Coverage Report

Created: 2026-02-22 06:11

next uncovered line (L), next uncovered region (R), next uncovered branch (B)
/src/openssl/providers/implementations/kdfs/hkdf.c
Line
Count
Source
1
/*
2
 * Copyright 2016-2025 The OpenSSL Project Authors. All Rights Reserved.
3
 *
4
 * Licensed under the Apache License 2.0 (the "License").  You may not use
5
 * this file except in compliance with the License.  You can obtain a copy
6
 * in the file LICENSE in the source distribution or at
7
 * https://www.openssl.org/source/license.html
8
 */
9
10
/*
11
 * HMAC low level APIs are deprecated for public use, but still ok for internal
12
 * use.
13
 */
14
#include "internal/deprecated.h"
15
16
#include <stdlib.h>
17
#include <stdarg.h>
18
#include <string.h>
19
#include <openssl/hmac.h>
20
#include <openssl/evp.h>
21
#include <openssl/kdf.h>
22
#include <openssl/core_names.h>
23
#include <openssl/proverr.h>
24
#include "internal/cryptlib.h"
25
#include "internal/numbers.h"
26
#include "internal/packet.h"
27
#include "crypto/evp.h"
28
#include "prov/provider_ctx.h"
29
#include "prov/providercommon.h"
30
#include "prov/implementations.h"
31
#include "prov/provider_util.h"
32
#include "prov/securitycheck.h"
33
#include "internal/e_os.h"
34
#include "internal/fips.h"
35
#include "internal/params.h"
36
#include "internal/sizes.h"
37
38
#define HKDF_MAXBUF 2048
39
#define HKDF_MAXINFO (32 * 1024)
40
0
#define HKDF_MAX_INFOS 5
41
42
static OSSL_FUNC_kdf_newctx_fn kdf_hkdf_new;
43
static OSSL_FUNC_kdf_dupctx_fn kdf_hkdf_dup;
44
static OSSL_FUNC_kdf_freectx_fn kdf_hkdf_free;
45
static OSSL_FUNC_kdf_reset_fn kdf_hkdf_reset;
46
static OSSL_FUNC_kdf_derive_fn kdf_hkdf_derive;
47
static OSSL_FUNC_kdf_settable_ctx_params_fn kdf_hkdf_settable_ctx_params;
48
static OSSL_FUNC_kdf_set_ctx_params_fn kdf_hkdf_set_ctx_params;
49
static OSSL_FUNC_kdf_gettable_ctx_params_fn hkdf_gettable_ctx_params;
50
static OSSL_FUNC_kdf_get_ctx_params_fn hkdf_common_get_ctx_params;
51
static OSSL_FUNC_kdf_derive_fn kdf_tls1_3_derive;
52
static OSSL_FUNC_kdf_settable_ctx_params_fn kdf_tls1_3_settable_ctx_params;
53
static OSSL_FUNC_kdf_set_ctx_params_fn kdf_tls1_3_set_ctx_params;
54
static OSSL_FUNC_kdf_newctx_fn kdf_hkdf_sha256_new;
55
static OSSL_FUNC_kdf_newctx_fn kdf_hkdf_sha384_new;
56
static OSSL_FUNC_kdf_newctx_fn kdf_hkdf_sha512_new;
57
static OSSL_FUNC_kdf_settable_ctx_params_fn kdf_hkdf_fixed_digest_settable_ctx_params;
58
static OSSL_FUNC_kdf_set_ctx_params_fn kdf_hkdf_fixed_digest_set_ctx_params;
59
60
static void *kdf_hkdf_fixed_digest_new(void *provctx, const char *digest);
61
static void kdf_hkdf_reset_ex(void *vctx, int on_free);
62
63
static int HKDF(OSSL_LIB_CTX *libctx, const EVP_MD *evp_md,
64
    const unsigned char *salt, size_t salt_len,
65
    const unsigned char *key, size_t key_len,
66
    const unsigned char *info, size_t info_len,
67
    unsigned char *okm, size_t okm_len);
68
static int HKDF_Extract(OSSL_LIB_CTX *libctx, const EVP_MD *evp_md,
69
    const unsigned char *salt, size_t salt_len,
70
    const unsigned char *ikm, size_t ikm_len,
71
    unsigned char *prk, size_t prk_len);
72
static int HKDF_Expand(const EVP_MD *evp_md,
73
    const unsigned char *prk, size_t prk_len,
74
    const unsigned char *info, size_t info_len,
75
    unsigned char *okm, size_t okm_len);
76
77
typedef struct {
78
    void *provctx;
79
    int mode;
80
    PROV_DIGEST digest;
81
    unsigned char *salt;
82
    size_t salt_len;
83
    unsigned char *key;
84
    size_t key_len;
85
    unsigned char *prefix;
86
    size_t prefix_len;
87
    unsigned char *label;
88
    size_t label_len;
89
    unsigned char *data;
90
    size_t data_len;
91
    unsigned char *info;
92
    size_t info_len;
93
    int fixed_digest;
94
    OSSL_FIPS_IND_DECLARE
95
} KDF_HKDF;
96
97
static void *kdf_hkdf_new(void *provctx)
98
0
{
99
0
    KDF_HKDF *ctx;
100
101
0
    if (!ossl_prov_is_running())
102
0
        return NULL;
103
104
#ifdef FIPS_MODULE
105
    if (!ossl_deferred_self_test(PROV_LIBCTX_OF(provctx),
106
            ST_ID_KDF_HKDF))
107
        return NULL;
108
#endif
109
110
0
    if ((ctx = OPENSSL_zalloc(sizeof(*ctx))) != NULL) {
111
0
        ctx->provctx = provctx;
112
0
        OSSL_FIPS_IND_INIT(ctx)
113
0
    }
114
0
    return ctx;
115
0
}
116
117
static void kdf_hkdf_free(void *vctx)
118
0
{
119
0
    KDF_HKDF *ctx = (KDF_HKDF *)vctx;
120
121
0
    if (ctx != NULL) {
122
0
        kdf_hkdf_reset_ex(vctx, 1);
123
0
        OPENSSL_free(ctx);
124
0
    }
125
0
}
126
127
static void kdf_hkdf_reset(void *vctx)
128
0
{
129
0
    kdf_hkdf_reset_ex(vctx, 0);
130
0
}
131
132
static void kdf_hkdf_reset_ex(void *vctx, int on_free)
