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https://github.com/kvazar-network/kevacoin.git
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Merge pull request #6034
a574899 chaincodes: abstract away more chaincode behavior [squashme] replace struct CCainCode with a typedef uint256 ChainCode (Cory Fields) 8cf1485 Abstract chaincodes into CChainCode (Pieter Wuille)
This commit is contained in:
commit
6a877e870e
@ -5,6 +5,7 @@
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#include "hash.h"
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#include "hash.h"
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#include "crypto/common.h"
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#include "crypto/common.h"
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#include "crypto/hmac_sha512.h"
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#include "crypto/hmac_sha512.h"
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#include "pubkey.h"
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inline uint32_t ROTL32(uint32_t x, int8_t r)
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inline uint32_t ROTL32(uint32_t x, int8_t r)
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@ -71,15 +72,12 @@ unsigned int MurmurHash3(unsigned int nHashSeed, const std::vector<unsigned char
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return h1;
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return h1;
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}
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}
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void BIP32Hash(const unsigned char chainCode[32], unsigned int nChild, unsigned char header, const unsigned char data[32], unsigned char output[64])
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void BIP32Hash(const ChainCode &chainCode, unsigned int nChild, unsigned char header, const unsigned char data[32], unsigned char output[64])
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{
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{
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unsigned char num[4];
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unsigned char num[4];
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num[0] = (nChild >> 24) & 0xFF;
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num[0] = (nChild >> 24) & 0xFF;
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num[1] = (nChild >> 16) & 0xFF;
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num[1] = (nChild >> 16) & 0xFF;
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num[2] = (nChild >> 8) & 0xFF;
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num[2] = (nChild >> 8) & 0xFF;
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num[3] = (nChild >> 0) & 0xFF;
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num[3] = (nChild >> 0) & 0xFF;
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CHMAC_SHA512(chainCode, 32).Write(&header, 1)
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CHMAC_SHA512(chainCode.begin(), chainCode.size()).Write(&header, 1).Write(data, 32).Write(num, 4).Finalize(output);
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.Write(data, 32)
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.Write(num, 4)
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.Finalize(output);
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}
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}
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@ -14,6 +14,8 @@
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#include <vector>
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#include <vector>
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typedef uint256 ChainCode;
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/** A hasher class for Bitcoin's 256-bit hash (double SHA-256). */
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/** A hasher class for Bitcoin's 256-bit hash (double SHA-256). */
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class CHash256 {
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class CHash256 {
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private:
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private:
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@ -159,6 +161,6 @@ uint256 SerializeHash(const T& obj, int nType=SER_GETHASH, int nVersion=PROTOCOL
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unsigned int MurmurHash3(unsigned int nHashSeed, const std::vector<unsigned char>& vDataToHash);
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unsigned int MurmurHash3(unsigned int nHashSeed, const std::vector<unsigned char>& vDataToHash);
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void BIP32Hash(const unsigned char chainCode[32], unsigned int nChild, unsigned char header, const unsigned char data[32], unsigned char output[64]);
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void BIP32Hash(const ChainCode &chainCode, unsigned int nChild, unsigned char header, const unsigned char data[32], unsigned char output[64]);
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#endif // BITCOIN_HASH_H
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#endif // BITCOIN_HASH_H
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14
src/key.cpp
14
src/key.cpp
@ -111,7 +111,7 @@ bool CKey::Load(CPrivKey &privkey, CPubKey &vchPubKey, bool fSkipCheck=false) {
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return VerifyPubKey(vchPubKey);
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return VerifyPubKey(vchPubKey);
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}
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}
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bool CKey::Derive(CKey& keyChild, unsigned char ccChild[32], unsigned int nChild, const unsigned char cc[32]) const {
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bool CKey::Derive(CKey& keyChild, ChainCode &ccChild, unsigned int nChild, const ChainCode& cc) const {
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assert(IsValid());
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assert(IsValid());
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assert(IsCompressed());
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assert(IsCompressed());
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unsigned char out[64];
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unsigned char out[64];
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@ -124,7 +124,7 @@ bool CKey::Derive(CKey& keyChild, unsigned char ccChild[32], unsigned int nChild
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assert(begin() + 32 == end());
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assert(begin() + 32 == end());
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BIP32Hash(cc, nChild, 0, begin(), out);
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BIP32Hash(cc, nChild, 0, begin(), out);
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}
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}
