBlock.clear();
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// Reserve space for fixed-size block header, txs count, and coinbase tx.
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nBlockWeight = m_options.block_reserved_weight;
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nBlockSigOpsCost = m_options.coinbase_output_max_additional_sigops;
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// These counters do not include coinbase tx
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nBlockTx = 0;
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nFees = 0;
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}
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std::unique_ptr<CBlockTemplate> BlockAssembler::CreateNewBlock()
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{
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const auto time_start{SteadyClock::now()};
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resetBlock();
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pblocktemplate.reset(new CBlockTemplate());
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CBlock* const pblock = &pblocktemplate->block; // pointer for convenience
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// Add dummy coinbase tx as first transaction. It is skipped by the
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// getblocktemplate RPC and mining interface consumers must not use it.
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pblock->vtx.emplace_back();
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LOCK(::cs_main);
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CBlockIndex* pindexPrev = m_chainstate.m_chain.Tip();
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assert(pindexPrev != nullptr);
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nHeight = pindexPrev->nHeight + 1;
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pblock->nVersion = m_chainstate.m_chainman.m_versionbitscache.ComputeBlockVersion(pindexPrev, chainparams.GetConsensus());
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// -regtest only: allow overriding block.nVersion with
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// -blockversion=N to test forking scenarios
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if (chainparams.MineBlocksOnDemand()) {
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pblock->nVersion = gArgs.GetIntArg("-blockversion", pblock->nVersion);
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}
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pblock->nTime = TicksSinceEpoch<std::chrono::seconds>(NodeClock::now());
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m_lock_time_cutoff = pindexPrev->GetMedianTimePast();
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int nPackagesSelected = 0;
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int nDescendantsUpdated = 0;
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if (m_mempool) {
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addPackageTxs(nPackagesSelected, nDescendantsUpdated);
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}
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const auto time_1{SteadyClock::now()};
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m_last_block_num_txs = nBlockTx;
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m_last_block_weight = nBlockWeight;
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// Create coinbase transaction.
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CMutableTransaction coinbaseTx;
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coinbaseTx.vin.resize(1);
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coinbaseTx.vin[0].prevout.SetNull();
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coinbaseTx.vin[0].nSequence = CTxIn::MAX_SEQUENCE_NONFINAL; // Make sure timelock is enforced.
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coinbaseTx.vout.resize(1);
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coinbaseTx.vout[0].scriptPubKey = m_options.coinbase_output_script;
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coinbaseTx.vout[0].nValue = nFees + GetBlockSubsidy(nHeight, chainparams.GetConsensus());
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coinbaseTx.vin[0].scriptSig = CScript() << nHeight << OP_0;
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Assert(nHeight > 0);
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coinbaseTx.nLockTime = static_cast<uint32_t>(nHeight - 1);
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pblock->vtx[0] = MakeTransactionRef(std::move(coinbaseTx));
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pblocktemplate->vchCoinbaseCommitment = m_chainstate.m_chainman.GenerateCoinbaseCommitment(*pblock, pindexPrev);
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LogPrintf("CreateNewBlock(): block weight: %u txs: %u fees: %ld sigops %d\n", GetBlockWeight(*pblock), nBlockTx, nFees, nBlockSigOpsCost);
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// Fill in header
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pblock->hashPrevBlock = pindexPrev->GetBlockHash();
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UpdateTime(pblock, chainparams.GetConsensus(), pindexPrev);
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pblock->nBits = GetNextWorkRequired(pindexPrev, pblock, chainparams.GetConsensus());
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pblock->nNonce = 0;
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if (m_options.test_block_validity) {
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if (BlockValidationState state{TestBlockValidity(m_chainstate, *pblock, /*check_pow=*/false, /*check_merkle_root=*/false)}; !state.IsValid()) {
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throw std::runtime_error(strprintf("TestBlockValidity failed: %s", state.ToString()));
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}
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}
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const auto time_2{SteadyClock::now()};
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LogDebug(BCLog::BENCH, "CreateNewBlock() packages: %.2fms (%d packages, %d updated descendants), validity: %.2fms (total %.2fms)\n",
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Ticks<MillisecondsDouble>(time_1 - time_start), nPackagesSelected, nDescendantsUpdated,
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Ticks<MillisecondsDouble>(time_2 - time_1),
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Ticks<MillisecondsDouble>(time_2 - time_start));
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return std::move(pblocktemplate);
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}
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void BlockAssembler::onlyUnconfirmed(CTxMemPool::setEntries& testSet)
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{
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for (CTxMemPool::setEntries::iterator iit = testSet.begin(); iit != testSet.end(); ) {
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// Only test txs not already in the block
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if (inBlock.count((*iit)->GetSharedTx()->GetHash())) {
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testSet.erase(iit++);
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} else {
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iit++;
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}
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}
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}
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bool BlockAssembler::TestPackage(uint64_t packageSize, int64_t packageSigOpsCost) const
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{
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// TODO: switch to weight-based accounting for packages instead of vsize-based accounting.
