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@@ -51,38 +51,174 @@
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#include "../node/Identity.hpp"
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#include "../node/InetAddress.hpp"
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#include "../node/Mutex.hpp"
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+#include "../node/SharedPtr.hpp"
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#include "../osdep/OSUtils.hpp"
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#include <string>
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#include <thread>
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#include <map>
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+#include <set>
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#include <vector>
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#include <iostream>
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#include <unordered_map>
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#include <vector>
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#include <atomic>
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+#include <mutex>
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using namespace ZeroTier;
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struct PeerInfo
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{
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- InetAddress address;
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+ Identity id;
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+ uint8_t key[32];
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+ InetAddress ip4,ip6;
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int64_t lastReceive;
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+ AtomicCounter __refCount;
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+
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+ ZT_ALWAYS_INLINE ~PeerInfo() { Utils::burn(key,sizeof(key)); }
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};
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+struct IdentityHasher { ZT_ALWAYS_INLINE std::size_t operator()(const Identity &id) const { return (std::size_t)id.hashCode(); } };
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struct AddressHasher { ZT_ALWAYS_INLINE std::size_t operator()(const Address &a) const { return (std::size_t)a.toInt(); } };
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struct InetAddressHasher { ZT_ALWAYS_INLINE std::size_t operator()(const InetAddress &ip) const { return (std::size_t)ip.hashCode(); } };
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+static Identity self;
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static std::atomic_bool run;
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-static std::unordered_map< Address,std::map< Identity,PeerInfo >,AddressHasher > peersByVirtAddr;
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-static std::unordered_map< InetAddress,std::map< Identity,PeerInfo >,InetAddressHasher > peersByPhysAddr;
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-static Mutex peersByVirtAddr_l;
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-static Mutex peersByAddress_l;
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+static std::unordered_map< Identity,SharedPtr<PeerInfo>,IdentityHasher > peersByIdentity;
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+static std::unordered_map< Address,std::set< SharedPtr<PeerInfo> >,AddressHasher > peersByVirtAddr;
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+static std::unordered_map< InetAddress,std::set< SharedPtr<PeerInfo> >,InetAddressHasher > peersByPhysAddr;
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+static std::mutex peersByIdentity_l;
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+static std::mutex peersByVirtAddr_l;
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+static std::mutex peersByPhysAddr_l;
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-static void handlePacket(const InetAddress *const ip,const Packet *const pkt)
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+static void handlePacket(const InetAddress *const ip,const Packet *const inpkt)
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{
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- char stmp[128];
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- printf("%s\n",ip->toString(stmp));
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+ Packet pkt(*inpkt);
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+ char ipstr[128],ipstr2[128],astr[32];
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+ const bool fragment = pkt[ZT_PACKET_FRAGMENT_IDX_FRAGMENT_INDICATOR] == ZT_PACKET_FRAGMENT_INDICATOR;
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+
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+ // See if this is destined for us and isn't a fragment / fragmented. (No packets
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+ // understood by the root are fragments/fragmented.)
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+ if ((!fragment)&&(!pkt.fragmented())&&(pkt.destination() == self.address())) {
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+ SharedPtr<PeerInfo> peer;
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+
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+ // If this is an un-encrypted HELLO, either learn a new peer or verify
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+ // that this is a peer we already know.
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+ if ((pkt.cipher() == ZT_PROTO_CIPHER_SUITE__POLY1305_NONE)&&(pkt.verb() == Packet::VERB_HELLO)) {
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+ Identity id;
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+ if (id.deserialize(pkt,ZT_PROTO_VERB_HELLO_IDX_IDENTITY)) {
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+ {
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+ std::lock_guard<std::mutex> pbi_l(peersByIdentity_l);
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+ auto pById = peersByIdentity.find(id);
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+ if (pById != peersByIdentity.end()) {
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+ peer = pById->second;
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+ }
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+ }
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+ if (peer) {
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+ if (!pkt.dearmor(peer->key)) {
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+ printf("%s HELLO rejected: packet authentication failed" ZT_EOL_S,ip->toString(ipstr));
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+ return;
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+ }
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+ } else {
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+ peer.set(new PeerInfo);
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+ if (id.agree(self,peer->key)) {
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+ if (pkt.dearmor(peer->key)) {
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+ if (id.locallyValidate()) {
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+ peer->id = id;
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+ {
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+ std::lock_guard<std::mutex> pbi_l(peersByIdentity_l);
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+ peersByIdentity.emplace(id,peer);
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+ }
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+ } else {
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+ printf("%s HELLO rejected: invalid identity (locallyValidate() failed)" ZT_EOL_S,ip->toString(ipstr));
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+ return;
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+ }
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+ } else {
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+ printf("%s HELLO rejected: packet authentication failed" ZT_EOL_S,ip->toString(ipstr));
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+ return;
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+ }
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+ } else {
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+ printf("%s HELLO rejected: key agreement failed" ZT_EOL_S,ip->toString(ipstr));
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+ return;
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+ }
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+ }
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+ }
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+ }
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+
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+ // If it wasn't a HELLO, check to see if any known identities for the sender's
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+ // short ZT address successfully decrypt the packet.