133
0
{
134
0
    KDF_HKDF *ctx = (KDF_HKDF *)vctx;
135
0
    void *provctx = ctx->provctx;
136
0
    int preserve_digest = on_free ? 0 : ctx->fixed_digest;
137
0
    PROV_DIGEST save_prov_digest = { 0 };
138
139
    /* For fixed digests just save and restore the PROV_DIGEST object */
140
0
    if (preserve_digest)
141
0
        save_prov_digest = ctx->digest;
142
0
    else
143
0
        ossl_prov_digest_reset(&ctx->digest);
144
#ifdef OPENSSL_PEDANTIC_ZEROIZATION
145
    OPENSSL_clear_free(ctx->salt, ctx->salt_len);
146
#else
147
0
    OPENSSL_free(ctx->salt);
148
0
#endif
149
0
    OPENSSL_free(ctx->prefix);
150
0
    OPENSSL_free(ctx->label);
151
0
    OPENSSL_clear_free(ctx->data, ctx->data_len);
152
0
    OPENSSL_clear_free(ctx->key, ctx->key_len);
153
0
    OPENSSL_clear_free(ctx->info, ctx->info_len);
154
0
    memset(ctx, 0, sizeof(*ctx));
155
0
    ctx->provctx = provctx;
156
0
    if (preserve_digest) {
157
0
        ctx->fixed_digest = preserve_digest;
158
0
        ctx->digest = save_prov_digest;
159
0
    }
160
0
}
161
162
static void *kdf_hkdf_dup(void *vctx)
163
0
{
164
0
    const KDF_HKDF *src = (const KDF_HKDF *)vctx;
165
0
    KDF_HKDF *dest;
166
167
0
    dest = kdf_hkdf_new(src->provctx);
168
0
    if (dest != NULL) {
169
0
        if (!ossl_prov_memdup(src->salt, src->salt_len, &dest->salt,
170
0
                &dest->salt_len)
171
0
            || !ossl_prov_memdup(src->key, src->key_len,
172
0
                &dest->key, &dest->key_len)
173
0
            || !ossl_prov_memdup(src->prefix, src->prefix_len,
174
0
                &dest->prefix, &dest->prefix_len)
175
0
            || !ossl_prov_memdup(src->label, src->label_len,
176
0
                &dest->label, &dest->label_len)
177
0
            || !ossl_prov_memdup(src->data, src->data_len,
178
0
                &dest->data, &dest->data_len)
179
0
            || !ossl_prov_memdup(src->info, src->info_len,
180
0
                &dest->info, &dest->info_len)
181
0
            || !ossl_prov_digest_copy(&dest->digest, &src->digest))
182
0
            goto err;
183
0
        dest->mode = src->mode;
184
0
        dest->fixed_digest = src->fixed_digest;
185
0
        OSSL_FIPS_IND_COPY(dest, src)
186
0
    }
187
0
    return dest;
188
189
0
err:
190
0
    kdf_hkdf_free(dest);
191
0
    return NULL;
192
0
}
193
194
static size_t kdf_hkdf_size(KDF_HKDF *ctx)
195
0
{
196
0
    int sz;
197
0
    const EVP_MD *md = ossl_prov_digest_md(&ctx->digest);
198
199
0
    if (ctx->mode != EVP_KDF_HKDF_MODE_EXTRACT_ONLY)
200
0
        return SIZE_MAX;
201
202
0
    if (md == NULL) {
203
0
        ERR_raise(ERR_LIB_PROV, PROV_R_MISSING_MESSAGE_DIGEST);
204
0
        return 0;
205
0
    }
206
0
    sz = EVP_MD_get_size(md);
207
0
    if (sz <= 0)
208
0
        return 0;
209
210
0
    return sz;
211
0
}
212
213
#ifdef FIPS_MODULE
214
static int fips_hkdf_key_check_passed(KDF_HKDF *ctx)
215
{
216
    OSSL_LIB_CTX *libctx = PROV_LIBCTX_OF(ctx->provctx);
217
    int key_approved = ossl_kdf_check_key_size(ctx->key_len);
218
219
    if (!key_approved) {
220
        if (!OSSL_FIPS_IND_ON_UNAPPROVED(ctx, OSSL_FIPS_IND_SETTABLE0,
221
                libctx, "HKDF", "Key size",
222
                ossl_fips_config_hkdf_key_check)) {
223
            ERR_raise(ERR_LIB_PROV, PROV_R_INVALID_KEY_LENGTH);
224
            return 0;
225
        }
226
    }
227
    return 1;
228
}
229
#endif
230
231
static int kdf_hkdf_derive(void *vctx, unsigned char *key, size_t keylen,
232
    const OSSL_PARAM params[])
233
0
{
234
0
    KDF_HKDF *ctx = (KDF_HKDF *)vctx;
235
0
    OSSL_LIB_CTX *libctx = PROV_LIBCTX_OF(ctx->provctx);
236
0
    const EVP_MD *md;
237
238
0
    if (!ossl_prov_is_running() || !kdf_hkdf_set_ctx_params(ctx, params))
239
0
        return 0;
240
241
0
    md = ossl_prov_digest_md(&ctx->digest);
242
0
    if (md == NULL) {
243
0
        ERR_raise(ERR_LIB_PROV, PROV_R_MISSING_MESSAGE_DIGEST);
244
0
        return 0;
245
0
    }
246
0
    if (ctx->key == NULL) {
247
0
        ERR_raise(ERR_LIB_PROV, PROV_R_MISSING_KEY);
248
0
        return 0;
249
0
    }
250
0
    if (keylen == 0) {
251
0
        ERR_raise(ERR_LIB_PROV, PROV_R_INVALID_KEY_LENGTH);
252
0
        return 0;
253
0
    }
254
255
0
    switch (ctx->mode) {
256
0
    case EVP_KDF_HKDF_MODE_EXTRACT_AND_EXPAND:
257
0
    default:
258
0
        return HKDF(libctx, md, ctx->salt, ctx->salt_len,
259
0
            ctx->key, ctx->key_len, ctx->info, ctx->info_len, key, keylen);
260
261
0
    case EVP_KDF_HKDF_MODE_EXTRACT_ONLY:
262
0
        return HKDF_Extract(libctx, md, ctx->salt, ctx->salt_len,
263
0
            ctx->key, ctx->key_len, key, keylen);
264
265
0
