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AEAD/ChaCha20/Poly1305 decryption and SessionCreate prcessing
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@ -1062,9 +1062,9 @@ namespace crypto
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// AEAD/ChaCha20/Poly1305
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size_t AEADChaCha20Poly1305Encrypt (const uint8_t * msg, size_t msgLen, const uint8_t * ad, size_t adLen, const uint8_t * key, const uint8_t * nonce, uint8_t * buf, size_t len)
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bool AEADChaCha20Poly1305 (const uint8_t * msg, size_t msgLen, const uint8_t * ad, size_t adLen, const uint8_t * key, const uint8_t * nonce, uint8_t * buf, size_t len, bool encrypt)
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{
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if (msgLen + 16 < len) return 0;
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if (encrypt && msgLen + 16 < len) return 0;
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// generate one time poly key
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uint8_t polyKey[64];
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memset(polyKey, 0, sizeof(polyKey));
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@ -1072,6 +1072,7 @@ namespace crypto
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// encrypt data
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memcpy (buf, msg, msgLen);
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chacha20 (buf, msgLen, nonce, key, 1);
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// create Poly1305 message
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std::vector<uint8_t> polyMsg(adLen + msgLen + 3*16);
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size_t offset = 0;
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@ -1084,7 +1085,7 @@ namespace crypto
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rem = 16 - rem;
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memcpy (polyMsg.data () + offset, padding, rem); offset += rem;
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}
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memcpy (polyMsg.data () + offset, buf, msgLen); offset += msgLen; // encrypted data
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memcpy (polyMsg.data () + offset, encrypt ? buf : msg, msgLen); offset += msgLen; // encrypted data
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rem = msgLen & 0x0F; // %16
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if (rem)
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{
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@ -1095,9 +1096,19 @@ namespace crypto
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htole64buf (polyMsg.data () + offset, adLen); offset += 8;
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htole64buf (polyMsg.data () + offset, msgLen); offset += 8;
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// calculate Poly1305 tag and write in after encrypted data
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Poly1305HMAC ((uint32_t *)(buf + msgLen), (uint32_t *)polyKey, polyMsg.data (), offset);
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return msgLen + 16;
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if (encrypt)
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{
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// calculate Poly1305 tag and write in after encrypted data
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Poly1305HMAC ((uint32_t *)(buf + msgLen), (uint32_t *)polyKey, polyMsg.data (), offset);
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}
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else
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{
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uint32_t tag[8];
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// calculate Poly1305 tag
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Poly1305HMAC (tag, (uint32_t *)polyKey, polyMsg.data (), offset);
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if (memcmp (tag, msg + msgLen, 16)) return false; // compare with provided
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}
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return true;
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}
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// init and terminate
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@ -255,7 +255,7 @@ namespace crypto
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};
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// AEAD/ChaCha20/Poly1305
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size_t AEADChaCha20Poly1305Encrypt (const uint8_t * msg, size_t msgLen, const uint8_t * ad, size_t adLen, const uint8_t * key, const uint8_t * nonce, uint8_t * buf, size_t len);
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bool AEADChaCha20Poly1305 (const uint8_t * msg, size_t msgLen, const uint8_t * ad, size_t adLen, const uint8_t * key, const uint8_t * nonce, uint8_t * buf, size_t len, bool encrypt); // msgLen is len without tag
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// init and terminate
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void InitCrypto (bool precomputation);
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@ -2,6 +2,7 @@
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#include <openssl/sha.h>
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#include <openssl/hmac.h>
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#include <stdlib.h>
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#include <vector>
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#include "Log.h"
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#include "I2PEndian.h"
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#include "Crypto.h"
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@ -50,11 +51,11 @@ namespace transport
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m_Server.GetService ().post (std::bind (&NTCP2Session::Terminate, shared_from_this ()));
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}
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bool NTCP2Session::KeyDerivationFunction1 (const uint8_t * rs, const uint8_t * pub, uint8_t * derived)
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void NTCP2Session::KeyDerivationFunction1 (const uint8_t * rs, const uint8_t * pub, uint8_t * derived)
