1 /*
2 * Copyright 2021-2023 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 * Some ctrls depend on deprecated functionality. We trust that this is
12 * functionality that remains internally even when 'no-deprecated' is
13 * configured. When we drop #legacy EVP_PKEYs, this source should be
14 * possible to drop as well.
15 */
16 #include "internal/deprecated.h"
17
18 #include <string.h>
19
20 /* The following includes get us all the EVP_PKEY_CTRL macros */
21 #include <openssl/dh.h>
22 #include <openssl/dsa.h>
23 #include <openssl/ec.h>
24 #include <openssl/rsa.h>
25 #include <openssl/kdf.h>
26
27 /* This include gets us all the OSSL_PARAM key string macros */
28 #include <openssl/core_names.h>
29
30 #include <openssl/err.h>
31 #include <openssl/evperr.h>
32 #include <openssl/params.h>
33 #include "internal/nelem.h"
34 #include "internal/cryptlib.h"
35 #include "internal/ffc.h"
36 #include "crypto/evp.h"
37 #include "crypto/dh.h"
38 #include "crypto/ec.h"
39
40 struct translation_ctx_st; /* Forwarding */
41 struct translation_st; /* Forwarding */
42
43 /*
44 * The fixup_args functions are called with the following parameters:
45 *
46 * |state| The state we're called in, explained further at the
47 * end of this comment.
48 * |translation| The translation item, to be pilfered for data as
49 * necessary.
50 * |ctx| The translation context, which contains copies of
51 * the following arguments, applicable according to
52 * the caller. All of the attributes in this context
53 * may be freely modified by the fixup_args function.
54 * For cleanup, call cleanup_translation_ctx().
55 *
56 * The |state| tells the fixup_args function something about the caller and
57 * what they may expect:
58 *
59 * PKEY The fixup_args function has been called
60 * from an EVP_PKEY payload getter / setter,
61 * and is fully responsible for getting or
62 * setting the requested data. With this
63 * state, the fixup_args function is expected
64 * to use or modify |*params|, depending on
65 * |action_type|.
66 *
67 * PRE_CTRL_TO_PARAMS The fixup_args function has been called
68 * POST_CTRL_TO_PARAMS from EVP_PKEY_CTX_ctrl(), to help with
69 * translating the ctrl data to an OSSL_PARAM
70 * element or back. The calling sequence is
71 * as follows:
72 *
73 * 1. fixup_args(PRE_CTRL_TO_PARAMS, ...)
74 * 2. EVP_PKEY_CTX_set_params() or
75 * EVP_PKEY_CTX_get_params()
76 * 3. fixup_args(POST_CTRL_TO_PARAMS, ...)
77 *
78 * With the PRE_CTRL_TO_PARAMS state, the
79 * fixup_args function is expected to modify
80 * the passed |*params| in whatever way
81 * necessary, when |action_type == SET|.
82 * With the POST_CTRL_TO_PARAMS state, the
83 * fixup_args function is expected to modify
84 * the passed |p2| in whatever way necessary,
85 * when |action_type == GET|.
86 *
87 * The return value from the fixup_args call
88 * with the POST_CTRL_TO_PARAMS state becomes
89 * the return value back to EVP_PKEY_CTX_ctrl().
90 *
91 * CLEANUP_CTRL_TO_PARAMS The cleanup_args functions has been called
92 * from EVP_PKEY_CTX_ctrl(), to clean up what
93 * the fixup_args function has done, if needed.
94 *
95 *
96 * PRE_CTRL_STR_TO_PARAMS The fixup_args function has been called
97 * POST_CTRL_STR_TO_PARAMS from EVP_PKEY_CTX_ctrl_str(), to help with
98 * translating the ctrl_str data to an
99 * OSSL_PARAM element or back. The calling
100 * sequence is as follows:
101 *
102 * 1. fixup_args(PRE_CTRL_STR_TO_PARAMS, ...)
103 * 2. EVP_PKEY_CTX_set_params() or
104 * EVP_PKEY_CTX_get_params()
105 * 3. fixup_args(POST_CTRL_STR_TO_PARAMS, ...)
106 *
107 * With the PRE_CTRL_STR_TO_PARAMS state,
108 * the fixup_args function is expected to
109 * modify the passed |*params| in whatever
110 * way necessary, when |action_type == SET|.
111 * With the POST_CTRL_STR_TO_PARAMS state,
112 * the fixup_args function is only expected
113 * to return a value.
114 *
115 * CLEANUP_CTRL_STR_TO_PARAMS The cleanup_args functions has been called
116 * from EVP_PKEY_CTX_ctrl_str(), to clean up
117 * what the fixup_args function has done, if
118 * needed.
119 *
120 * PRE_PARAMS_TO_CTRL The fixup_args function has been called
121 * POST_PARAMS_TO_CTRL from EVP_PKEY_CTX_get_params() or
122 * EVP_PKEY_CTX_set_params(), to help with
123 * translating the OSSL_PARAM data to the
124 * corresponding EVP_PKEY_CTX_ctrl() arguments
125 * or the other way around. The calling
126 * sequence is as follows:
127 *
128 * 1. fixup_args(PRE_PARAMS_TO_CTRL, ...)
129 * 2. EVP_PKEY_CTX_ctrl()
130 * 3. fixup_args(POST_PARAMS_TO_CTRL, ...)
131 *
132 * With the PRE_PARAMS_TO_CTRL state, the
133 * fixup_args function is expected to modify
134 * the passed |p1| and |p2| in whatever way
135 * necessary, when |action_type == SET|.
136 * With the POST_PARAMS_TO_CTRL state, the
137 * fixup_args function is expected to
138 * modify the passed |*params| in whatever
139 * way necessary, when |action_type == GET|.
140 *
141 * CLEANUP_PARAMS_TO_CTRL The cleanup_args functions has been called
142 * from EVP_PKEY_CTX_get_params() or
143 * EVP_PKEY_CTX_set_params(), to clean up what
144 * the fixup_args function has done, if needed.
145 */
146 enum state {
147 PKEY,
148 PRE_CTRL_TO_PARAMS, POST_CTRL_TO_PARAMS, CLEANUP_CTRL_TO_PARAMS,
149 PRE_CTRL_STR_TO_PARAMS, POST_CTRL_STR_TO_PARAMS, CLEANUP_CTRL_STR_TO_PARAMS,
150 PRE_PARAMS_TO_CTRL, POST_PARAMS_TO_CTRL, CLEANUP_PARAMS_TO_CTRL
151 };
152 enum action {
153 NONE = 0, GET = 1, SET = 2
154 };
155 typedef int fixup_args_fn(enum state state,
156 const struct translation_st *translation,
157 struct translation_ctx_st *ctx);
158 typedef int cleanup_args_fn(enum state state,
159 const struct translation_st *translation,
160 struct translation_ctx_st *ctx);
161
162 struct translation_ctx_st {
163 /*
164 * The EVP_PKEY_CTX, for calls on that structure, to be pilfered for data
165 * as necessary.
166 */
167 EVP_PKEY_CTX *pctx;
168 /*
169 * The action type (GET or SET). This may be 0 in some cases, and should
170 * be modified by the fixup_args function in the PRE states. It should
171 * otherwise remain untouched once set.
172 */
173 enum action action_type;
174 /*
175 * For ctrl to params translation, the actual ctrl command number used.
176 * For params to ctrl translation, 0.
177 */
178 int ctrl_cmd;
179 /*
180 * For ctrl_str to params translation, the actual ctrl command string
181 * used. In this case, the (string) value is always passed as |p2|.
182 * For params to ctrl translation, this is NULL. Along with it is also
183 * and indicator whether it matched |ctrl_str| or |ctrl_hexstr| in the
184 * translation item.
185 */
186 const char *ctrl_str;
187 int ishex;
188 /* the ctrl-style int argument. */
189 int p1;
190 /* the ctrl-style void* argument. */
191 void *p2;
192 /* a size, for passing back the |p2| size where applicable */
193 size_t sz;
194 /* pointer to the OSSL_PARAM-style params array. */
195 OSSL_PARAM *params;
196
197 /*-
198 * The following are used entirely internally by the fixup_args functions
199 * and should not be touched by the callers, at all.
200 */
201
202 /*
203 * Copy of the ctrl-style void* argument, if the fixup_args function
204 * needs to manipulate |p2| but wants to remember original.
205 */
206 void *orig_p2;
207 /* Diverse types of storage for the needy. */
208 char name_buf[OSSL_MAX_NAME_SIZE];
209 void *allocated_buf;
210 void *bufp;
211 size_t buflen;
212 };
213
214 struct translation_st {
215 /*-
216 * What this table item does.
217 *
218 * If the item has this set to 0, it means that both GET and SET are
219 * supported, and |fixup_args| will determine which it is. This is to
220 * support translations of ctrls where the action type depends on the
221 * value of |p1| or |p2| (ctrls are really bi-directional, but are
222 * seldom used that way).
223 *
224 * This can be also used in the lookup template when it looks up by
225 * OSSL_PARAM key, to indicate if a setter or a getter called.
226 */
227 enum action action_type;
228
229 /*-
230 * Conditions, for params->ctrl translations.
231 *
232 * In table item, |keytype1| and |keytype2| can be set to -1 to indicate
233 * that this item supports all key types (or rather, that |fixup_args|
234 * will check and return an error if it's not supported).
235 * Any of these may be set to 0 to indicate that they are unset.
236 */
237 int keytype1; /* The EVP_PKEY_XXX type, i.e. NIDs. #legacy */
238 int keytype2; /* Another EVP_PKEY_XXX type, used for aliases */
239 int optype; /* The operation type */
240
241 /*
242 * Lookup and translation attributes
243 *
244 * |ctrl_num|, |ctrl_str|, |ctrl_hexstr| and |param_key| are lookup
245 * attributes.
246 *
247 * |ctrl_num| may be 0 or that |param_key| may be NULL in the table item,
248 * but not at the same time. If they are, they are simply not used for
249 * lookup.
250 * When |ctrl_num| == 0, no ctrl will be called. Likewise, when
251 * |param_key| == NULL, no OSSL_PARAM setter/getter will be called.
252 * In that case the treatment of the translation item relies entirely on
253 * |fixup_args|, which is then assumed to have side effects.
254 *
255 * As a special case, it's possible to set |ctrl_hexstr| and assign NULL
256 * to |ctrl_str|. That will signal to default_fixup_args() that the
257 * value must always be interpreted as hex.
258 */
259 int ctrl_num; /* EVP_PKEY_CTRL_xxx */
260 const char *ctrl_str; /* The corresponding ctrl string */
261 const char *ctrl_hexstr; /* The alternative "hex{str}" ctrl string */
262 const char *param_key; /* The corresponding OSSL_PARAM key */
263 /*
264 * The appropriate OSSL_PARAM data type. This may be 0 to indicate that
265 * this OSSL_PARAM may have more than one data type, depending on input
266 * material. In this case, |fixup_args| is expected to check and handle
267 * it.
268 */
269 unsigned int param_data_type;
270
271 /*
272 * Fixer functions
273 *
274 * |fixup_args| is always called before (for SET) or after (for GET)
275 * the actual ctrl / OSSL_PARAM function.
276 */
277 fixup_args_fn *fixup_args;
278 };
279
280 /*-
281 * Fixer function implementations
282 * ==============================
283 */
284
285 /*
286 * default_check isn't a fixer per se, but rather a helper function to
287 * perform certain standard checks.
288 */
default_check(enum state state,const struct translation_st * translation,const struct translation_ctx_st * ctx)289 static int default_check(enum state state,
290 const struct translation_st *translation,
291 const struct translation_ctx_st *ctx)
292 {
293 switch (state) {
294 default:
295 break;
296 case PRE_CTRL_TO_PARAMS:
297 if (!ossl_assert(translation != NULL)) {
298 ERR_raise(ERR_LIB_EVP, EVP_R_COMMAND_NOT_SUPPORTED);
299 return -2;
300 }
301 if (!ossl_assert(translation->param_key != 0)
302 || !ossl_assert(translation->param_data_type != 0)) {
303 ERR_raise(ERR_LIB_EVP, ERR_R_INTERNAL_ERROR);
304 return -1;
305 }
306 break;
307 case PRE_CTRL_STR_TO_PARAMS:
308 /*
309 * For ctrl_str to params translation, we allow direct use of
310 * OSSL_PARAM keys as ctrl_str keys. Therefore, it's possible that
311 * we end up with |translation == NULL|, which is fine. The fixup
312 * function will have to deal with it carefully.
313 */
314 if (translation != NULL) {
315 if (!ossl_assert(translation->action_type != GET)) {
316 ERR_raise(ERR_LIB_EVP, EVP_R_COMMAND_NOT_SUPPORTED);
317 return -2;
318 }
319 if (!ossl_assert(translation->param_key != NULL)
320 || !ossl_assert(translation->param_data_type != 0)) {
321 ERR_raise(ERR_LIB_EVP, ERR_R_INTERNAL_ERROR);
322 return 0;
323 }
324 }
325 break;
326 case PRE_PARAMS_TO_CTRL:
327 case POST_PARAMS_TO_CTRL:
328 if (!ossl_assert(translation != NULL)) {
329 ERR_raise(ERR_LIB_EVP, EVP_R_COMMAND_NOT_SUPPORTED);
330 return -2;
331 }
332 if (!ossl_assert(translation->ctrl_num != 0)
333 || !ossl_assert(translation->param_data_type != 0)) {
334 ERR_raise(ERR_LIB_EVP, ERR_R_INTERNAL_ERROR);
335 return -1;
336 }
337 }
338
339 /* Nothing else to check */
340 return 1;
341 }
342
343 /*-
344 * default_fixup_args fixes up all sorts of arguments, governed by the
345 * diverse attributes in the translation item. It covers all "standard"
346 * base ctrl functionality, meaning it can handle basic conversion of
347 * data between p1+p2 (SET) or return value+p2 (GET) as long as the values
348 * don't have extra semantics (such as NIDs, OIDs, that sort of stuff).
349 * Extra semantics must be handled via specific fixup_args functions.
350 *
351 * The following states and action type combinations have standard handling
352 * done in this function:
353 *
354 * PRE_CTRL_TO_PARAMS, 0 - ERROR. action type must be
355 * determined by a fixup function.
356 * PRE_CTRL_TO_PARAMS, SET | GET - |p1| and |p2| are converted to an
357 * OSSL_PARAM according to the data
358 * type given in |translattion|.
359 * For OSSL_PARAM_UNSIGNED_INTEGER,
360 * a BIGNUM passed as |p2| is accepted.
361 * POST_CTRL_TO_PARAMS, GET - If the OSSL_PARAM data type is a
362 * STRING or PTR type, |p1| is set
363 * to the OSSL_PARAM return size, and
364 * |p2| is set to the string.
365 * PRE_CTRL_STR_TO_PARAMS, !SET - ERROR. That combination is not
366 * supported.
367 * PRE_CTRL_STR_TO_PARAMS, SET - |p2| is taken as a string, and is
368 * converted to an OSSL_PARAM in a
369 * standard manner, guided by the
370 * param key and data type from
371 * |translation|.
372 * PRE_PARAMS_TO_CTRL, SET - the OSSL_PARAM is converted to
373 * |p1| and |p2| according to the
374 * data type given in |translation|
375 * For OSSL_PARAM_UNSIGNED_INTEGER,
376 * if |p2| is non-NULL, then |*p2|
377 * is assigned a BIGNUM, otherwise
378 * |p1| is assigned an unsigned int.
379 * POST_PARAMS_TO_CTRL, GET - |p1| and |p2| are converted to
380 * an OSSL_PARAM, in the same manner
381 * as for the combination of
382 * PRE_CTRL_TO_PARAMS, SET.
