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@ -401,6 +401,39 @@ bool CNetAddr::GetIn6Addr(struct in6_addr* pipv6Addr) const
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return true;
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}
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uint32_t CNetAddr::GetNetClass() const {
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uint32_t net_class = NET_IPV6;
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if (IsLocal()) {
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net_class = 255;
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}
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if (IsInternal()) {
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net_class = NET_INTERNAL;
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} else if (!IsRoutable()) {
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net_class = NET_UNROUTABLE;
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} else if (IsIPv4() || IsRFC6145() || IsRFC6052() || IsRFC3964() || IsRFC4380()) {
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net_class = NET_IPV4;
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} else if (IsTor()) {
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net_class = NET_ONION;
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}
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return net_class;
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}
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uint32_t CNetAddr::GetMappedAS(const std::vector<bool> &asmap) const {
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uint32_t net_class = GetNetClass();
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if (asmap.size() == 0 || (net_class != NET_IPV4 && net_class != NET_IPV6)) {
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return 0; // Indicates not found, safe because AS0 is reserved per RFC7607.
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}
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std::vector<bool> ip_bits(128);
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for (int8_t byte_i = 0; byte_i < 16; ++byte_i) {
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uint8_t cur_byte = GetByte(15 - byte_i);
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for (uint8_t bit_i = 0; bit_i < 8; ++bit_i) {
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ip_bits[byte_i * 8 + bit_i] = (cur_byte >> (7 - bit_i)) & 1;
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}
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}
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uint32_t mapped_as = Interpret(asmap, ip_bits);
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return mapped_as;
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}
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/**
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* Get the canonical identifier of our network group
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*
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@ -414,53 +447,58 @@ bool CNetAddr::GetIn6Addr(struct in6_addr* pipv6Addr) const
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std::vector<unsigned char> CNetAddr::GetGroup(const std::vector<bool> &asmap) const
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{
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std::vector<unsigned char> vchRet;
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int nClass = NET_IPV6;
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uint32_t net_class = GetNetClass();
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// If non-empty asmap is supplied and the address is IPv4/IPv6,
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// return ASN to be used for bucketing.
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uint32_t asn = GetMappedAS(asmap);
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if (asn != 0) { // Either asmap was empty, or address has non-asmappable net class (e.g. TOR).
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vchRet.push_back(NET_IPV6); // IPv4 and IPv6 with same ASN should be in the same bucket
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for (int i = 0; i < 4; i++) {
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vchRet.push_back((asn >> (8 * i)) & 0xFF);
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}
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return vchRet;
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}
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vchRet.push_back(net_class);
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int nStartByte = 0;
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int nBits = 16;
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// all local addresses belong to the same group
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if (IsLocal())
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{
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nClass = 255;
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nBits = 0;
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}
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// all internal-usage addresses get their own group
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if (IsInternal())
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{
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nClass = NET_INTERNAL;
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nStartByte = sizeof(g_internal_prefix);
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nBits = (sizeof(ip) - sizeof(g_internal_prefix)) * 8;
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}
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// all other unroutable addresses belong to the same group
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else if (!IsRoutable())
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{
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nClass = NET_UNROUTABLE;
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nBits = 0;
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}
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// for IPv4 addresses, '1' + the 16 higher-order bits of the IP
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// includes mapped IPv4, SIIT translated IPv4, and the well-known prefix
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else if (IsIPv4() || IsRFC6145() || IsRFC6052())
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{
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nClass = NET_IPV4;
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nStartByte = 12;
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}
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// for 6to4 tunnelled addresses, use the encapsulated IPv4 address
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else if (IsRFC3964())
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{
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nClass = NET_IPV4;
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nStartByte = 2;
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}
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// for Teredo-tunnelled IPv6 addresses, use the encapsulated IPv4 address
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else if (IsRFC4380())
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{
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vchRet.push_back(NET_IPV4);
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vchRet.push_back(GetByte(3) ^ 0xFF);
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vchRet.push_back(GetByte(2) ^ 0xFF);
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return vchRet;
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}
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else if (IsTor())
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{
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nClass = NET_ONION;
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nStartByte = 6;
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nBits = 4;
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}
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@ -471,29 +509,6 @@ std::vector<unsigned char> CNetAddr::GetGroup(const std::vector<bool> &asmap) co
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else
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nBits = 32;
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// If asmap is supplied and the address is IPv4/IPv6,
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// ignore nBits and use 32/128 bits to obtain ASN from asmap.
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// ASN is then returned to be used for bucketing.
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if (asmap.size() != 0 && (nClass == NET_IPV4 || nClass == NET_IPV6)) {
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nClass = NET_IPV6;
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std::vector<bool> ip_bits(128);
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for (int8_t byte_i = 0; byte_i < 16; ++byte_i) {
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uint8_t cur_byte = GetByte(15 - byte_i);
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for (uint8_t bit_i = 0; bit_i < 8; ++bit_i) {
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ip_bits[byte_i * 8 + bit_i] = (cur_byte >> (7 - bit_i)) & 1;
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}
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}
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uint32_t asn = Interpret(asmap, ip_bits);
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vchRet.push_back(nClass);
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for (int i = 0; i < 4; i++) {
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vchRet.push_back((asn >> (8 * i)) & 0xFF);
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}
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return vchRet;
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}
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vchRet.push_back(nClass);
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// push our ip onto vchRet byte by byte...
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while (nBits >= 8)
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{
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