Mirror of BoringSSL (grpc依赖)
https://boringssl.googlesource.com/boringssl
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463 lines
13 KiB
463 lines
13 KiB
/* Copyright (C) 1995-1998 Eric Young (eay@cryptsoft.com) |
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* All rights reserved. |
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* |
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* This package is an SSL implementation written |
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* by Eric Young (eay@cryptsoft.com). |
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* The implementation was written so as to conform with Netscapes SSL. |
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* |
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* This library is free for commercial and non-commercial use as long as |
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* the following conditions are aheared to. The following conditions |
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* apply to all code found in this distribution, be it the RC4, RSA, |
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* lhash, DES, etc., code; not just the SSL code. The SSL documentation |
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* included with this distribution is covered by the same copyright terms |
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* except that the holder is Tim Hudson (tjh@cryptsoft.com). |
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* |
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* Copyright remains Eric Young's, and as such any Copyright notices in |
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* the code are not to be removed. |
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* If this package is used in a product, Eric Young should be given attribution |
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* as the author of the parts of the library used. |
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* This can be in the form of a textual message at program startup or |
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* in documentation (online or textual) provided with the package. |
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* |
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* Redistribution and use in source and binary forms, with or without |
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* modification, are permitted provided that the following conditions |
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* are met: |
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* 1. Redistributions of source code must retain the copyright |
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* notice, this list of conditions and the following disclaimer. |
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* 2. Redistributions in binary form must reproduce the above copyright |
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* notice, this list of conditions and the following disclaimer in the |
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* documentation and/or other materials provided with the distribution. |
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* 3. All advertising materials mentioning features or use of this software |
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* must display the following acknowledgement: |
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* "This product includes cryptographic software written by |
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* Eric Young (eay@cryptsoft.com)" |
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* The word 'cryptographic' can be left out if the rouines from the library |
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* being used are not cryptographic related :-). |
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* 4. If you include any Windows specific code (or a derivative thereof) from |
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* the apps directory (application code) you must include an acknowledgement: |
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* "This product includes software written by Tim Hudson (tjh@cryptsoft.com)" |
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* |
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* THIS SOFTWARE IS PROVIDED BY ERIC YOUNG ``AS IS'' AND |
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* ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE |
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* IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE |
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* ARE DISCLAIMED. IN NO EVENT SHALL THE AUTHOR OR CONTRIBUTORS BE LIABLE |
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* FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL |
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* DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS |
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* OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION) |
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* HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT |
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* LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY |
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* OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF |
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* SUCH DAMAGE. |
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* |
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* The licence and distribution terms for any publically available version or |
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* derivative of this code cannot be changed. i.e. this code cannot simply be |
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* copied and put under another distribution licence |
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* [including the GNU Public Licence.] */ |
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#include <openssl/asn1.h> |
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#include <assert.h> |
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#include <limits.h> |
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#include <string.h> |
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#include <openssl/bytestring.h> |
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#include <openssl/err.h> |
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#include <openssl/mem.h> |
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#include "../internal.h" |
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ASN1_INTEGER *ASN1_INTEGER_dup(const ASN1_INTEGER *x) { |
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return ASN1_STRING_dup(x); |
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} |
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int ASN1_INTEGER_cmp(const ASN1_INTEGER *x, const ASN1_INTEGER *y) { |
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// Compare signs. |
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int neg = x->type & V_ASN1_NEG; |
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if (neg != (y->type & V_ASN1_NEG)) { |
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return neg ? -1 : 1; |
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} |
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int ret = ASN1_STRING_cmp(x, y); |
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if (neg) { |
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// This could be |-ret|, but |ASN1_STRING_cmp| is not forbidden from |
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// returning |INT_MIN|. |
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if (ret < 0) { |
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return 1; |
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} else if (ret > 0) { |
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return -1; |
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} else { |
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return 0; |
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} |
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} |
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return ret; |
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} |
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// negate_twos_complement negates |len| bytes from |buf| in-place, interpreted |
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// as a signed, big-endian two's complement value. |