383 */
default_fixup_args(enum state state,const struct translation_st * translation,struct translation_ctx_st * ctx)384 static int default_fixup_args(enum state state,
385 const struct translation_st *translation,
386 struct translation_ctx_st *ctx)
387 {
388 int ret;
389
390 if ((ret = default_check(state, translation, ctx)) <= 0)
391 return ret;
392
393 switch (state) {
394 default:
395 /* For states this function should never have been called with */
396 ERR_raise_data(ERR_LIB_EVP, ERR_R_SHOULD_NOT_HAVE_BEEN_CALLED,
397 "[action:%d, state:%d]", ctx->action_type, state);
398 return 0;
399
400 /*
401 * PRE_CTRL_TO_PARAMS and POST_CTRL_TO_PARAMS handle ctrl to params
402 * translations. PRE_CTRL_TO_PARAMS is responsible for preparing
403 * |*params|, and POST_CTRL_TO_PARAMS is responsible for bringing the
404 * result back to |*p2| and the return value.
405 */
406 case PRE_CTRL_TO_PARAMS:
407 /* This is ctrl to params translation, so we need an OSSL_PARAM key */
408 if (ctx->action_type == NONE) {
409 /*
410 * No action type is an error here. That's a case for a
411 * special fixup function.
412 */
413 ERR_raise_data(ERR_LIB_EVP, ERR_R_UNSUPPORTED,
414 "[action:%d, state:%d]", ctx->action_type, state);
415 return 0;
416 }
417
418 if (translation->optype != 0) {
419 if ((EVP_PKEY_CTX_IS_SIGNATURE_OP(ctx->pctx)
420 && ctx->pctx->op.sig.algctx == NULL)
421 || (EVP_PKEY_CTX_IS_DERIVE_OP(ctx->pctx)
422 && ctx->pctx->op.kex.algctx == NULL)
423 || (EVP_PKEY_CTX_IS_ASYM_CIPHER_OP(ctx->pctx)
424 && ctx->pctx->op.ciph.algctx == NULL)
425 || (EVP_PKEY_CTX_IS_KEM_OP(ctx->pctx)
426 && ctx->pctx->op.encap.algctx == NULL)
427 /*
428 * The following may be unnecessary, but we have them
429 * for good measure...
430 */
431 || (EVP_PKEY_CTX_IS_GEN_OP(ctx->pctx)
432 && ctx->pctx->op.keymgmt.genctx == NULL)
433 || (EVP_PKEY_CTX_IS_FROMDATA_OP(ctx->pctx)
434 && ctx->pctx->op.keymgmt.genctx == NULL)) {
435 ERR_raise(ERR_LIB_EVP, EVP_R_COMMAND_NOT_SUPPORTED);
436 /* Uses the same return values as EVP_PKEY_CTX_ctrl */
437 return -2;
438 }
439 }
440
441 /*
442 * OSSL_PARAM_construct_TYPE() works equally well for both SET and GET.
443 */
444 switch (translation->param_data_type) {
445 case OSSL_PARAM_INTEGER:
446 *ctx->params = OSSL_PARAM_construct_int(translation->param_key,
447 &ctx->p1);
448 break;
449 case OSSL_PARAM_UNSIGNED_INTEGER:
450 /*
451 * BIGNUMs are passed via |p2|. For all ctrl's that just want
452 * to pass a simple integer via |p1|, |p2| is expected to be
453 * NULL.
454 *
455 * Note that this allocates a buffer, which the cleanup function
456 * must deallocate.
457 */
458 if (ctx->p2 != NULL) {
459 if (ctx->action_type == SET) {
460 ctx->buflen = BN_num_bytes(ctx->p2);
461 if ((ctx->allocated_buf =
462 OPENSSL_malloc(ctx->buflen)) == NULL) {
463 ERR_raise(ERR_LIB_EVP, ERR_R_MALLOC_FAILURE);
464 return 0;
465 }
466 if (BN_bn2nativepad(ctx->p2,
467 ctx->allocated_buf, ctx->buflen) < 0) {
468 OPENSSL_free(ctx->allocated_buf);
469 ctx->allocated_buf = NULL;
470 return 0;
471 }
472 *ctx->params =
473 OSSL_PARAM_construct_BN(translation->param_key,
474 ctx->allocated_buf,
475 ctx->buflen);
476 } else {
477 /*
478 * No support for getting a BIGNUM by ctrl, this needs
479 * fixup_args function support.
480 */
481 ERR_raise_data(ERR_LIB_EVP, ERR_R_UNSUPPORTED,
482 "[action:%d, state:%d] trying to get a "
483 "BIGNUM via ctrl call",
484 ctx->action_type, state);
485 return 0;
486 }
487 } else {
488 *ctx->params =
489 OSSL_PARAM_construct_uint(translation->param_key,
490 (unsigned int *)&ctx->p1);
491 }
492 break;
493 case OSSL_PARAM_UTF8_STRING:
494 *ctx->params =
495 OSSL_PARAM_construct_utf8_string(translation->param_key,
496 ctx->p2, (size_t)ctx->p1);
497 break;
498 case OSSL_PARAM_UTF8_PTR:
499 *ctx->params =
500 OSSL_PARAM_construct_utf8_ptr(translation->param_key,
501 ctx->p2, (size_t)ctx->p1);
502 break;
503 case OSSL_PARAM_OCTET_STRING:
504 *ctx->params =
505 OSSL_PARAM_construct_octet_string(translation->param_key,
506 ctx->p2, (size_t)ctx->p1);
507 break;
508 case OSSL_PARAM_OCTET_PTR:
509 *ctx->params =
510 OSSL_PARAM_construct_octet_ptr(translation->param_key,
511 ctx->p2, (size_t)ctx->p1);
512 break;
513 }
514 break;
515 case POST_CTRL_TO_PARAMS:
516 /*
517 * Because EVP_PKEY_CTX_ctrl() returns the length of certain objects
518 * as its return value, we need to ensure that we do it here as well,
519 * for the OSSL_PARAM data types where this makes sense.
520 */
521 if (ctx->action_type == GET) {
522 switch (translation->param_data_type) {
523 case OSSL_PARAM_UTF8_STRING:
524 case OSSL_PARAM_UTF8_PTR:
525 case OSSL_PARAM_OCTET_STRING:
526 case OSSL_PARAM_OCTET_PTR:
527 ctx->p1 = (int)ctx->params[0].return_size;
528 break;
529 }
530 }
531 break;
532
533 /*
534 * PRE_CTRL_STR_TO_PARAMS and POST_CTRL_STR_TO_PARAMS handle ctrl_str to
535 * params translations. PRE_CTRL_TO_PARAMS is responsible for preparing
536 * |*params|, and POST_CTRL_TO_PARAMS currently has nothing to do, since
537 * there's no support for getting data via ctrl_str calls.
538 */
539 case PRE_CTRL_STR_TO_PARAMS:
540 {
541 /* This is ctrl_str to params translation */
542 const char *tmp_ctrl_str = ctx->ctrl_str;
543 const char *orig_ctrl_str = ctx->ctrl_str;
544 const char *orig_value = ctx->p2;
545 const OSSL_PARAM *settable = NULL;
546 int exists = 0;
547
548 /* Only setting is supported here */
549 if (ctx->action_type != SET) {
550 ERR_raise_data(ERR_LIB_EVP, EVP_R_COMMAND_NOT_SUPPORTED,
551 "[action:%d, state:%d] only setting allowed",
552 ctx->action_type, state);
553 return 0;
554 }
555
556 /*
557 * If no translation exists, we simply pass the control string
558 * unmodified.
559 */
560 if (translation != NULL) {
561 tmp_ctrl_str = ctx->ctrl_str = translation->param_key;
562
563 if (ctx->ishex) {
564 strcpy(ctx->name_buf, "hex");
565 if (OPENSSL_strlcat(ctx->name_buf, tmp_ctrl_str,
566 sizeof(ctx->name_buf)) <= 3) {
567 ERR_raise(ERR_LIB_EVP, ERR_R_INTERNAL_ERROR);
568 return -1;
569 }
570 tmp_ctrl_str = ctx->name_buf;
571 }
572 }
573
574 settable = EVP_PKEY_CTX_settable_params(ctx->pctx);
575 if (!OSSL_PARAM_allocate_from_text(ctx->params, settable,
576 tmp_ctrl_str,
577 ctx->p2, strlen(ctx->p2),
578 &exists)) {
579 if (!exists) {
580 ERR_raise_data(ERR_LIB_EVP, EVP_R_COMMAND_NOT_SUPPORTED,
581 "[action:%d, state:%d] name=%s, value=%s",
582 ctx->action_type, state,
583 orig_ctrl_str, orig_value);
584 return -2;
585 }
586 return 0;
587 }
588 ctx->allocated_buf = ctx->params->data;
589 ctx->buflen = ctx->params->data_size;
590 }
591 break;
592 case POST_CTRL_STR_TO_PARAMS:
593 /* Nothing to be done */
594 break;
595
596 /*
597 * PRE_PARAMS_TO_CTRL and POST_PARAMS_TO_CTRL handle params to ctrl
598 * translations. PRE_PARAMS_TO_CTRL is responsible for preparing
599 * |p1| and |p2|, and POST_PARAMS_TO_CTRL is responsible for bringing
600 * the EVP_PKEY_CTX_ctrl() return value (passed as |p1|) and |p2| back
601 * to |*params|.
602 *
603 * PKEY is treated just like POST_PARAMS_TO_CTRL, making it easy
604 * for the related fixup_args functions to just set |p1| and |p2|
605 * appropriately and leave it to this section of code to fix up
606 * |ctx->params| accordingly.
607 */
608 case PKEY:
609 case POST_PARAMS_TO_CTRL:
610 ret = ctx->p1;
611 /* FALLTHRU */
612 case PRE_PARAMS_TO_CTRL:
613 {
614 /* This is params to ctrl translation */
615 if (state == PRE_PARAMS_TO_CTRL && ctx->action_type == SET) {
616 /* For the PRE state, only setting needs some work to be done */
617
618 /* When setting, we populate |p1| and |p2| from |*params| */
619 switch (translation->param_data_type) {
620 case OSSL_PARAM_INTEGER:
621 return OSSL_PARAM_get_int(ctx->params, &ctx->p1);
622 case OSSL_PARAM_UNSIGNED_INTEGER:
623 if (ctx->p2 != NULL) {
624 /* BIGNUM passed down with p2 */
625 if (!OSSL_PARAM_get_BN(ctx->params, ctx->p2))
626 return 0;
627 } else {
628 /* Normal C unsigned int passed down */
629 if (!OSSL_PARAM_get_uint(ctx->params,
630 (unsigned int *)&ctx->p1))
631 return 0;
632 }
633 return 1;
634 case OSSL_PARAM_UTF8_STRING:
635 return OSSL_PARAM_get_utf8_string(ctx->params,
636 ctx->p2, ctx->sz);
637 case OSSL_PARAM_OCTET_STRING:
638 return OSSL_PARAM_get_octet_string(ctx->params,
639 ctx->p2, ctx->sz,
640 &ctx->sz);
641 case OSSL_PARAM_OCTET_PTR:
642 return OSSL_PARAM_get_octet_ptr(ctx->params,
643 ctx->p2, &ctx->sz);
644 default:
645 ERR_raise_data(ERR_LIB_EVP, ERR_R_UNSUPPORTED,
646 "[action:%d, state:%d] "
647 "unknown OSSL_PARAM data type %d",
648 ctx->action_type, state,
649 translation->param_data_type);
650 return 0;
651 }
652 } else if ((state == POST_PARAMS_TO_CTRL || state == PKEY)
653 && ctx->action_type == GET) {
654 /* For the POST state, only getting needs some work to be done */
655 unsigned int param_data_type = translation->param_data_type;
656 size_t size = (size_t)ctx->p1;
657
658 if (state == PKEY)
659 size = ctx->sz;
660 if (param_data_type == 0) {
661 /* we must have a fixup_args function to work */
662 if (!ossl_assert(translation->fixup_args != NULL)) {
663 ERR_raise(ERR_LIB_EVP, ERR_R_INTERNAL_ERROR);
664 return 0;
665 }
666 param_data_type = ctx->params->data_type;
667 }
668 /* When getting, we populate |*params| from |p1| and |p2| */
669 switch (param_data_type) {
670 case OSSL_PARAM_INTEGER:
671 return OSSL_PARAM_set_int(ctx->params, ctx->p1);
672 case OSSL_PARAM_UNSIGNED_INTEGER:
673 if (ctx->p2 != NULL) {
674 /* BIGNUM passed back */
675 return OSSL_PARAM_set_BN(ctx->params, ctx->p2);
676 } else {
677 /* Normal C unsigned int passed back */
678 return OSSL_PARAM_set_uint(ctx->params,
679 (unsigned int)ctx->p1);
680 }
681 return 0;
682 case OSSL_PARAM_UTF8_STRING:
683 return OSSL_PARAM_set_utf8_string(ctx->params, ctx->p2);
684 case OSSL_PARAM_OCTET_STRING:
685 return OSSL_PARAM_set_octet_string(ctx->params, ctx->p2,
686 size);
687 case OSSL_PARAM_OCTET_PTR:
688 return OSSL_PARAM_set_octet_ptr(ctx->params, ctx->p2,
689 size);
690 default:
691 ERR_raise_data(ERR_LIB_EVP, ERR_R_UNSUPPORTED,
692 "[action:%d, state:%d] "
693 "unsupported OSSL_PARAM data type %d",
694 ctx->action_type, state,
695 translation->param_data_type);
696 return 0;
697 }
698 }
699 }
700 /* Any other combination is simply pass-through */
701 break;
702 }
703 return ret;
704 }
705
706 static int
cleanup_translation_ctx(enum state state,const struct translation_st * translation,struct translation_ctx_st * ctx)707 cleanup_translation_ctx(enum state state,
708 const struct translation_st *translation,
709 struct translation_ctx_st *ctx)
710 {
711 if (ctx->allocated_buf != NULL)
712 OPENSSL_free(ctx->allocated_buf);
713 ctx->allocated_buf = NULL;
714 return 1;
715 }
716
717 /*
718 * fix_cipher_md fixes up an EVP_CIPHER / EVP_MD to its name on SET,
719 * and cipher / md name to EVP_MD on GET.
720 */
get_cipher_name(void * cipher)721 static const char *get_cipher_name(void *cipher)
722 {
723 return EVP_CIPHER_get0_name(cipher);
724 }
725
get_md_name(void * md)726 static const char *get_md_name(void *md)
727 {
728 return EVP_MD_get0_name(md);
729 }
730
get_cipher_by_name(OSSL_LIB_CTX * libctx,const char * name)731 static const void *get_cipher_by_name(OSSL_LIB_CTX *libctx, const char *name)
732 {
733 return evp_get_cipherbyname_ex(libctx, name);
734 }
735
get_md_by_name(OSSL_LIB_CTX * libctx,const char * name)736 static const void *get_md_by_name(OSSL_LIB_CTX *libctx, const char *name)
737 {
738 return evp_get_digestbyname_ex(libctx, name);
739 }
740
fix_cipher_md(enum state state,const struct translation_st * translation,struct translation_ctx_st * ctx,const char * (* get_name)(void * algo),const void * (* get_algo_by_name)(OSSL_LIB_CTX * libctx,const char * name))741 static int fix_cipher_md(enum state state,
742 const struct translation_st *translation,
743 struct translation_ctx_st *ctx,
744 const char *(*get_name)(void *algo),
745 const void *(*get_algo_by_name)(OSSL_LIB_CTX *libctx,
746 const char *name))
747 {
748 int ret = 1;
749
750 if ((ret = default_check(state, translation, ctx)) <= 0)
751 return ret;
752
753 if (state == PRE_CTRL_TO_PARAMS && ctx->action_type == GET) {
754 /*
755 * |ctx->p2| contains the address to an EVP_CIPHER or EVP_MD pointer
756 * to be filled in. We need to remember it, then make |ctx->p2|
757 * point at a buffer to be filled in with the name, and |ctx->p1|
758 * with its size. default_fixup_args() will take care of the rest
759 * for us.
760 */
761 ctx->orig_p2 = ctx->p2;
762 ctx->p2 = ctx->name_buf;
763 ctx->p1 = sizeof(ctx->name_buf);
764 } else if (state == PRE_CTRL_TO_PARAMS && ctx->action_type == SET) {
765 /*
766 * In different parts of OpenSSL, this ctrl command is used
767 * differently. Some calls pass a NID as p1, others pass an
768 * EVP_CIPHER pointer as p2...
