Bitcoin Core Fuzz Coverage Report for wallet_tx_can_be_bumped

Coverage Report

Created: 2025-11-19 11:20

next uncovered line (L), next uncovered region (R), next uncovered branch (B)
/Users/brunogarcia/projects/bitcoin-core-dev/src/net.cpp
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// Copyright (c) 2009-2010 Satoshi Nakamoto
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// Copyright (c) 2009-present 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 <bitcoin-build-config.h> // IWYU pragma: keep
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#include <net.h>
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#include <addrdb.h>
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#include <addrman.h>
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#include <banman.h>
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#include <clientversion.h>
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#include <common/args.h>
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#include <common/netif.h>
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#include <compat/compat.h>
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#include <consensus/consensus.h>
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#include <crypto/sha256.h>
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#include <i2p.h>
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#include <key.h>
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#include <logging.h>
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#include <memusage.h>
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#include <net_permissions.h>
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#include <netaddress.h>
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#include <netbase.h>
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#include <node/eviction.h>
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#include <node/interface_ui.h>
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#include <protocol.h>
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#include <random.h>
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#include <scheduler.h>
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#include <util/fs.h>
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#include <util/sock.h>
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#include <util/strencodings.h>
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#include <util/thread.h>
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#include <util/threadinterrupt.h>
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#include <util/trace.h>
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#include <util/translation.h>
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#include <util/vector.h>
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#include <algorithm>
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#include <array>
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#include <cmath>
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#include <cstdint>
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#include <cstring>
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#include <functional>
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#include <optional>
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#include <string_view>
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#include <unordered_map>
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TRACEPOINT_SEMAPHORE(net, closed_connection);
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TRACEPOINT_SEMAPHORE(net, evicted_inbound_connection);
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TRACEPOINT_SEMAPHORE(net, inbound_connection);
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TRACEPOINT_SEMAPHORE(net, outbound_connection);
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TRACEPOINT_SEMAPHORE(net, outbound_message);
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/** Maximum number of block-relay-only anchor connections */
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static constexpr size_t MAX_BLOCK_RELAY_ONLY_ANCHORS = 2;
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static_assert (MAX_BLOCK_RELAY_ONLY_ANCHORS <= static_cast<size_t>(MAX_BLOCK_RELAY_ONLY_CONNECTIONS), "MAX_BLOCK_RELAY_ONLY_ANCHORS must not exceed MAX_BLOCK_RELAY_ONLY_CONNECTIONS.");
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/** Anchor IP address database file name */
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const char* const ANCHORS_DATABASE_FILENAME = "anchors.dat";
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// How often to dump addresses to peers.dat
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static constexpr std::chrono::minutes DUMP_PEERS_INTERVAL{15};
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/** Number of DNS seeds to query when the number of connections is low. */
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static constexpr int DNSSEEDS_TO_QUERY_AT_ONCE = 3;
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/** Minimum number of outbound connections under which we will keep fetching our address seeds. */
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static constexpr int SEED_OUTBOUND_CONNECTION_THRESHOLD = 2;
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/** How long to delay before querying DNS seeds
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 *
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 * If we have more than THRESHOLD entries in addrman, then it's likely
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 * that we got those addresses from having previously connected to the P2P
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 * network, and that we'll be able to successfully reconnect to the P2P
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 * network via contacting one of them. So if that's the case, spend a
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 * little longer trying to connect to known peers before querying the
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 * DNS seeds.
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 */
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static constexpr std::chrono::seconds DNSSEEDS_DELAY_FEW_PEERS{11};
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static constexpr std::chrono::minutes DNSSEEDS_DELAY_MANY_PEERS{5};
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static constexpr int DNSSEEDS_DELAY_PEER_THRESHOLD = 1000; // "many" vs "few" peers
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/** The default timeframe for -maxuploadtarget. 1 day. */
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static constexpr std::chrono::seconds MAX_UPLOAD_TIMEFRAME{60 * 60 * 24};
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// A random time period (0 to 1 seconds) is added to feeler connections to prevent synchronization.
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static constexpr auto FEELER_SLEEP_WINDOW{1s};
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/** Frequency to attempt extra connections to reachable networks we're not connected to yet **/
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static constexpr auto EXTRA_NETWORK_PEER_INTERVAL{5min};
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/** Used to pass flags to the Bind() function */
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enum BindFlags {
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    BF_NONE         = 0,
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    BF_REPORT_ERROR = (1U << 0),
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    /**
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     * Do not call AddLocal() for our special addresses, e.g., for incoming
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     * Tor connections, to prevent gossiping them over the network.
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     */
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    BF_DONT_ADVERTISE = (1U << 1),
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};
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// The set of sockets cannot be modified while waiting
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// The sleep time needs to be small to avoid new sockets stalling
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static const uint64_t SELECT_TIMEOUT_MILLISECONDS = 50;
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const std::string NET_MESSAGE_TYPE_OTHER = "*other*";
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static const uint64_t RANDOMIZER_ID_NETGROUP = 0x6c0edd8036ef4036ULL; // SHA256("netgroup")[0:8]
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static const uint64_t RANDOMIZER_ID_LOCALHOSTNONCE = 0xd93e69e2bbfa5735ULL; // SHA256("localhostnonce")[0:8]
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static const uint64_t RANDOMIZER_ID_NETWORKKEY = 0x0e8a2b136c592a7dULL; // SHA256("networkkey")[0:8]
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//
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// Global state variables
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//
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bool fDiscover = true;
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bool fListen = true;
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GlobalMutex g_maplocalhost_mutex;
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std::map<CNetAddr, LocalServiceInfo> mapLocalHost GUARDED_BY(g_maplocalhost_mutex);
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std::string strSubVersion;
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size_t CSerializedNetMsg::GetMemoryUsage() const noexcept
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0
{
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    return sizeof(*this) + memusage::DynamicUsage(m_type) + memusage::DynamicUsage(data);
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0
}
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size_t CNetMessage::GetMemoryUsage() const noexcept
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{
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    return sizeof(*this) + memusage::DynamicUsage(m_type) + m_recv.GetMemoryUsage();
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}
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void CConnman::AddAddrFetch(const std::string& strDest)
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{
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    LOCK(m_addr_fetches_mutex);
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#define LOCK(cs) UniqueLock UNIQUE_NAME(criticalblock)(MaybeCheckNotHeld(cs), #cs, __FILE__, __LINE__)
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11
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#define UNIQUE_NAME(name) PASTE2(name, __COUNTER__)
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9
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#define PASTE2(x, y) PASTE(x, y)
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#define PASTE(x, y) x ## y
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    m_addr_fetches.push_back(strDest);
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}
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uint16_t GetListenPort()
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{
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    // If -bind= is provided with ":port" part, use that (first one if multiple are provided).
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    for (const std::string& bind_arg : gArgs.GetArgs("-bind")) {
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        constexpr uint16_t dummy_port = 0;
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        const std::optional<CService> bind_addr{Lookup(bind_arg, dummy_port, /*fAllowLookup=*/false)};
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        if (bind_addr.has_value() && bind_addr->GetPort() != dummy_port) return bind_addr->GetPort();
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    }
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    // Otherwise, if -whitebind= without NetPermissionFlags::NoBan is provided, use that
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    // (-whitebind= is required to have ":port").
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    for (const std::string& whitebind_arg : gArgs.GetArgs("-whitebind")) {
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        NetWhitebindPermissions whitebind;
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        bilingual_str error;
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        if (NetWhitebindPermissions::TryParse(whitebind_arg, whitebind, error)) {
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            if (!NetPermissions::HasFlag(whitebind.m_flags, NetPermissionFlags::NoBan)) {
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                return whitebind.m_service.GetPort();
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            }
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        }
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    }
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    // Otherwise, if -port= is provided, use that. Otherwise use the default port.
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    return static_cast<uint16_t>(gArgs.GetIntArg("-port", Params().GetDefaultPort()));
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}
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// Determine the "best" local address for a particular peer.
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[[nodiscard]] static std::optional<CService> GetLocal(const CNode& peer)
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0
{
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    if (!fListen) return std::nullopt;
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    std::optional<CService> addr;
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    int nBestScore = -1;
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    int nBestReachability = -1;
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    {
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        LOCK(g_maplocalhost_mutex);
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#define LOCK(cs) UniqueLock UNIQUE_NAME(criticalblock)(MaybeCheckNotHeld(cs), #cs, __FILE__, __LINE__)
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#define UNIQUE_NAME(name) PASTE2(name, __COUNTER__)
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#define PASTE2(x, y) PASTE(x, y)
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#define PASTE(x, y) x ## y
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        for (const auto& [local_addr, local_service_info] : mapLocalHost) {
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            // For privacy reasons, don't advertise our privacy-network address
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            // to other networks and don't advertise our other-network address
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            // to privacy networks.
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            if (local_addr.GetNetwork() != peer.ConnectedThroughNetwork()
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                && (local_addr.IsPrivacyNet() || peer.IsConnectedThroughPrivacyNet())) {
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                continue;
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            }
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            const int nScore{local_service_info.nScore};
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            const int nReachability{local_addr.GetReachabilityFrom(peer.addr)};
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            if (nReachability > nBestReachability || (nReachability == nBestReachability && nScore > nBestScore)) {
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                addr.emplace(CService{local_addr, local_service_info.nPort});
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                nBestReachability = nReachability;
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                nBestScore = nScore;
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            }
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        }
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    }
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    return addr;
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}
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//! Convert the serialized seeds into usable address objects.
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static std::vector<CAddress> ConvertSeeds(const std::vector<uint8_t> &vSeedsIn)
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0
{
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    // It'll only connect to one or two seed nodes because once it connects,
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    // it'll get a pile of addresses with newer timestamps.
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    // Seed nodes are given a random 'last seen time' of between one and two
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    // weeks ago.
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    const auto one_week{7 * 24h};
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    std::vector<CAddress> vSeedsOut;
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    FastRandomContext rng;
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    ParamsStream s{DataStream{vSeedsIn}, CAddress::V2_NETWORK};
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    while (!s.eof()) {
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        CService endpoint;
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        s >> endpoint;
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        CAddress addr{endpoint, SeedsServiceFlags()};
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        addr.nTime = rng.rand_uniform_delay(Now<NodeSeconds>() - one_week, -one_week);
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        LogDebug(BCLog::NET, "Added hardcoded seed: %s\n", addr.ToStringAddrPort());
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393
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#define LogDebug(category, ...) LogPrintLevel(category, BCLog::Level::Debug, __VA_ARGS__)
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385
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    do {                                                              \
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        if (LogAcceptCategory((category), (level))) {                 \
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            bool rate_limit{level >= BCLog::Level::Info};             \
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            LogPrintLevel_(category, level, rate_limit, __VA_ARGS__); \
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#define LogPrintLevel_(category, level, should_ratelimit, ...) LogPrintFormatInternal(std::source_location::current(), category, level, should_ratelimit, __VA_ARGS__)
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        }                                                             \
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    } while (0)
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        vSeedsOut.push_back(addr);
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    }
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    return vSeedsOut;
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0
}
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// Determine the "best" local address for a particular peer.
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// If none, return the unroutable 0.0.0.0 but filled in with
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// the normal parameters, since the IP may be changed to a useful
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// one by discovery.
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CService GetLocalAddress(const CNode& peer)
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{
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    return GetLocal(peer).value_or(CService{CNetAddr(), GetListenPort()});
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}
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static int GetnScore(const CService& addr)
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{
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    LOCK(g_maplocalhost_mutex);
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#define LOCK(cs) UniqueLock UNIQUE_NAME(criticalblock)(MaybeCheckNotHeld(cs), #cs, __FILE__, __LINE__)
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11
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#define UNIQUE_NAME(name) PASTE2(name, __COUNTER__)
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9
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#define PASTE2(x, y) PASTE(x, y)
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#define PASTE(x, y) x ## y
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    const auto it = mapLocalHost.find(addr);
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    return (it != mapLocalHost.end()) ? it->second.nScore : 0;
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0
}
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// Is our peer's addrLocal potentially useful as an external IP source?
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[[nodiscard]] static bool IsPeerAddrLocalGood(CNode *pnode)
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0
{
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    CService addrLocal = pnode->GetAddrLocal();
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    return fDiscover && pnode->addr.IsRoutable() && addrLocal.IsRoutable() &&
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0
           g_reachable_nets.Contains(addrLocal);
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0
}
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std::optional<CService> GetLocalAddrForPeer(CNode& node)
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0
{
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0
    CService addrLocal{GetLocalAddress(node)};
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    // If discovery is enabled, sometimes give our peer the address it
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    // tells us that it sees us as in case it has a better idea of our
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    // address than we do.
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    FastRandomContext rng;
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    if (IsPeerAddrLocalGood(&node) && (!addrLocal.IsRoutable() ||
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0
         rng.randbits((GetnScore(addrLocal) > LOCAL_MANUAL) ? 3 : 1) == 0))
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    {
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        if (node.IsInboundConn()) {
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            // For inbound connections, assume both the address and the port
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            // as seen from the peer.
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            addrLocal = CService{node.GetAddrLocal()};
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0
        } else {
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            // For outbound connections, assume just the address as seen from
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            // the peer and leave the port in `addrLocal` as returned by
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            // `GetLocalAddress()` above. The peer has no way to observe our
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            // listening port when we have initiated the connection.
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0
            addrLocal.SetIP(node.GetAddrLocal());
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0
        }
261
0
    }
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0
    if (addrLocal.IsRoutable()) {
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0
        LogDebug(BCLog::NET, "Advertising address %s to peer=%d\n", addrLocal.ToStringAddrPort(), node.GetId());
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393
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#define LogDebug(category, ...) LogPrintLevel(category, BCLog::Level::Debug, __VA_ARGS__)
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385
0
    do {                                                              \
386
0
        if (LogAcceptCategory((category), (level))) {                 \
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            bool rate_limit{level >= BCLog::Level::Info};             \
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            LogPrintLevel_(category, level, rate_limit, __VA_ARGS__); \
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#define LogPrintLevel_(category, level, should_ratelimit, ...) LogPrintFormatInternal(std::source_location::current(), category, level, should_ratelimit, __VA_ARGS__)
389
0
        }                                                             \
390
0
    } while (0)
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0
        return addrLocal;
265
0
    }
266
    // Address is unroutable. Don't advertise.
267
0
    return std::nullopt;
268
0
}
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void ClearLocal()
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0
{
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0
    LOCK(g_maplocalhost_mutex);
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259
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#define LOCK(cs) UniqueLock UNIQUE_NAME(criticalblock)(MaybeCheckNotHeld(cs), #cs, __FILE__, __LINE__)
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11
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#define UNIQUE_NAME(name) PASTE2(name, __COUNTER__)
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9
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#define PASTE2(x, y) PASTE(x, y)
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#define PASTE(x, y) x ## y
273
0
    return mapLocalHost.clear();
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0
}
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// learn a new local address
277
bool AddLocal(const CService& addr_, int nScore)
278
0
{
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0
    CService addr{MaybeFlipIPv6toCJDNS(addr_)};
280
281
0
    if (!addr.IsRoutable())
282
0
        return false;
283
284
0
    if (!fDiscover && nScore < LOCAL_MANUAL)
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0
        return false;
286
287
0
    if (!g_reachable_nets.Contains(addr))
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0
        return false;
289
290
0
    LogPrintf("AddLocal(%s,%i)\n", addr.ToStringAddrPort(), nScore);
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373
0
#define LogPrintf(...) LogInfo(__VA_ARGS__)
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0
#define LogInfo(...) LogPrintLevel_(BCLog::LogFlags::ALL, BCLog::Level::Info, /*should_ratelimit=*/true, __VA_ARGS__)
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362
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#define LogPrintLevel_(category, level, should_ratelimit, ...) LogPrintFormatInternal(std::source_location::current(), category, level, should_ratelimit, __VA_ARGS__)
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292
0
    {
293
0
        LOCK(g_maplocalhost_mutex);
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#define LOCK(cs) UniqueLock UNIQUE_NAME(criticalblock)(MaybeCheckNotHeld(cs), #cs, __FILE__, __LINE__)
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11
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#define UNIQUE_NAME(name) PASTE2(name, __COUNTER__)
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#define PASTE2(x, y) PASTE(x, y)
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#define PASTE(x, y) x ## y
294
0
        const auto [it, is_newly_added] = mapLocalHost.emplace(addr, LocalServiceInfo());
295
0
        LocalServiceInfo &info = it->second;
296
0
        if (is_newly_added || nScore >= info.nScore) {
297
0
            info.nScore = nScore + (is_newly_added ? 0 : 1);
298
0
            info.nPort = addr.GetPort();
299
0
        }
300
0
    }
301
302
0
    return true;
303
0
}
304
305
bool AddLocal(const CNetAddr &addr, int nScore)
306
0
{
307
0
    return AddLocal(CService(addr, GetListenPort()), nScore);
308
0
}
309
310
void RemoveLocal(const CService& addr)
311
0
{
312
0
    LOCK(g_maplocalhost_mutex);
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#define LOCK(cs) UniqueLock UNIQUE_NAME(criticalblock)(MaybeCheckNotHeld(cs), #cs, __FILE__, __LINE__)
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11
0
#define UNIQUE_NAME(name) PASTE2(name, __COUNTER__)
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#define PASTE2(x, y) PASTE(x, y)
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#define PASTE(x, y) x ## y
313
0
    LogPrintf("RemoveLocal(%s)\n", addr.ToStringAddrPort());
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373
0
#define LogPrintf(...) LogInfo(__VA_ARGS__)
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368
0
#define LogInfo(...) LogPrintLevel_(BCLog::LogFlags::ALL, BCLog::Level::Info, /*should_ratelimit=*/true, __VA_ARGS__)
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362
0
#define LogPrintLevel_(category, level, should_ratelimit, ...) LogPrintFormatInternal(std::source_location::current(), category, level, should_ratelimit, __VA_ARGS__)
314
0
    mapLocalHost.erase(addr);
315
0
}
316
317
/** vote for a local address */
318
bool SeenLocal(const CService& addr)
319
0
{
320
0
    LOCK(g_maplocalhost_mutex);
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259
0
#define LOCK(cs) UniqueLock UNIQUE_NAME(criticalblock)(MaybeCheckNotHeld(cs), #cs, __FILE__, __LINE__)
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11
0
#define UNIQUE_NAME(name) PASTE2(name, __COUNTER__)
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9
0
#define PASTE2(x, y) PASTE(x, y)
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8
0
#define PASTE(x, y) x ## y
321
0
    const auto it = mapLocalHost.find(addr);
322
0
    if (it == mapLocalHost.end()) return false;
323
0
    ++it->second.nScore;
324
0
    return true;
325
0
}
326
327
328
/** check whether a given address is potentially local */
329
bool IsLocal(const CService& addr)
330
0
{
331
0
    LOCK(g_maplocalhost_mutex);
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259
0
#define LOCK(cs) UniqueLock UNIQUE_NAME(criticalblock)(MaybeCheckNotHeld(cs), #cs, __FILE__, __LINE__)
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11
0
#define UNIQUE_NAME(name) PASTE2(name, __COUNTER__)
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9
0
#define PASTE2(x, y) PASTE(x, y)
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8
0
#define PASTE(x, y) x ## y
332
0
    return mapLocalHost.count(addr) > 0;
333
0
}
334
335
bool CConnman::AlreadyConnectedToHost(std::string_view host) const
336
0
{
337
0
    LOCK(m_nodes_mutex);
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259
0
#define LOCK(cs) UniqueLock UNIQUE_NAME(criticalblock)(MaybeCheckNotHeld(cs), #cs, __FILE__, __LINE__)
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11
0
#define UNIQUE_NAME(name) PASTE2(name, __COUNTER__)
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#define PASTE2(x, y) PASTE(x, y)
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0
#define PASTE(x, y) x ## y
338
0
    return std::ranges::any_of(m_nodes, [&host](CNode* node) { return node->m_addr_name == host; });
339
0
}
340
341
bool CConnman::AlreadyConnectedToAddressPort(const CService& addr_port) const
342
0
{
343
0
    LOCK(m_nodes_mutex);
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259
0
#define LOCK(cs) UniqueLock UNIQUE_NAME(criticalblock)(MaybeCheckNotHeld(cs), #cs, __FILE__, __LINE__)
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11
0
#define UNIQUE_NAME(name) PASTE2(name, __COUNTER__)
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9
0
#define PASTE2(x, y) PASTE(x, y)
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8
0
#define PASTE(x, y) x ## y
344
0
    return std::ranges::any_of(m_nodes, [&addr_port](CNode* node) { return node->addr == addr_port; });
345
0
}
346
347
bool CConnman::AlreadyConnectedToAddress(const CNetAddr& addr) const
348
0
{
349
0
    LOCK(m_nodes_mutex);
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259
0
#define LOCK(cs) UniqueLock UNIQUE_NAME(criticalblock)(MaybeCheckNotHeld(cs), #cs, __FILE__, __LINE__)
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11
0
#define UNIQUE_NAME(name) PASTE2(name, __COUNTER__)
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9
0
#define PASTE2(x, y) PASTE(x, y)
Line
Count
Source
8
0
#define PASTE(x, y) x ## y
350
0
    return std::ranges::any_of(m_nodes, [&addr](CNode* node) { return node->addr == addr; });
351
0
}
352
353
bool CConnman::CheckIncomingNonce(uint64_t nonce)
354
0
{
355
0
    LOCK(m_nodes_mutex);
Line
Count
Source
259
0
#define LOCK(cs) UniqueLock UNIQUE_NAME(criticalblock)(MaybeCheckNotHeld(cs), #cs, __FILE__, __LINE__)
Line
Count
Source
11
0
#define UNIQUE_NAME(name) PASTE2(name, __COUNTER__)
Line
Count
Source
9
0
#define PASTE2(x, y) PASTE(x, y)
Line
Count
Source
8
0
#define PASTE(x, y) x ## y
356
0
    for (const CNode* pnode : m_nodes) {
357
0
        if (!pnode->fSuccessfullyConnected && !pnode->IsInboundConn() && pnode->GetLocalNonce() == nonce)
358
0
            return false;
359
0
    }
360
0
    return true;
361
0
}
362
363
/** Get the bind address for a socket as CService. */
364
static CService GetBindAddress(const Sock& sock)
365
0
{
366
0
    CService addr_bind;
367
0
    struct sockaddr_storage sockaddr_bind;
368
0
    socklen_t sockaddr_bind_len = sizeof(sockaddr_bind);
369
0
    if (!sock.GetSockName((struct sockaddr*)&sockaddr_bind, &sockaddr_bind_len)) {
370
0
        addr_bind.SetSockAddr((const struct sockaddr*)&sockaddr_bind, sockaddr_bind_len);
371
0
    } else {
372
0
        LogPrintLevel(BCLog::NET, BCLog::Level::Warning, "getsockname failed\n");
Line
Count
Source
385
0
    do {                                                              \
386
0
        if (LogAcceptCategory((category), (level))) {                 \
387
0
            bool rate_limit{level >= BCLog::Level::Info};             \
388
0
            LogPrintLevel_(category, level, rate_limit, __VA_ARGS__); \
Line
Count
Source
362
0
#define LogPrintLevel_(category, level, should_ratelimit, ...) LogPrintFormatInternal(std::source_location::current(), category, level, should_ratelimit, __VA_ARGS__)
389
0
        }                                                             \
390
0
    } while (0)
373
0
    }
374
0
    return addr_bind;
375
0
}
376
377
CNode* CConnman::ConnectNode(CAddress addrConnect,
378
                             const char* pszDest,
379
                             bool fCountFailure,
380
                             ConnectionType conn_type,
381
                             bool use_v2transport,
382
                             const std::optional<Proxy>& proxy_override)
383
0
{
384
0
    AssertLockNotHeld(m_unused_i2p_sessions_mutex);
Line
Count
Source
142
0
#define AssertLockNotHeld(cs) AssertLockNotHeldInline(#cs, __FILE__, __LINE__, &cs)
385
0
    assert(conn_type != ConnectionType::INBOUND);
386
387
0
    if (pszDest == nullptr) {
388
0
        if (IsLocal(addrConnect))
389
0
            return nullptr;
390
391
        // Look for an existing connection
392
0
        if (AlreadyConnectedToAddressPort(addrConnect)) {
393
0
            LogInfo("Failed to open new connection to %s, already connected", addrConnect.ToStringAddrPort());
Line
Count
Source
368
0
#define LogInfo(...) LogPrintLevel_(BCLog::LogFlags::ALL, BCLog::Level::Info, /*should_ratelimit=*/true, __VA_ARGS__)
Line
Count
Source
362
0
#define LogPrintLevel_(category, level, should_ratelimit, ...) LogPrintFormatInternal(std::source_location::current(), category, level, should_ratelimit, __VA_ARGS__)
394
0
            return nullptr;
395
0
        }
396
0
    }
397
398
0
    LogPrintLevel(BCLog::NET, BCLog::Level::Debug, "trying %s connection %s lastseen=%.1fhrs\n",
Line
Count
Source
385
0
    do {                                                              \
386
0
        if (LogAcceptCategory((category), (level))) {                 \
387
0
            bool rate_limit{level >= BCLog::Level::Info};             \
388
0
            LogPrintLevel_(category, level, rate_limit, __VA_ARGS__); \
Line
Count
Source
362
0
#define LogPrintLevel_(category, level, should_ratelimit, ...) LogPrintFormatInternal(std::source_location::current(), category, level, should_ratelimit, __VA_ARGS__)
389
0
        }                                                             \
390
0
    } while (0)
399
0
        use_v2transport ? "v2" : "v1",
400
0
        pszDest ? pszDest : addrConnect.ToStringAddrPort(),
401
0
        Ticks<HoursDouble>(pszDest ? 0h : Now<NodeSeconds>() - addrConnect.nTime));
402
403
    // Resolve
404
0
    const uint16_t default_port{pszDest != nullptr ? GetDefaultPort(pszDest) :
405
0
                                                     m_params.GetDefaultPort()};
406
407
    // Collection of addresses to try to connect to: either all dns resolved addresses if a domain name (pszDest) is provided, or addrConnect otherwise.
408
0
    std::vector<CAddress> connect_to{};
409
0
    if (pszDest) {
410
0
        std::vector<CService> resolved{Lookup(pszDest, default_port, fNameLookup && !HaveNameProxy(), 256)};
411
0
        if (!resolved.empty()) {
412
0
            std::shuffle(resolved.begin(), resolved.end(), FastRandomContext());
413
            // If the connection is made by name, it can be the case that the name resolves to more than one address.
414
            // We don't want to connect any more of them if we are already connected to one
415
0
            for (const auto& r : resolved) {
416
0
                addrConnect = CAddress{MaybeFlipIPv6toCJDNS(r), NODE_NONE};
417
0
                if (!addrConnect.IsValid()) {
418
0
                    LogDebug(BCLog::NET, "Resolver returned invalid address %s for %s\n", addrConnect.ToStringAddrPort(), pszDest);
Line
Count
Source
393
0
#define LogDebug(category, ...) LogPrintLevel(category, BCLog::Level::Debug, __VA_ARGS__)
Line
Count
Source
385
0
    do {                                                              \
386
0
        if (LogAcceptCategory((category), (level))) {                 \
387
0
            bool rate_limit{level >= BCLog::Level::Info};             \
388
0
            LogPrintLevel_(category, level, rate_limit, __VA_ARGS__); \
Line
Count
Source
362
0
#define LogPrintLevel_(category, level, should_ratelimit, ...) LogPrintFormatInternal(std::source_location::current(), category, level, should_ratelimit, __VA_ARGS__)
389
0
        }                                                             \
390
0
    } while (0)
419
0
                    return nullptr;
420
0
                }
421
                // It is possible that we already have a connection to the IP/port pszDest resolved to.
422
                // In that case, drop the connection that was just created.
423
0
                if (AlreadyConnectedToAddressPort(addrConnect)) {
424
0
                    LogPrintf("Not opening a connection to %s, already connected to %s\n", pszDest, addrConnect.ToStringAddrPort());
Line
Count
Source
373
0
#define LogPrintf(...) LogInfo(__VA_ARGS__)
Line
Count
Source
368
0
#define LogInfo(...) LogPrintLevel_(BCLog::LogFlags::ALL, BCLog::Level::Info, /*should_ratelimit=*/true, __VA_ARGS__)
Line
Count
Source
362
0
#define LogPrintLevel_(category, level, should_ratelimit, ...) LogPrintFormatInternal(std::source_location::current(), category, level, should_ratelimit, __VA_ARGS__)
425
0
                    return nullptr;
426
0
                }
427
                // Add the address to the resolved addresses vector so we can try to connect to it later on
428
0
                connect_to.push_back(addrConnect);
429
0
            }
430
0
        } else {
431
            // For resolution via proxy
432
0
            connect_to.push_back(addrConnect);
433
0
        }
434
0
    } else {
435
        // Connect via addrConnect directly
436
0
        connect_to.push_back(addrConnect);
437
0
    }
438
439
    // Connect
440
0
    std::unique_ptr<Sock> sock;
441
0
    Proxy proxy;
442
0
    CService addr_bind;
443
0
    assert(!addr_bind.IsValid());
444
0
    std::unique_ptr<i2p::sam::Session> i2p_transient_session;
445
446
0
    for (auto& target_addr: connect_to) {
447
0
        if (target_addr.IsValid()) {
448
0
            bool use_proxy;
449
0
            if (proxy_override.has_value()) {
450
0
                use_proxy = true;
451
0
                proxy = proxy_override.value();
452
0
            } else {
453
0
                use_proxy = GetProxy(target_addr.GetNetwork(), proxy);
454
0
            }
455
0
            bool proxyConnectionFailed = false;
456
457
0
            if (target_addr.IsI2P() && use_proxy) {
458
0
                i2p::Connection conn;
459
0
                bool connected{false};
460
461
0
                if (m_i2p_sam_session) {
462
0
                    connected = m_i2p_sam_session->Connect(target_addr, conn, proxyConnectionFailed);
463
0
                } else {
464
0
                    {
465
0
                        LOCK(m_unused_i2p_sessions_mutex);
Line
Count
Source
259
0
#define LOCK(cs) UniqueLock UNIQUE_NAME(criticalblock)(MaybeCheckNotHeld(cs), #cs, __FILE__, __LINE__)
Line
Count
Source
11
0
#define UNIQUE_NAME(name) PASTE2(name, __COUNTER__)
Line
Count
Source
9
0
#define PASTE2(x, y) PASTE(x, y)
Line
Count
Source
8
0
#define PASTE(x, y) x ## y
466
0
                        if (m_unused_i2p_sessions.empty()) {
467
0
                            i2p_transient_session =
468
0
                                std::make_unique<i2p::sam::Session>(proxy, m_interrupt_net);
469
0
                        } else {
470
0
                            i2p_transient_session.swap(m_unused_i2p_sessions.front());
471
0
                            m_unused_i2p_sessions.pop();
472
0
                        }
473
0
                    }
474
0
                    connected = i2p_transient_session->Connect(target_addr, conn, proxyConnectionFailed);
475
0
                    if (!connected) {
476
0
                        LOCK(m_unused_i2p_sessions_mutex);
Line
Count
Source
259
0
#define LOCK(cs) UniqueLock UNIQUE_NAME(criticalblock)(MaybeCheckNotHeld(cs), #cs, __FILE__, __LINE__)
Line
Count
Source
11
0
#define UNIQUE_NAME(name) PASTE2(name, __COUNTER__)
Line
Count
Source
9
0
#define PASTE2(x, y) PASTE(x, y)
Line
Count
Source
8
0
#define PASTE(x, y) x ## y
477
0
                        if (m_unused_i2p_sessions.size() < MAX_UNUSED_I2P_SESSIONS_SIZE) {
478
0
                            m_unused_i2p_sessions.emplace(i2p_transient_session.release());
479
0
                        }
480
0
                    }
481
0
                }
482
483
0
                if (connected) {
484
0
                    sock = std::move(conn.sock);
485
0
                    addr_bind = conn.me;
486
0
                }
487
0
            } else if (use_proxy) {
488
0
                LogPrintLevel(BCLog::PROXY, BCLog::Level::Debug, "Using proxy: %s to connect to %s\n", proxy.ToString(), target_addr.ToStringAddrPort());
Line
Count
Source
385
0
    do {                                                              \
386
0
        if (LogAcceptCategory((category), (level))) {                 \
387
0
            bool rate_limit{level >= BCLog::Level::Info};             \
388
0
            LogPrintLevel_(category, level, rate_limit, __VA_ARGS__); \
Line
Count
Source
362
0
#define LogPrintLevel_(category, level, should_ratelimit, ...) LogPrintFormatInternal(std::source_location::current(), category, level, should_ratelimit, __VA_ARGS__)
389
0
        }                                                             \
390
0
    } while (0)
489
0
                sock = ConnectThroughProxy(proxy, target_addr.ToStringAddr(), target_addr.GetPort(), proxyConnectionFailed);
490
0
            } else {
491
                // no proxy needed (none set for target network)
492
0
                sock = ConnectDirectly(target_addr, conn_type == ConnectionType::MANUAL);
493
0
            }
494
0
            if (!proxyConnectionFailed) {
495
                // If a connection to the node was attempted, and failure (if any) is not caused by a problem connecting to
496
                // the proxy, mark this as an attempt.
497
0
                addrman.Attempt(target_addr, fCountFailure);
498
0
            }
499
0
        } else if (pszDest && GetNameProxy(proxy)) {
500
0
            std::string host;
501
0
            uint16_t port{default_port};
502
0
            SplitHostPort(std::string(pszDest), port, host);
503
0
            bool proxyConnectionFailed;
504
0
            sock = ConnectThroughProxy(proxy, host, port, proxyConnectionFailed);
505
0
        }
506
        // Check any other resolved address (if any) if we fail to connect
507
0
        if (!sock) {
508
0
            continue;
509
0
        }
510
511
0
        NetPermissionFlags permission_flags = NetPermissionFlags::None;
512
0
        std::vector<NetWhitelistPermissions> whitelist_permissions = conn_type == ConnectionType::MANUAL ? vWhitelistedRangeOutgoing : std::vector<NetWhitelistPermissions>{};
513
0
        AddWhitelistPermissionFlags(permission_flags, target_addr, whitelist_permissions);
514
515
        // Add node
516
0
        NodeId id = GetNewNodeId();
517
0
        uint64_t nonce = GetDeterministicRandomizer(RANDOMIZER_ID_LOCALHOSTNONCE).Write(id).Finalize();
518
0
        if (!addr_bind.IsValid()) {
519
0
            addr_bind = GetBindAddress(*sock);
520
0
        }
521
0
        uint64_t network_id = GetDeterministicRandomizer(RANDOMIZER_ID_NETWORKKEY)
522
0
                            .Write(target_addr.GetNetClass())
523
0
                            .Write(addr_bind.GetAddrBytes())
524
                            // For outbound connections, the port of the bound address is randomly
525
                            // assigned by the OS and would therefore not be useful for seeding.
