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https://github.com/irungentoo/toxcore.git
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328 lines
11 KiB
C
328 lines
11 KiB
C
/* SPDX-License-Identifier: GPL-3.0-or-later
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* Copyright © 2016-2018 The TokTok team.
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* Copyright © 2013 Tox project.
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*/
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/*
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* Batch encryption functions.
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*/
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#include "toxencryptsave.h"
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#include <sodium.h>
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#include <stdlib.h>
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#include <string.h>
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#include "../toxcore/ccompat.h"
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#include "../toxcore/crypto_core.h"
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#include "defines.h"
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static_assert(TOX_PASS_SALT_LENGTH == crypto_pwhash_scryptsalsa208sha256_SALTBYTES,
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"TOX_PASS_SALT_LENGTH is assumed to be equal to crypto_pwhash_scryptsalsa208sha256_SALTBYTES");
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static_assert(TOX_PASS_KEY_LENGTH == CRYPTO_SHARED_KEY_SIZE,
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"TOX_PASS_KEY_LENGTH is assumed to be equal to CRYPTO_SHARED_KEY_SIZE");
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static_assert(TOX_PASS_ENCRYPTION_EXTRA_LENGTH == (crypto_box_MACBYTES + crypto_box_NONCEBYTES +
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crypto_pwhash_scryptsalsa208sha256_SALTBYTES + TOX_ENC_SAVE_MAGIC_LENGTH),
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"TOX_PASS_ENCRYPTION_EXTRA_LENGTH is assumed to be equal to (crypto_box_MACBYTES + crypto_box_NONCEBYTES + crypto_pwhash_scryptsalsa208sha256_SALTBYTES + TOX_ENC_SAVE_MAGIC_LENGTH)");
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#define SET_ERROR_PARAMETER(param, x) \
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do { \
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if (param) { \
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*param = x; \
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} \
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} while (0)
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uint32_t tox_pass_salt_length(void)
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{
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return TOX_PASS_SALT_LENGTH;
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}
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uint32_t tox_pass_key_length(void)
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{
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return TOX_PASS_KEY_LENGTH;
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}
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uint32_t tox_pass_encryption_extra_length(void)
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{
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return TOX_PASS_ENCRYPTION_EXTRA_LENGTH;
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}
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struct Tox_Pass_Key {
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uint8_t salt[TOX_PASS_SALT_LENGTH];
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uint8_t key[TOX_PASS_KEY_LENGTH];
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};
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void tox_pass_key_free(Tox_Pass_Key *pass_key)
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{
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free(pass_key);
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}
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/* Clients should consider alerting their users that, unlike plain data, if even one bit
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* becomes corrupted, the data will be entirely unrecoverable.
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* Ditto if they forget their password, there is no way to recover the data.
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*/
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/* This retrieves the salt used to encrypt the given data, which can then be passed to
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* tox_pass_key_derive_with_salt to produce the same key as was previously used. Any encrpyted
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* data with this module can be used as input.
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*
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* returns true if magic number matches
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* success does not say anything about the validity of the data, only that data of
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* the appropriate size was copied
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*/
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bool tox_get_salt(const uint8_t *data, uint8_t *salt, Tox_Err_Get_Salt *error)
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{
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if (!data || !salt) {
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SET_ERROR_PARAMETER(error, TOX_ERR_GET_SALT_NULL);
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return false;
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}
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if (memcmp(data, TOX_ENC_SAVE_MAGIC_NUMBER, TOX_ENC_SAVE_MAGIC_LENGTH) != 0) {
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SET_ERROR_PARAMETER(error, TOX_ERR_GET_SALT_BAD_FORMAT);
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return false;
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}
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data += TOX_ENC_SAVE_MAGIC_LENGTH;
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memcpy(salt, data, crypto_pwhash_scryptsalsa208sha256_SALTBYTES);
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SET_ERROR_PARAMETER(error, TOX_ERR_GET_SALT_OK);
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return true;
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}
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/* Generates a secret symmetric key from the given passphrase. out_key must be at least
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* TOX_PASS_KEY_LENGTH bytes long.
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* Be sure to not compromise the key! Only keep it in memory, do not write to disk.
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* The password is zeroed after key derivation.
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* The key should only be used with the other functions in this module, as it
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* includes a salt.
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* Note that this function is not deterministic; to derive the same key from a
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* password, you also must know the random salt that was used. See below.
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*
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* returns true on success
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*/
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Tox_Pass_Key *tox_pass_key_derive(const uint8_t *passphrase, size_t pplength,
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Tox_Err_Key_Derivation *error)
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{
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uint8_t salt[crypto_pwhash_scryptsalsa208sha256_SALTBYTES];
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random_bytes(salt, sizeof(salt));
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return tox_pass_key_derive_with_salt(passphrase, pplength, salt, error);
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}
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/* Same as above, except with use the given salt for deterministic key derivation.
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* The salt must be TOX_PASS_SALT_LENGTH bytes in length.