769 */
770 ctx->p2 = (char *)(ctx->p2 == NULL
771 ? OBJ_nid2sn(ctx->p1)
772 : get_name(ctx->p2));
773 ctx->p1 = strlen(ctx->p2);
774 } else if (state == POST_PARAMS_TO_CTRL && ctx->action_type == GET) {
775 ctx->p2 = (ctx->p2 == NULL ? "" : (char *)get_name(ctx->p2));
776 ctx->p1 = strlen(ctx->p2);
777 }
778
779 if ((ret = default_fixup_args(state, translation, ctx)) <= 0)
780 return ret;
781
782 if (state == POST_CTRL_TO_PARAMS && ctx->action_type == GET) {
783 /*
784 * Here's how we re-use |ctx->orig_p2| that was set in the
785 * PRE_CTRL_TO_PARAMS state above.
786 */
787 *(void **)ctx->orig_p2 =
788 (void *)get_algo_by_name(ctx->pctx->libctx, ctx->p2);
789 ctx->p1 = 1;
790 } else if (state == PRE_PARAMS_TO_CTRL && ctx->action_type == SET) {
791 ctx->p2 = (void *)get_algo_by_name(ctx->pctx->libctx, ctx->p2);
792 ctx->p1 = 0;
793 }
794
795 return ret;
796 }
797
fix_cipher(enum state state,const struct translation_st * translation,struct translation_ctx_st * ctx)798 static int fix_cipher(enum state state,
799 const struct translation_st *translation,
800 struct translation_ctx_st *ctx)
801 {
802 return fix_cipher_md(state, translation, ctx,
803 get_cipher_name, get_cipher_by_name);
804 }
805
fix_md(enum state state,const struct translation_st * translation,struct translation_ctx_st * ctx)806 static int fix_md(enum state state,
807 const struct translation_st *translation,
808 struct translation_ctx_st *ctx)
809 {
810 return fix_cipher_md(state, translation, ctx,
811 get_md_name, get_md_by_name);
812 }
813
fix_distid_len(enum state state,const struct translation_st * translation,struct translation_ctx_st * ctx)814 static int fix_distid_len(enum state state,
815 const struct translation_st *translation,
816 struct translation_ctx_st *ctx)
817 {
818 int ret = default_fixup_args(state, translation, ctx);
819
820 if (ret > 0) {
821 ret = 0;
822 if ((state == POST_CTRL_TO_PARAMS
823 || state == POST_CTRL_STR_TO_PARAMS) && ctx->action_type == GET) {
824 *(size_t *)ctx->p2 = ctx->sz;
825 ret = 1;
826 }
827 }
828 return ret;
829 }
830
831 struct kdf_type_map_st {
832 int kdf_type_num;
833 const char *kdf_type_str;
834 };
835
fix_kdf_type(enum state state,const struct translation_st * translation,struct translation_ctx_st * ctx,const struct kdf_type_map_st * kdf_type_map)836 static int fix_kdf_type(enum state state,
837 const struct translation_st *translation,
838 struct translation_ctx_st *ctx,
839 const struct kdf_type_map_st *kdf_type_map)
840 {
841 /*
842 * The EVP_PKEY_CTRL_DH_KDF_TYPE ctrl command is a bit special, in
843 * that it's used both for setting a value, and for getting it, all
844 * depending on the value if |p1|; if |p1| is -2, the backend is
845 * supposed to place the current kdf type in |p2|, and if not, |p1|
846 * is interpreted as the new kdf type.
847 */
848 int ret = 0;
849
850 if ((ret = default_check(state, translation, ctx)) <= 0)
851 return ret;
852
853 if (state == PRE_CTRL_TO_PARAMS) {
854 /*
855 * In |translations|, the initial value for |ctx->action_type| must
856 * be NONE.
857 */
858 if (!ossl_assert(ctx->action_type == NONE))
859 return 0;
860
861 /* The action type depends on the value of *p1 */
862 if (ctx->p1 == -2) {
863 /*
864 * The OSSL_PARAMS getter needs space to store a copy of the kdf
865 * type string. We use |ctx->name_buf|, which has enough space
866 * allocated.
867 *
868 * (this wouldn't be needed if the OSSL_xxx_PARAM_KDF_TYPE
869 * had the data type OSSL_PARAM_UTF8_PTR)
870 */
871 ctx->p2 = ctx->name_buf;
872 ctx->p1 = sizeof(ctx->name_buf);
873 ctx->action_type = GET;
874 } else {
875 ctx->action_type = SET;
876 }
877 }
878
879 if ((ret = default_check(state, translation, ctx)) <= 0)
880 return ret;
881
882 if ((state == PRE_CTRL_TO_PARAMS && ctx->action_type == SET)
883 || (state == POST_PARAMS_TO_CTRL && ctx->action_type == GET)) {
884 ret = -2;
885 /* Convert KDF type numbers to strings */
886 for (; kdf_type_map->kdf_type_str != NULL; kdf_type_map++)
887 if (ctx->p1 == kdf_type_map->kdf_type_num) {
888 ctx->p2 = (char *)kdf_type_map->kdf_type_str;
889 ret = 1;
890 break;
891 }
892 if (ret <= 0)
893 goto end;
894 ctx->p1 = strlen(ctx->p2);
895 }
896
897 if ((ret = default_fixup_args(state, translation, ctx)) <= 0)
898 return ret;
899
900 if ((state == POST_CTRL_TO_PARAMS && ctx->action_type == GET)
901 || (state == PRE_PARAMS_TO_CTRL && ctx->action_type == SET)) {
902 ctx->p1 = ret = -1;
903
904 /* Convert KDF type strings to numbers */
905 for (; kdf_type_map->kdf_type_str != NULL; kdf_type_map++)
906 if (OPENSSL_strcasecmp(ctx->p2, kdf_type_map->kdf_type_str) == 0) {
907 ctx->p1 = kdf_type_map->kdf_type_num;
908 ret = 1;
909 break;
910 }
911 ctx->p2 = NULL;
912 } else if (state == PRE_PARAMS_TO_CTRL && ctx->action_type == GET) {
913 ctx->p1 = -2;
914 }
915 end:
916 return ret;
917 }
918
919 /* EVP_PKEY_CTRL_DH_KDF_TYPE */
fix_dh_kdf_type(enum state state,const struct translation_st * translation,struct translation_ctx_st * ctx)920 static int fix_dh_kdf_type(enum state state,
921 const struct translation_st *translation,
922 struct translation_ctx_st *ctx)
923 {
924 static const struct kdf_type_map_st kdf_type_map[] = {
925 { EVP_PKEY_DH_KDF_NONE, "" },
926 { EVP_PKEY_DH_KDF_X9_42, OSSL_KDF_NAME_X942KDF_ASN1 },
927 { 0, NULL }
928 };
929
930 return fix_kdf_type(state, translation, ctx, kdf_type_map);
931 }
932
933 /* EVP_PKEY_CTRL_EC_KDF_TYPE */
fix_ec_kdf_type(enum state state,const struct translation_st * translation,struct translation_ctx_st * ctx)934 static int fix_ec_kdf_type(enum state state,
935 const struct translation_st *translation,
936 struct translation_ctx_st *ctx)
937 {
938 static const struct kdf_type_map_st kdf_type_map[] = {
939 { EVP_PKEY_ECDH_KDF_NONE, "" },
940 { EVP_PKEY_ECDH_KDF_X9_63, OSSL_KDF_NAME_X963KDF },
941 { 0, NULL }
942 };
943
944 return fix_kdf_type(state, translation, ctx, kdf_type_map);
945 }
946
947 /* EVP_PKEY_CTRL_DH_KDF_OID, EVP_PKEY_CTRL_GET_DH_KDF_OID, ...??? */
fix_oid(enum state state,const struct translation_st * translation,struct translation_ctx_st * ctx)948 static int fix_oid(enum state state,
949 const struct translation_st *translation,
950 struct translation_ctx_st *ctx)
951 {
952 int ret;
953
954 if ((ret = default_check(state, translation, ctx)) <= 0)
955 return ret;
956
957 if ((state == PRE_CTRL_TO_PARAMS && ctx->action_type == SET)
958 || (state == POST_PARAMS_TO_CTRL && ctx->action_type == GET)) {
959 /*
960 * We're translating from ctrl to params and setting the OID, or
961 * we're translating from params to ctrl and getting the OID.
962 * Either way, |ctx->p2| points at an ASN1_OBJECT, and needs to have
963 * that replaced with the corresponding name.
964 * default_fixup_args() will then be able to convert that to the
965 * corresponding OSSL_PARAM.
966 */
967 OBJ_obj2txt(ctx->name_buf, sizeof(ctx->name_buf), ctx->p2, 0);
968 ctx->p2 = (char *)ctx->name_buf;
969 ctx->p1 = 0; /* let default_fixup_args() figure out the length */
970 }
971
972 if ((ret = default_fixup_args(state, translation, ctx)) <= 0)
973 return ret;
974
975 if ((state == PRE_PARAMS_TO_CTRL && ctx->action_type == SET)
976 || (state == POST_CTRL_TO_PARAMS && ctx->action_type == GET)) {
977 /*
978 * We're translating from ctrl to params and setting the OID name,
979 * or we're translating from params to ctrl and getting the OID
980 * name. Either way, default_fixup_args() has placed the OID name
981 * in |ctx->p2|, all we need to do now is to replace that with the
982 * corresponding ASN1_OBJECT.
983 */
984 ctx->p2 = (ASN1_OBJECT *)OBJ_txt2obj(ctx->p2, 0);
985 }
986
987 return ret;
988 }
989
990 /* EVP_PKEY_CTRL_DH_NID */
fix_dh_nid(enum state state,const struct translation_st * translation,struct translation_ctx_st * ctx)991 static int fix_dh_nid(enum state state,
992 const struct translation_st *translation,
993 struct translation_ctx_st *ctx)
994 {
995 int ret;
996
997 if ((ret = default_check(state, translation, ctx)) <= 0)
998 return ret;
999
1000 /* This is only settable */
1001 if (ctx->action_type != SET)
1002 return 0;
1003
1004 if (state == PRE_CTRL_TO_PARAMS) {
1005 if ((ctx->p2 = (char *)ossl_ffc_named_group_get_name
1006 (ossl_ffc_uid_to_dh_named_group(ctx->p1))) == NULL) {
1007 ERR_raise(ERR_LIB_EVP, EVP_R_INVALID_VALUE);
1008 return 0;
1009 }
1010 ctx->p1 = 0;
1011 }
1012
1013 return default_fixup_args(state, translation, ctx);
1014 }
1015
1016 /* EVP_PKEY_CTRL_DH_RFC5114 */
fix_dh_nid5114(enum state state,const struct translation_st * translation,struct translation_ctx_st * ctx)1017 static int fix_dh_nid5114(enum state state,
1018 const struct translation_st *translation,
1019 struct translation_ctx_st *ctx)
1020 {
1021 int ret;
1022
1023 if ((ret = default_check(state, translation, ctx)) <= 0)
1024 return ret;
1025
1026 /* This is only settable */
1027 if (ctx->action_type != SET)
1028 return 0;
1029
1030 switch (state) {
1031 case PRE_CTRL_TO_PARAMS:
1032 if ((ctx->p2 = (char *)ossl_ffc_named_group_get_name
1033 (ossl_ffc_uid_to_dh_named_group(ctx->p1))) == NULL) {
1034 ERR_raise(ERR_LIB_EVP, EVP_R_INVALID_VALUE);
1035 return 0;
1036 }
1037
1038 ctx->p1 = 0;
1039 break;
1040
1041 case PRE_CTRL_STR_TO_PARAMS:
1042 if (ctx->p2 == NULL)
1043 return 0;
1044 if ((ctx->p2 = (char *)ossl_ffc_named_group_get_name
1045 (ossl_ffc_uid_to_dh_named_group(atoi(ctx->p2)))) == NULL) {
1046 ERR_raise(ERR_LIB_EVP, EVP_R_INVALID_VALUE);
1047 return 0;
1048 }
1049
1050 ctx->p1 = 0;
1051 break;
1052
1053 default:
1054 break;
1055 }
1056
1057 return default_fixup_args(state, translation, ctx);
1058 }
1059
1060 /* EVP_PKEY_CTRL_DH_PARAMGEN_TYPE */
fix_dh_paramgen_type(enum state state,const struct translation_st * translation,struct translation_ctx_st * ctx)1061 static int fix_dh_paramgen_type(enum state state,
1062 const struct translation_st *translation,
1063 struct translation_ctx_st *ctx)
1064 {
1065 int ret;
1066
1067 if ((ret = default_check(state, translation, ctx)) <= 0)
1068 return ret;
1069
1070 /* This is only settable */
1071 if (ctx->action_type != SET)
1072 return 0;
1073
1074 if (state == PRE_CTRL_STR_TO_PARAMS) {
1075 if ((ctx->p2 = (char *)ossl_dh_gen_type_id2name(atoi(ctx->p2)))
1076 == NULL) {
1077 ERR_raise(ERR_LIB_EVP, EVP_R_INVALID_VALUE);
1078 return 0;
1079 }
1080 ctx->p1 = strlen(ctx->p2);
1081 }
1082
1083 return default_fixup_args(state, translation, ctx);
1084 }
1085
1086 /* EVP_PKEY_CTRL_EC_PARAM_ENC */
fix_ec_param_enc(enum state state,const struct translation_st * translation,struct translation_ctx_st * ctx)1087 static int fix_ec_param_enc(enum state state,
1088 const struct translation_st *translation,
1089 struct translation_ctx_st *ctx)
1090 {
1091 int ret;
1092
1093 if ((ret = default_check(state, translation, ctx)) <= 0)
1094 return ret;
1095
1096 /* This is currently only settable */
1097 if (ctx->action_type != SET)
1098 return 0;
1099
1100 if (state == PRE_CTRL_TO_PARAMS) {
1101 switch (ctx->p1) {
1102 case OPENSSL_EC_EXPLICIT_CURVE:
1103 ctx->p2 = OSSL_PKEY_EC_ENCODING_EXPLICIT;
1104 break;
1105 case OPENSSL_EC_NAMED_CURVE:
1106 ctx->p2 = OSSL_PKEY_EC_ENCODING_GROUP;
1107 break;
1108 default:
1109 ret = -2;
1110 goto end;
1111 }
1112 ctx->p1 = 0;
1113 }
1114
1115 if ((ret = default_fixup_args(state, translation, ctx)) <= 0)
1116 return ret;
1117
1118 if (state == PRE_PARAMS_TO_CTRL) {
1119 if (strcmp(ctx->p2, OSSL_PKEY_EC_ENCODING_EXPLICIT) == 0)
1120 ctx->p1 = OPENSSL_EC_EXPLICIT_CURVE;
1121 else if (strcmp(ctx->p2, OSSL_PKEY_EC_ENCODING_GROUP) == 0)
1122 ctx->p1 = OPENSSL_EC_NAMED_CURVE;
1123 else
1124 ctx->p1 = ret = -2;
1125 ctx->p2 = NULL;
1126 }
1127
1128 end:
1129 if (ret == -2)
1130 ERR_raise(ERR_LIB_EVP, EVP_R_COMMAND_NOT_SUPPORTED);
1131 return ret;
1132 }
1133
1134 /* EVP_PKEY_CTRL_EC_PARAMGEN_CURVE_NID */
fix_ec_paramgen_curve_nid(enum state state,const struct translation_st * translation,struct translation_ctx_st * ctx)1135 static int fix_ec_paramgen_curve_nid(enum state state,
1136 const struct translation_st *translation,
1137 struct translation_ctx_st *ctx)
1138 {
1139 char *p2 = NULL;
1140 int ret;
1141
1142 if ((ret = default_check(state, translation, ctx)) <= 0)
1143 return ret;
1144
1145 /* This is currently only settable */
1146 if (ctx->action_type != SET)
1147 return 0;
1148
1149 if (state == PRE_CTRL_TO_PARAMS) {
1150 ctx->p2 = (char *)OBJ_nid2sn(ctx->p1);
1151 ctx->p1 = 0;
1152 } else if (state == PRE_PARAMS_TO_CTRL) {
1153 /*
1154 * We're translating from params to ctrl and setting the curve name.
