mirror of
https://github.com/zerotier/ZeroTierOne.git
synced 2025-04-26 08:57:26 +02:00
636 lines
17 KiB
C++
636 lines
17 KiB
C++
/*
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* Copyright (c)2013-2020 ZeroTier, Inc.
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*
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* Use of this software is governed by the Business Source License included
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* in the LICENSE.TXT file in the project's root directory.
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*
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* Change Date: 2024-01-01
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*
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* On the date above, in accordance with the Business Source License, use
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* of this software will be governed by version 2.0 of the Apache License.
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*/
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/****/
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#include "Constants.hpp"
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#include "Identity.hpp"
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#include "SHA512.hpp"
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#include "Salsa20.hpp"
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#include "AES.hpp"
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#include "Utils.hpp"
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#include <cstring>
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#include <cstdint>
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#include <algorithm>
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namespace ZeroTier {
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namespace {
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// --------------------------------------------------------------------------------------------------------------------
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// This is the memory-intensive hash function used to compute v0 identities
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// from v0 public keys.
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#define ZT_V0_IDENTITY_GEN_MEMORY 2097152
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static void _computeMemoryHardHash(const void *const publicKey,unsigned int publicKeyBytes,void *const digest,void *const genmem) noexcept
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{
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// Digest publicKey[] to obtain initial digest
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SHA512(digest,publicKey,publicKeyBytes);
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// Initialize genmem[] using Salsa20 in a CBC-like configuration since
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// ordinary Salsa20 is randomly seek-able. This is good for a cipher
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// but is not what we want for sequential memory-hardness.
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memset(genmem,0,ZT_V0_IDENTITY_GEN_MEMORY);
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Salsa20 s20(digest,(char *)digest + 32);
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s20.crypt20((char *)genmem,(char *)genmem,64);
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for(unsigned long i=64;i<ZT_V0_IDENTITY_GEN_MEMORY;i+=64) {
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unsigned long k = i - 64;
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*((uint64_t *)((char *)genmem + i)) = *((uint64_t *)((char *)genmem + k));
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*((uint64_t *)((char *)genmem + i + 8)) = *((uint64_t *)((char *)genmem + k + 8));
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*((uint64_t *)((char *)genmem + i + 16)) = *((uint64_t *)((char *)genmem + k + 16));
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*((uint64_t *)((char *)genmem + i + 24)) = *((uint64_t *)((char *)genmem + k + 24));
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*((uint64_t *)((char *)genmem + i + 32)) = *((uint64_t *)((char *)genmem + k + 32));
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*((uint64_t *)((char *)genmem + i + 40)) = *((uint64_t *)((char *)genmem + k + 40));
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*((uint64_t *)((char *)genmem + i + 48)) = *((uint64_t *)((char *)genmem + k + 48));
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*((uint64_t *)((char *)genmem + i + 56)) = *((uint64_t *)((char *)genmem + k + 56));
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s20.crypt20((char *)genmem + i,(char *)genmem + i,64);
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}
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// Render final digest using genmem as a lookup table
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for(unsigned long i=0;i<(ZT_V0_IDENTITY_GEN_MEMORY / sizeof(uint64_t));) {
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unsigned long idx1 = (unsigned long)(Utils::ntoh(((uint64_t *)genmem)[i++]) % (64 / sizeof(uint64_t)));
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unsigned long idx2 = (unsigned long)(Utils::ntoh(((uint64_t *)genmem)[i++]) % (ZT_V0_IDENTITY_GEN_MEMORY / sizeof(uint64_t)));
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uint64_t tmp = ((uint64_t *)genmem)[idx2];
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((uint64_t *)genmem)[idx2] = ((uint64_t *)digest)[idx1];
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((uint64_t *)digest)[idx1] = tmp;
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s20.crypt20(digest,digest,64);
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}
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}
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struct _v0_identity_generate_cond
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{
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ZT_ALWAYS_INLINE _v0_identity_generate_cond() noexcept {}
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ZT_ALWAYS_INLINE _v0_identity_generate_cond(unsigned char *sb,char *gm) noexcept : digest(sb),genmem(gm) {}
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ZT_ALWAYS_INLINE bool operator()(const uint8_t pub[ZT_C25519_PUBLIC_KEY_LEN]) const noexcept
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{
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_computeMemoryHardHash(pub,ZT_C25519_PUBLIC_KEY_LEN,digest,genmem);
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return (digest[0] < 17);
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}
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unsigned char *digest;
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char *genmem;
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};
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// --------------------------------------------------------------------------------------------------------------------
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} // anonymous namespace
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const Identity Identity::NIL;
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bool Identity::generate(const Type t)
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{
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uint8_t digest[64];
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_type = t;
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_hasPrivate = true;
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switch(t) {
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case C25519: {
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char *const genmem = new char[ZT_V0_IDENTITY_GEN_MEMORY];
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do {
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C25519::generateSatisfying(_v0_identity_generate_cond(digest,genmem),_pub.c25519,_priv.c25519);
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_address.setTo(digest + 59); // last 5 bytes are address
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} while (_address.isReserved());