526
0
                            .Write(0)
527
0
                            .Finalize();
528
0
        CNode* pnode = new CNode(id,
529
0
                                std::move(sock),
530
0
                                target_addr,
531
0
                                CalculateKeyedNetGroup(target_addr),
532
0
                                nonce,
533
0
                                addr_bind,
534
0
                                pszDest ? pszDest : "",
535
0
                                conn_type,
536
0
                                /*inbound_onion=*/false,
537
0
                                network_id,
538
0
                                CNodeOptions{
539
0
                                    .permission_flags = permission_flags,
540
0
                                    .i2p_sam_session = std::move(i2p_transient_session),
541
0
                                    .recv_flood_size = nReceiveFloodSize,
542
0
                                    .use_v2transport = use_v2transport,
543
0
                                });
544
0
        pnode->AddRef();
545
546
        // We're making a new connection, harvest entropy from the time (and our peer count)
547
0
        RandAddEvent((uint32_t)id);
548
549
0
        return pnode;
550
0
    }
551
552
0
    return nullptr;
553
0
}
554
555
void CNode::CloseSocketDisconnect()
556
0
{
557
0
    fDisconnect = true;
558
0
    LOCK(m_sock_mutex);
Line
Count
Source
259
0
#define LOCK(cs) UniqueLock UNIQUE_NAME(criticalblock)(MaybeCheckNotHeld(cs), #cs, __FILE__, __LINE__)
Line
Count
Source
11
0
#define UNIQUE_NAME(name) PASTE2(name, __COUNTER__)
Line
Count
Source
9
0
#define PASTE2(x, y) PASTE(x, y)
Line
Count
Source
8
0
#define PASTE(x, y) x ## y
559
0
    if (m_sock) {
560
0
        LogDebug(BCLog::NET, "Resetting socket for peer=%d%s", GetId(), LogIP(fLogIPs));
Line
Count
Source
393
0
#define LogDebug(category, ...) LogPrintLevel(category, BCLog::Level::Debug, __VA_ARGS__)
Line
Count
Source
385
0
    do {                                                              \
386
0
        if (LogAcceptCategory((category), (level))) {                 \
387
0
            bool rate_limit{level >= BCLog::Level::Info};             \
388
0
            LogPrintLevel_(category, level, rate_limit, __VA_ARGS__); \
Line
Count
Source
362
0
#define LogPrintLevel_(category, level, should_ratelimit, ...) LogPrintFormatInternal(std::source_location::current(), category, level, should_ratelimit, __VA_ARGS__)
389
0
        }                                                             \
390
0
    } while (0)
561
0
        m_sock.reset();
562
563
0
        TRACEPOINT(net, closed_connection,
564
0
            GetId(),
565
0
            m_addr_name.c_str(),
566
0
            ConnectionTypeAsString().c_str(),
567
0
            ConnectedThroughNetwork(),
568
0
            Ticks<std::chrono::seconds>(m_connected));
569
0
    }
570
0
    m_i2p_sam_session.reset();
571
0
}
572
573
0
void CConnman::AddWhitelistPermissionFlags(NetPermissionFlags& flags, std::optional<CNetAddr> addr, const std::vector<NetWhitelistPermissions>& ranges) const {
574
0
    for (const auto& subnet : ranges) {
575
0
        if (addr.has_value() && subnet.m_subnet.Match(addr.value())) {
576
0
            NetPermissions::AddFlag(flags, subnet.m_flags);
577
0
        }
578
0
    }
579
0
    if (NetPermissions::HasFlag(flags, NetPermissionFlags::Implicit)) {
580
0
        NetPermissions::ClearFlag(flags, NetPermissionFlags::Implicit);
581
0
        if (whitelist_forcerelay) NetPermissions::AddFlag(flags, NetPermissionFlags::ForceRelay);
582
0
        if (whitelist_relay) NetPermissions::AddFlag(flags, NetPermissionFlags::Relay);
583
0
        NetPermissions::AddFlag(flags, NetPermissionFlags::Mempool);
584
0
        NetPermissions::AddFlag(flags, NetPermissionFlags::NoBan);
585
0
    }
586
0
}
587
588
CService CNode::GetAddrLocal() const
589
0
{
590
0
    AssertLockNotHeld(m_addr_local_mutex);
Line
Count
Source
142
0
#define AssertLockNotHeld(cs) AssertLockNotHeldInline(#cs, __FILE__, __LINE__, &cs)
591
0
    LOCK(m_addr_local_mutex);
Line
Count
Source
259
0
#define LOCK(cs) UniqueLock UNIQUE_NAME(criticalblock)(MaybeCheckNotHeld(cs), #cs, __FILE__, __LINE__)
Line
Count
Source
11
0
#define UNIQUE_NAME(name) PASTE2(name, __COUNTER__)
Line
Count
Source
9
0
#define PASTE2(x, y) PASTE(x, y)
Line
Count
Source
8
0
#define PASTE(x, y) x ## y
592
0
    return m_addr_local;
593
0
}
594
595
0
void CNode::SetAddrLocal(const CService& addrLocalIn) {
596
0
    AssertLockNotHeld(m_addr_local_mutex);
Line
Count
Source
142
0
#define AssertLockNotHeld(cs) AssertLockNotHeldInline(#cs, __FILE__, __LINE__, &cs)
597
0
    LOCK(m_addr_local_mutex);
Line
Count
Source
259
0
#define LOCK(cs) UniqueLock UNIQUE_NAME(criticalblock)(MaybeCheckNotHeld(cs), #cs, __FILE__, __LINE__)
Line
Count
Source
11
0
#define UNIQUE_NAME(name) PASTE2(name, __COUNTER__)
Line
Count
Source
9
0
#define PASTE2(x, y) PASTE(x, y)
Line
Count
Source
8
0
#define PASTE(x, y) x ## y
598
0
    if (Assume(!m_addr_local.IsValid())) { // Addr local can only be set once during version msg processing
Line
Count
Source
125
0
#define Assume(val) inline_assertion_check<false>(val, std::source_location::current(), #val)
599
0
        m_addr_local = addrLocalIn;
600
0
    }
601
0
}
602
603
Network CNode::ConnectedThroughNetwork() const
604
0
{
605
0
    return m_inbound_onion ? NET_ONION : addr.GetNetClass();
606
0
}
607
608
bool CNode::IsConnectedThroughPrivacyNet() const
609
0
{
610
0
    return m_inbound_onion || addr.IsPrivacyNet();
611
0
}
612
613
#undef X
614
0
#define X(name) stats.name = name
615
void CNode::CopyStats(CNodeStats& stats)
616
0
{
617
0
    stats.nodeid = this->GetId();
618
0
    X(addr);
Line
Count
Source
614
0
#define X(name) stats.name = name
619
0
    X(addrBind);
Line
Count
Source
614
0
#define X(name) stats.name = name
620
0
    stats.m_network = ConnectedThroughNetwork();
621
0
    X(m_last_send);
Line
Count
Source
614
0
#define X(name) stats.name = name
622
0
    X(m_last_recv);
Line
Count
Source
614
0
#define X(name) stats.name = name
623
0
    X(m_last_tx_time);
Line
Count
Source
614
0
#define X(name) stats.name = name
624
0
    X(m_last_block_time);
Line
Count
Source
614
0
#define X(name) stats.name = name
625
0
    X(m_connected);
Line
Count
Source
614
0
#define X(name) stats.name = name
626
0
    X(m_addr_name);
Line
Count
Source
614
0
#define X(name) stats.name = name
627
0
    X(nVersion);
Line
Count
Source
614
0
#define X(name) stats.name = name
628
0
    {
629
0
        LOCK(m_subver_mutex);
Line
Count
Source
259
0
#define LOCK(cs) UniqueLock UNIQUE_NAME(criticalblock)(MaybeCheckNotHeld(cs), #cs, __FILE__, __LINE__)
Line
Count
Source
11
0
#define UNIQUE_NAME(name) PASTE2(name, __COUNTER__)
Line
Count
Source
9
0
#define PASTE2(x, y) PASTE(x, y)
Line
Count
Source
8
0
#define PASTE(x, y) x ## y
630
0
        X(cleanSubVer);
Line
Count
Source
614
0
#define X(name) stats.name = name
631
0
    }
632
0
    stats.fInbound = IsInboundConn();
633
0
    X(m_bip152_highbandwidth_to);
Line
Count
Source
614
0
#define X(name) stats.name = name
634
0
    X(m_bip152_highbandwidth_from);
Line
Count
Source
614
0
#define X(name) stats.name = name
635
0
    {
636
0
        LOCK(cs_vSend);
Line
Count
Source
259
0
#define LOCK(cs) UniqueLock UNIQUE_NAME(criticalblock)(MaybeCheckNotHeld(cs), #cs, __FILE__, __LINE__)
Line
Count
Source
11
0
#define UNIQUE_NAME(name) PASTE2(name, __COUNTER__)
Line
Count
Source
9
0
#define PASTE2(x, y) PASTE(x, y)
Line
Count
Source
8
0
#define PASTE(x, y) x ## y
637
0
        X(mapSendBytesPerMsgType);
Line
Count
Source
614
0
#define X(name) stats.name = name
638
0
        X(nSendBytes);
Line
Count
Source
614
0
#define X(name) stats.name = name
639
0
    }
640
0
    {
641
0
        LOCK(cs_vRecv);
Line
Count
Source
259
0
#define LOCK(cs) UniqueLock UNIQUE_NAME(criticalblock)(MaybeCheckNotHeld(cs), #cs, __FILE__, __LINE__)
Line
Count
Source
11
0
#define UNIQUE_NAME(name) PASTE2(name, __COUNTER__)
Line
Count
Source
9
0
#define PASTE2(x, y) PASTE(x, y)
Line
Count
Source
8
0
#define PASTE(x, y) x ## y
642
0
        X(mapRecvBytesPerMsgType);
Line
Count
Source
614
0
#define X(name) stats.name = name
643
0
        X(nRecvBytes);
Line
Count
Source
614
0
#define X(name) stats.name = name
644
0
        Transport::Info info = m_transport->GetInfo();
645
0
        stats.m_transport_type = info.transport_type;
646
0
        if (info.session_id) stats.m_session_id = HexStr(*info.session_id);
647
0
    }
648
0
    X(m_permission_flags);
Line
Count
Source
614
0
#define X(name) stats.name = name
649
650
0
    X(m_last_ping_time);
Line
Count
Source
614
0
#define X(name) stats.name = name
651
0
    X(m_min_ping_time);
Line
Count
Source
614
0
#define X(name) stats.name = name
652
653
    // Leave string empty if addrLocal invalid (not filled in yet)
654
0
    CService addrLocalUnlocked = GetAddrLocal();
655
0
    stats.addrLocal = addrLocalUnlocked.IsValid() ? addrLocalUnlocked.ToStringAddrPort() : "";
656
657
0
    X(m_conn_type);
Line
Count
Source
614
0
#define X(name) stats.name = name
658
0
}
659
#undef X
660
661
bool CNode::ReceiveMsgBytes(std::span<const uint8_t> msg_bytes, bool& complete)
662
0
{
663
0
    complete = false;
664
0
    const auto time = GetTime<std::chrono::microseconds>();
665
0
    LOCK(cs_vRecv);
Line
Count
Source
259
0
#define LOCK(cs) UniqueLock UNIQUE_NAME(criticalblock)(MaybeCheckNotHeld(cs), #cs, __FILE__, __LINE__)
Line
Count
Source
11
0
#define UNIQUE_NAME(name) PASTE2(name, __COUNTER__)
Line
Count
Source
9
0
#define PASTE2(x, y) PASTE(x, y)
Line
Count
Source
8
0
#define PASTE(x, y) x ## y
666
0
    m_last_recv = std::chrono::duration_cast<std::chrono::seconds>(time);
667
0
    nRecvBytes += msg_bytes.size();
668
0
    while (msg_bytes.size() > 0) {
669
        // absorb network data
670
0
        if (!m_transport->ReceivedBytes(msg_bytes)) {
671
            // Serious transport problem, disconnect from the peer.
672
0
            return false;
673
0
        }
674
675
0
        if (m_transport->ReceivedMessageComplete()) {
676
            // decompose a transport agnostic CNetMessage from the deserializer
677
0
            bool reject_message{false};
678
0
            CNetMessage msg = m_transport->GetReceivedMessage(time, reject_message);
679
0
            if (reject_message) {
680
                // Message deserialization failed. Drop the message but don't disconnect the peer.
681
                // store the size of the corrupt message
682
0
                mapRecvBytesPerMsgType.at(NET_MESSAGE_TYPE_OTHER) += msg.m_raw_message_size;
683
0
                continue;
684
0
            }
685
686
            // Store received bytes per message type.
687
            // To prevent a memory DOS, only allow known message types.
688
0
            auto i = mapRecvBytesPerMsgType.find(msg.m_type);
689
0
            if (i == mapRecvBytesPerMsgType.end()) {
690
0
                i = mapRecvBytesPerMsgType.find(NET_MESSAGE_TYPE_OTHER);
691
0
            }
692
0
            assert(i != mapRecvBytesPerMsgType.end());
693
0
            i->second += msg.m_raw_message_size;
694
695
            // push the message to the process queue,
696
0
            vRecvMsg.push_back(std::move(msg));
697
698
0
            complete = true;
699
0
        }
700
0
    }
701
702
0
    return true;
703
0
}
704
705
std::string CNode::LogIP(bool log_ip) const
706
0
{
707
0
    return log_ip ? strprintf(" peeraddr=%s", addr.ToStringAddrPort()) : "";
Line
Count
Source
1172
0
#define strprintf tfm::format
708
0
}
709
710
std::string CNode::DisconnectMsg(bool log_ip) const
711
0
{
712
0
    return strprintf("disconnecting peer=%d%s",
Line
Count
Source
1172
0
#define strprintf tfm::format
713
0
                     GetId(),
714
0
                     LogIP(log_ip));
715
0
}
716
717
V1Transport::V1Transport(const NodeId node_id) noexcept
718
0
    : m_magic_bytes{Params().MessageStart()}, m_node_id{node_id}
719
0
{
720
0
    LOCK(m_recv_mutex);
Line
Count
Source
259
0
#define LOCK(cs) UniqueLock UNIQUE_NAME(criticalblock)(MaybeCheckNotHeld(cs), #cs, __FILE__, __LINE__)
Line
Count
Source
11
0
#define UNIQUE_NAME(name) PASTE2(name, __COUNTER__)
Line
Count
Source
9
0
#define PASTE2(x, y) PASTE(x, y)
Line
Count
Source
8
0
#define PASTE(x, y) x ## y
721
0
    Reset();
722
0
}
723
724
Transport::Info V1Transport::GetInfo() const noexcept
725
0
{
726
0
    return {.transport_type = TransportProtocolType::V1, .session_id = {}};
727
0
}
728
729
int V1Transport::readHeader(std::span<const uint8_t> msg_bytes)
730
0
{
731
0
    AssertLockHeld(m_recv_mutex);
Line
Count
Source
137
0
#define AssertLockHeld(cs) AssertLockHeldInternal(#cs, __FILE__, __LINE__, &cs)
732
    // copy data to temporary parsing buffer
733
0
    unsigned int nRemaining = CMessageHeader::HEADER_SIZE - nHdrPos;
734
0
    unsigned int nCopy = std::min<unsigned int>(nRemaining, msg_bytes.size());
735
736
0
    memcpy(&hdrbuf[nHdrPos], msg_bytes.data(), nCopy);
737
0
    nHdrPos += nCopy;
738
739
    // if header incomplete, exit
740
0
    if (nHdrPos < CMessageHeader::HEADER_SIZE)
741
0
        return nCopy;
742
743
    // deserialize to CMessageHeader
744
0
    try {
745
0
        hdrbuf >> hdr;
746
0
    }
747
0
    catch (const std::exception&) {
748
0
        LogDebug(BCLog::NET, "Header error: Unable to deserialize, peer=%d\n", m_node_id);
Line
Count
Source
393
0
#define LogDebug(category, ...) LogPrintLevel(category, BCLog::Level::Debug, __VA_ARGS__)
Line
Count
Source
385
0
    do {                                                              \
386
0
        if (LogAcceptCategory((category), (level))) {                 \
387
0
            bool rate_limit{level >= BCLog::Level::Info};             \
388
0
            LogPrintLevel_(category, level, rate_limit, __VA_ARGS__); \
Line
Count
Source
362
0
#define LogPrintLevel_(category, level, should_ratelimit, ...) LogPrintFormatInternal(std::source_location::current(), category, level, should_ratelimit, __VA_ARGS__)
389
0
        }                                                             \
390
0
    } while (0)
749
0
        return -1;
750
0
    }
751
752
    // Check start string, network magic
753
0
    if (hdr.pchMessageStart != m_magic_bytes) {
754
0
        LogDebug(BCLog::NET, "Header error: Wrong MessageStart %s received, peer=%d\n", HexStr(hdr.pchMessageStart), m_node_id);
Line
Count
Source
393
0
#define LogDebug(category, ...) LogPrintLevel(category, BCLog::Level::Debug, __VA_ARGS__)
Line
Count
Source
385
0
    do {                                                              \
386
0
        if (LogAcceptCategory((category), (level))) {                 \
387
0
            bool rate_limit{level >= BCLog::Level::Info};             \
388
0
            LogPrintLevel_(category, level, rate_limit, __VA_ARGS__); \
Line
Count
Source
362
0
#define LogPrintLevel_(category, level, should_ratelimit, ...) LogPrintFormatInternal(std::source_location::current(), category, level, should_ratelimit, __VA_ARGS__)
389
0
        }                                                             \
390
0
    } while (0)
755
0
        return -1;
756
0
    }
757
758
    // reject messages larger than MAX_SIZE or MAX_PROTOCOL_MESSAGE_LENGTH
759
    // NOTE: failing to perform this check previously allowed a malicious peer to make us allocate 32MiB of memory per
760
    // connection. See https://bitcoincore.org/en/2024/07/03/disclose_receive_buffer_oom.
761
0
    if (hdr.nMessageSize > MAX_SIZE || hdr.nMessageSize > MAX_PROTOCOL_MESSAGE_LENGTH) {
762
0
        LogDebug(BCLog::NET, "Header error: Size too large (%s, %u bytes), peer=%d\n", SanitizeString(hdr.GetMessageType()), hdr.nMessageSize, m_node_id);
Line
Count
Source
393
0
#define LogDebug(category, ...) LogPrintLevel(category, BCLog::Level::Debug, __VA_ARGS__)
Line
Count
Source
385
0
    do {                                                              \
386
0
        if (LogAcceptCategory((category), (level))) {                 \
387
0
            bool rate_limit{level >= BCLog::Level::Info};             \
388
0
            LogPrintLevel_(category, level, rate_limit, __VA_ARGS__); \
Line
Count
Source
362
0
#define LogPrintLevel_(category, level, should_ratelimit, ...) LogPrintFormatInternal(std::source_location::current(), category, level, should_ratelimit, __VA_ARGS__)
389
0
        }                                                             \
390
0
    } while (0)
763
0
        return -1;
764
0
    }
765
766
    // switch state to reading message data
767
0
    in_data = true;
768
769
0
    return nCopy;
770
0
}
771
772
int V1Transport::readData(std::span<const uint8_t> msg_bytes)
773
0
{
774
0
    AssertLockHeld(m_recv_mutex);
Line
Count
Source
137
0
#define AssertLockHeld(cs) AssertLockHeldInternal(#cs, __FILE__, __LINE__, &cs)
775
0
    unsigned int nRemaining = hdr.nMessageSize - nDataPos;
776
0
    unsigned int nCopy = std::min<unsigned int>(nRemaining, msg_bytes.size());
777
778
0
    if (vRecv.size() < nDataPos + nCopy) {
779
        // Allocate up to 256 KiB ahead, but never more than the total message size.
780
0
        vRecv.resize(std::min(hdr.nMessageSize, nDataPos + nCopy + 256 * 1024));
781
0
    }
782
783
0
    hasher.Write(msg_bytes.first(nCopy));
784
0
    memcpy(&vRecv[nDataPos], msg_bytes.data(), nCopy);
785
0
    nDataPos += nCopy;
786
787
0
    return nCopy;
788
0
}
789
790
const uint256& V1Transport::GetMessageHash() const
791
0
{
792
0
    AssertLockHeld(m_recv_mutex);
Line
Count
Source
137
0
#define AssertLockHeld(cs) AssertLockHeldInternal(#cs, __FILE__, __LINE__, &cs)
793
0
    assert(CompleteInternal());
794
0
    if (data_hash.IsNull())
795
0
        hasher.Finalize(data_hash);
796
0
    return data_hash;
797
0
}
798
799
CNetMessage V1Transport::GetReceivedMessage(const std::chrono::microseconds time, bool& reject_message)
800
0
{
801
0
    AssertLockNotHeld(m_recv_mutex);
Line
Count
Source
142
0
#define AssertLockNotHeld(cs) AssertLockNotHeldInline(#cs, __FILE__, __LINE__, &cs)
802
    // Initialize out parameter
803
0
    reject_message = false;
804
    // decompose a single CNetMessage from the TransportDeserializer
805
0
    LOCK(m_recv_mutex);
Line
Count
Source
259
0
#define LOCK(cs) UniqueLock UNIQUE_NAME(criticalblock)(MaybeCheckNotHeld(cs), #cs, __FILE__, __LINE__)
Line
Count
Source
11
0
#define UNIQUE_NAME(name) PASTE2(name, __COUNTER__)
Line
Count
Source
9
0
#define PASTE2(x, y) PASTE(x, y)
Line
Count
Source
8
0
#define PASTE(x, y) x ## y
806
0
    CNetMessage msg(std::move(vRecv));
807
808
    // store message type string, time, and sizes
809
0
    msg.m_type = hdr.GetMessageType();
810
0
    msg.m_time = time;
811
0
    msg.m_message_size = hdr.nMessageSize;
812
0
    msg.m_raw_message_size = hdr.nMessageSize + CMessageHeader::HEADER_SIZE;
813
814
0
    uint256 hash = GetMessageHash();
815
816
    // We just received a message off the wire, harvest entropy from the time (and the message checksum)
817
0
    RandAddEvent(ReadLE32(hash.begin()));
818
819
    // Check checksum and header message type string
820
0
    if (memcmp(hash.begin(), hdr.pchChecksum, CMessageHeader::CHECKSUM_SIZE) != 0) {
821
0
        LogDebug(BCLog::NET, "Header error: Wrong checksum (%s, %u bytes), expected %s was %s, peer=%d\n",
Line
Count
Source
393
0
#define LogDebug(category, ...) LogPrintLevel(category, BCLog::Level::Debug, __VA_ARGS__)
Line
Count
Source
385
0
    do {                                                              \
386
0
        if (LogAcceptCategory((category), (level))) {                 \
387
0
            bool rate_limit{level >= BCLog::Level::Info};             \
388
0
            LogPrintLevel_(category, level, rate_limit, __VA_ARGS__); \
Line
Count
Source
362
0
#define LogPrintLevel_(category, level, should_ratelimit, ...) LogPrintFormatInternal(std::source_location::current(), category, level, should_ratelimit, __VA_ARGS__)
389
0
        }                                                             \
390
0
    } while (0)
822
0
                 SanitizeString(msg.m_type), msg.m_message_size,
823
0
                 HexStr(std::span{hash}.first(CMessageHeader::CHECKSUM_SIZE)),
824
0
                 HexStr(hdr.pchChecksum),
825
0
                 m_node_id);
826
0
        reject_message = true;
827
0
    } else if (!hdr.IsMessageTypeValid()) {
828
0
        LogDebug(BCLog::NET, "Header error: Invalid message type (%s, %u bytes), peer=%d\n",
Line
Count
Source
393
0
#define LogDebug(category, ...) LogPrintLevel(category, BCLog::Level::Debug, __VA_ARGS__)
Line
Count
Source
385
0
    do {                                                              \
386
0
        if (LogAcceptCategory((category), (level))) {                 \
387
0
            bool rate_limit{level >= BCLog::Level::Info};             \
388
0
            LogPrintLevel_(category, level, rate_limit, __VA_ARGS__); \
Line
Count
Source
362
0
#define LogPrintLevel_(category, level, should_ratelimit, ...) LogPrintFormatInternal(std::source_location::current(), category, level, should_ratelimit, __VA_ARGS__)
389
0
        }                                                             \
390
0
    } while (0)
829
0
                 SanitizeString(hdr.GetMessageType()), msg.m_message_size, m_node_id);
830
0
        reject_message = true;
831
0
    }
832
833
    // Always reset the network deserializer (prepare for the next message)
834
0
    Reset();
835
0
    return msg;
836
0
}
837
838
bool V1Transport::SetMessageToSend(CSerializedNetMsg& msg) noexcept
839
0
{
840
0
    AssertLockNotHeld(m_send_mutex);
Line
Count
Source
142
0
#define AssertLockNotHeld(cs) AssertLockNotHeldInline(#cs, __FILE__, __LINE__, &cs)
841
    // Determine whether a new message can be set.
842
0
    LOCK(m_send_mutex);
Line
Count
Source
259
0
#define LOCK(cs) UniqueLock UNIQUE_NAME(criticalblock)(MaybeCheckNotHeld(cs), #cs, __FILE__, __LINE__)
Line
Count
Source
11
0
#define UNIQUE_NAME(name) PASTE2(name, __COUNTER__)
Line
Count
Source
9
0
#define PASTE2(x, y) PASTE(x, y)
Line
Count
Source
8
0
#define PASTE(x, y) x ## y
843
0
    if (m_sending_header || m_bytes_sent < m_message_to_send.data.size()) return false;
844
845
    // create dbl-sha256 checksum
846
0
    uint256 hash = Hash(msg.data);
847
848
    // create header
849
0
    CMessageHeader hdr(m_magic_bytes, msg.m_type.c_str(), msg.data.size());
850
0
    memcpy(hdr.pchChecksum, hash.begin(), CMessageHeader::CHECKSUM_SIZE);
851
852
    // serialize header
853
0
    m_header_to_send.clear();
854
0
    VectorWriter{m_header_to_send, 0, hdr};
855
856
    // update state
857
0
    m_message_to_send = std::move(msg);
858
0
    m_sending_header = true;
859
0
    m_bytes_sent = 0;
860
0
    return true;
861
0
}
862
863
Transport::BytesToSend V1Transport::GetBytesToSend(bool have_next_message) const noexcept
864
0
{
865
0
    AssertLockNotHeld(m_send_mutex);
Line
Count
Source
142
0
#define AssertLockNotHeld(cs) AssertLockNotHeldInline(#cs, __FILE__, __LINE__, &cs)
866
0
    LOCK(m_send_mutex);
Line
Count
Source
259
0
#define LOCK(cs) UniqueLock UNIQUE_NAME(criticalblock)(MaybeCheckNotHeld(cs), #cs, __FILE__, __LINE__)
Line
Count
Source
11
0
#define UNIQUE_NAME(name) PASTE2(name, __COUNTER__)
Line
Count
Source
9
0
#define PASTE2(x, y) PASTE(x, y)
Line
Count
Source
8
0
#define PASTE(x, y) x ## y
867
0
    if (m_sending_header) {
868
0
        return {std::span{m_header_to_send}.subspan(m_bytes_sent),
869
                // We have more to send after the header if the message has payload, or if there
870
                // is a next message after that.
871
0
                have_next_message || !m_message_to_send.data.empty(),
872
0
                m_message_to_send.m_type
873
0
               };
874
0
    } else {
875
0
        return {std::span{m_message_to_send.data}.subspan(m_bytes_sent),
876
                // We only have more to send after this message's payload if there is another
877
                // message.
878
0
                have_next_message,
879
0
                m_message_to_send.m_type
880
0
               };
881
0
    }
882
0
}
883
884
void V1Transport::MarkBytesSent(size_t bytes_sent) noexcept
885
0
{
886
0
    AssertLockNotHeld(m_send_mutex);
Line
Count
Source
142
0
#define AssertLockNotHeld(cs) AssertLockNotHeldInline(#cs, __FILE__, __LINE__, &cs)
887
0
    LOCK(m_send_mutex);
Line
Count
Source
259
0
#define LOCK(cs) UniqueLock UNIQUE_NAME(criticalblock)(MaybeCheckNotHeld(cs), #cs, __FILE__, __LINE__)
Line
Count
Source
11
0
#define UNIQUE_NAME(name) PASTE2(name, __COUNTER__)
Line
Count
Source
9
0
#define PASTE2(x, y) PASTE(x, y)
Line
Count
Source
8
0
#define PASTE(x, y) x ## y
888
0
    m_bytes_sent += bytes_sent;
889
0
    if (m_sending_header && m_bytes_sent == m_header_to_send.size()) {
890
        // We're done sending a message's header. Switch to sending its data bytes.
891
0
        m_sending_header = false;
892
0
        m_bytes_sent = 0;
893
0
    } else if (!m_sending_header && m_bytes_sent == m_message_to_send.data.size()) {
894
        // We're done sending a message's data. Wipe the data vector to reduce memory consumption.
895
0
        ClearShrink(m_message_to_send.data);
896
0
        m_bytes_sent = 0;
897
0
    }
898
0
}
899
900
size_t V1Transport::GetSendMemoryUsage() const noexcept
901
0
{
902
0
    AssertLockNotHeld(m_send_mutex);
Line
Count
Source
142
0
#define AssertLockNotHeld(cs) AssertLockNotHeldInline(#cs, __FILE__, __LINE__, &cs)
903
0
    LOCK(m_send_mutex);
Line
Count
Source
259
0
#define LOCK(cs) UniqueLock UNIQUE_NAME(criticalblock)(MaybeCheckNotHeld(cs), #cs, __FILE__, __LINE__)
Line
Count
Source
11
0
#define UNIQUE_NAME(name) PASTE2(name, __COUNTER__)
Line
Count
Source
9
0
#define PASTE2(x, y) PASTE(x, y)
Line
Count
Source
8
0
#define PASTE(x, y) x ## y
904
    // Don't count sending-side fields besides m_message_to_send, as they're all small and bounded.
905
0
    return m_message_to_send.GetMemoryUsage();
906
0
}
907
908
namespace {
909
910
/** List of short messages as defined in BIP324, in order.
911
 *
912
 * Only message types that are actually implemented in this codebase need to be listed, as other
913
 * messages get ignored anyway - whether we know how to decode them or not.
914
 */
915
const std::array<std::string, 33> V2_MESSAGE_IDS = {
916
    "", // 12 bytes follow encoding the message type like in V1
917
    NetMsgType::ADDR,
918
    NetMsgType::BLOCK,
919
    NetMsgType::BLOCKTXN,
920
    NetMsgType::CMPCTBLOCK,
921
    NetMsgType::FEEFILTER,
922
    NetMsgType::FILTERADD,
923
    NetMsgType::FILTERCLEAR,
924
    NetMsgType::FILTERLOAD,
925
    NetMsgType::GETBLOCKS,
926
    NetMsgType::GETBLOCKTXN,
927
    NetMsgType::GETDATA,
928
    NetMsgType::GETHEADERS,
929
    NetMsgType::HEADERS,
930
    NetMsgType::INV,
931
    NetMsgType::MEMPOOL,
932
    NetMsgType::MERKLEBLOCK,
933
    NetMsgType::NOTFOUND,
934
    NetMsgType::PING,
935
    NetMsgType::PONG,
936
    NetMsgType::SENDCMPCT,
937
    NetMsgType::TX,
938
    NetMsgType::GETCFILTERS,
939
    NetMsgType::CFILTER,
940
    NetMsgType::GETCFHEADERS,
941
    NetMsgType::CFHEADERS,
942
    NetMsgType::GETCFCHECKPT,
943
    NetMsgType::CFCHECKPT,
944
    NetMsgType::ADDRV2,
945
    // Unimplemented message types that are assigned in BIP324:
946
    "",
947
    "",
948
    "",
949
    ""
950
};
951
952
class V2MessageMap
953
{
954
    std::unordered_map<std::string, uint8_t> m_map;
955
956
public:
957
    V2MessageMap() noexcept
958
0
    {
959
0
        for (size_t i = 1; i < std::size(V2_MESSAGE_IDS); ++i) {
960
0
            m_map.emplace(V2_MESSAGE_IDS[i], i);
961
0
        }
962
0
    }
963
964
    std::optional<uint8_t> operator()(const std::string& message_name) const noexcept
965
0
    {
966
0
        auto it = m_map.find(message_name);
967
0
        if (it == m_map.end()) return std::nullopt;
968
0
        return it->second;
969
0
    }
970
};
971
972
const V2MessageMap V2_MESSAGE_MAP;
973
974
std::vector<uint8_t> GenerateRandomGarbage() noexcept
975
0
{
976
0
    std::vector<uint8_t> ret;
977
0
    FastRandomContext rng;
978
0
    ret.resize(rng.randrange(V2Transport::MAX_GARBAGE_LEN + 1));
979
0
    rng.fillrand(MakeWritableByteSpan(ret));
980
0
    return ret;
981
0
}
982
983
} // namespace
984
985
void V2Transport::StartSendingHandshake() noexcept
986
0
{
987
0
    AssertLockHeld(m_send_mutex);
Line
Count
Source
137
0
#define AssertLockHeld(cs) AssertLockHeldInternal(#cs, __FILE__, __LINE__, &cs)
988
0
    Assume(m_send_state == SendState::AWAITING_KEY);
Line
Count
Source
125
0
#define Assume(val) inline_assertion_check<false>(val, std::source_location::current(), #val)
989
0
    Assume(m_send_buffer.empty());
Line
Count
Source
125
0
#define Assume(val) inline_assertion_check<false>(val, std::source_location::current(), #val)
990
    // Initialize the send buffer with ellswift pubkey + provided garbage.
991
0
    m_send_buffer.resize(EllSwiftPubKey::size() + m_send_garbage.size());
992
0
    std::copy(std::begin(m_cipher.GetOurPubKey()), std::end(m_cipher.GetOurPubKey()), MakeWritableByteSpan(m_send_buffer).begin());
993
0
    std::copy(m_send_garbage.begin(), m_send_garbage.end(), m_send_buffer.begin() + EllSwiftPubKey::size());
994
    // We cannot wipe m_send_garbage as it will still be used as AAD later in the handshake.
995
0
}
996
997
V2Transport::V2Transport(NodeId nodeid, bool initiating, const CKey& key, std::span<const std::byte> ent32, std::vector<uint8_t> garbage) noexcept
998
0
    : m_cipher{key, ent32}, m_initiating{initiating}, m_nodeid{nodeid},
999
0
      m_v1_fallback{nodeid},
1000
0
      m_recv_state{initiating ? RecvState::KEY : RecvState::KEY_MAYBE_V1},
1001
0
      m_send_garbage{std::move(garbage)},
1002
0
      m_send_state{initiating ? SendState::AWAITING_KEY : SendState::MAYBE_V1}
1003
0
{
1004
0
    Assume(m_send_garbage.size() <= MAX_GARBAGE_LEN);
Line
Count
Source
125
0
#define Assume(val) inline_assertion_check<false>(val, std::source_location::current(), #val)
1005
    // Start sending immediately if we're the initiator of the connection.
1006
0
    if (initiating) {
1007
0
        LOCK(m_send_mutex);
Line
Count
Source
259
0
#define LOCK(cs) UniqueLock UNIQUE_NAME(criticalblock)(MaybeCheckNotHeld(cs), #cs, __FILE__, __LINE__)
Line
Count
Source
11
0
#define UNIQUE_NAME(name) PASTE2(name, __COUNTER__)
Line
Count
Source
9
0
#define PASTE2(x, y) PASTE(x, y)
Line
Count
Source
8
0
#define PASTE(x, y) x ## y
1008
0
        StartSendingHandshake();
1009
0
    }
1010
0
}
1011
1012
V2Transport::V2Transport(NodeId nodeid, bool initiating) noexcept
1013
0
    : V2Transport{nodeid, initiating, GenerateRandomKey(),
1014
0
                  MakeByteSpan(GetRandHash()), GenerateRandomGarbage()} {}
Unexecuted instantiation: V2Transport::V2Transport(long long, bool)
Unexecuted instantiation: V2Transport::V2Transport(long long, bool)
1015
1016
void V2Transport::SetReceiveState(RecvState recv_state) noexcept
1017
0
{
1018
0
    AssertLockHeld(m_recv_mutex);
Line
Count
Source
137
0
#define AssertLockHeld(cs) AssertLockHeldInternal(#cs, __FILE__, __LINE__, &cs)
1019
    // Enforce allowed state transitions.
1020
0
    switch (m_recv_state) {
1021
0
    case RecvState::KEY_MAYBE_V1:
1022
0
        Assume(recv_state == RecvState::KEY || recv_state == RecvState::V1);
Line
Count
Source
125
0
#define Assume(val) inline_assertion_check<false>(val, std::source_location::current(), #val)
1023
0
        break;
1024
0
    case RecvState::KEY:
1025
0
        Assume(recv_state == RecvState::GARB_GARBTERM);
Line
Count
Source
125
0
#define Assume(val) inline_assertion_check<false>(val, std::source_location::current(), #val)
1026
0
        break;
1027
0
    case RecvState::GARB_GARBTERM:
1028
0
        Assume(recv_state == RecvState::VERSION);
Line
Count
Source
125
0
#define Assume(val) inline_assertion_check<false>(val, std::source_location::current(), #val)
1029
0
        break;
1030
0
    case RecvState::VERSION:
1031
0
        Assume(recv_state == RecvState::APP);
Line
Count
Source
125
0
#define Assume(val) inline_assertion_check<false>(val, std::source_location::current(), #val)
1032
0
        break;
1033
0
    case RecvState::APP:
1034
0
        Assume(recv_state == RecvState::APP_READY);
Line
Count
Source
125
0
#define Assume(val) inline_assertion_check<false>(val, std::source_location::current(), #val)
1035
0
        break;
1036
0
    case RecvState::APP_READY:
1037
0
        Assume(recv_state == RecvState::APP);
Line
Count
Source
125
0
#define Assume(val) inline_assertion_check<false>(val, std::source_location::current(), #val)
1038
0
        break;
1039
0
    case RecvState::V1:
1040
0
        Assume(false); // V1 state cannot be left
Line
Count
Source
125
0
#define Assume(val) inline_assertion_check<false>(val, std::source_location::current(), #val)
1041
0
        break;
1042
0
    }
1043
    // Change state.
1044
0
    m_recv_state = recv_state;
1045
0
}
1046
1047
void V2Transport::SetSendState(SendState send_state) noexcept
1048
0
{
1049
0
    AssertLockHeld(m_send_mutex);
Line
Count
Source
137
0
#define AssertLockHeld(cs) AssertLockHeldInternal(#cs, __FILE__, __LINE__, &cs)
1050
    // Enforce allowed state transitions.
1051
0
    switch (m_send_state) {
1052
0
    case SendState::MAYBE_V1:
1053
0
        Assume(send_state == SendState::V1 || send_state == SendState::AWAITING_KEY);
Line
Count
Source
125
0
#define Assume(val) inline_assertion_check<false>(val, std::source_location::current(), #val)
1054
0
        break;
1055
0
    case SendState::AWAITING_KEY:
1056
0
        Assume(send_state == SendState::READY);
Line
Count
Source
125
0
#define Assume(val) inline_assertion_check<false>(val, std::source_location::current(), #val)
1057
0
        break;
1058
0
    case SendState::READY:
1059
0
    case SendState::V1:
1060
0
        Assume(false); // Final states
Line
Count
Source
125
0
#define Assume(val) inline_assertion_check<false>(val, std::source_location::current(), #val)
1061
0
        break;
1062
0
    }
1063
    // Change state.
1064
0
    m_send_state = send_state;
1065
0
}
1066
1067
bool V2Transport::ReceivedMessageComplete() const noexcept
1068
0
{
1069
0
    AssertLockNotHeld(m_recv_mutex);
Line
Count
Source
142
0
#define AssertLockNotHeld(cs) AssertLockNotHeldInline(#cs, __FILE__, __LINE__, &cs)
1070
0
    LOCK(m_recv_mutex);
Line
Count
Source
259
0
#define LOCK(cs) UniqueLock UNIQUE_NAME(criticalblock)(MaybeCheckNotHeld(cs), #cs, __FILE__, __LINE__)
Line
Count
Source
11
0
#define UNIQUE_NAME(name) PASTE2(name, __COUNTER__)
Line
Count
Source
9
0
#define PASTE2(x, y) PASTE(x, y)
Line
Count
Source
8
0
#define PASTE(x, y) x ## y
1071
0
    if (m_recv_state == RecvState::V1) return m_v1_fallback.ReceivedMessageComplete();
1072
1073
0
    return m_recv_state == RecvState::APP_READY;
1074
0
}
1075
1076
void V2Transport::ProcessReceivedMaybeV1Bytes() noexcept
1077
0
{
1078
0
    AssertLockHeld(m_recv_mutex);
Line
Count
Source
137
0
#define AssertLockHeld(cs) AssertLockHeldInternal(#cs, __FILE__, __LINE__, &cs)
1079
0
    AssertLockNotHeld(m_send_mutex);
Line
Count
Source
142
0
#define AssertLockNotHeld(cs) AssertLockNotHeldInline(#cs, __FILE__, __LINE__, &cs)
1080
0
    Assume(m_recv_state == RecvState::KEY_MAYBE_V1);
Line
Count
Source
125
0
#define Assume(val) inline_assertion_check<false>(val, std::source_location::current(), #val)
1081
    // We still have to determine if this is a v1 or v2 connection. The bytes being received could
1082
    // be the beginning of either a v1 packet (network magic + "version\x00\x00\x00\x00\x00"), or
1083
    // of a v2 public key. BIP324 specifies that a mismatch with this 16-byte string should trigger
1084
    // sending of the key.
1085
0
    std::array<uint8_t, V1_PREFIX_LEN> v1_prefix = {0, 0, 0, 0, 'v', 'e', 'r', 's', 'i', 'o', 'n', 0, 0, 0, 0, 0};
1086
0
    std::copy(std::begin(Params().MessageStart()), std::end(Params().MessageStart()), v1_prefix.begin());
1087
0
    Assume(m_recv_buffer.size() <= v1_prefix.size());
Line
Count
Source
125
0
#define Assume(val) inline_assertion_check<false>(val, std::source_location::current(), #val)
1088
0
    if (!std::equal(m_recv_buffer.begin(), m_recv_buffer.end(), v1_prefix.begin())) {
1089
        // Mismatch with v1 prefix, so we can assume a v2 connection.