1155 * The ctrl function needs it to be a NID, but meanwhile, we need
1156 * space to get the curve name from the param. |ctx->name_buf| is
1157 * sufficient for that.
1158 * The double indirection is necessary for default_fixup_args()'s
1159 * call of OSSL_PARAM_get_utf8_string() to be done correctly.
1160 */
1161 p2 = ctx->name_buf;
1162 ctx->p2 = &p2;
1163 ctx->sz = sizeof(ctx->name_buf);
1164 }
1165
1166 if ((ret = default_fixup_args(state, translation, ctx)) <= 0)
1167 return ret;
1168
1169 if (state == PRE_PARAMS_TO_CTRL) {
1170 ctx->p1 = OBJ_sn2nid(p2);
1171 ctx->p2 = NULL;
1172 }
1173
1174 return ret;
1175 }
1176
1177 /* EVP_PKEY_CTRL_EC_ECDH_COFACTOR */
fix_ecdh_cofactor(enum state state,const struct translation_st * translation,struct translation_ctx_st * ctx)1178 static int fix_ecdh_cofactor(enum state state,
1179 const struct translation_st *translation,
1180 struct translation_ctx_st *ctx)
1181 {
1182 /*
1183 * The EVP_PKEY_CTRL_EC_ECDH_COFACTOR ctrl command is a bit special, in
1184 * that it's used both for setting a value, and for getting it, all
1185 * depending on the value if |ctx->p1|; if |ctx->p1| is -2, the backend is
1186 * supposed to place the current cofactor mode in |ctx->p2|, and if not,
1187 * |ctx->p1| is interpreted as the new cofactor mode.
1188 */
1189 int ret = 0;
1190
1191 if (state == PRE_CTRL_TO_PARAMS) {
1192 /*
1193 * The initial value for |ctx->action_type| must be zero.
1194 * evp_pkey_ctrl_to_params() takes it from the translation item.
1195 */
1196 if (!ossl_assert(ctx->action_type == NONE))
1197 return 0;
1198
1199 /* The action type depends on the value of ctx->p1 */
1200 if (ctx->p1 == -2)
1201 ctx->action_type = GET;
1202 else
1203 ctx->action_type = SET;
1204 } else if (state == PRE_CTRL_STR_TO_PARAMS) {
1205 ctx->action_type = SET;
1206 } else if (state == PRE_PARAMS_TO_CTRL) {
1207 /* The initial value for |ctx->action_type| must not be zero. */
1208 if (!ossl_assert(ctx->action_type != NONE))
1209 return 0;
1210 }
1211
1212 if ((ret = default_check(state, translation, ctx)) <= 0)
1213 return ret;
1214
1215 if (state == PRE_CTRL_TO_PARAMS && ctx->action_type == SET) {
1216 if (ctx->p1 < -1 || ctx->p1 > 1) {
1217 /* Uses the same return value of pkey_ec_ctrl() */
1218 return -2;
1219 }
1220 }
1221
1222 if ((ret = default_fixup_args(state, translation, ctx)) <= 0)
1223 return ret;
1224
1225 if (state == POST_CTRL_TO_PARAMS && ctx->action_type == GET) {
1226 if (ctx->p1 < 0 || ctx->p1 > 1) {
1227 /*
1228 * The provider should return either 0 or 1, any other value is a
1229 * provider error.
1230 */
1231 ctx->p1 = ret = -1;
1232 }
1233 } else if (state == PRE_PARAMS_TO_CTRL && ctx->action_type == GET) {
1234 ctx->p1 = -2;
1235 }
1236
1237 return ret;
1238 }
1239
1240 /* EVP_PKEY_CTRL_RSA_PADDING, EVP_PKEY_CTRL_GET_RSA_PADDING */
fix_rsa_padding_mode(enum state state,const struct translation_st * translation,struct translation_ctx_st * ctx)1241 static int fix_rsa_padding_mode(enum state state,
1242 const struct translation_st *translation,
1243 struct translation_ctx_st *ctx)
1244 {
1245 static const OSSL_ITEM str_value_map[] = {
1246 { RSA_PKCS1_PADDING, "pkcs1" },
1247 { RSA_NO_PADDING, "none" },
1248 { RSA_PKCS1_OAEP_PADDING, "oaep" },
1249 { RSA_PKCS1_OAEP_PADDING, "oeap" },
1250 { RSA_X931_PADDING, "x931" },
1251 { RSA_PKCS1_PSS_PADDING, "pss" },
1252 /* Special case, will pass directly as an integer */
1253 { RSA_PKCS1_WITH_TLS_PADDING, NULL }
1254 };
1255 int ret;
1256
1257 if ((ret = default_check(state, translation, ctx)) <= 0)
1258 return ret;
1259
1260 if (state == PRE_CTRL_TO_PARAMS && ctx->action_type == GET) {
1261 /*
1262 * EVP_PKEY_CTRL_GET_RSA_PADDING returns the padding mode in the
1263 * weirdest way for a ctrl. Instead of doing like all other ctrls
1264 * that return a simple, i.e. just have that as a return value,
1265 * this particular ctrl treats p2 as the address for the int to be
1266 * returned. We must therefore remember |ctx->p2|, then make
1267 * |ctx->p2| point at a buffer to be filled in with the name, and
1268 * |ctx->p1| with its size. default_fixup_args() will take care
1269 * of the rest for us, along with the POST_CTRL_TO_PARAMS && GET
1270 * code section further down.
1271 */
1272 ctx->orig_p2 = ctx->p2;
1273 ctx->p2 = ctx->name_buf;
1274 ctx->p1 = sizeof(ctx->name_buf);
1275 } else if (state == PRE_CTRL_TO_PARAMS && ctx->action_type == SET) {
1276 /*
1277 * Ideally, we should use utf8 strings for the diverse padding modes.
1278 * We only came here because someone called EVP_PKEY_CTX_ctrl(),
1279 * though, and since that can reasonably be seen as legacy code
1280 * that uses the diverse RSA macros for the padding mode, and we
1281 * know that at least our providers can handle the numeric modes,
1282 * we take the cheap route for now.
1283 *
1284 * The other solution would be to match |ctx->p1| against entries
1285 * in str_value_map and pass the corresponding string. However,
1286 * since we don't have a string for RSA_PKCS1_WITH_TLS_PADDING,
1287 * we have to do this same hack at least for that one.
1288 *
1289 * Since the "official" data type for the RSA padding mode is utf8
1290 * string, we cannot count on default_fixup_args(). Instead, we
1291 * build the OSSL_PARAM item ourselves and return immediately.
1292 */
1293 ctx->params[0] = OSSL_PARAM_construct_int(translation->param_key,
1294 &ctx->p1);
1295 return 1;
1296 } else if (state == POST_PARAMS_TO_CTRL && ctx->action_type == GET) {
1297 size_t i;
1298
1299 /*
1300 * The EVP_PKEY_CTX_get_params() caller may have asked for a utf8
1301 * string, or may have asked for an integer of some sort. If they
1302 * ask for an integer, we respond directly. If not, we translate
1303 * the response from the ctrl function into a string.
1304 */
1305 switch (ctx->params->data_type) {
1306 case OSSL_PARAM_INTEGER:
1307 return OSSL_PARAM_get_int(ctx->params, &ctx->p1);
1308 case OSSL_PARAM_UNSIGNED_INTEGER:
1309 return OSSL_PARAM_get_uint(ctx->params, (unsigned int *)&ctx->p1);
1310 default:
1311 break;
1312 }
1313
1314 for (i = 0; i < OSSL_NELEM(str_value_map); i++) {
1315 if (ctx->p1 == (int)str_value_map[i].id)
1316 break;
1317 }
1318 if (i == OSSL_NELEM(str_value_map)) {
1319 ERR_raise_data(ERR_LIB_RSA, RSA_R_UNKNOWN_PADDING_TYPE,
1320 "[action:%d, state:%d] padding number %d",
1321 ctx->action_type, state, ctx->p1);
1322 return -2;
1323 }
1324 /*
1325 * If we don't have a string, we can't do anything. The caller
1326 * should have asked for a number...
1327 */
1328 if (str_value_map[i].ptr == NULL) {
1329 ERR_raise(ERR_LIB_EVP, EVP_R_COMMAND_NOT_SUPPORTED);
1330 return -2;
1331 }
1332 ctx->p2 = str_value_map[i].ptr;
1333 ctx->p1 = strlen(ctx->p2);
1334 }
1335
1336 if ((ret = default_fixup_args(state, translation, ctx)) <= 0)
1337 return ret;
1338
1339 if ((ctx->action_type == SET && state == PRE_PARAMS_TO_CTRL)
1340 || (ctx->action_type == GET && state == POST_CTRL_TO_PARAMS)) {
1341 size_t i;
1342
1343 for (i = 0; i < OSSL_NELEM(str_value_map); i++) {
1344 if (strcmp(ctx->p2, str_value_map[i].ptr) == 0)
1345 break;
1346 }
1347
1348 if (i == OSSL_NELEM(str_value_map)) {
1349 ERR_raise_data(ERR_LIB_RSA, RSA_R_UNKNOWN_PADDING_TYPE,
1350 "[action:%d, state:%d] padding name %s",
1351 ctx->action_type, state, ctx->p1);
1352 ctx->p1 = ret = -2;
1353 } else if (state == POST_CTRL_TO_PARAMS) {
1354 /* EVP_PKEY_CTRL_GET_RSA_PADDING weirdness explained further up */
1355 *(int *)ctx->orig_p2 = str_value_map[i].id;
1356 } else {
1357 ctx->p1 = str_value_map[i].id;
1358 }
1359 ctx->p2 = NULL;
1360 }
1361
1362 return ret;
1363 }
1364
1365 /* EVP_PKEY_CTRL_RSA_PSS_SALTLEN, EVP_PKEY_CTRL_GET_RSA_PSS_SALTLEN */
fix_rsa_pss_saltlen(enum state state,const struct translation_st * translation,struct translation_ctx_st * ctx)1366 static int fix_rsa_pss_saltlen(enum state state,
1367 const struct translation_st *translation,
1368 struct translation_ctx_st *ctx)
1369 {
1370 static const OSSL_ITEM str_value_map[] = {
1371 { (unsigned int)RSA_PSS_SALTLEN_DIGEST, "digest" },
1372 { (unsigned int)RSA_PSS_SALTLEN_MAX, "max" },
1373 { (unsigned int)RSA_PSS_SALTLEN_AUTO, "auto" }
1374 };
1375 int ret;
1376
1377 if ((ret = default_check(state, translation, ctx)) <= 0)
1378 return ret;
1379
1380 if (state == PRE_CTRL_TO_PARAMS && ctx->action_type == GET) {
1381 /*
1382 * EVP_PKEY_CTRL_GET_RSA_PSS_SALTLEN returns the saltlen by filling
1383 * in the int pointed at by p2. This is potentially as weird as
1384 * the way EVP_PKEY_CTRL_GET_RSA_PADDING works, except that saltlen
1385 * might be a negative value, so it wouldn't work as a legitimate
1386 * return value.
1387 * In any case, we must therefore remember |ctx->p2|, then make
1388 * |ctx->p2| point at a buffer to be filled in with the name, and
1389 * |ctx->p1| with its size. default_fixup_args() will take care
1390 * of the rest for us, along with the POST_CTRL_TO_PARAMS && GET
1391 * code section further down.
1392 */
1393 ctx->orig_p2 = ctx->p2;
1394 ctx->p2 = ctx->name_buf;
1395 ctx->p1 = sizeof(ctx->name_buf);
1396 } else if ((ctx->action_type == SET && state == PRE_CTRL_TO_PARAMS)
1397 || (ctx->action_type == GET && state == POST_PARAMS_TO_CTRL)) {
1398 size_t i;
1399
1400 for (i = 0; i < OSSL_NELEM(str_value_map); i++) {
1401 if (ctx->p1 == (int)str_value_map[i].id)
1402 break;
1403 }
1404 if (i == OSSL_NELEM(str_value_map)) {
1405 BIO_snprintf(ctx->name_buf, sizeof(ctx->name_buf), "%d", ctx->p1);
1406 } else {
1407 /* This won't truncate but it will quiet static analysers */
1408 strncpy(ctx->name_buf, str_value_map[i].ptr, sizeof(ctx->name_buf) - 1);
1409 ctx->name_buf[sizeof(ctx->name_buf) - 1] = '\0';
1410 }
1411 ctx->p2 = ctx->name_buf;
1412 ctx->p1 = strlen(ctx->p2);
1413 }
1414
1415 if ((ret = default_fixup_args(state, translation, ctx)) <= 0)
1416 return ret;
1417
1418 if ((ctx->action_type == SET && state == PRE_PARAMS_TO_CTRL)
1419 || (ctx->action_type == GET && state == POST_CTRL_TO_PARAMS)) {
1420 size_t i;
1421 int val;
1422
1423 for (i = 0; i < OSSL_NELEM(str_value_map); i++) {
1424 if (strcmp(ctx->p2, str_value_map[i].ptr) == 0)
1425 break;
1426 }
1427
1428 val = i == OSSL_NELEM(str_value_map) ? atoi(ctx->p2)
1429 : (int)str_value_map[i].id;
1430 if (state == POST_CTRL_TO_PARAMS) {
1431 /*
1432 * EVP_PKEY_CTRL_GET_RSA_PSS_SALTLEN weirdness explained further
1433 * up
1434 */
1435 *(int *)ctx->orig_p2 = val;
1436 } else {
1437 ctx->p1 = val;
1438 }
1439 ctx->p2 = NULL;
1440 }
1441
1442 return ret;
1443 }
1444
1445 /* EVP_PKEY_CTRL_HKDF_MODE */
fix_hkdf_mode(enum state state,const struct translation_st * translation,struct translation_ctx_st * ctx)1446 static int fix_hkdf_mode(enum state state,
1447 const struct translation_st *translation,
1448 struct translation_ctx_st *ctx)
1449 {
1450 static const OSSL_ITEM str_value_map[] = {
1451 { EVP_KDF_HKDF_MODE_EXTRACT_AND_EXPAND, "EXTRACT_AND_EXPAND" },
1452 { EVP_KDF_HKDF_MODE_EXTRACT_ONLY, "EXTRACT_ONLY" },
1453 { EVP_KDF_HKDF_MODE_EXPAND_ONLY, "EXPAND_ONLY" }
1454 };
1455 int ret;
1456
1457 if ((ret = default_check(state, translation, ctx)) <= 0)
1458 return ret;
1459
1460 if ((ctx->action_type == SET && state == PRE_CTRL_TO_PARAMS)
1461 || (ctx->action_type == GET && state == POST_PARAMS_TO_CTRL)) {
1462 size_t i;
1463
1464 for (i = 0; i < OSSL_NELEM(str_value_map); i++) {
1465 if (ctx->p1 == (int)str_value_map[i].id)
1466 break;
1467 }
1468 if (i == OSSL_NELEM(str_value_map))
1469 return 0;
1470 ctx->p2 = str_value_map[i].ptr;
1471 ctx->p1 = strlen(ctx->p2);
1472 }
1473
1474 if ((ret = default_fixup_args(state, translation, ctx)) <= 0)
1475 return ret;
1476
1477 if ((ctx->action_type == SET && state == PRE_PARAMS_TO_CTRL)
1478 || (ctx->action_type == GET && state == POST_CTRL_TO_PARAMS)) {
1479 size_t i;
1480
1481 for (i = 0; i < OSSL_NELEM(str_value_map); i++) {
1482 if (strcmp(ctx->p2, str_value_map[i].ptr) == 0)
1483 break;
1484 }
1485 if (i == OSSL_NELEM(str_value_map))
1486 return 0;
1487 if (state == POST_CTRL_TO_PARAMS)
1488 ret = str_value_map[i].id;
1489 else
1490 ctx->p1 = str_value_map[i].id;
1491 ctx->p2 = NULL;
1492 }
1493
1494 return 1;
1495 }
1496
1497 /*-
1498 * Payload getters
1499 * ===============
1500 *
1501 * These all get the data they want, then call default_fixup_args() as
1502 * a post-ctrl GET fixup. They all get NULL ctx, ctrl_cmd, ctrl_str,
1503 * p1, sz
1504 */
1505
1506 /* Pilfering DH, DSA and EC_KEY */
get_payload_group_name(enum state state,const struct translation_st * translation,struct translation_ctx_st * ctx)1507 static int get_payload_group_name(enum state state,
1508 const struct translation_st *translation,
1509 struct translation_ctx_st *ctx)
1510 {
1511 EVP_PKEY *pkey = ctx->p2;
1512
1513 ctx->p2 = NULL;
1514 switch (EVP_PKEY_get_base_id(pkey)) {
1515 #ifndef OPENSSL_NO_DH
1516 case EVP_PKEY_DH:
1517 {
1518 const DH *dh = EVP_PKEY_get0_DH(pkey);
1519 int uid = DH_get_nid(dh);
1520
1521 if (uid != NID_undef) {
1522 const DH_NAMED_GROUP *dh_group =
1523 ossl_ffc_uid_to_dh_named_group(uid);
1524
1525 ctx->p2 = (char *)ossl_ffc_named_group_get_name(dh_group);
1526 }
1527 }
1528 break;
1529 #endif
1530 #ifndef OPENSSL_NO_EC
1531 case EVP_PKEY_EC:
1532 {
1533 const EC_GROUP *grp =
1534 EC_KEY_get0_group(EVP_PKEY_get0_EC_KEY(pkey));
1535 int nid = NID_undef;
1536
1537 if (grp != NULL)
1538 nid = EC_GROUP_get_curve_name(grp);
1539 if (nid != NID_undef)
1540 ctx->p2 = (char *)OSSL_EC_curve_nid2name(nid);
1541 }
1542 break;
1543 #endif
1544 default:
1545 ERR_raise(ERR_LIB_EVP, EVP_R_UNSUPPORTED_KEY_TYPE);
1546 return 0;
1547 }
1548
1549 /*
1550 * Quietly ignoring unknown groups matches the behaviour on the provider
1551 * side.