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*/
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Tox_Pass_Key *tox_pass_key_derive_with_salt(const uint8_t *passphrase, size_t pplength,
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const uint8_t *salt, Tox_Err_Key_Derivation *error)
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{
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if (!salt || (!passphrase && pplength != 0)) {
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SET_ERROR_PARAMETER(error, TOX_ERR_KEY_DERIVATION_NULL);
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return nullptr;
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}
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uint8_t passkey[crypto_hash_sha256_BYTES];
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crypto_hash_sha256(passkey, passphrase, pplength);
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uint8_t key[CRYPTO_SHARED_KEY_SIZE];
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// Derive a key from the password
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// http://doc.libsodium.org/key_derivation/README.html
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// note that, according to the documentation, a generic pwhash interface will be created
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// once the pwhash competition (https://password-hashing.net/) is over */
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if (crypto_pwhash_scryptsalsa208sha256(
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key, sizeof(key), (char *)passkey, sizeof(passkey), salt,
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crypto_pwhash_scryptsalsa208sha256_OPSLIMIT_INTERACTIVE * 2, /* slightly stronger */
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crypto_pwhash_scryptsalsa208sha256_MEMLIMIT_INTERACTIVE) != 0) {
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/* out of memory most likely */
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SET_ERROR_PARAMETER(error, TOX_ERR_KEY_DERIVATION_FAILED);
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return nullptr;
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}
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crypto_memzero(passkey, crypto_hash_sha256_BYTES); /* wipe plaintext pw */
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Tox_Pass_Key *out_key = (Tox_Pass_Key *)calloc(1, sizeof(Tox_Pass_Key));
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if (!out_key) {
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SET_ERROR_PARAMETER(error, TOX_ERR_KEY_DERIVATION_FAILED);
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return nullptr;
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}
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memcpy(out_key->salt, salt, crypto_pwhash_scryptsalsa208sha256_SALTBYTES);
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memcpy(out_key->key, key, CRYPTO_SHARED_KEY_SIZE);
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SET_ERROR_PARAMETER(error, TOX_ERR_KEY_DERIVATION_OK);
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return out_key;
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}
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/**
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* Encrypt a plain text with a key produced by tox_pass_key_derive or tox_pass_key_derive_with_salt.
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*
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* The output array must be at least `plaintext_len + TOX_PASS_ENCRYPTION_EXTRA_LENGTH`
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* bytes long.
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*
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* @param plaintext A byte array of length `plaintext_len`.
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* @param plaintext_len The length of the plain text array. Bigger than 0.
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* @param ciphertext The cipher text array to write the encrypted data to.
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*
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* @return true on success.
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*/
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bool tox_pass_key_encrypt(const Tox_Pass_Key *key, const uint8_t *plaintext, size_t plaintext_len,
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uint8_t *ciphertext, Tox_Err_Encryption *error)
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{
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if (plaintext_len == 0 || !plaintext || !key || !ciphertext) {
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SET_ERROR_PARAMETER(error, TOX_ERR_ENCRYPTION_NULL);
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return 0;
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}
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// the output data consists of, in order:
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// salt, nonce, mac, enc_data
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// where the mac is automatically prepended by the encrypt()
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// the salt+nonce is called the prefix
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// I'm not sure what else I'm supposed to do with the salt and nonce, since we
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// need them to decrypt the data
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/* first add the magic number */
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memcpy(ciphertext, TOX_ENC_SAVE_MAGIC_NUMBER, TOX_ENC_SAVE_MAGIC_LENGTH);
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ciphertext += TOX_ENC_SAVE_MAGIC_LENGTH;
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/* then add the rest prefix */
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memcpy(ciphertext, key->salt, crypto_pwhash_scryptsalsa208sha256_SALTBYTES);
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ciphertext += crypto_pwhash_scryptsalsa208sha256_SALTBYTES;
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uint8_t nonce[crypto_box_NONCEBYTES];
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random_nonce(nonce);
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memcpy(ciphertext, nonce, crypto_box_NONCEBYTES);
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ciphertext += crypto_box_NONCEBYTES;
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/* now encrypt */
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if (encrypt_data_symmetric(key->key, nonce, plaintext, plaintext_len, ciphertext)
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!= plaintext_len + crypto_box_MACBYTES) {
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SET_ERROR_PARAMETER(error, TOX_ERR_ENCRYPTION_FAILED);
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return 0;
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}
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SET_ERROR_PARAMETER(error, TOX_ERR_ENCRYPTION_OK);
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return 1;
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}
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/* Encrypts the given data with the given passphrase. The output array must be
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* at least data_len + TOX_PASS_ENCRYPTION_EXTRA_LENGTH bytes long. This delegates
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* to tox_derive_key and tox_pass_key_encrypt.