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if (nBlockWeight + WITNESS_SCALE_FACTOR * packageSize >= m_options.nBlockMaxWeight) {
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return false;
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}
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if (nBlockSigOpsCost + packageSigOpsCost >= MAX_BLOCK_SIGOPS_COST) {
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return false;
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}
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return true;
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}
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// Perform transaction-level checks before adding to block:
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// - transaction finality (locktime)
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bool BlockAssembler::TestPackageTransactions(const CTxMemPool::setEntries& package) const
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{
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for (CTxMemPool::txiter it : package) {
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if (!IsFinalTx(it->GetTx(), nHeight, m_lock_time_cutoff)) {
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return false;
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}
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}
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return true;
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}
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void BlockAssembler::AddToBlock(CTxMemPool::txiter iter)
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{
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pblocktemplate->block.vtx.emplace_back(iter->GetSharedTx());
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pblocktemplate->vTxFees.push_back(iter->GetFee());
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pblocktemplate->vTxSigOpsCost.push_back(iter->GetSigOpCost());
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nBlockWeight += iter->GetTxWeight();
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++nBlockTx;
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nBlockSigOpsCost += iter->GetSigOpCost();
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nFees += iter->GetFee();
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inBlock.insert(iter->GetSharedTx()->GetHash());
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if (m_options.print_modified_fee) {
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LogPrintf("fee rate %s txid %s\n",
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CFeeRate(iter->GetModifiedFee(), iter->GetTxSize()).ToString(),
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iter->GetTx().GetHash().ToString());
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}
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}
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/** Add descendants of given transactions to mapModifiedTx with ancestor
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* state updated assuming given transactions are inBlock. Returns number
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* of updated descendants. */
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static int UpdatePackagesForAdded(const CTxMemPool& mempool,
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const CTxMemPool::setEntries& alreadyAdded,
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indexed_modified_transaction_set& mapModifiedTx) EXCLUSIVE_LOCKS_REQUIRED(mempool.cs)
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{
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AssertLockHeld(mempool.cs);
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int nDescendantsUpdated = 0;
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for (CTxMemPool::txiter it : alreadyAdded) {
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CTxMemPool::setEntries descendants;
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mempool.CalculateDescendants(it, descendants);
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// Insert all descendants (not yet in block) into the modified set
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for (CTxMemPool::txiter desc : descendants) {
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if (alreadyAdded.count(desc)) {
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continue;
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}
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++nDescendantsUpdated;
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modtxiter mit = mapModifiedTx.find(desc);
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if (mit == mapModifiedTx.end()) {
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CTxMemPoolModifiedEntry modEntry(desc);
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mit = mapModifiedTx.insert(modEntry).first;
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}
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mapModifiedTx.modify(mit, update_for_parent_inclusion(it));
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}
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}
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return nDescendantsUpdated;
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}
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void BlockAssembler::SortForBlock(const CTxMemPool::setEntries& package, std::vector<CTxMemPool::txiter>& sortedEntries)
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{
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// Sort package by ancestor count
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// If a transaction A depends on transaction B, then A's ancestor count
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// must be greater than B's. So this is sufficient to validly order the
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// transactions for block inclusion.
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sortedEntries.clear();
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sortedEntries.insert(sortedEntries.begin(), package.begin(), package.end());
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std::sort(sortedEntries.begin(), sortedEntries.end(), CompareTxIterByAncestorCount());
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}
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// This transaction selection algorithm orders the mempool based
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// on feerate of a transaction including all unconfirmed ancestors.
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// Since we don't remove transactions from the mempool as we select them
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// for block inclusion, we need an alternate method of updating the feerate
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// of a transaction with its not-yet-selected ancestors as we go.
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// This is accomplished by walking the in-mempool descendants of selected
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// transactions and storing a temporary modified state in mapModifiedTxs.
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// Each time through the loop, we compare the best transaction in
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// mapModifiedTxs with the next transaction in the mempool to decide what
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// transaction package to work on next.