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static void negate_twos_complement(uint8_t *buf, size_t len) { |
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uint8_t borrow = 0; |
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for (size_t i = len - 1; i < len; i--) { |
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uint8_t t = buf[i]; |
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buf[i] = 0u - borrow - t; |
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borrow |= t != 0; |
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} |
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} |
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static int is_all_zeros(const uint8_t *in, size_t len) { |
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for (size_t i = 0; i < len; i++) { |
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if (in[i] != 0) { |
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return 0; |
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} |
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} |
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return 1; |
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} |
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int i2c_ASN1_INTEGER(const ASN1_INTEGER *in, unsigned char **outp) { |
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if (in == NULL) { |
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return 0; |
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} |
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// |ASN1_INTEGER|s should be represented minimally, but it is possible to |
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// construct invalid ones. Skip leading zeros so this does not produce an |
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// invalid encoding or break invariants. |
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int start = 0; |
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while (start < in->length && in->data[start] == 0) { |
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start++; |
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} |
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int is_negative = (in->type & V_ASN1_NEG) != 0; |
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int pad; |
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if (start >= in->length) { |
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// Zero is represented as a single byte. |
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is_negative = 0; |
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pad = 1; |
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} else if (is_negative) { |
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// 0x80...01 through 0xff...ff have a two's complement of 0x7f...ff |
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// through 0x00...01 and need an extra byte to be negative. |
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// 0x01...00 through 0x80...00 have a two's complement of 0xfe...ff |
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// through 0x80...00 and can be negated as-is. |
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pad = in->data[start] > 0x80 || |
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(in->data[start] == 0x80 && |
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!is_all_zeros(in->data + start + 1, in->length - start - 1)); |
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} else { |
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// If the high bit is set, the signed representation needs an extra |
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// byte to be positive. |
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pad = (in->data[start] & 0x80) != 0; |
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} |
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if (in->length - start > INT_MAX - pad) { |
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OPENSSL_PUT_ERROR(ASN1, ERR_R_OVERFLOW); |
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return 0; |
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} |
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int len = pad + in->length - start; |
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assert(len > 0); |
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if (outp == NULL) { |
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return len; |
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} |
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if (pad) { |
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(*outp)[0] = 0; |
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} |
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OPENSSL_memcpy(*outp + pad, in->data + start, in->length - start); |
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if (is_negative) { |
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negate_twos_complement(*outp, len); |
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assert((*outp)[0] >= 0x80); |
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} else { |
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assert((*outp)[0] < 0x80); |
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} |
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*outp += len; |
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return len; |
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} |
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ASN1_INTEGER *c2i_ASN1_INTEGER(ASN1_INTEGER **out, const unsigned char **inp, |
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long len) { |
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// This function can handle lengths up to INT_MAX - 1, but the rest of the |
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// legacy ASN.1 code mixes integer types, so avoid exposing it to |
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// ASN1_INTEGERS with larger lengths. |
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if (len < 0 || len > INT_MAX / 2) { |
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OPENSSL_PUT_ERROR(ASN1, ASN1_R_TOO_LONG); |
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return NULL; |
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} |
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CBS cbs; |
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CBS_init(&cbs, *inp, (size_t)len); |
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int is_negative; |
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if (!CBS_is_valid_asn1_integer(&cbs, &is_negative)) { |
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OPENSSL_PUT_ERROR(ASN1, ASN1_R_INVALID_INTEGER); |
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return NULL; |
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} |
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ASN1_INTEGER *ret = NULL; |
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if (out == NULL || *out == NULL) { |
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ret = ASN1_INTEGER_new(); |
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if (ret == NULL) { |
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return NULL; |
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} |
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} else { |
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ret = *out; |
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} |
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// Convert to |ASN1_INTEGER|'s sign-and-magnitude representation. First, |
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// determine the size needed for a minimal result. |
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if (is_negative) { |
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// 0xff00...01 through 0xff7f..ff have a two's complement of 0x00ff...ff |
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// through 0x000100...001 and need one leading zero removed. 0x8000...00 |
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// through 0xff00...00 have a two's complement of 0x8000...00 through |
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// 0x0100...00 and will be minimally-encoded as-is. |
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if (CBS_len(&cbs) > 0 && CBS_data(&cbs)[0] == 0xff && |
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!is_all_zeros(CBS_data(&cbs) + 1, CBS_len(&cbs) - 1)) { |
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CBS_skip(&cbs, 1); |
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} |