1552 */
1553 if (ctx->p2 == NULL)
1554 return 1;
1555
1556 ctx->p1 = strlen(ctx->p2);
1557 return default_fixup_args(state, translation, ctx);
1558 }
1559
get_payload_private_key(enum state state,const struct translation_st * translation,struct translation_ctx_st * ctx)1560 static int get_payload_private_key(enum state state,
1561 const struct translation_st *translation,
1562 struct translation_ctx_st *ctx)
1563 {
1564 EVP_PKEY *pkey = ctx->p2;
1565
1566 ctx->p2 = NULL;
1567 if (ctx->params->data_type != OSSL_PARAM_UNSIGNED_INTEGER)
1568 return 0;
1569
1570 switch (EVP_PKEY_get_base_id(pkey)) {
1571 #ifndef OPENSSL_NO_DH
1572 case EVP_PKEY_DH:
1573 {
1574 const DH *dh = EVP_PKEY_get0_DH(pkey);
1575
1576 ctx->p2 = (BIGNUM *)DH_get0_priv_key(dh);
1577 }
1578 break;
1579 #endif
1580 #ifndef OPENSSL_NO_EC
1581 case EVP_PKEY_EC:
1582 {
1583 const EC_KEY *ec = EVP_PKEY_get0_EC_KEY(pkey);
1584
1585 ctx->p2 = (BIGNUM *)EC_KEY_get0_private_key(ec);
1586 }
1587 break;
1588 #endif
1589 default:
1590 ERR_raise(ERR_LIB_EVP, EVP_R_UNSUPPORTED_KEY_TYPE);
1591 return 0;
1592 }
1593
1594 return default_fixup_args(state, translation, ctx);
1595 }
1596
get_payload_public_key(enum state state,const struct translation_st * translation,struct translation_ctx_st * ctx)1597 static int get_payload_public_key(enum state state,
1598 const struct translation_st *translation,
1599 struct translation_ctx_st *ctx)
1600 {
1601 EVP_PKEY *pkey = ctx->p2;
1602 unsigned char *buf = NULL;
1603 int ret;
1604
1605 ctx->p2 = NULL;
1606 switch (EVP_PKEY_get_base_id(pkey)) {
1607 #ifndef OPENSSL_NO_DH
1608 case EVP_PKEY_DHX:
1609 case EVP_PKEY_DH:
1610 switch (ctx->params->data_type) {
1611 case OSSL_PARAM_OCTET_STRING:
1612 ctx->sz = ossl_dh_key2buf(EVP_PKEY_get0_DH(pkey), &buf, 0, 1);
1613 ctx->p2 = buf;
1614 break;
1615 case OSSL_PARAM_UNSIGNED_INTEGER:
1616 ctx->p2 = (void *)DH_get0_pub_key(EVP_PKEY_get0_DH(pkey));
1617 break;
1618 default:
1619 return 0;
1620 }
1621 break;
1622 #endif
1623 #ifndef OPENSSL_NO_DSA
1624 case EVP_PKEY_DSA:
1625 if (ctx->params->data_type == OSSL_PARAM_UNSIGNED_INTEGER) {
1626 ctx->p2 = (void *)DSA_get0_pub_key(EVP_PKEY_get0_DSA(pkey));
1627 break;
1628 }
1629 return 0;
1630 #endif
1631 #ifndef OPENSSL_NO_EC
1632 case EVP_PKEY_EC:
1633 if (ctx->params->data_type == OSSL_PARAM_OCTET_STRING) {
1634 const EC_KEY *eckey = EVP_PKEY_get0_EC_KEY(pkey);
1635 BN_CTX *bnctx = BN_CTX_new_ex(ossl_ec_key_get_libctx(eckey));
1636 const EC_GROUP *ecg = EC_KEY_get0_group(eckey);
1637 const EC_POINT *point = EC_KEY_get0_public_key(eckey);
1638
1639 if (bnctx == NULL)
1640 return 0;
1641 ctx->sz = EC_POINT_point2buf(ecg, point,
1642 POINT_CONVERSION_COMPRESSED,
1643 &buf, bnctx);
1644 ctx->p2 = buf;
1645 BN_CTX_free(bnctx);
1646 break;
1647 }
1648 return 0;
1649 #endif
1650 default:
1651 ERR_raise(ERR_LIB_EVP, EVP_R_UNSUPPORTED_KEY_TYPE);
1652 return 0;
1653 }
1654
1655 ret = default_fixup_args(state, translation, ctx);
1656 OPENSSL_free(buf);
1657 return ret;
1658 }
1659
get_payload_bn(enum state state,const struct translation_st * translation,struct translation_ctx_st * ctx,const BIGNUM * bn)1660 static int get_payload_bn(enum state state,
1661 const struct translation_st *translation,
1662 struct translation_ctx_st *ctx, const BIGNUM *bn)
1663 {
1664 if (bn == NULL)
1665 return 0;
1666 if (ctx->params->data_type != OSSL_PARAM_UNSIGNED_INTEGER)
1667 return 0;
1668 ctx->p2 = (BIGNUM *)bn;
1669
1670 return default_fixup_args(state, translation, ctx);
1671 }
1672
get_dh_dsa_payload_p(enum state state,const struct translation_st * translation,struct translation_ctx_st * ctx)1673 static int get_dh_dsa_payload_p(enum state state,
1674 const struct translation_st *translation,
1675 struct translation_ctx_st *ctx)
1676 {
1677 const BIGNUM *bn = NULL;
1678 EVP_PKEY *pkey = ctx->p2;
1679
1680 switch (EVP_PKEY_get_base_id(pkey)) {
1681 #ifndef OPENSSL_NO_DH
1682 case EVP_PKEY_DH:
1683 bn = DH_get0_p(EVP_PKEY_get0_DH(pkey));
1684 break;
1685 #endif
1686 #ifndef OPENSSL_NO_DSA
1687 case EVP_PKEY_DSA:
1688 bn = DSA_get0_p(EVP_PKEY_get0_DSA(pkey));
1689 break;
1690 #endif
1691 default:
1692 ERR_raise(ERR_LIB_EVP, EVP_R_UNSUPPORTED_KEY_TYPE);
1693 }
1694
1695 return get_payload_bn(state, translation, ctx, bn);
1696 }
1697
get_dh_dsa_payload_q(enum state state,const struct translation_st * translation,struct translation_ctx_st * ctx)1698 static int get_dh_dsa_payload_q(enum state state,
1699 const struct translation_st *translation,
1700 struct translation_ctx_st *ctx)
1701 {
1702 const BIGNUM *bn = NULL;
1703
1704 switch (EVP_PKEY_get_base_id(ctx->p2)) {
1705 #ifndef OPENSSL_NO_DH
1706 case EVP_PKEY_DH:
1707 bn = DH_get0_q(EVP_PKEY_get0_DH(ctx->p2));
1708 break;
1709 #endif
1710 #ifndef OPENSSL_NO_DSA
1711 case EVP_PKEY_DSA:
1712 bn = DSA_get0_q(EVP_PKEY_get0_DSA(ctx->p2));
1713 break;
1714 #endif
1715 }
1716
1717 return get_payload_bn(state, translation, ctx, bn);
1718 }
1719
get_dh_dsa_payload_g(enum state state,const struct translation_st * translation,struct translation_ctx_st * ctx)1720 static int get_dh_dsa_payload_g(enum state state,
1721 const struct translation_st *translation,
1722 struct translation_ctx_st *ctx)
1723 {
1724 const BIGNUM *bn = NULL;
1725
1726 switch (EVP_PKEY_get_base_id(ctx->p2)) {
1727 #ifndef OPENSSL_NO_DH
1728 case EVP_PKEY_DH:
1729 bn = DH_get0_g(EVP_PKEY_get0_DH(ctx->p2));
1730 break;
1731 #endif
1732 #ifndef OPENSSL_NO_DSA
1733 case EVP_PKEY_DSA:
1734 bn = DSA_get0_g(EVP_PKEY_get0_DSA(ctx->p2));
1735 break;
1736 #endif
1737 }
1738
1739 return get_payload_bn(state, translation, ctx, bn);
1740 }
1741
get_payload_int(enum state state,const struct translation_st * translation,struct translation_ctx_st * ctx,const int val)1742 static int get_payload_int(enum state state,
1743 const struct translation_st *translation,
1744 struct translation_ctx_st *ctx,
1745 const int val)
1746 {
1747 if (ctx->params->data_type != OSSL_PARAM_INTEGER)
1748 return 0;
1749 ctx->p1 = val;
1750 ctx->p2 = NULL;
1751
1752 return default_fixup_args(state, translation, ctx);
1753 }
1754
get_ec_decoded_from_explicit_params(enum state state,const struct translation_st * translation,struct translation_ctx_st * ctx)1755 static int get_ec_decoded_from_explicit_params(enum state state,
1756 const struct translation_st *translation,
1757 struct translation_ctx_st *ctx)
1758 {
1759 int val = 0;
1760 EVP_PKEY *pkey = ctx->p2;
1761
1762 switch (EVP_PKEY_base_id(pkey)) {
1763 #ifndef OPENSSL_NO_EC
1764 case EVP_PKEY_EC:
1765 val = EC_KEY_decoded_from_explicit_params(EVP_PKEY_get0_EC_KEY(pkey));
1766 if (val < 0) {
1767 ERR_raise(ERR_LIB_EVP, EVP_R_INVALID_KEY);
1768 return 0;
1769 }
1770 break;
1771 #endif
1772 default:
1773 ERR_raise(ERR_LIB_EVP, EVP_R_UNSUPPORTED_KEY_TYPE);
1774 return 0;
1775 }
1776
1777 return get_payload_int(state, translation, ctx, val);
1778 }
1779
get_rsa_payload_n(enum state state,const struct translation_st * translation,struct translation_ctx_st * ctx)1780 static int get_rsa_payload_n(enum state state,
1781 const struct translation_st *translation,
1782 struct translation_ctx_st *ctx)
1783 {
1784 const BIGNUM *bn = NULL;
1785
1786 if (EVP_PKEY_get_base_id(ctx->p2) != EVP_PKEY_RSA)
1787 return 0;
1788 bn = RSA_get0_n(EVP_PKEY_get0_RSA(ctx->p2));
1789
1790 return get_payload_bn(state, translation, ctx, bn);
1791 }
1792
get_rsa_payload_e(enum state state,const struct translation_st * translation,struct translation_ctx_st * ctx)1793 static int get_rsa_payload_e(enum state state,
1794 const struct translation_st *translation,
1795 struct translation_ctx_st *ctx)
1796 {
1797 const BIGNUM *bn = NULL;
1798
1799 if (EVP_PKEY_get_base_id(ctx->p2) != EVP_PKEY_RSA)
1800 return 0;
1801 bn = RSA_get0_e(EVP_PKEY_get0_RSA(ctx->p2));
1802
1803 return get_payload_bn(state, translation, ctx, bn);
1804 }
1805
get_rsa_payload_d(enum state state,const struct translation_st * translation,struct translation_ctx_st * ctx)1806 static int get_rsa_payload_d(enum state state,
1807 const struct translation_st *translation,
1808 struct translation_ctx_st *ctx)
1809 {
1810 const BIGNUM *bn = NULL;
1811
1812 if (EVP_PKEY_get_base_id(ctx->p2) != EVP_PKEY_RSA)
1813 return 0;
1814 bn = RSA_get0_d(EVP_PKEY_get0_RSA(ctx->p2));
1815
1816 return get_payload_bn(state, translation, ctx, bn);
1817 }
1818
get_rsa_payload_factor(enum state state,const struct translation_st * translation,struct translation_ctx_st * ctx,size_t factornum)1819 static int get_rsa_payload_factor(enum state state,
1820 const struct translation_st *translation,
1821 struct translation_ctx_st *ctx,
1822 size_t factornum)
1823 {
1824 const RSA *r = EVP_PKEY_get0_RSA(ctx->p2);
1825 const BIGNUM *bn = NULL;
1826
1827 switch (factornum) {
1828 case 0:
1829 bn = RSA_get0_p(r);
1830 break;
1831 case 1:
1832 bn = RSA_get0_q(r);
1833 break;
1834 default:
1835 {
1836 size_t pnum = RSA_get_multi_prime_extra_count(r);
1837 const BIGNUM *factors[10];
1838
1839 if (factornum - 2 < pnum
1840 && RSA_get0_multi_prime_factors(r, factors))
1841 bn = factors[factornum - 2];
1842 }
1843 break;
1844 }
1845
1846 return get_payload_bn(state, translation, ctx, bn);
1847 }
1848
get_rsa_payload_exponent(enum state state,const struct translation_st * translation,struct translation_ctx_st * ctx,size_t exponentnum)1849 static int get_rsa_payload_exponent(enum state state,
1850 const struct translation_st *translation,
1851 struct translation_ctx_st *ctx,
1852 size_t exponentnum)
1853 {
1854 const RSA *r = EVP_PKEY_get0_RSA(ctx->p2);
1855 const BIGNUM *bn = NULL;
1856
1857 switch (exponentnum) {
1858 case 0:
1859 bn = RSA_get0_dmp1(r);
1860 break;
1861 case 1:
1862 bn = RSA_get0_dmq1(r);
1863 break;
1864 default:
1865 {
1866 size_t pnum = RSA_get_multi_prime_extra_count(r);
1867 const BIGNUM *exps[10], *coeffs[10];
1868
1869 if (exponentnum - 2 < pnum
1870 && RSA_get0_multi_prime_crt_params(r, exps, coeffs))
1871 bn = exps[exponentnum - 2];
1872 }
1873 break;
1874 }
1875
1876 return get_payload_bn(state, translation, ctx, bn);
1877 }
1878
