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https://boringssl.googlesource.com/boringssl
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bd6f41c308
... and then run clang-format on the changed files to reflow any comment blocks that exceeded line lengths. (Which generated a bunch of noise formatting changes, but probably that reduces noise in future CLs.) No semantic change to the code. Change-Id: I455da9faaaedda3e751ac91b5eb43cbc662d68a6 Reviewed-on: https://boringssl-review.googlesource.com/c/boringssl/+/97367 Reviewed-by: David Benjamin <davidben@google.com> Commit-Queue: Adam Langley <agl@google.com> Auto-Submit: Adam Langley <agl@google.com>
359 lines
15 KiB
C
359 lines
15 KiB
C
// Copyright 2000-2016 The OpenSSL Project Authors. All Rights Reserved.
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// Copyright (c) 2002, Oracle and/or its affiliates. All rights reserved.
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//
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// Licensed under the Apache License, Version 2.0 (the "License");
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// you may not use this file except in compliance with the License.
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// You may obtain a copy of the License at
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//
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// https://www.apache.org/licenses/LICENSE-2.0
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//
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// Unless required by applicable law or agreed to in writing, software
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// distributed under the License is distributed on an "AS IS" BASIS,
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// WITHOUT WARRANTIES OR CONDITIONS OF ANY KIND, either express or implied.
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// See the License for the specific language governing permissions and
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// limitations under the License.
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#ifndef OPENSSL_HEADER_EC_KEY_H
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#define OPENSSL_HEADER_EC_KEY_H
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#include <openssl/base.h> // IWYU pragma: export
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#include <openssl/ec.h>
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#include <openssl/engine.h>
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#include <openssl/ex_data.h>
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#if defined(__cplusplus)
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extern "C" {
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#endif
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// ec_key.h contains functions that handle elliptic-curve points that are
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// public/private keys.
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// EC key objects.
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//
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// An `EC_KEY` object represents a public or private EC key. A given object may
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// be used concurrently on multiple threads by non-mutating functions, provided
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// no other thread is concurrently calling a mutating function. Unless otherwise
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// documented, functions which take a `const` pointer are non-mutating and
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// functions which take a non-`const` pointer are mutating.
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// EC_KEY_new returns a fresh `EC_KEY` object or NULL on error.
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OPENSSL_EXPORT EC_KEY *EC_KEY_new(void);
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// EC_KEY_new_method acts the same as `EC_KEY_new`, but takes an explicit
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// `ENGINE`.
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OPENSSL_EXPORT EC_KEY *EC_KEY_new_method(const ENGINE *engine);
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// EC_KEY_new_by_curve_name returns a fresh EC_KEY for group specified by `nid`
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// or NULL on error.
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OPENSSL_EXPORT EC_KEY *EC_KEY_new_by_curve_name(int nid);
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// EC_KEY_free frees all the data owned by `key` and `key` itself.
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OPENSSL_EXPORT void EC_KEY_free(EC_KEY *key);
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// EC_KEY_dup returns a fresh copy of `src` or NULL on error.
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OPENSSL_EXPORT EC_KEY *EC_KEY_dup(const EC_KEY *src);
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// EC_KEY_up_ref increases the reference count of `key` and returns one. It does
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// not mutate `key` for thread-safety purposes and may be used concurrently.
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OPENSSL_EXPORT int EC_KEY_up_ref(EC_KEY *key);
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// EC_KEY_is_opaque returns one if `key` is opaque and doesn't expose its key
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// material. Otherwise it return zero.
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OPENSSL_EXPORT int EC_KEY_is_opaque(const EC_KEY *key);
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// EC_KEY_get0_group returns a pointer to the `EC_GROUP` object inside `key`.
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OPENSSL_EXPORT const EC_GROUP *EC_KEY_get0_group(const EC_KEY *key);
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// EC_KEY_set_group sets the `EC_GROUP` object that `key` will use to `group`.
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// It returns one on success and zero if `key` is already configured with a
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// different group.
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OPENSSL_EXPORT int EC_KEY_set_group(EC_KEY *key, const EC_GROUP *group);
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// EC_KEY_get0_private_key returns a pointer to the private key inside `key`.
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OPENSSL_EXPORT const BIGNUM *EC_KEY_get0_private_key(const EC_KEY *key);
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// EC_KEY_set_private_key sets the private key of `key` to `priv`. It returns
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// one on success and zero otherwise. `key` must already have had a group
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// configured (see `EC_KEY_set_group` and `EC_KEY_new_by_curve_name`).
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OPENSSL_EXPORT int EC_KEY_set_private_key(EC_KEY *key, const BIGNUM *priv);
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// EC_KEY_get0_public_key returns a pointer to the public key point inside
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// `key`.