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void BlockAssembler::addPackageTxs(int& nPackagesSelected, int& nDescendantsUpdated)
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{
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const auto& mempool{*Assert(m_mempool)};
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LOCK(mempool.cs);
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// mapModifiedTx will store sorted packages after they are modified
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// because some of their txs are already in the block
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indexed_modified_transaction_set mapModifiedTx;
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// Keep track of entries that failed inclusion, to avoid duplicate work
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std::set<Txid> failedTx;
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CTxMemPool::indexed_transaction_set::index<ancestor_score>::type::iterator mi = mempool.mapTx.get<ancestor_score>().begin();
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CTxMemPool::txiter iter;
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// Limit the number of attempts to add transactions to the block when it is
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// close to full; this is just a simple heuristic to finish quickly if the
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// mempool has a lot of entries.
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const int64_t MAX_CONSECUTIVE_FAILURES = 1000;
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constexpr int32_t BLOCK_FULL_ENOUGH_WEIGHT_DELTA = 4000;
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int64_t nConsecutiveFailed = 0;
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while (mi != mempool.mapTx.get<ancestor_score>().end() || !mapModifiedTx.empty()) {
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// First try to find a new transaction in mapTx to evaluate.
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//
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// Skip entries in mapTx that are already in a block or are present
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// in mapModifiedTx (which implies that the mapTx ancestor state is
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// stale due to ancestor inclusion in the block)
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// Also skip transactions that we've already failed to add. This can happen if
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// we consider a transaction in mapModifiedTx and it fails: we can then
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// potentially consider it again while walking mapTx. It's currently
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// guaranteed to fail again, but as a belt-and-suspenders check we put it in
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// failedTx and avoid re-evaluation, since the re-evaluation would be using
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// cached size/sigops/fee values that are not actually correct.
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/** Return true if given transaction from mapTx has already been evaluated,
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* or if the transaction's cached data in mapTx is incorrect. */
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if (mi != mempool.mapTx.get<ancestor_score>().end()) {
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auto it = mempool.mapTx.project<0>(mi);
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assert(it != mempool.mapTx.end());
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if (mapModifiedTx.count(it) || inBlock.count(it->GetSharedTx()->GetHash()) || failedTx.count(it->GetSharedTx()->GetHash())) {
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++mi;
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continue;
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}
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}
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// Now that mi is not stale, determine which transaction to evaluate:
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// the next entry from mapTx, or the best from mapModifiedTx?
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bool fUsingModified = false;
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modtxscoreiter modit = mapModifiedTx.get<ancestor_score>().begin();
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if (mi == mempool.mapTx.get<ancestor_score>().end()) {
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// We're out of entries in mapTx; use the entry from mapModifiedTx
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iter = modit->iter;
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fUsingModified = true;
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} else {
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// Try to compare the mapTx entry to the mapModifiedTx entry
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iter = mempool.mapTx.project<0>(mi);
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if (modit != mapModifiedTx.get<ancestor_score>().end() &&
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CompareTxMemPoolEntryByAncestorFee()(*modit, CTxMemPoolModifiedEntry(iter))) {
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// The best entry in mapModifiedTx has higher score
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// than the one from mapTx.
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// Switch which transaction (package) to consider
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iter = modit->iter;
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fUsingModified = true;
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} else {
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// Either no entry in mapModifiedTx, or it's worse than mapTx.
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// Increment mi for the next loop iteration.
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++mi;
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}
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}
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// We skip mapTx entries that are inBlock, and mapModifiedTx shouldn't
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// contain anything that is inBlock.
