mirror of
https://github.com/XRPLF/rippled.git
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Merge branch 'master' into unl
This commit is contained in:
@@ -1,3 +1,4 @@
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#include <openssl/ec.h>
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#include <openssl/bn.h>
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#include <openssl/ecdsa.h>
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@@ -285,4 +286,5 @@ EC_KEY* CKey::GeneratePrivateDeterministicKey(const NewcoinAddress& family, cons
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return pkey;
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}
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// vim:ts=4
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158
src/ECIES.cpp
Normal file
158
src/ECIES.cpp
Normal file
@@ -0,0 +1,158 @@
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#include <openssl/ec.h>
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#include <openssl/bn.h>
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#include <openssl/ecdsa.h>
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#include <openssl/pem.h>
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#include <openssl/hmac.h>
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#include <openssl/rand.h>
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#include <vector>
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#include <cassert>
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#include "key.h"
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static void* ecies_key_derivation(const void *input, size_t ilen, void *output, size_t *olen)
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{ // This function must not be changed as it must be what ECDH_compute_key expects
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if (*olen < SHA512_DIGEST_LENGTH)
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return NULL;
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*olen = SHA512_DIGEST_LENGTH;
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return SHA512(static_cast<const unsigned char *>(input), ilen, static_cast<unsigned char *>(output));
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}
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std::vector<unsigned char> CKey::getECIESSecret(CKey& otherKey)
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{ // Retrieve a secret generated from an EC key pair. At least one private key must be known.
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if(!pkey || !otherKey.pkey)
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throw std::runtime_error("missing key");
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EC_KEY *pubkey, *privkey;
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if(EC_KEY_get0_private_key(pkey))
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{
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privkey=pkey;
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pubkey=otherKey.pkey;
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}
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else if(EC_KEY_get0_private_key(otherKey.pkey))
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{
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privkey=otherKey.pkey;
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pubkey=pkey;
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}
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else throw std::runtime_error("no private key");
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std::vector<unsigned char> ret(SHA512_DIGEST_LENGTH);
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if (ECDH_compute_key(&(ret.front()), SHA512_DIGEST_LENGTH, EC_KEY_get0_public_key(pubkey),
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privkey, ecies_key_derivation) != SHA512_DIGEST_LENGTH)
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throw std::runtime_error("ecdh key failed");
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return ret;
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}
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// Our ciphertext is all encrypted except the IV. The encrypted data decodes as follows:
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// 1) 256-bits of SHA-512 HMAC of original plaintext
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// 2) Original plaintext
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static uint256 makeHMAC(const std::vector<unsigned char>& secret, const std::vector<unsigned char> data)
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{
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HMAC_CTX ctx;
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HMAC_CTX_init(&ctx);
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if(HMAC_Init_ex(&ctx, &(secret.front()), secret.size(), EVP_sha512(), NULL) != 1)
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{
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HMAC_CTX_cleanup(&ctx);
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throw std::runtime_error("init hmac");
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}
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if(HMAC_Update(&ctx, &(data.front()), data.size()) != 1)
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{
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HMAC_CTX_cleanup(&ctx);
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throw std::runtime_error("update hmac");
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}
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unsigned int ml=EVP_MAX_MD_SIZE;
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std::vector<unsigned char> hmac(ml);
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if(!HMAC_Final(&ctx, &(hmac.front()), &ml) != 1)
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{
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HMAC_CTX_cleanup(&ctx);
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throw std::runtime_error("finalize hmac");
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}
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assert((ml>=32) && (ml<=EVP_MAX_MD_SIZE));
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uint256 ret;
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memcpy(ret.begin(), &(hmac.front()), 32);
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return ret;
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}
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std::vector<unsigned char> CKey::encryptECIES(CKey& otherKey, const std::vector<unsigned char>& plaintext)
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{
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std::vector<unsigned char> secret=getECIESSecret(otherKey);
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uint256 hmac=makeHMAC(secret, plaintext);
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uint128 iv;
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if(RAND_bytes(static_cast<unsigned char *>(iv.begin()), 128/8) != 1)
