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241 lines
12 KiB
C++
241 lines
12 KiB
C++
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// Copyright (c) 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/eviction.h>
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#include <algorithm>
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#include <array>
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#include <chrono>
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#include <cstdint>
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#include <functional>
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#include <map>
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#include <vector>
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static bool ReverseCompareNodeMinPingTime(const NodeEvictionCandidate &a, const NodeEvictionCandidate &b)
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{
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return a.m_min_ping_time > b.m_min_ping_time;
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}
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static bool ReverseCompareNodeTimeConnected(const NodeEvictionCandidate &a, const NodeEvictionCandidate &b)
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{
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return a.m_connected > b.m_connected;
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}
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static bool CompareNetGroupKeyed(const NodeEvictionCandidate &a, const NodeEvictionCandidate &b) {
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return a.nKeyedNetGroup < b.nKeyedNetGroup;
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}
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static bool CompareNodeBlockTime(const NodeEvictionCandidate &a, const NodeEvictionCandidate &b)
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{
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// There is a fall-through here because it is common for a node to have many peers which have not yet relayed a block.
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if (a.m_last_block_time != b.m_last_block_time) return a.m_last_block_time < b.m_last_block_time;
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if (a.fRelevantServices != b.fRelevantServices) return b.fRelevantServices;
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return a.m_connected > b.m_connected;
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}
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static bool CompareNodeTXTime(const NodeEvictionCandidate &a, const NodeEvictionCandidate &b)
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{
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// There is a fall-through here because it is common for a node to have more than a few peers that have not yet relayed txn.
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if (a.m_last_tx_time != b.m_last_tx_time) return a.m_last_tx_time < b.m_last_tx_time;
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if (a.m_relay_txs != b.m_relay_txs) return b.m_relay_txs;
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if (a.fBloomFilter != b.fBloomFilter) return a.fBloomFilter;
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return a.m_connected > b.m_connected;
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}
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// Pick out the potential block-relay only peers, and sort them by last block time.
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static bool CompareNodeBlockRelayOnlyTime(const NodeEvictionCandidate &a, const NodeEvictionCandidate &b)
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{
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if (a.m_relay_txs != b.m_relay_txs) return a.m_relay_txs;
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if (a.m_last_block_time != b.m_last_block_time) return a.m_last_block_time < b.m_last_block_time;
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if (a.fRelevantServices != b.fRelevantServices) return b.fRelevantServices;
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return a.m_connected > b.m_connected;
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}
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/**
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* Sort eviction candidates by network/localhost and connection uptime.
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* Candidates near the beginning are more likely to be evicted, and those
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* near the end are more likely to be protected, e.g. less likely to be evicted.
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* - First, nodes that are not `is_local` and that do not belong to `network`,
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* sorted by increasing uptime (from most recently connected to connected longer).
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* - Then, nodes that are `is_local` or belong to `network`, sorted by increasing uptime.
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*/
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struct CompareNodeNetworkTime {
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const bool m_is_local;
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const Network m_network;
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CompareNodeNetworkTime(bool is_local, Network network) : m_is_local(is_local), m_network(network) {}
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bool operator()(const NodeEvictionCandidate& a, const NodeEvictionCandidate& b) const
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{
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if (m_is_local && a.m_is_local != b.m_is_local) return b.m_is_local;
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if ((a.m_network == m_network) != (b.m_network == m_network)) return b.m_network == m_network;
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return a.m_connected > b.m_connected;
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};
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};
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//! Sort an array by the specified comparator, then erase the last K elements where predicate is true.