    case EVP_KDF_HKDF_MODE_EXPAND_ONLY:
266
0
        return HKDF_Expand(md, ctx->key, ctx->key_len, ctx->info,
267
0
            ctx->info_len, key, keylen);
268
0
    }
269
0
}
270
271
struct hkdf_all_set_ctx_params_st {
272
    OSSL_PARAM *mode;
273
    OSSL_PARAM *propq;
274
    OSSL_PARAM *digest;
275
    OSSL_PARAM *key;
276
    OSSL_PARAM *salt;
277
#ifdef FIPS_MODULE
278
    OSSL_PARAM *ind_k;
279
    OSSL_PARAM *ind_d;
280
#endif
281
    OSSL_PARAM *prefix;
282
    OSSL_PARAM *label;
283
    OSSL_PARAM *data;
284
    OSSL_PARAM *info[HKDF_MAX_INFOS];
285
    int num_info;
286
};
287
288
#define hkdf_set_ctx_params_st hkdf_all_set_ctx_params_st
289
#define hkdf_fixed_digest_set_ctx_params_st hkdf_all_set_ctx_params_st
290
#define kdf_tls1_3_set_ctx_params_st hkdf_all_set_ctx_params_st
291
292
#include "providers/implementations/kdfs/hkdf.inc"
293
294
static int hkdf_common_set_ctx_params(KDF_HKDF *ctx, struct hkdf_all_set_ctx_params_st *p)
295
0
{
296
0
    OSSL_LIB_CTX *libctx = PROV_LIBCTX_OF(ctx->provctx);
297
0
    int n;
298
299
0
    if (p->digest != NULL) {
300
0
        const EVP_MD *md = NULL;
301
302
0
        if (!ossl_prov_digest_load(&ctx->digest, p->digest, p->propq, libctx))
303
0
            return 0;
304
305
0
        md = ossl_prov_digest_md(&ctx->digest);
306
0
        if (EVP_MD_xof(md)) {
307
0
            ERR_raise(ERR_LIB_PROV, PROV_R_XOF_DIGESTS_NOT_ALLOWED);
308
0
            return 0;
309
0
        }
310
0
    }
311
312
0
    if (p->mode != NULL) {
313
0
        if (p->mode->data_type == OSSL_PARAM_UTF8_STRING) {
314
0
            if (OPENSSL_strcasecmp(p->mode->data, "EXTRACT_AND_EXPAND") == 0) {
315
0
                ctx->mode = EVP_KDF_HKDF_MODE_EXTRACT_AND_EXPAND;
316
0
            } else if (OPENSSL_strcasecmp(p->mode->data, "EXTRACT_ONLY") == 0) {
317
0
                ctx->mode = EVP_KDF_HKDF_MODE_EXTRACT_ONLY;
318
0
            } else if (OPENSSL_strcasecmp(p->mode->data, "EXPAND_ONLY") == 0) {
319
0
                ctx->mode = EVP_KDF_HKDF_MODE_EXPAND_ONLY;
320
0
            } else {
321
0
                ERR_raise(ERR_LIB_PROV, PROV_R_INVALID_MODE);
322
0
                return 0;
323
0
            }
324
0
        } else if (OSSL_PARAM_get_int(p->mode, &n)) {
325
0
            if (n != EVP_KDF_HKDF_MODE_EXTRACT_AND_EXPAND
326
0
                && n != EVP_KDF_HKDF_MODE_EXTRACT_ONLY
327
0
                && n != EVP_KDF_HKDF_MODE_EXPAND_ONLY) {
328
0
                ERR_raise(ERR_LIB_PROV, PROV_R_INVALID_MODE);
329
0
                return 0;
330
0
            }
331
0
            ctx->mode = n;
332
0
        } else {
333
0
            ERR_raise(ERR_LIB_PROV, PROV_R_INVALID_MODE);
334
0
            return 0;
335
0
        }
336
0
    }
337
338
0
    if (p->key != NULL) {
339
0
        OPENSSL_clear_free(ctx->key, ctx->key_len);
340
0
        ctx->key = NULL;
341
0
        if (!OSSL_PARAM_get_octet_string(p->key, (void **)&ctx->key, 0,
342
0
                &ctx->key_len))
343
0
            return 0;
344
0
    }
345
346
0
    if (p->salt != NULL) {
347
0
        OPENSSL_free(ctx->salt);
348
0
        ctx->salt = NULL;
349
0
        if (!OSSL_PARAM_get_octet_string(p->salt, (void **)&ctx->salt, 0,
350
0
                &ctx->salt_len))
351
0
            return 0;
352
0
    }
353
354
    /* Only relevant for HKDF not to the TLS 1.3 KDF */
355
0
    if (ossl_param_get1_concat_octet_string(p->num_info, p->info,
356
0
            &ctx->info, &ctx->info_len)
357
0
        == 0)
358
0
        return 0;
359
360
0
    return 1;
361
0
}
362
363
static int kdf_hkdf_set_ctx_params(void *vctx, const OSSL_PARAM params[])
364
0
{
365
0
    struct hkdf_all_set_ctx_params_st p;
366
0
    KDF_HKDF *ctx = vctx;
367
368
0
    if (ctx == NULL || !hkdf_set_ctx_params_decoder(params, &p))
369
0
        return 0;
370
371
0
    if (!OSSL_FIPS_IND_SET_CTX_FROM_PARAM(ctx, OSSL_FIPS_IND_SETTABLE0, p.ind_k))
372
0
        return 0;
373
374
0
    if (!hkdf_common_set_ctx_params(ctx, &p))
375
0
        return 0;
376
377
#ifdef FIPS_MODULE
378
    if (p.key != NULL)
379
        if (!fips_hkdf_key_check_passed(ctx))
380
            return 0;
381
#endif
382
383
0
    return 1;
384
0
}
385
386
static const OSSL_PARAM *kdf_hkdf_settable_ctx_params(ossl_unused void *ctx,
387
    ossl_unused void *provctx)
388
0
{
389
0
    return hkdf_set_ctx_params_list;
390
0
}
391
392
static const OSSL_PARAM *hkdf_gettable_ctx_params(ossl_unused void *ctx,
393
    ossl_unused void *provctx)
394
0
{
395
0
    return hkdf_get_ctx_params_list;
396
0
}
397
398
static int hkdf_common_get_ctx_params(void *vctx, OSSL_PARAM params[])
399
0
{
400
0
    KDF_HKDF *ctx = (KDF_HKDF *)vctx;
401
0