1090
0
        SetReceiveState(RecvState::KEY); // Convert to KEY state, leaving received bytes around.
1091
        // Transition the sender to AWAITING_KEY state and start sending.
1092
0
        LOCK(m_send_mutex);
Line
Count
Source
259
0
#define LOCK(cs) UniqueLock UNIQUE_NAME(criticalblock)(MaybeCheckNotHeld(cs), #cs, __FILE__, __LINE__)
Line
Count
Source
11
0
#define UNIQUE_NAME(name) PASTE2(name, __COUNTER__)
Line
Count
Source
9
0
#define PASTE2(x, y) PASTE(x, y)
Line
Count
Source
8
0
#define PASTE(x, y) x ## y
1093
0
        SetSendState(SendState::AWAITING_KEY);
1094
0
        StartSendingHandshake();
1095
0
    } else if (m_recv_buffer.size() == v1_prefix.size()) {
1096
        // Full match with the v1 prefix, so fall back to v1 behavior.
1097
0
        LOCK(m_send_mutex);
Line
Count
Source
259
0
#define LOCK(cs) UniqueLock UNIQUE_NAME(criticalblock)(MaybeCheckNotHeld(cs), #cs, __FILE__, __LINE__)
Line
Count
Source
11
0
#define UNIQUE_NAME(name) PASTE2(name, __COUNTER__)
Line
Count
Source
9
0
#define PASTE2(x, y) PASTE(x, y)
Line
Count
Source
8
0
#define PASTE(x, y) x ## y
1098
0
        std::span<const uint8_t> feedback{m_recv_buffer};
1099
        // Feed already received bytes to v1 transport. It should always accept these, because it's
1100
        // less than the size of a v1 header, and these are the first bytes fed to m_v1_fallback.
1101
0
        bool ret = m_v1_fallback.ReceivedBytes(feedback);
1102
0
        Assume(feedback.empty());
Line
Count
Source
125
0
#define Assume(val) inline_assertion_check<false>(val, std::source_location::current(), #val)
1103
0
        Assume(ret);
Line
Count
Source
125
0
#define Assume(val) inline_assertion_check<false>(val, std::source_location::current(), #val)
1104
0
        SetReceiveState(RecvState::V1);
1105
0
        SetSendState(SendState::V1);
1106
        // Reset v2 transport buffers to save memory.
1107
0
        ClearShrink(m_recv_buffer);
1108
0
        ClearShrink(m_send_buffer);
1109
0
    } else {
1110
        // We have not received enough to distinguish v1 from v2 yet. Wait until more bytes come.
1111
0
    }
1112
0
}
1113
1114
bool V2Transport::ProcessReceivedKeyBytes() noexcept
1115
0
{
1116
0
    AssertLockHeld(m_recv_mutex);
Line
Count
Source
137
0
#define AssertLockHeld(cs) AssertLockHeldInternal(#cs, __FILE__, __LINE__, &cs)
1117
0
    AssertLockNotHeld(m_send_mutex);
Line
Count
Source
142
0
#define AssertLockNotHeld(cs) AssertLockNotHeldInline(#cs, __FILE__, __LINE__, &cs)
1118
0
    Assume(m_recv_state == RecvState::KEY);
Line
Count
Source
125
0
#define Assume(val) inline_assertion_check<false>(val, std::source_location::current(), #val)
1119
0
    Assume(m_recv_buffer.size() <= EllSwiftPubKey::size());
Line
Count
Source
125
0
#define Assume(val) inline_assertion_check<false>(val, std::source_location::current(), #val)
1120
1121
    // As a special exception, if bytes 4-16 of the key on a responder connection match the
1122
    // corresponding bytes of a V1 version message, but bytes 0-4 don't match the network magic
1123
    // (if they did, we'd have switched to V1 state already), assume this is a peer from
1124
    // another network, and disconnect them. They will almost certainly disconnect us too when
1125
    // they receive our uniformly random key and garbage, but detecting this case specially
1126
    // means we can log it.
1127
0
    static constexpr std::array<uint8_t, 12> MATCH = {'v', 'e', 'r', 's', 'i', 'o', 'n', 0, 0, 0, 0, 0};
1128
0
    static constexpr size_t OFFSET = std::tuple_size_v<MessageStartChars>;
1129
0
    if (!m_initiating && m_recv_buffer.size() >= OFFSET + MATCH.size()) {
1130
0
        if (std::equal(MATCH.begin(), MATCH.end(), m_recv_buffer.begin() + OFFSET)) {
1131
0
            LogDebug(BCLog::NET, "V2 transport error: V1 peer with wrong MessageStart %s\n",
Line
Count
Source
393
0
#define LogDebug(category, ...) LogPrintLevel(category, BCLog::Level::Debug, __VA_ARGS__)
Line
Count
Source
385
0
    do {                                                              \
386
0
        if (LogAcceptCategory((category), (level))) {                 \
387
0
            bool rate_limit{level >= BCLog::Level::Info};             \
388
0
            LogPrintLevel_(category, level, rate_limit, __VA_ARGS__); \
Line
Count
Source
362
0
#define LogPrintLevel_(category, level, should_ratelimit, ...) LogPrintFormatInternal(std::source_location::current(), category, level, should_ratelimit, __VA_ARGS__)
389
0
        }                                                             \
390
0
    } while (0)
1132
0
                     HexStr(std::span(m_recv_buffer).first(OFFSET)));
1133
0
            return false;
1134
0
        }
1135
0
    }
1136
1137
0
    if (m_recv_buffer.size() == EllSwiftPubKey::size()) {
1138
        // Other side's key has been fully received, and can now be Diffie-Hellman combined with
1139
        // our key to initialize the encryption ciphers.
1140
1141
        // Initialize the ciphers.
1142
0
        EllSwiftPubKey ellswift(MakeByteSpan(m_recv_buffer));
1143
0
        LOCK(m_send_mutex);
Line
Count
Source
259
0
#define LOCK(cs) UniqueLock UNIQUE_NAME(criticalblock)(MaybeCheckNotHeld(cs), #cs, __FILE__, __LINE__)
Line
Count
Source
11
0
#define UNIQUE_NAME(name) PASTE2(name, __COUNTER__)
Line
Count
Source
9
0
#define PASTE2(x, y) PASTE(x, y)
Line
Count
Source
8
0
#define PASTE(x, y) x ## y
1144
0
        m_cipher.Initialize(ellswift, m_initiating);
1145
1146
        // Switch receiver state to GARB_GARBTERM.
1147
0
        SetReceiveState(RecvState::GARB_GARBTERM);
1148
0
        m_recv_buffer.clear();
1149
1150
        // Switch sender state to READY.
1151
0
        SetSendState(SendState::READY);
1152
1153
        // Append the garbage terminator to the send buffer.
1154
0
        m_send_buffer.resize(m_send_buffer.size() + BIP324Cipher::GARBAGE_TERMINATOR_LEN);
1155
0
        std::copy(m_cipher.GetSendGarbageTerminator().begin(),
1156
0
                  m_cipher.GetSendGarbageTerminator().end(),
1157
0
                  MakeWritableByteSpan(m_send_buffer).last(BIP324Cipher::GARBAGE_TERMINATOR_LEN).begin());
1158
1159
        // Construct version packet in the send buffer, with the sent garbage data as AAD.
1160
0
        m_send_buffer.resize(m_send_buffer.size() + BIP324Cipher::EXPANSION + VERSION_CONTENTS.size());
1161
0
        m_cipher.Encrypt(
1162
0
            /*contents=*/VERSION_CONTENTS,
1163
0
            /*aad=*/MakeByteSpan(m_send_garbage),
1164
0
            /*ignore=*/false,
1165
0
            /*output=*/MakeWritableByteSpan(m_send_buffer).last(BIP324Cipher::EXPANSION + VERSION_CONTENTS.size()));
1166
        // We no longer need the garbage.
1167
0
        ClearShrink(m_send_garbage);
1168
0
    } else {
1169
        // We still have to receive more key bytes.
1170
0
    }
1171
0
    return true;
1172
0
}
1173
1174
bool V2Transport::ProcessReceivedGarbageBytes() noexcept
1175
0
{
1176
0
    AssertLockHeld(m_recv_mutex);
Line
Count
Source
137
0
#define AssertLockHeld(cs) AssertLockHeldInternal(#cs, __FILE__, __LINE__, &cs)
1177
0
    Assume(m_recv_state == RecvState::GARB_GARBTERM);
Line
Count
Source
125
0
#define Assume(val) inline_assertion_check<false>(val, std::source_location::current(), #val)
1178
0
    Assume(m_recv_buffer.size() <= MAX_GARBAGE_LEN + BIP324Cipher::GARBAGE_TERMINATOR_LEN);
Line
Count
Source
125
0
#define Assume(val) inline_assertion_check<false>(val, std::source_location::current(), #val)
1179
0
    if (m_recv_buffer.size() >= BIP324Cipher::GARBAGE_TERMINATOR_LEN) {
1180
0
        if (std::ranges::equal(MakeByteSpan(m_recv_buffer).last(BIP324Cipher::GARBAGE_TERMINATOR_LEN), m_cipher.GetReceiveGarbageTerminator())) {
1181
            // Garbage terminator received. Store garbage to authenticate it as AAD later.
1182
0
            m_recv_aad = std::move(m_recv_buffer);
1183
0
            m_recv_aad.resize(m_recv_aad.size() - BIP324Cipher::GARBAGE_TERMINATOR_LEN);
1184
0
            m_recv_buffer.clear();
1185
0
            SetReceiveState(RecvState::VERSION);
1186
0
        } else if (m_recv_buffer.size() == MAX_GARBAGE_LEN + BIP324Cipher::GARBAGE_TERMINATOR_LEN) {
1187
            // We've reached the maximum length for garbage + garbage terminator, and the
1188
            // terminator still does not match. Abort.
1189
0
            LogDebug(BCLog::NET, "V2 transport error: missing garbage terminator, peer=%d\n", m_nodeid);
Line
Count
Source
393
0
#define LogDebug(category, ...) LogPrintLevel(category, BCLog::Level::Debug, __VA_ARGS__)
Line
Count
Source
385
0
    do {                                                              \
386
0
        if (LogAcceptCategory((category), (level))) {                 \
387
0
            bool rate_limit{level >= BCLog::Level::Info};             \
388
0
            LogPrintLevel_(category, level, rate_limit, __VA_ARGS__); \
Line
Count
Source
362
0
#define LogPrintLevel_(category, level, should_ratelimit, ...) LogPrintFormatInternal(std::source_location::current(), category, level, should_ratelimit, __VA_ARGS__)
389
0
        }                                                             \
390
0
    } while (0)
1190
0
            return false;
1191
0
        } else {
1192
            // We still need to receive more garbage and/or garbage terminator bytes.
1193
0
        }
1194
0
    } else {
1195
        // We have less than GARBAGE_TERMINATOR_LEN (16) bytes, so we certainly need to receive
1196
        // more first.
1197
0
    }
1198
0
    return true;
1199
0
}
1200
1201
bool V2Transport::ProcessReceivedPacketBytes() noexcept
1202
0
{
1203
0
    AssertLockHeld(m_recv_mutex);
Line
Count
Source
137
0
#define AssertLockHeld(cs) AssertLockHeldInternal(#cs, __FILE__, __LINE__, &cs)
1204
0
    Assume(m_recv_state == RecvState::VERSION || m_recv_state == RecvState::APP);
Line
Count
Source
125
0
#define Assume(val) inline_assertion_check<false>(val, std::source_location::current(), #val)
1205
1206
    // The maximum permitted contents length for a packet, consisting of:
1207
    // - 0x00 byte: indicating long message type encoding
1208
    // - 12 bytes of message type
1209
    // - payload
1210
0
    static constexpr size_t MAX_CONTENTS_LEN =
1211
0
        1 + CMessageHeader::MESSAGE_TYPE_SIZE +
1212
0
        std::min<size_t>(MAX_SIZE, MAX_PROTOCOL_MESSAGE_LENGTH);
1213
1214
0
    if (m_recv_buffer.size() == BIP324Cipher::LENGTH_LEN) {
1215
        // Length descriptor received.
1216
0
        m_recv_len = m_cipher.DecryptLength(MakeByteSpan(m_recv_buffer));
1217
0
        if (m_recv_len > MAX_CONTENTS_LEN) {
1218
0
            LogDebug(BCLog::NET, "V2 transport error: packet too large (%u bytes), peer=%d\n", m_recv_len, m_nodeid);
Line
Count
Source
393
0
#define LogDebug(category, ...) LogPrintLevel(category, BCLog::Level::Debug, __VA_ARGS__)
Line
Count
Source
385
0
    do {                                                              \
386
0
        if (LogAcceptCategory((category), (level))) {                 \
387
0
            bool rate_limit{level >= BCLog::Level::Info};             \
388
0
            LogPrintLevel_(category, level, rate_limit, __VA_ARGS__); \
Line
Count
Source
362
0
#define LogPrintLevel_(category, level, should_ratelimit, ...) LogPrintFormatInternal(std::source_location::current(), category, level, should_ratelimit, __VA_ARGS__)
389
0
        }                                                             \
390
0
    } while (0)
1219
0
            return false;
1220
0
        }
1221
0
    } else if (m_recv_buffer.size() > BIP324Cipher::LENGTH_LEN && m_recv_buffer.size() == m_recv_len + BIP324Cipher::EXPANSION) {
1222
        // Ciphertext received, decrypt it into m_recv_decode_buffer.
1223
        // Note that it is impossible to reach this branch without hitting the branch above first,
1224
        // as GetMaxBytesToProcess only allows up to LENGTH_LEN into the buffer before that point.
1225
0
        m_recv_decode_buffer.resize(m_recv_len);
1226
0
        bool ignore{false};
1227
0
        bool ret = m_cipher.Decrypt(
1228
0
            /*input=*/MakeByteSpan(m_recv_buffer).subspan(BIP324Cipher::LENGTH_LEN),
1229
0
            /*aad=*/MakeByteSpan(m_recv_aad),
1230
0
            /*ignore=*/ignore,
1231
0
            /*contents=*/MakeWritableByteSpan(m_recv_decode_buffer));
1232
0
        if (!ret) {
1233
0
            LogDebug(BCLog::NET, "V2 transport error: packet decryption failure (%u bytes), peer=%d\n", m_recv_len, m_nodeid);
Line
Count
Source
393
0
#define LogDebug(category, ...) LogPrintLevel(category, BCLog::Level::Debug, __VA_ARGS__)
Line
Count
Source
385
0
    do {                                                              \
386
0
        if (LogAcceptCategory((category), (level))) {                 \
387
0
            bool rate_limit{level >= BCLog::Level::Info};             \
388
0
            LogPrintLevel_(category, level, rate_limit, __VA_ARGS__); \
Line
Count
Source
362
0
#define LogPrintLevel_(category, level, should_ratelimit, ...) LogPrintFormatInternal(std::source_location::current(), category, level, should_ratelimit, __VA_ARGS__)
389
0
        }                                                             \
390
0
    } while (0)
1234
0
            return false;
1235
0
        }
1236
        // We have decrypted a valid packet with the AAD we expected, so clear the expected AAD.
1237
0
        ClearShrink(m_recv_aad);
1238
        // Feed the last 4 bytes of the Poly1305 authentication tag (and its timing) into our RNG.
1239
0
        RandAddEvent(ReadLE32(m_recv_buffer.data() + m_recv_buffer.size() - 4));
1240
1241
        // At this point we have a valid packet decrypted into m_recv_decode_buffer. If it's not a
1242
        // decoy, which we simply ignore, use the current state to decide what to do with it.
1243
0
        if (!ignore) {
1244
0
            switch (m_recv_state) {
1245
0
            case RecvState::VERSION:
1246
                // Version message received; transition to application phase. The contents is
1247
                // ignored, but can be used for future extensions.
1248
0
                SetReceiveState(RecvState::APP);
1249
0
                break;
1250
0
            case RecvState::APP:
1251
                // Application message decrypted correctly. It can be extracted using GetMessage().
1252
0
                SetReceiveState(RecvState::APP_READY);
1253
0
                break;
1254
0
            default:
1255
                // Any other state is invalid (this function should not have been called).
1256
0
                Assume(false);
Line
Count
Source
125
0
#define Assume(val) inline_assertion_check<false>(val, std::source_location::current(), #val)
1257
0
            }
1258
0
        }
1259
        // Wipe the receive buffer where the next packet will be received into.
1260
0
        ClearShrink(m_recv_buffer);
1261
        // In all but APP_READY state, we can wipe the decoded contents.
1262
0
        if (m_recv_state != RecvState::APP_READY) ClearShrink(m_recv_decode_buffer);
1263
0
    } else {
1264
        // We either have less than 3 bytes, so we don't know the packet's length yet, or more
1265
        // than 3 bytes but less than the packet's full ciphertext. Wait until those arrive.
1266
0
    }
1267
0
    return true;
1268
0
}
1269
1270
size_t V2Transport::GetMaxBytesToProcess() noexcept
1271
0
{
1272
0
    AssertLockHeld(m_recv_mutex);
Line
Count
Source
137
0
#define AssertLockHeld(cs) AssertLockHeldInternal(#cs, __FILE__, __LINE__, &cs)
1273
0
    switch (m_recv_state) {
1274
0
    case RecvState::KEY_MAYBE_V1:
1275
        // During the KEY_MAYBE_V1 state we do not allow more than the length of v1 prefix into the
1276
        // receive buffer.
1277
0
        Assume(m_recv_buffer.size() <= V1_PREFIX_LEN);
Line
Count
Source
125
0
#define Assume(val) inline_assertion_check<false>(val, std::source_location::current(), #val)
1278
        // As long as we're not sure if this is a v1 or v2 connection, don't receive more than what
1279
        // is strictly necessary to distinguish the two (16 bytes). If we permitted more than
1280
        // the v1 header size (24 bytes), we may not be able to feed the already-received bytes
1281
        // back into the m_v1_fallback V1 transport.
1282
0
        return V1_PREFIX_LEN - m_recv_buffer.size();
1283
0
    case RecvState::KEY:
1284
        // During the KEY state, we only allow the 64-byte key into the receive buffer.
1285
0
        Assume(m_recv_buffer.size() <= EllSwiftPubKey::size());
Line
Count
Source
125
0
#define Assume(val) inline_assertion_check<false>(val, std::source_location::current(), #val)
1286
        // As long as we have not received the other side's public key, don't receive more than
1287
        // that (64 bytes), as garbage follows, and locating the garbage terminator requires the
1288
        // key exchange first.
1289
0
        return EllSwiftPubKey::size() - m_recv_buffer.size();
1290
0
    case RecvState::GARB_GARBTERM:
1291
        // Process garbage bytes one by one (because terminator may appear anywhere).
1292
0
        return 1;
1293
0
    case RecvState::VERSION:
1294
0
    case RecvState::APP:
1295
        // These three states all involve decoding a packet. Process the length descriptor first,
1296
        // so that we know where the current packet ends (and we don't process bytes from the next
1297
        // packet or decoy yet). Then, process the ciphertext bytes of the current packet.
1298
0
        if (m_recv_buffer.size() < BIP324Cipher::LENGTH_LEN) {
1299
0
            return BIP324Cipher::LENGTH_LEN - m_recv_buffer.size();
1300
0
        } else {
1301
            // Note that BIP324Cipher::EXPANSION is the total difference between contents size
1302
            // and encoded packet size, which includes the 3 bytes due to the packet length.
1303
            // When transitioning from receiving the packet length to receiving its ciphertext,
1304
            // the encrypted packet length is left in the receive buffer.
1305
0
            return BIP324Cipher::EXPANSION + m_recv_len - m_recv_buffer.size();
1306
0
        }
1307
0
    case RecvState::APP_READY:
1308
        // No bytes can be processed until GetMessage() is called.
1309
0
        return 0;
1310
0
    case RecvState::V1:
1311
        // Not allowed (must be dealt with by the caller).
1312
0
        Assume(false);
Line
Count
Source
125
0
#define Assume(val) inline_assertion_check<false>(val, std::source_location::current(), #val)
1313
0
        return 0;
1314
0
    }
1315
0
    Assume(false); // unreachable
Line
Count
Source
125
0
#define Assume(val) inline_assertion_check<false>(val, std::source_location::current(), #val)
1316
0
    return 0;
1317
0
}
1318
1319
bool V2Transport::ReceivedBytes(std::span<const uint8_t>& msg_bytes) noexcept
1320
0
{
1321
0
    AssertLockNotHeld(m_recv_mutex);
Line
Count
Source
142
0
#define AssertLockNotHeld(cs) AssertLockNotHeldInline(#cs, __FILE__, __LINE__, &cs)
1322
    /** How many bytes to allocate in the receive buffer at most above what is received so far. */
1323
0
    static constexpr size_t MAX_RESERVE_AHEAD = 256 * 1024;
1324
1325
0
    LOCK(m_recv_mutex);
Line
Count
Source
259
0
#define LOCK(cs) UniqueLock UNIQUE_NAME(criticalblock)(MaybeCheckNotHeld(cs), #cs, __FILE__, __LINE__)
Line
Count
Source
11
0
#define UNIQUE_NAME(name) PASTE2(name, __COUNTER__)
Line
Count
Source
9
0
#define PASTE2(x, y) PASTE(x, y)
Line
Count
Source
8
0
#define PASTE(x, y) x ## y
1326
0
    if (m_recv_state == RecvState::V1) return m_v1_fallback.ReceivedBytes(msg_bytes);
1327
1328
    // Process the provided bytes in msg_bytes in a loop. In each iteration a nonzero number of
1329
    // bytes (decided by GetMaxBytesToProcess) are taken from the beginning om msg_bytes, and
1330
    // appended to m_recv_buffer. Then, depending on the receiver state, one of the
1331
    // ProcessReceived*Bytes functions is called to process the bytes in that buffer.
1332
0
    while (!msg_bytes.empty()) {
1333
        // Decide how many bytes to copy from msg_bytes to m_recv_buffer.
1334
0
        size_t max_read = GetMaxBytesToProcess();
1335
1336
        // Reserve space in the buffer if there is not enough.
1337
0
        if (m_recv_buffer.size() + std::min(msg_bytes.size(), max_read) > m_recv_buffer.capacity()) {
1338
0
            switch (m_recv_state) {
1339
0
            case RecvState::KEY_MAYBE_V1:
1340
0
            case RecvState::KEY:
1341
0
            case RecvState::GARB_GARBTERM:
1342
                // During the initial states (key/garbage), allocate once to fit the maximum (4111
1343
                // bytes).
1344
0
                m_recv_buffer.reserve(MAX_GARBAGE_LEN + BIP324Cipher::GARBAGE_TERMINATOR_LEN);
1345
0
                break;
1346
0
            case RecvState::VERSION:
1347
0
            case RecvState::APP: {
1348
                // During states where a packet is being received, as much as is expected but never
1349
                // more than MAX_RESERVE_AHEAD bytes in addition to what is received so far.
1350
                // This means attackers that want to cause us to waste allocated memory are limited
1351
                // to MAX_RESERVE_AHEAD above the largest allowed message contents size, and to
1352
                // MAX_RESERVE_AHEAD more than they've actually sent us.
1353
0
                size_t alloc_add = std::min(max_read, msg_bytes.size() + MAX_RESERVE_AHEAD);
1354
0
                m_recv_buffer.reserve(m_recv_buffer.size() + alloc_add);
1355
0
                break;
1356
0
            }
1357
0
            case RecvState::APP_READY:
1358
                // The buffer is empty in this state.
1359
0
                Assume(m_recv_buffer.empty());
Line
Count
Source
125
0
#define Assume(val) inline_assertion_check<false>(val, std::source_location::current(), #val)
1360
0
                break;
1361
0
            case RecvState::V1:
1362
                // Should have bailed out above.
1363
0
                Assume(false);
Line
Count
Source
125
0
#define Assume(val) inline_assertion_check<false>(val, std::source_location::current(), #val)
1364
0
                break;
1365
0
            }
1366
0
        }
1367
1368
        // Can't read more than provided input.
1369
0
        max_read = std::min(msg_bytes.size(), max_read);
1370
        // Copy data to buffer.
1371
0
        m_recv_buffer.insert(m_recv_buffer.end(), UCharCast(msg_bytes.data()), UCharCast(msg_bytes.data() + max_read));
1372
0
        msg_bytes = msg_bytes.subspan(max_read);
1373
1374
        // Process data in the buffer.
1375
0
        switch (m_recv_state) {
1376
0
        case RecvState::KEY_MAYBE_V1:
1377
0
            ProcessReceivedMaybeV1Bytes();
1378
0
            if (m_recv_state == RecvState::V1) return true;
1379
0
            break;
1380
1381
0
        case RecvState::KEY:
1382
0
            if (!ProcessReceivedKeyBytes()) return false;
1383
0
            break;
1384
1385
0
        case RecvState::GARB_GARBTERM:
1386
0
            if (!ProcessReceivedGarbageBytes()) return false;
1387
0
            break;
1388
1389
0
        case RecvState::VERSION:
1390
0
        case RecvState::APP:
1391
0
            if (!ProcessReceivedPacketBytes()) return false;
1392
0
            break;
1393
1394
0
        case RecvState::APP_READY:
1395
0
            return true;
1396
1397
0
        case RecvState::V1:
1398
            // We should have bailed out before.
1399
0
            Assume(false);
Line
Count
Source
125
0
#define Assume(val) inline_assertion_check<false>(val, std::source_location::current(), #val)
1400
0
            break;
1401
0
        }
1402
        // Make sure we have made progress before continuing.
1403
0
        Assume(max_read > 0);
Line
Count
Source
125
0
#define Assume(val) inline_assertion_check<false>(val, std::source_location::current(), #val)
1404
0
    }
1405
1406
0
    return true;
1407
0
}
1408
1409
std::optional<std::string> V2Transport::GetMessageType(std::span<const uint8_t>& contents) noexcept
1410
0
{
1411
0
    if (contents.size() == 0) return std::nullopt; // Empty contents
1412
0
    uint8_t first_byte = contents[0];
1413
0
    contents = contents.subspan(1); // Strip first byte.
1414
1415
0
    if (first_byte != 0) {
1416
        // Short (1 byte) encoding.
1417
0
        if (first_byte < std::size(V2_MESSAGE_IDS)) {
1418
            // Valid short message id.
1419
0
            return V2_MESSAGE_IDS[first_byte];
1420
0
        } else {
1421
            // Unknown short message id.
1422
0
            return std::nullopt;
1423
0
        }
1424
0
    }
1425
1426
0
    if (contents.size() < CMessageHeader::MESSAGE_TYPE_SIZE) {
1427
0
        return std::nullopt; // Long encoding needs 12 message type bytes.
1428
0
    }
1429
1430
0
    size_t msg_type_len{0};
1431
0
    while (msg_type_len < CMessageHeader::MESSAGE_TYPE_SIZE && contents[msg_type_len] != 0) {
1432
        // Verify that message type bytes before the first 0x00 are in range.
1433
0
        if (contents[msg_type_len] < ' ' || contents[msg_type_len] > 0x7F) {
1434
0
            return {};
1435
0
        }
1436
0
        ++msg_type_len;
1437
0
    }
1438
0
    std::string ret{reinterpret_cast<const char*>(contents.data()), msg_type_len};
1439
0
    while (msg_type_len < CMessageHeader::MESSAGE_TYPE_SIZE) {
1440
        // Verify that message type bytes after the first 0x00 are also 0x00.
1441
0
        if (contents[msg_type_len] != 0) return {};
1442
0
        ++msg_type_len;
1443
0
    }
1444
    // Strip message type bytes of contents.
1445
0
    contents = contents.subspan(CMessageHeader::MESSAGE_TYPE_SIZE);
1446
0
    return ret;
1447
0
}
1448
1449
CNetMessage V2Transport::GetReceivedMessage(std::chrono::microseconds time, bool& reject_message) noexcept
1450
0
{
1451
0
    AssertLockNotHeld(m_recv_mutex);
Line
Count
Source
142
0
#define AssertLockNotHeld(cs) AssertLockNotHeldInline(#cs, __FILE__, __LINE__, &cs)
1452
0
    LOCK(m_recv_mutex);
Line
Count
Source
259
0
#define LOCK(cs) UniqueLock UNIQUE_NAME(criticalblock)(MaybeCheckNotHeld(cs), #cs, __FILE__, __LINE__)
Line
Count
Source
11
0
#define UNIQUE_NAME(name) PASTE2(name, __COUNTER__)
Line
Count
Source
9
0
#define PASTE2(x, y) PASTE(x, y)
Line
Count
Source
8
0
#define PASTE(x, y) x ## y
1453
0
    if (m_recv_state == RecvState::V1) return m_v1_fallback.GetReceivedMessage(time, reject_message);
1454
1455
0
    Assume(m_recv_state == RecvState::APP_READY);
Line
Count
Source
125
0
#define Assume(val) inline_assertion_check<false>(val, std::source_location::current(), #val)
1456
0
    std::span<const uint8_t> contents{m_recv_decode_buffer};
1457
0
    auto msg_type = GetMessageType(contents);
1458
0
    CNetMessage msg{DataStream{}};
1459
    // Note that BIP324Cipher::EXPANSION also includes the length descriptor size.
1460
0
    msg.m_raw_message_size = m_recv_decode_buffer.size() + BIP324Cipher::EXPANSION;
1461
0
    if (msg_type) {
1462
0
        reject_message = false;
1463
0
        msg.m_type = std::move(*msg_type);
1464
0
        msg.m_time = time;
1465
0
        msg.m_message_size = contents.size();
1466
0
        msg.m_recv.resize(contents.size());
1467
0
        std::copy(contents.begin(), contents.end(), UCharCast(msg.m_recv.data()));
1468
0
    } else {
1469
0
        LogDebug(BCLog::NET, "V2 transport error: invalid message type (%u bytes contents), peer=%d\n", m_recv_decode_buffer.size(), m_nodeid);
Line
Count
Source
393
0
#define LogDebug(category, ...) LogPrintLevel(category, BCLog::Level::Debug, __VA_ARGS__)
Line
Count
Source
385
0
    do {                                                              \
386
0
        if (LogAcceptCategory((category), (level))) {                 \
387
0
            bool rate_limit{level >= BCLog::Level::Info};             \
388
0
            LogPrintLevel_(category, level, rate_limit, __VA_ARGS__); \
Line
Count
Source
362
0
#define LogPrintLevel_(category, level, should_ratelimit, ...) LogPrintFormatInternal(std::source_location::current(), category, level, should_ratelimit, __VA_ARGS__)
389
0
        }                                                             \
390
0
    } while (0)
1470
0
        reject_message = true;
1471
0
    }
1472
0
    ClearShrink(m_recv_decode_buffer);
1473
0
    SetReceiveState(RecvState::APP);
1474
1475
0
    return msg;
1476
0
}
1477
1478
bool V2Transport::SetMessageToSend(CSerializedNetMsg& msg) noexcept
1479
0
{
1480
0
    AssertLockNotHeld(m_send_mutex);
Line
Count
Source
142
0
#define AssertLockNotHeld(cs) AssertLockNotHeldInline(#cs, __FILE__, __LINE__, &cs)
1481
0
    LOCK(m_send_mutex);
Line
Count
Source
259
0
#define LOCK(cs) UniqueLock UNIQUE_NAME(criticalblock)(MaybeCheckNotHeld(cs), #cs, __FILE__, __LINE__)
Line
Count
Source
11
0
#define UNIQUE_NAME(name) PASTE2(name, __COUNTER__)
Line
Count
Source
9
0
#define PASTE2(x, y) PASTE(x, y)
Line
Count
Source
8
0
#define PASTE(x, y) x ## y
1482
0
    if (m_send_state == SendState::V1) return m_v1_fallback.SetMessageToSend(msg);
1483
    // We only allow adding a new message to be sent when in the READY state (so the packet cipher
1484
    // is available) and the send buffer is empty. This limits the number of messages in the send
1485
    // buffer to just one, and leaves the responsibility for queueing them up to the caller.
1486
0
    if (!(m_send_state == SendState::READY && m_send_buffer.empty())) return false;
1487
    // Construct contents (encoding message type + payload).
1488
0
    std::vector<uint8_t> contents;
1489
0
    auto short_message_id = V2_MESSAGE_MAP(msg.m_type);
1490
0
    if (short_message_id) {
1491
0
        contents.resize(1 + msg.data.size());
1492
0
        contents[0] = *short_message_id;
1493
0
        std::copy(msg.data.begin(), msg.data.end(), contents.begin() + 1);
1494
0
    } else {
1495
        // Initialize with zeroes, and then write the message type string starting at offset 1.
1496
        // This means contents[0] and the unused positions in contents[1..13] remain 0x00.
1497
0
        contents.resize(1 + CMessageHeader::MESSAGE_TYPE_SIZE + msg.data.size(), 0);
1498
0
        std::copy(msg.m_type.begin(), msg.m_type.end(), contents.data() + 1);
1499
0
        std::copy(msg.data.begin(), msg.data.end(), contents.begin() + 1 + CMessageHeader::MESSAGE_TYPE_SIZE);
1500
0
    }
1501
    // Construct ciphertext in send buffer.
1502
0
    m_send_buffer.resize(contents.size() + BIP324Cipher::EXPANSION);
1503
0
    m_cipher.Encrypt(MakeByteSpan(contents), {}, false, MakeWritableByteSpan(m_send_buffer));
1504
0
    m_send_type = msg.m_type;
1505
    // Release memory
1506
0
    ClearShrink(msg.data);
1507
0
    return true;
1508
0
}
1509
1510
Transport::BytesToSend V2Transport::GetBytesToSend(bool have_next_message) const noexcept
1511
0
{
1512
0
    AssertLockNotHeld(m_send_mutex);
Line
Count
Source
142
0
#define AssertLockNotHeld(cs) AssertLockNotHeldInline(#cs, __FILE__, __LINE__, &cs)
1513
0
    LOCK(m_send_mutex);
Line
Count
Source
259
0
#define LOCK(cs) UniqueLock UNIQUE_NAME(criticalblock)(MaybeCheckNotHeld(cs), #cs, __FILE__, __LINE__)
Line
Count
Source
11
0
#define UNIQUE_NAME(name) PASTE2(name, __COUNTER__)
Line
Count
Source
9
0
#define PASTE2(x, y) PASTE(x, y)
Line
Count
Source
8
0
#define PASTE(x, y) x ## y
1514
0
    if (m_send_state == SendState::V1) return m_v1_fallback.GetBytesToSend(have_next_message);
1515
1516
0
    if (m_send_state == SendState::MAYBE_V1) Assume(m_send_buffer.empty());
Line
Count
Source
125
0
#define Assume(val) inline_assertion_check<false>(val, std::source_location::current(), #val)
1517
0
    Assume(m_send_pos <= m_send_buffer.size());
Line
Count
Source
125
0
#define Assume(val) inline_assertion_check<false>(val, std::source_location::current(), #val)
1518
0
    return {
1519
0
        std::span{m_send_buffer}.subspan(m_send_pos),
1520
        // We only have more to send after the current m_send_buffer if there is a (next)
1521
        // message to be sent, and we're capable of sending packets. */
1522
0
        have_next_message && m_send_state == SendState::READY,
1523
0
        m_send_type
1524
0
    };
1525
0
}
1526
1527
void V2Transport::MarkBytesSent(size_t bytes_sent) noexcept
1528
0
{
1529
0
    AssertLockNotHeld(m_send_mutex);
Line
Count
Source
142
0
#define AssertLockNotHeld(cs) AssertLockNotHeldInline(#cs, __FILE__, __LINE__, &cs)
1530
0
    LOCK(m_send_mutex);
Line
Count
Source
259
0
#define LOCK(cs) UniqueLock UNIQUE_NAME(criticalblock)(MaybeCheckNotHeld(cs), #cs, __FILE__, __LINE__)
Line
Count
Source
11
0
#define UNIQUE_NAME(name) PASTE2(name, __COUNTER__)
Line
Count
Source
9
0
#define PASTE2(x, y) PASTE(x, y)
Line
Count
Source
8
0
#define PASTE(x, y) x ## y
1531
0
    if (m_send_state == SendState::V1) return m_v1_fallback.MarkBytesSent(bytes_sent);
1532
1533
0
    if (m_send_state == SendState::AWAITING_KEY && m_send_pos == 0 && bytes_sent > 0) {
1534
0
        LogDebug(BCLog::NET, "start sending v2 handshake to peer=%d\n", m_nodeid);
Line
Count
Source
393
0
#define LogDebug(category, ...) LogPrintLevel(category, BCLog::Level::Debug, __VA_ARGS__)
Line
Count
Source
385
0
    do {                                                              \
386
0
        if (LogAcceptCategory((category), (level))) {                 \
387
0
            bool rate_limit{level >= BCLog::Level::Info};             \
388
0
            LogPrintLevel_(category, level, rate_limit, __VA_ARGS__); \
Line
Count
Source
362
0
#define LogPrintLevel_(category, level, should_ratelimit, ...) LogPrintFormatInternal(std::source_location::current(), category, level, should_ratelimit, __VA_ARGS__)
389
0
        }                                                             \
390
0
    } while (0)
1535
0
    }
1536
1537
0
    m_send_pos += bytes_sent;
1538
0
    Assume(m_send_pos <= m_send_buffer.size());
Line
Count
Source
125
0
#define Assume(val) inline_assertion_check<false>(val, std::source_location::current(), #val)
1539
0
    if (m_send_pos >= CMessageHeader::HEADER_SIZE) {
1540
0
        m_sent_v1_header_worth = true;
1541
0
    }
1542
    // Wipe the buffer when everything is sent.
1543
0
    if (m_send_pos == m_send_buffer.size()) {
1544
0
        m_send_pos = 0;
1545
0
        ClearShrink(m_send_buffer);
1546
0
    }
1547
0
}
1548
1549
bool V2Transport::ShouldReconnectV1() const noexcept
1550
0
{
1551
0
    AssertLockNotHeld(m_send_mutex);
Line
Count
Source
142
0
#define AssertLockNotHeld(cs) AssertLockNotHeldInline(#cs, __FILE__, __LINE__, &cs)
1552
0
    AssertLockNotHeld(m_recv_mutex);
Line
Count
Source
142
0
#define AssertLockNotHeld(cs) AssertLockNotHeldInline(#cs, __FILE__, __LINE__, &cs)
1553
    // Only outgoing connections need reconnection.