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delete[] genmem;
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_computeHash();
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} break;
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case P384: {
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AES c;
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do {
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C25519::generate(_pub.c25519,_priv.c25519);
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ECC384GenerateKey(_pub.p384,_priv.p384);
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SHA384(digest,&_pub,sizeof(_pub));
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c.init(digest);
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c.encrypt(digest,digest);
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c.encrypt(digest + 16,digest + 16);
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c.encrypt(digest + 32,digest + 32);
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if (digest[47] != 0)
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continue;
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_address.setTo(digest);
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} while (_address.isReserved());
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_hash.set(digest); // P384 uses the same hash for hash() and address generation
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} break;
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default:
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return false;
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}
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return true;
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}
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bool Identity::locallyValidate() const
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{
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if ((_address.isReserved())||(!_address))
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return false;
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switch (_type) {
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case C25519:
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try {
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uint8_t digest[64];
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char *genmem = new char[ZT_V0_IDENTITY_GEN_MEMORY];
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_computeMemoryHardHash(_pub.c25519,ZT_C25519_PUBLIC_KEY_LEN,digest,genmem);
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delete [] genmem;
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return ((_address == Address(digest + 59))&&(!_address.isReserved())&&(digest[0] < 17));
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} catch ( ... ) {}
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return false;
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case P384:
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return ((_hash[47] == 0)&&(Address(_hash.data()) == _address));
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}
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return false;
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}
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void Identity::hashWithPrivate(uint8_t h[ZT_IDENTITY_HASH_SIZE]) const
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{
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if (_hasPrivate) {
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switch (_type) {
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case C25519:
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SHA384(h,_pub.c25519,ZT_C25519_PUBLIC_KEY_LEN,_priv.c25519,ZT_C25519_PRIVATE_KEY_LEN);
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break;
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case P384:
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SHA384(h,&_pub,sizeof(_pub),&_priv,sizeof(_priv));
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break;
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}
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return;
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}
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memset(h,0,48);
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}
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unsigned int Identity::sign(const void *data,unsigned int len,void *sig,unsigned int siglen) const
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{
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if (_hasPrivate) {
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switch(_type) {
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case C25519:
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if (siglen >= ZT_C25519_SIGNATURE_LEN) {
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C25519::sign(_priv.c25519,_pub.c25519,data,len,sig);
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return ZT_C25519_SIGNATURE_LEN;
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}
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case P384:
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if (siglen >= ZT_ECC384_SIGNATURE_SIZE) {
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// For P384 we sign SHA384(data | public keys) for added defense against any attack
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// that attempted to decouple the two keys in some way. Otherwise this has no impact
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// on the security of the signature (unless SHA384 had some serious flaw).
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uint8_t h[48];
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SHA384(h,data,len,&_pub,ZT_IDENTITY_P384_COMPOUND_PUBLIC_KEY_SIZE);
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ECC384ECDSASign(_priv.p384,h,(uint8_t *)sig);
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return ZT_ECC384_SIGNATURE_SIZE;
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}
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}
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}
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return 0;
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}
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bool Identity::verify(const void *data,unsigned int len,const void *sig,unsigned int siglen) const
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{
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switch(_type) {
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case C25519:
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return C25519::verify(_pub.c25519,data,len,sig,siglen);
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case P384:
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if (siglen == ZT_ECC384_SIGNATURE_SIZE) {
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uint8_t h[48];
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SHA384(h,data,len,&_pub,ZT_IDENTITY_P384_COMPOUND_PUBLIC_KEY_SIZE);
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return ECC384ECDSAVerify(_pub.p384,h,(const uint8_t *)sig);
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}
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break;
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}
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return false;
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}
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bool Identity::agree(const Identity &id,uint8_t key[ZT_PEER_SECRET_KEY_LENGTH]) const
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{
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uint8_t rawkey[128];
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uint8_t h[64];
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if (_hasPrivate) {
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if (_type == C25519) {
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if ((id._type == C25519)||(id._type == P384)) {
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// If we are a C25519 key we can agree with another C25519 key or with only the
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// C25519 portion of a type 1 P-384 key.