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template <typename T, typename Comparator>
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static void EraseLastKElements(
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std::vector<T>& elements, Comparator comparator, size_t k,
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std::function<bool(const NodeEvictionCandidate&)> predicate = [](const NodeEvictionCandidate& n) { return true; })
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{
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std::sort(elements.begin(), elements.end(), comparator);
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size_t eraseSize = std::min(k, elements.size());
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elements.erase(std::remove_if(elements.end() - eraseSize, elements.end(), predicate), elements.end());
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}
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void ProtectNoBanConnections(std::vector<NodeEvictionCandidate>& eviction_candidates)
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{
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eviction_candidates.erase(std::remove_if(eviction_candidates.begin(), eviction_candidates.end(),
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[](NodeEvictionCandidate const& n) {
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return n.m_noban;
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}),
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eviction_candidates.end());
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}
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void ProtectOutboundConnections(std::vector<NodeEvictionCandidate>& eviction_candidates)
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{
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eviction_candidates.erase(std::remove_if(eviction_candidates.begin(), eviction_candidates.end(),
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[](NodeEvictionCandidate const& n) {
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return n.m_conn_type != ConnectionType::INBOUND;
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}),
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eviction_candidates.end());
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}
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void ProtectEvictionCandidatesByRatio(std::vector<NodeEvictionCandidate>& eviction_candidates)
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{
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// Protect the half of the remaining nodes which have been connected the longest.
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// This replicates the non-eviction implicit behavior, and precludes attacks that start later.
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// To favorise the diversity of our peer connections, reserve up to half of these protected
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// spots for Tor/onion, localhost, I2P, and CJDNS peers, even if they're not longest uptime
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// overall. This helps protect these higher-latency peers that tend to be otherwise
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// disadvantaged under our eviction criteria.
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const size_t initial_size = eviction_candidates.size();
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const size_t total_protect_size{initial_size / 2};
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// Disadvantaged networks to protect. In the case of equal counts, earlier array members
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// have the first opportunity to recover unused slots from the previous iteration.
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struct Net { bool is_local; Network id; size_t count; };
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std::array<Net, 4> networks{
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{{false, NET_CJDNS, 0}, {false, NET_I2P, 0}, {/*localhost=*/true, NET_MAX, 0}, {false, NET_ONION, 0}}};
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// Count and store the number of eviction candidates per network.
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for (Net& n : networks) {
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n.count = std::count_if(eviction_candidates.cbegin(), eviction_candidates.cend(),
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[&n](const NodeEvictionCandidate& c) {
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return n.is_local ? c.m_is_local : c.m_network == n.id;
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});
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}
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// Sort `networks` by ascending candidate count, to give networks having fewer candidates
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// the first opportunity to recover unused protected slots from the previous iteration.
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std::stable_sort(networks.begin(), networks.end(), [](Net a, Net b) { return a.count < b.count; });
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// Protect up to 25% of the eviction candidates by disadvantaged network.
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const size_t max_protect_by_network{total_protect_size / 2};
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size_t num_protected{0};
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while (num_protected < max_protect_by_network) {
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// Count the number of disadvantaged networks from which we have peers to protect.
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auto num_networks = std::count_if(networks.begin(), networks.end(), [](const Net& n) { return n.count; });
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if (num_networks == 0) {
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break;
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}
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const size_t disadvantaged_to_protect{max_protect_by_network - num_protected};
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const size_t protect_per_network{std::max(disadvantaged_to_protect / num_networks, static_cast<size_t>(1))};
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// Early exit flag if there are no remaining candidates by disadvantaged network.
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bool protected_at_least_one{false};
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for (Net& n : networks) {
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if (n.count == 0) continue;
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const size_t before = eviction_candidates.size();
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EraseLastKElements(eviction_candidates, CompareNodeNetworkTime(n.is_local, n.id),
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protect_per_network, [&n](const NodeEvictionCandidate& c) {
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return n.is_local ? c.m_is_local : c.m_network == n.id;
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});
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const size_t after = eviction_candidates.size();
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if (before > after) {
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protected_at_least_one = true;
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const size_t delta{before - after};
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num_protected += delta;
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if (num_protected >= max_protect_by_network) {
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break;
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}
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n.count -= delta;
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}
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}
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if (!protected_at_least_one) {
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break;
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}
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}
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// Calculate how many we removed, and update our total number of peers that
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// we want to protect based on uptime accordingly.