1554
0
    if (!m_initiating) return false;
1555
1556
0
    LOCK(m_recv_mutex);
Line
Count
Source
259
0
#define LOCK(cs) UniqueLock UNIQUE_NAME(criticalblock)(MaybeCheckNotHeld(cs), #cs, __FILE__, __LINE__)
Line
Count
Source
11
0
#define UNIQUE_NAME(name) PASTE2(name, __COUNTER__)
Line
Count
Source
9
0
#define PASTE2(x, y) PASTE(x, y)
Line
Count
Source
8
0
#define PASTE(x, y) x ## y
1557
    // We only reconnect in the very first state and when the receive buffer is empty. Together
1558
    // these conditions imply nothing has been received so far.
1559
0
    if (m_recv_state != RecvState::KEY) return false;
1560
0
    if (!m_recv_buffer.empty()) return false;
1561
    // Check if we've sent enough for the other side to disconnect us (if it was V1).
1562
0
    LOCK(m_send_mutex);
Line
Count
Source
259
0
#define LOCK(cs) UniqueLock UNIQUE_NAME(criticalblock)(MaybeCheckNotHeld(cs), #cs, __FILE__, __LINE__)
Line
Count
Source
11
0
#define UNIQUE_NAME(name) PASTE2(name, __COUNTER__)
Line
Count
Source
9
0
#define PASTE2(x, y) PASTE(x, y)
Line
Count
Source
8
0
#define PASTE(x, y) x ## y
1563
0
    return m_sent_v1_header_worth;
1564
0
}
1565
1566
size_t V2Transport::GetSendMemoryUsage() const noexcept
1567
0
{
1568
0
    AssertLockNotHeld(m_send_mutex);
Line
Count
Source
142
0
#define AssertLockNotHeld(cs) AssertLockNotHeldInline(#cs, __FILE__, __LINE__, &cs)
1569
0
    LOCK(m_send_mutex);
Line
Count
Source
259
0
#define LOCK(cs) UniqueLock UNIQUE_NAME(criticalblock)(MaybeCheckNotHeld(cs), #cs, __FILE__, __LINE__)
Line
Count
Source
11
0
#define UNIQUE_NAME(name) PASTE2(name, __COUNTER__)
Line
Count
Source
9
0
#define PASTE2(x, y) PASTE(x, y)
Line
Count
Source
8
0
#define PASTE(x, y) x ## y
1570
0
    if (m_send_state == SendState::V1) return m_v1_fallback.GetSendMemoryUsage();
1571
1572
0
    return sizeof(m_send_buffer) + memusage::DynamicUsage(m_send_buffer);
1573
0
}
1574
1575
Transport::Info V2Transport::GetInfo() const noexcept
1576
0
{
1577
0
    AssertLockNotHeld(m_recv_mutex);
Line
Count
Source
142
0
#define AssertLockNotHeld(cs) AssertLockNotHeldInline(#cs, __FILE__, __LINE__, &cs)
1578
0
    LOCK(m_recv_mutex);
Line
Count
Source
259
0
#define LOCK(cs) UniqueLock UNIQUE_NAME(criticalblock)(MaybeCheckNotHeld(cs), #cs, __FILE__, __LINE__)
Line
Count
Source
11
0
#define UNIQUE_NAME(name) PASTE2(name, __COUNTER__)
Line
Count
Source
9
0
#define PASTE2(x, y) PASTE(x, y)
Line
Count
Source
8
0
#define PASTE(x, y) x ## y
1579
0
    if (m_recv_state == RecvState::V1) return m_v1_fallback.GetInfo();
1580
1581
0
    Transport::Info info;
1582
1583
    // Do not report v2 and session ID until the version packet has been received
1584
    // and verified (confirming that the other side very likely has the same keys as us).
1585
0
    if (m_recv_state != RecvState::KEY_MAYBE_V1 && m_recv_state != RecvState::KEY &&
1586
0
        m_recv_state != RecvState::GARB_GARBTERM && m_recv_state != RecvState::VERSION) {
1587
0
        info.transport_type = TransportProtocolType::V2;
1588
0
        info.session_id = uint256(MakeUCharSpan(m_cipher.GetSessionID()));
1589
0
    } else {
1590
0
        info.transport_type = TransportProtocolType::DETECTING;
1591
0
    }
1592
1593
0
    return info;
1594
0
}
1595
1596
std::pair<size_t, bool> CConnman::SocketSendData(CNode& node) const
1597
0
{
1598
0
    auto it = node.vSendMsg.begin();
1599
0
    size_t nSentSize = 0;
1600
0
    bool data_left{false}; //!< second return value (whether unsent data remains)
1601
0
    std::optional<bool> expected_more;
1602
1603
0
    while (true) {
1604
0
        if (it != node.vSendMsg.end()) {
1605
            // If possible, move one message from the send queue to the transport. This fails when
1606
            // there is an existing message still being sent, or (for v2 transports) when the
1607
            // handshake has not yet completed.
1608
0
            size_t memusage = it->GetMemoryUsage();
1609
0
            if (node.m_transport->SetMessageToSend(*it)) {
1610
                // Update memory usage of send buffer (as *it will be deleted).
1611
0
                node.m_send_memusage -= memusage;
1612
0
                ++it;
1613
0
            }
1614
0
        }
1615
0
        const auto& [data, more, msg_type] = node.m_transport->GetBytesToSend(it != node.vSendMsg.end());
1616
        // We rely on the 'more' value returned by GetBytesToSend to correctly predict whether more
1617
        // bytes are still to be sent, to correctly set the MSG_MORE flag. As a sanity check,
1618
        // verify that the previously returned 'more' was correct.
1619
0
        if (expected_more.has_value()) Assume(!data.empty() == *expected_more);
Line
Count
Source
125
0
#define Assume(val) inline_assertion_check<false>(val, std::source_location::current(), #val)
1620
0
        expected_more = more;
1621
0
        data_left = !data.empty(); // will be overwritten on next loop if all of data gets sent
1622
0
        int nBytes = 0;
1623
0
        if (!data.empty()) {
1624
0
            LOCK(node.m_sock_mutex);
Line
Count
Source
259
0
#define LOCK(cs) UniqueLock UNIQUE_NAME(criticalblock)(MaybeCheckNotHeld(cs), #cs, __FILE__, __LINE__)
Line
Count
Source
11
0
#define UNIQUE_NAME(name) PASTE2(name, __COUNTER__)
Line
Count
Source
9
0
#define PASTE2(x, y) PASTE(x, y)
Line
Count
Source
8
0
#define PASTE(x, y) x ## y
1625
            // There is no socket in case we've already disconnected, or in test cases without
1626
            // real connections. In these cases, we bail out immediately and just leave things
1627
            // in the send queue and transport.
1628
0
            if (!node.m_sock) {
1629
0
                break;
1630
0
            }
1631
0
            int flags = MSG_NOSIGNAL | MSG_DONTWAIT;
1632
#ifdef MSG_MORE
1633
            if (more) {
1634
                flags |= MSG_MORE;
1635
            }
1636
#endif
1637
0
            nBytes = node.m_sock->Send(data.data(), data.size(), flags);
1638
0
        }
1639
0
        if (nBytes > 0) {
1640
0
            node.m_last_send = GetTime<std::chrono::seconds>();
1641
0
            node.nSendBytes += nBytes;
1642
            // Notify transport that bytes have been processed.
1643
0
            node.m_transport->MarkBytesSent(nBytes);
1644
            // Update statistics per message type.
1645
0
            if (!msg_type.empty()) { // don't report v2 handshake bytes for now
1646
0
                node.AccountForSentBytes(msg_type, nBytes);
1647
0
            }
1648
0
            nSentSize += nBytes;
1649
0
            if ((size_t)nBytes != data.size()) {
1650
                // could not send full message; stop sending more
1651
0
                break;
1652
0
            }
1653
0
        } else {
1654
0
            if (nBytes < 0) {
1655
                // error
1656
0
                int nErr = WSAGetLastError();
Line
Count
Source
47
0
#define WSAGetLastError()   errno
1657
0
                if (nErr != WSAEWOULDBLOCK && nErr != WSAEMSGSIZE && nErr != WSAEINTR && nErr != WSAEINPROGRESS) {
Line
Count
Source
49
0
#define WSAEWOULDBLOCK      EWOULDBLOCK
                if (nErr != WSAEWOULDBLOCK && nErr != WSAEMSGSIZE && nErr != WSAEINTR && nErr != WSAEINPROGRESS) {
Line
Count
Source
51
0
#define WSAEMSGSIZE         EMSGSIZE
                if (nErr != WSAEWOULDBLOCK && nErr != WSAEMSGSIZE && nErr != WSAEINTR && nErr != WSAEINPROGRESS) {
Line
Count
Source
52
0
#define WSAEINTR            EINTR
                if (nErr != WSAEWOULDBLOCK && nErr != WSAEMSGSIZE && nErr != WSAEINTR && nErr != WSAEINPROGRESS) {
Line
Count
Source
53
0
#define WSAEINPROGRESS      EINPROGRESS
1658
0
                    LogDebug(BCLog::NET, "socket send error, %s: %s\n", node.DisconnectMsg(fLogIPs), NetworkErrorString(nErr));
Line
Count
Source
393
0
#define LogDebug(category, ...) LogPrintLevel(category, BCLog::Level::Debug, __VA_ARGS__)
Line
Count
Source
385
0
    do {                                                              \
386
0
        if (LogAcceptCategory((category), (level))) {                 \
387
0
            bool rate_limit{level >= BCLog::Level::Info};             \
388
0
            LogPrintLevel_(category, level, rate_limit, __VA_ARGS__); \
Line
Count
Source
362
0
#define LogPrintLevel_(category, level, should_ratelimit, ...) LogPrintFormatInternal(std::source_location::current(), category, level, should_ratelimit, __VA_ARGS__)
389
0
        }                                                             \
390
0
    } while (0)
1659
0
                    node.CloseSocketDisconnect();
1660
0
                }
1661
0
            }
1662
0
            break;
1663
0
        }
1664
0
    }
1665
1666
0
    node.fPauseSend = node.m_send_memusage + node.m_transport->GetSendMemoryUsage() > nSendBufferMaxSize;
1667
1668
0
    if (it == node.vSendMsg.end()) {
1669
0
        assert(node.m_send_memusage == 0);
1670
0
    }
1671
0
    node.vSendMsg.erase(node.vSendMsg.begin(), it);
1672
0
    return {nSentSize, data_left};
1673
0
}
1674
1675
/** Try to find a connection to evict when the node is full.
1676
 *  Extreme care must be taken to avoid opening the node to attacker
1677
 *   triggered network partitioning.
1678
 *  The strategy used here is to protect a small number of peers
1679
 *   for each of several distinct characteristics which are difficult
1680
 *   to forge.  In order to partition a node the attacker must be
1681
 *   simultaneously better at all of them than honest peers.
1682
 */
1683
bool CConnman::AttemptToEvictConnection()
1684
0
{
1685
0
    std::vector<NodeEvictionCandidate> vEvictionCandidates;
1686
0
    {
1687
1688
0
        LOCK(m_nodes_mutex);
Line
Count
Source
259
0
#define LOCK(cs) UniqueLock UNIQUE_NAME(criticalblock)(MaybeCheckNotHeld(cs), #cs, __FILE__, __LINE__)
Line
Count
Source
11
0
#define UNIQUE_NAME(name) PASTE2(name, __COUNTER__)
Line
Count
Source
9
0
#define PASTE2(x, y) PASTE(x, y)
Line
Count
Source
8
0
#define PASTE(x, y) x ## y
1689
0
        for (const CNode* node : m_nodes) {
1690
0
            if (node->fDisconnect)
1691
0
                continue;
1692
0
            NodeEvictionCandidate candidate{
1693
0
                .id = node->GetId(),
1694
0
                .m_connected = node->m_connected,
1695
0
                .m_min_ping_time = node->m_min_ping_time,
1696
0
                .m_last_block_time = node->m_last_block_time,
1697
0
                .m_last_tx_time = node->m_last_tx_time,
1698
0
                .fRelevantServices = node->m_has_all_wanted_services,
1699
0
                .m_relay_txs = node->m_relays_txs.load(),
1700
0
                .fBloomFilter = node->m_bloom_filter_loaded.load(),
1701
0
                .nKeyedNetGroup = node->nKeyedNetGroup,
1702
0
                .prefer_evict = node->m_prefer_evict,
1703
0
                .m_is_local = node->addr.IsLocal(),
1704
0
                .m_network = node->ConnectedThroughNetwork(),
1705
0
                .m_noban = node->HasPermission(NetPermissionFlags::NoBan),
1706
0
                .m_conn_type = node->m_conn_type,
1707
0
            };
1708
0
            vEvictionCandidates.push_back(candidate);
1709
0
        }
1710
0
    }
1711
0
    const std::optional<NodeId> node_id_to_evict = SelectNodeToEvict(std::move(vEvictionCandidates));
1712
0
    if (!node_id_to_evict) {
1713
0
        return false;
1714
0
    }
1715
0
    LOCK(m_nodes_mutex);
Line
Count
Source
259
0
#define LOCK(cs) UniqueLock UNIQUE_NAME(criticalblock)(MaybeCheckNotHeld(cs), #cs, __FILE__, __LINE__)
Line
Count
Source
11
0
#define UNIQUE_NAME(name) PASTE2(name, __COUNTER__)
Line
Count
Source
9
0
#define PASTE2(x, y) PASTE(x, y)
Line
Count
Source
8
0
#define PASTE(x, y) x ## y
1716
0
    for (CNode* pnode : m_nodes) {
1717
0
        if (pnode->GetId() == *node_id_to_evict) {
1718
0
            LogDebug(BCLog::NET, "selected %s connection for eviction, %s", pnode->ConnectionTypeAsString(), pnode->DisconnectMsg(fLogIPs));
Line
Count
Source
393
0
#define LogDebug(category, ...) LogPrintLevel(category, BCLog::Level::Debug, __VA_ARGS__)
Line
Count
Source
385
0
    do {                                                              \
386
0
        if (LogAcceptCategory((category), (level))) {                 \
387
0
            bool rate_limit{level >= BCLog::Level::Info};             \
388
0
            LogPrintLevel_(category, level, rate_limit, __VA_ARGS__); \
Line
Count
Source
362
0
#define LogPrintLevel_(category, level, should_ratelimit, ...) LogPrintFormatInternal(std::source_location::current(), category, level, should_ratelimit, __VA_ARGS__)
389
0
        }                                                             \
390
0
    } while (0)
1719
0
            TRACEPOINT(net, evicted_inbound_connection,
1720
0
                pnode->GetId(),
1721
0
                pnode->m_addr_name.c_str(),
1722
0
                pnode->ConnectionTypeAsString().c_str(),
1723
0
                pnode->ConnectedThroughNetwork(),
1724
0
                Ticks<std::chrono::seconds>(pnode->m_connected));
1725
0
            pnode->fDisconnect = true;
1726
0
            return true;
1727
0
        }
1728
0
    }
1729
0
    return false;
1730
0
}
1731
1732
0
void CConnman::AcceptConnection(const ListenSocket& hListenSocket) {
1733
0
    struct sockaddr_storage sockaddr;
1734
0
    socklen_t len = sizeof(sockaddr);
1735
0
    auto sock = hListenSocket.sock->Accept((struct sockaddr*)&sockaddr, &len);
1736
1737
0
    if (!sock) {
1738
0
        const int nErr = WSAGetLastError();
Line
Count
Source
47
0
#define WSAGetLastError()   errno
1739
0
        if (nErr != WSAEWOULDBLOCK) {
Line
Count
Source
49
0
#define WSAEWOULDBLOCK      EWOULDBLOCK
1740
0
            LogPrintf("socket error accept failed: %s\n", NetworkErrorString(nErr));
Line
Count
Source
373
0
#define LogPrintf(...) LogInfo(__VA_ARGS__)
Line
Count
Source
368
0
#define LogInfo(...) LogPrintLevel_(BCLog::LogFlags::ALL, BCLog::Level::Info, /*should_ratelimit=*/true, __VA_ARGS__)
Line
Count
Source
362
0
#define LogPrintLevel_(category, level, should_ratelimit, ...) LogPrintFormatInternal(std::source_location::current(), category, level, should_ratelimit, __VA_ARGS__)
1741
0
        }
1742
0
        return;
1743
0
    }
1744
1745
0
    CService addr;
1746
0
    if (!addr.SetSockAddr((const struct sockaddr*)&sockaddr, len)) {
1747
0
        LogPrintLevel(BCLog::NET, BCLog::Level::Warning, "Unknown socket family\n");
Line
Count
Source
385
0
    do {                                                              \
386
0
        if (LogAcceptCategory((category), (level))) {                 \
387
0
            bool rate_limit{level >= BCLog::Level::Info};             \
388
0
            LogPrintLevel_(category, level, rate_limit, __VA_ARGS__); \
Line
Count
Source
362
0
#define LogPrintLevel_(category, level, should_ratelimit, ...) LogPrintFormatInternal(std::source_location::current(), category, level, should_ratelimit, __VA_ARGS__)
389
0
        }                                                             \
390
0
    } while (0)
1748
0
    } else {
1749
0
        addr = MaybeFlipIPv6toCJDNS(addr);
1750
0
    }
1751
1752
0
    const CService addr_bind{MaybeFlipIPv6toCJDNS(GetBindAddress(*sock))};
1753
1754
0
    NetPermissionFlags permission_flags = NetPermissionFlags::None;
1755
0
    hListenSocket.AddSocketPermissionFlags(permission_flags);
1756
1757
0
    CreateNodeFromAcceptedSocket(std::move(sock), permission_flags, addr_bind, addr);
1758
0
}
1759
1760
void CConnman::CreateNodeFromAcceptedSocket(std::unique_ptr<Sock>&& sock,
1761
                                            NetPermissionFlags permission_flags,
1762
                                            const CService& addr_bind,
1763
                                            const CService& addr)
1764
0
{
1765
0
    int nInbound = 0;
1766
1767
0
    const bool inbound_onion = std::find(m_onion_binds.begin(), m_onion_binds.end(), addr_bind) != m_onion_binds.end();
1768
1769
    // Tor inbound connections do not reveal the peer's actual network address.
1770
    // Therefore do not apply address-based whitelist permissions to them.
1771
0
    AddWhitelistPermissionFlags(permission_flags, inbound_onion ? std::optional<CNetAddr>{} : addr, vWhitelistedRangeIncoming);
1772
1773
0
    {
1774
0
        LOCK(m_nodes_mutex);
Line
Count
Source
259
0
#define LOCK(cs) UniqueLock UNIQUE_NAME(criticalblock)(MaybeCheckNotHeld(cs), #cs, __FILE__, __LINE__)
Line
Count
Source
11
0
#define UNIQUE_NAME(name) PASTE2(name, __COUNTER__)
Line
Count
Source
9
0
#define PASTE2(x, y) PASTE(x, y)
Line
Count
Source
8
0
#define PASTE(x, y) x ## y
1775
0
        for (const CNode* pnode : m_nodes) {
1776
0
            if (pnode->IsInboundConn()) nInbound++;
1777
0
        }
1778
0
    }
1779
1780
0
    if (!fNetworkActive) {
1781
0
        LogDebug(BCLog::NET, "connection from %s dropped: not accepting new connections\n", addr.ToStringAddrPort());
Line
Count
Source
393
0
#define LogDebug(category, ...) LogPrintLevel(category, BCLog::Level::Debug, __VA_ARGS__)
Line
Count
Source
385
0
    do {                                                              \
386
0
        if (LogAcceptCategory((category), (level))) {                 \
387
0
            bool rate_limit{level >= BCLog::Level::Info};             \
388
0
            LogPrintLevel_(category, level, rate_limit, __VA_ARGS__); \
Line
Count
Source
362
0
#define LogPrintLevel_(category, level, should_ratelimit, ...) LogPrintFormatInternal(std::source_location::current(), category, level, should_ratelimit, __VA_ARGS__)
389
0
        }                                                             \
390
0
    } while (0)
1782
0
        return;
1783
0
    }
1784
1785
0
    if (!sock->IsSelectable()) {
1786
0
        LogPrintf("connection from %s dropped: non-selectable socket\n", addr.ToStringAddrPort());
Line
Count
Source
373
0
#define LogPrintf(...) LogInfo(__VA_ARGS__)
Line
Count
Source
368
0
#define LogInfo(...) LogPrintLevel_(BCLog::LogFlags::ALL, BCLog::Level::Info, /*should_ratelimit=*/true, __VA_ARGS__)
Line
Count
Source
362
0
#define LogPrintLevel_(category, level, should_ratelimit, ...) LogPrintFormatInternal(std::source_location::current(), category, level, should_ratelimit, __VA_ARGS__)
1787
0
        return;
1788
0
    }
1789
1790
    // According to the internet TCP_NODELAY is not carried into accepted sockets
1791
    // on all platforms.  Set it again here just to be sure.
1792
0
    const int on{1};
1793
0
    if (sock->SetSockOpt(IPPROTO_TCP, TCP_NODELAY, &on, sizeof(on)) == SOCKET_ERROR) {
Line
Count
Source
56
0
#define SOCKET_ERROR        -1
1794
0
        LogDebug(BCLog::NET, "connection from %s: unable to set TCP_NODELAY, continuing anyway\n",
Line
Count
Source
393
0
#define LogDebug(category, ...) LogPrintLevel(category, BCLog::Level::Debug, __VA_ARGS__)
Line
Count
Source
385
0
    do {                                                              \
386
0
        if (LogAcceptCategory((category), (level))) {                 \
387
0
            bool rate_limit{level >= BCLog::Level::Info};             \
388
0
            LogPrintLevel_(category, level, rate_limit, __VA_ARGS__); \
Line
Count
Source
362
0
#define LogPrintLevel_(category, level, should_ratelimit, ...) LogPrintFormatInternal(std::source_location::current(), category, level, should_ratelimit, __VA_ARGS__)
389
0
        }                                                             \
390
0
    } while (0)
1795
0
                 addr.ToStringAddrPort());
1796
0
    }
1797
1798
    // Don't accept connections from banned peers.
1799
0
    bool banned = m_banman && m_banman->IsBanned(addr);
1800
0
    if (!NetPermissions::HasFlag(permission_flags, NetPermissionFlags::NoBan) && banned)
1801
0
    {
1802
0
        LogDebug(BCLog::NET, "connection from %s dropped (banned)\n", addr.ToStringAddrPort());
Line
Count
Source
393
0
#define LogDebug(category, ...) LogPrintLevel(category, BCLog::Level::Debug, __VA_ARGS__)
Line
Count
Source
385
0
    do {                                                              \
386
0
        if (LogAcceptCategory((category), (level))) {                 \
387
0
            bool rate_limit{level >= BCLog::Level::Info};             \
388
0
            LogPrintLevel_(category, level, rate_limit, __VA_ARGS__); \
Line
Count
Source
362
0
#define LogPrintLevel_(category, level, should_ratelimit, ...) LogPrintFormatInternal(std::source_location::current(), category, level, should_ratelimit, __VA_ARGS__)
389
0
        }                                                             \
390
0
    } while (0)
1803
0
        return;
1804
0
    }
1805
1806
    // Only accept connections from discouraged peers if our inbound slots aren't (almost) full.
1807
0
    bool discouraged = m_banman && m_banman->IsDiscouraged(addr);
1808
0
    if (!NetPermissions::HasFlag(permission_flags, NetPermissionFlags::NoBan) && nInbound + 1 >= m_max_inbound && discouraged)
1809
0
    {
1810
0
        LogDebug(BCLog::NET, "connection from %s dropped (discouraged)\n", addr.ToStringAddrPort());
Line
Count
Source
393
0
#define LogDebug(category, ...) LogPrintLevel(category, BCLog::Level::Debug, __VA_ARGS__)
Line
Count
Source
385
0
    do {                                                              \
386
0
        if (LogAcceptCategory((category), (level))) {                 \
387
0
            bool rate_limit{level >= BCLog::Level::Info};             \
388
0
            LogPrintLevel_(category, level, rate_limit, __VA_ARGS__); \
Line
Count
Source
362
0
#define LogPrintLevel_(category, level, should_ratelimit, ...) LogPrintFormatInternal(std::source_location::current(), category, level, should_ratelimit, __VA_ARGS__)
389
0
        }                                                             \
390
0
    } while (0)
1811
0
        return;
1812
0
    }
1813
1814
0
    if (nInbound >= m_max_inbound)
1815
0
    {
1816
0
        if (!AttemptToEvictConnection()) {
1817
            // No connection to evict, disconnect the new connection
1818
0
            LogDebug(BCLog::NET, "failed to find an eviction candidate - connection dropped (full)\n");
Line
Count
Source
393
0
#define LogDebug(category, ...) LogPrintLevel(category, BCLog::Level::Debug, __VA_ARGS__)
Line
Count
Source
385
0
    do {                                                              \
386
0
        if (LogAcceptCategory((category), (level))) {                 \
387
0
            bool rate_limit{level >= BCLog::Level::Info};             \
388
0
            LogPrintLevel_(category, level, rate_limit, __VA_ARGS__); \
Line
Count
Source
362
0
#define LogPrintLevel_(category, level, should_ratelimit, ...) LogPrintFormatInternal(std::source_location::current(), category, level, should_ratelimit, __VA_ARGS__)
389
0
        }                                                             \
390
0
    } while (0)
1819
0
            return;
1820
0
        }
1821
0
    }
1822
1823
0
    NodeId id = GetNewNodeId();
1824
0
    uint64_t nonce = GetDeterministicRandomizer(RANDOMIZER_ID_LOCALHOSTNONCE).Write(id).Finalize();
1825
1826
    // The V2Transport transparently falls back to V1 behavior when an incoming V1 connection is
1827
    // detected, so use it whenever we signal NODE_P2P_V2.
1828
0
    ServiceFlags local_services = GetLocalServices();
1829
0
    const bool use_v2transport(local_services & NODE_P2P_V2);
1830
1831
0
    uint64_t network_id = GetDeterministicRandomizer(RANDOMIZER_ID_NETWORKKEY)
1832
0
                        .Write(inbound_onion ? NET_ONION : addr.GetNetClass())
1833
0
                        .Write(addr_bind.GetAddrBytes())
1834
0
                        .Write(addr_bind.GetPort()) // inbound connections use bind port
1835
0
                        .Finalize();
1836
0
    CNode* pnode = new CNode(id,
1837
0
                             std::move(sock),
1838
0
                             CAddress{addr, NODE_NONE},
1839
0
                             CalculateKeyedNetGroup(addr),
1840
0
                             nonce,
1841
0
                             addr_bind,
1842
0
                             /*addrNameIn=*/"",
1843
0
                             ConnectionType::INBOUND,
1844
0
                             inbound_onion,
1845
0
                             network_id,
1846
0
                             CNodeOptions{
1847
0
                                 .permission_flags = permission_flags,
1848
0
                                 .prefer_evict = discouraged,
1849
0
                                 .recv_flood_size = nReceiveFloodSize,
1850
0
                                 .use_v2transport = use_v2transport,
1851
0
                             });
1852
0
    pnode->AddRef();
1853
0
    m_msgproc->InitializeNode(*pnode, local_services);
1854
0
    {
1855
0
        LOCK(m_nodes_mutex);
Line
Count
Source
259
0
#define LOCK(cs) UniqueLock UNIQUE_NAME(criticalblock)(MaybeCheckNotHeld(cs), #cs, __FILE__, __LINE__)
Line
Count
Source
11
0
#define UNIQUE_NAME(name) PASTE2(name, __COUNTER__)
Line
Count
Source
9
0
#define PASTE2(x, y) PASTE(x, y)
Line
Count
Source
8
0
#define PASTE(x, y) x ## y
1856
0
        m_nodes.push_back(pnode);
1857
0
    }
1858
0
    LogDebug(BCLog::NET, "connection from %s accepted\n", addr.ToStringAddrPort());
Line
Count
Source
393
0
#define LogDebug(category, ...) LogPrintLevel(category, BCLog::Level::Debug, __VA_ARGS__)
Line
Count
Source
385
0
    do {                                                              \
386
0
        if (LogAcceptCategory((category), (level))) {                 \
387
0
            bool rate_limit{level >= BCLog::Level::Info};             \
388
0
            LogPrintLevel_(category, level, rate_limit, __VA_ARGS__); \
Line
Count
Source
362
0
#define LogPrintLevel_(category, level, should_ratelimit, ...) LogPrintFormatInternal(std::source_location::current(), category, level, should_ratelimit, __VA_ARGS__)
389
0
        }                                                             \
390
0
    } while (0)
1859
0
    TRACEPOINT(net, inbound_connection,
1860
0
        pnode->GetId(),
1861
0
        pnode->m_addr_name.c_str(),
1862
0
        pnode->ConnectionTypeAsString().c_str(),
1863
0
        pnode->ConnectedThroughNetwork(),
1864
0
        GetNodeCount(ConnectionDirection::In));
1865
1866
    // We received a new connection, harvest entropy from the time (and our peer count)
1867
0
    RandAddEvent((uint32_t)id);
1868
0
}
1869
1870
bool CConnman::AddConnection(const std::string& address, ConnectionType conn_type, bool use_v2transport = false)
1871
0
{
1872
0
    AssertLockNotHeld(m_unused_i2p_sessions_mutex);
Line
Count
Source
142
0
#define AssertLockNotHeld(cs) AssertLockNotHeldInline(#cs, __FILE__, __LINE__, &cs)
1873
0
    std::optional<int> max_connections;
1874
0
    switch (conn_type) {
1875
0
    case ConnectionType::INBOUND:
1876
0
    case ConnectionType::MANUAL:
1877
0
        return false;
1878
0
    case ConnectionType::OUTBOUND_FULL_RELAY:
1879
0
        max_connections = m_max_outbound_full_relay;
1880
0
        break;
1881
0
    case ConnectionType::BLOCK_RELAY:
1882
0
        max_connections = m_max_outbound_block_relay;
1883
0
        break;
1884
    // no limit for ADDR_FETCH because -seednode has no limit either
1885
0
    case ConnectionType::ADDR_FETCH:
1886
0
        break;
1887
    // no limit for FEELER connections since they're short-lived
1888
0
    case ConnectionType::FEELER:
1889
0
        break;
1890
0
    } // no default case, so the compiler can warn about missing cases
1891
1892
    // Count existing connections
1893
0
    int existing_connections = WITH_LOCK(m_nodes_mutex,
Line
Count
Source
290
0
#define WITH_LOCK(cs, code) (MaybeCheckNotHeld(cs), [&]() -> decltype(auto) { LOCK(cs); code; }())
1894
0
                                         return std::count_if(m_nodes.begin(), m_nodes.end(), [conn_type](CNode* node) { return node->m_conn_type == conn_type; }););
1895
1896
    // Max connections of specified type already exist
1897
0
    if (max_connections != std::nullopt && existing_connections >= max_connections) return false;
1898
1899
    // Max total outbound connections already exist
1900
0
    CountingSemaphoreGrant<> grant(*semOutbound, true);
1901
0
    if (!grant) return false;
1902
1903
0
    OpenNetworkConnection(CAddress(), false, std::move(grant), address.c_str(), conn_type, /*use_v2transport=*/use_v2transport);
1904
0
    return true;
1905
0
}
1906
1907
void CConnman::DisconnectNodes()
1908
0
{
1909
0
    AssertLockNotHeld(m_nodes_mutex);
Line
Count
Source
142
0
#define AssertLockNotHeld(cs) AssertLockNotHeldInline(#cs, __FILE__, __LINE__, &cs)
1910
0
    AssertLockNotHeld(m_reconnections_mutex);
Line
Count
Source
142
0
#define AssertLockNotHeld(cs) AssertLockNotHeldInline(#cs, __FILE__, __LINE__, &cs)
1911
1912
    // Use a temporary variable to accumulate desired reconnections, so we don't need
1913
    // m_reconnections_mutex while holding m_nodes_mutex.
1914
0
    decltype(m_reconnections) reconnections_to_add;
1915
1916
0
    {
1917
0
        LOCK(m_nodes_mutex);
Line
Count
Source
259
0
#define LOCK(cs) UniqueLock UNIQUE_NAME(criticalblock)(MaybeCheckNotHeld(cs), #cs, __FILE__, __LINE__)
Line
Count
Source
11
0
#define UNIQUE_NAME(name) PASTE2(name, __COUNTER__)
Line
Count
Source
9
0
#define PASTE2(x, y) PASTE(x, y)
Line
Count
Source
8
0
#define PASTE(x, y) x ## y
1918
1919
0
        const bool network_active{fNetworkActive};
1920
0
        if (!network_active) {
1921
            // Disconnect any connected nodes
1922
0
            for (CNode* pnode : m_nodes) {
1923
0
                if (!pnode->fDisconnect) {
1924
0
                    LogDebug(BCLog::NET, "Network not active, %s\n", pnode->DisconnectMsg(fLogIPs));
Line
Count
Source
393
0
#define LogDebug(category, ...) LogPrintLevel(category, BCLog::Level::Debug, __VA_ARGS__)
Line
Count
Source
385
0
    do {                                                              \
386
0
        if (LogAcceptCategory((category), (level))) {                 \
387
0
            bool rate_limit{level >= BCLog::Level::Info};             \
388
0
            LogPrintLevel_(category, level, rate_limit, __VA_ARGS__); \
Line
Count
Source
362
0
#define LogPrintLevel_(category, level, should_ratelimit, ...) LogPrintFormatInternal(std::source_location::current(), category, level, should_ratelimit, __VA_ARGS__)
389
0
        }                                                             \
390
0
    } while (0)
1925
0
                    pnode->fDisconnect = true;
1926
0
                }
1927
0
            }
1928
0
        }
1929
1930
        // Disconnect unused nodes
1931
0
        std::vector<CNode*> nodes_copy = m_nodes;
1932
0
        for (CNode* pnode : nodes_copy)
1933
0
        {
1934
0
            if (pnode->fDisconnect)
1935
0
            {
1936
                // remove from m_nodes
1937
0
                m_nodes.erase(remove(m_nodes.begin(), m_nodes.end(), pnode), m_nodes.end());
1938
1939
                // Add to reconnection list if appropriate. We don't reconnect right here, because
1940
                // the creation of a connection is a blocking operation (up to several seconds),
1941
                // and we don't want to hold up the socket handler thread for that long.
1942
0
                if (network_active && pnode->m_transport->ShouldReconnectV1()) {
1943
0
                    reconnections_to_add.push_back({
1944
0
                        .addr_connect = pnode->addr,
1945
0
                        .grant = std::move(pnode->grantOutbound),
1946
0
                        .destination = pnode->m_dest,
1947
0
                        .conn_type = pnode->m_conn_type,
1948
0
                        .use_v2transport = false});
1949
0
                    LogDebug(BCLog::NET, "retrying with v1 transport protocol for peer=%d\n", pnode->GetId());
Line
Count
Source
393
0
#define LogDebug(category, ...) LogPrintLevel(category, BCLog::Level::Debug, __VA_ARGS__)
Line
Count
Source
385
0
    do {                                                              \
386
0
        if (LogAcceptCategory((category), (level))) {                 \
387
0
            bool rate_limit{level >= BCLog::Level::Info};             \
388
0
            LogPrintLevel_(category, level, rate_limit, __VA_ARGS__); \
Line
Count
Source
362
0
#define LogPrintLevel_(category, level, should_ratelimit, ...) LogPrintFormatInternal(std::source_location::current(), category, level, should_ratelimit, __VA_ARGS__)
389
0
        }                                                             \
390
0
    } while (0)
1950
0
                }
1951
1952
                // release outbound grant (if any)
1953
0
                pnode->grantOutbound.Release();
1954
1955
                // close socket and cleanup
1956
0
                pnode->CloseSocketDisconnect();
1957
1958
                // update connection count by network
1959
0
                if (pnode->IsManualOrFullOutboundConn()) --m_network_conn_counts[pnode->addr.GetNetwork()];
1960
1961
                // hold in disconnected pool until all refs are released
1962
0
                pnode->Release();
1963
0
                m_nodes_disconnected.push_back(pnode);
1964
0
            }
1965
0
        }
1966
0
    }
1967
0
    {
1968
        // Delete disconnected nodes
1969
0
        std::list<CNode*> nodes_disconnected_copy = m_nodes_disconnected;
1970
0
        for (CNode* pnode : nodes_disconnected_copy)
1971
0
        {
1972
            // Destroy the object only after other threads have stopped using it.
1973
0
            if (pnode->GetRefCount() <= 0) {
1974
0
                m_nodes_disconnected.remove(pnode);
1975
0
                DeleteNode(pnode);
1976
0
            }
1977
0
        }
1978
0
    }
1979
0
    {
1980
        // Move entries from reconnections_to_add to m_reconnections.
1981
0
        LOCK(m_reconnections_mutex);
Line
Count
Source
259
0
#define LOCK(cs) UniqueLock UNIQUE_NAME(criticalblock)(MaybeCheckNotHeld(cs), #cs, __FILE__, __LINE__)
Line
Count
Source
11
0
#define UNIQUE_NAME(name) PASTE2(name, __COUNTER__)
Line
Count
Source
9
0
#define PASTE2(x, y) PASTE(x, y)
Line
Count
Source
8
0
#define PASTE(x, y) x ## y
1982
0
        m_reconnections.splice(m_reconnections.end(), std::move(reconnections_to_add));
1983
0
    }
1984
0
}
1985
1986
void CConnman::NotifyNumConnectionsChanged()
1987
0
{
1988
0
    size_t nodes_size;
1989
0
    {
1990
0
        LOCK(m_nodes_mutex);
Line
Count
Source
259
0
#define LOCK(cs) UniqueLock UNIQUE_NAME(criticalblock)(MaybeCheckNotHeld(cs), #cs, __FILE__, __LINE__)
Line
Count
Source
11
0
#define UNIQUE_NAME(name) PASTE2(name, __COUNTER__)
Line
Count
Source
9
0
#define PASTE2(x, y) PASTE(x, y)
Line
Count
Source
8
0
#define PASTE(x, y) x ## y
1991
0
        nodes_size = m_nodes.size();
1992
0
    }
1993
0
    if(nodes_size != nPrevNodeCount) {
1994
0
        nPrevNodeCount = nodes_size;
1995
0
        if (m_client_interface) {
1996
0
            m_client_interface->NotifyNumConnectionsChanged(nodes_size);
1997
0
        }
1998
0
    }
1999
0
}
2000
2001
bool CConnman::ShouldRunInactivityChecks(const CNode& node, std::chrono::seconds now) const
2002
0
{
2003
0
    return node.m_connected + m_peer_connect_timeout < now;
2004
0
}
2005
2006
bool CConnman::InactivityCheck(const CNode& node) const
2007
0
{
2008
    // Tests that see disconnects after using mocktime can start nodes with a
2009
    // large timeout. For example, -peertimeout=999999999.