    struct hkdf_get_ctx_params_st p;
402
403
0
    if (ctx == NULL || !hkdf_get_ctx_params_decoder(params, &p))
404
0
        return 0;
405
406
0
    if (p.size != NULL) {
407
0
        size_t sz = kdf_hkdf_size(ctx);
408
409
0
        if (sz == 0)
410
0
            return 0;
411
0
        if (!OSSL_PARAM_set_size_t(p.size, sz))
412
0
            return 0;
413
0
    }
414
415
0
    if (p.digest != NULL) {
416
0
        const EVP_MD *md = ossl_prov_digest_md(&ctx->digest);
417
418
0
        if (md == NULL)
419
0
            return 0;
420
0
        else if (!OSSL_PARAM_set_utf8_string(p.digest, EVP_MD_get0_name(md)))
421
0
            return 0;
422
0
    }
423
424
    /* OSSL_KDF_PARAM_MODE has multiple parameter types, so look for all instances */
425
0
    if (p.mode != NULL) {
426
0
        if (p.mode->data_type == OSSL_PARAM_UTF8_STRING) {
427
0
            switch (ctx->mode) {
428
0
            case EVP_KDF_HKDF_MODE_EXTRACT_AND_EXPAND:
429
0
                if (!OSSL_PARAM_set_utf8_string(p.mode, "EXTRACT_AND_EXPAND"))
430
0
                    return 0;
431
0
                break;
432
0
            case EVP_KDF_HKDF_MODE_EXTRACT_ONLY:
433
0
                if (!OSSL_PARAM_set_utf8_string(p.mode, "EXTRACT_ONLY"))
434
0
                    return 0;
435
0
                break;
436
0
            case EVP_KDF_HKDF_MODE_EXPAND_ONLY:
437
0
                if (!OSSL_PARAM_set_utf8_string(p.mode, "EXPAND_ONLY"))
438
0
                    return 0;
439
0
                break;
440
0
            default:
441
0
                return 0;
442
0
            }
443
0
        } else {
444
0
            if (!OSSL_PARAM_set_int(p.mode, ctx->mode))
445
0
                return 0;
446
0
        }
447
0
    }
448
449
0
    if (p.salt != NULL) {
450
0
        if (ctx->salt == NULL || ctx->salt_len == 0)
451
0
            p.salt->return_size = 0;
452
0
        else if (!OSSL_PARAM_set_octet_string(p.salt, ctx->salt, ctx->salt_len))
453
0
            return 0;
454
0
    }
455
456
0
    if (p.info != NULL) {
457
0
        if (ctx->info == NULL || ctx->info_len == 0)
458
0
            p.info->return_size = 0;
459
0
        else if (!OSSL_PARAM_set_octet_string(p.info, ctx->info, ctx->info_len))
460
0
            return 0;
461
0
    }
462
463
0
    if (!OSSL_FIPS_IND_GET_CTX_FROM_PARAM(ctx, p.ind))
464
0
        return 0;
465
466
0
    return 1;
467
0
}
468
469
const OSSL_DISPATCH ossl_kdf_hkdf_functions[] = {
470
    { OSSL_FUNC_KDF_NEWCTX, (void (*)(void))kdf_hkdf_new },
471
    { OSSL_FUNC_KDF_DUPCTX, (void (*)(void))kdf_hkdf_dup },
472
    { OSSL_FUNC_KDF_FREECTX, (void (*)(void))kdf_hkdf_free },
473
    { OSSL_FUNC_KDF_RESET, (void (*)(void))kdf_hkdf_reset },
474
    { OSSL_FUNC_KDF_DERIVE, (void (*)(void))kdf_hkdf_derive },
475
    { OSSL_FUNC_KDF_SETTABLE_CTX_PARAMS,
476
        (void (*)(void))kdf_hkdf_settable_ctx_params },
477
    { OSSL_FUNC_KDF_SET_CTX_PARAMS, (void (*)(void))kdf_hkdf_set_ctx_params },
478
    { OSSL_FUNC_KDF_GETTABLE_CTX_PARAMS,
479
        (void (*)(void))hkdf_gettable_ctx_params },
480
    { OSSL_FUNC_KDF_GET_CTX_PARAMS, (void (*)(void))hkdf_common_get_ctx_params },
481
    OSSL_DISPATCH_END
482
};
483
484
static void *kdf_hkdf_fixed_digest_new(void *provctx, const char *digest)
485
0
{
486
0
    OSSL_LIB_CTX *libctx = PROV_LIBCTX_OF(provctx);
487
0
    KDF_HKDF *ctx;
488
0
    OSSL_PARAM param;
489
490
0
    ctx = kdf_hkdf_new(provctx);
491
0
    if (ctx == NULL)
492
0
        return NULL;
493
494
0
    param = OSSL_PARAM_construct_utf8_string(OSSL_ALG_PARAM_DIGEST,
495
0
        (char *)digest, 0);
496
0
    if (!ossl_prov_digest_load(&ctx->digest, &param, NULL, libctx)) {
497
0
        kdf_hkdf_free(ctx);
498
0
        return NULL;
499
0
    }
500
501
    /* Now the digest can no longer be changed */
502
0
    ctx->fixed_digest = 1;
503
504
0
    return ctx;
505
0
}
506
507
static int kdf_hkdf_fixed_digest_set_ctx_params(void *vctx, const OSSL_PARAM params[])
508
0
{
509
0
    struct hkdf_all_set_ctx_params_st p;
510
0
    KDF_HKDF *ctx = vctx;
511
512
0
    if (ctx == NULL || !hkdf_fixed_digest_set_ctx_params_decoder(params, &p))
513
0
        return 0;
514
515
0
    if (!OSSL_FIPS_IND_SET_CTX_FROM_PARAM(ctx, OSSL_FIPS_IND_SETTABLE0, p.ind_k))
516
0
        return 0;
517
518
0
    if (!hkdf_common_set_ctx_params(ctx, &p))
519
0
        return 0;
520
521
#ifdef FIPS_MODULE
522
    if (p.key != NULL)
523
        if (!fips_hkdf_key_check_passed(ctx))
524
            return 0;
525
#endif
526
527
0
    return 1;
528
0
}
529
530
static const OSSL_PARAM *kdf_hkdf_fixed_digest_settable_ctx_params(ossl_unused void *ctx, ossl_unused void *provctx)
531
0
{
532
0