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} else { |
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// Remove the leading zero byte, if any. |
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if (CBS_len(&cbs) > 0 && CBS_data(&cbs)[0] == 0x00) { |
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CBS_skip(&cbs, 1); |
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} |
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} |
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if (!ASN1_STRING_set(ret, CBS_data(&cbs), CBS_len(&cbs))) { |
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goto err; |
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} |
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if (is_negative) { |
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ret->type = V_ASN1_NEG_INTEGER; |
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negate_twos_complement(ret->data, ret->length); |
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} else { |
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ret->type = V_ASN1_INTEGER; |
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} |
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// The value should be minimally-encoded. |
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assert(ret->length == 0 || ret->data[0] != 0); |
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// Zero is not negative. |
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assert(!is_negative || ret->length > 0); |
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*inp += len; |
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if (out != NULL) { |
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*out = ret; |
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} |
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return ret; |
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err: |
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if (ret != NULL && (out == NULL || *out != ret)) { |
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ASN1_INTEGER_free(ret); |
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} |
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return NULL; |
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} |
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int ASN1_INTEGER_set_int64(ASN1_INTEGER *a, int64_t v) { |
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if (v >= 0) { |
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return ASN1_INTEGER_set_uint64(a, (uint64_t)v); |
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} |
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if (!ASN1_INTEGER_set_uint64(a, 0 - (uint64_t)v)) { |
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return 0; |
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} |
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a->type = V_ASN1_NEG_INTEGER; |
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return 1; |
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} |
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int ASN1_ENUMERATED_set_int64(ASN1_ENUMERATED *a, int64_t v) { |
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if (v >= 0) { |
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return ASN1_ENUMERATED_set_uint64(a, (uint64_t)v); |
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} |
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if (!ASN1_ENUMERATED_set_uint64(a, 0 - (uint64_t)v)) { |
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return 0; |
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} |
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a->type = V_ASN1_NEG_ENUMERATED; |
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return 1; |
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} |
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int ASN1_INTEGER_set(ASN1_INTEGER *a, long v) { |
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static_assert(sizeof(long) <= sizeof(int64_t), "long fits in int64_t"); |
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return ASN1_INTEGER_set_int64(a, v); |
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} |
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int ASN1_ENUMERATED_set(ASN1_ENUMERATED *a, long v) { |
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static_assert(sizeof(long) <= sizeof(int64_t), "long fits in int64_t"); |
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return ASN1_ENUMERATED_set_int64(a, v); |
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} |
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static int asn1_string_set_uint64(ASN1_STRING *out, uint64_t v, int type) { |
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uint8_t buf[sizeof(uint64_t)]; |
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CRYPTO_store_u64_be(buf, v); |
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size_t leading_zeros; |
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for (leading_zeros = 0; leading_zeros < sizeof(buf); leading_zeros++) { |
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if (buf[leading_zeros] != 0) { |
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break; |
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} |
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} |
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if (!ASN1_STRING_set(out, buf + leading_zeros, sizeof(buf) - leading_zeros)) { |
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return 0; |
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} |
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out->type = type; |
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return 1; |
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} |
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int ASN1_INTEGER_set_uint64(ASN1_INTEGER *out, uint64_t v) { |
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return asn1_string_set_uint64(out, v, V_ASN1_INTEGER); |
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} |
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int ASN1_ENUMERATED_set_uint64(ASN1_ENUMERATED *out, uint64_t v) { |
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return asn1_string_set_uint64(out, v, V_ASN1_ENUMERATED); |
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} |
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static int asn1_string_get_abs_uint64(uint64_t *out, const ASN1_STRING *a, |
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int type) { |
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if ((a->type & ~V_ASN1_NEG) != type) { |
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OPENSSL_PUT_ERROR(ASN1, ASN1_R_WRONG_INTEGER_TYPE); |
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return 0; |
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} |
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uint8_t buf[sizeof(uint64_t)] = {0}; |
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if (a->length > (int)sizeof(buf)) { |
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OPENSSL_PUT_ERROR(ASN1, ASN1_R_INVALID_INTEGER); |
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return 0; |
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} |
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OPENSSL_memcpy(buf + sizeof(buf) - a->length, a->data, a->length); |
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*out = CRYPTO_load_u64_be(buf); |
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return 1; |
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} |
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static int asn1_string_get_uint64(uint64_t *out, const ASN1_STRING *a, |
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int type) { |
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if (!asn1_string_get_abs_uint64(out, a, type)) { |
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return 0; |
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} |
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if (a->type & V_ASN1_NEG) { |
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OPENSSL_PUT_ERROR(ASN1, ASN1_R_INVALID_INTEGER); |
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return 0; |
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} |
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return 1; |
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} |
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int ASN1_INTEGER_get_uint64(uint64_t *out, const ASN1_INTEGER *a) { |