get_rsa_payload_coefficient(enum state state,const struct translation_st * translation,struct translation_ctx_st * ctx,size_t coefficientnum)1879 static int get_rsa_payload_coefficient(enum state state,
1880 const struct translation_st *translation,
1881 struct translation_ctx_st *ctx,
1882 size_t coefficientnum)
1883 {
1884 const RSA *r = EVP_PKEY_get0_RSA(ctx->p2);
1885 const BIGNUM *bn = NULL;
1886
1887 switch (coefficientnum) {
1888 case 0:
1889 bn = RSA_get0_iqmp(r);
1890 break;
1891 default:
1892 {
1893 size_t pnum = RSA_get_multi_prime_extra_count(r);
1894 const BIGNUM *exps[10], *coeffs[10];
1895
1896 if (coefficientnum - 1 < pnum
1897 && RSA_get0_multi_prime_crt_params(r, exps, coeffs))
1898 bn = coeffs[coefficientnum - 1];
1899 }
1900 break;
1901 }
1902
1903 return get_payload_bn(state, translation, ctx, bn);
1904 }
1905
1906 #define IMPL_GET_RSA_PAYLOAD_FACTOR(n) \
1907 static int \
1908 get_rsa_payload_f##n(enum state state, \
1909 const struct translation_st *translation, \
1910 struct translation_ctx_st *ctx) \
1911 { \
1912 if (EVP_PKEY_get_base_id(ctx->p2) != EVP_PKEY_RSA) \
1913 return 0; \
1914 return get_rsa_payload_factor(state, translation, ctx, n - 1); \
1915 }
1916
1917 #define IMPL_GET_RSA_PAYLOAD_EXPONENT(n) \
1918 static int \
1919 get_rsa_payload_e##n(enum state state, \
1920 const struct translation_st *translation, \
1921 struct translation_ctx_st *ctx) \
1922 { \
1923 if (EVP_PKEY_get_base_id(ctx->p2) != EVP_PKEY_RSA) \
1924 return 0; \
1925 return get_rsa_payload_exponent(state, translation, ctx, \
1926 n - 1); \
1927 }
1928
1929 #define IMPL_GET_RSA_PAYLOAD_COEFFICIENT(n) \
1930 static int \
1931 get_rsa_payload_c##n(enum state state, \
1932 const struct translation_st *translation, \
1933 struct translation_ctx_st *ctx) \
1934 { \
1935 if (EVP_PKEY_get_base_id(ctx->p2) != EVP_PKEY_RSA) \
1936 return 0; \
1937 return get_rsa_payload_coefficient(state, translation, ctx, \
1938 n - 1); \
1939 }
1940
1941 IMPL_GET_RSA_PAYLOAD_FACTOR(1)
1942 IMPL_GET_RSA_PAYLOAD_FACTOR(2)
1943 IMPL_GET_RSA_PAYLOAD_FACTOR(3)
1944 IMPL_GET_RSA_PAYLOAD_FACTOR(4)
1945 IMPL_GET_RSA_PAYLOAD_FACTOR(5)
1946 IMPL_GET_RSA_PAYLOAD_FACTOR(6)
1947 IMPL_GET_RSA_PAYLOAD_FACTOR(7)
1948 IMPL_GET_RSA_PAYLOAD_FACTOR(8)
1949 IMPL_GET_RSA_PAYLOAD_FACTOR(9)
1950 IMPL_GET_RSA_PAYLOAD_FACTOR(10)
1951 IMPL_GET_RSA_PAYLOAD_EXPONENT(1)
1952 IMPL_GET_RSA_PAYLOAD_EXPONENT(2)
1953 IMPL_GET_RSA_PAYLOAD_EXPONENT(3)
1954 IMPL_GET_RSA_PAYLOAD_EXPONENT(4)
1955 IMPL_GET_RSA_PAYLOAD_EXPONENT(5)
1956 IMPL_GET_RSA_PAYLOAD_EXPONENT(6)
1957 IMPL_GET_RSA_PAYLOAD_EXPONENT(7)
1958 IMPL_GET_RSA_PAYLOAD_EXPONENT(8)
1959 IMPL_GET_RSA_PAYLOAD_EXPONENT(9)
1960 IMPL_GET_RSA_PAYLOAD_EXPONENT(10)
1961 IMPL_GET_RSA_PAYLOAD_COEFFICIENT(1)
1962 IMPL_GET_RSA_PAYLOAD_COEFFICIENT(2)
1963 IMPL_GET_RSA_PAYLOAD_COEFFICIENT(3)
1964 IMPL_GET_RSA_PAYLOAD_COEFFICIENT(4)
1965 IMPL_GET_RSA_PAYLOAD_COEFFICIENT(5)
1966 IMPL_GET_RSA_PAYLOAD_COEFFICIENT(6)
1967 IMPL_GET_RSA_PAYLOAD_COEFFICIENT(7)
1968 IMPL_GET_RSA_PAYLOAD_COEFFICIENT(8)
1969 IMPL_GET_RSA_PAYLOAD_COEFFICIENT(9)
1970
fix_group_ecx(enum state state,const struct translation_st * translation,struct translation_ctx_st * ctx)1971 static int fix_group_ecx(enum state state,
1972 const struct translation_st *translation,
1973 struct translation_ctx_st *ctx)
1974 {
1975 const char *value = NULL;
1976
1977 switch (state) {
1978 case PRE_PARAMS_TO_CTRL:
1979 if (!EVP_PKEY_CTX_IS_GEN_OP(ctx->pctx))
1980 return 0;
1981 ctx->action_type = NONE;
1982 return 1;
1983 case POST_PARAMS_TO_CTRL:
1984 if (OSSL_PARAM_get_utf8_string_ptr(ctx->params, &value) == 0 ||
1985 OPENSSL_strcasecmp(ctx->pctx->keytype, value) != 0) {
1986 ERR_raise(ERR_LIB_EVP, ERR_R_PASSED_INVALID_ARGUMENT);
1987 ctx->p1 = 0;
1988 return 0;
1989 }
1990 ctx->p1 = 1;
1991 return 1;
1992 default:
1993 return 0;
1994 }
1995 }
1996
1997 /*-
1998 * The translation table itself
1999 * ============================
2000 */
2001
2002 static const struct translation_st evp_pkey_ctx_translations[] = {
2003 /*
2004 * DistID: we pass it to the backend as an octet string,
2005 * but get it back as a pointer to an octet string.
2006 *
2007 * Note that the EVP_PKEY_CTRL_GET1_ID_LEN is purely for legacy purposes
2008 * that has no separate counterpart in OSSL_PARAM terms, since we get
2009 * the length of the DistID automatically when getting the DistID itself.
2010 */
2011 { SET, -1, -1, EVP_PKEY_OP_TYPE_SIG,
2012 EVP_PKEY_CTRL_SET1_ID, "distid", "hexdistid",
2013 OSSL_PKEY_PARAM_DIST_ID, OSSL_PARAM_OCTET_STRING, NULL },
2014 { GET, -1, -1, -1,
2015 EVP_PKEY_CTRL_GET1_ID, "distid", "hexdistid",
2016 OSSL_PKEY_PARAM_DIST_ID, OSSL_PARAM_OCTET_PTR, NULL },
2017 { GET, -1, -1, -1,
2018 EVP_PKEY_CTRL_GET1_ID_LEN, NULL, NULL,
2019 OSSL_PKEY_PARAM_DIST_ID, OSSL_PARAM_OCTET_PTR, fix_distid_len },
2020
2021 /*-
2022 * DH & DHX
2023 * ========
2024 */
2025
2026 /*
2027 * EVP_PKEY_CTRL_DH_KDF_TYPE is used both for setting and getting. The
2028 * fixup function has to handle this...
2029 */
2030 { NONE, EVP_PKEY_DHX, 0, EVP_PKEY_OP_DERIVE,
2031 EVP_PKEY_CTRL_DH_KDF_TYPE, NULL, NULL,
2032 OSSL_EXCHANGE_PARAM_KDF_TYPE, OSSL_PARAM_UTF8_STRING,
2033 fix_dh_kdf_type },
2034 { SET, EVP_PKEY_DHX, 0, EVP_PKEY_OP_DERIVE,
2035 EVP_PKEY_CTRL_DH_KDF_MD, NULL, NULL,
2036 OSSL_EXCHANGE_PARAM_KDF_DIGEST, OSSL_PARAM_UTF8_STRING, fix_md },
2037 { GET, EVP_PKEY_DHX, 0, EVP_PKEY_OP_DERIVE,
2038 EVP_PKEY_CTRL_GET_DH_KDF_MD, NULL, NULL,
2039 OSSL_EXCHANGE_PARAM_KDF_DIGEST, OSSL_PARAM_UTF8_STRING, fix_md },
2040 { SET, EVP_PKEY_DHX, 0, EVP_PKEY_OP_DERIVE,
2041 EVP_PKEY_CTRL_DH_KDF_OUTLEN, NULL, NULL,
2042 OSSL_EXCHANGE_PARAM_KDF_OUTLEN, OSSL_PARAM_UNSIGNED_INTEGER, NULL },
2043 { GET, EVP_PKEY_DHX, 0, EVP_PKEY_OP_DERIVE,
2044 EVP_PKEY_CTRL_GET_DH_KDF_OUTLEN, NULL, NULL,
2045 OSSL_EXCHANGE_PARAM_KDF_OUTLEN, OSSL_PARAM_UNSIGNED_INTEGER, NULL },
2046 { SET, EVP_PKEY_DHX, 0, EVP_PKEY_OP_DERIVE,
2047 EVP_PKEY_CTRL_DH_KDF_UKM, NULL, NULL,
2048 OSSL_EXCHANGE_PARAM_KDF_UKM, OSSL_PARAM_OCTET_STRING, NULL },
2049 { GET, EVP_PKEY_DHX, 0, EVP_PKEY_OP_DERIVE,
2050 EVP_PKEY_CTRL_GET_DH_KDF_UKM, NULL, NULL,
2051 OSSL_EXCHANGE_PARAM_KDF_UKM, OSSL_PARAM_OCTET_PTR, NULL },
2052 { SET, EVP_PKEY_DHX, 0, EVP_PKEY_OP_DERIVE,
2053 EVP_PKEY_CTRL_DH_KDF_OID, NULL, NULL,
2054 OSSL_KDF_PARAM_CEK_ALG, OSSL_PARAM_UTF8_STRING, fix_oid },
2055 { GET, EVP_PKEY_DHX, 0, EVP_PKEY_OP_DERIVE,
2056 EVP_PKEY_CTRL_GET_DH_KDF_OID, NULL, NULL,
2057 OSSL_KDF_PARAM_CEK_ALG, OSSL_PARAM_UTF8_STRING, fix_oid },
2058
2059 /* DHX Keygen Parameters that are shared with DH */
2060 { SET, EVP_PKEY_DHX, 0, EVP_PKEY_OP_PARAMGEN,
2061 EVP_PKEY_CTRL_DH_PARAMGEN_TYPE, "dh_paramgen_type", NULL,
2062 OSSL_PKEY_PARAM_FFC_TYPE, OSSL_PARAM_UTF8_STRING, fix_dh_paramgen_type },
2063 { SET, EVP_PKEY_DHX, 0, EVP_PKEY_OP_PARAMGEN,
2064 EVP_PKEY_CTRL_DH_PARAMGEN_PRIME_LEN, "dh_paramgen_prime_len", NULL,
2065 OSSL_PKEY_PARAM_FFC_PBITS, OSSL_PARAM_UNSIGNED_INTEGER, NULL },
2066 { SET, EVP_PKEY_DHX, 0, EVP_PKEY_OP_PARAMGEN | EVP_PKEY_OP_KEYGEN,
2067 EVP_PKEY_CTRL_DH_NID, "dh_param", NULL,
2068 OSSL_PKEY_PARAM_GROUP_NAME, OSSL_PARAM_UTF8_STRING, NULL },
2069 { SET, EVP_PKEY_DHX, 0, EVP_PKEY_OP_PARAMGEN | EVP_PKEY_OP_KEYGEN,
2070 EVP_PKEY_CTRL_DH_RFC5114, "dh_rfc5114", NULL,
2071 OSSL_PKEY_PARAM_GROUP_NAME, OSSL_PARAM_UTF8_STRING, fix_dh_nid5114 },
2072
2073 /* DH Keygen Parameters that are shared with DHX */
2074 { SET, EVP_PKEY_DH, 0, EVP_PKEY_OP_PARAMGEN,
2075 EVP_PKEY_CTRL_DH_PARAMGEN_TYPE, "dh_paramgen_type", NULL,
2076 OSSL_PKEY_PARAM_FFC_TYPE, OSSL_PARAM_UTF8_STRING, fix_dh_paramgen_type },
2077 { SET, EVP_PKEY_DH, 0, EVP_PKEY_OP_PARAMGEN,
2078 EVP_PKEY_CTRL_DH_PARAMGEN_PRIME_LEN, "dh_paramgen_prime_len", NULL,
2079 OSSL_PKEY_PARAM_FFC_PBITS, OSSL_PARAM_UNSIGNED_INTEGER, NULL },
2080 { SET, EVP_PKEY_DH, 0, EVP_PKEY_OP_PARAMGEN | EVP_PKEY_OP_KEYGEN,
2081 EVP_PKEY_CTRL_DH_NID, "dh_param", NULL,
2082 OSSL_PKEY_PARAM_GROUP_NAME, OSSL_PARAM_UTF8_STRING, fix_dh_nid },
2083 { SET, EVP_PKEY_DH, 0, EVP_PKEY_OP_PARAMGEN | EVP_PKEY_OP_KEYGEN,
2084 EVP_PKEY_CTRL_DH_RFC5114, "dh_rfc5114", NULL,
2085 OSSL_PKEY_PARAM_GROUP_NAME, OSSL_PARAM_UTF8_STRING, fix_dh_nid5114 },
2086
2087 /* DH specific Keygen Parameters */
2088 { SET, EVP_PKEY_DH, 0, EVP_PKEY_OP_PARAMGEN,
2089 EVP_PKEY_CTRL_DH_PARAMGEN_GENERATOR, "dh_paramgen_generator", NULL,
2090 OSSL_PKEY_PARAM_DH_GENERATOR, OSSL_PARAM_INTEGER, NULL },
2091
2092 /* DHX specific Keygen Parameters */
2093 { SET, EVP_PKEY_DHX, 0, EVP_PKEY_OP_PARAMGEN,
2094 EVP_PKEY_CTRL_DH_PARAMGEN_SUBPRIME_LEN, "dh_paramgen_subprime_len", NULL,
2095 OSSL_PKEY_PARAM_FFC_QBITS, OSSL_PARAM_UNSIGNED_INTEGER, NULL },
2096
2097 { SET, EVP_PKEY_DH, 0, EVP_PKEY_OP_DERIVE,
2098 EVP_PKEY_CTRL_DH_PAD, "dh_pad", NULL,
2099 OSSL_EXCHANGE_PARAM_PAD, OSSL_PARAM_UNSIGNED_INTEGER, NULL },
2100
2101 /*-
2102 * DSA
2103 * ===
2104 */
2105 { SET, EVP_PKEY_DSA, 0, EVP_PKEY_OP_PARAMGEN,
2106 EVP_PKEY_CTRL_DSA_PARAMGEN_BITS, "dsa_paramgen_bits", NULL,
2107 OSSL_PKEY_PARAM_FFC_PBITS, OSSL_PARAM_UNSIGNED_INTEGER, NULL },
2108 { SET, EVP_PKEY_DSA, 0, EVP_PKEY_OP_PARAMGEN,
2109 EVP_PKEY_CTRL_DSA_PARAMGEN_Q_BITS, "dsa_paramgen_q_bits", NULL,
2110 OSSL_PKEY_PARAM_FFC_QBITS, OSSL_PARAM_UNSIGNED_INTEGER, NULL },
2111 { SET, EVP_PKEY_DSA, 0, EVP_PKEY_OP_PARAMGEN,
2112 EVP_PKEY_CTRL_DSA_PARAMGEN_MD, "dsa_paramgen_md", NULL,
2113 OSSL_PKEY_PARAM_FFC_DIGEST, OSSL_PARAM_UTF8_STRING, fix_md },
2114
2115 /*-
2116 * EC
2117 * ==
2118 */
2119 { SET, EVP_PKEY_EC, 0, EVP_PKEY_OP_PARAMGEN | EVP_PKEY_OP_KEYGEN,
2120 EVP_PKEY_CTRL_EC_PARAM_ENC, "ec_param_enc", NULL,
2121 OSSL_PKEY_PARAM_EC_ENCODING, OSSL_PARAM_UTF8_STRING, fix_ec_param_enc },
2122 { SET, EVP_PKEY_EC, 0, EVP_PKEY_OP_PARAMGEN | EVP_PKEY_OP_KEYGEN,
2123 EVP_PKEY_CTRL_EC_PARAMGEN_CURVE_NID, "ec_paramgen_curve", NULL,
2124 OSSL_PKEY_PARAM_GROUP_NAME, OSSL_PARAM_UTF8_STRING,
2125 fix_ec_paramgen_curve_nid },
2126 /*
2127 * EVP_PKEY_CTRL_EC_ECDH_COFACTOR and EVP_PKEY_CTRL_EC_KDF_TYPE are used
2128 * both for setting and getting. The fixup function has to handle this...