2010
0
    const auto now{GetTime<std::chrono::seconds>()};
2011
0
    const auto last_send{node.m_last_send.load()};
2012
0
    const auto last_recv{node.m_last_recv.load()};
2013
2014
0
    if (!ShouldRunInactivityChecks(node, now)) return false;
2015
2016
0
    bool has_received{last_recv.count() != 0};
2017
0
    bool has_sent{last_send.count() != 0};
2018
2019
0
    if (!has_received || !has_sent) {
2020
0
        std::string has_never;
2021
0
        if (!has_received) has_never += ", never received from peer";
2022
0
        if (!has_sent) has_never += ", never sent to peer";
2023
0
        LogDebug(BCLog::NET,
Line
Count
Source
393
0
#define LogDebug(category, ...) LogPrintLevel(category, BCLog::Level::Debug, __VA_ARGS__)
Line
Count
Source
385
0
    do {                                                              \
386
0
        if (LogAcceptCategory((category), (level))) {                 \
387
0
            bool rate_limit{level >= BCLog::Level::Info};             \
388
0
            LogPrintLevel_(category, level, rate_limit, __VA_ARGS__); \
Line
Count
Source
362
0
#define LogPrintLevel_(category, level, should_ratelimit, ...) LogPrintFormatInternal(std::source_location::current(), category, level, should_ratelimit, __VA_ARGS__)
389
0
        }                                                             \
390
0
    } while (0)
2024
0
            "socket no message in first %i seconds%s, %s\n",
2025
0
            count_seconds(m_peer_connect_timeout),
2026
0
            has_never,
2027
0
            node.DisconnectMsg(fLogIPs)
2028
0
        );
2029
0
        return true;
2030
0
    }
2031
2032
0
    if (now > last_send + TIMEOUT_INTERVAL) {
2033
0
        LogDebug(BCLog::NET,
Line
Count
Source
393
0
#define LogDebug(category, ...) LogPrintLevel(category, BCLog::Level::Debug, __VA_ARGS__)
Line
Count
Source
385
0
    do {                                                              \
386
0
        if (LogAcceptCategory((category), (level))) {                 \
387
0
            bool rate_limit{level >= BCLog::Level::Info};             \
388
0
            LogPrintLevel_(category, level, rate_limit, __VA_ARGS__); \
Line
Count
Source
362
0
#define LogPrintLevel_(category, level, should_ratelimit, ...) LogPrintFormatInternal(std::source_location::current(), category, level, should_ratelimit, __VA_ARGS__)
389
0
        }                                                             \
390
0
    } while (0)
2034
0
            "socket sending timeout: %is, %s\n", count_seconds(now - last_send),
2035
0
            node.DisconnectMsg(fLogIPs)
2036
0
        );
2037
0
        return true;
2038
0
    }
2039
2040
0
    if (now > last_recv + TIMEOUT_INTERVAL) {
2041
0
        LogDebug(BCLog::NET,
Line
Count
Source
393
0
#define LogDebug(category, ...) LogPrintLevel(category, BCLog::Level::Debug, __VA_ARGS__)
Line
Count
Source
385
0
    do {                                                              \
386
0
        if (LogAcceptCategory((category), (level))) {                 \
387
0
            bool rate_limit{level >= BCLog::Level::Info};             \
388
0
            LogPrintLevel_(category, level, rate_limit, __VA_ARGS__); \
Line
Count
Source
362
0
#define LogPrintLevel_(category, level, should_ratelimit, ...) LogPrintFormatInternal(std::source_location::current(), category, level, should_ratelimit, __VA_ARGS__)
389
0
        }                                                             \
390
0
    } while (0)
2042
0
            "socket receive timeout: %is, %s\n", count_seconds(now - last_recv),
2043
0
            node.DisconnectMsg(fLogIPs)
2044
0
        );
2045
0
        return true;
2046
0
    }
2047
2048
0
    if (!node.fSuccessfullyConnected) {
2049
0
        if (node.m_transport->GetInfo().transport_type == TransportProtocolType::DETECTING) {
2050
0
            LogDebug(BCLog::NET, "V2 handshake timeout, %s\n", node.DisconnectMsg(fLogIPs));
Line
Count
Source
393
0
#define LogDebug(category, ...) LogPrintLevel(category, BCLog::Level::Debug, __VA_ARGS__)
Line
Count
Source
385
0
    do {                                                              \
386
0
        if (LogAcceptCategory((category), (level))) {                 \
387
0
            bool rate_limit{level >= BCLog::Level::Info};             \
388
0
            LogPrintLevel_(category, level, rate_limit, __VA_ARGS__); \
Line
Count
Source
362
0
#define LogPrintLevel_(category, level, should_ratelimit, ...) LogPrintFormatInternal(std::source_location::current(), category, level, should_ratelimit, __VA_ARGS__)
389
0
        }                                                             \
390
0
    } while (0)
2051
0
        } else {
2052
0
            LogDebug(BCLog::NET, "version handshake timeout, %s\n", node.DisconnectMsg(fLogIPs));
Line
Count
Source
393
0
#define LogDebug(category, ...) LogPrintLevel(category, BCLog::Level::Debug, __VA_ARGS__)
Line
Count
Source
385
0
    do {                                                              \
386
0
        if (LogAcceptCategory((category), (level))) {                 \
387
0
            bool rate_limit{level >= BCLog::Level::Info};             \
388
0
            LogPrintLevel_(category, level, rate_limit, __VA_ARGS__); \
Line
Count
Source
362
0
#define LogPrintLevel_(category, level, should_ratelimit, ...) LogPrintFormatInternal(std::source_location::current(), category, level, should_ratelimit, __VA_ARGS__)
389
0
        }                                                             \
390
0
    } while (0)
2053
0
        }
2054
0
        return true;
2055
0
    }
2056
2057
0
    return false;
2058
0
}
2059
2060
Sock::EventsPerSock CConnman::GenerateWaitSockets(std::span<CNode* const> nodes)
2061
0
{
2062
0
    Sock::EventsPerSock events_per_sock;
2063
2064
0
    for (const ListenSocket& hListenSocket : vhListenSocket) {
2065
0
        events_per_sock.emplace(hListenSocket.sock, Sock::Events{Sock::RECV});
2066
0
    }
2067
2068
0
    for (CNode* pnode : nodes) {
2069
0
        bool select_recv = !pnode->fPauseRecv;
2070
0
        bool select_send;
2071
0
        {
2072
0
            LOCK(pnode->cs_vSend);
Line
Count
Source
259
0
#define LOCK(cs) UniqueLock UNIQUE_NAME(criticalblock)(MaybeCheckNotHeld(cs), #cs, __FILE__, __LINE__)
Line
Count
Source
11
0
#define UNIQUE_NAME(name) PASTE2(name, __COUNTER__)
Line
Count
Source
9
0
#define PASTE2(x, y) PASTE(x, y)
Line
Count
Source
8
0
#define PASTE(x, y) x ## y
2073
            // Sending is possible if either there are bytes to send right now, or if there will be
2074
            // once a potential message from vSendMsg is handed to the transport. GetBytesToSend
2075
            // determines both of these in a single call.
2076
0
            const auto& [to_send, more, _msg_type] = pnode->m_transport->GetBytesToSend(!pnode->vSendMsg.empty());
2077
0
            select_send = !to_send.empty() || more;
2078
0
        }
2079
0
        if (!select_recv && !select_send) continue;
2080
2081
0
        LOCK(pnode->m_sock_mutex);
Line
Count
Source
259
0
#define LOCK(cs) UniqueLock UNIQUE_NAME(criticalblock)(MaybeCheckNotHeld(cs), #cs, __FILE__, __LINE__)
Line
Count
Source
11
0
#define UNIQUE_NAME(name) PASTE2(name, __COUNTER__)
Line
Count
Source
9
0
#define PASTE2(x, y) PASTE(x, y)
Line
Count
Source
8
0
#define PASTE(x, y) x ## y
2082
0
        if (pnode->m_sock) {
2083
0
            Sock::Event event = (select_send ? Sock::SEND : 0) | (select_recv ? Sock::RECV : 0);
2084
0
            events_per_sock.emplace(pnode->m_sock, Sock::Events{event});
2085
0
        }
2086
0
    }
2087
2088
0
    return events_per_sock;
2089
0
}
2090
2091
void CConnman::SocketHandler()
2092
0
{
2093
0
    AssertLockNotHeld(m_total_bytes_sent_mutex);
Line
Count
Source
142
0
#define AssertLockNotHeld(cs) AssertLockNotHeldInline(#cs, __FILE__, __LINE__, &cs)
2094
2095
0
    Sock::EventsPerSock events_per_sock;
2096
2097
0
    {
2098
0
        const NodesSnapshot snap{*this, /*shuffle=*/false};
2099
2100
0
        const auto timeout = std::chrono::milliseconds(SELECT_TIMEOUT_MILLISECONDS);
2101
2102
        // Check for the readiness of the already connected sockets and the
2103
        // listening sockets in one call ("readiness" as in poll(2) or
2104
        // select(2)). If none are ready, wait for a short while and return
2105
        // empty sets.
2106
0
        events_per_sock = GenerateWaitSockets(snap.Nodes());
2107
0
        if (events_per_sock.empty() || !events_per_sock.begin()->first->WaitMany(timeout, events_per_sock)) {
2108
0
            m_interrupt_net->sleep_for(timeout);
2109
0
        }
2110
2111
        // Service (send/receive) each of the already connected nodes.
2112
0
        SocketHandlerConnected(snap.Nodes(), events_per_sock);
2113
0
    }
2114
2115
    // Accept new connections from listening sockets.
2116
0
    SocketHandlerListening(events_per_sock);
2117
0
}
2118
2119
void CConnman::SocketHandlerConnected(const std::vector<CNode*>& nodes,
2120
                                      const Sock::EventsPerSock& events_per_sock)
2121
0
{
2122
0
    AssertLockNotHeld(m_total_bytes_sent_mutex);
Line
Count
Source
142
0
#define AssertLockNotHeld(cs) AssertLockNotHeldInline(#cs, __FILE__, __LINE__, &cs)
2123
2124
0
    for (CNode* pnode : nodes) {
2125
0
        if (m_interrupt_net->interrupted()) {
2126
0
            return;
2127
0
        }
2128
2129
        //
2130
        // Receive
2131
        //
2132
0
        bool recvSet = false;
2133
0
        bool sendSet = false;
2134
0
        bool errorSet = false;
2135
0
        {
2136
0
            LOCK(pnode->m_sock_mutex);
Line
Count
Source
259
0
#define LOCK(cs) UniqueLock UNIQUE_NAME(criticalblock)(MaybeCheckNotHeld(cs), #cs, __FILE__, __LINE__)
Line
Count
Source
11
0
#define UNIQUE_NAME(name) PASTE2(name, __COUNTER__)
Line
Count
Source
9
0
#define PASTE2(x, y) PASTE(x, y)
Line
Count
Source
8
0
#define PASTE(x, y) x ## y
2137
0
            if (!pnode->m_sock) {
2138
0
                continue;
2139
0
            }
2140
0
            const auto it = events_per_sock.find(pnode->m_sock);
2141
0
            if (it != events_per_sock.end()) {
2142
0
                recvSet = it->second.occurred & Sock::RECV;
2143
0
                sendSet = it->second.occurred & Sock::SEND;
2144
0
                errorSet = it->second.occurred & Sock::ERR;
2145
0
            }
2146
0
        }
2147
2148
0
        if (sendSet) {
2149
            // Send data
2150
0
            auto [bytes_sent, data_left] = WITH_LOCK(pnode->cs_vSend, return SocketSendData(*pnode));
Line
Count
Source
290
0
#define WITH_LOCK(cs, code) (MaybeCheckNotHeld(cs), [&]() -> decltype(auto) { LOCK(cs); code; }())
2151
0
            if (bytes_sent) {
2152
0
                RecordBytesSent(bytes_sent);
2153
2154
                // If both receiving and (non-optimistic) sending were possible, we first attempt
2155
                // sending. If that succeeds, but does not fully drain the send queue, do not
2156
                // attempt to receive. This avoids needlessly queueing data if the remote peer
2157
                // is slow at receiving data, by means of TCP flow control. We only do this when
2158
                // sending actually succeeded to make sure progress is always made; otherwise a
2159
                // deadlock would be possible when both sides have data to send, but neither is
2160
                // receiving.
2161
0
                if (data_left) recvSet = false;
2162
0
            }
2163
0
        }
2164
2165
0
        if (recvSet || errorSet)
2166
0
        {
2167
            // typical socket buffer is 8K-64K
2168
0
            uint8_t pchBuf[0x10000];
2169
0
            int nBytes = 0;
2170
0
            {
2171
0
                LOCK(pnode->m_sock_mutex);
Line
Count
Source
259
0
#define LOCK(cs) UniqueLock UNIQUE_NAME(criticalblock)(MaybeCheckNotHeld(cs), #cs, __FILE__, __LINE__)
Line
Count
Source
11
0
#define UNIQUE_NAME(name) PASTE2(name, __COUNTER__)
Line
Count
Source
9
0
#define PASTE2(x, y) PASTE(x, y)
Line
Count
Source
8
0
#define PASTE(x, y) x ## y
2172
0
                if (!pnode->m_sock) {
2173
0
                    continue;
2174
0
                }
2175
0
                nBytes = pnode->m_sock->Recv(pchBuf, sizeof(pchBuf), MSG_DONTWAIT);
2176
0
            }
2177
0
            if (nBytes > 0)
2178
0
            {
2179
0
                bool notify = false;
2180
0
                if (!pnode->ReceiveMsgBytes({pchBuf, (size_t)nBytes}, notify)) {
2181
0
                    LogDebug(BCLog::NET,
Line
Count
Source
393
0
#define LogDebug(category, ...) LogPrintLevel(category, BCLog::Level::Debug, __VA_ARGS__)
Line
Count
Source
385
0
    do {                                                              \
386
0
        if (LogAcceptCategory((category), (level))) {                 \
387
0
            bool rate_limit{level >= BCLog::Level::Info};             \
388
0
            LogPrintLevel_(category, level, rate_limit, __VA_ARGS__); \
Line
Count
Source
362
0
#define LogPrintLevel_(category, level, should_ratelimit, ...) LogPrintFormatInternal(std::source_location::current(), category, level, should_ratelimit, __VA_ARGS__)
389
0
        }                                                             \
390
0
    } while (0)
2182
0
                        "receiving message bytes failed, %s\n",
2183
0
                        pnode->DisconnectMsg(fLogIPs)
2184
0
                    );
2185
0
                    pnode->CloseSocketDisconnect();
2186
0
                }
2187
0
                RecordBytesRecv(nBytes);
2188
0
                if (notify) {
2189
0
                    pnode->MarkReceivedMsgsForProcessing();
2190
0
                    WakeMessageHandler();
2191
0
                }
2192
0
            }
2193
0
            else if (nBytes == 0)
2194
0
            {
2195
                // socket closed gracefully
2196
0
                if (!pnode->fDisconnect) {
2197
0
                    LogDebug(BCLog::NET, "socket closed, %s\n", pnode->DisconnectMsg(fLogIPs));
Line
Count
Source
393
0
#define LogDebug(category, ...) LogPrintLevel(category, BCLog::Level::Debug, __VA_ARGS__)
Line
Count
Source
385
0
    do {                                                              \
386
0
        if (LogAcceptCategory((category), (level))) {                 \
387
0
            bool rate_limit{level >= BCLog::Level::Info};             \
388
0
            LogPrintLevel_(category, level, rate_limit, __VA_ARGS__); \
Line
Count
Source
362
0
#define LogPrintLevel_(category, level, should_ratelimit, ...) LogPrintFormatInternal(std::source_location::current(), category, level, should_ratelimit, __VA_ARGS__)
389
0
        }                                                             \
390
0
    } while (0)
2198
0
                }
2199
0
                pnode->CloseSocketDisconnect();
2200
0
            }
2201
0
            else if (nBytes < 0)
2202
0
            {
2203
                // error
2204
0
                int nErr = WSAGetLastError();
Line
Count
Source
47
0
#define WSAGetLastError()   errno
2205
0
                if (nErr != WSAEWOULDBLOCK && nErr != WSAEMSGSIZE && nErr != WSAEINTR && nErr != WSAEINPROGRESS)
Line
Count
Source
49
0
#define WSAEWOULDBLOCK      EWOULDBLOCK
                if (nErr != WSAEWOULDBLOCK && nErr != WSAEMSGSIZE && nErr != WSAEINTR && nErr != WSAEINPROGRESS)
Line
Count
Source
51
0
#define WSAEMSGSIZE         EMSGSIZE
                if (nErr != WSAEWOULDBLOCK && nErr != WSAEMSGSIZE && nErr != WSAEINTR && nErr != WSAEINPROGRESS)
Line
Count
Source
52
0
#define WSAEINTR            EINTR
                if (nErr != WSAEWOULDBLOCK && nErr != WSAEMSGSIZE && nErr != WSAEINTR && nErr != WSAEINPROGRESS)
Line
Count
Source
53
0
#define WSAEINPROGRESS      EINPROGRESS
2206
0
                {
2207
0
                    if (!pnode->fDisconnect) {
2208
0
                        LogDebug(BCLog::NET, "socket recv error, %s: %s\n", pnode->DisconnectMsg(fLogIPs), NetworkErrorString(nErr));
Line
Count
Source
393
0
#define LogDebug(category, ...) LogPrintLevel(category, BCLog::Level::Debug, __VA_ARGS__)
Line
Count
Source
385
0
    do {                                                              \
386
0
        if (LogAcceptCategory((category), (level))) {                 \
387
0
            bool rate_limit{level >= BCLog::Level::Info};             \
388
0
            LogPrintLevel_(category, level, rate_limit, __VA_ARGS__); \
Line
Count
Source
362
0
#define LogPrintLevel_(category, level, should_ratelimit, ...) LogPrintFormatInternal(std::source_location::current(), category, level, should_ratelimit, __VA_ARGS__)
389
0
        }                                                             \
390
0
    } while (0)
2209
0
                    }
2210
0
                    pnode->CloseSocketDisconnect();
2211
0
                }
2212
0
            }
2213
0
        }
2214
2215
0
        if (InactivityCheck(*pnode)) pnode->fDisconnect = true;
2216
0
    }
2217
0
}
2218
2219
void CConnman::SocketHandlerListening(const Sock::EventsPerSock& events_per_sock)
2220
0
{
2221
0
    for (const ListenSocket& listen_socket : vhListenSocket) {
2222
0
        if (m_interrupt_net->interrupted()) {
2223
0
            return;
2224
0
        }
2225
0
        const auto it = events_per_sock.find(listen_socket.sock);
2226
0
        if (it != events_per_sock.end() && it->second.occurred & Sock::RECV) {
2227
0
            AcceptConnection(listen_socket);
2228
0
        }
2229
0
    }
2230
0
}
2231
2232
void CConnman::ThreadSocketHandler()
2233
0
{
2234
0
    AssertLockNotHeld(m_total_bytes_sent_mutex);
Line
Count
Source
142
0
#define AssertLockNotHeld(cs) AssertLockNotHeldInline(#cs, __FILE__, __LINE__, &cs)
2235
2236
0
    while (!m_interrupt_net->interrupted()) {
2237
0
        DisconnectNodes();
2238
0
        NotifyNumConnectionsChanged();
2239
0
        SocketHandler();
2240
0
    }
2241
0
}
2242
2243
void CConnman::WakeMessageHandler()
2244
0
{
2245
0
    {
2246
0
        LOCK(mutexMsgProc);
Line
Count
Source
259
0
#define LOCK(cs) UniqueLock UNIQUE_NAME(criticalblock)(MaybeCheckNotHeld(cs), #cs, __FILE__, __LINE__)
Line
Count
Source
11
0
#define UNIQUE_NAME(name) PASTE2(name, __COUNTER__)
Line
Count
Source
9
0
#define PASTE2(x, y) PASTE(x, y)
Line
Count
Source
8
0
#define PASTE(x, y) x ## y
2247
0
        fMsgProcWake = true;
2248
0
    }
2249
0
    condMsgProc.notify_one();
2250
0
}
2251
2252
void CConnman::ThreadDNSAddressSeed()
2253
0
{
2254
0
    int outbound_connection_count = 0;
2255
2256
0
    if (!gArgs.GetArgs("-seednode").empty()) {
2257
0
        auto start = NodeClock::now();
2258
0
        constexpr std::chrono::seconds SEEDNODE_TIMEOUT = 30s;
2259
0
        LogPrintf("-seednode enabled. Trying the provided seeds for %d seconds before defaulting to the dnsseeds.\n", SEEDNODE_TIMEOUT.count());
Line
Count
Source
373
0
#define LogPrintf(...) LogInfo(__VA_ARGS__)
Line
Count
Source
368
0
#define LogInfo(...) LogPrintLevel_(BCLog::LogFlags::ALL, BCLog::Level::Info, /*should_ratelimit=*/true, __VA_ARGS__)
Line
Count
Source
362
0
#define LogPrintLevel_(category, level, should_ratelimit, ...) LogPrintFormatInternal(std::source_location::current(), category, level, should_ratelimit, __VA_ARGS__)
2260
0
        while (!m_interrupt_net->interrupted()) {
2261
0
            if (!m_interrupt_net->sleep_for(500ms)) {
2262
0
                return;
2263
0
            }
2264
2265
            // Abort if we have spent enough time without reaching our target.
2266
            // Giving seed nodes 30 seconds so this does not become a race against fixedseeds (which triggers after 1 min)
2267
0
            if (NodeClock::now() > start + SEEDNODE_TIMEOUT) {
2268
0
                LogPrintf("Couldn't connect to enough peers via seed nodes. Handing fetch logic to the DNS seeds.\n");
Line
Count
Source
373
0
#define LogPrintf(...) LogInfo(__VA_ARGS__)
Line
Count
Source
368
0
#define LogInfo(...) LogPrintLevel_(BCLog::LogFlags::ALL, BCLog::Level::Info, /*should_ratelimit=*/true, __VA_ARGS__)
Line
Count
Source
362
0
#define LogPrintLevel_(category, level, should_ratelimit, ...) LogPrintFormatInternal(std::source_location::current(), category, level, should_ratelimit, __VA_ARGS__)
2269
0
                break;
2270
0
            }
2271
2272
0
            outbound_connection_count = GetFullOutboundConnCount();
2273
0
            if (outbound_connection_count >= SEED_OUTBOUND_CONNECTION_THRESHOLD) {
2274
0
                LogPrintf("P2P peers available. Finished fetching data from seed nodes.\n");
Line
Count
Source
373
0
#define LogPrintf(...) LogInfo(__VA_ARGS__)
Line
Count
Source
368
0
#define LogInfo(...) LogPrintLevel_(BCLog::LogFlags::ALL, BCLog::Level::Info, /*should_ratelimit=*/true, __VA_ARGS__)
Line
Count
Source
362
0
#define LogPrintLevel_(category, level, should_ratelimit, ...) LogPrintFormatInternal(std::source_location::current(), category, level, should_ratelimit, __VA_ARGS__)
2275
0
                break;
2276
0
            }
2277
0
        }
2278
0
    }
2279
2280
0
    FastRandomContext rng;
2281
0
    std::vector<std::string> seeds = m_params.DNSSeeds();
2282
0
    std::shuffle(seeds.begin(), seeds.end(), rng);
2283
0
    int seeds_right_now = 0; // Number of seeds left before testing if we have enough connections
2284
2285
0
    if (gArgs.GetBoolArg("-forcednsseed", DEFAULT_FORCEDNSSEED)) {
2286
        // When -forcednsseed is provided, query all.
2287
0
        seeds_right_now = seeds.size();
2288
0
    } else if (addrman.Size() == 0) {
2289
        // If we have no known peers, query all.
2290
        // This will occur on the first run, or if peers.dat has been
2291
        // deleted.
2292
0
        seeds_right_now = seeds.size();
2293
0
    }
2294
2295
    // Proceed with dnsseeds if seednodes hasn't reached the target or if forcednsseed is set
2296
0
    if (outbound_connection_count < SEED_OUTBOUND_CONNECTION_THRESHOLD || seeds_right_now) {
2297
        // goal: only query DNS seed if address need is acute
2298
        // * If we have a reasonable number of peers in addrman, spend
2299
        //   some time trying them first. This improves user privacy by
2300
        //   creating fewer identifying DNS requests, reduces trust by
2301
        //   giving seeds less influence on the network topology, and
2302
        //   reduces traffic to the seeds.
2303
        // * When querying DNS seeds query a few at once, this ensures
2304
        //   that we don't give DNS seeds the ability to eclipse nodes
2305
        //   that query them.
2306
        // * If we continue having problems, eventually query all the
2307
        //   DNS seeds, and if that fails too, also try the fixed seeds.
2308
        //   (done in ThreadOpenConnections)
2309
0
        int found = 0;
2310
0
        const std::chrono::seconds seeds_wait_time = (addrman.Size() >= DNSSEEDS_DELAY_PEER_THRESHOLD ? DNSSEEDS_DELAY_MANY_PEERS : DNSSEEDS_DELAY_FEW_PEERS);
2311
2312
0
        for (const std::string& seed : seeds) {
2313
0
            if (seeds_right_now == 0) {
2314
0
                seeds_right_now += DNSSEEDS_TO_QUERY_AT_ONCE;
2315
2316
0
                if (addrman.Size() > 0) {
2317
0
                    LogPrintf("Waiting %d seconds before querying DNS seeds.\n", seeds_wait_time.count());
Line
Count
Source
373
0
#define LogPrintf(...) LogInfo(__VA_ARGS__)
Line
Count
Source
368
0
#define LogInfo(...) LogPrintLevel_(BCLog::LogFlags::ALL, BCLog::Level::Info, /*should_ratelimit=*/true, __VA_ARGS__)
Line
Count
Source
362
0
#define LogPrintLevel_(category, level, should_ratelimit, ...) LogPrintFormatInternal(std::source_location::current(), category, level, should_ratelimit, __VA_ARGS__)
2318
0
                    std::chrono::seconds to_wait = seeds_wait_time;
2319
0
                    while (to_wait.count() > 0) {
2320
                        // if sleeping for the MANY_PEERS interval, wake up
2321
                        // early to see if we have enough peers and can stop
2322
                        // this thread entirely freeing up its resources
2323
0
                        std::chrono::seconds w = std::min(DNSSEEDS_DELAY_FEW_PEERS, to_wait);
2324
0
                        if (!m_interrupt_net->sleep_for(w)) return;
2325
0
                        to_wait -= w;
2326
2327
0
                        if (GetFullOutboundConnCount() >= SEED_OUTBOUND_CONNECTION_THRESHOLD) {
2328
0
                            if (found > 0) {
2329
0
                                LogPrintf("%d addresses found from DNS seeds\n", found);
Line
Count
Source
373
0
#define LogPrintf(...) LogInfo(__VA_ARGS__)
Line
Count
Source
368
0
#define LogInfo(...) LogPrintLevel_(BCLog::LogFlags::ALL, BCLog::Level::Info, /*should_ratelimit=*/true, __VA_ARGS__)
Line
Count
Source
362
0
#define LogPrintLevel_(category, level, should_ratelimit, ...) LogPrintFormatInternal(std::source_location::current(), category, level, should_ratelimit, __VA_ARGS__)
2330
0
                                LogPrintf("P2P peers available. Finished DNS seeding.\n");
Line
Count
Source
373
0
#define LogPrintf(...) LogInfo(__VA_ARGS__)
Line
Count
Source
368
0
#define LogInfo(...) LogPrintLevel_(BCLog::LogFlags::ALL, BCLog::Level::Info, /*should_ratelimit=*/true, __VA_ARGS__)
Line
Count
Source
362
0
#define LogPrintLevel_(category, level, should_ratelimit, ...) LogPrintFormatInternal(std::source_location::current(), category, level, should_ratelimit, __VA_ARGS__)
2331
0
                            } else {
2332
0
                                LogPrintf("P2P peers available. Skipped DNS seeding.\n");
Line
Count
Source
373
0
#define LogPrintf(...) LogInfo(__VA_ARGS__)
Line
Count
Source
368
0
#define LogInfo(...) LogPrintLevel_(BCLog::LogFlags::ALL, BCLog::Level::Info, /*should_ratelimit=*/true, __VA_ARGS__)
Line
Count
Source
362
0
#define LogPrintLevel_(category, level, should_ratelimit, ...) LogPrintFormatInternal(std::source_location::current(), category, level, should_ratelimit, __VA_ARGS__)
2333
0
                            }
2334
0
                            return;
2335
0
                        }
2336
0
                    }
2337
0
                }
2338
0
            }
2339
2340
0
            if (m_interrupt_net->interrupted()) return;
2341
2342
            // hold off on querying seeds if P2P network deactivated
2343
0
            if (!fNetworkActive) {
2344
0
                LogPrintf("Waiting for network to be reactivated before querying DNS seeds.\n");
Line
Count
Source
373
0
#define LogPrintf(...) LogInfo(__VA_ARGS__)
Line
Count
Source
368
0
#define LogInfo(...) LogPrintLevel_(BCLog::LogFlags::ALL, BCLog::Level::Info, /*should_ratelimit=*/true, __VA_ARGS__)
Line
Count
Source
362
0
#define LogPrintLevel_(category, level, should_ratelimit, ...) LogPrintFormatInternal(std::source_location::current(), category, level, should_ratelimit, __VA_ARGS__)
2345
0
                do {
2346
0
                    if (!m_interrupt_net->sleep_for(1s)) return;
2347
0
                } while (!fNetworkActive);
2348
0
            }
2349
2350
0
            LogPrintf("Loading addresses from DNS seed %s\n", seed);
Line
Count
Source
373
0
#define LogPrintf(...) LogInfo(__VA_ARGS__)
Line
Count
Source
368
0
#define LogInfo(...) LogPrintLevel_(BCLog::LogFlags::ALL, BCLog::Level::Info, /*should_ratelimit=*/true, __VA_ARGS__)
Line
Count
Source
362
0
#define LogPrintLevel_(category, level, should_ratelimit, ...) LogPrintFormatInternal(std::source_location::current(), category, level, should_ratelimit, __VA_ARGS__)
2351
            // If -proxy is in use, we make an ADDR_FETCH connection to the DNS resolved peer address
2352
            // for the base dns seed domain in chainparams
2353
0
            if (HaveNameProxy()) {
2354
0
                AddAddrFetch(seed);
2355
0
            } else {
2356
0
                std::vector<CAddress> vAdd;
2357
0
                constexpr ServiceFlags requiredServiceBits{SeedsServiceFlags()};
2358
0
                std::string host = strprintf("x%x.%s", requiredServiceBits, seed);
Line
Count
Source
1172
0
#define strprintf tfm::format
2359
0
                CNetAddr resolveSource;
2360
0
                if (!resolveSource.SetInternal(host)) {
2361
0
                    continue;
2362
0
                }
2363
                // Limit number of IPs learned from a single DNS seed. This limit exists to prevent the results from
2364
                // one DNS seed from dominating AddrMan. Note that the number of results from a UDP DNS query is
2365
                // bounded to 33 already, but it is possible for it to use TCP where a larger number of results can be
2366
                // returned.
2367
0
                unsigned int nMaxIPs = 32;
2368
0
                const auto addresses{LookupHost(host, nMaxIPs, true)};
2369
0
                if (!addresses.empty()) {
2370
0
                    for (const CNetAddr& ip : addresses) {
2371
0
                        CAddress addr = CAddress(CService(ip, m_params.GetDefaultPort()), requiredServiceBits);
2372
0
                        addr.nTime = rng.rand_uniform_delay(Now<NodeSeconds>() - 3 * 24h, -4 * 24h); // use a random age between 3 and 7 days old
2373
0
                        vAdd.push_back(addr);
2374
0
                        found++;
2375
0
                    }
2376
0
                    addrman.Add(vAdd, resolveSource);
2377
0
                } else {
2378
                    // If the seed does not support a subdomain with our desired service bits,
2379
                    // we make an ADDR_FETCH connection to the DNS resolved peer address for the
2380
                    // base dns seed domain in chainparams
2381
0
                    AddAddrFetch(seed);
2382
0
                }
2383
0
            }
2384
0
            --seeds_right_now;
2385
0
        }
2386
0
        LogPrintf("%d addresses found from DNS seeds\n", found);
Line
Count
Source
373
0
#define LogPrintf(...) LogInfo(__VA_ARGS__)
Line
Count
Source
368
0
#define LogInfo(...) LogPrintLevel_(BCLog::LogFlags::ALL, BCLog::Level::Info, /*should_ratelimit=*/true, __VA_ARGS__)
Line
Count
Source
362
0
#define LogPrintLevel_(category, level, should_ratelimit, ...) LogPrintFormatInternal(std::source_location::current(), category, level, should_ratelimit, __VA_ARGS__)
2387
0
    } else {
2388
0
        LogPrintf("Skipping DNS seeds. Enough peers have been found\n");
Line
Count
Source
373
0
#define LogPrintf(...) LogInfo(__VA_ARGS__)
Line
Count
Source
368
0
#define LogInfo(...) LogPrintLevel_(BCLog::LogFlags::ALL, BCLog::Level::Info, /*should_ratelimit=*/true, __VA_ARGS__)
Line
Count
Source
362
0
#define LogPrintLevel_(category, level, should_ratelimit, ...) LogPrintFormatInternal(std::source_location::current(), category, level, should_ratelimit, __VA_ARGS__)
2389
0
    }
2390
0
}
2391
2392
void CConnman::DumpAddresses()
2393
0
{
2394
0
    const auto start{SteadyClock::now()};
2395
2396
0
    DumpPeerAddresses(::gArgs, addrman);
2397
2398
0
    LogDebug(BCLog::NET, "Flushed %d addresses to peers.dat  %dms\n",
Line
Count
Source
393
0
#define LogDebug(category, ...) LogPrintLevel(category, BCLog::Level::Debug, __VA_ARGS__)
Line
Count
Source
385
0
    do {                                                              \
386
0
        if (LogAcceptCategory((category), (level))) {                 \
387
0
            bool rate_limit{level >= BCLog::Level::Info};             \
388
0
            LogPrintLevel_(category, level, rate_limit, __VA_ARGS__); \
Line
Count
Source
362
0
#define LogPrintLevel_(category, level, should_ratelimit, ...) LogPrintFormatInternal(std::source_location::current(), category, level, should_ratelimit, __VA_ARGS__)
389
0
        }                                                             \
390
0
    } while (0)
2399
0
             addrman.Size(), Ticks<std::chrono::milliseconds>(SteadyClock::now() - start));
2400
0
}
2401
2402
void CConnman::ProcessAddrFetch()
2403
0
{
2404
0
    AssertLockNotHeld(m_unused_i2p_sessions_mutex);
Line
Count
Source
142
0
#define AssertLockNotHeld(cs) AssertLockNotHeldInline(#cs, __FILE__, __LINE__, &cs)
2405
0
    std::string strDest;
2406
0
    {
2407
0
        LOCK(m_addr_fetches_mutex);
Line
Count
Source
259
0
#define LOCK(cs) UniqueLock UNIQUE_NAME(criticalblock)(MaybeCheckNotHeld(cs), #cs, __FILE__, __LINE__)
Line
Count
Source
11
0
#define UNIQUE_NAME(name) PASTE2(name, __COUNTER__)
Line
Count
Source
9
0
#define PASTE2(x, y) PASTE(x, y)
Line
Count
Source
8
0
#define PASTE(x, y) x ## y
2408
0
        if (m_addr_fetches.empty())
2409
0
            return;
2410
0
        strDest = m_addr_fetches.front();
2411
0
        m_addr_fetches.pop_front();
2412
0
    }
2413
    // Attempt v2 connection if we support v2 - we'll reconnect with v1 if our
2414
    // peer doesn't support it or immediately disconnects us for another reason.