    return hkdf_fixed_digest_set_ctx_params_list;
533
0
}
534
535
#define KDF_HKDF_FIXED_DIGEST_NEW(hashname, hashstring)        \
536
    static void *kdf_hkdf_##hashname##_new(void *provctx)      \
537
0
    {                                                          \
538
0
        return kdf_hkdf_fixed_digest_new(provctx, hashstring); \
539
0
    }
Unexecuted instantiation: hkdf.c:kdf_hkdf_sha256_new
Unexecuted instantiation: hkdf.c:kdf_hkdf_sha384_new
Unexecuted instantiation: hkdf.c:kdf_hkdf_sha512_new
540
541
KDF_HKDF_FIXED_DIGEST_NEW(sha256, "SHA256")
542
KDF_HKDF_FIXED_DIGEST_NEW(sha384, "SHA384")
543
KDF_HKDF_FIXED_DIGEST_NEW(sha512, "SHA512")
544
545
#define MAKE_KDF_HKDF_FIXED_DIGEST_FUNCTIONS(hashname)                                                    \
546
    const OSSL_DISPATCH ossl_kdf_hkdf_##hashname##_functions[] = {                                        \
547
        { OSSL_FUNC_KDF_NEWCTX, (void (*)(void))kdf_hkdf_##hashname##_new },                              \
548
        { OSSL_FUNC_KDF_DUPCTX, (void (*)(void))kdf_hkdf_dup },                                           \
549
        { OSSL_FUNC_KDF_FREECTX, (void (*)(void))kdf_hkdf_free },                                         \
550
        { OSSL_FUNC_KDF_RESET, (void (*)(void))kdf_hkdf_reset },                                          \
551
        { OSSL_FUNC_KDF_DERIVE, (void (*)(void))kdf_hkdf_derive },                                        \
552
        { OSSL_FUNC_KDF_SETTABLE_CTX_PARAMS, (void (*)(void))kdf_hkdf_fixed_digest_settable_ctx_params }, \
553
        { OSSL_FUNC_KDF_SET_CTX_PARAMS, (void (*)(void))kdf_hkdf_fixed_digest_set_ctx_params },           \
554
        { OSSL_FUNC_KDF_GETTABLE_CTX_PARAMS, (void (*)(void))hkdf_gettable_ctx_params },                  \
555
        { OSSL_FUNC_KDF_GET_CTX_PARAMS, (void (*)(void))hkdf_common_get_ctx_params },                     \
556
        OSSL_DISPATCH_END                                                                                 \
557
    };
558
559
MAKE_KDF_HKDF_FIXED_DIGEST_FUNCTIONS(sha256)
560
MAKE_KDF_HKDF_FIXED_DIGEST_FUNCTIONS(sha384)
561
MAKE_KDF_HKDF_FIXED_DIGEST_FUNCTIONS(sha512)
562
563
/*
564
 * Refer to "HMAC-based Extract-and-Expand Key Derivation Function (HKDF)"
565
 * Section 2 (https://tools.ietf.org/html/rfc5869#section-2) and
566
 * "Cryptographic Extraction and Key Derivation: The HKDF Scheme"
567
 * Section 4.2 (https://eprint.iacr.org/2010/264.pdf).
568
 *
569
 * From the paper:
570
 *   The scheme HKDF is specified as:
571
 *     HKDF(XTS, SKM, CTXinfo, L) = K(1) | K(2) | ... | K(t)
572
 *
573
 *     where:
574
 *       SKM is source key material
575
 *       XTS is extractor salt (which may be null or constant)
576
 *       CTXinfo is context information (may be null)
577
 *       L is the number of key bits to be produced by KDF
578
 *       k is the output length in bits of the hash function used with HMAC
579
 *       t = ceil(L/k)
580
 *       the value K(t) is truncated to its first d = L mod k bits.
581
 *
582
 * From RFC 5869:
583
 *   2.2.  Step 1: Extract
584
 *     HKDF-Extract(salt, IKM) -> PRK
585
 *   2.3.  Step 2: Expand
586
 *     HKDF-Expand(PRK, info, L) -> OKM
587
 */
588
static int HKDF(OSSL_LIB_CTX *libctx, const EVP_MD *evp_md,
589
    const unsigned char *salt, size_t salt_len,
590
    const unsigned char *ikm, size_t ikm_len,
591
    const unsigned char *info, size_t info_len,
592
    unsigned char *okm, size_t okm_len)
593
0
{
594
0
    unsigned char prk[EVP_MAX_MD_SIZE];
595
0
    int ret, sz;
596
0
    size_t prk_len;
597
598
0
    sz = EVP_MD_get_size(evp_md);
599
0
    if (sz <= 0)
600
0
        return 0;
601
0
    prk_len = (size_t)sz;
602
603
    /* Step 1: HKDF-Extract(salt, IKM) -> PRK */
604
0
    if (!HKDF_Extract(libctx, evp_md,
605
0
            salt, salt_len, ikm, ikm_len, prk, prk_len))
606
0
        return 0;
607
608
    /* Step 2: HKDF-Expand(PRK, info, L) -> OKM */
609
0
    ret = HKDF_Expand(evp_md, prk, prk_len, info, info_len, okm, okm_len);
610
0
    OPENSSL_cleanse(prk, sizeof(prk));
611
612
0
    return ret;
613
0
}
614
615
/*
616
 * Refer to "HMAC-based Extract-and-Expand Key Derivation Function (HKDF)"
617
 * Section 2.2 (https://tools.ietf.org/html/rfc5869#section-2.2).
618
 *
619
 * 2.2.  Step 1: Extract
620
 *
621
 *   HKDF-Extract(salt, IKM) -> PRK
622
 *
623
 *   Options:
624
 *      Hash     a hash function; HashLen denotes the length of the
625
 *               hash function output in octets
626
 *
627
 *   Inputs:
628
 *      salt     optional salt value (a non-secret random value);
629
 *               if not provided, it is set to a string of HashLen zeros.