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assert(!inBlock.count(iter->GetSharedTx()->GetHash()));
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uint64_t packageSize = iter->GetSizeWithAncestors();
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CAmount packageFees = iter->GetModFeesWithAncestors();
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int64_t packageSigOpsCost = iter->GetSigOpCostWithAncestors();
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if (fUsingModified) {
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packageSize = modit->nSizeWithAncestors;
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packageFees = modit->nModFeesWithAncestors;
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packageSigOpsCost = modit->nSigOpCostWithAncestors;
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}
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if (packageFees < m_options.blockMinFeeRate.GetFee(packageSize)) {
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// Everything else we might consider has a lower fee rate
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return;
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}
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if (!TestPackage(packageSize, packageSigOpsCost)) {
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if (fUsingModified) {
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// Since we always look at the best entry in mapModifiedTx,
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// we must erase failed entries so that we can consider the
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// next best entry on the next loop iteration
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mapModifiedTx.get<ancestor_score>().erase(modit);
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failedTx.insert(iter->GetSharedTx()->GetHash());
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}
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++nConsecutiveFailed;
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if (nConsecutiveFailed > MAX_CONSECUTIVE_FAILURES && nBlockWeight +
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BLOCK_FULL_ENOUGH_WEIGHT_DELTA > m_options.nBlockMaxWeight) {
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// Give up if we're close to full and haven't succeeded in a while
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break;
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}
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continue;
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}
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auto ancestors{mempool.AssumeCalculateMemPoolAncestors(__func__, *iter, CTxMemPool::Limits::NoLimits(), /*fSearchForParents=*/false)};
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onlyUnconfirmed(ancestors);
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ancestors.insert(iter);
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// Test if all tx's are Final
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if (!TestPackageTransactions(ancestors)) {
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if (fUsingModified) {
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mapModifiedTx.get<ancestor_score>().erase(modit);
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failedTx.insert(iter->GetSharedTx()->GetHash());
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}
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continue;
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}
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// This transaction will make it in; reset the failed counter.
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nConsecutiveFailed = 0;
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// Package can be added. Sort the entries in a valid order.
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std::vector<CTxMemPool::txiter> sortedEntries;
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SortForBlock(ancestors, sortedEntries);
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for (size_t i = 0; i < sortedEntries.size(); ++i) {
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AddToBlock(sortedEntries[i]);
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// Erase from the modified set, if present
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mapModifiedTx.erase(sortedEntries[i]);
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}
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++nPackagesSelected;
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pblocktemplate->m_package_feerates.emplace_back(packageFees, static_cast<int32_t>(packageSize));
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// Update transactions that depend on each of these
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nDescendantsUpdated += UpdatePackagesForAdded(mempool, ancestors, mapModifiedTx);
|
|
}
|
|
}
|
|
|
|
void AddMerkleRootAndCoinbase(CBlock& block, CTransactionRef coinbase, uint32_t version, uint32_t timestamp, uint32_t nonce)
|
|
{
|
|
if (block.vtx.size() == 0) {
|
|
block.vtx.emplace_back(coinbase);
|
|
} else {
|
|
block.vtx[0] = coinbase;
|
|
}
|
|
block.nVersion = version;
|
|
block.nTime = timestamp;
|
|
block.nNonce = nonce;
|
|
block.hashMerkleRoot = BlockMerkleRoot(block);
|
|
}
|
|
|
|
std::unique_ptr<CBlockTemplate> WaitAndCreateNewBlock(ChainstateManager& chainman,
|
|
KernelNotifications& kernel_notifications,
|
|
CTxMemPool* mempool,
|
|
const std::unique_ptr<CBlockTemplate>& block_template,
|
|
const BlockWaitOptions& options,
|
|
const BlockAssembler::Options& assemble_options)
|
|
{
|
|
// Delay calculating the current template fees, just in case a new block
|
|
// comes in before the next tick.
|
|
CAmount current_fees = -1;
|
|
|
|
// Alternate waiting for a new tip and checking if fees have risen.
|
|
// The latter check is expensive so we only run it once per second.
|
|
auto now{NodeClock::now()};
|
|
const auto deadline = now + options.timeout;
|
|
const MillisecondsDouble tick{1000};
|
|
const bool allow_min_difficulty{chainman.GetParams().GetConsensus().fPowAllowMinDifficultyBlocks};
|
|
|
|
do {
|
|
bool tip_changed{false};
|
|
{
|
|
WAIT_LOCK(kernel_notifications.m_tip_block_mutex, lock);
|
|
// Note that wait_until() checks the predicate before waiting
|
|
kernel_notifications.m_tip_block_cv.wait_until(lock, std::min(now + tick, deadline), [&]() EXCLUSIVE_LOCKS_REQUIRED(kernel_notifications.m_tip_block_mutex) {
|
|
AssertLockHeld(kernel_notifications.m_tip_block_mutex);
|
|
const auto tip_block{kernel_notifications.TipBlock()};
|
|
// We assume tip_block is set, because this is an instance
|
|
// method on BlockTemplate and no template could have been
|
|
// generated before a tip exists.
|
|
tip_changed = Assume(tip_block) && tip_block != block_template->block.hashPrevBlock;
|
|
return tip_changed || chainman.m_interrupt;
|
|
});
|
|
}
|
|
|
|
if (chainman.m_interrupt) return nullptr;
|
|
// At this point the tip changed, a full tick went by or we reached
|
|
// the deadline.