2415
0
    const bool use_v2transport(GetLocalServices() & NODE_P2P_V2);
2416
0
    CAddress addr;
2417
0
    CountingSemaphoreGrant<> grant(*semOutbound, /*fTry=*/true);
2418
0
    if (grant) {
2419
0
        OpenNetworkConnection(addr, false, std::move(grant), strDest.c_str(), ConnectionType::ADDR_FETCH, use_v2transport);
2420
0
    }
2421
0
}
2422
2423
bool CConnman::GetTryNewOutboundPeer() const
2424
0
{
2425
0
    return m_try_another_outbound_peer;
2426
0
}
2427
2428
void CConnman::SetTryNewOutboundPeer(bool flag)
2429
0
{
2430
0
    m_try_another_outbound_peer = flag;
2431
0
    LogDebug(BCLog::NET, "setting try another outbound peer=%s\n", flag ? "true" : "false");
Line
Count
Source
393
0
#define LogDebug(category, ...) LogPrintLevel(category, BCLog::Level::Debug, __VA_ARGS__)
Line
Count
Source
385
0
    do {                                                              \
386
0
        if (LogAcceptCategory((category), (level))) {                 \
387
0
            bool rate_limit{level >= BCLog::Level::Info};             \
388
0
            LogPrintLevel_(category, level, rate_limit, __VA_ARGS__); \
Line
Count
Source
362
0
#define LogPrintLevel_(category, level, should_ratelimit, ...) LogPrintFormatInternal(std::source_location::current(), category, level, should_ratelimit, __VA_ARGS__)
389
0
        }                                                             \
390
0
    } while (0)
2432
0
}
2433
2434
void CConnman::StartExtraBlockRelayPeers()
2435
0
{
2436
0
    LogDebug(BCLog::NET, "enabling extra block-relay-only peers\n");
Line
Count
Source
393
0
#define LogDebug(category, ...) LogPrintLevel(category, BCLog::Level::Debug, __VA_ARGS__)
Line
Count
Source
385
0
    do {                                                              \
386
0
        if (LogAcceptCategory((category), (level))) {                 \
387
0
            bool rate_limit{level >= BCLog::Level::Info};             \
388
0
            LogPrintLevel_(category, level, rate_limit, __VA_ARGS__); \
Line
Count
Source
362
0
#define LogPrintLevel_(category, level, should_ratelimit, ...) LogPrintFormatInternal(std::source_location::current(), category, level, should_ratelimit, __VA_ARGS__)
389
0
        }                                                             \
390
0
    } while (0)
2437
0
    m_start_extra_block_relay_peers = true;
2438
0
}
2439
2440
// Return the number of outbound connections that are full relay (not blocks only)
2441
int CConnman::GetFullOutboundConnCount() const
2442
0
{
2443
0
    int nRelevant = 0;
2444
0
    {
2445
0
        LOCK(m_nodes_mutex);
Line
Count
Source
259
0
#define LOCK(cs) UniqueLock UNIQUE_NAME(criticalblock)(MaybeCheckNotHeld(cs), #cs, __FILE__, __LINE__)
Line
Count
Source
11
0
#define UNIQUE_NAME(name) PASTE2(name, __COUNTER__)
Line
Count
Source
9
0
#define PASTE2(x, y) PASTE(x, y)
Line
Count
Source
8
0
#define PASTE(x, y) x ## y
2446
0
        for (const CNode* pnode : m_nodes) {
2447
0
            if (pnode->fSuccessfullyConnected && pnode->IsFullOutboundConn()) ++nRelevant;
2448
0
        }
2449
0
    }
2450
0
    return nRelevant;
2451
0
}
2452
2453
// Return the number of peers we have over our outbound connection limit
2454
// Exclude peers that are marked for disconnect, or are going to be
2455
// disconnected soon (eg ADDR_FETCH and FEELER)
2456
// Also exclude peers that haven't finished initial connection handshake yet
2457
// (so that we don't decide we're over our desired connection limit, and then
2458
// evict some peer that has finished the handshake)
2459
int CConnman::GetExtraFullOutboundCount() const
2460
0
{
2461
0
    int full_outbound_peers = 0;
2462
0
    {
2463
0
        LOCK(m_nodes_mutex);
Line
Count
Source
259
0
#define LOCK(cs) UniqueLock UNIQUE_NAME(criticalblock)(MaybeCheckNotHeld(cs), #cs, __FILE__, __LINE__)
Line
Count
Source
11
0
#define UNIQUE_NAME(name) PASTE2(name, __COUNTER__)
Line
Count
Source
9
0
#define PASTE2(x, y) PASTE(x, y)
Line
Count
Source
8
0
#define PASTE(x, y) x ## y
2464
0
        for (const CNode* pnode : m_nodes) {
2465
0
            if (pnode->fSuccessfullyConnected && !pnode->fDisconnect && pnode->IsFullOutboundConn()) {
2466
0
                ++full_outbound_peers;
2467
0
            }
2468
0
        }
2469
0
    }
2470
0
    return std::max(full_outbound_peers - m_max_outbound_full_relay, 0);
2471
0
}
2472
2473
int CConnman::GetExtraBlockRelayCount() const
2474
0
{
2475
0
    int block_relay_peers = 0;
2476
0
    {
2477
0
        LOCK(m_nodes_mutex);
Line
Count
Source
259
0
#define LOCK(cs) UniqueLock UNIQUE_NAME(criticalblock)(MaybeCheckNotHeld(cs), #cs, __FILE__, __LINE__)
Line
Count
Source
11
0
#define UNIQUE_NAME(name) PASTE2(name, __COUNTER__)
Line
Count
Source
9
0
#define PASTE2(x, y) PASTE(x, y)
Line
Count
Source
8
0
#define PASTE(x, y) x ## y
2478
0
        for (const CNode* pnode : m_nodes) {
2479
0
            if (pnode->fSuccessfullyConnected && !pnode->fDisconnect && pnode->IsBlockOnlyConn()) {
2480
0
                ++block_relay_peers;
2481
0
            }
2482
0
        }
2483
0
    }
2484
0
    return std::max(block_relay_peers - m_max_outbound_block_relay, 0);
2485
0
}
2486
2487
std::unordered_set<Network> CConnman::GetReachableEmptyNetworks() const
2488
0
{
2489
0
    std::unordered_set<Network> networks{};
2490
0
    for (int n = 0; n < NET_MAX; n++) {
2491
0
        enum Network net = (enum Network)n;
2492
0
        if (net == NET_UNROUTABLE || net == NET_INTERNAL) continue;
2493
0
        if (g_reachable_nets.Contains(net) && addrman.Size(net, std::nullopt) == 0) {
2494
0
            networks.insert(net);
2495
0
        }
2496
0
    }
2497
0
    return networks;
2498
0
}
2499
2500
bool CConnman::MultipleManualOrFullOutboundConns(Network net) const
2501
0
{
2502
0
    AssertLockHeld(m_nodes_mutex);
Line
Count
Source
137
0
#define AssertLockHeld(cs) AssertLockHeldInternal(#cs, __FILE__, __LINE__, &cs)
2503
0
    return m_network_conn_counts[net] > 1;
2504
0
}
2505
2506
bool CConnman::MaybePickPreferredNetwork(std::optional<Network>& network)
2507
0
{
2508
0
    std::array<Network, 5> nets{NET_IPV4, NET_IPV6, NET_ONION, NET_I2P, NET_CJDNS};
2509
0
    std::shuffle(nets.begin(), nets.end(), FastRandomContext());
2510
2511
0
    LOCK(m_nodes_mutex);
Line
Count
Source
259
0
#define LOCK(cs) UniqueLock UNIQUE_NAME(criticalblock)(MaybeCheckNotHeld(cs), #cs, __FILE__, __LINE__)
Line
Count
Source
11
0
#define UNIQUE_NAME(name) PASTE2(name, __COUNTER__)
Line
Count
Source
9
0
#define PASTE2(x, y) PASTE(x, y)
Line
Count
Source
8
0
#define PASTE(x, y) x ## y
2512
0
    for (const auto net : nets) {
2513
0
        if (g_reachable_nets.Contains(net) && m_network_conn_counts[net] == 0 && addrman.Size(net) != 0) {
2514
0
            network = net;
2515
0
            return true;
2516
0
        }
2517
0
    }
2518
2519
0
    return false;
2520
0
}
2521
2522
void CConnman::ThreadOpenConnections(const std::vector<std::string> connect, std::span<const std::string> seed_nodes)
2523
0
{
2524
0
    AssertLockNotHeld(m_unused_i2p_sessions_mutex);
Line
Count
Source
142
0
#define AssertLockNotHeld(cs) AssertLockNotHeldInline(#cs, __FILE__, __LINE__, &cs)
2525
0
    AssertLockNotHeld(m_reconnections_mutex);
Line
Count
Source
142
0
#define AssertLockNotHeld(cs) AssertLockNotHeldInline(#cs, __FILE__, __LINE__, &cs)
2526
0
    FastRandomContext rng;
2527
    // Connect to specific addresses
2528
0
    if (!connect.empty())
2529
0
    {
2530
        // Attempt v2 connection if we support v2 - we'll reconnect with v1 if our
2531
        // peer doesn't support it or immediately disconnects us for another reason.
2532
0
        const bool use_v2transport(GetLocalServices() & NODE_P2P_V2);
2533
0
        for (int64_t nLoop = 0;; nLoop++)
2534
0
        {
2535
0
            for (const std::string& strAddr : connect)
2536
0
            {
2537
0
                CAddress addr(CService(), NODE_NONE);
2538
0
                OpenNetworkConnection(addr, false, {}, strAddr.c_str(), ConnectionType::MANUAL, /*use_v2transport=*/use_v2transport);
2539
0
                for (int i = 0; i < 10 && i < nLoop; i++)
2540
0
                {
2541
0
                    if (!m_interrupt_net->sleep_for(500ms)) {
2542
0
                        return;
2543
0
                    }
2544
0
                }
2545
0
            }
2546
0
            if (!m_interrupt_net->sleep_for(500ms)) {
2547
0
                return;
2548
0
            }
2549
0
            PerformReconnections();
2550
0
        }
2551
0
    }
2552
2553
    // Initiate network connections
2554
0
    auto start = GetTime<std::chrono::microseconds>();
2555
2556
    // Minimum time before next feeler connection (in microseconds).
2557
0
    auto next_feeler = start + rng.rand_exp_duration(FEELER_INTERVAL);
2558
0
    auto next_extra_block_relay = start + rng.rand_exp_duration(EXTRA_BLOCK_RELAY_ONLY_PEER_INTERVAL);
2559
0
    auto next_extra_network_peer{start + rng.rand_exp_duration(EXTRA_NETWORK_PEER_INTERVAL)};
2560
0
    const bool dnsseed = gArgs.GetBoolArg("-dnsseed", DEFAULT_DNSSEED);
2561
0
    bool add_fixed_seeds = gArgs.GetBoolArg("-fixedseeds", DEFAULT_FIXEDSEEDS);
2562
0
    const bool use_seednodes{!gArgs.GetArgs("-seednode").empty()};
2563
2564
0
    auto seed_node_timer = NodeClock::now();
2565
0
    bool add_addr_fetch{addrman.Size() == 0 && !seed_nodes.empty()};
2566
0
    constexpr std::chrono::seconds ADD_NEXT_SEEDNODE = 10s;
2567
2568
0
    if (!add_fixed_seeds) {
2569
0
        LogPrintf("Fixed seeds are disabled\n");
Line
Count
Source
373
0
#define LogPrintf(...) LogInfo(__VA_ARGS__)
Line
Count
Source
368
0
#define LogInfo(...) LogPrintLevel_(BCLog::LogFlags::ALL, BCLog::Level::Info, /*should_ratelimit=*/true, __VA_ARGS__)
Line
Count
Source
362
0
#define LogPrintLevel_(category, level, should_ratelimit, ...) LogPrintFormatInternal(std::source_location::current(), category, level, should_ratelimit, __VA_ARGS__)
2570
0
    }
2571
2572
0
    while (!m_interrupt_net->interrupted()) {
2573
0
        if (add_addr_fetch) {
2574
0
            add_addr_fetch = false;
2575
0
            const auto& seed{SpanPopBack(seed_nodes)};
2576
0
            AddAddrFetch(seed);
2577
2578
0
            if (addrman.Size() == 0) {
2579
0
                LogInfo("Empty addrman, adding seednode (%s) to addrfetch\n", seed);
Line
Count
Source
368
0
#define LogInfo(...) LogPrintLevel_(BCLog::LogFlags::ALL, BCLog::Level::Info, /*should_ratelimit=*/true, __VA_ARGS__)
Line
Count
Source
362
0
#define LogPrintLevel_(category, level, should_ratelimit, ...) LogPrintFormatInternal(std::source_location::current(), category, level, should_ratelimit, __VA_ARGS__)
2580
0
            } else {
2581
0
                LogInfo("Couldn't connect to peers from addrman after %d seconds. Adding seednode (%s) to addrfetch\n", ADD_NEXT_SEEDNODE.count(), seed);
Line
Count
Source
368
0
#define LogInfo(...) LogPrintLevel_(BCLog::LogFlags::ALL, BCLog::Level::Info, /*should_ratelimit=*/true, __VA_ARGS__)
Line
Count
Source
362
0
#define LogPrintLevel_(category, level, should_ratelimit, ...) LogPrintFormatInternal(std::source_location::current(), category, level, should_ratelimit, __VA_ARGS__)
2582
0
            }
2583
0
        }
2584
2585
0
        ProcessAddrFetch();
2586
2587
0
        if (!m_interrupt_net->sleep_for(500ms)) {
2588
0
            return;
2589
0
        }
2590
2591
0
        PerformReconnections();
2592
2593
0
        CountingSemaphoreGrant<> grant(*semOutbound);
2594
0
        if (m_interrupt_net->interrupted()) {
2595
0
            return;
2596
0
        }
2597
2598
0
        const std::unordered_set<Network> fixed_seed_networks{GetReachableEmptyNetworks()};
2599
0
        if (add_fixed_seeds && !fixed_seed_networks.empty()) {
2600
            // When the node starts with an empty peers.dat, there are a few other sources of peers before
2601
            // we fallback on to fixed seeds: -dnsseed, -seednode, -addnode
2602
            // If none of those are available, we fallback on to fixed seeds immediately, else we allow
2603
            // 60 seconds for any of those sources to populate addrman.
2604
0
            bool add_fixed_seeds_now = false;
2605
            // It is cheapest to check if enough time has passed first.
2606
0
            if (GetTime<std::chrono::seconds>() > start + std::chrono::minutes{1}) {
2607
0
                add_fixed_seeds_now = true;
2608
0
                LogPrintf("Adding fixed seeds as 60 seconds have passed and addrman is empty for at least one reachable network\n");
Line
Count
Source
373
0
#define LogPrintf(...) LogInfo(__VA_ARGS__)
Line
Count
Source
368
0
#define LogInfo(...) LogPrintLevel_(BCLog::LogFlags::ALL, BCLog::Level::Info, /*should_ratelimit=*/true, __VA_ARGS__)
Line
Count
Source
362
0
#define LogPrintLevel_(category, level, should_ratelimit, ...) LogPrintFormatInternal(std::source_location::current(), category, level, should_ratelimit, __VA_ARGS__)
2609
0
            }
2610
2611
            // Perform cheap checks before locking a mutex.
2612
0
            else if (!dnsseed && !use_seednodes) {
2613
0
                LOCK(m_added_nodes_mutex);
Line
Count
Source
259
0
#define LOCK(cs) UniqueLock UNIQUE_NAME(criticalblock)(MaybeCheckNotHeld(cs), #cs, __FILE__, __LINE__)
Line
Count
Source
11
0
#define UNIQUE_NAME(name) PASTE2(name, __COUNTER__)
Line
Count
Source
9
0
#define PASTE2(x, y) PASTE(x, y)
Line
Count
Source
8
0
#define PASTE(x, y) x ## y
2614
0
                if (m_added_node_params.empty()) {
2615
0
                    add_fixed_seeds_now = true;
2616
0
                    LogPrintf("Adding fixed seeds as -dnsseed=0 (or IPv4/IPv6 connections are disabled via -onlynet) and neither -addnode nor -seednode are provided\n");
Line
Count
Source
373
0
#define LogPrintf(...) LogInfo(__VA_ARGS__)
Line
Count
Source
368
0
#define LogInfo(...) LogPrintLevel_(BCLog::LogFlags::ALL, BCLog::Level::Info, /*should_ratelimit=*/true, __VA_ARGS__)
Line
Count
Source
362
0
#define LogPrintLevel_(category, level, should_ratelimit, ...) LogPrintFormatInternal(std::source_location::current(), category, level, should_ratelimit, __VA_ARGS__)
2617
0
                }
2618
0
            }
2619
2620
0
            if (add_fixed_seeds_now) {
2621
0
                std::vector<CAddress> seed_addrs{ConvertSeeds(m_params.FixedSeeds())};
2622
                // We will not make outgoing connections to peers that are unreachable
2623
                // (e.g. because of -onlynet configuration).
2624
                // Therefore, we do not add them to addrman in the first place.
2625
                // In case previously unreachable networks become reachable
2626
                // (e.g. in case of -onlynet changes by the user), fixed seeds will
2627
                // be loaded only for networks for which we have no addresses.
2628
0
                seed_addrs.erase(std::remove_if(seed_addrs.begin(), seed_addrs.end(),
2629
0
                                                [&fixed_seed_networks](const CAddress& addr) { return fixed_seed_networks.count(addr.GetNetwork()) == 0; }),
2630
0
                                 seed_addrs.end());
2631
0
                CNetAddr local;
2632
0
                local.SetInternal("fixedseeds");
2633
0
                addrman.Add(seed_addrs, local);
2634
0
                add_fixed_seeds = false;
2635
0
                LogPrintf("Added %d fixed seeds from reachable networks.\n", seed_addrs.size());
Line
Count
Source
373
0
#define LogPrintf(...) LogInfo(__VA_ARGS__)
Line
Count
Source
368
0
#define LogInfo(...) LogPrintLevel_(BCLog::LogFlags::ALL, BCLog::Level::Info, /*should_ratelimit=*/true, __VA_ARGS__)
Line
Count
Source
362
0
#define LogPrintLevel_(category, level, should_ratelimit, ...) LogPrintFormatInternal(std::source_location::current(), category, level, should_ratelimit, __VA_ARGS__)
2636
0
            }
2637
0
        }
2638
2639
        //
2640
        // Choose an address to connect to based on most recently seen
2641
        //
2642
0
        CAddress addrConnect;
2643
2644
        // Only connect out to one peer per ipv4/ipv6 network group (/16 for IPv4).
2645
0
        int nOutboundFullRelay = 0;
2646
0
        int nOutboundBlockRelay = 0;
2647
0
        int outbound_privacy_network_peers = 0;
2648
0
        std::set<std::vector<unsigned char>> outbound_ipv46_peer_netgroups;
2649
2650
0
        {
2651
0
            LOCK(m_nodes_mutex);
Line
Count
Source
259
0
#define LOCK(cs) UniqueLock UNIQUE_NAME(criticalblock)(MaybeCheckNotHeld(cs), #cs, __FILE__, __LINE__)
Line
Count
Source
11
0
#define UNIQUE_NAME(name) PASTE2(name, __COUNTER__)
Line
Count
Source
9
0
#define PASTE2(x, y) PASTE(x, y)
Line
Count
Source
8
0
#define PASTE(x, y) x ## y
2652
0
            for (const CNode* pnode : m_nodes) {
2653
0
                if (pnode->IsFullOutboundConn()) nOutboundFullRelay++;
2654
0
                if (pnode->IsBlockOnlyConn()) nOutboundBlockRelay++;
2655
2656
                // Make sure our persistent outbound slots to ipv4/ipv6 peers belong to different netgroups.
2657
0
                switch (pnode->m_conn_type) {
2658
                    // We currently don't take inbound connections into account. Since they are
2659
                    // free to make, an attacker could make them to prevent us from connecting to
2660
                    // certain peers.
2661
0
                    case ConnectionType::INBOUND:
2662
                    // Short-lived outbound connections should not affect how we select outbound
2663
                    // peers from addrman.
2664
0
                    case ConnectionType::ADDR_FETCH:
2665
0
                    case ConnectionType::FEELER:
2666
0
                        break;
2667
0
                    case ConnectionType::MANUAL:
2668
0
                    case ConnectionType::OUTBOUND_FULL_RELAY:
2669
0
                    case ConnectionType::BLOCK_RELAY:
2670
0
                        const CAddress address{pnode->addr};
2671
0
                        if (address.IsTor() || address.IsI2P() || address.IsCJDNS()) {
2672
                            // Since our addrman-groups for these networks are
2673
                            // random, without relation to the route we
2674
                            // take to connect to these peers or to the
2675
                            // difficulty in obtaining addresses with diverse
2676
                            // groups, we don't worry about diversity with
2677
                            // respect to our addrman groups when connecting to
2678
                            // these networks.
2679
0
                            ++outbound_privacy_network_peers;
2680
0
                        } else {
2681
0
                            outbound_ipv46_peer_netgroups.insert(m_netgroupman.GetGroup(address));
2682
0
                        }
2683
0
                } // no default case, so the compiler can warn about missing cases
2684
0
            }
2685
0
        }
2686
2687
0
        if (!seed_nodes.empty() && nOutboundFullRelay < SEED_OUTBOUND_CONNECTION_THRESHOLD) {
2688
0
            if (NodeClock::now() > seed_node_timer + ADD_NEXT_SEEDNODE) {
2689
0
                seed_node_timer = NodeClock::now();
2690
0
                add_addr_fetch = true;
2691
0
            }
2692
0
        }
2693
2694
0
        ConnectionType conn_type = ConnectionType::OUTBOUND_FULL_RELAY;
2695
0
        auto now = GetTime<std::chrono::microseconds>();
2696
0
        bool anchor = false;
2697
0
        bool fFeeler = false;
2698
0
        std::optional<Network> preferred_net;
2699
2700
        // Determine what type of connection to open. Opening
2701
        // BLOCK_RELAY connections to addresses from anchors.dat gets the highest
2702
        // priority. Then we open OUTBOUND_FULL_RELAY priority until we
2703
        // meet our full-relay capacity. Then we open BLOCK_RELAY connection
2704
        // until we hit our block-relay-only peer limit.
2705
        // GetTryNewOutboundPeer() gets set when a stale tip is detected, so we
2706
        // try opening an additional OUTBOUND_FULL_RELAY connection. If none of
2707
        // these conditions are met, check to see if it's time to try an extra
2708
        // block-relay-only peer (to confirm our tip is current, see below) or the next_feeler
2709
        // timer to decide if we should open a FEELER.
2710
2711
0
        if (!m_anchors.empty() && (nOutboundBlockRelay < m_max_outbound_block_relay)) {
2712
0
            conn_type = ConnectionType::BLOCK_RELAY;
2713
0
            anchor = true;
2714
0
        } else if (nOutboundFullRelay < m_max_outbound_full_relay) {
2715
            // OUTBOUND_FULL_RELAY
2716
0
        } else if (nOutboundBlockRelay < m_max_outbound_block_relay) {
2717
0
            conn_type = ConnectionType::BLOCK_RELAY;
2718
0
        } else if (GetTryNewOutboundPeer()) {
2719
            // OUTBOUND_FULL_RELAY
2720
0
        } else if (now > next_extra_block_relay && m_start_extra_block_relay_peers) {
2721
            // Periodically connect to a peer (using regular outbound selection
2722
            // methodology from addrman) and stay connected long enough to sync
2723
            // headers, but not much else.
2724
            //
2725
            // Then disconnect the peer, if we haven't learned anything new.
2726
            //
2727
            // The idea is to make eclipse attacks very difficult to pull off,
2728
            // because every few minutes we're finding a new peer to learn headers
2729
            // from.
2730
            //
2731
            // This is similar to the logic for trying extra outbound (full-relay)
2732
            // peers, except:
2733
            // - we do this all the time on an exponential timer, rather than just when
2734
            //   our tip is stale
2735
            // - we potentially disconnect our next-youngest block-relay-only peer, if our
2736
            //   newest block-relay-only peer delivers a block more recently.
2737
            //   See the eviction logic in net_processing.cpp.
2738
            //
2739
            // Because we can promote these connections to block-relay-only
2740
            // connections, they do not get their own ConnectionType enum
2741
            // (similar to how we deal with extra outbound peers).
2742
0
            next_extra_block_relay = now + rng.rand_exp_duration(EXTRA_BLOCK_RELAY_ONLY_PEER_INTERVAL);
2743
0
            conn_type = ConnectionType::BLOCK_RELAY;
2744
0
        } else if (now > next_feeler) {
2745
0
            next_feeler = now + rng.rand_exp_duration(FEELER_INTERVAL);
2746
0
            conn_type = ConnectionType::FEELER;
2747
0
            fFeeler = true;
2748
0
        } else if (nOutboundFullRelay == m_max_outbound_full_relay &&
2749
0
                   m_max_outbound_full_relay == MAX_OUTBOUND_FULL_RELAY_CONNECTIONS &&
2750
0
                   now > next_extra_network_peer &&
2751
0
                   MaybePickPreferredNetwork(preferred_net)) {
2752
            // Full outbound connection management: Attempt to get at least one
2753
            // outbound peer from each reachable network by making extra connections
2754
            // and then protecting "only" peers from a network during outbound eviction.
2755
            // This is not attempted if the user changed -maxconnections to a value
2756
            // so low that less than MAX_OUTBOUND_FULL_RELAY_CONNECTIONS are made,
2757
            // to prevent interactions with otherwise protected outbound peers.
2758
0
            next_extra_network_peer = now + rng.rand_exp_duration(EXTRA_NETWORK_PEER_INTERVAL);
2759
0
        } else {
2760
            // skip to next iteration of while loop
2761
0
            continue;
2762
0
        }
2763
2764
0
        addrman.ResolveCollisions();
2765
2766
0
        const auto current_time{NodeClock::now()};
2767
0
        int nTries = 0;
2768
0
        const auto reachable_nets{g_reachable_nets.All()};
2769
2770
0
        while (!m_interrupt_net->interrupted()) {
2771
0
            if (anchor && !m_anchors.empty()) {
2772
0
                const CAddress addr = m_anchors.back();
2773
0
                m_anchors.pop_back();
2774
0
                if (!addr.IsValid() || IsLocal(addr) || !g_reachable_nets.Contains(addr) ||
2775
0
                    !m_msgproc->HasAllDesirableServiceFlags(addr.nServices) ||
2776
0
                    outbound_ipv46_peer_netgroups.count(m_netgroupman.GetGroup(addr))) continue;
2777
0
                addrConnect = addr;
2778
0
                LogDebug(BCLog::NET, "Trying to make an anchor connection to %s\n", addrConnect.ToStringAddrPort());
Line
Count
Source
393
0
#define LogDebug(category, ...) LogPrintLevel(category, BCLog::Level::Debug, __VA_ARGS__)
Line
Count
Source
385
0
    do {                                                              \
386
0
        if (LogAcceptCategory((category), (level))) {                 \
387
0
            bool rate_limit{level >= BCLog::Level::Info};             \
388
0
            LogPrintLevel_(category, level, rate_limit, __VA_ARGS__); \
Line
Count
Source
362
0
#define LogPrintLevel_(category, level, should_ratelimit, ...) LogPrintFormatInternal(std::source_location::current(), category, level, should_ratelimit, __VA_ARGS__)
389
0
        }                                                             \
390
0
    } while (0)
2779
0
                break;
2780
0
            }
2781
2782
            // If we didn't find an appropriate destination after trying 100 addresses fetched from addrman,
2783
            // stop this loop, and let the outer loop run again (which sleeps, adds seed nodes, recalculates
2784
            // already-connected network ranges, ...) before trying new addrman addresses.
2785
0
            nTries++;
2786
0
            if (nTries > 100)
2787
0
                break;
2788
2789
0
            CAddress addr;
2790
0
            NodeSeconds addr_last_try{0s};
2791
2792
0
            if (fFeeler) {
2793
                // First, try to get a tried table collision address. This returns
2794
                // an empty (invalid) address if there are no collisions to try.
2795
0
                std::tie(addr, addr_last_try) = addrman.SelectTriedCollision();
2796
2797
0
                if (!addr.IsValid()) {
2798
                    // No tried table collisions. Select a new table address
2799
                    // for our feeler.
2800
0
                    std::tie(addr, addr_last_try) = addrman.Select(true, reachable_nets);
2801
0
                } else if (AlreadyConnectedToAddress(addr)) {
2802
                    // If test-before-evict logic would have us connect to a
2803
                    // peer that we're already connected to, just mark that
2804
                    // address as Good(). We won't be able to initiate the
2805
                    // connection anyway, so this avoids inadvertently evicting
2806
                    // a currently-connected peer.
2807
0
                    addrman.Good(addr);
2808
                    // Select a new table address for our feeler instead.
2809
0
                    std::tie(addr, addr_last_try) = addrman.Select(true, reachable_nets);
2810
0
                }
2811
0
            } else {
2812
                // Not a feeler
2813
                // If preferred_net has a value set, pick an extra outbound
2814
                // peer from that network. The eviction logic in net_processing
2815
                // ensures that a peer from another network will be evicted.
2816
0
                std::tie(addr, addr_last_try) = preferred_net.has_value()
2817
0
                    ? addrman.Select(false, {*preferred_net})
2818
0
                    : addrman.Select(false, reachable_nets);
2819
0
            }
2820
2821
            // Require outbound IPv4/IPv6 connections, other than feelers, to be to distinct network groups
2822
0
            if (!fFeeler && outbound_ipv46_peer_netgroups.count(m_netgroupman.GetGroup(addr))) {
2823
0
                continue;
2824
0
            }
2825
2826
            // if we selected an invalid or local address, restart
2827
0
            if (!addr.IsValid() || IsLocal(addr)) {
2828
0
                break;
2829
0
            }
2830
2831
0
            if (!g_reachable_nets.Contains(addr)) {
2832
0
                continue;
2833
0
            }
2834
2835
            // only consider very recently tried nodes after 30 failed attempts
2836
0
            if (current_time - addr_last_try < 10min && nTries < 30) {
2837
0
                continue;
2838
0
            }
2839
2840
            // for non-feelers, require all the services we'll want,
2841
            // for feelers, only require they be a full node (only because most
2842
            // SPV clients don't have a good address DB available)
2843
0
            if (!fFeeler && !m_msgproc->HasAllDesirableServiceFlags(addr.nServices)) {
2844
0
                continue;
2845
0
            } else if (fFeeler && !MayHaveUsefulAddressDB(addr.nServices)) {
2846
0
                continue;
2847
0
            }
2848
2849
            // Do not connect to bad ports, unless 50 invalid addresses have been selected already.
2850
0
            if (nTries < 50 && (addr.IsIPv4() || addr.IsIPv6()) && IsBadPort(addr.GetPort())) {
2851
0
                continue;
2852
0
            }
2853
2854
            // Do not make automatic outbound connections to addnode peers, to
2855
            // not use our limited outbound slots for them and to ensure
2856
            // addnode connections benefit from their intended protections.
2857
0
            if (AddedNodesContain(addr)) {
2858
0
                LogPrintLevel(BCLog::NET, BCLog::Level::Debug, "Not making automatic %s%s connection to %s peer selected for manual (addnode) connection%s\n",
Line
Count
Source
385
0
    do {                                                              \
386
0
        if (LogAcceptCategory((category), (level))) {                 \
387
0
            bool rate_limit{level >= BCLog::Level::Info};             \
388
0
            LogPrintLevel_(category, level, rate_limit, __VA_ARGS__); \
Line
Count
Source
362
0
#define LogPrintLevel_(category, level, should_ratelimit, ...) LogPrintFormatInternal(std::source_location::current(), category, level, should_ratelimit, __VA_ARGS__)
389
0
        }                                                             \
390
0
    } while (0)
2859
0
                              preferred_net.has_value() ? "network-specific " : "",
2860
0
                              ConnectionTypeAsString(conn_type), GetNetworkName(addr.GetNetwork()),
2861
0
                              fLogIPs ? strprintf(": %s", addr.ToStringAddrPort()) : "");
2862
0
                continue;
2863
0
            }
2864
2865
0
            addrConnect = addr;
2866
0
            break;
2867
0
        }
2868
2869
0
        if (addrConnect.IsValid()) {
2870
0
            if (fFeeler) {
2871
                // Add small amount of random noise before connection to avoid synchronization.
2872
0
                if (!m_interrupt_net->sleep_for(rng.rand_uniform_duration<CThreadInterrupt::Clock>(FEELER_SLEEP_WINDOW))) {
2873
0
                    return;
2874
0
                }
2875
0
                LogDebug(BCLog::NET, "Making feeler connection to %s\n", addrConnect.ToStringAddrPort());
Line
Count
Source
393
0
#define LogDebug(category, ...) LogPrintLevel(category, BCLog::Level::Debug, __VA_ARGS__)
Line
Count
Source
385
0
    do {                                                              \
386
0
        if (LogAcceptCategory((category), (level))) {                 \
387
0
            bool rate_limit{level >= BCLog::Level::Info};             \
388
0
            LogPrintLevel_(category, level, rate_limit, __VA_ARGS__); \
Line
Count
Source
362
0
#define LogPrintLevel_(category, level, should_ratelimit, ...) LogPrintFormatInternal(std::source_location::current(), category, level, should_ratelimit, __VA_ARGS__)
389
0
        }                                                             \
390
0
    } while (0)
2876
0
            }
2877
2878
0
            if (preferred_net != std::nullopt) LogDebug(BCLog::NET, "Making network specific connection to %s on %s.\n", addrConnect.ToStringAddrPort(), GetNetworkName(preferred_net.value()));
Line
Count
Source
393
0
#define LogDebug(category, ...) LogPrintLevel(category, BCLog::Level::Debug, __VA_ARGS__)
Line
Count
Source
385
0
    do {                                                              \
386
0
        if (LogAcceptCategory((category), (level))) {                 \
387
0
            bool rate_limit{level >= BCLog::Level::Info};             \
388
0
            LogPrintLevel_(category, level, rate_limit, __VA_ARGS__); \
Line
Count
Source
362
0
#define LogPrintLevel_(category, level, should_ratelimit, ...) LogPrintFormatInternal(std::source_location::current(), category, level, should_ratelimit, __VA_ARGS__)
389
0
        }                                                             \
390
0
    } while (0)
2879
2880
            // Record addrman failure attempts when node has at least 2 persistent outbound connections to peers with
2881
            // different netgroups in ipv4/ipv6 networks + all peers in Tor/I2P/CJDNS networks.
2882
            // Don't record addrman failure attempts when node is offline. This can be identified since all local
2883
            // network connections (if any) belong in the same netgroup, and the size of `outbound_ipv46_peer_netgroups` would only be 1.
2884
0
            const bool count_failures{((int)outbound_ipv46_peer_netgroups.size() + outbound_privacy_network_peers) >= std::min(m_max_automatic_connections - 1, 2)};
2885
            // Use BIP324 transport when both us and them have NODE_V2_P2P set.
2886
0
            const bool use_v2transport(addrConnect.nServices & GetLocalServices() & NODE_P2P_V2);
2887
0
            OpenNetworkConnection(addrConnect, count_failures, std::move(grant), /*pszDest=*/nullptr, conn_type, use_v2transport);
2888
0
        }
2889
0
    }
2890
0
}
2891
2892
std::vector<CAddress> CConnman::GetCurrentBlockRelayOnlyConns() const
2893
0
{
2894
0
    std::vector<CAddress> ret;
2895
0
    LOCK(m_nodes_mutex);
Line
Count
Source
259
0
#define LOCK(cs) UniqueLock UNIQUE_NAME(criticalblock)(MaybeCheckNotHeld(cs), #cs, __FILE__, __LINE__)
Line
Count
Source
11
0
#define UNIQUE_NAME(name) PASTE2(name, __COUNTER__)
Line
Count
Source
9
0
#define PASTE2(x, y) PASTE(x, y)
Line
Count
Source
8
0
#define PASTE(x, y) x ## y
2896
0
    for (const CNode* pnode : m_nodes) {
2897
0
        if (pnode->IsBlockOnlyConn()) {
2898
0
            ret.push_back(pnode->addr);
2899
0
        }
2900
0
    }
2901
2902
0
    return ret;
2903
0
}
2904
2905
std::vector<AddedNodeInfo> CConnman::GetAddedNodeInfo(bool include_connected) const
2906
0
{
2907
0
    std::vector<AddedNodeInfo> ret;
2908
2909
0
    std::list<AddedNodeParams> lAddresses(0);
2910
0
    {
2911
0
        LOCK(m_added_nodes_mutex);
Line
Count
Source
259
0
#define LOCK(cs) UniqueLock UNIQUE_NAME(criticalblock)(MaybeCheckNotHeld(cs), #cs, __FILE__, __LINE__)
Line
Count
Source
11
0
#define UNIQUE_NAME(name) PASTE2(name, __COUNTER__)
Line
Count
Source
9
0
#define PASTE2(x, y) PASTE(x, y)
Line
Count
Source
8
0
#define PASTE(x, y) x ## y
2912
0
        ret.reserve(m_added_node_params.size());
2913
0
        std::copy(m_added_node_params.cbegin(), m_added_node_params.cend(), std::back_inserter(lAddresses));
2914
0
    }
2915
2916
2917
    // Build a map of all already connected addresses (by IP:port and by name) to inbound/outbound and resolved CService
2918
0
    std::map<CService, bool> mapConnected;
2919
0
    std::map<std::string, std::pair<bool, CService>> mapConnectedByName;
2920
0
    {
2921
0
        LOCK(m_nodes_mutex);
Line
Count
Source
259
0
#define LOCK(cs) UniqueLock UNIQUE_NAME(criticalblock)(MaybeCheckNotHeld(cs), #cs, __FILE__, __LINE__)
Line
Count
Source
11
0
#define UNIQUE_NAME(name) PASTE2(name, __COUNTER__)
Line
Count
Source
9
0
#define PASTE2(x, y) PASTE(x, y)
Line
Count
Source
8
0
#define PASTE(x, y) x ## y
2922
0
        for (const CNode* pnode : m_nodes) {
2923
0
            if (pnode->addr.IsValid()) {
2924
0
                mapConnected[pnode->addr] = pnode->IsInboundConn();
2925
0
            }
2926
0
            std::string addrName{pnode->m_addr_name};
2927
0
            if (!addrName.empty()) {
2928
0
                mapConnectedByName[std::move(addrName)] = std::make_pair(pnode->IsInboundConn(), static_cast<const CService&>(pnode->addr));
2929
0
            }
2930
0
        }
2931
0
    }
2932
2933
0
    for (const auto& addr : lAddresses) {
2934
0
        CService service{MaybeFlipIPv6toCJDNS(LookupNumeric(addr.m_added_node, GetDefaultPort(addr.m_added_node)))};
2935
0
        AddedNodeInfo addedNode{addr, CService(), false, false};
2936
0
        if (service.IsValid()) {
2937
            // strAddNode is an IP:port
2938
0
            auto it = mapConnected.find(service);
2939
0
            if (it != mapConnected.end()) {
2940
0
                if (!include_connected) {
2941
0
                    continue;
2942
0
                }
2943
0
                addedNode.resolvedAddress = service;
2944
0
                addedNode.fConnected = true;
2945
0
                addedNode.fInbound = it->second;
2946
0
            }
2947
0
        } else {
2948
            // strAddNode is a name
2949
0
            auto it = mapConnectedByName.find(addr.m_added_node);
2950
0
            if (it != mapConnectedByName.end()) {
2951
0
                if (!include_connected) {
2952
0
                    continue;
2953
0
                }
2954
0
                addedNode.resolvedAddress = it->second.second;
2955
0
                addedNode.fConnected = true;
2956
0
                addedNode.fInbound = it->second.first;
2957
0
            }
2958
0
        }
2959
0
        ret.emplace_back(std::move(addedNode));
2960
0
    }
2961
2962
0
    return ret;
2963
0
}
2964
2965
void CConnman::ThreadOpenAddedConnections()
2966
0
{
2967
0
    AssertLockNotHeld(m_unused_i2p_sessions_mutex);
Line
Count
Source
142
0
#define AssertLockNotHeld(cs) AssertLockNotHeldInline(#cs, __FILE__, __LINE__, &cs)
2968
0
    AssertLockNotHeld(m_reconnections_mutex);
Line
Count
Source
142
0
#define AssertLockNotHeld(cs) AssertLockNotHeldInline(#cs, __FILE__, __LINE__, &cs)
2969
0
    while (true)
2970
0
    {
2971
0
        CountingSemaphoreGrant<> grant(*semAddnode);
2972
0
        std::vector<AddedNodeInfo> vInfo = GetAddedNodeInfo(/*include_connected=*/false);
2973
0
        bool tried = false;
2974
0
        for (const AddedNodeInfo& info : vInfo) {
2975
0
            if (!grant) {
2976
                // If we've used up our semaphore and need a new one, let's not wait here since while we are waiting
2977
                // the addednodeinfo state might change.
2978
0
                break;
2979
0
            }
2980
0
            tried = true;
2981
0
            CAddress addr(CService(), NODE_NONE);
2982
0
            OpenNetworkConnection(addr, false, std::move(grant), info.m_params.m_added_node.c_str(), ConnectionType::MANUAL, info.m_params.m_use_v2transport);
2983
0
            if (!m_interrupt_net->sleep_for(500ms)) return;
2984
0
            grant = CountingSemaphoreGrant<>(*semAddnode, /*fTry=*/true);
2985
0
        }
2986
        // See if any reconnections are desired.