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OPENSSL_EXPORT const EC_POINT *EC_KEY_get0_public_key(const EC_KEY *key);
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// EC_KEY_set_public_key sets the public key of `key` to `pub`, by copying it.
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// It returns one on success and zero otherwise. `key` must already have had a
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// group configured (see `EC_KEY_set_group` and `EC_KEY_new_by_curve_name`), and
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// `pub` must also belong to that group, and must not be the point at infinity.
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OPENSSL_EXPORT int EC_KEY_set_public_key(EC_KEY *key, const EC_POINT *pub);
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#define EC_PKEY_NO_PARAMETERS 0x001
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#define EC_PKEY_NO_PUBKEY 0x002
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// EC_KEY_get_enc_flags returns the encoding flags for `key`, which is a
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// bitwise-OR of `EC_PKEY_*` values.
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OPENSSL_EXPORT unsigned EC_KEY_get_enc_flags(const EC_KEY *key);
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// EC_KEY_set_enc_flags sets the encoding flags for `key`, which is a
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// bitwise-OR of `EC_PKEY_*` values.
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OPENSSL_EXPORT void EC_KEY_set_enc_flags(EC_KEY *key, unsigned flags);
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// EC_KEY_get_conv_form returns the conversion form that will be used by
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// `key`.
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OPENSSL_EXPORT point_conversion_form_t EC_KEY_get_conv_form(const EC_KEY *key);
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// EC_KEY_set_conv_form sets the conversion form to be used by `key`.
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OPENSSL_EXPORT void EC_KEY_set_conv_form(EC_KEY *key,
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point_conversion_form_t cform);
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// EC_KEY_check_key performs several checks on `key` (possibly including an
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// expensive check that the public key is in the primary subgroup). It returns
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// one if all checks pass and zero otherwise. If it returns zero then detail
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// about the problem can be found on the error stack.
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OPENSSL_EXPORT int EC_KEY_check_key(const EC_KEY *key);
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// EC_KEY_check_fips performs both a signing pairwise consistency test
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// (FIPS 140-2 4.9.2) and the consistency test from SP 800-56Ar3 section
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// 5.6.2.1.4. It returns one if it passes and zero otherwise.
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OPENSSL_EXPORT int EC_KEY_check_fips(const EC_KEY *key);
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// EC_KEY_set_public_key_affine_coordinates sets the public key in `key` to
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// (`x`, `y`). It returns one on success and zero on error. It's considered an
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// error if `x` and `y` do not represent a point on `key`'s curve.
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OPENSSL_EXPORT int EC_KEY_set_public_key_affine_coordinates(EC_KEY *key,
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const BIGNUM *x,
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const BIGNUM *y);
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// EC_KEY_oct2key decodes `len` bytes from `in` as an EC public key in X9.62
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// form. `key` must already have a group configured. On success, it sets the
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// public key in `key` to the result and returns one. Otherwise, it returns
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// zero. `ctx` may be NULL.
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OPENSSL_EXPORT int EC_KEY_oct2key(EC_KEY *key, const uint8_t *in, size_t len,
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BN_CTX *ctx);
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// EC_KEY_key2buf behaves like `EC_POINT_point2buf`, except it encodes the
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// public key in `key`. `ctx` is ignored and may be NULL.
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OPENSSL_EXPORT size_t EC_KEY_key2buf(const EC_KEY *key,
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point_conversion_form_t form,
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uint8_t **out_buf, BN_CTX *ctx);
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// EC_KEY_oct2priv decodes a big-endian, zero-padded integer from `len` bytes
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// from `in` and sets `key`'s private key to the result. It returns one on
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// success and zero on error. The input must be padded to the size of `key`'s
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// group order.
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OPENSSL_EXPORT int EC_KEY_oct2priv(EC_KEY *key, const uint8_t *in, size_t len);
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// EC_KEY_priv2oct serializes `key`'s private key as a big-endian integer,
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// zero-padded to the size of `key`'s group order and writes the result to at
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// most `max_out` bytes of `out`. It returns the number of bytes written on
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// success and zero on error. If `out` is NULL, it returns the number of bytes
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// needed without writing anything.
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OPENSSL_EXPORT size_t EC_KEY_priv2oct(const EC_KEY *key, uint8_t *out,
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size_t max_out);
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// EC_KEY_priv2buf behaves like `EC_KEY_priv2oct` but sets `*out_buf` to a
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// newly-allocated buffer containing the result. It returns the size of the
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// result on success and zero on error. The caller must release `*out_buf` with
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// `OPENSSL_free` when done.
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OPENSSL_EXPORT size_t EC_KEY_priv2buf(const EC_KEY *key, uint8_t **out_buf);
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// Key generation.
