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215 lines
8.2 KiB
C++
215 lines
8.2 KiB
C++
// Copyright (c) 2011-2022 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 <bench/bench.h>
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#include <consensus/amount.h>
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#include <policy/policy.h>
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#include <primitives/transaction.h>
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#include <random.h>
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#include <script/script.h>
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#include <sync.h>
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#include <test/util/setup_common.h>
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#include <test/util/txmempool.h>
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#include <txmempool.h>
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#include <validation.h>
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#include <cstddef>
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#include <cstdint>
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#include <memory>
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#include <vector>
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class CCoinsViewCache;
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static void AddTx(const CTransactionRef& tx, CTxMemPool& pool, FastRandomContext& det_rand) EXCLUSIVE_LOCKS_REQUIRED(cs_main, pool.cs)
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{
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int64_t nTime = 0;
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unsigned int nHeight = 1;
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uint64_t sequence = 0;
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bool spendsCoinbase = false;
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unsigned int sigOpCost = 4;
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LockPoints lp;
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AddToMempool(pool, CTxMemPoolEntry(TxGraph::Ref(), tx, det_rand.randrange(10000)+1000, nTime, nHeight, sequence, spendsCoinbase, sigOpCost, lp));
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}
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struct Available {
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CTransactionRef ref;
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size_t vin_left{0};
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size_t tx_count;
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Available(CTransactionRef& ref, size_t tx_count) : ref(ref), tx_count(tx_count){}
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};
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// Create a cluster of transactions, randomly.
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static std::vector<CTransactionRef> CreateCoinCluster(FastRandomContext& det_rand, int childTxs, int min_ancestors)
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{
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std::vector<Available> available_coins;
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std::vector<CTransactionRef> ordered_coins;
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// Create some base transactions
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size_t tx_counter = 1;
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for (auto x = 0; x < 10; ++x) {
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CMutableTransaction tx = CMutableTransaction();
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tx.vin.resize(1);
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tx.vin[0].prevout = COutPoint(Txid::FromUint256(GetRandHash()), 1);
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tx.vin[0].scriptSig = CScript() << CScriptNum(tx_counter);
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tx.vin[0].scriptWitness.stack.push_back(CScriptNum(x).getvch());
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tx.vout.resize(det_rand.randrange(10)+2);
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for (auto& out : tx.vout) {
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out.scriptPubKey = CScript() << CScriptNum(tx_counter) << OP_EQUAL;
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out.nValue = 10 * COIN;
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}
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ordered_coins.emplace_back(MakeTransactionRef(tx));
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available_coins.emplace_back(ordered_coins.back(), tx_counter++);
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}
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for (auto x = 0; x < childTxs && !available_coins.empty(); ++x) {
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CMutableTransaction tx = CMutableTransaction();
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size_t n_ancestors = det_rand.randrange(10)+1;
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for (size_t ancestor = 0; ancestor < n_ancestors && !available_coins.empty(); ++ancestor){
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size_t idx = det_rand.randrange(available_coins.size());
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Available coin = available_coins[idx];
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Txid hash = coin.ref->GetHash();
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// biased towards taking min_ancestors parents, but maybe more
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size_t n_to_take = det_rand.randrange(2) == 0 ?
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min_ancestors :
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min_ancestors + det_rand.randrange(coin.ref->vout.size() - coin.vin_left);
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for (size_t i = 0; i < n_to_take; ++i) {
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tx.vin.emplace_back();
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tx.vin.back().prevout = COutPoint(hash, coin.vin_left++);
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tx.vin.back().scriptSig = CScript() << coin.tx_count;
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tx.vin.back().scriptWitness.stack.push_back(CScriptNum(coin.tx_count).getvch());
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}
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if (coin.vin_left == coin.ref->vin.size()) {
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coin = available_coins.back();
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available_coins.pop_back();
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}
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tx.vout.resize(det_rand.randrange(10)+2);
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for (auto& out : tx.vout) {
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out.scriptPubKey = CScript() << CScriptNum(tx_counter) << OP_EQUAL;
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out.nValue = 10 * COIN;
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}
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}
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ordered_coins.emplace_back(MakeTransactionRef(tx));
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available_coins.emplace_back(ordered_coins.back(), tx_counter++);
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}
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return ordered_coins;
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}
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static void MemPoolAddTransactions(benchmark::Bench& bench)
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{
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FastRandomContext det_rand{true};
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int childTxs = 50;
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if (bench.complexityN() > 1) {
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childTxs = static_cast<int>(bench.complexityN());
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}
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const auto testing_setup = MakeNoLogFileContext<const TestingSetup>(ChainType::MAIN);
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CTxMemPool& pool = *testing_setup.get()->m_node.mempool;
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std::vector<CTransactionRef> transactions;
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// Create 1000 clusters of 100 transactions each
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for (int i=0; i<100; i++) {
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auto new_txs = CreateCoinCluster(det_rand, childTxs, /*min_ancestors*/ 1);
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transactions.insert(transactions.end(), new_txs.begin(), new_txs.end());
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}
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LOCK2(cs_main, pool.cs);
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bench.run([&]() NO_THREAD_SAFETY_ANALYSIS {
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for (auto& tx : transactions) {
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AddTx(tx, pool, det_rand);
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}
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pool.TrimToSize(0, nullptr);
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});
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}
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static void ComplexMemPool(benchmark::Bench& bench)
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{
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FastRandomContext det_rand{true};
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int childTxs = 50;
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if (bench.complexityN() > 1) {
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childTxs = static_cast<int>(bench.complexityN());
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}
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const auto testing_setup = MakeNoLogFileContext<const TestingSetup>(ChainType::MAIN);
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CTxMemPool& pool = *testing_setup.get()->m_node.mempool;
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std::vector<CTransactionRef> tx_remove_for_block;
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std::vector<Txid> hashes_remove_for_block;
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LOCK2(cs_main, pool.cs);
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for (int i=0; i<1000; i++) {
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std::vector<CTransactionRef> transactions = CreateCoinCluster(det_rand, childTxs, /*min_ancestors=*/1);
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// Add all transactions to the mempool.