2987
0
        PerformReconnections();
2988
        // Retry every 60 seconds if a connection was attempted, otherwise two seconds
2989
0
        if (!m_interrupt_net->sleep_for(tried ? 60s : 2s)) {
2990
0
            return;
2991
0
        }
2992
0
    }
2993
0
}
2994
2995
// if successful, this moves the passed grant to the constructed node
2996
bool CConnman::OpenNetworkConnection(const CAddress& addrConnect,
2997
                                     bool fCountFailure,
2998
                                     CountingSemaphoreGrant<>&& grant_outbound,
2999
                                     const char* pszDest,
3000
                                     ConnectionType conn_type,
3001
                                     bool use_v2transport,
3002
                                     const std::optional<Proxy>& proxy_override)
3003
0
{
3004
0
    AssertLockNotHeld(m_unused_i2p_sessions_mutex);
Line
Count
Source
142
0
#define AssertLockNotHeld(cs) AssertLockNotHeldInline(#cs, __FILE__, __LINE__, &cs)
3005
0
    assert(conn_type != ConnectionType::INBOUND);
3006
3007
    //
3008
    // Initiate outbound network connection
3009
    //
3010
0
    if (m_interrupt_net->interrupted()) {
3011
0
        return false;
3012
0
    }
3013
0
    if (!fNetworkActive) {
3014
0
        return false;
3015
0
    }
3016
0
    if (!pszDest) {
3017
0
        bool banned_or_discouraged = m_banman && (m_banman->IsDiscouraged(addrConnect) || m_banman->IsBanned(addrConnect));
3018
0
        if (IsLocal(addrConnect) || banned_or_discouraged || AlreadyConnectedToAddress(addrConnect)) {
3019
0
            return false;
3020
0
        }
3021
0
    } else if (AlreadyConnectedToHost(pszDest)) {
3022
0
        return false;
3023
0
    }
3024
3025
0
    CNode* pnode = ConnectNode(addrConnect, pszDest, fCountFailure, conn_type, use_v2transport, proxy_override);
3026
3027
0
    if (!pnode)
3028
0
        return false;
3029
0
    pnode->grantOutbound = std::move(grant_outbound);
3030
3031
0
    m_msgproc->InitializeNode(*pnode, m_local_services);
3032
0
    {
3033
0
        LOCK(m_nodes_mutex);
Line
Count
Source
259
0
#define LOCK(cs) UniqueLock UNIQUE_NAME(criticalblock)(MaybeCheckNotHeld(cs), #cs, __FILE__, __LINE__)
Line
Count
Source
11
0
#define UNIQUE_NAME(name) PASTE2(name, __COUNTER__)
Line
Count
Source
9
0
#define PASTE2(x, y) PASTE(x, y)
Line
Count
Source
8
0
#define PASTE(x, y) x ## y
3034
0
        m_nodes.push_back(pnode);
3035
3036
        // update connection count by network
3037
0
        if (pnode->IsManualOrFullOutboundConn()) ++m_network_conn_counts[pnode->addr.GetNetwork()];
3038
0
    }
3039
3040
0
    TRACEPOINT(net, outbound_connection,
3041
0
        pnode->GetId(),
3042
0
        pnode->m_addr_name.c_str(),
3043
0
        pnode->ConnectionTypeAsString().c_str(),
3044
0
        pnode->ConnectedThroughNetwork(),
3045
0
        GetNodeCount(ConnectionDirection::Out));
3046
3047
0
    return true;
3048
0
}
3049
3050
Mutex NetEventsInterface::g_msgproc_mutex;
3051
3052
void CConnman::ThreadMessageHandler()
3053
0
{
3054
0
    LOCK(NetEventsInterface::g_msgproc_mutex);
Line
Count
Source
259
0
#define LOCK(cs) UniqueLock UNIQUE_NAME(criticalblock)(MaybeCheckNotHeld(cs), #cs, __FILE__, __LINE__)
Line
Count
Source
11
0
#define UNIQUE_NAME(name) PASTE2(name, __COUNTER__)
Line
Count
Source
9
0
#define PASTE2(x, y) PASTE(x, y)
Line
Count
Source
8
0
#define PASTE(x, y) x ## y
3055
3056
0
    while (!flagInterruptMsgProc)
3057
0
    {
3058
0
        bool fMoreWork = false;
3059
3060
0
        {
3061
            // Randomize the order in which we process messages from/to our peers.
3062
            // This prevents attacks in which an attacker exploits having multiple
3063
            // consecutive connections in the m_nodes list.
3064
0
            const NodesSnapshot snap{*this, /*shuffle=*/true};
3065
3066
0
            for (CNode* pnode : snap.Nodes()) {
3067
0
                if (pnode->fDisconnect)
3068
0
                    continue;
3069
3070
                // Receive messages
3071
0
                bool fMoreNodeWork = m_msgproc->ProcessMessages(pnode, flagInterruptMsgProc);
3072
0
                fMoreWork |= (fMoreNodeWork && !pnode->fPauseSend);
3073
0
                if (flagInterruptMsgProc)
3074
0
                    return;
3075
                // Send messages
3076
0
                m_msgproc->SendMessages(pnode);
3077
3078
0
                if (flagInterruptMsgProc)
3079
0
                    return;
3080
0
            }
3081
0
        }
3082
3083
0
        WAIT_LOCK(mutexMsgProc, lock);
Line
Count
Source
265
0
#define WAIT_LOCK(cs, name) UniqueLock name(LOCK_ARGS(cs))
Line
Count
Source
263
0
#define LOCK_ARGS(cs) MaybeCheckNotHeld(cs), #cs, __FILE__, __LINE__
3084
0
        if (!fMoreWork) {
3085
0
            condMsgProc.wait_until(lock, std::chrono::steady_clock::now() + std::chrono::milliseconds(100), [this]() EXCLUSIVE_LOCKS_REQUIRED(mutexMsgProc) { return fMsgProcWake; });
3086
0
        }
3087
0
        fMsgProcWake = false;
3088
0
    }
3089
0
}
3090
3091
void CConnman::ThreadI2PAcceptIncoming()
3092
0
{
3093
0
    static constexpr auto err_wait_begin = 1s;
3094
0
    static constexpr auto err_wait_cap = 5min;
3095
0
    auto err_wait = err_wait_begin;
3096
3097
0
    bool advertising_listen_addr = false;
3098
0
    i2p::Connection conn;
3099
3100
0
    auto SleepOnFailure = [&]() {
3101
0
        m_interrupt_net->sleep_for(err_wait);
3102
0
        if (err_wait < err_wait_cap) {
3103
0
            err_wait += 1s;
3104
0
        }
3105
0
    };
3106
3107
0
    while (!m_interrupt_net->interrupted()) {
3108
3109
0
        if (!m_i2p_sam_session->Listen(conn)) {
3110
0
            if (advertising_listen_addr && conn.me.IsValid()) {
3111
0
                RemoveLocal(conn.me);
3112
0
                advertising_listen_addr = false;
3113
0
            }
3114
0
            SleepOnFailure();
3115
0
            continue;
3116
0
        }
3117
3118
0
        if (!advertising_listen_addr) {
3119
0
            AddLocal(conn.me, LOCAL_MANUAL);
3120
0
            advertising_listen_addr = true;
3121
0
        }
3122
3123
0
        if (!m_i2p_sam_session->Accept(conn)) {
3124
0
            SleepOnFailure();
3125
0
            continue;
3126
0
        }
3127
3128
0
        CreateNodeFromAcceptedSocket(std::move(conn.sock), NetPermissionFlags::None, conn.me, conn.peer);
3129
3130
0
        err_wait = err_wait_begin;
3131
0
    }
3132
0
}
3133
3134
bool CConnman::BindListenPort(const CService& addrBind, bilingual_str& strError, NetPermissionFlags permissions)
3135
0
{
3136
0
    int nOne = 1;
3137
3138
    // Create socket for listening for incoming connections
3139
0
    struct sockaddr_storage sockaddr;
3140
0
    socklen_t len = sizeof(sockaddr);
3141
0
    if (!addrBind.GetSockAddr((struct sockaddr*)&sockaddr, &len))
3142
0
    {
3143
0
        strError = Untranslated(strprintf("Bind address family for %s not supported", addrBind.ToStringAddrPort()));
Line
Count
Source
1172
0
#define strprintf tfm::format
3144
0
        LogPrintLevel(BCLog::NET, BCLog::Level::Error, "%s\n", strError.original);
Line
Count
Source
385
0
    do {                                                              \
386
0
        if (LogAcceptCategory((category), (level))) {                 \
387
0
            bool rate_limit{level >= BCLog::Level::Info};             \
388
0
            LogPrintLevel_(category, level, rate_limit, __VA_ARGS__); \
Line
Count
Source
362
0
#define LogPrintLevel_(category, level, should_ratelimit, ...) LogPrintFormatInternal(std::source_location::current(), category, level, should_ratelimit, __VA_ARGS__)
389
0
        }                                                             \
390
0
    } while (0)
3145
0
        return false;
3146
0
    }
3147
3148
0
    std::unique_ptr<Sock> sock = CreateSock(addrBind.GetSAFamily(), SOCK_STREAM, IPPROTO_TCP);
3149
0
    if (!sock) {
3150
0
        strError = Untranslated(strprintf("Couldn't open socket for incoming connections (socket returned error %s)", NetworkErrorString(WSAGetLastError())));
Line
Count
Source
1172
0
#define strprintf tfm::format
        strError = Untranslated(strprintf("Couldn't open socket for incoming connections (socket returned error %s)", NetworkErrorString(WSAGetLastError())));
Line
Count
Source
47
0
#define WSAGetLastError()   errno
3151
0
        LogPrintLevel(BCLog::NET, BCLog::Level::Error, "%s\n", strError.original);
Line
Count
Source
385
0
    do {                                                              \
386
0
        if (LogAcceptCategory((category), (level))) {                 \
387
0
            bool rate_limit{level >= BCLog::Level::Info};             \
388
0
            LogPrintLevel_(category, level, rate_limit, __VA_ARGS__); \
Line
Count
Source
362
0
#define LogPrintLevel_(category, level, should_ratelimit, ...) LogPrintFormatInternal(std::source_location::current(), category, level, should_ratelimit, __VA_ARGS__)
389
0
        }                                                             \
390
0
    } while (0)
3152
0
        return false;
3153
0
    }
3154
3155
    // Allow binding if the port is still in TIME_WAIT state after
3156
    // the program was closed and restarted.
3157
0
    if (sock->SetSockOpt(SOL_SOCKET, SO_REUSEADDR, &nOne, sizeof(int)) == SOCKET_ERROR) {
Line
Count
Source
56
0
#define SOCKET_ERROR        -1
3158
0
        strError = Untranslated(strprintf("Error setting SO_REUSEADDR on socket: %s, continuing anyway", NetworkErrorString(WSAGetLastError())));
Line
Count
Source
1172
0
#define strprintf tfm::format
        strError = Untranslated(strprintf("Error setting SO_REUSEADDR on socket: %s, continuing anyway", NetworkErrorString(WSAGetLastError())));
Line
Count
Source
47
0
#define WSAGetLastError()   errno
3159
0
        LogPrintf("%s\n", strError.original);
Line
Count
Source
373
0
#define LogPrintf(...) LogInfo(__VA_ARGS__)
Line
Count
Source
368
0
#define LogInfo(...) LogPrintLevel_(BCLog::LogFlags::ALL, BCLog::Level::Info, /*should_ratelimit=*/true, __VA_ARGS__)
Line
Count
Source
362
0
#define LogPrintLevel_(category, level, should_ratelimit, ...) LogPrintFormatInternal(std::source_location::current(), category, level, should_ratelimit, __VA_ARGS__)
3160
0
    }
3161
3162
    // some systems don't have IPV6_V6ONLY but are always v6only; others do have the option
3163
    // and enable it by default or not. Try to enable it, if possible.
3164
0
    if (addrBind.IsIPv6()) {
3165
0
#ifdef IPV6_V6ONLY
3166
0
        if (sock->SetSockOpt(IPPROTO_IPV6, IPV6_V6ONLY, &nOne, sizeof(int)) == SOCKET_ERROR) {
Line
Count
Source
56
0
#define SOCKET_ERROR        -1
3167
0
            strError = Untranslated(strprintf("Error setting IPV6_V6ONLY on socket: %s, continuing anyway", NetworkErrorString(WSAGetLastError())));
Line
Count
Source
1172
0
#define strprintf tfm::format
            strError = Untranslated(strprintf("Error setting IPV6_V6ONLY on socket: %s, continuing anyway", NetworkErrorString(WSAGetLastError())));
Line
Count
Source
47
0
#define WSAGetLastError()   errno
3168
0
            LogPrintf("%s\n", strError.original);
Line
Count
Source
373
0
#define LogPrintf(...) LogInfo(__VA_ARGS__)
Line
Count
Source
368
0
#define LogInfo(...) LogPrintLevel_(BCLog::LogFlags::ALL, BCLog::Level::Info, /*should_ratelimit=*/true, __VA_ARGS__)
Line
Count
Source
362
0
#define LogPrintLevel_(category, level, should_ratelimit, ...) LogPrintFormatInternal(std::source_location::current(), category, level, should_ratelimit, __VA_ARGS__)
3169
0
        }
3170
0
#endif
3171
#ifdef WIN32
3172
        int nProtLevel = PROTECTION_LEVEL_UNRESTRICTED;
3173
        if (sock->SetSockOpt(IPPROTO_IPV6, IPV6_PROTECTION_LEVEL, &nProtLevel, sizeof(int)) == SOCKET_ERROR) {
3174
            strError = Untranslated(strprintf("Error setting IPV6_PROTECTION_LEVEL on socket: %s, continuing anyway", NetworkErrorString(WSAGetLastError())));
3175
            LogPrintf("%s\n", strError.original);
3176
        }
3177
#endif
3178
0
    }
3179
3180
0
    if (sock->Bind(reinterpret_cast<struct sockaddr*>(&sockaddr), len) == SOCKET_ERROR) {
Line
Count
Source
56
0
#define SOCKET_ERROR        -1
3181
0
        int nErr = WSAGetLastError();
Line
Count
Source
47
0
#define WSAGetLastError()   errno
3182
0
        if (nErr == WSAEADDRINUSE)
Line
Count
Source
54
0
#define WSAEADDRINUSE       EADDRINUSE
3183
0
            strError = strprintf(_("Unable to bind to %s on this computer. %s is probably already running."), addrBind.ToStringAddrPort(), CLIENT_NAME);
Line
Count
Source
1172
0
#define strprintf tfm::format
            strError = strprintf(_("Unable to bind to %s on this computer. %s is probably already running."), addrBind.ToStringAddrPort(), CLIENT_NAME);
Line
Count
Source
98
0
#define CLIENT_NAME "Bitcoin Core"
3184
0
        else
3185
0
            strError = strprintf(_("Unable to bind to %s on this computer (bind returned error %s)"), addrBind.ToStringAddrPort(), NetworkErrorString(nErr));
Line
Count
Source
1172
0
#define strprintf tfm::format
3186
0
        LogPrintLevel(BCLog::NET, BCLog::Level::Error, "%s\n", strError.original);
Line
Count
Source
385
0
    do {                                                              \
386
0
        if (LogAcceptCategory((category), (level))) {                 \
387
0
            bool rate_limit{level >= BCLog::Level::Info};             \
388
0
            LogPrintLevel_(category, level, rate_limit, __VA_ARGS__); \
Line
Count
Source
362
0
#define LogPrintLevel_(category, level, should_ratelimit, ...) LogPrintFormatInternal(std::source_location::current(), category, level, should_ratelimit, __VA_ARGS__)
389
0
        }                                                             \
390
0
    } while (0)
3187
0
        return false;
3188
0
    }
3189
0
    LogPrintf("Bound to %s\n", addrBind.ToStringAddrPort());
Line
Count
Source
373
0
#define LogPrintf(...) LogInfo(__VA_ARGS__)
Line
Count
Source
368
0
#define LogInfo(...) LogPrintLevel_(BCLog::LogFlags::ALL, BCLog::Level::Info, /*should_ratelimit=*/true, __VA_ARGS__)
Line
Count
Source
362
0
#define LogPrintLevel_(category, level, should_ratelimit, ...) LogPrintFormatInternal(std::source_location::current(), category, level, should_ratelimit, __VA_ARGS__)
3190
3191
    // Listen for incoming connections
3192
0
    if (sock->Listen(SOMAXCONN) == SOCKET_ERROR)
Line
Count
Source
56
0
#define SOCKET_ERROR        -1
3193
0
    {
3194
0
        strError = strprintf(_("Listening for incoming connections failed (listen returned error %s)"), NetworkErrorString(WSAGetLastError()));
Line
Count
Source
1172
0
#define strprintf tfm::format
        strError = strprintf(_("Listening for incoming connections failed (listen returned error %s)"), NetworkErrorString(WSAGetLastError()));
Line
Count
Source
47
0
#define WSAGetLastError()   errno
3195
0
        LogPrintLevel(BCLog::NET, BCLog::Level::Error, "%s\n", strError.original);
Line
Count
Source
385
0
    do {                                                              \
386
0
        if (LogAcceptCategory((category), (level))) {                 \
387
0
            bool rate_limit{level >= BCLog::Level::Info};             \
388
0
            LogPrintLevel_(category, level, rate_limit, __VA_ARGS__); \
Line
Count
Source
362
0
#define LogPrintLevel_(category, level, should_ratelimit, ...) LogPrintFormatInternal(std::source_location::current(), category, level, should_ratelimit, __VA_ARGS__)
389
0
        }                                                             \
390
0
    } while (0)
3196
0
        return false;
3197
0
    }
3198
3199
0
    vhListenSocket.emplace_back(std::move(sock), permissions);
3200
0
    return true;
3201
0
}
3202
3203
void Discover()
3204
0
{
3205
0
    if (!fDiscover)
3206
0
        return;
3207
3208
0
    for (const CNetAddr &addr: GetLocalAddresses()) {
3209
0
        if (AddLocal(addr, LOCAL_IF))
3210
0
            LogPrintf("%s: %s\n", __func__, addr.ToStringAddr());
Line
Count
Source
373
0
#define LogPrintf(...) LogInfo(__VA_ARGS__)
Line
Count
Source
368
0
#define LogInfo(...) LogPrintLevel_(BCLog::LogFlags::ALL, BCLog::Level::Info, /*should_ratelimit=*/true, __VA_ARGS__)
Line
Count
Source
362
0
#define LogPrintLevel_(category, level, should_ratelimit, ...) LogPrintFormatInternal(std::source_location::current(), category, level, should_ratelimit, __VA_ARGS__)
3211
0
    }
3212
0
}
3213
3214
void CConnman::SetNetworkActive(bool active)
3215
0
{
3216
0
    LogPrintf("%s: %s\n", __func__, active);
Line
Count
Source
373
0
#define LogPrintf(...) LogInfo(__VA_ARGS__)
Line
Count
Source
368
0
#define LogInfo(...) LogPrintLevel_(BCLog::LogFlags::ALL, BCLog::Level::Info, /*should_ratelimit=*/true, __VA_ARGS__)
Line
Count
Source
362
0
#define LogPrintLevel_(category, level, should_ratelimit, ...) LogPrintFormatInternal(std::source_location::current(), category, level, should_ratelimit, __VA_ARGS__)
3217
3218
0
    if (fNetworkActive == active) {
3219
0
        return;
3220
0
    }
3221
3222
0
    fNetworkActive = active;
3223
3224
0
    if (m_client_interface) {
3225
0
        m_client_interface->NotifyNetworkActiveChanged(fNetworkActive);
3226
0
    }
3227
0
}
3228
3229
CConnman::CConnman(uint64_t nSeed0In,
3230
                   uint64_t nSeed1In,
3231
                   AddrMan& addrman_in,
3232
                   const NetGroupManager& netgroupman,
3233
                   const CChainParams& params,
3234
                   bool network_active,
3235
                   std::shared_ptr<CThreadInterrupt> interrupt_net)
3236
0
    : addrman(addrman_in)
3237
0
    , m_netgroupman{netgroupman}
3238
0
    , nSeed0(nSeed0In)
3239
0
    , nSeed1(nSeed1In)
3240
0
    , m_interrupt_net{interrupt_net}
3241
0
    , m_params(params)
3242
0
{
3243
0
    SetTryNewOutboundPeer(false);
3244
3245
0
    Options connOptions;
3246
0
    Init(connOptions);
3247
0
    SetNetworkActive(network_active);
3248
0
}
3249
3250
NodeId CConnman::GetNewNodeId()
3251
0
{
3252
0
    return nLastNodeId.fetch_add(1, std::memory_order_relaxed);
3253
0
}
3254
3255
uint16_t CConnman::GetDefaultPort(Network net) const
3256
0
{
3257
0
    return net == NET_I2P ? I2P_SAM31_PORT : m_params.GetDefaultPort();
3258
0
}
3259
3260
uint16_t CConnman::GetDefaultPort(const std::string& addr) const
3261
0
{
3262
0
    CNetAddr a;
3263
0
    return a.SetSpecial(addr) ? GetDefaultPort(a.GetNetwork()) : m_params.GetDefaultPort();
3264
0
}
3265
3266
bool CConnman::Bind(const CService& addr_, unsigned int flags, NetPermissionFlags permissions)
3267
0
{
3268
0
    const CService addr{MaybeFlipIPv6toCJDNS(addr_)};
3269
3270
0
    bilingual_str strError;
3271
0
    if (!BindListenPort(addr, strError, permissions)) {
3272
0
        if ((flags & BF_REPORT_ERROR) && m_client_interface) {
3273
0
            m_client_interface->ThreadSafeMessageBox(strError, "", CClientUIInterface::MSG_ERROR);
3274
0
        }
3275
0
        return false;
3276
0
    }
3277
3278
0
    if (addr.IsRoutable() && fDiscover && !(flags & BF_DONT_ADVERTISE) && !NetPermissions::HasFlag(permissions, NetPermissionFlags::NoBan)) {
3279
0
        AddLocal(addr, LOCAL_BIND);
3280
0
    }
3281
3282
0
    return true;
3283
0
}
3284
3285
bool CConnman::InitBinds(const Options& options)
3286
0
{
3287
0
    for (const auto& addrBind : options.vBinds) {
3288
0
        if (!Bind(addrBind, BF_REPORT_ERROR, NetPermissionFlags::None)) {
3289
0
            return false;
3290
0
        }
3291
0
    }
3292
0
    for (const auto& addrBind : options.vWhiteBinds) {
3293
0
        if (!Bind(addrBind.m_service, BF_REPORT_ERROR, addrBind.m_flags)) {
3294
0
            return false;
3295
0
        }
3296
0
    }
3297
0
    for (const auto& addr_bind : options.onion_binds) {
3298
0
        if (!Bind(addr_bind, BF_REPORT_ERROR | BF_DONT_ADVERTISE, NetPermissionFlags::None)) {
3299
0
            return false;
3300
0
        }
3301
0
    }
3302
0
    if (options.bind_on_any) {
3303
        // Don't consider errors to bind on IPv6 "::" fatal because the host OS
3304
        // may not have IPv6 support and the user did not explicitly ask us to
3305
        // bind on that.
3306
0
        const CService ipv6_any{in6_addr(IN6ADDR_ANY_INIT), GetListenPort()}; // ::
3307
0
        Bind(ipv6_any, BF_NONE, NetPermissionFlags::None);
3308
3309
0
        struct in_addr inaddr_any;
3310
0
        inaddr_any.s_addr = htonl(INADDR_ANY);
3311
0
        const CService ipv4_any{inaddr_any, GetListenPort()}; // 0.0.0.0
3312
0
        if (!Bind(ipv4_any, BF_REPORT_ERROR, NetPermissionFlags::None)) {
3313
0
            return false;
3314
0
        }
3315
0
    }
3316
0
    return true;
3317
0
}
3318
3319
bool CConnman::Start(CScheduler& scheduler, const Options& connOptions)
3320
0
{
3321
0
    AssertLockNotHeld(m_total_bytes_sent_mutex);
Line
Count
Source
142
0
#define AssertLockNotHeld(cs) AssertLockNotHeldInline(#cs, __FILE__, __LINE__, &cs)
3322
0
    Init(connOptions);
3323
3324
0
    if (fListen && !InitBinds(connOptions)) {
3325
0
        if (m_client_interface) {
3326
0
            m_client_interface->ThreadSafeMessageBox(
3327
0
                _("Failed to listen on any port. Use -listen=0 if you want this."),
3328
0
                "", CClientUIInterface::MSG_ERROR);
3329
0
        }
3330
0
        return false;
3331
0
    }
3332
3333
0
    Proxy i2p_sam;
3334
0
    if (GetProxy(NET_I2P, i2p_sam) && connOptions.m_i2p_accept_incoming) {
3335
0
        m_i2p_sam_session = std::make_unique<i2p::sam::Session>(gArgs.GetDataDirNet() / "i2p_private_key",
3336
0
                                                                i2p_sam, m_interrupt_net);
3337
0
    }
3338
3339
    // Randomize the order in which we may query seednode to potentially prevent connecting to the same one every restart (and signal that we have restarted)
3340
0
    std::vector<std::string> seed_nodes = connOptions.vSeedNodes;
3341
0
    if (!seed_nodes.empty()) {
3342
0
        std::shuffle(seed_nodes.begin(), seed_nodes.end(), FastRandomContext{});
3343
0
    }
3344
3345
0
    if (m_use_addrman_outgoing) {
3346
        // Load addresses from anchors.dat
3347
0
        m_anchors = ReadAnchors(gArgs.GetDataDirNet() / ANCHORS_DATABASE_FILENAME);
3348
0
        if (m_anchors.size() > MAX_BLOCK_RELAY_ONLY_ANCHORS) {
3349
0
            m_anchors.resize(MAX_BLOCK_RELAY_ONLY_ANCHORS);
3350
0
        }
3351
0
        LogPrintf("%i block-relay-only anchors will be tried for connections.\n", m_anchors.size());
Line
Count
Source
373
0
#define LogPrintf(...) LogInfo(__VA_ARGS__)
Line
Count
Source
368
0
#define LogInfo(...) LogPrintLevel_(BCLog::LogFlags::ALL, BCLog::Level::Info, /*should_ratelimit=*/true, __VA_ARGS__)
Line
Count
Source
362
0
#define LogPrintLevel_(category, level, should_ratelimit, ...) LogPrintFormatInternal(std::source_location::current(), category, level, should_ratelimit, __VA_ARGS__)
3352
0
    }
3353
3354
0
    if (m_client_interface) {
3355
0
        m_client_interface->InitMessage(_("Starting network threads…"));
3356
0
    }
3357
3358
0
    fAddressesInitialized = true;
3359
3360
0
    if (semOutbound == nullptr) {
3361
        // initialize semaphore
3362
0
        semOutbound = std::make_unique<std::counting_semaphore<>>(std::min(m_max_automatic_outbound, m_max_automatic_connections));
3363
0
    }
3364
0
    if (semAddnode == nullptr) {
3365
        // initialize semaphore
3366
0
        semAddnode = std::make_unique<std::counting_semaphore<>>(m_max_addnode);
3367
0
    }
3368
3369
    //
3370
    // Start threads
3371
    //
3372
0
    assert(m_msgproc);
3373
0
    m_interrupt_net->reset();
3374
0
    flagInterruptMsgProc = false;
3375
3376
0
    {
3377
0
        LOCK(mutexMsgProc);
Line
Count
Source
259
0
#define LOCK(cs) UniqueLock UNIQUE_NAME(criticalblock)(MaybeCheckNotHeld(cs), #cs, __FILE__, __LINE__)
Line
Count
Source
11
0
#define UNIQUE_NAME(name) PASTE2(name, __COUNTER__)
Line
Count
Source
9
0
#define PASTE2(x, y) PASTE(x, y)
Line
Count
Source
8
0
#define PASTE(x, y) x ## y
3378
0
        fMsgProcWake = false;
3379
0
    }
3380
3381
    // Send and receive from sockets, accept connections
3382
0
    threadSocketHandler = std::thread(&util::TraceThread, "net", [this] { ThreadSocketHandler(); });
3383
3384
0
    if (!gArgs.GetBoolArg("-dnsseed", DEFAULT_DNSSEED))
3385
0
        LogPrintf("DNS seeding disabled\n");
Line
Count
Source
373
0
#define LogPrintf(...) LogInfo(__VA_ARGS__)
Line
Count
Source
368
0
#define LogInfo(...) LogPrintLevel_(BCLog::LogFlags::ALL, BCLog::Level::Info, /*should_ratelimit=*/true, __VA_ARGS__)
Line
Count
Source
362
0
#define LogPrintLevel_(category, level, should_ratelimit, ...) LogPrintFormatInternal(std::source_location::current(), category, level, should_ratelimit, __VA_ARGS__)
3386
0
    else
3387
0
        threadDNSAddressSeed = std::thread(&util::TraceThread, "dnsseed", [this] { ThreadDNSAddressSeed(); });
3388
3389
    // Initiate manual connections
3390
0
    threadOpenAddedConnections = std::thread(&util::TraceThread, "addcon", [this] { ThreadOpenAddedConnections(); });
3391
3392
0
    if (connOptions.m_use_addrman_outgoing && !connOptions.m_specified_outgoing.empty()) {
3393
0
        if (m_client_interface) {
3394
0
            m_client_interface->ThreadSafeMessageBox(
3395
0
                _("Cannot provide specific connections and have addrman find outgoing connections at the same time."),
3396
0
                "", CClientUIInterface::MSG_ERROR);
3397
0
        }
3398
0
        return false;
3399
0
    }
3400
0
    if (connOptions.m_use_addrman_outgoing || !connOptions.m_specified_outgoing.empty()) {
3401
0
        threadOpenConnections = std::thread(
3402
0
            &util::TraceThread, "opencon",
3403
0
            [this, connect = connOptions.m_specified_outgoing, seed_nodes = std::move(seed_nodes)] { ThreadOpenConnections(connect, seed_nodes); });
3404
0
    }
3405
3406
    // Process messages
3407
0
    threadMessageHandler = std::thread(&util::TraceThread, "msghand", [this] { ThreadMessageHandler(); });
3408
3409
0
    if (m_i2p_sam_session) {
3410
0
        threadI2PAcceptIncoming =
3411
0
            std::thread(&util::TraceThread, "i2paccept", [this] { ThreadI2PAcceptIncoming(); });
3412
0
    }
3413
3414
    // Dump network addresses
3415
0
    scheduler.scheduleEvery([this] { DumpAddresses(); }, DUMP_PEERS_INTERVAL);
3416
3417
    // Run the ASMap Health check once and then schedule it to run every 24h.
3418
0
    if (m_netgroupman.UsingASMap()) {
3419
0
        ASMapHealthCheck();
3420
0
        scheduler.scheduleEvery([this] { ASMapHealthCheck(); }, ASMAP_HEALTH_CHECK_INTERVAL);
3421
0
    }
3422
3423
0
    return true;
3424
0
}
3425
3426
class CNetCleanup
3427
{
3428
public:
3429
    CNetCleanup() = default;
3430
3431
    ~CNetCleanup()
3432
0
    {
3433
#ifdef WIN32
3434
        // Shutdown Windows Sockets
3435
        WSACleanup();
3436
#endif
3437
0
    }
3438
};
3439
static CNetCleanup instance_of_cnetcleanup;
3440
3441
void CConnman::Interrupt()
3442
1
{
3443
1
    {
3444
1
        LOCK(mutexMsgProc);
Line
Count
Source
259
1
#define LOCK(cs) UniqueLock UNIQUE_NAME(criticalblock)(MaybeCheckNotHeld(cs), #cs, __FILE__, __LINE__)
Line
Count
Source
11
1
#define UNIQUE_NAME(name) PASTE2(name, __COUNTER__)
Line
Count
Source
9
1
#define PASTE2(x, y) PASTE(x, y)
Line
Count
Source
8
1
#define PASTE(x, y) x ## y
3445
1
        flagInterruptMsgProc = true;
3446
1
    }
3447
1
    condMsgProc.notify_all();
3448
3449
1
    (*m_interrupt_net)();
3450
1
    g_socks5_interrupt();
3451
3452
1
    if (semOutbound) {
3453
0
        for (int i=0; i<m_max_automatic_outbound; i++) {
3454
0
            semOutbound->release();
3455
0
        }
3456
0
    }
3457
3458
1
    if (semAddnode) {
3459
0
        for (int i=0; i<m_max_addnode; i++) {
3460
0
            semAddnode->release();
3461
0
        }
3462
0
    }
3463
1
}
3464
3465
void CConnman::StopThreads()
3466
1
{
3467
1
    if (threadI2PAcceptIncoming.joinable()) {
3468
0
        threadI2PAcceptIncoming.join();
3469
0
    }
3470
1
    if (threadMessageHandler.joinable())
3471
0
        threadMessageHandler.join();
3472
1
    if (threadOpenConnections.joinable())
3473
0
        threadOpenConnections.join();
3474
1
    if (threadOpenAddedConnections.joinable())
3475
0
        threadOpenAddedConnections.join();
3476
1
    if (threadDNSAddressSeed.joinable())
3477
0
        threadDNSAddressSeed.join();
3478
1
    if (threadSocketHandler.joinable())
3479
0
        threadSocketHandler.join();
3480
1
}
3481
3482
void CConnman::StopNodes()
3483
1
{
3484
1
    if (fAddressesInitialized) {
3485
0
        DumpAddresses();
3486
0
        fAddressesInitialized = false;
3487
3488
0
        if (m_use_addrman_outgoing) {
3489
            // Anchor connections are only dumped during clean shutdown.
3490
0
            std::vector<CAddress> anchors_to_dump = GetCurrentBlockRelayOnlyConns();
3491
0
            if (anchors_to_dump.size() > MAX_BLOCK_RELAY_ONLY_ANCHORS) {
3492
0
                anchors_to_dump.resize(MAX_BLOCK_RELAY_ONLY_ANCHORS);
3493
0
            }
3494
0
            DumpAnchors(gArgs.GetDataDirNet() / ANCHORS_DATABASE_FILENAME, anchors_to_dump);
3495
0
        }
3496
0
    }
3497
3498
    // Delete peer connections.
3499
1
    std::vector<CNode*> nodes;
3500
1
    WITH_LOCK(m_nodes_mutex, nodes.swap(m_nodes));
Line
Count
Source
290
1
#define WITH_LOCK(cs, code) (MaybeCheckNotHeld(cs), [&]() -> decltype(auto) { LOCK(cs); code; }())
3501
1
    for (CNode* pnode : nodes) {
3502
0
        LogDebug(BCLog::NET, "Stopping node, %s", pnode->DisconnectMsg(fLogIPs));
Line
Count
Source
393
0
#define LogDebug(category, ...) LogPrintLevel(category, BCLog::Level::Debug, __VA_ARGS__)
Line
Count
Source
385
0
    do {                                                              \
386
0
        if (LogAcceptCategory((category), (level))) {                 \
387
0
            bool rate_limit{level >= BCLog::Level::Info};             \
388
0
            LogPrintLevel_(category, level, rate_limit, __VA_ARGS__); \
Line
Count
Source
362
0
#define LogPrintLevel_(category, level, should_ratelimit, ...) LogPrintFormatInternal(std::source_location::current(), category, level, should_ratelimit, __VA_ARGS__)
389
0
        }                                                             \
390
0
    } while (0)
3503
0
        pnode->CloseSocketDisconnect();
3504
0
        DeleteNode(pnode);
3505
0
    }
3506
3507
1
    for (CNode* pnode : m_nodes_disconnected) {
3508
0
        DeleteNode(pnode);
3509
0
    }
3510
1
    m_nodes_disconnected.clear();
3511
1
    vhListenSocket.clear();
3512
1
    semOutbound.reset();
3513
1
    semAddnode.reset();
3514
1
}
3515
3516
void CConnman::DeleteNode(CNode* pnode)
3517
0
{
3518
0
    assert(pnode);
3519
0
    m_msgproc->FinalizeNode(*pnode);
3520
0
    delete pnode;
3521
0
}
3522
3523
CConnman::~CConnman()
3524
1
{
3525
1
    Interrupt();
3526
1
    Stop();
3527
1
}
3528
3529
std::vector<CAddress> CConnman::GetAddressesUnsafe(size_t max_addresses, size_t max_pct, std::optional<Network> network, const bool filtered) const
3530
0
{
3531
0
    std::vector<CAddress> addresses = addrman.GetAddr(max_addresses, max_pct, network, filtered);
3532
0
    if (m_banman) {
3533
0
        addresses.erase(std::remove_if(addresses.begin(), addresses.end(),
3534
0
                        [this](const CAddress& addr){return m_banman->IsDiscouraged(addr) || m_banman->IsBanned(addr);}),
3535
0
                        addresses.end());
3536
0
    }
3537
0
    return addresses;
3538
0
}
3539
3540
std::vector<CAddress> CConnman::GetAddresses(CNode& requestor, size_t max_addresses, size_t max_pct)
3541
0
{
3542
0
    auto local_socket_bytes = requestor.addrBind.GetAddrBytes();
3543
0
    uint64_t network_id = requestor.m_network_key;
3544
0
    const auto current_time = GetTime<std::chrono::microseconds>();
3545
0
    auto r = m_addr_response_caches.emplace(network_id, CachedAddrResponse{});
3546
0
    CachedAddrResponse& cache_entry = r.first->second;
3547
0
    if (cache_entry.m_cache_entry_expiration < current_time) { // If emplace() added new one it has expiration 0.
3548
0
        cache_entry.m_addrs_response_cache = GetAddressesUnsafe(max_addresses, max_pct, /*network=*/std::nullopt);
3549
        // Choosing a proper cache lifetime is a trade-off between the privacy leak minimization
3550
        // and the usefulness of ADDR responses to honest users.
3551
        //
3552
        // Longer cache lifetime makes it more difficult for an attacker to scrape
3553
        // enough AddrMan data to maliciously infer something useful.
3554
        // By the time an attacker scraped enough AddrMan records, most of
3555
        // the records should be old enough to not leak topology info by
3556
        // e.g. analyzing real-time changes in timestamps.
3557
        //
3558
        // It takes only several hundred requests to scrape everything from an AddrMan containing 100,000 nodes,
3559
        // so ~24 hours of cache lifetime indeed makes the data less inferable by the time
3560
        // most of it could be scraped (considering that timestamps are updated via
3561
        // ADDR self-announcements and when nodes communicate).
3562
        // We also should be robust to those attacks which may not require scraping *full* victim's AddrMan
3563
        // (because even several timestamps of the same handful of nodes may leak privacy).
3564
        //
3565
        // On the other hand, longer cache lifetime makes ADDR responses
3566
        // outdated and less useful for an honest requestor, e.g. if most nodes
3567
        // in the ADDR response are no longer active.