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+ if (!peer) {
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+ std::lock_guard<std::mutex> pbv_l(peersByVirtAddr_l);
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+ auto peers = peersByVirtAddr.find(pkt.source());
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+ if (peers != peersByVirtAddr.end()) {
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+ for(auto p=peers->second.begin();p!=peers->second.end();++p) {
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+ if (pkt.dearmor((*p)->key)) {
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+ peer = (*p);
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+ break;
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+ } else {
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+ pkt = *inpkt; // dearmor() destroys contents of pkt
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+ }
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+ }
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+ }
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+ }
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+
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+ // If we found the peer, update IP and/or time.
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+ if (peer) {
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+ InetAddress *const peerIp = (ip->ss_family == AF_INET) ? &(peer->ip4) : &(peer->ip6);
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+ if (*peerIp != ip) {
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+ std::lock_guard<std::mutex> pbp_l(peersByPhysAddr_l);
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+ if (*peerIp) {
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+ auto prev = peersByPhysAddr.find(*peerIp);
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+ if (prev != peersByPhysAddr.end()) {
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+ prev->second.erase(peer);
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+ if (prev->second.empty())
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+ peersByPhysAddr.erase(prev);
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+ }
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+ }
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+ *peerIp = ip;
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+ peersByPhysAddr[ip].emplace(peer);
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+ }
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+
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+ peer->lastReceive = OSUtils::now();
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+
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+ printf("%s has %s" ZT_EOL_S,ip->toString(ipstr),pkt.source().toString(astr));
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+ return;
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+ }
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+ }
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+
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+ std::vector<InetAddress> toAddrs;
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+ {
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+ std::lock_guard<std::mutex> pbv_l(peersByVirtAddr_l);
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+ auto peers = peersByVirtAddr.find(inpkt->destination());
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+ if (peers != peersByVirtAddr.end()) {
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+ for(auto p=peers->second.begin();p!=peers->second.end();++p) {
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+ if ((*p)->ip6)
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+ toAddrs.push_back((*p)->ip6);
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+ else if ((*p)->ip4)
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+ toAddrs.push_back((*p)->ip4);
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+ }
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+ }
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+ }
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+ if (toAddrs.empty()) {
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+ printf("%s not forwarding to %s: no destinations found" ZT_EOL_S,ip->toString(ipstr),pkt.destination().toString(astr));
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+ return;
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+ }
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+
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+ if (fragment) {
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+ if (reinterpret_cast<Packet::Fragment *>(&pkt)->incrementHops() >= ZT_PROTO_MAX_HOPS) {
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+ printf("%s refused to forward to %s: max hop count exceeded" ZT_EOL_S,ip->toString(ipstr),pkt.destination().toString(astr));
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+ return;
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+ }
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+ } else {
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+ if (pkt.incrementHops() >= ZT_PROTO_MAX_HOPS) {
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+ printf("%s refused to forward to %s: max hop count exceeded" ZT_EOL_S,ip->toString(ipstr),pkt.destination().toString(astr));
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+ return;
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+ }
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+ }
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+
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+ for(auto i=toAddrs.begin();i!=toAddrs.end();++i) {
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+ printf("%s -> %s for %s" ZT_EOL_S,ip->toString(ipstr),i->toString(ipstr2),pkt.destination().toString(astr));
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+ }
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}
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static int bindSocket(struct sockaddr *bindAddr)
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