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assert(num_protected == initial_size - eviction_candidates.size());
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const size_t remaining_to_protect{total_protect_size - num_protected};
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EraseLastKElements(eviction_candidates, ReverseCompareNodeTimeConnected, remaining_to_protect);
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}
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[[nodiscard]] std::optional<NodeId> SelectNodeToEvict(std::vector<NodeEvictionCandidate>&& vEvictionCandidates)
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{
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// Protect connections with certain characteristics
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ProtectNoBanConnections(vEvictionCandidates);
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ProtectOutboundConnections(vEvictionCandidates);
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// Deterministically select 4 peers to protect by netgroup.
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// An attacker cannot predict which netgroups will be protected
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EraseLastKElements(vEvictionCandidates, CompareNetGroupKeyed, 4);
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// Protect the 8 nodes with the lowest minimum ping time.
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// An attacker cannot manipulate this metric without physically moving nodes closer to the target.
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EraseLastKElements(vEvictionCandidates, ReverseCompareNodeMinPingTime, 8);
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// Protect 4 nodes that most recently sent us novel transactions accepted into our mempool.
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// An attacker cannot manipulate this metric without performing useful work.
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EraseLastKElements(vEvictionCandidates, CompareNodeTXTime, 4);
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// Protect up to 8 non-tx-relay peers that have sent us novel blocks.
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EraseLastKElements(vEvictionCandidates, CompareNodeBlockRelayOnlyTime, 8,
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[](const NodeEvictionCandidate& n) { return !n.m_relay_txs && n.fRelevantServices; });
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// Protect 4 nodes that most recently sent us novel blocks.
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// An attacker cannot manipulate this metric without performing useful work.
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EraseLastKElements(vEvictionCandidates, CompareNodeBlockTime, 4);
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// Protect some of the remaining eviction candidates by ratios of desirable
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// or disadvantaged characteristics.
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ProtectEvictionCandidatesByRatio(vEvictionCandidates);
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if (vEvictionCandidates.empty()) return std::nullopt;
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// If any remaining peers are preferred for eviction consider only them.
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// This happens after the other preferences since if a peer is really the best by other criteria (esp relaying blocks)
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// then we probably don't want to evict it no matter what.
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if (std::any_of(vEvictionCandidates.begin(),vEvictionCandidates.end(),[](NodeEvictionCandidate const &n){return n.prefer_evict;})) {
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vEvictionCandidates.erase(std::remove_if(vEvictionCandidates.begin(),vEvictionCandidates.end(),
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[](NodeEvictionCandidate const &n){return !n.prefer_evict;}),vEvictionCandidates.end());
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}
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// Identify the network group with the most connections and youngest member.
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// (vEvictionCandidates is already sorted by reverse connect time)
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uint64_t naMostConnections;
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unsigned int nMostConnections = 0;
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std::chrono::seconds nMostConnectionsTime{0};
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std::map<uint64_t, std::vector<NodeEvictionCandidate> > mapNetGroupNodes;
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for (const NodeEvictionCandidate &node : vEvictionCandidates) {
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std::vector<NodeEvictionCandidate> &group = mapNetGroupNodes[node.nKeyedNetGroup];
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group.push_back(node);
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const auto grouptime{group[0].m_connected};
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if (group.size() > nMostConnections || (group.size() == nMostConnections && grouptime > nMostConnectionsTime)) {
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nMostConnections = group.size();
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nMostConnectionsTime = grouptime;
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naMostConnections = node.nKeyedNetGroup;
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}
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}
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// Reduce to the network group with the most connections
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vEvictionCandidates = std::move(mapNetGroupNodes[naMostConnections]);
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// Disconnect from the network group with the most connections
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return vEvictionCandidates.front().id;
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}
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