630
 *      IKM      input keying material
631
 *
632
 *   Output:
633
 *      PRK      a pseudorandom key (of HashLen octets)
634
 *
635
 *   The output PRK is calculated as follows:
636
 *
637
 *   PRK = HMAC-Hash(salt, IKM)
638
 */
639
static int HKDF_Extract(OSSL_LIB_CTX *libctx, const EVP_MD *evp_md,
640
    const unsigned char *salt, size_t salt_len,
641
    const unsigned char *ikm, size_t ikm_len,
642
    unsigned char *prk, size_t prk_len)
643
0
{
644
0
    int sz = EVP_MD_get_size(evp_md);
645
646
0
    if (sz <= 0)
647
0
        return 0;
648
0
    if (prk_len != (size_t)sz) {
649
0
        ERR_raise(ERR_LIB_PROV, PROV_R_WRONG_OUTPUT_BUFFER_SIZE);
650
0
        return 0;
651
0
    }
652
    /* calc: PRK = HMAC-Hash(salt, IKM) */
653
0
    return EVP_Q_mac(libctx, "HMAC", NULL, EVP_MD_get0_name(evp_md), NULL, salt,
654
0
               salt_len, ikm, ikm_len, prk, EVP_MD_get_size(evp_md), NULL)
655
0
        != NULL;
656
0
}
657
658
/*
659
 * Refer to "HMAC-based Extract-and-Expand Key Derivation Function (HKDF)"
660
 * Section 2.3 (https://tools.ietf.org/html/rfc5869#section-2.3).
661
 *
662
 * 2.3.  Step 2: Expand
663
 *
664
 *   HKDF-Expand(PRK, info, L) -> OKM
665
 *
666
 *   Options:
667
 *      Hash     a hash function; HashLen denotes the length of the
668
 *               hash function output in octets
669
 *
670
 *   Inputs:
671
 *      PRK      a pseudorandom key of at least HashLen octets
672
 *               (usually, the output from the extract step)
673
 *      info     optional context and application specific information
674
 *               (can be a zero-length string)
675
 *      L        length of output keying material in octets
676
 *               (<= 255*HashLen)
677
 *
678
 *   Output:
679
 *      OKM      output keying material (of L octets)
680
 *
681
 *   The output OKM is calculated as follows:
682
 *
683
 *   N = ceil(L/HashLen)
684
 *   T = T(1) | T(2) | T(3) | ... | T(N)
685
 *   OKM = first L octets of T
686
 *
687
 *   where:
688
 *   T(0) = empty string (zero length)
689
 *   T(1) = HMAC-Hash(PRK, T(0) | info | 0x01)
690
 *   T(2) = HMAC-Hash(PRK, T(1) | info | 0x02)
691
 *   T(3) = HMAC-Hash(PRK, T(2) | info | 0x03)
692
 *   ...
693
 *
694
 *   (where the constant concatenated to the end of each T(n) is a
695
 *   single octet.)
696
 */
697
static int HKDF_Expand(const EVP_MD *evp_md,
698
    const unsigned char *prk, size_t prk_len,
699
    const unsigned char *info, size_t info_len,
700
    unsigned char *okm, size_t okm_len)
701
0
{
702
0
    HMAC_CTX *hmac;
703
0
    int ret = 0, sz;
704
0
    unsigned int i;
705
0
    unsigned char prev[EVP_MAX_MD_SIZE];
706
0
    size_t done_len = 0, dig_len, n;
707
708
0
    sz = EVP_MD_get_size(evp_md);
709
0
    if (sz <= 0)
710
0
        return 0;
711
0
    dig_len = (size_t)sz;
712
713
    /* calc: N = ceil(L/HashLen) */
714
0
    n = okm_len / dig_len;
715
0
    if (okm_len % dig_len)
716
0
        n++;
717
718
0
    if (n > 255 || okm == NULL)
719
0
        return 0;
720
721
0
    if ((hmac = HMAC_CTX_new()) == NULL)
722
0
        return 0;
723
724
0
    if (!HMAC_Init_ex(hmac, prk, (int)prk_len, evp_md, NULL))
725
0
        goto err;
726
727
0
    for (i = 1; i <= n; i++) {
728
0
        size_t copy_len;
729
0
        const unsigned char ctr = i;
730
731
        /* calc: T(i) = HMAC-Hash(PRK, T(i - 1) | info | i) */
732
0
        if (i > 1) {
733
0
            if (!HMAC_Init_ex(hmac, NULL, 0, NULL, NULL))
734
0
                goto err;
735
736
0
            if (!HMAC_Update(hmac, prev, dig_len))
737
0
                goto err;
738
0
        }
739
740
0
        if (!HMAC_Update(hmac, info, info_len))
741
0
            goto err;
742
743
0
        if (!HMAC_Update(hmac, &ctr, 1))
744
0
            goto err;
745
746
0
        if (!HMAC_Final(hmac, prev, NULL))
747
0
            goto err;
748
749
0
        copy_len = (dig_len > okm_len - done_len) ? okm_len - done_len : dig_len;
750
751
0
        memcpy(okm + done_len, prev, copy_len);
752
753
0
        done_len += copy_len;
754
0
    }
755
0
    ret = 1;
756
757
0
err:
758
0
    OPENSSL_cleanse(prev, sizeof(prev));
759
0
    HMAC_CTX_free(hmac);
760
0
    return ret;
761
0
}
762
763
/*
764
 * TLS uses slight variations of the above and for FIPS validation purposes,
765
 * they need to be present here.
766
 * Refer to RFC 8446 section 7 for specific details.
767
 */
768
769
/*
770
 * Given a |secret|; a |label| of length |labellen|; and |data| of length
771
 * |datalen| (e.g. typically a hash of the handshake messages), derive a new
772
 * secret |outlen| bytes long and store it in the location pointed to be |out|.
773
 * The |data| value may be zero length. Returns 1 on success and 0 on failure.
774
 */
775
static int prov_tls13_hkdf_expand(const EVP_MD *md,
776
    const unsigned char *key, size_t keylen,
777
    const unsigned char *prefix, size_t prefixlen,
778
    const unsigned char *label, size_t labellen,
779
    const unsigned char *data, size_t datalen,
780
    unsigned char *out, size_t outlen)
781
0
{
782
0
    size_t hkdflabellen;
783
0
    unsigned char hkdflabel[HKDF_MAXBUF];
784
0
    WPACKET pkt;
785
786
    /*
787
     * 2 bytes for length of derived secret + 1 byte for length of combined
788
     * prefix and label + bytes for the label itself + 1 byte length of hash
789
     * + bytes for the hash itself.  We've got the maximum the KDF can handle
790
     * which should always be sufficient.