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{
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static const char protocolName[] = "Noise_XK_25519_ChaChaPoly_SHA256"; // 32 bytes
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uint8_t h[64], ck[33];
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memcpy (ck, protocolName, 32);
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uint8_t h[64];
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memcpy (m_CK, protocolName, 32);
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SHA256 ((const uint8_t *)protocolName, 32, h);
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// h = SHA256(h || rs)
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memcpy (h + 32, rs, 32);
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@ -69,14 +70,43 @@ namespace transport
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BN_CTX_free (ctx);
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// temp_key = HMAC-SHA256(ck, input_key_material)
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uint8_t tempKey[32]; unsigned int len;
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HMAC(EVP_sha256(), ck, 32, inputKeyMaterial, 32, tempKey, &len);
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// ck = HMAC-SHA256(temp_key, byte(0x01))
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HMAC(EVP_sha256(), m_CK, 32, inputKeyMaterial, 32, tempKey, &len);
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// ck = HMAC-SHA256(temp_key, byte(0x01))
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inputKeyMaterial[0] = 1;
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HMAC(EVP_sha256(), tempKey, 32, inputKeyMaterial, 1, ck, &len);
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HMAC(EVP_sha256(), tempKey, 32, inputKeyMaterial, 1, m_CK, &len);
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// derived = HMAC-SHA256(temp_key, ck || byte(0x02))
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ck[32] = 2;
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HMAC(EVP_sha256(), tempKey, 32, ck, 33, derived, &len);
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return true;
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m_CK[32] = 2;
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HMAC(EVP_sha256(), tempKey, 32, m_CK, 33, derived, &len);
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}
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void NTCP2Session::KeyDerivationFunction2 (const uint8_t * pub, const uint8_t * sessionRequest, size_t sessionRequestLen, uint8_t * derived)
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{
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uint8_t h[64];
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memcpy (h, m_H, 32);
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memcpy (h + 32, sessionRequest + 32, 32); // encrypted payload
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SHA256 (h, 64, m_H);
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int paddingLength = sessionRequestLen - 64;
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if (paddingLength > 0)
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{
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std::vector<uint8_t> h1(paddingLength + 32);
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memcpy (h1.data (), m_H, 32);
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memcpy (h1.data () + 32, sessionRequest + 64, paddingLength);
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SHA256 (h1.data (), paddingLength + 32, m_H);
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}
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// x25519 between remote pub and priv
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uint8_t inputKeyMaterial[32];
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BN_CTX * ctx = BN_CTX_new ();
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i2p::crypto::GetEd25519 ()->ScalarMul (pub, m_ExpandedPrivateKey, inputKeyMaterial, ctx);
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BN_CTX_free (ctx);
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// temp_key = HMAC-SHA256(ck, input_key_material)
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uint8_t tempKey[32]; unsigned int len;
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HMAC(EVP_sha256(), m_CK, 32, inputKeyMaterial, 32, tempKey, &len);
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// ck = HMAC-SHA256(temp_key, byte(0x01))
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inputKeyMaterial[0] = 1;
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HMAC(EVP_sha256(), tempKey, 32, inputKeyMaterial, 1, m_CK, &len);
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// derived = HMAC-SHA256(temp_key, ck || byte(0x02))
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m_CK[32] = 2;
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HMAC(EVP_sha256(), tempKey, 32, m_CK, 33, derived, &len);
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}
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void NTCP2Session::CreateEphemeralKey (uint8_t * pub)
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@ -93,7 +123,8 @@ namespace transport
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{
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// create buffer and fill padding
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auto paddingLength = rand () % (287 - 64); // message length doesn't exceed 287 bytes
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m_SessionRequestBuffer = new uint8_t[paddingLength + 64];
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m_SessionRequestBufferLen = paddingLength + 64;
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m_SessionRequestBuffer = new uint8_t[m_SessionRequestBufferLen];
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RAND_bytes (m_SessionRequestBuffer + 64, paddingLength);
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// generate key pair (X)
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uint8_t x[32];
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@ -119,9 +150,9 @@ namespace transport
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// sign and encrypt options, use m_H as AD
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uint8_t nonce[12];
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memset (nonce, 0, 12); // set nonce to zero