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C25519::agree(_priv.c25519,id._pub.c25519,rawkey);
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SHA512(h,rawkey,ZT_C25519_SHARED_KEY_LEN);
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memcpy(key,h,ZT_PEER_SECRET_KEY_LENGTH);
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return true;
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}
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} else if (_type == P384) {
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if (id._type == P384) {
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// For another P384 identity we execute DH agreement with BOTH keys and then
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// hash the results together. For those (cough FIPS cough) who only consider
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// P384 to be kosher, the C25519 secret can be considered a "salt"
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// or something. For those who don't trust P384 this means the privacy of
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// your traffic is also protected by C25519.
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C25519::agree(_priv.c25519,id._pub.c25519,rawkey);
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ECC384ECDH(id._pub.p384,_priv.p384,rawkey + ZT_C25519_SHARED_KEY_LEN);
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SHA384(h,rawkey,ZT_C25519_SHARED_KEY_LEN + ZT_ECC384_SHARED_SECRET_SIZE);
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memcpy(key,h,ZT_PEER_SECRET_KEY_LENGTH);
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return true;
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} else if (id._type == C25519) {
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// If the other identity is a C25519 identity we can agree using only that type.
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C25519::agree(_priv.c25519,id._pub.c25519,rawkey);
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SHA512(h,rawkey,ZT_C25519_SHARED_KEY_LEN);
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memcpy(key,h,ZT_PEER_SECRET_KEY_LENGTH);
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return true;
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}
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}
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}
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return false;
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}
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char *Identity::toString(bool includePrivate,char buf[ZT_IDENTITY_STRING_BUFFER_LENGTH]) const
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{
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char *p = buf;
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_address.toString(p);
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p += 10;
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*(p++) = ':';
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switch(_type) {
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case C25519: {
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*(p++) = '0';
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*(p++) = ':';
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Utils::hex(_pub.c25519,ZT_C25519_PUBLIC_KEY_LEN,p);
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p += ZT_C25519_PUBLIC_KEY_LEN * 2;
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if ((_hasPrivate)&&(includePrivate)) {
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*(p++) = ':';
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Utils::hex(_priv.c25519,ZT_C25519_PRIVATE_KEY_LEN,p);
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p += ZT_C25519_PRIVATE_KEY_LEN * 2;
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}
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*p = (char)0;
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return buf;
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}
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case P384: {
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*(p++) = '1';
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*(p++) = ':';
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int el = Utils::b32e((const uint8_t *)(&_pub),sizeof(_pub),p,(int)(ZT_IDENTITY_STRING_BUFFER_LENGTH - (uintptr_t)(p - buf)));
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if (el <= 0) return nullptr;
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p += el;
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if ((_hasPrivate)&&(includePrivate)) {
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*(p++) = ':';
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el = Utils::b32e((const uint8_t *)(&_priv),sizeof(_priv),p,(int)(ZT_IDENTITY_STRING_BUFFER_LENGTH - (uintptr_t)(p - buf)));
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if (el <= 0) return nullptr;
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p += el;
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}
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*p = (char)0;
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return buf;