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return asn1_string_get_uint64(out, a, V_ASN1_INTEGER); |
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} |
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int ASN1_ENUMERATED_get_uint64(uint64_t *out, const ASN1_ENUMERATED *a) { |
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return asn1_string_get_uint64(out, a, V_ASN1_ENUMERATED); |
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} |
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static int asn1_string_get_int64(int64_t *out, const ASN1_STRING *a, int type) { |
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uint64_t v; |
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if (!asn1_string_get_abs_uint64(&v, a, type)) { |
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return 0; |
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} |
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int64_t i64; |
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int fits_in_i64; |
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// Check |v != 0| to handle manually-constructed negative zeros. |
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if ((a->type & V_ASN1_NEG) && v != 0) { |
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i64 = (int64_t)(0u - v); |
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fits_in_i64 = i64 < 0; |
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} else { |
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i64 = (int64_t)v; |
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fits_in_i64 = i64 >= 0; |
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} |
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if (!fits_in_i64) { |
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OPENSSL_PUT_ERROR(ASN1, ASN1_R_INVALID_INTEGER); |
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return 0; |
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} |
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*out = i64; |
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return 1; |
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} |
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int ASN1_INTEGER_get_int64(int64_t *out, const ASN1_INTEGER *a) { |
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return asn1_string_get_int64(out, a, V_ASN1_INTEGER); |
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} |
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int ASN1_ENUMERATED_get_int64(int64_t *out, const ASN1_ENUMERATED *a) { |
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return asn1_string_get_int64(out, a, V_ASN1_ENUMERATED); |
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} |
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static long asn1_string_get_long(const ASN1_STRING *a, int type) { |
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if (a == NULL) { |
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return 0; |
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} |
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int64_t v; |
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if (!asn1_string_get_int64(&v, a, type) || // |
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v < LONG_MIN || v > LONG_MAX) { |
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// This function's return value does not distinguish overflow from -1. |
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ERR_clear_error(); |
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return -1; |
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} |
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return (long)v; |
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} |
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long ASN1_INTEGER_get(const ASN1_INTEGER *a) { |
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return asn1_string_get_long(a, V_ASN1_INTEGER); |
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} |
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long ASN1_ENUMERATED_get(const ASN1_ENUMERATED *a) { |
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return asn1_string_get_long(a, V_ASN1_ENUMERATED); |
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} |
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static ASN1_STRING *bn_to_asn1_string(const BIGNUM *bn, ASN1_STRING *ai, |
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int type) { |
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ASN1_INTEGER *ret; |
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if (ai == NULL) { |
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ret = ASN1_STRING_type_new(type); |
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} else { |
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ret = ai; |
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} |
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if (ret == NULL) { |
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OPENSSL_PUT_ERROR(ASN1, ASN1_R_NESTED_ASN1_ERROR); |
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goto err; |
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} |
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if (BN_is_negative(bn) && !BN_is_zero(bn)) { |
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ret->type = type | V_ASN1_NEG; |
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} else { |
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ret->type = type; |
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} |
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int len = BN_num_bytes(bn); |
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if (!ASN1_STRING_set(ret, NULL, len) || |
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!BN_bn2bin_padded(ret->data, len, bn)) { |
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goto err; |
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} |
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return ret; |
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err: |
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if (ret != ai) { |
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ASN1_STRING_free(ret); |
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} |
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return NULL; |
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} |
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ASN1_INTEGER *BN_to_ASN1_INTEGER(const BIGNUM *bn, ASN1_INTEGER *ai) { |
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return bn_to_asn1_string(bn, ai, V_ASN1_INTEGER); |
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} |
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ASN1_ENUMERATED *BN_to_ASN1_ENUMERATED(const BIGNUM *bn, ASN1_ENUMERATED *ai) { |
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return bn_to_asn1_string(bn, ai, V_ASN1_ENUMERATED); |
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} |
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static BIGNUM *asn1_string_to_bn(const ASN1_STRING *ai, BIGNUM *bn, int type) { |
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if ((ai->type & ~V_ASN1_NEG) != type) { |
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OPENSSL_PUT_ERROR(ASN1, ASN1_R_WRONG_INTEGER_TYPE); |
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return NULL; |
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} |
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BIGNUM *ret; |
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if ((ret = BN_bin2bn(ai->data, ai->length, bn)) == NULL) { |
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OPENSSL_PUT_ERROR(ASN1, ASN1_R_BN_LIB); |
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} else if (ai->type & V_ASN1_NEG) { |
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BN_set_negative(ret, 1); |
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} |
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return ret; |
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} |
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BIGNUM *ASN1_INTEGER_to_BN(const ASN1_INTEGER *ai, BIGNUM *bn) { |
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return asn1_string_to_bn(ai, bn, V_ASN1_INTEGER); |
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} |
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BIGNUM *ASN1_ENUMERATED_to_BN(const ASN1_ENUMERATED *ai, BIGNUM *bn) { |
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return asn1_string_to_bn(ai, bn, V_ASN1_ENUMERATED); |
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}
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