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throw std::runtime_error("insufficient entropy");
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EVP_CIPHER_CTX ctx;
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EVP_CIPHER_CTX_init(&ctx);
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if (EVP_EncryptInit_ex(&ctx, EVP_aes_128_cbc(), NULL,
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&(secret.front()), static_cast<unsigned char *>(iv.begin())) != 1)
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{
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EVP_CIPHER_CTX_cleanup(&ctx);
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throw std::runtime_error("init cipher ctx");
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}
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std::vector<unsigned char> out(plaintext.size() + (256/8) + (512/8) + 48, 0);
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int len=0, bytesWritten;
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// output 256-bit IV
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memcpy(&(out.front()), iv.begin(), 32);
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len=32;
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// Encrypt/output 512-bit HMAC
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bytesWritten=out.capacity()-len;
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assert(bytesWritten>0);
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if(EVP_EncryptUpdate(&ctx, &(out.front())+len, &bytesWritten, hmac.begin(), 64) < 0)
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{
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EVP_CIPHER_CTX_cleanup(&ctx);
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throw std::runtime_error("");
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}
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len+=bytesWritten;
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// encrypt/output plaintext
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bytesWritten=out.capacity()-len;
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assert(bytesWritten>0);
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if(EVP_EncryptUpdate(&ctx, &(out.front())+len, &bytesWritten, &(plaintext.front()), plaintext.size()) < 0)
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{
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EVP_CIPHER_CTX_cleanup(&ctx);
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throw std::runtime_error("");
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}
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len+=bytesWritten;
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// finalize
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bytesWritten=out.capacity()-len;
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if(EVP_EncryptFinal_ex(&ctx, &(out.front())+len, &bytesWritten) < 0)
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{
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EVP_CIPHER_CTX_cleanup(&ctx);
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throw std::runtime_error("");
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}
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len+=bytesWritten;
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out.resize(len);
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EVP_CIPHER_CTX_cleanup(&ctx);
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return out;
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}
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std::vector<unsigned char> CKey::decryptECIES(CKey& otherKey, const std::vector<unsigned char>& ciphertext)
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{
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std::vector<unsigned char> secret=getECIESSecret(otherKey);
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// 1) Decrypt
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// 2) Extract length and plaintext
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// 3) Compute HMAC
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// 4) Verify
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}
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// vim:ts=4
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@@ -1,6 +1,8 @@
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#ifndef __UNIQUE_NODE_LIST__
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#define __UNIQUE_NODE_LIST__
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#include <deque>
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#include "../json/value.h"
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#include "NewcoinAddress.h"
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@@ -9,7 +11,6 @@
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#include "ParseSection.h"
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#include <boost/thread/mutex.hpp>
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#include <boost/container/deque.hpp>
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#define SYSTEM_NAME "newcoin"
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@@ -27,7 +28,7 @@ private:
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boost::mutex mFetchLock;
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int mFetchActive; // count of active fetches
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boost::container::deque<std::string> mFetchPending;
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std::deque<std::string> mFetchPending;
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std::string mStrIpsUrl;
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std::string mStrValidatorsUrl;
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10
src/key.h
10
src/key.h
@@ -273,6 +273,16 @@ public:
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return false;
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return true;
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}
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// ECIES functions. These throw on failure
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// returns a 64-byte secret unique to these two keys. At least one private key must be known.
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std::vector<unsigned char> getECIESSecret(CKey& otherKey);
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// encrypt/decrypt functions with integrity checking.
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// Note that the other side must somehow know what keys to use
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std::vector<unsigned char> encryptECIES(CKey& otherKey, const std::vector<unsigned char>& plaintext);
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std::vector<unsigned char> decryptECIES(CKey& otherKey, const std::vector<unsigned char>& ciphertext);
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};
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#endif
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