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memcpy(ccChild, out+32, 32);
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memcpy(ccChild.begin(), out+32, 32);
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memcpy((unsigned char*)keyChild.begin(), begin(), 32);
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memcpy((unsigned char*)keyChild.begin(), begin(), 32);
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bool ret = secp256k1_ec_privkey_tweak_add(secp256k1_context, (unsigned char*)keyChild.begin(), out);
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bool ret = secp256k1_ec_privkey_tweak_add(secp256k1_context, (unsigned char*)keyChild.begin(), out);
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UnlockObject(out);
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UnlockObject(out);
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@ -138,7 +138,7 @@ bool CExtKey::Derive(CExtKey &out, unsigned int nChild) const {
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CKeyID id = key.GetPubKey().GetID();
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CKeyID id = key.GetPubKey().GetID();
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memcpy(&out.vchFingerprint[0], &id, 4);
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memcpy(&out.vchFingerprint[0], &id, 4);
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out.nChild = nChild;
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out.nChild = nChild;
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return key.Derive(out.key, out.vchChainCode, nChild, vchChainCode);
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return key.Derive(out.key, out.chaincode, nChild, chaincode);
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}
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}
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void CExtKey::SetMaster(const unsigned char *seed, unsigned int nSeedLen) {
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void CExtKey::SetMaster(const unsigned char *seed, unsigned int nSeedLen) {
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@ -147,7 +147,7 @@ void CExtKey::SetMaster(const unsigned char *seed, unsigned int nSeedLen) {
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LockObject(out);
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LockObject(out);
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CHMAC_SHA512(hashkey, sizeof(hashkey)).Write(seed, nSeedLen).Finalize(out);
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CHMAC_SHA512(hashkey, sizeof(hashkey)).Write(seed, nSeedLen).Finalize(out);
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key.Set(&out[0], &out[32], true);
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key.Set(&out[0], &out[32], true);
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memcpy(vchChainCode, &out[32], 32);
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memcpy(chaincode.begin(), &out[32], 32);
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UnlockObject(out);
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UnlockObject(out);
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nDepth = 0;
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nDepth = 0;
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nChild = 0;
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nChild = 0;
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@ -160,7 +160,7 @@ CExtPubKey CExtKey::Neuter() const {
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memcpy(&ret.vchFingerprint[0], &vchFingerprint[0], 4);
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memcpy(&ret.vchFingerprint[0], &vchFingerprint[0], 4);
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ret.nChild = nChild;
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ret.nChild = nChild;
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ret.pubkey = key.GetPubKey();
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ret.pubkey = key.GetPubKey();
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memcpy(&ret.vchChainCode[0], &vchChainCode[0], 32);
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ret.chaincode = chaincode;
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return ret;
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return ret;
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}
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}
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@ -169,7 +169,7 @@ void CExtKey::Encode(unsigned char code[74]) const {
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memcpy(code+1, vchFingerprint, 4);
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memcpy(code+1, vchFingerprint, 4);
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code[5] = (nChild >> 24) & 0xFF; code[6] = (nChild >> 16) & 0xFF;
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code[5] = (nChild >> 24) & 0xFF; code[6] = (nChild >> 16) & 0xFF;
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code[7] = (nChild >> 8) & 0xFF; code[8] = (nChild >> 0) & 0xFF;
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code[7] = (nChild >> 8) & 0xFF; code[8] = (nChild >> 0) & 0xFF;
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memcpy(code+9, vchChainCode, 32);
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memcpy(code+9, chaincode.begin(), 32);
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code[41] = 0;
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code[41] = 0;
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assert(key.size() == 32);
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assert(key.size() == 32);
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memcpy(code+42, key.begin(), 32);
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memcpy(code+42, key.begin(), 32);
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@ -179,7 +179,7 @@ void CExtKey::Decode(const unsigned char code[74]) {
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nDepth = code[0];
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nDepth = code[0];
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memcpy(vchFingerprint, code+1, 4);
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memcpy(vchFingerprint, code+1, 4);
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nChild = (code[5] << 24) | (code[6] << 16) | (code[7] << 8) | code[8];
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nChild = (code[5] << 24) | (code[6] << 16) | (code[7] << 8) | code[8];
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memcpy(vchChainCode, code+9, 32);
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memcpy(chaincode.begin(), code+9, 32);
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key.Set(code+42, code+74, true);
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key.Set(code+42, code+74, true);
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}
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}
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10
src/key.h
10
src/key.h
@ -6,6 +6,7 @@
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#ifndef BITCOIN_KEY_H