2129 */
2130 { NONE, EVP_PKEY_EC, 0, EVP_PKEY_OP_DERIVE,
2131 EVP_PKEY_CTRL_EC_ECDH_COFACTOR, "ecdh_cofactor_mode", NULL,
2132 OSSL_EXCHANGE_PARAM_EC_ECDH_COFACTOR_MODE, OSSL_PARAM_INTEGER,
2133 fix_ecdh_cofactor },
2134 { NONE, EVP_PKEY_EC, 0, EVP_PKEY_OP_DERIVE,
2135 EVP_PKEY_CTRL_EC_KDF_TYPE, NULL, NULL,
2136 OSSL_EXCHANGE_PARAM_KDF_TYPE, OSSL_PARAM_UTF8_STRING, fix_ec_kdf_type },
2137 { SET, EVP_PKEY_EC, 0, EVP_PKEY_OP_DERIVE,
2138 EVP_PKEY_CTRL_EC_KDF_MD, "ecdh_kdf_md", NULL,
2139 OSSL_EXCHANGE_PARAM_KDF_DIGEST, OSSL_PARAM_UTF8_STRING, fix_md },
2140 { GET, EVP_PKEY_EC, 0, EVP_PKEY_OP_DERIVE,
2141 EVP_PKEY_CTRL_GET_EC_KDF_MD, NULL, NULL,
2142 OSSL_EXCHANGE_PARAM_KDF_DIGEST, OSSL_PARAM_UTF8_STRING, fix_md },
2143 { SET, EVP_PKEY_EC, 0, EVP_PKEY_OP_DERIVE,
2144 EVP_PKEY_CTRL_EC_KDF_OUTLEN, NULL, NULL,
2145 OSSL_EXCHANGE_PARAM_KDF_OUTLEN, OSSL_PARAM_UNSIGNED_INTEGER, NULL },
2146 { GET, EVP_PKEY_EC, 0, EVP_PKEY_OP_DERIVE,
2147 EVP_PKEY_CTRL_GET_EC_KDF_OUTLEN, NULL, NULL,
2148 OSSL_EXCHANGE_PARAM_KDF_OUTLEN, OSSL_PARAM_UNSIGNED_INTEGER, NULL },
2149 { SET, EVP_PKEY_EC, 0, EVP_PKEY_OP_DERIVE,
2150 EVP_PKEY_CTRL_EC_KDF_UKM, NULL, NULL,
2151 OSSL_EXCHANGE_PARAM_KDF_UKM, OSSL_PARAM_OCTET_STRING, NULL },
2152 { GET, EVP_PKEY_EC, 0, EVP_PKEY_OP_DERIVE,
2153 EVP_PKEY_CTRL_GET_EC_KDF_UKM, NULL, NULL,
2154 OSSL_EXCHANGE_PARAM_KDF_UKM, OSSL_PARAM_OCTET_PTR, NULL },
2155
2156 /*-
2157 * SM2
2158 * ==
2159 */
2160 { SET, EVP_PKEY_SM2, 0, EVP_PKEY_OP_PARAMGEN | EVP_PKEY_OP_KEYGEN,
2161 EVP_PKEY_CTRL_EC_PARAM_ENC, "ec_param_enc", NULL,
2162 OSSL_PKEY_PARAM_EC_ENCODING, OSSL_PARAM_UTF8_STRING, fix_ec_param_enc },
2163 { SET, EVP_PKEY_SM2, 0, EVP_PKEY_OP_PARAMGEN | EVP_PKEY_OP_KEYGEN,
2164 EVP_PKEY_CTRL_EC_PARAMGEN_CURVE_NID, "ec_paramgen_curve", NULL,
2165 OSSL_PKEY_PARAM_GROUP_NAME, OSSL_PARAM_UTF8_STRING,
2166 fix_ec_paramgen_curve_nid },
2167 /*
2168 * EVP_PKEY_CTRL_EC_ECDH_COFACTOR and EVP_PKEY_CTRL_EC_KDF_TYPE are used
2169 * both for setting and getting. The fixup function has to handle this...
2170 */
2171 { NONE, EVP_PKEY_SM2, 0, EVP_PKEY_OP_DERIVE,
2172 EVP_PKEY_CTRL_EC_ECDH_COFACTOR, "ecdh_cofactor_mode", NULL,
2173 OSSL_EXCHANGE_PARAM_EC_ECDH_COFACTOR_MODE, OSSL_PARAM_INTEGER,
2174 fix_ecdh_cofactor },
2175 { NONE, EVP_PKEY_SM2, 0, EVP_PKEY_OP_DERIVE,
2176 EVP_PKEY_CTRL_EC_KDF_TYPE, NULL, NULL,
2177 OSSL_EXCHANGE_PARAM_KDF_TYPE, OSSL_PARAM_UTF8_STRING, fix_ec_kdf_type },
2178 { SET, EVP_PKEY_SM2, 0, EVP_PKEY_OP_DERIVE,
2179 EVP_PKEY_CTRL_EC_KDF_MD, "ecdh_kdf_md", NULL,
2180 OSSL_EXCHANGE_PARAM_KDF_DIGEST, OSSL_PARAM_UTF8_STRING, fix_md },
2181 { GET, EVP_PKEY_SM2, 0, EVP_PKEY_OP_DERIVE,
2182 EVP_PKEY_CTRL_GET_EC_KDF_MD, NULL, NULL,
2183 OSSL_EXCHANGE_PARAM_KDF_DIGEST, OSSL_PARAM_UTF8_STRING, fix_md },
2184 { SET, EVP_PKEY_SM2, 0, EVP_PKEY_OP_DERIVE,
2185 EVP_PKEY_CTRL_EC_KDF_OUTLEN, NULL, NULL,
2186 OSSL_EXCHANGE_PARAM_KDF_OUTLEN, OSSL_PARAM_UNSIGNED_INTEGER, NULL },
2187 { GET, EVP_PKEY_SM2, 0, EVP_PKEY_OP_DERIVE,
2188 EVP_PKEY_CTRL_GET_EC_KDF_OUTLEN, NULL, NULL,
2189 OSSL_EXCHANGE_PARAM_KDF_OUTLEN, OSSL_PARAM_UNSIGNED_INTEGER, NULL },
2190 { SET, EVP_PKEY_SM2, 0, EVP_PKEY_OP_DERIVE,
2191 EVP_PKEY_CTRL_EC_KDF_UKM, NULL, NULL,
2192 OSSL_EXCHANGE_PARAM_KDF_UKM, OSSL_PARAM_OCTET_STRING, NULL },
2193 { GET, EVP_PKEY_SM2, 0, EVP_PKEY_OP_DERIVE,
2194 EVP_PKEY_CTRL_GET_EC_KDF_UKM, NULL, NULL,
2195 OSSL_EXCHANGE_PARAM_KDF_UKM, OSSL_PARAM_OCTET_PTR, NULL },
2196 /*-
2197 * RSA
2198 * ===
2199 */
2200
2201 /*
2202 * RSA padding modes are numeric with ctrls, strings with ctrl_strs,
2203 * and can be both with OSSL_PARAM. We standardise on strings here,
2204 * fix_rsa_padding_mode() does the work when the caller has a different
2205 * idea.
2206 */
2207 { SET, EVP_PKEY_RSA, EVP_PKEY_RSA_PSS,
2208 EVP_PKEY_OP_TYPE_CRYPT | EVP_PKEY_OP_TYPE_SIG,
2209 EVP_PKEY_CTRL_RSA_PADDING, "rsa_padding_mode", NULL,
2210 OSSL_PKEY_PARAM_PAD_MODE, OSSL_PARAM_UTF8_STRING, fix_rsa_padding_mode },
2211 { GET, EVP_PKEY_RSA, EVP_PKEY_RSA_PSS,
2212 EVP_PKEY_OP_TYPE_CRYPT | EVP_PKEY_OP_TYPE_SIG,
2213 EVP_PKEY_CTRL_GET_RSA_PADDING, NULL, NULL,
2214 OSSL_PKEY_PARAM_PAD_MODE, OSSL_PARAM_UTF8_STRING, fix_rsa_padding_mode },
2215
2216 { SET, EVP_PKEY_RSA, EVP_PKEY_RSA_PSS,
2217 EVP_PKEY_OP_TYPE_CRYPT | EVP_PKEY_OP_TYPE_SIG,
2218 EVP_PKEY_CTRL_RSA_MGF1_MD, "rsa_mgf1_md", NULL,
2219 OSSL_PKEY_PARAM_MGF1_DIGEST, OSSL_PARAM_UTF8_STRING, fix_md },
2220 { GET, EVP_PKEY_RSA, EVP_PKEY_RSA_PSS,
2221 EVP_PKEY_OP_TYPE_CRYPT | EVP_PKEY_OP_TYPE_SIG,
2222 EVP_PKEY_CTRL_GET_RSA_MGF1_MD, NULL, NULL,
2223 OSSL_PKEY_PARAM_MGF1_DIGEST, OSSL_PARAM_UTF8_STRING, fix_md },
2224
2225 /*
2226 * RSA-PSS saltlen is essentially numeric, but certain values can be
2227 * expressed as keywords (strings) with ctrl_str. The corresponding
2228 * OSSL_PARAM allows both forms.
2229 * fix_rsa_pss_saltlen() takes care of the distinction.
2230 */
2231 { SET, EVP_PKEY_RSA, EVP_PKEY_RSA_PSS, EVP_PKEY_OP_TYPE_SIG,
2232 EVP_PKEY_CTRL_RSA_PSS_SALTLEN, "rsa_pss_saltlen", NULL,
2233 OSSL_PKEY_PARAM_RSA_PSS_SALTLEN, OSSL_PARAM_UTF8_STRING,
2234 fix_rsa_pss_saltlen },
2235 { GET, EVP_PKEY_RSA, EVP_PKEY_RSA_PSS, EVP_PKEY_OP_TYPE_SIG,
2236 EVP_PKEY_CTRL_GET_RSA_PSS_SALTLEN, NULL, NULL,
2237 OSSL_PKEY_PARAM_RSA_PSS_SALTLEN, OSSL_PARAM_UTF8_STRING,
2238 fix_rsa_pss_saltlen },
2239
2240 { SET, EVP_PKEY_RSA, 0, EVP_PKEY_OP_TYPE_CRYPT,
2241 EVP_PKEY_CTRL_RSA_OAEP_MD, "rsa_oaep_md", NULL,
2242 OSSL_ASYM_CIPHER_PARAM_OAEP_DIGEST, OSSL_PARAM_UTF8_STRING, fix_md },
2243 { GET, EVP_PKEY_RSA, 0, EVP_PKEY_OP_TYPE_CRYPT,
2244 EVP_PKEY_CTRL_GET_RSA_OAEP_MD, NULL, NULL,
2245 OSSL_ASYM_CIPHER_PARAM_OAEP_DIGEST, OSSL_PARAM_UTF8_STRING, fix_md },
2246 /*
2247 * The "rsa_oaep_label" ctrl_str expects the value to always be hex.
2248 * This is accomodated by default_fixup_args() above, which mimics that
2249 * expectation for any translation item where |ctrl_str| is NULL and
2250 * |ctrl_hexstr| is non-NULL.