791
     */
792
0
    if (!WPACKET_init_static_len(&pkt, hkdflabel, sizeof(hkdflabel), 0)
793
0
        || !WPACKET_put_bytes_u16(&pkt, outlen)
794
0
        || !WPACKET_start_sub_packet_u8(&pkt)
795
0
        || !WPACKET_memcpy(&pkt, prefix, prefixlen)
796
0
        || !WPACKET_memcpy(&pkt, label, labellen)
797
0
        || !WPACKET_close(&pkt)
798
0
        || !WPACKET_sub_memcpy_u8(&pkt, data, (data == NULL) ? 0 : datalen)
799
0
        || !WPACKET_get_total_written(&pkt, &hkdflabellen)
800
0
        || !WPACKET_finish(&pkt)) {
801
0
        WPACKET_cleanup(&pkt);
802
0
        return 0;
803
0
    }
804
805
0
    return HKDF_Expand(md, key, keylen, hkdflabel, hkdflabellen,
806
0
        out, outlen);
807
0
}
808
809
static int prov_tls13_hkdf_generate_secret(OSSL_LIB_CTX *libctx,
810
    const EVP_MD *md,
811
    const unsigned char *prevsecret,
812
    size_t prevsecretlen,
813
    const unsigned char *insecret,
814
    size_t insecretlen,
815
    const unsigned char *prefix,
816
    size_t prefixlen,
817
    const unsigned char *label,
818
    size_t labellen,
819
    unsigned char *out, size_t outlen)
820
0
{
821
0
    size_t mdlen;
822
0
    int ret;
823
0
    unsigned char preextractsec[EVP_MAX_MD_SIZE];
824
    /* Always filled with zeros */
825
0
    static const unsigned char default_zeros[EVP_MAX_MD_SIZE];
826
827
0
    ret = EVP_MD_get_size(md);
828
    /* Ensure cast to size_t is safe */
829
0
    if (ret <= 0)
830
0
        return 0;
831
0
    mdlen = (size_t)ret;
832
833
0
    if (insecret == NULL) {
834
0
        insecret = default_zeros;
835
0
        insecretlen = mdlen;
836
0
    }
837
0
    if (prevsecret == NULL) {
838
0
        prevsecret = default_zeros;
839
0
        prevsecretlen = mdlen;
840
0
    } else {
841
0
        EVP_MD_CTX *mctx = EVP_MD_CTX_new();
842
0
        unsigned char hash[EVP_MAX_MD_SIZE];
843
844
        /* The pre-extract derive step uses a hash of no messages */
845
0
        if (mctx == NULL
846
0
            || EVP_DigestInit_ex(mctx, md, NULL) <= 0
847
0
            || EVP_DigestFinal_ex(mctx, hash, NULL) <= 0) {
848
0
            EVP_MD_CTX_free(mctx);
849
0
            return 0;
850
0
        }
851
0
        EVP_MD_CTX_free(mctx);
852
853
        /* Generate the pre-extract secret */
854
0
        if (!prov_tls13_hkdf_expand(md, prevsecret, prevsecretlen,
855
0
                prefix, prefixlen, label, labellen,
856
0
                hash, mdlen, preextractsec, mdlen))
857
0
            return 0;
858
0
        prevsecret = preextractsec;
859
0
        prevsecretlen = mdlen;
860
0
    }
861
862
0
    ret = HKDF_Extract(libctx, md, prevsecret, prevsecretlen,
863
0
        insecret, insecretlen, out, outlen);
864
865
0
    if (prevsecret == preextractsec)
866
0
        OPENSSL_cleanse(preextractsec, mdlen);
867
0
    return ret;
868
0
}
869
870
#ifdef FIPS_MODULE
871
static int fips_tls1_3_digest_check_passed(KDF_HKDF *ctx, const EVP_MD *md)
872
{
873
    OSSL_LIB_CTX *libctx = PROV_LIBCTX_OF(ctx->provctx);
874
    /*
875
     * Perform digest check
876
     *
877
     * According to RFC 8446 appendix B.4, the valid hash functions are
878
     * specified in FIPS 180-4. However, it only lists SHA2-256 and SHA2-384 in
879
     * the table. ACVP also only lists the same set of hash functions.
880
     */
881
    int digest_unapproved = !EVP_MD_is_a(md, SN_sha256)
882
        && !EVP_MD_is_a(md, SN_sha384);
883
884
    if (digest_unapproved) {
885
        if (!OSSL_FIPS_IND_ON_UNAPPROVED(ctx, OSSL_FIPS_IND_SETTABLE0,
886
                libctx, "TLS13 KDF", "Digest",
887
                ossl_fips_config_tls13_kdf_digest_check)) {
888
            ERR_raise(ERR_LIB_PROV, PROV_R_DIGEST_NOT_ALLOWED);
889
            return 0;
890
        }
891
    }
892
    return 1;
893
}
894
895
/*
896
 * Calculate the correct length of the secret key.
897
 *
898
 * RFC 8446:
899
 *   If a given secret is not available, then the 0-value consisting of a
900
 *   string of Hash.length bytes set to zeros is used.