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#ifndef BITCOIN_KEY_H
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#define BITCOIN_KEY_H
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#define BITCOIN_KEY_H
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#include "pubkey.h"
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#include "serialize.h"
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#include "serialize.h"
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#include "support/allocators/secure.h"
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#include "support/allocators/secure.h"
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#include "uint256.h"
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#include "uint256.h"
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@ -13,9 +14,6 @@
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#include <stdexcept>
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#include <stdexcept>
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#include <vector>
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#include <vector>
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class CPubKey;
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struct CExtPubKey;
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/**
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/**
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* secp256k1:
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* secp256k1:
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@ -138,7 +136,7 @@ public:
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bool SignCompact(const uint256& hash, std::vector<unsigned char>& vchSig) const;
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bool SignCompact(const uint256& hash, std::vector<unsigned char>& vchSig) const;
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//! Derive BIP32 child key.
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//! Derive BIP32 child key.
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bool Derive(CKey& keyChild, unsigned char ccChild[32], unsigned int nChild, const unsigned char cc[32]) const;
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bool Derive(CKey& keyChild, ChainCode &ccChild, unsigned int nChild, const ChainCode& cc) const;
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/**
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/**
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* Verify thoroughly whether a private key and a public key match.
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* Verify thoroughly whether a private key and a public key match.
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@ -157,13 +155,13 @@ struct CExtKey {
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unsigned char nDepth;
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unsigned char nDepth;
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unsigned char vchFingerprint[4];
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unsigned char vchFingerprint[4];
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unsigned int nChild;
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unsigned int nChild;
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unsigned char vchChainCode[32];
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ChainCode chaincode;
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CKey key;
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CKey key;
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friend bool operator==(const CExtKey& a, const CExtKey& b)
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friend bool operator==(const CExtKey& a, const CExtKey& b)
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{
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{
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return a.nDepth == b.nDepth && memcmp(&a.vchFingerprint[0], &b.vchFingerprint[0], 4) == 0 && a.nChild == b.nChild &&
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return a.nDepth == b.nDepth && memcmp(&a.vchFingerprint[0], &b.vchFingerprint[0], 4) == 0 && a.nChild == b.nChild &&
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memcmp(&a.vchChainCode[0], &b.vchChainCode[0], 32) == 0 && a.key == b.key;
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a.chaincode == b.chaincode && a.key == b.key;
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}
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}
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void Encode(unsigned char code[74]) const;
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void Encode(unsigned char code[74]) const;
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@ -54,13 +54,13 @@ bool CPubKey::Decompress() {
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return true;
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return true;
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}
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}
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bool CPubKey::Derive(CPubKey& pubkeyChild, unsigned char ccChild[32], unsigned int nChild, const unsigned char cc[32]) const {
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bool CPubKey::Derive(CPubKey& pubkeyChild, ChainCode &ccChild, unsigned int nChild, const ChainCode& cc) const {
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assert(IsValid());
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assert(IsValid());
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assert((nChild >> 31) == 0);
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assert((nChild >> 31) == 0);
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assert(begin() + 33 == end());
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assert(begin() + 33 == end());
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unsigned char out[64];
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unsigned char out[64];
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BIP32Hash(cc, nChild, *begin(), begin()+1, out);
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BIP32Hash(cc, nChild, *begin(), begin()+1, out);
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memcpy(ccChild, out+32, 32);
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memcpy(ccChild.begin(), out+32, 32);
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CECKey key;
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CECKey key;
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bool ret = key.SetPubKey(begin(), size());
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bool ret = key.SetPubKey(begin(), size());
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ret &= key.TweakPublic(out);
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ret &= key.TweakPublic(out);
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@ -75,7 +75,7 @@ void CExtPubKey::Encode(unsigned char code[74]) const {
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memcpy(code+1, vchFingerprint, 4);
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memcpy(code+1, vchFingerprint, 4);