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i2p::crypto::AEADChaCha20Poly1305Encrypt (options, 16, m_H, 32, key, nonce, m_SessionRequestBuffer + 32, 32);
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i2p::crypto::AEADChaCha20Poly1305 (options, 16, m_H, 32, key, nonce, m_SessionRequestBuffer + 32, 32, true); // encrypt
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// send message
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boost::asio::async_write (m_Socket, boost::asio::buffer (m_SessionRequestBuffer, paddingLength + 64), boost::asio::transfer_all (),
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boost::asio::async_write (m_Socket, boost::asio::buffer (m_SessionRequestBuffer, m_SessionRequestBufferLen), boost::asio::transfer_all (),
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std::bind(&NTCP2Session::HandleSessionRequestSent, shared_from_this (), std::placeholders::_1, std::placeholders::_2));
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}
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@ -151,13 +182,29 @@ namespace transport
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}
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else
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{
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LogPrint (eLogWarning, "NTCP2: SessionCreated received ", bytes_transferred);
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LogPrint (eLogInfo, "NTCP2: SessionCreated received ", bytes_transferred);
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uint8_t y[32];
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// decrypt Y
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i2p::crypto::CBCDecryption decryption;
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decryption.SetKey (GetRemoteIdentity ()->GetIdentHash ());
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decryption.SetIV (m_IV);
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decryption.Decrypt (m_SessionCreatedBuffer, 32, y);
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// decryption key for next block
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uint8_t key[32];
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KeyDerivationFunction2 (y, m_SessionRequestBuffer, m_SessionRequestBufferLen, key);
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// decrypt and verify MAC
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uint8_t payload[8];
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uint8_t nonce[12];
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memset (nonce, 0, 12); // set nonce to zero
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if (i2p::crypto::AEADChaCha20Poly1305 (m_SessionCreatedBuffer + 32, 8, m_H, 32, key, nonce, payload, 8, false)) // decrypt
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{
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// TODO:
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}
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else
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{
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LogPrint (eLogWarning, "NTCP2: SessionCreated MAC verification failed ");
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Terminate ();
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}
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}
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}
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@ -29,7 +29,9 @@ namespace transport
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private:
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bool KeyDerivationFunction1 (const uint8_t * rs, const uint8_t * pub, uint8_t * derived); // for SessionRequest
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void KeyDerivationFunction1 (const uint8_t * rs, const uint8_t * pub, uint8_t * derived); // for SessionRequest
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void KeyDerivationFunction2 (const uint8_t * pub, const uint8_t * sessionRequest, size_t sessionRequestLen, uint8_t * derived); // for SessionCreate
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void CreateEphemeralKey (uint8_t * pub);
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void SendSessionRequest ();
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@ -43,8 +45,9 @@ namespace transport
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bool m_IsEstablished, m_IsTerminated;
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uint8_t m_ExpandedPrivateKey[64]; // x25519 ephemeral key
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uint8_t m_RemoteStaticKey[32], m_IV[16], m_H[32];
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uint8_t m_RemoteStaticKey[32], m_IV[16], m_H[32] /*h*/, m_CK[33] /*ck*/;
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uint8_t * m_SessionRequestBuffer, * m_SessionCreatedBuffer;
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size_t m_SessionRequestBufferLen;
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};
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class NTCP2Server
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int main ()
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{
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uint8_t buf[114+16];
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i2p::crypto::AEADChaCha20Poly1305Encrypt ((uint8_t *)text, 114, ad, 12, key, nonce, buf, 114 + 16);
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// test encryption
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i2p::crypto::AEADChaCha20Poly1305 ((uint8_t *)text, 114, ad, 12, key, nonce, buf, 114 + 16, true);
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assert (memcmp (buf, encrypted, 114) == 0);
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assert(memcmp (buf + 114, tag, 16) == 0);
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assert (memcmp (buf + 114, tag, 16) == 0);
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// test decryption
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uint8_t buf1[114];
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assert (i2p::crypto::AEADChaCha20Poly1305 (buf, 114, ad, 12, key, nonce, buf1, 114, false));
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assert (memcmp (buf1, text, 114) == 0);
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}
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