901
 */
902
static size_t fips_tls1_3_key_size(KDF_HKDF *ctx)
903
{
904
    const EVP_MD *md = ossl_prov_digest_md(&ctx->digest);
905
    size_t key_size = 0;
906
907
    if (ctx->key != NULL)
908
        key_size = ctx->key_len;
909
    else if (md != NULL)
910
        key_size = EVP_MD_size(md);
911
912
    return key_size;
913
}
914
915
static int fips_tls1_3_key_check_passed(KDF_HKDF *ctx)
916
{
917
    OSSL_LIB_CTX *libctx = PROV_LIBCTX_OF(ctx->provctx);
918
    int key_approved = ossl_kdf_check_key_size(fips_tls1_3_key_size(ctx));
919
920
    if (!key_approved) {
921
        if (!OSSL_FIPS_IND_ON_UNAPPROVED(ctx, OSSL_FIPS_IND_SETTABLE1,
922
                libctx, "TLS13 KDF", "Key size",
923
                ossl_fips_config_tls13_kdf_key_check)) {
924
            ERR_raise(ERR_LIB_PROV, PROV_R_INVALID_KEY_LENGTH);
925
            return 0;
926
        }
927
    }
928
    return 1;
929
}
930
#endif
931
932
static int kdf_tls1_3_derive(void *vctx, unsigned char *key, size_t keylen,
933
    const OSSL_PARAM params[])
934
0
{
935
0
    KDF_HKDF *ctx = (KDF_HKDF *)vctx;
936
0
    const EVP_MD *md;
937
938
0
    if (!ossl_prov_is_running() || !kdf_tls1_3_set_ctx_params(ctx, params))
939
0
        return 0;
940
941
0
    md = ossl_prov_digest_md(&ctx->digest);
942
0
    if (md == NULL) {
943
0
        ERR_raise(ERR_LIB_PROV, PROV_R_MISSING_MESSAGE_DIGEST);
944
0
        return 0;
945
0
    }
946
947
0
    switch (ctx->mode) {
948
0
    default:
949
0
        return 0;
950
951
0
    case EVP_KDF_HKDF_MODE_EXTRACT_ONLY:
952
0
        return prov_tls13_hkdf_generate_secret(PROV_LIBCTX_OF(ctx->provctx),
953
0
            md,
954
0
            ctx->salt, ctx->salt_len,
955
0
            ctx->key, ctx->key_len,
956
0
            ctx->prefix, ctx->prefix_len,
957
0
            ctx->label, ctx->label_len,
958
0
            key, keylen);
959
960
0
    case EVP_KDF_HKDF_MODE_EXPAND_ONLY:
961
0
        return prov_tls13_hkdf_expand(md, ctx->key, ctx->key_len,
962
0
            ctx->prefix, ctx->prefix_len,
963
0
            ctx->label, ctx->label_len,
964
0
            ctx->data, ctx->data_len,
965
0
            key, keylen);
966
0
    }
967
0
}
968
969
static int kdf_tls1_3_set_ctx_params(void *vctx, const OSSL_PARAM params[])
970
0
{
971
0
    struct hkdf_all_set_ctx_params_st p;
972
0
    KDF_HKDF *ctx = vctx;
973
974
0
    if (ctx == NULL || !kdf_tls1_3_set_ctx_params_decoder(params, &p))
975
0
        return 0;
976
977
0
    if (!OSSL_FIPS_IND_SET_CTX_FROM_PARAM(ctx, OSSL_FIPS_IND_SETTABLE0, p.ind_d))
978
0
        return 0;
979
0
    if (!OSSL_FIPS_IND_SET_CTX_FROM_PARAM(ctx, OSSL_FIPS_IND_SETTABLE1, p.ind_k))
980
0
        return 0;
981
982
0
    if (!hkdf_common_set_ctx_params(ctx, &p))
983
0
        return 0;
984
985
0
    if (ctx->mode == EVP_KDF_HKDF_MODE_EXTRACT_AND_EXPAND) {
986
0
        ERR_raise(ERR_LIB_PROV, PROV_R_INVALID_MODE);
987
0
        return 0;
988
0
    }
989
990
0
    if (p.prefix != NULL) {
991
0
        OPENSSL_free(ctx->prefix);
992
0
        ctx->prefix = NULL;
993
0
        if (!OSSL_PARAM_get_octet_string(p.prefix, (void **)&ctx->prefix, 0,
994
0
                &ctx->prefix_len))
995
0
            return 0;
996
0
    }
997
998
0
    if (p.label != NULL) {
999
0
        OPENSSL_free(ctx->label);
1000
0
        ctx->label = NULL;
1001
0
        if (!OSSL_PARAM_get_octet_string(p.label, (void **)&ctx->label, 0,
1002
0
                &ctx->label_len))
1003
0
            return 0;
1004
0
    }
1005
1006
0
    if (p.data != NULL) {
1007
0
        OPENSSL_clear_free(ctx->data, ctx->data_len);
1008
0
        ctx->data = NULL;
1009
0
        if (!OSSL_PARAM_get_octet_string(p.data, (void **)&ctx->data, 0,
1010
0
                &ctx->data_len))
1011
0
            return 0;
1012
0
    }
1013
1014
#ifdef FIPS_MODULE
1015
    if (p.digest != NULL) {
1016
        const EVP_MD *md = ossl_prov_digest_md(&ctx->digest);
1017
1018
        if (!fips_tls1_3_digest_check_passed(ctx, md))
1019
            return 0;
1020
    }
1021
1022
    if (p.key != NULL)
1023
        if (!fips_tls1_3_key_check_passed(ctx))
1024
            return 0;
1025
#endif
1026
1027
0
    return 1;
1028
0
}
1029
1030
static const OSSL_PARAM *kdf_tls1_3_settable_ctx_params(ossl_unused void *ctx,
1031
    ossl_unused void *provctx)
1032
0
{
1033
0
    return kdf_tls1_3_set_ctx_params_list;
1034
0
}
1035
1036
const OSSL_DISPATCH ossl_kdf_tls1_3_kdf_functions[] = {
1037
    { OSSL_FUNC_KDF_NEWCTX, (void (*)(void))kdf_hkdf_new },
1038
    { OSSL_FUNC_KDF_DUPCTX, (void (*)(void))kdf_hkdf_dup },
1039
    { OSSL_FUNC_KDF_FREECTX, (void (*)(void))kdf_hkdf_free },
1040
    { OSSL_FUNC_KDF_RESET, (void (*)(void))kdf_hkdf_reset },
1041
    { OSSL_FUNC_KDF_DERIVE, (void (*)(void))kdf_tls1_3_derive },
1042
    { OSSL_FUNC_KDF_SETTABLE_CTX_PARAMS,
1043
        (void (*)(void))kdf_tls1_3_settable_ctx_params },
1044
    { OSSL_FUNC_KDF_SET_CTX_PARAMS, (void (*)(void))kdf_tls1_3_set_ctx_params },
1045
    { OSSL_FUNC_KDF_GETTABLE_CTX_PARAMS,
1046
        (void (*)(void))hkdf_gettable_ctx_params },
1047
    { OSSL_FUNC_KDF_GET_CTX_PARAMS, (void (*)(void))hkdf_common_get_ctx_params },
1048
    OSSL_DISPATCH_END
1049
};