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}
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}
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return nullptr;
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}
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bool Identity::fromString(const char *str)
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{
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_hash.zero();
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_hasPrivate = false;
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if (!str) {
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_address.zero();
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return false;
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}
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char tmp[ZT_IDENTITY_STRING_BUFFER_LENGTH];
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if (!Utils::scopy(tmp,sizeof(tmp),str)) {
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_address.zero();
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return false;
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}
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int fno = 0;
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char *saveptr = (char *)0;
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for(char *f=Utils::stok(tmp,":",&saveptr);((f)&&(fno < 4));f=Utils::stok((char *)0,":",&saveptr)) {
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switch(fno++) {
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case 0:
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_address = Address(Utils::hexStrToU64(f));
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if (_address.isReserved()) {
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_address.zero();
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return false;
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}
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break;
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case 1:
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if ((f[0] == '0')&&(!f[1])) {
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_type = C25519;
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} else if ((f[0] == '1')&&(!f[1])) {
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_type = P384;
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} else {
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_address.zero();
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return false;
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}
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break;
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case 2:
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switch(_type) {
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case C25519:
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if (Utils::unhex(f,strlen(f),_pub.c25519,ZT_C25519_PUBLIC_KEY_LEN) != ZT_C25519_PUBLIC_KEY_LEN) {
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_address.zero();
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return false;
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}
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break;
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case P384:
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if (Utils::b32d(f,(uint8_t *)(&_pub),sizeof(_pub)) != sizeof(_pub)) {
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_address.zero();
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return false;
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}
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break;
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}
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break;
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case 3:
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if (strlen(f) > 1) {
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switch(_type) {
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case C25519:
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if (Utils::unhex(f,strlen(f),_priv.c25519,ZT_C25519_PRIVATE_KEY_LEN) != ZT_C25519_PRIVATE_KEY_LEN) {
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_address.zero();
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return false;
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} else {
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_hasPrivate = true;
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}
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break;
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case P384:
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if (Utils::b32d(f,(uint8_t *)(&_priv),sizeof(_priv)) != sizeof(_priv)) {
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_address.zero();
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return false;
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} else {
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_hasPrivate = true;
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}
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break;