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code[5] = (nChild >> 24) & 0xFF; code[6] = (nChild >> 16) & 0xFF;
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code[5] = (nChild >> 24) & 0xFF; code[6] = (nChild >> 16) & 0xFF;
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code[7] = (nChild >> 8) & 0xFF; code[8] = (nChild >> 0) & 0xFF;
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code[7] = (nChild >> 8) & 0xFF; code[8] = (nChild >> 0) & 0xFF;
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memcpy(code+9, vchChainCode, 32);
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memcpy(code+9, chaincode.begin(), 32);
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assert(pubkey.size() == 33);
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assert(pubkey.size() == 33);
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memcpy(code+41, pubkey.begin(), 33);
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memcpy(code+41, pubkey.begin(), 33);
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}
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}
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@ -84,7 +84,7 @@ void CExtPubKey::Decode(const unsigned char code[74]) {
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nDepth = code[0];
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nDepth = code[0];
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memcpy(vchFingerprint, code+1, 4);
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memcpy(vchFingerprint, code+1, 4);
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nChild = (code[5] << 24) | (code[6] << 16) | (code[7] << 8) | code[8];
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nChild = (code[5] << 24) | (code[6] << 16) | (code[7] << 8) | code[8];
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memcpy(vchChainCode, code+9, 32);
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memcpy(chaincode.begin(), code+9, 32);
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pubkey.Set(code+41, code+74);
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pubkey.Set(code+41, code+74);
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}
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}
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@ -93,5 +93,5 @@ bool CExtPubKey::Derive(CExtPubKey &out, unsigned int nChild) const {
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CKeyID id = pubkey.GetID();
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CKeyID id = pubkey.GetID();
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memcpy(&out.vchFingerprint[0], &id, 4);
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memcpy(&out.vchFingerprint[0], &id, 4);
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out.nChild = nChild;
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out.nChild = nChild;
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return pubkey.Derive(out.pubkey, out.vchChainCode, nChild, vchChainCode);
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return pubkey.Derive(out.pubkey, out.chaincode, nChild, chaincode);
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}
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}
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10
src/pubkey.h
10
src/pubkey.h
@ -31,6 +31,8 @@ public:
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CKeyID(const uint160& in) : uint160(in) {}
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CKeyID(const uint160& in) : uint160(in) {}
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};
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};
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typedef uint256 ChainCode;
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/** An encapsulated public key. */
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/** An encapsulated public key. */
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class CPubKey
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class CPubKey
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{
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{
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@ -182,20 +184,20 @@ public:
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bool Decompress();
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bool Decompress();
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//! Derive BIP32 child pubkey.
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//! Derive BIP32 child pubkey.
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bool Derive(CPubKey& pubkeyChild, unsigned char ccChild[32], unsigned int nChild, const unsigned char cc[32]) const;
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bool Derive(CPubKey& pubkeyChild, ChainCode &ccChild, unsigned int nChild, const ChainCode& cc) const;
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};
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};
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struct CExtPubKey {
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struct CExtPubKey {
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unsigned char nDepth;
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unsigned char nDepth;
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unsigned char vchFingerprint[4];
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unsigned char vchFingerprint[4];
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unsigned int nChild;
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unsigned int nChild;
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unsigned char vchChainCode[32];
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ChainCode chaincode;
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CPubKey pubkey;
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CPubKey pubkey;
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friend bool operator==(const CExtPubKey& a, const CExtPubKey& b)
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friend bool operator==(const CExtPubKey &a, const CExtPubKey &b)
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{
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{
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return a.nDepth == b.nDepth && memcmp(&a.vchFingerprint[0], &b.vchFingerprint[0], 4) == 0 && a.nChild == b.nChild &&
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return a.nDepth == b.nDepth && memcmp(&a.vchFingerprint[0], &b.vchFingerprint[0], 4) == 0 && a.nChild == b.nChild &&
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memcmp(&a.vchChainCode[0], &b.vchChainCode[0], 32) == 0 && a.pubkey == b.pubkey;
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a.chaincode == b.chaincode && a.pubkey == b.pubkey;
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}
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}
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void Encode(unsigned char code[74]) const;
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void Encode(unsigned char code[74]) const;
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