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*
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* returns true on success
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*/
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bool tox_pass_encrypt(const uint8_t *data, size_t data_len, const uint8_t *passphrase, size_t pplength, uint8_t *out,
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Tox_Err_Encryption *error)
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{
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Tox_Err_Key_Derivation err;
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Tox_Pass_Key *key = tox_pass_key_derive(passphrase, pplength, &err);
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if (!key) {
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if (err == TOX_ERR_KEY_DERIVATION_NULL) {
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SET_ERROR_PARAMETER(error, TOX_ERR_ENCRYPTION_NULL);
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} else if (err == TOX_ERR_KEY_DERIVATION_FAILED) {
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SET_ERROR_PARAMETER(error, TOX_ERR_ENCRYPTION_KEY_DERIVATION_FAILED);
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}
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return 0;
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}
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bool result = tox_pass_key_encrypt(key, data, data_len, out, error);
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tox_pass_key_free(key);
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return result;
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}
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/* This is the inverse of tox_pass_key_encrypt, also using only keys produced by
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* tox_derive_key.
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*
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* the output data has size data_length - TOX_PASS_ENCRYPTION_EXTRA_LENGTH
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*
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* returns true on success
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*/
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bool tox_pass_key_decrypt(const Tox_Pass_Key *key, const uint8_t *data, size_t length, uint8_t *out,
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Tox_Err_Decryption *error)
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{
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if (length <= TOX_PASS_ENCRYPTION_EXTRA_LENGTH) {
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SET_ERROR_PARAMETER(error, TOX_ERR_DECRYPTION_INVALID_LENGTH);
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return 0;
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}
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if (!data || !key || !out) {
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SET_ERROR_PARAMETER(error, TOX_ERR_DECRYPTION_NULL);
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return 0;
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}
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if (memcmp(data, TOX_ENC_SAVE_MAGIC_NUMBER, TOX_ENC_SAVE_MAGIC_LENGTH) != 0) {
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SET_ERROR_PARAMETER(error, TOX_ERR_DECRYPTION_BAD_FORMAT);
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return 0;
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}
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data += TOX_ENC_SAVE_MAGIC_LENGTH;
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data += crypto_pwhash_scryptsalsa208sha256_SALTBYTES; // salt only affects key derivation
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size_t decrypt_length = length - TOX_PASS_ENCRYPTION_EXTRA_LENGTH;
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uint8_t nonce[crypto_box_NONCEBYTES];
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memcpy(nonce, data, crypto_box_NONCEBYTES);
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data += crypto_box_NONCEBYTES;
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/* decrypt the data */
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if (decrypt_data_symmetric(key->key, nonce, data, decrypt_length + crypto_box_MACBYTES, out)
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!= decrypt_length) {
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SET_ERROR_PARAMETER(error, TOX_ERR_DECRYPTION_FAILED);
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return 0;
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}
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SET_ERROR_PARAMETER(error, TOX_ERR_DECRYPTION_OK);
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return 1;
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}
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/* Decrypts the given data with the given passphrase. The output array must be
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* at least data_len - TOX_PASS_ENCRYPTION_EXTRA_LENGTH bytes long. This delegates
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* to tox_pass_key_decrypt.
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*
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* the output data has size data_length - TOX_PASS_ENCRYPTION_EXTRA_LENGTH
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*
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* returns true on success
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*/
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bool tox_pass_decrypt(const uint8_t *data, size_t length, const uint8_t *passphrase, size_t pplength, uint8_t *out,
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Tox_Err_Decryption *error)
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{
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if (length <= TOX_PASS_ENCRYPTION_EXTRA_LENGTH) {
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SET_ERROR_PARAMETER(error, TOX_ERR_DECRYPTION_INVALID_LENGTH);
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return 0;
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}
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if (!data || !passphrase || !out) {
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SET_ERROR_PARAMETER(error, TOX_ERR_DECRYPTION_NULL);
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return 0;
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}
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if (memcmp(data, TOX_ENC_SAVE_MAGIC_NUMBER, TOX_ENC_SAVE_MAGIC_LENGTH) != 0) {
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SET_ERROR_PARAMETER(error, TOX_ERR_DECRYPTION_BAD_FORMAT);
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return 0;
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}
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uint8_t salt[crypto_pwhash_scryptsalsa208sha256_SALTBYTES];
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memcpy(salt, data + TOX_ENC_SAVE_MAGIC_LENGTH, crypto_pwhash_scryptsalsa208sha256_SALTBYTES);
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/* derive the key */
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Tox_Pass_Key *key = tox_pass_key_derive_with_salt(passphrase, pplength, salt, nullptr);
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if (!key) {
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/* out of memory most likely */
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SET_ERROR_PARAMETER(error, TOX_ERR_DECRYPTION_KEY_DERIVATION_FAILED);
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return 0;
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}
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bool result = tox_pass_key_decrypt(key, data, length, out, error);
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tox_pass_key_free(key);
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return result;
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}
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/* Determines whether or not the given data is encrypted (by checking the magic number)
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*/
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bool tox_is_data_encrypted(const uint8_t *data)
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{
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if (memcmp(data, TOX_ENC_SAVE_MAGIC_NUMBER, TOX_ENC_SAVE_MAGIC_LENGTH) == 0) {
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return 1;
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}
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return 0;
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}
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