|
|
|
|
// Must release m_tip_block_mutex before locking cs_main, to avoid deadlocks.
|
|
LOCK(::cs_main);
|
|
|
|
// On test networks return a minimum difficulty block after 20 minutes
|
|
if (!tip_changed && allow_min_difficulty) {
|
|
const NodeClock::time_point tip_time{std::chrono::seconds{chainman.ActiveChain().Tip()->GetBlockTime()}};
|
|
if (now > tip_time + 20min) {
|
|
tip_changed = true;
|
|
}
|
|
}
|
|
|
|
/**
|
|
* We determine if fees increased compared to the previous template by generating
|
|
* a fresh template. There may be more efficient ways to determine how much
|
|
* (approximate) fees for the next block increased, perhaps more so after
|
|
* Cluster Mempool.
|
|
*
|
|
* We'll also create a new template if the tip changed during this iteration.
|
|
*/
|
|
if (options.fee_threshold < MAX_MONEY || tip_changed) {
|
|
auto new_tmpl{BlockAssembler{
|
|
chainman.ActiveChainstate(),
|
|
mempool,
|
|
assemble_options}
|
|
.CreateNewBlock()};
|
|
|
|
// If the tip changed, return the new template regardless of its fees.
|
|
if (tip_changed) return new_tmpl;
|
|
|
|
// Calculate the original template total fees if we haven't already
|
|
if (current_fees == -1) {
|
|
current_fees = 0;
|
|
for (CAmount fee : block_template->vTxFees) {
|
|
current_fees += fee;
|
|
}
|
|
}
|
|
|
|
CAmount new_fees = 0;
|
|
for (CAmount fee : new_tmpl->vTxFees) {
|
|
new_fees += fee;
|
|
Assume(options.fee_threshold != MAX_MONEY);
|
|
if (new_fees >= current_fees + options.fee_threshold) return new_tmpl;
|
|
}
|
|
}
|
|
|
|
now = NodeClock::now();
|
|
} while (now < deadline);
|
|
|
|
return nullptr;
|
|
}
|
|
|
|
std::optional<BlockRef> GetTip(ChainstateManager& chainman)
|
|
{
|
|
LOCK(::cs_main);
|
|
CBlockIndex* tip{chainman.ActiveChain().Tip()};
|
|
if (!tip) return {};
|
|
return BlockRef{tip->GetBlockHash(), tip->nHeight};
|
|
}
|
|
|
|
std::optional<BlockRef> WaitTipChanged(ChainstateManager& chainman, KernelNotifications& kernel_notifications, const uint256& current_tip, MillisecondsDouble& timeout)
|
|
{
|
|
Assume(timeout >= 0ms); // No internal callers should use a negative timeout
|
|
if (timeout < 0ms) timeout = 0ms;
|
|
if (timeout > std::chrono::years{100}) timeout = std::chrono::years{100}; // Upper bound to avoid UB in std::chrono
|
|
auto deadline{std::chrono::steady_clock::now() + timeout};
|
|
{
|
|
WAIT_LOCK(kernel_notifications.m_tip_block_mutex, lock);
|
|
// For callers convenience, wait longer than the provided timeout
|
|
// during startup for the tip to be non-null. That way this function
|
|
// always returns valid tip information when possible and only
|
|
// returns null when shutting down, not when timing out.
|
|
kernel_notifications.m_tip_block_cv.wait(lock, [&]() EXCLUSIVE_LOCKS_REQUIRED(kernel_notifications.m_tip_block_mutex) {
|
|
return kernel_notifications.TipBlock() || chainman.m_interrupt;
|
|
});
|
|
if (chainman.m_interrupt) return {};
|
|
// At this point TipBlock is set, so continue to wait until it is
|
|
// different then `current_tip` provided by caller.
|
|
kernel_notifications.m_tip_block_cv.wait_until(lock, deadline, [&]() EXCLUSIVE_LOCKS_REQUIRED(kernel_notifications.m_tip_block_mutex) {
|
|
return Assume(kernel_notifications.TipBlock()) != current_tip || chainman.m_interrupt;
|
|
});
|
|
}
|
|
if (chainman.m_interrupt) return {};
|
|
|
|
// Must release m_tip_block_mutex before getTip() locks cs_main, to
|
|
// avoid deadlocks.
|
|
return GetTip(chainman);
|
|
}
|
|
} // namespace node
|