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// EC_KEY_generate_key generates a random, private key, calculates the
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// corresponding public key and stores both in `key`. It returns one on success
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// or zero otherwise.
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OPENSSL_EXPORT int EC_KEY_generate_key(EC_KEY *key);
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// EC_KEY_generate_key_fips behaves like `EC_KEY_generate_key` but performs
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// additional checks for FIPS compliance. This function is applicable when
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// generating keys for either signing/verification or key agreement because
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// both types of consistency check (PCT) are performed.
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OPENSSL_EXPORT int EC_KEY_generate_key_fips(EC_KEY *key);
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// EC_KEY_derive_from_secret deterministically derives a private key for `group`
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// from an input secret using HKDF-SHA256. It returns a newly-allocated `EC_KEY`
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// on success or NULL on error. `secret` must not be used in any other
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// algorithm. If using a base secret for multiple operations, derive separate
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// values with a KDF such as HKDF first.
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//
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// Note this function implements an arbitrary derivation scheme, rather than any
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// particular standard one. New protocols are recommended to use X25519 and
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// Ed25519, which have standard byte import functions. See
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// `X25519_public_from_private` and `ED25519_keypair_from_seed`.
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OPENSSL_EXPORT EC_KEY *EC_KEY_derive_from_secret(const EC_GROUP *group,
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const uint8_t *secret,
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size_t secret_len);
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// Serialisation.
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// EC_KEY_parse_private_key parses a DER-encoded ECPrivateKey structure (RFC
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// 5915) from `cbs` and advances `cbs`. It returns a newly-allocated `EC_KEY` or
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// NULL on error. If `group` is non-null, the parameters field of the
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// ECPrivateKey may be omitted (but must match `group` if present). Otherwise,
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// the parameters field is required.
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OPENSSL_EXPORT EC_KEY *EC_KEY_parse_private_key(CBS *cbs,
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const EC_GROUP *group);
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// EC_KEY_marshal_private_key marshals `key` as a DER-encoded ECPrivateKey
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// structure (RFC 5915) and appends the result to `cbb`. It returns one on
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// success and zero on failure. `enc_flags` is a combination of `EC_PKEY_*`
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// values and controls whether corresponding fields are omitted.
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OPENSSL_EXPORT int EC_KEY_marshal_private_key(CBB *cbb, const EC_KEY *key,
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unsigned enc_flags);
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// EC_KEY_parse_curve_name parses a DER-encoded OBJECT IDENTIFIER as a curve
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// name from `cbs` and advances `cbs`. It returns the decoded `EC_GROUP` or NULL
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// on error.
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//
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// This function returns a non-const pointer which may be passed to
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// `EC_GROUP_free`. However, the resulting object is actually static and calling
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// `EC_GROUP_free` is optional.
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//
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// TODO(davidben): Make this return a const pointer, if it does not break too
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// many callers.
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OPENSSL_EXPORT EC_GROUP *EC_KEY_parse_curve_name(CBS *cbs);
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// EC_KEY_marshal_curve_name marshals `group` as a DER-encoded OBJECT IDENTIFIER
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// and appends the result to `cbb`. It returns one on success and zero on
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// failure.
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OPENSSL_EXPORT int EC_KEY_marshal_curve_name(CBB *cbb, const EC_GROUP *group);
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// EC_KEY_parse_parameters parses a DER-encoded ECParameters structure (RFC
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// 5480) from `cbs` and advances `cbs`. It returns the resulting `EC_GROUP` or
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// NULL on error. It supports the namedCurve and specifiedCurve options, but use
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// of specifiedCurve is deprecated. Use `EC_KEY_parse_curve_name` instead.
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//
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// This function returns a non-const pointer which may be passed to
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// `EC_GROUP_free`. However, the resulting object is actually static and calling
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// `EC_GROUP_free` is optional.
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//
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// TODO(davidben): Make this return a const pointer, if it does not break too
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// many callers.
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OPENSSL_EXPORT EC_GROUP *EC_KEY_parse_parameters(CBS *cbs);
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// ex_data functions.
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//
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// These functions are wrappers. See `ex_data.h` for details.
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OPENSSL_EXPORT int EC_KEY_get_ex_new_index(long argl, void *argp,
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CRYPTO_EX_unused *unused,
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CRYPTO_EX_dup *dup_unused,
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CRYPTO_EX_free *free_func);
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OPENSSL_EXPORT int EC_KEY_set_ex_data(EC_KEY *r, int idx, void *arg);
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OPENSSL_EXPORT void *EC_KEY_get_ex_data(const EC_KEY *r, int idx);
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// ECDSA method.
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// ECDSA_FLAG_OPAQUE specifies that this ECDSA_METHOD does not expose its key
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// material. This may be set if, for instance, it is wrapping some other crypto
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// API, like a platform key store.