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}
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break;
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}
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}
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}
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if (fno < 3) {
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_address.zero();
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return false;
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}
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_computeHash();
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return true;
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}
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int Identity::marshal(uint8_t data[ZT_IDENTITY_MARSHAL_SIZE_MAX],const bool includePrivate) const noexcept
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{
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_address.copyTo(data);
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switch(_type) {
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case C25519:
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data[ZT_ADDRESS_LENGTH] = (uint8_t)C25519;
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memcpy(data + ZT_ADDRESS_LENGTH + 1,_pub.c25519,ZT_C25519_PUBLIC_KEY_LEN);
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if ((includePrivate)&&(_hasPrivate)) {
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data[ZT_ADDRESS_LENGTH + 1 + ZT_C25519_PUBLIC_KEY_LEN] = ZT_C25519_PRIVATE_KEY_LEN;
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memcpy(data + ZT_ADDRESS_LENGTH + 1 + ZT_C25519_PUBLIC_KEY_LEN + 1,_priv.c25519,ZT_C25519_PRIVATE_KEY_LEN);
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return ZT_ADDRESS_LENGTH + 1 + ZT_C25519_PUBLIC_KEY_LEN + 1 + ZT_C25519_PRIVATE_KEY_LEN;
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} else {
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data[ZT_ADDRESS_LENGTH + 1 + ZT_C25519_PUBLIC_KEY_LEN] = 0;
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return ZT_ADDRESS_LENGTH + 1 + ZT_C25519_PUBLIC_KEY_LEN + 1;
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}
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case P384:
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data[ZT_ADDRESS_LENGTH] = (uint8_t)P384;
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memcpy(data + ZT_ADDRESS_LENGTH + 1,&_pub,ZT_IDENTITY_P384_COMPOUND_PUBLIC_KEY_SIZE);
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if ((includePrivate)&&(_hasPrivate)) {
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data[ZT_ADDRESS_LENGTH + 1 + ZT_IDENTITY_P384_COMPOUND_PUBLIC_KEY_SIZE] = ZT_IDENTITY_P384_COMPOUND_PRIVATE_KEY_SIZE;
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memcpy(data + ZT_ADDRESS_LENGTH + 1 + ZT_IDENTITY_P384_COMPOUND_PUBLIC_KEY_SIZE + 1,&_priv,ZT_IDENTITY_P384_COMPOUND_PRIVATE_KEY_SIZE);
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return ZT_ADDRESS_LENGTH + 1 + ZT_IDENTITY_P384_COMPOUND_PUBLIC_KEY_SIZE + 1 + ZT_IDENTITY_P384_COMPOUND_PRIVATE_KEY_SIZE;
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} else {
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data[ZT_ADDRESS_LENGTH + 1 + ZT_IDENTITY_P384_COMPOUND_PUBLIC_KEY_SIZE] = 0;
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return ZT_ADDRESS_LENGTH + 1 + ZT_IDENTITY_P384_COMPOUND_PUBLIC_KEY_SIZE + 1;
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}
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}
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return -1;
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}
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int Identity::unmarshal(const uint8_t *data,const int len) noexcept
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{
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_hash.zero();
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_hasPrivate = false;
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if (len < (ZT_ADDRESS_LENGTH + 1))
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return -1;
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unsigned int privlen;
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switch((_type = (Type)data[ZT_ADDRESS_LENGTH])) {
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case C25519:
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if (len < (ZT_ADDRESS_LENGTH + 1 + ZT_C25519_PUBLIC_KEY_LEN + 1))
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return -1;
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memcpy(_pub.c25519,data + ZT_ADDRESS_LENGTH + 1,ZT_C25519_PUBLIC_KEY_LEN);
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privlen = data[ZT_ADDRESS_LENGTH + 1 + ZT_C25519_PUBLIC_KEY_LEN];
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if (privlen == ZT_C25519_PRIVATE_KEY_LEN) {
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if (len < (ZT_ADDRESS_LENGTH + 1 + ZT_C25519_PUBLIC_KEY_LEN + 1 + ZT_C25519_PRIVATE_KEY_LEN))
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return -1;
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_hasPrivate = true;