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// Also store the first 10 transactions from each cluster as the
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// transactions we'll "mine" in the the benchmark.
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int tx_count = 0;
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for (auto& tx : transactions) {
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if (tx_count < 10) {
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tx_remove_for_block.push_back(tx);
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++tx_count;
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hashes_remove_for_block.emplace_back(tx->GetHash());
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}
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AddTx(tx, pool, det_rand);
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}
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}
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// Since the benchmark will be run repeatedly, we have to leave the mempool
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// in the same state at the end of the function, so we benchmark both
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// mining a block and reorging the block's contents back into the mempool.
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bench.run([&]() NO_THREAD_SAFETY_ANALYSIS {
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pool.removeForBlock(tx_remove_for_block, /*nBlockHeight*/100);
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for (auto& tx: tx_remove_for_block) {
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AddTx(tx, pool, det_rand);
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}
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pool.UpdateTransactionsFromBlock(hashes_remove_for_block);
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});
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}
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static void MemPoolAncestorsDescendants(benchmark::Bench& bench)
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{
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FastRandomContext det_rand{true};
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int childTxs = 50;
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if (bench.complexityN() > 1) {
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childTxs = static_cast<int>(bench.complexityN());
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}
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const auto testing_setup = MakeNoLogFileContext<const TestingSetup>(ChainType::MAIN);
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CTxMemPool& pool = *testing_setup.get()->m_node.mempool;
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LOCK2(cs_main, pool.cs);
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std::vector<CTransactionRef> transactions = CreateCoinCluster(det_rand, childTxs, /*min_ancestors=*/1);
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for (auto& tx : transactions) {
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AddTx(tx, pool, det_rand);
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}
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CTxMemPool::txiter first_tx = *pool.GetIter(transactions[0]->GetHash());
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CTxMemPool::txiter last_tx = *pool.GetIter(transactions.back()->GetHash());
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bench.run([&]() NO_THREAD_SAFETY_ANALYSIS {
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CTxMemPool::setEntries dummy;
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ankerl::nanobench::doNotOptimizeAway(dummy);
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pool.CalculateDescendants({first_tx}, dummy);
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ankerl::nanobench::doNotOptimizeAway(pool.CalculateMemPoolAncestors(*last_tx));
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});
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}
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static void MempoolCheck(benchmark::Bench& bench)
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{
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FastRandomContext det_rand{true};
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auto testing_setup = MakeNoLogFileContext<TestChain100Setup>(ChainType::REGTEST, {.extra_args = {"-checkmempool=1"}});
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CTxMemPool& pool = *testing_setup.get()->m_node.mempool;
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LOCK2(cs_main, pool.cs);
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testing_setup->PopulateMempool(det_rand, 400, true);
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const CCoinsViewCache& coins_tip = testing_setup.get()->m_node.chainman->ActiveChainstate().CoinsTip();
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bench.run([&]() NO_THREAD_SAFETY_ANALYSIS {
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// Bump up the spendheight so we don't hit premature coinbase spend errors.
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pool.check(coins_tip, /*spendheight=*/300);
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});
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}
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BENCHMARK(MemPoolAncestorsDescendants, benchmark::PriorityLevel::HIGH);
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BENCHMARK(MemPoolAddTransactions, benchmark::PriorityLevel::HIGH);
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BENCHMARK(ComplexMemPool, benchmark::PriorityLevel::HIGH);
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BENCHMARK(MempoolCheck, benchmark::PriorityLevel::HIGH);
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