3568
        //
3569
        // However, the churn in the network is known to be rather low. Since we consider
3570
        // nodes to be "terrible" (see IsTerrible()) if the timestamps are older than 30 days,
3571
        // max. 24 hours of "penalty" due to cache shouldn't make any meaningful difference
3572
        // in terms of the freshness of the response.
3573
0
        cache_entry.m_cache_entry_expiration = current_time +
3574
0
            21h + FastRandomContext().randrange<std::chrono::microseconds>(6h);
3575
0
    }
3576
0
    return cache_entry.m_addrs_response_cache;
3577
0
}
3578
3579
bool CConnman::AddNode(const AddedNodeParams& add)
3580
0
{
3581
0
    const CService resolved(LookupNumeric(add.m_added_node, GetDefaultPort(add.m_added_node)));
3582
0
    const bool resolved_is_valid{resolved.IsValid()};
3583
3584
0
    LOCK(m_added_nodes_mutex);
Line
Count
Source
259
0
#define LOCK(cs) UniqueLock UNIQUE_NAME(criticalblock)(MaybeCheckNotHeld(cs), #cs, __FILE__, __LINE__)
Line
Count
Source
11
0
#define UNIQUE_NAME(name) PASTE2(name, __COUNTER__)
Line
Count
Source
9
0
#define PASTE2(x, y) PASTE(x, y)
Line
Count
Source
8
0
#define PASTE(x, y) x ## y
3585
0
    for (const auto& it : m_added_node_params) {
3586
0
        if (add.m_added_node == it.m_added_node || (resolved_is_valid && resolved == LookupNumeric(it.m_added_node, GetDefaultPort(it.m_added_node)))) return false;
3587
0
    }
3588
3589
0
    m_added_node_params.push_back(add);
3590
0
    return true;
3591
0
}
3592
3593
bool CConnman::RemoveAddedNode(std::string_view node)
3594
0
{
3595
0
    LOCK(m_added_nodes_mutex);
Line
Count
Source
259
0
#define LOCK(cs) UniqueLock UNIQUE_NAME(criticalblock)(MaybeCheckNotHeld(cs), #cs, __FILE__, __LINE__)
Line
Count
Source
11
0
#define UNIQUE_NAME(name) PASTE2(name, __COUNTER__)
Line
Count
Source
9
0
#define PASTE2(x, y) PASTE(x, y)
Line
Count
Source
8
0
#define PASTE(x, y) x ## y
3596
0
    for (auto it = m_added_node_params.begin(); it != m_added_node_params.end(); ++it) {
3597
0
        if (node == it->m_added_node) {
3598
0
            m_added_node_params.erase(it);
3599
0
            return true;
3600
0
        }
3601
0
    }
3602
0
    return false;
3603
0
}
3604
3605
bool CConnman::AddedNodesContain(const CAddress& addr) const
3606
0
{
3607
0
    AssertLockNotHeld(m_added_nodes_mutex);
Line
Count
Source
142
0
#define AssertLockNotHeld(cs) AssertLockNotHeldInline(#cs, __FILE__, __LINE__, &cs)
3608
0
    const std::string addr_str{addr.ToStringAddr()};
3609
0
    const std::string addr_port_str{addr.ToStringAddrPort()};
3610
0
    LOCK(m_added_nodes_mutex);
Line
Count
Source
259
0
#define LOCK(cs) UniqueLock UNIQUE_NAME(criticalblock)(MaybeCheckNotHeld(cs), #cs, __FILE__, __LINE__)
Line
Count
Source
11
0
#define UNIQUE_NAME(name) PASTE2(name, __COUNTER__)
Line
Count
Source
9
0
#define PASTE2(x, y) PASTE(x, y)
Line
Count
Source
8
0
#define PASTE(x, y) x ## y
3611
0
    return (m_added_node_params.size() < 24 // bound the query to a reasonable limit
3612
0
            && std::any_of(m_added_node_params.cbegin(), m_added_node_params.cend(),
3613
0
                           [&](const auto& p) { return p.m_added_node == addr_str || p.m_added_node == addr_port_str; }));
3614
0
}
3615
3616
size_t CConnman::GetNodeCount(ConnectionDirection flags) const
3617
0
{
3618
0
    LOCK(m_nodes_mutex);
Line
Count
Source
259
0
#define LOCK(cs) UniqueLock UNIQUE_NAME(criticalblock)(MaybeCheckNotHeld(cs), #cs, __FILE__, __LINE__)
Line
Count
Source
11
0
#define UNIQUE_NAME(name) PASTE2(name, __COUNTER__)
Line
Count
Source
9
0
#define PASTE2(x, y) PASTE(x, y)
Line
Count
Source
8
0
#define PASTE(x, y) x ## y
3619
0
    if (flags == ConnectionDirection::Both) // Shortcut if we want total
3620
0
        return m_nodes.size();
3621
3622
0
    int nNum = 0;
3623
0
    for (const auto& pnode : m_nodes) {
3624
0
        if (flags & (pnode->IsInboundConn() ? ConnectionDirection::In : ConnectionDirection::Out)) {
3625
0
            nNum++;
3626
0
        }
3627
0
    }
3628
3629
0
    return nNum;
3630
0
}
3631
3632
3633
std::map<CNetAddr, LocalServiceInfo> CConnman::getNetLocalAddresses() const
3634
0
{
3635
0
    LOCK(g_maplocalhost_mutex);
Line
Count
Source
259
0
#define LOCK(cs) UniqueLock UNIQUE_NAME(criticalblock)(MaybeCheckNotHeld(cs), #cs, __FILE__, __LINE__)
Line
Count
Source
11
0
#define UNIQUE_NAME(name) PASTE2(name, __COUNTER__)
Line
Count
Source
9
0
#define PASTE2(x, y) PASTE(x, y)
Line
Count
Source
8
0
#define PASTE(x, y) x ## y
3636
0
    return mapLocalHost;
3637
0
}
3638
3639
uint32_t CConnman::GetMappedAS(const CNetAddr& addr) const
3640
0
{
3641
0
    return m_netgroupman.GetMappedAS(addr);
3642
0
}
3643
3644
void CConnman::GetNodeStats(std::vector<CNodeStats>& vstats) const
3645
0
{
3646
0
    vstats.clear();
3647
0
    LOCK(m_nodes_mutex);
Line
Count
Source
259
0
#define LOCK(cs) UniqueLock UNIQUE_NAME(criticalblock)(MaybeCheckNotHeld(cs), #cs, __FILE__, __LINE__)
Line
Count
Source
11
0
#define UNIQUE_NAME(name) PASTE2(name, __COUNTER__)
Line
Count
Source
9
0
#define PASTE2(x, y) PASTE(x, y)
Line
Count
Source
8
0
#define PASTE(x, y) x ## y
3648
0
    vstats.reserve(m_nodes.size());
3649
0
    for (CNode* pnode : m_nodes) {
3650
0
        vstats.emplace_back();
3651
0
        pnode->CopyStats(vstats.back());
3652
0
        vstats.back().m_mapped_as = GetMappedAS(pnode->addr);
3653
0
    }
3654
0
}
3655
3656
bool CConnman::DisconnectNode(std::string_view strNode)
3657
0
{
3658
0
    LOCK(m_nodes_mutex);
Line
Count
Source
259
0
#define LOCK(cs) UniqueLock UNIQUE_NAME(criticalblock)(MaybeCheckNotHeld(cs), #cs, __FILE__, __LINE__)
Line
Count
Source
11
0
#define UNIQUE_NAME(name) PASTE2(name, __COUNTER__)
Line
Count
Source
9
0
#define PASTE2(x, y) PASTE(x, y)
Line
Count
Source
8
0
#define PASTE(x, y) x ## y
3659
0
    auto it = std::ranges::find_if(m_nodes, [&strNode](CNode* node) { return node->m_addr_name == strNode; });
3660
0
    if (it != m_nodes.end()) {
3661
0
        CNode* node{*it};
3662
0
        LogDebug(BCLog::NET, "disconnect by address%s match, %s", (fLogIPs ? strprintf("=%s", strNode) : ""), node->DisconnectMsg(fLogIPs));
Line
Count
Source
393
0
#define LogDebug(category, ...) LogPrintLevel(category, BCLog::Level::Debug, __VA_ARGS__)
Line
Count
Source
385
0
    do {                                                              \
386
0
        if (LogAcceptCategory((category), (level))) {                 \
387
0
            bool rate_limit{level >= BCLog::Level::Info};             \
388
0
            LogPrintLevel_(category, level, rate_limit, __VA_ARGS__); \
Line
Count
Source
362
0
#define LogPrintLevel_(category, level, should_ratelimit, ...) LogPrintFormatInternal(std::source_location::current(), category, level, should_ratelimit, __VA_ARGS__)
389
0
        }                                                             \
390
0
    } while (0)
3663
0
        node->fDisconnect = true;
3664
0
        return true;
3665
0
    }
3666
0
    return false;
3667
0
}
3668
3669
bool CConnman::DisconnectNode(const CSubNet& subnet)
3670
0
{
3671
0
    bool disconnected = false;
3672
0
    LOCK(m_nodes_mutex);
Line
Count
Source
259
0
#define LOCK(cs) UniqueLock UNIQUE_NAME(criticalblock)(MaybeCheckNotHeld(cs), #cs, __FILE__, __LINE__)
Line
Count
Source
11
0
#define UNIQUE_NAME(name) PASTE2(name, __COUNTER__)
Line
Count
Source
9
0
#define PASTE2(x, y) PASTE(x, y)
Line
Count
Source
8
0
#define PASTE(x, y) x ## y
3673
0
    for (CNode* pnode : m_nodes) {
3674
0
        if (subnet.Match(pnode->addr)) {
3675
0
            LogDebug(BCLog::NET, "disconnect by subnet%s match, %s", (fLogIPs ? strprintf("=%s", subnet.ToString()) : ""), pnode->DisconnectMsg(fLogIPs));
Line
Count
Source
393
0
#define LogDebug(category, ...) LogPrintLevel(category, BCLog::Level::Debug, __VA_ARGS__)
Line
Count
Source
385
0
    do {                                                              \
386
0
        if (LogAcceptCategory((category), (level))) {                 \
387
0
            bool rate_limit{level >= BCLog::Level::Info};             \
388
0
            LogPrintLevel_(category, level, rate_limit, __VA_ARGS__); \
Line
Count
Source
362
0
#define LogPrintLevel_(category, level, should_ratelimit, ...) LogPrintFormatInternal(std::source_location::current(), category, level, should_ratelimit, __VA_ARGS__)
389
0
        }                                                             \
390
0
    } while (0)
3676
0
            pnode->fDisconnect = true;
3677
0
            disconnected = true;
3678
0
        }
3679
0
    }
3680
0
    return disconnected;
3681
0
}
3682
3683
bool CConnman::DisconnectNode(const CNetAddr& addr)
3684
0
{
3685
0
    return DisconnectNode(CSubNet(addr));
3686
0
}
3687
3688
bool CConnman::DisconnectNode(NodeId id)
3689
0
{
3690
0
    LOCK(m_nodes_mutex);
Line
Count
Source
259
0
#define LOCK(cs) UniqueLock UNIQUE_NAME(criticalblock)(MaybeCheckNotHeld(cs), #cs, __FILE__, __LINE__)
Line
Count
Source
11
0
#define UNIQUE_NAME(name) PASTE2(name, __COUNTER__)
Line
Count
Source
9
0
#define PASTE2(x, y) PASTE(x, y)
Line
Count
Source
8
0
#define PASTE(x, y) x ## y
3691
0
    for(CNode* pnode : m_nodes) {
3692
0
        if (id == pnode->GetId()) {
3693
0
            LogDebug(BCLog::NET, "disconnect by id, %s", pnode->DisconnectMsg(fLogIPs));
Line
Count
Source
393
0
#define LogDebug(category, ...) LogPrintLevel(category, BCLog::Level::Debug, __VA_ARGS__)
Line
Count
Source
385
0
    do {                                                              \
386
0
        if (LogAcceptCategory((category), (level))) {                 \
387
0
            bool rate_limit{level >= BCLog::Level::Info};             \
388
0
            LogPrintLevel_(category, level, rate_limit, __VA_ARGS__); \
Line
Count
Source
362
0
#define LogPrintLevel_(category, level, should_ratelimit, ...) LogPrintFormatInternal(std::source_location::current(), category, level, should_ratelimit, __VA_ARGS__)
389
0
        }                                                             \
390
0
    } while (0)
3694
0
            pnode->fDisconnect = true;
3695
0
            return true;
3696
0
        }
3697
0
    }
3698
0
    return false;
3699
0
}
3700
3701
void CConnman::RecordBytesRecv(uint64_t bytes)
3702
0
{
3703
0
    nTotalBytesRecv += bytes;
3704
0
}
3705
3706
void CConnman::RecordBytesSent(uint64_t bytes)
3707
0
{
3708
0
    AssertLockNotHeld(m_total_bytes_sent_mutex);
Line
Count
Source
142
0
#define AssertLockNotHeld(cs) AssertLockNotHeldInline(#cs, __FILE__, __LINE__, &cs)
3709
0
    LOCK(m_total_bytes_sent_mutex);
Line
Count
Source
259
0
#define LOCK(cs) UniqueLock UNIQUE_NAME(criticalblock)(MaybeCheckNotHeld(cs), #cs, __FILE__, __LINE__)
Line
Count
Source
11
0
#define UNIQUE_NAME(name) PASTE2(name, __COUNTER__)
Line
Count
Source
9
0
#define PASTE2(x, y) PASTE(x, y)
Line
Count
Source
8
0
#define PASTE(x, y) x ## y
3710
3711
0
    nTotalBytesSent += bytes;
3712
3713
0
    const auto now = GetTime<std::chrono::seconds>();
3714
0
    if (nMaxOutboundCycleStartTime + MAX_UPLOAD_TIMEFRAME < now)
3715
0
    {
3716
        // timeframe expired, reset cycle
3717
0
        nMaxOutboundCycleStartTime = now;
3718
0
        nMaxOutboundTotalBytesSentInCycle = 0;
3719
0
    }
3720
3721
0
    nMaxOutboundTotalBytesSentInCycle += bytes;
3722
0
}
3723
3724
uint64_t CConnman::GetMaxOutboundTarget() const
3725
0
{
3726
0
    AssertLockNotHeld(m_total_bytes_sent_mutex);
Line
Count
Source
142
0
#define AssertLockNotHeld(cs) AssertLockNotHeldInline(#cs, __FILE__, __LINE__, &cs)
3727
0
    LOCK(m_total_bytes_sent_mutex);
Line
Count
Source
259
0
#define LOCK(cs) UniqueLock UNIQUE_NAME(criticalblock)(MaybeCheckNotHeld(cs), #cs, __FILE__, __LINE__)
Line
Count
Source
11
0
#define UNIQUE_NAME(name) PASTE2(name, __COUNTER__)
Line
Count
Source
9
0
#define PASTE2(x, y) PASTE(x, y)
Line
Count
Source
8
0
#define PASTE(x, y) x ## y
3728
0
    return nMaxOutboundLimit;
3729
0
}
3730
3731
std::chrono::seconds CConnman::GetMaxOutboundTimeframe() const
3732
0
{
3733
0
    return MAX_UPLOAD_TIMEFRAME;
3734
0
}
3735
3736
std::chrono::seconds CConnman::GetMaxOutboundTimeLeftInCycle() const
3737
0
{
3738
0
    AssertLockNotHeld(m_total_bytes_sent_mutex);
Line
Count
Source
142
0
#define AssertLockNotHeld(cs) AssertLockNotHeldInline(#cs, __FILE__, __LINE__, &cs)
3739
0
    LOCK(m_total_bytes_sent_mutex);
Line
Count
Source
259
0
#define LOCK(cs) UniqueLock UNIQUE_NAME(criticalblock)(MaybeCheckNotHeld(cs), #cs, __FILE__, __LINE__)
Line
Count
Source
11
0
#define UNIQUE_NAME(name) PASTE2(name, __COUNTER__)
Line
Count
Source
9
0
#define PASTE2(x, y) PASTE(x, y)
Line
Count
Source
8
0
#define PASTE(x, y) x ## y
3740
0
    return GetMaxOutboundTimeLeftInCycle_();
3741
0
}
3742
3743
std::chrono::seconds CConnman::GetMaxOutboundTimeLeftInCycle_() const
3744
0
{
3745
0
    AssertLockHeld(m_total_bytes_sent_mutex);
Line
Count
Source
137
0
#define AssertLockHeld(cs) AssertLockHeldInternal(#cs, __FILE__, __LINE__, &cs)
3746
3747
0
    if (nMaxOutboundLimit == 0)
3748
0
        return 0s;
3749
3750
0
    if (nMaxOutboundCycleStartTime.count() == 0)
3751
0
        return MAX_UPLOAD_TIMEFRAME;
3752
3753
0
    const std::chrono::seconds cycleEndTime = nMaxOutboundCycleStartTime + MAX_UPLOAD_TIMEFRAME;
3754
0
    const auto now = GetTime<std::chrono::seconds>();
3755
0
    return (cycleEndTime < now) ? 0s : cycleEndTime - now;
3756
0
}
3757
3758
bool CConnman::OutboundTargetReached(bool historicalBlockServingLimit) const
3759
0
{
3760
0
    AssertLockNotHeld(m_total_bytes_sent_mutex);
Line
Count
Source
142
0
#define AssertLockNotHeld(cs) AssertLockNotHeldInline(#cs, __FILE__, __LINE__, &cs)
3761
0
    LOCK(m_total_bytes_sent_mutex);
Line
Count
Source
259
0
#define LOCK(cs) UniqueLock UNIQUE_NAME(criticalblock)(MaybeCheckNotHeld(cs), #cs, __FILE__, __LINE__)
Line
Count
Source
11
0
#define UNIQUE_NAME(name) PASTE2(name, __COUNTER__)
Line
Count
Source
9
0
#define PASTE2(x, y) PASTE(x, y)
Line
Count
Source
8
0
#define PASTE(x, y) x ## y
3762
0
    if (nMaxOutboundLimit == 0)
3763
0
        return false;
3764
3765
0
    if (historicalBlockServingLimit)
3766
0
    {
3767
        // keep a large enough buffer to at least relay each block once
3768
0
        const std::chrono::seconds timeLeftInCycle = GetMaxOutboundTimeLeftInCycle_();
3769
0
        const uint64_t buffer = timeLeftInCycle / std::chrono::minutes{10} * MAX_BLOCK_SERIALIZED_SIZE;
3770
0
        if (buffer >= nMaxOutboundLimit || nMaxOutboundTotalBytesSentInCycle >= nMaxOutboundLimit - buffer)
3771
0
            return true;
3772
0
    }
3773
0
    else if (nMaxOutboundTotalBytesSentInCycle >= nMaxOutboundLimit)
3774
0
        return true;
3775
3776
0
    return false;
3777
0
}
3778
3779
uint64_t CConnman::GetOutboundTargetBytesLeft() const
3780
0
{
3781
0
    AssertLockNotHeld(m_total_bytes_sent_mutex);
Line
Count
Source
142
0
#define AssertLockNotHeld(cs) AssertLockNotHeldInline(#cs, __FILE__, __LINE__, &cs)
3782
0
    LOCK(m_total_bytes_sent_mutex);
Line
Count
Source
259
0
#define LOCK(cs) UniqueLock UNIQUE_NAME(criticalblock)(MaybeCheckNotHeld(cs), #cs, __FILE__, __LINE__)
Line
Count
Source
11
0
#define UNIQUE_NAME(name) PASTE2(name, __COUNTER__)
Line
Count
Source
9
0
#define PASTE2(x, y) PASTE(x, y)
Line
Count
Source
8
0
#define PASTE(x, y) x ## y
3783
0
    if (nMaxOutboundLimit == 0)
3784
0
        return 0;
3785
3786
0
    return (nMaxOutboundTotalBytesSentInCycle >= nMaxOutboundLimit) ? 0 : nMaxOutboundLimit - nMaxOutboundTotalBytesSentInCycle;
3787
0
}
3788
3789
uint64_t CConnman::GetTotalBytesRecv() const
3790
0
{
3791
0
    return nTotalBytesRecv;
3792
0
}
3793
3794
uint64_t CConnman::GetTotalBytesSent() const
3795
0
{
3796
0
    AssertLockNotHeld(m_total_bytes_sent_mutex);
Line
Count
Source
142
0
#define AssertLockNotHeld(cs) AssertLockNotHeldInline(#cs, __FILE__, __LINE__, &cs)
3797
0
    LOCK(m_total_bytes_sent_mutex);
Line
Count
Source
259
0
#define LOCK(cs) UniqueLock UNIQUE_NAME(criticalblock)(MaybeCheckNotHeld(cs), #cs, __FILE__, __LINE__)
Line
Count
Source
11
0
#define UNIQUE_NAME(name) PASTE2(name, __COUNTER__)
Line
Count
Source
9
0
#define PASTE2(x, y) PASTE(x, y)
Line
Count
Source
8
0
#define PASTE(x, y) x ## y
3798
0
    return nTotalBytesSent;
3799
0
}
3800
3801
ServiceFlags CConnman::GetLocalServices() const
3802
0
{
3803
0
    return m_local_services;
3804
0
}
3805
3806
static std::unique_ptr<Transport> MakeTransport(NodeId id, bool use_v2transport, bool inbound) noexcept
3807
0
{
3808
0
    if (use_v2transport) {
3809
0
        return std::make_unique<V2Transport>(id, /*initiating=*/!inbound);
3810
0
    } else {
3811
0
        return std::make_unique<V1Transport>(id);
3812
0
    }
3813
0
}
3814
3815
CNode::CNode(NodeId idIn,
3816
             std::shared_ptr<Sock> sock,
3817
             const CAddress& addrIn,
3818
             uint64_t nKeyedNetGroupIn,
3819
             uint64_t nLocalHostNonceIn,
3820
             const CService& addrBindIn,
3821
             const std::string& addrNameIn,
3822
             ConnectionType conn_type_in,
3823
             bool inbound_onion,
3824
             uint64_t network_key,
3825
             CNodeOptions&& node_opts)
3826
0
    : m_transport{MakeTransport(idIn, node_opts.use_v2transport, conn_type_in == ConnectionType::INBOUND)},
3827
0
      m_permission_flags{node_opts.permission_flags},
3828
0
      m_sock{sock},
3829
0
      m_connected{GetTime<std::chrono::seconds>()},
3830
0
      addr{addrIn},
3831
0
      addrBind{addrBindIn},
3832
0
      m_addr_name{addrNameIn.empty() ? addr.ToStringAddrPort() : addrNameIn},
3833
0
      m_dest(addrNameIn),
3834
0
      m_inbound_onion{inbound_onion},
3835
0
      m_prefer_evict{node_opts.prefer_evict},
3836
0
      nKeyedNetGroup{nKeyedNetGroupIn},
3837
0
      m_network_key{network_key},
3838
0
      m_conn_type{conn_type_in},
3839
0
      id{idIn},
3840
0
      nLocalHostNonce{nLocalHostNonceIn},
3841
0
      m_recv_flood_size{node_opts.recv_flood_size},
3842
0
      m_i2p_sam_session{std::move(node_opts.i2p_sam_session)}
3843
0
{
3844
0
    if (inbound_onion) assert(conn_type_in == ConnectionType::INBOUND);
3845
3846
0
    for (const auto& msg : ALL_NET_MESSAGE_TYPES) {
3847
0
        mapRecvBytesPerMsgType[msg] = 0;
3848
0
    }
3849
0
    mapRecvBytesPerMsgType[NET_MESSAGE_TYPE_OTHER] = 0;
3850
3851
0
    if (fLogIPs) {
3852
0
        LogDebug(BCLog::NET, "Added connection to %s peer=%d\n", m_addr_name, id);
Line
Count
Source
393
0
#define LogDebug(category, ...) LogPrintLevel(category, BCLog::Level::Debug, __VA_ARGS__)
Line
Count
Source
385
0
    do {                                                              \
386
0
        if (LogAcceptCategory((category), (level))) {                 \
387
0
            bool rate_limit{level >= BCLog::Level::Info};             \
388
0
            LogPrintLevel_(category, level, rate_limit, __VA_ARGS__); \
Line
Count
Source
362
0
#define LogPrintLevel_(category, level, should_ratelimit, ...) LogPrintFormatInternal(std::source_location::current(), category, level, should_ratelimit, __VA_ARGS__)
389
0
        }                                                             \
390
0
    } while (0)
3853
0
    } else {
3854
0
        LogDebug(BCLog::NET, "Added connection peer=%d\n", id);
Line
Count
Source
393
0
#define LogDebug(category, ...) LogPrintLevel(category, BCLog::Level::Debug, __VA_ARGS__)
Line
Count
Source
385
0
    do {                                                              \
386
0
        if (LogAcceptCategory((category), (level))) {                 \
387
0
            bool rate_limit{level >= BCLog::Level::Info};             \
388
0
            LogPrintLevel_(category, level, rate_limit, __VA_ARGS__); \
Line
Count
Source
362
0
#define LogPrintLevel_(category, level, should_ratelimit, ...) LogPrintFormatInternal(std::source_location::current(), category, level, should_ratelimit, __VA_ARGS__)
389
0
        }                                                             \
390
0
    } while (0)
3855
0
    }
3856
0
}
3857
3858
void CNode::MarkReceivedMsgsForProcessing()
3859
0
{
3860
0
    AssertLockNotHeld(m_msg_process_queue_mutex);
Line
Count
Source
142
0
#define AssertLockNotHeld(cs) AssertLockNotHeldInline(#cs, __FILE__, __LINE__, &cs)
3861
3862
0
    size_t nSizeAdded = 0;
3863
0
    for (const auto& msg : vRecvMsg) {
3864
        // vRecvMsg contains only completed CNetMessage
3865
        // the single possible partially deserialized message are held by TransportDeserializer
3866
0
        nSizeAdded += msg.GetMemoryUsage();
3867
0
    }
3868
3869
0
    LOCK(m_msg_process_queue_mutex);
Line
Count
Source
259
0
#define LOCK(cs) UniqueLock UNIQUE_NAME(criticalblock)(MaybeCheckNotHeld(cs), #cs, __FILE__, __LINE__)
Line
Count
Source
11
0
#define UNIQUE_NAME(name) PASTE2(name, __COUNTER__)
Line
Count
Source
9
0
#define PASTE2(x, y) PASTE(x, y)
Line
Count
Source
8
0
#define PASTE(x, y) x ## y
3870
0
    m_msg_process_queue.splice(m_msg_process_queue.end(), vRecvMsg);
3871
0
    m_msg_process_queue_size += nSizeAdded;
3872
0
    fPauseRecv = m_msg_process_queue_size > m_recv_flood_size;
3873
0
}
3874
3875
std::optional<std::pair<CNetMessage, bool>> CNode::PollMessage()
3876
0
{
3877
0
    LOCK(m_msg_process_queue_mutex);
Line
Count
Source
259
0
#define LOCK(cs) UniqueLock UNIQUE_NAME(criticalblock)(MaybeCheckNotHeld(cs), #cs, __FILE__, __LINE__)
Line
Count
Source
11
0
#define UNIQUE_NAME(name) PASTE2(name, __COUNTER__)
Line
Count
Source
9
0
#define PASTE2(x, y) PASTE(x, y)
Line
Count
Source
8
0
#define PASTE(x, y) x ## y
3878
0
    if (m_msg_process_queue.empty()) return std::nullopt;
3879
3880
0
    std::list<CNetMessage> msgs;
3881
    // Just take one message
3882
0
    msgs.splice(msgs.begin(), m_msg_process_queue, m_msg_process_queue.begin());
3883
0
    m_msg_process_queue_size -= msgs.front().GetMemoryUsage();
3884
0
    fPauseRecv = m_msg_process_queue_size > m_recv_flood_size;
3885
3886
0
    return std::make_pair(std::move(msgs.front()), !m_msg_process_queue.empty());
3887
0
}
3888
3889
bool CConnman::NodeFullyConnected(const CNode* pnode)
3890
0
{
3891
0
    return pnode && pnode->fSuccessfullyConnected && !pnode->fDisconnect;
3892
0
}
3893
3894
void CConnman::PushMessage(CNode* pnode, CSerializedNetMsg&& msg)
3895
0
{
3896
0
    AssertLockNotHeld(m_total_bytes_sent_mutex);
Line
Count
Source
142
0
#define AssertLockNotHeld(cs) AssertLockNotHeldInline(#cs, __FILE__, __LINE__, &cs)
3897
0
    size_t nMessageSize = msg.data.size();
3898
0
    LogDebug(BCLog::NET, "sending %s (%d bytes) peer=%d\n", msg.m_type, nMessageSize, pnode->GetId());
Line
Count
Source
393
0
#define LogDebug(category, ...) LogPrintLevel(category, BCLog::Level::Debug, __VA_ARGS__)
Line
Count
Source
385
0
    do {                                                              \
386
0
        if (LogAcceptCategory((category), (level))) {                 \
387
0
            bool rate_limit{level >= BCLog::Level::Info};             \
388
0
            LogPrintLevel_(category, level, rate_limit, __VA_ARGS__); \
Line
Count
Source
362
0
#define LogPrintLevel_(category, level, should_ratelimit, ...) LogPrintFormatInternal(std::source_location::current(), category, level, should_ratelimit, __VA_ARGS__)
389
0
        }                                                             \
390
0
    } while (0)
3899
0
    if (gArgs.GetBoolArg("-capturemessages", false)) {
3900
0
        CaptureMessage(pnode->addr, msg.m_type, msg.data, /*is_incoming=*/false);
3901
0
    }
3902
3903
0
    TRACEPOINT(net, outbound_message,
3904
0
        pnode->GetId(),
3905
0
        pnode->m_addr_name.c_str(),
3906
0
        pnode->ConnectionTypeAsString().c_str(),
3907
0
        msg.m_type.c_str(),
3908
0
        msg.data.size(),
3909
0
        msg.data.data()
3910
0
    );
3911
3912
0
    size_t nBytesSent = 0;
3913
0
    {
3914
0
        LOCK(pnode->cs_vSend);
Line
Count
Source
259
0
#define LOCK(cs) UniqueLock UNIQUE_NAME(criticalblock)(MaybeCheckNotHeld(cs), #cs, __FILE__, __LINE__)
Line
Count
Source
11
0
#define UNIQUE_NAME(name) PASTE2(name, __COUNTER__)
Line
Count
Source
9
0
#define PASTE2(x, y) PASTE(x, y)
Line
Count
Source
8
0
#define PASTE(x, y) x ## y
3915
        // Check if the transport still has unsent bytes, and indicate to it that we're about to
3916
        // give it a message to send.
3917
0
        const auto& [to_send, more, _msg_type] =
3918
0
            pnode->m_transport->GetBytesToSend(/*have_next_message=*/true);
3919
0
        const bool queue_was_empty{to_send.empty() && pnode->vSendMsg.empty()};
3920
3921
        // Update memory usage of send buffer.
3922
0
        pnode->m_send_memusage += msg.GetMemoryUsage();
3923
0
        if (pnode->m_send_memusage + pnode->m_transport->GetSendMemoryUsage() > nSendBufferMaxSize) pnode->fPauseSend = true;
3924
        // Move message to vSendMsg queue.
3925
0
        pnode->vSendMsg.push_back(std::move(msg));
3926
3927
        // If there was nothing to send before, and there is now (predicted by the "more" value
3928
        // returned by the GetBytesToSend call above), attempt "optimistic write":
3929
        // because the poll/select loop may pause for SELECT_TIMEOUT_MILLISECONDS before actually
3930
        // doing a send, try sending from the calling thread if the queue was empty before.
3931
        // With a V1Transport, more will always be true here, because adding a message always
3932
        // results in sendable bytes there, but with V2Transport this is not the case (it may
3933
        // still be in the handshake).
3934
0
        if (queue_was_empty && more) {
3935
0
            std::tie(nBytesSent, std::ignore) = SocketSendData(*pnode);
3936
0
        }
3937
0
    }
3938
0
    if (nBytesSent) RecordBytesSent(nBytesSent);
3939
0
}
3940
3941
bool CConnman::ForNode(NodeId id, std::function<bool(CNode* pnode)> func)
3942
0
{
3943
0
    CNode* found = nullptr;
3944
0
    LOCK(m_nodes_mutex);
Line
Count
Source
259
0
#define LOCK(cs) UniqueLock UNIQUE_NAME(criticalblock)(MaybeCheckNotHeld(cs), #cs, __FILE__, __LINE__)
Line
Count
Source
11
0
#define UNIQUE_NAME(name) PASTE2(name, __COUNTER__)
Line
Count
Source
9
0
#define PASTE2(x, y) PASTE(x, y)
Line
Count
Source
8
0
#define PASTE(x, y) x ## y
3945
0
    for (auto&& pnode : m_nodes) {
3946
0
        if(pnode->GetId() == id) {
3947
0
            found = pnode;
3948
0
            break;
3949
0
        }
3950
0
    }
3951
0
    return found != nullptr && NodeFullyConnected(found) && func(found);
3952
0
}
3953
3954
CSipHasher CConnman::GetDeterministicRandomizer(uint64_t id) const
3955
0
{
3956
0
    return CSipHasher(nSeed0, nSeed1).Write(id);
3957
0
}
3958
3959
uint64_t CConnman::CalculateKeyedNetGroup(const CNetAddr& address) const
3960
0
{
3961
0
    std::vector<unsigned char> vchNetGroup(m_netgroupman.GetGroup(address));
3962
3963
0
    return GetDeterministicRandomizer(RANDOMIZER_ID_NETGROUP).Write(vchNetGroup).Finalize();
3964
0
}
3965
3966
void CConnman::PerformReconnections()
3967
0
{
3968
0
    AssertLockNotHeld(m_reconnections_mutex);
Line
Count
Source
142
0
#define AssertLockNotHeld(cs) AssertLockNotHeldInline(#cs, __FILE__, __LINE__, &cs)
3969
0
    AssertLockNotHeld(m_unused_i2p_sessions_mutex);
Line
Count
Source
142
0
#define AssertLockNotHeld(cs) AssertLockNotHeldInline(#cs, __FILE__, __LINE__, &cs)
3970
0
    while (true) {
3971
        // Move first element of m_reconnections to todo (avoiding an allocation inside the lock).
3972
0
        decltype(m_reconnections) todo;
3973
0
        {
3974
0
            LOCK(m_reconnections_mutex);
Line
Count
Source
259
0
#define LOCK(cs) UniqueLock UNIQUE_NAME(criticalblock)(MaybeCheckNotHeld(cs), #cs, __FILE__, __LINE__)
Line
Count
Source
11
0
#define UNIQUE_NAME(name) PASTE2(name, __COUNTER__)
Line
Count
Source
9
0
#define PASTE2(x, y) PASTE(x, y)
Line
Count
Source
8
0
#define PASTE(x, y) x ## y
3975
0
            if (m_reconnections.empty()) break;
3976
0
            todo.splice(todo.end(), m_reconnections, m_reconnections.begin());
3977
0
        }
3978
3979
0
        auto& item = *todo.begin();
3980
0
        OpenNetworkConnection(item.addr_connect,
3981
                              // We only reconnect if the first attempt to connect succeeded at
3982
                              // connection time, but then failed after the CNode object was
3983
                              // created. Since we already know connecting is possible, do not
3984
                              // count failure to reconnect.
3985
0
                              /*fCountFailure=*/false,
3986
0
                              std::move(item.grant),
3987
0
                              item.destination.empty() ? nullptr : item.destination.c_str(),
3988
0
                              item.conn_type,
3989
0
                              item.use_v2transport);
3990
0
    }
3991
0
}
3992
3993
void CConnman::ASMapHealthCheck()
3994
0
{
3995
0
    const std::vector<CAddress> v4_addrs{GetAddressesUnsafe(/*max_addresses=*/0, /*max_pct=*/0, Network::NET_IPV4, /*filtered=*/false)};
3996
0
    const std::vector<CAddress> v6_addrs{GetAddressesUnsafe(/*max_addresses=*/0, /*max_pct=*/0, Network::NET_IPV6, /*filtered=*/false)};
3997
0
    std::vector<CNetAddr> clearnet_addrs;
3998
0
    clearnet_addrs.reserve(v4_addrs.size() + v6_addrs.size());
3999
0
    std::transform(v4_addrs.begin(), v4_addrs.end(), std::back_inserter(clearnet_addrs),
4000
0
        [](const CAddress& addr) { return static_cast<CNetAddr>(addr); });
4001
0
    std::transform(v6_addrs.begin(), v6_addrs.end(), std::back_inserter(clearnet_addrs),
4002
0
        [](const CAddress& addr) { return static_cast<CNetAddr>(addr); });
4003
0
    m_netgroupman.ASMapHealthCheck(clearnet_addrs);
4004
0
}
4005
4006
// Dump binary message to file, with timestamp.
4007
static void CaptureMessageToFile(const CAddress& addr,
4008
                                 const std::string& msg_type,
4009
                                 std::span<const unsigned char> data,
4010
                                 bool is_incoming)
4011
0
{
4012
    // Note: This function captures the message at the time of processing,
4013
    // not at socket receive/send time.
4014
    // This ensures that the messages are always in order from an application
4015
    // layer (processing) perspective.
4016
0
    auto now = GetTime<std::chrono::microseconds>();
4017
4018
    // Windows folder names cannot include a colon
4019
0
    std::string clean_addr = addr.ToStringAddrPort();
4020
0
    std::replace(clean_addr.begin(), clean_addr.end(), ':', '_');
4021
4022
0
    fs::path base_path = gArgs.GetDataDirNet() / "message_capture" / fs::u8path(clean_addr);
4023
0
    fs::create_directories(base_path);
4024
4025
0
    fs::path path = base_path / (is_incoming ? "msgs_recv.dat" : "msgs_sent.dat");
4026
0
    AutoFile f{fsbridge::fopen(path, "ab")};
4027
4028
0
    ser_writedata64(f, now.count());
4029
0
    f << std::span{msg_type};
4030
0
    for (auto i = msg_type.length(); i < CMessageHeader::MESSAGE_TYPE_SIZE; ++i) {
4031
0
        f << uint8_t{'\0'};
4032
0
    }
4033
0
    uint32_t size = data.size();
4034
0
    ser_writedata32(f, size);
4035
0
    f << data;
4036
4037
0
    if (f.fclose() != 0) {
4038
0
        throw std::ios_base::failure(
4039
0
            strprintf("Error closing %s after write, file contents are likely incomplete", fs::PathToString(path)));
Line
Count
Source
1172
0
#define strprintf tfm::format
4040
0
    }
4041
0
}
4042
4043
std::function<void(const CAddress& addr,
4044
                   const std::string& msg_type,
4045
                   std::span<const unsigned char> data,
4046
                   bool is_incoming)>
4047
    CaptureMessage = CaptureMessageToFile;