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memcpy(_priv.c25519,data + ZT_ADDRESS_LENGTH + 1 + ZT_C25519_PUBLIC_KEY_LEN + 1,ZT_C25519_PRIVATE_KEY_LEN);
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_computeHash();
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return ZT_ADDRESS_LENGTH + 1 + ZT_C25519_PUBLIC_KEY_LEN + 1 + ZT_C25519_PRIVATE_KEY_LEN;
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} else if (privlen == 0) {
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_hasPrivate = false;
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_computeHash();
|
|
return ZT_ADDRESS_LENGTH + 1 + ZT_C25519_PUBLIC_KEY_LEN + 1;
|
|
}
|
|
break;
|
|
|
|
case P384:
|
|
if (len < (ZT_ADDRESS_LENGTH + 1 + ZT_IDENTITY_P384_COMPOUND_PUBLIC_KEY_SIZE + 1))
|
|
return -1;
|
|
|
|
memcpy(&_pub,data + ZT_ADDRESS_LENGTH + 1,ZT_IDENTITY_P384_COMPOUND_PUBLIC_KEY_SIZE);
|
|
|
|
privlen = data[ZT_ADDRESS_LENGTH + 1 + ZT_IDENTITY_P384_COMPOUND_PUBLIC_KEY_SIZE];
|
|
if (privlen == ZT_IDENTITY_P384_COMPOUND_PRIVATE_KEY_SIZE) {
|
|
if (len < (ZT_ADDRESS_LENGTH + 1 + ZT_IDENTITY_P384_COMPOUND_PUBLIC_KEY_SIZE + 1 + ZT_IDENTITY_P384_COMPOUND_PRIVATE_KEY_SIZE))
|
|
return -1;
|
|
|
|
_hasPrivate = true;
|
|
memcpy(&_priv,data + ZT_ADDRESS_LENGTH + 1 + ZT_IDENTITY_P384_COMPOUND_PUBLIC_KEY_SIZE + 1,ZT_IDENTITY_P384_COMPOUND_PRIVATE_KEY_SIZE);
|
|
_computeHash();
|
|
if (!this->locallyValidate()) // for P384 we do this always
|
|
return -1;
|
|
|
|
return ZT_ADDRESS_LENGTH + 1 + ZT_IDENTITY_P384_COMPOUND_PUBLIC_KEY_SIZE + 1 + ZT_IDENTITY_P384_COMPOUND_PRIVATE_KEY_SIZE;
|
|
} else if (privlen == 0) {
|
|
_hasPrivate = false;
|
|
|
|
_computeHash();
|
|
if (!this->locallyValidate()) // for P384 we do this always
|
|
return -1;
|
|
|
|
return ZT_ADDRESS_LENGTH + 1 + ZT_IDENTITY_P384_COMPOUND_PUBLIC_KEY_SIZE + 1;
|
|
}
|
|
break;
|
|
|
|
}
|
|
|
|
return -1;
|
|
}
|
|
|
|
void Identity::_computeHash()
|
|
{
|
|
switch(_type) {
|
|
default:
|
|
_hash.zero();
|
|
break;
|
|
|
|
case C25519:
|
|
SHA384(_hash.data(),_pub.c25519,ZT_C25519_PUBLIC_KEY_LEN);
|
|
break;
|
|
|
|
case P384:
|
|
if (!_hash) {
|
|
uint8_t *const h = _hash.data();
|
|
SHA384(h,&_pub,sizeof(_pub));
|
|
AES c(h);
|
|
c.encrypt(h,h);
|
|
c.encrypt(h + 16,h + 16);
|
|
c.encrypt(h + 32,h + 32);
|
|
}
|
|
break;
|
|
}
|
|
}
|
|
|
|
} // namespace ZeroTier
|
|
|
|
extern "C" {
|
|
|
|
ZT_Identity *ZT_Identity_new(enum ZT_Identity_Type type)
|
|
{
|
|
if ((type != ZT_IDENTITY_TYPE_C25519)&&(type != ZT_IDENTITY_TYPE_P384))
|
|
return nullptr;
|
|
try {
|
|
ZeroTier::Identity *const id = new ZeroTier::Identity();
|
|
id->generate((ZeroTier::Identity::Type)type);
|
|
return reinterpret_cast<ZT_Identity *>(id);
|
|
} catch ( ... ) {
|
|
return nullptr;
|
|
}
|
|
}
|
|
|
|
ZT_Identity *ZT_Identity_fromString(const char *idStr)
|
|
{
|
|
if (!idStr)
|
|
return nullptr;
|
|
try {
|
|
ZeroTier::Identity *const id = new ZeroTier::Identity();
|
|
if (!id->fromString(idStr)) {
|
|
delete id;
|
|
return nullptr;
|
|
}
|
|
return reinterpret_cast<ZT_Identity *>(id);
|
|
} catch ( ... ) {
|
|
return nullptr;
|
|
}
|
|
}
|
|
|
|
int ZT_Identity_validate(const ZT_Identity *id)
|
|
{
|
|
if (!id)
|
|
return 0;
|
|
return reinterpret_cast<const ZeroTier::Identity *>(id)->locallyValidate() ? 1 : 0;
|
|
}
|
|
|
|
unsigned int ZT_Identity_sign(const ZT_Identity *id,const void *data,unsigned int len,void *signature,unsigned int signatureBufferLength)
|
|
{
|
|
if (!id)
|
|
return 0;
|
|
if (signatureBufferLength < ZT_SIGNATURE_BUFFER_SIZE)
|
|
return 0;
|
|
return reinterpret_cast<const ZeroTier::Identity *>(id)->sign(data,len,signature,signatureBufferLength);
|
|
}
|
|
|
|
int ZT_Identity_verify(const ZT_Identity *id,const void *data,unsigned int len,const void *signature,unsigned int sigLen)
|
|
{
|
|
if ((!id)||(!signature)||(!sigLen))
|
|
return 0;
|
|
return reinterpret_cast<const ZeroTier::Identity *>(id)->verify(data,len,signature,sigLen) ? 1 : 0;
|
|
}
|
|
|
|
enum ZT_Identity_Type ZT_Identity_type(const ZT_Identity *id)
|
|
{
|
|
if (!id)
|
|
return (ZT_Identity_Type)0;
|
|
return (enum ZT_Identity_Type)reinterpret_cast<const ZeroTier::Identity *>(id)->type();
|
|
}
|
|
|
|
char *ZT_Identity_toString(const ZT_Identity *id,char *buf,int capacity,int includePrivate)
|
|
{
|
|
if ((!id)||(!buf)||(capacity < ZT_IDENTITY_STRING_BUFFER_LENGTH))
|
|
return nullptr;
|
|
reinterpret_cast<const ZeroTier::Identity *>(id)->toString(includePrivate != 0,buf);
|
|
return buf;
|
|
}
|
|
|
|
int ZT_Identity_hasPrivate(const ZT_Identity *id)
|
|
{
|
|
if (!id)
|
|
return 0;
|
|
return reinterpret_cast<const ZeroTier::Identity *>(id)->hasPrivate() ? 1 : 0;
|
|
}
|
|
|
|
uint64_t ZT_Identity_address(const ZT_Identity *id)
|
|
{
|
|
if (!id)
|
|
return 0;
|
|
return reinterpret_cast<const ZeroTier::Identity *>(id)->address().toInt();
|
|
}
|
|
|
|
void ZT_Identity_hash(const ZT_Identity *id,uint8_t h[48],int includePrivate)
|
|
{
|
|
if (includePrivate)
|
|
reinterpret_cast<const ZeroTier::Identity *>(id)->hashWithPrivate(h);
|
|
else memcpy(h,reinterpret_cast<const ZeroTier::Identity *>(id)->hash().data(),ZT_IDENTITY_HASH_SIZE);
|
|
}
|
|
|
|
ZT_SDK_API void ZT_Identity_delete(ZT_Identity *id)
|
|
{
|
|
if (id)
|
|
delete reinterpret_cast<ZeroTier::Identity *>(id);
|
|
}
|
|
|
|
}
|