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#define ECDSA_FLAG_OPAQUE 1
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// ecdsa_method_st is a structure of function pointers for implementing ECDSA.
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// See engine.h.
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struct ecdsa_method_st {
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struct openssl_method_common_st common;
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void *app_data;
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int (*init)(EC_KEY *key);
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int (*finish)(EC_KEY *key);
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// sign matches the arguments and behaviour of `ECDSA_sign`.
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int (*sign)(const uint8_t *digest, size_t digest_len, uint8_t *sig,
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unsigned int *sig_len, EC_KEY *eckey);
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int flags;
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};
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// Deprecated functions.
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// EC_KEY_set_asn1_flag does nothing.
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OPENSSL_EXPORT void EC_KEY_set_asn1_flag(EC_KEY *key, int flag);
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// d2i_ECPrivateKey parses a DER-encoded ECPrivateKey structure (RFC 5915) from
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// `len` bytes at `*inp`, as described in `d2i_SAMPLE`. On input, if `*out_key`
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// is non-NULL and has a group configured, the parameters field may be omitted
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// but must match that group if present.
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//
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// Use `EC_KEY_parse_private_key` instead.
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OPENSSL_EXPORT EC_KEY *d2i_ECPrivateKey(EC_KEY **out_key, const uint8_t **inp,
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long len);
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// i2d_ECPrivateKey marshals `key` as a DER-encoded ECPrivateKey structure (RFC
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// 5915), as described in `i2d_SAMPLE`.
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//
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// Use `EC_KEY_marshal_private_key` instead.
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OPENSSL_EXPORT int i2d_ECPrivateKey(const EC_KEY *key, uint8_t **outp);
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// d2i_ECPKParameters parses a DER-encoded ECParameters structure (RFC 5480)
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// from `len` bytes at `*inp`, as described in `d2i_SAMPLE`. For legacy reasons,
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// it recognizes the specifiedCurve form, but only for curves that are already
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// supported as named curves.
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//
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// Use `EC_KEY_parse_parameters` or `EC_KEY_parse_curve_name` instead.
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OPENSSL_EXPORT EC_GROUP *d2i_ECPKParameters(EC_GROUP **out, const uint8_t **inp,
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long len);
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// i2d_ECPKParameters marshals `group` as a DER-encoded ECParameters structure
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// (RFC 5480), as described in `i2d_SAMPLE`.
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//
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// Use `EC_KEY_marshal_curve_name` instead.
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OPENSSL_EXPORT int i2d_ECPKParameters(const EC_GROUP *group, uint8_t **outp);
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// d2i_ECParameters parses a DER-encoded ECParameters structure (RFC 5480) from
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// `len` bytes at `*inp`, as described in `d2i_SAMPLE`. It returns the result as
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// an `EC_KEY` with parameters, but no key, configured.
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//
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// Use `EC_KEY_parse_parameters` or `EC_KEY_parse_curve_name` instead.
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OPENSSL_EXPORT EC_KEY *d2i_ECParameters(EC_KEY **out_key, const uint8_t **inp,
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long len);
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// i2d_ECParameters marshals `key`'s parameters as a DER-encoded OBJECT
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// IDENTIFIER, as described in `i2d_SAMPLE`.
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//
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// Use `EC_KEY_marshal_curve_name` instead.
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OPENSSL_EXPORT int i2d_ECParameters(const EC_KEY *key, uint8_t **outp);
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// o2i_ECPublicKey parses an EC point from `len` bytes at `*inp` into
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// `*out_key`. Note that this differs from the d2i format in that `*out_key`
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// must be non-NULL with a group set. On successful exit, `*inp` is advanced by
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// `len` bytes. It returns `*out_key` or NULL on error.
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//
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// Use `EC_POINT_oct2point` instead.
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OPENSSL_EXPORT EC_KEY *o2i_ECPublicKey(EC_KEY **out_key, const uint8_t **inp,
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long len);
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// i2o_ECPublicKey marshals an EC point from `key`, as described in
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// `i2d_SAMPLE`, except it returns zero on error instead of a negative value.
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//
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// Use `EC_POINT_point2cbb` instead.
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OPENSSL_EXPORT int i2o_ECPublicKey(const EC_KEY *key, unsigned char **outp);
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#if defined(__cplusplus)
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} // extern C
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extern "C++" {
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BSSL_NAMESPACE_BEGIN
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BORINGSSL_MAKE_DELETER(EC_KEY, EC_KEY_free)
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BORINGSSL_MAKE_UP_REF(EC_KEY, EC_KEY_up_ref)
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BSSL_NAMESPACE_END
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} // extern C++
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#endif
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#endif // OPENSSL_HEADER_EC_KEY_H
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