2251 */
2252 { SET, EVP_PKEY_RSA, 0, EVP_PKEY_OP_TYPE_CRYPT,
2253 EVP_PKEY_CTRL_RSA_OAEP_LABEL, NULL, "rsa_oaep_label",
2254 OSSL_ASYM_CIPHER_PARAM_OAEP_LABEL, OSSL_PARAM_OCTET_STRING, NULL },
2255 { GET, EVP_PKEY_RSA, 0, EVP_PKEY_OP_TYPE_CRYPT,
2256 EVP_PKEY_CTRL_GET_RSA_OAEP_LABEL, NULL, NULL,
2257 OSSL_ASYM_CIPHER_PARAM_OAEP_LABEL, OSSL_PARAM_OCTET_STRING, NULL },
2258
2259 { SET, EVP_PKEY_RSA_PSS, 0, EVP_PKEY_OP_TYPE_GEN,
2260 EVP_PKEY_CTRL_MD, "rsa_pss_keygen_md", NULL,
2261 OSSL_ALG_PARAM_DIGEST, OSSL_PARAM_UTF8_STRING, fix_md },
2262 { SET, EVP_PKEY_RSA_PSS, 0, EVP_PKEY_OP_TYPE_GEN,
2263 EVP_PKEY_CTRL_RSA_MGF1_MD, "rsa_pss_keygen_mgf1_md", NULL,
2264 OSSL_PKEY_PARAM_MGF1_DIGEST, OSSL_PARAM_UTF8_STRING, fix_md },
2265 { SET, EVP_PKEY_RSA_PSS, 0, EVP_PKEY_OP_TYPE_GEN,
2266 EVP_PKEY_CTRL_RSA_PSS_SALTLEN, "rsa_pss_keygen_saltlen", NULL,
2267 OSSL_SIGNATURE_PARAM_PSS_SALTLEN, OSSL_PARAM_INTEGER, NULL },
2268 { SET, EVP_PKEY_RSA, EVP_PKEY_RSA_PSS, EVP_PKEY_OP_KEYGEN,
2269 EVP_PKEY_CTRL_RSA_KEYGEN_BITS, "rsa_keygen_bits", NULL,
2270 OSSL_PKEY_PARAM_RSA_BITS, OSSL_PARAM_UNSIGNED_INTEGER, NULL },
2271 { SET, EVP_PKEY_RSA, 0, EVP_PKEY_OP_KEYGEN,
2272 EVP_PKEY_CTRL_RSA_KEYGEN_PUBEXP, "rsa_keygen_pubexp", NULL,
2273 OSSL_PKEY_PARAM_RSA_E, OSSL_PARAM_UNSIGNED_INTEGER, NULL },
2274 { SET, EVP_PKEY_RSA, 0, EVP_PKEY_OP_KEYGEN,
2275 EVP_PKEY_CTRL_RSA_KEYGEN_PRIMES, "rsa_keygen_primes", NULL,
2276 OSSL_PKEY_PARAM_RSA_PRIMES, OSSL_PARAM_UNSIGNED_INTEGER, NULL },
2277
2278 /*-
2279 * SipHash
2280 * ======
2281 */
2282 { SET, -1, -1, EVP_PKEY_OP_TYPE_SIG,
2283 EVP_PKEY_CTRL_SET_DIGEST_SIZE, "digestsize", NULL,
2284 OSSL_MAC_PARAM_SIZE, OSSL_PARAM_UNSIGNED_INTEGER, NULL },
2285
2286 /*-
2287 * TLS1-PRF
2288 * ========
2289 */
2290 { SET, -1, -1, EVP_PKEY_OP_DERIVE,
2291 EVP_PKEY_CTRL_TLS_MD, "md", NULL,
2292 OSSL_KDF_PARAM_DIGEST, OSSL_PARAM_UTF8_STRING, fix_md },
2293 { SET, -1, -1, EVP_PKEY_OP_DERIVE,
2294 EVP_PKEY_CTRL_TLS_SECRET, "secret", "hexsecret",
2295 OSSL_KDF_PARAM_SECRET, OSSL_PARAM_OCTET_STRING, NULL },
2296 { SET, -1, -1, EVP_PKEY_OP_DERIVE,
2297 EVP_PKEY_CTRL_TLS_SEED, "seed", "hexseed",
2298 OSSL_KDF_PARAM_SEED, OSSL_PARAM_OCTET_STRING, NULL },
2299
2300 /*-
2301 * HKDF
2302 * ====
2303 */
2304 { SET, -1, -1, EVP_PKEY_OP_DERIVE,
2305 EVP_PKEY_CTRL_HKDF_MD, "md", NULL,
2306 OSSL_KDF_PARAM_DIGEST, OSSL_PARAM_UTF8_STRING, fix_md },
2307 { SET, -1, -1, EVP_PKEY_OP_DERIVE,
2308 EVP_PKEY_CTRL_HKDF_SALT, "salt", "hexsalt",
2309 OSSL_KDF_PARAM_SALT, OSSL_PARAM_OCTET_STRING, NULL },
2310 { SET, -1, -1, EVP_PKEY_OP_DERIVE,
2311 EVP_PKEY_CTRL_HKDF_KEY, "key", "hexkey",
2312 OSSL_KDF_PARAM_KEY, OSSL_PARAM_OCTET_STRING, NULL },
2313 { SET, -1, -1, EVP_PKEY_OP_DERIVE,
2314 EVP_PKEY_CTRL_HKDF_INFO, "info", "hexinfo",
2315 OSSL_KDF_PARAM_INFO, OSSL_PARAM_OCTET_STRING, NULL },
2316 { SET, -1, -1, EVP_PKEY_OP_DERIVE,
2317 EVP_PKEY_CTRL_HKDF_MODE, "mode", NULL,
2318 OSSL_KDF_PARAM_MODE, OSSL_PARAM_INTEGER, fix_hkdf_mode },
2319
2320 /*-
2321 * Scrypt
2322 * ======
2323 */
2324 { SET, -1, -1, EVP_PKEY_OP_DERIVE,
2325 EVP_PKEY_CTRL_PASS, "pass", "hexpass",
2326 OSSL_KDF_PARAM_PASSWORD, OSSL_PARAM_OCTET_STRING, NULL },
2327 { SET, -1, -1, EVP_PKEY_OP_DERIVE,
2328 EVP_PKEY_CTRL_SCRYPT_SALT, "salt", "hexsalt",
2329 OSSL_KDF_PARAM_SALT, OSSL_PARAM_OCTET_STRING, NULL },
2330 { SET, -1, -1, EVP_PKEY_OP_DERIVE,
2331 EVP_PKEY_CTRL_SCRYPT_N, "N", NULL,
2332 OSSL_KDF_PARAM_SCRYPT_N, OSSL_PARAM_UNSIGNED_INTEGER, NULL },
2333 { SET, -1, -1, EVP_PKEY_OP_DERIVE,
2334 EVP_PKEY_CTRL_SCRYPT_R, "r", NULL,
2335 OSSL_KDF_PARAM_SCRYPT_R, OSSL_PARAM_UNSIGNED_INTEGER, NULL },
2336 { SET, -1, -1, EVP_PKEY_OP_DERIVE,
2337 EVP_PKEY_CTRL_SCRYPT_P, "p", NULL,
2338 OSSL_KDF_PARAM_SCRYPT_P, OSSL_PARAM_UNSIGNED_INTEGER, NULL },
2339 { SET, -1, -1, EVP_PKEY_OP_DERIVE,
2340 EVP_PKEY_CTRL_SCRYPT_MAXMEM_BYTES, "maxmem_bytes", NULL,
2341 OSSL_KDF_PARAM_SCRYPT_MAXMEM, OSSL_PARAM_UNSIGNED_INTEGER, NULL },
2342
2343 { SET, -1, -1, EVP_PKEY_OP_KEYGEN | EVP_PKEY_OP_TYPE_CRYPT,
2344 EVP_PKEY_CTRL_CIPHER, NULL, NULL,
2345 OSSL_PKEY_PARAM_CIPHER, OSSL_PARAM_UTF8_STRING, fix_cipher },
2346 { SET, -1, -1, EVP_PKEY_OP_KEYGEN,
2347 EVP_PKEY_CTRL_SET_MAC_KEY, "key", "hexkey",
2348 OSSL_PKEY_PARAM_PRIV_KEY, OSSL_PARAM_OCTET_STRING, NULL },
2349
2350 { SET, -1, -1, EVP_PKEY_OP_TYPE_SIG,
2351 EVP_PKEY_CTRL_MD, NULL, NULL,
2352 OSSL_SIGNATURE_PARAM_DIGEST, OSSL_PARAM_UTF8_STRING, fix_md },
2353 { GET, -1, -1, EVP_PKEY_OP_TYPE_SIG,
2354 EVP_PKEY_CTRL_GET_MD, NULL, NULL,
2355 OSSL_SIGNATURE_PARAM_DIGEST, OSSL_PARAM_UTF8_STRING, fix_md },
2356
2357 /*-
2358 * ECX
2359 * ===
2360 */
2361 { SET, EVP_PKEY_X25519, EVP_PKEY_X25519, EVP_PKEY_OP_KEYGEN, -1, NULL, NULL,
2362 OSSL_PKEY_PARAM_GROUP_NAME, OSSL_PARAM_UTF8_STRING, fix_group_ecx },
2363 { SET, EVP_PKEY_X25519, EVP_PKEY_X25519, EVP_PKEY_OP_PARAMGEN, -1, NULL, NULL,
2364 OSSL_PKEY_PARAM_GROUP_NAME, OSSL_PARAM_UTF8_STRING, fix_group_ecx },
2365 { SET, EVP_PKEY_X448, EVP_PKEY_X448, EVP_PKEY_OP_KEYGEN, -1, NULL, NULL,
2366 OSSL_PKEY_PARAM_GROUP_NAME, OSSL_PARAM_UTF8_STRING, fix_group_ecx },
2367 { SET, EVP_PKEY_X448, EVP_PKEY_X448, EVP_PKEY_OP_PARAMGEN, -1, NULL, NULL,
2368 OSSL_PKEY_PARAM_GROUP_NAME, OSSL_PARAM_UTF8_STRING, fix_group_ecx },
2369 };
2370
2371 static const struct translation_st evp_pkey_translations[] = {
2372 /*
2373 * The following contain no ctrls, they are exclusively here to extract
2374 * key payloads from legacy keys, using OSSL_PARAMs, and rely entirely
2375 * on |fixup_args| to pass the actual data. The |fixup_args| should
2376 * expect to get the EVP_PKEY pointer through |ctx->p2|.
2377 */
2378
2379 /* DH, DSA & EC */
2380 { GET, -1, -1, -1, 0, NULL, NULL,
2381 OSSL_PKEY_PARAM_GROUP_NAME, OSSL_PARAM_UTF8_STRING,
2382 get_payload_group_name },
2383 { GET, -1, -1, -1, 0, NULL, NULL,
2384 OSSL_PKEY_PARAM_PRIV_KEY, OSSL_PARAM_UNSIGNED_INTEGER,
2385 get_payload_private_key },
2386 { GET, -1, -1, -1, 0, NULL, NULL,
2387 OSSL_PKEY_PARAM_PUB_KEY,
2388 0 /* no data type, let get_payload_public_key() handle that */,
2389 get_payload_public_key },
2390
2391 /* DH and DSA */
2392 { GET, -1, -1, -1, 0, NULL, NULL,
2393 OSSL_PKEY_PARAM_FFC_P, OSSL_PARAM_UNSIGNED_INTEGER,
2394 get_dh_dsa_payload_p },
2395 { GET, -1, -1, -1, 0, NULL, NULL,
2396 OSSL_PKEY_PARAM_FFC_G, OSSL_PARAM_UNSIGNED_INTEGER,
2397 get_dh_dsa_payload_g },
2398 { GET, -1, -1, -1, 0, NULL, NULL,
2399 OSSL_PKEY_PARAM_FFC_Q, OSSL_PARAM_UNSIGNED_INTEGER,
2400 get_dh_dsa_payload_q },
2401
2402 /* RSA */
2403 { GET, -1, -1, -1, 0, NULL, NULL,
2404 OSSL_PKEY_PARAM_RSA_N, OSSL_PARAM_UNSIGNED_INTEGER,
2405 get_rsa_payload_n },
2406 { GET, -1, -1, -1, 0, NULL, NULL,
2407 OSSL_PKEY_PARAM_RSA_E, OSSL_PARAM_UNSIGNED_INTEGER,
2408 get_rsa_payload_e },
2409 { GET, -1, -1, -1, 0, NULL, NULL,
2410 OSSL_PKEY_PARAM_RSA_D, OSSL_PARAM_UNSIGNED_INTEGER,
2411 get_rsa_payload_d },
2412 { GET, -1, -1, -1, 0, NULL, NULL,
2413 OSSL_PKEY_PARAM_RSA_FACTOR1, OSSL_PARAM_UNSIGNED_INTEGER,
2414 get_rsa_payload_f1 },
2415 { GET, -1, -1, -1, 0, NULL, NULL,
2416 OSSL_PKEY_PARAM_RSA_FACTOR2, OSSL_PARAM_UNSIGNED_INTEGER,
2417 get_rsa_payload_f2 },
2418 { GET, -1, -1, -1, 0, NULL, NULL,
2419 OSSL_PKEY_PARAM_RSA_FACTOR3, OSSL_PARAM_UNSIGNED_INTEGER,
2420 get_rsa_payload_f3 },
2421 { GET, -1, -1, -1, 0, NULL, NULL,
2422 OSSL_PKEY_PARAM_RSA_FACTOR4, OSSL_PARAM_UNSIGNED_INTEGER,
2423 get_rsa_payload_f4 },
2424 { GET, -1, -1, -1, 0, NULL, NULL,
2425 OSSL_PKEY_PARAM_RSA_FACTOR5, OSSL_PARAM_UNSIGNED_INTEGER,
2426 get_rsa_payload_f5 },
2427 { GET, -1, -1, -1, 0, NULL, NULL,
2428 OSSL_PKEY_PARAM_RSA_FACTOR6, OSSL_PARAM_UNSIGNED_INTEGER,
2429 get_rsa_payload_f6 },
2430 { GET, -1, -1, -1, 0, NULL, NULL,
2431 OSSL_PKEY_PARAM_RSA_FACTOR7, OSSL_PARAM_UNSIGNED_INTEGER,
2432 get_rsa_payload_f7 },
2433 { GET, -1, -1, -1, 0, NULL, NULL,
2434 OSSL_PKEY_PARAM_RSA_FACTOR8, OSSL_PARAM_UNSIGNED_INTEGER,
2435 get_rsa_payload_f8 },
2436 { GET, -1, -1, -1, 0, NULL, NULL,
2437 OSSL_PKEY_PARAM_RSA_FACTOR9, OSSL_PARAM_UNSIGNED_INTEGER,
2438 get_rsa_payload_f9 },
2439 { GET, -1, -1, -1, 0, NULL, NULL,
2440 OSSL_PKEY_PARAM_RSA_FACTOR10, OSSL_PARAM_UNSIGNED_INTEGER,
2441 get_rsa_payload_f10 },
2442 { GET, -1, -1, -1, 0, NULL, NULL,
2443 OSSL_PKEY_PARAM_RSA_EXPONENT1, OSSL_PARAM_UNSIGNED_INTEGER,
2444 get_rsa_payload_e1 },
2445 { GET, -1, -1, -1, 0, NULL, NULL,
2446 OSSL_PKEY_PARAM_RSA_EXPONENT2, OSSL_PARAM_UNSIGNED_INTEGER,
2447 get_rsa_payload_e2 },
2448 { GET, -1, -1, -1, 0, NULL, NULL,
2449 OSSL_PKEY_PARAM_RSA_EXPONENT3, OSSL_PARAM_UNSIGNED_INTEGER,
2450 get_rsa_payload_e3 },
2451 { GET, -1, -1, -1, 0, NULL, NULL,
2452 OSSL_PKEY_PARAM_RSA_EXPONENT4, OSSL_PARAM_UNSIGNED_INTEGER,
2453 get_rsa_payload_e4 },
2454 { GET, -1, -1, -1, 0, NULL, NULL,
2455 OSSL_PKEY_PARAM_RSA_EXPONENT5, OSSL_PARAM_UNSIGNED_INTEGER,
2456 get_rsa_payload_e5 },
2457 { GET, -1, -1, -1, 0, NULL, NULL,
2458 OSSL_PKEY_PARAM_RSA_EXPONENT6, OSSL_PARAM_UNSIGNED_INTEGER,
2459 get_rsa_payload_e6 },
2460 { GET, -1, -1, -1, 0, NULL, NULL,
2461 OSSL_PKEY_PARAM_RSA_EXPONENT7, OSSL_PARAM_UNSIGNED_INTEGER,
2462 get_rsa_payload_e7 },
2463 { GET, -1, -1, -1, 0, NULL, NULL,
2464 OSSL_PKEY_PARAM_RSA_EXPONENT8, OSSL_PARAM_UNSIGNED_INTEGER,
2465 get_rsa_payload_e8 },
2466 { GET, -1, -1, -1, 0, NULL, NULL,
2467 OSSL_PKEY_PARAM_RSA_EXPONENT9, OSSL_PARAM_UNSIGNED_INTEGER,
2468 get_rsa_payload_e9 },
2469 { GET, -1, -1, -1, 0, NULL, NULL,
2470 OSSL_PKEY_PARAM_RSA_EXPONENT10, OSSL_PARAM_UNSIGNED_INTEGER,
2471 get_rsa_payload_e10 },
2472 { GET, -1, -1, -1, 0, NULL, NULL,
2473 OSSL_PKEY_PARAM_RSA_COEFFICIENT1, OSSL_PARAM_UNSIGNED_INTEGER,
2474 get_rsa_payload_c1 },
2475 { GET, -1, -1, -1, 0, NULL, NULL,
2476 OSSL_PKEY_PARAM_RSA_COEFFICIENT2, OSSL_PARAM_UNSIGNED_INTEGER,
2477 get_rsa_payload_c2 },
2478 { GET, -1, -1, -1, 0, NULL, NULL,
2479 OSSL_PKEY_PARAM_RSA_COEFFICIENT3, OSSL_PARAM_UNSIGNED_INTEGER,
2480 get_rsa_payload_c3 },
2481 { GET, -1, -1, -1, 0, NULL, NULL,
2482 OSSL_PKEY_PARAM_RSA_COEFFICIENT4, OSSL_PARAM_UNSIGNED_INTEGER,
2483 get_rsa_payload_c4 },
2484 { GET, -1, -1, -1, 0, NULL, NULL,
2485 OSSL_PKEY_PARAM_RSA_COEFFICIENT5, OSSL_PARAM_UNSIGNED_INTEGER,
2486 get_rsa_payload_c5 },
2487 { GET, -1, -1, -1, 0, NULL, NULL,
2488 OSSL_PKEY_PARAM_RSA_COEFFICIENT6, OSSL_PARAM_UNSIGNED_INTEGER,
2489 get_rsa_payload_c6 },
2490 { GET, -1, -1, -1, 0, NULL, NULL,
2491 OSSL_PKEY_PARAM_RSA_COEFFICIENT7, OSSL_PARAM_UNSIGNED_INTEGER,
2492 get_rsa_payload_c7 },
2493 { GET, -1, -1, -1, 0, NULL, NULL,
2494 OSSL_PKEY_PARAM_RSA_COEFFICIENT8, OSSL_PARAM_UNSIGNED_INTEGER,
2495 get_rsa_payload_c8 },
2496 { GET, -1, -1, -1, 0, NULL, NULL,
2497 OSSL_PKEY_PARAM_RSA_COEFFICIENT9, OSSL_PARAM_UNSIGNED_INTEGER,
2498 get_rsa_payload_c9 },
2499
2500 /* EC */
2501 { GET, -1, -1, -1, 0, NULL, NULL,
2502 OSSL_PKEY_PARAM_EC_DECODED_FROM_EXPLICIT_PARAMS, OSSL_PARAM_INTEGER,
2503 get_ec_decoded_from_explicit_params },
2504 };
2505
2506 static const struct translation_st *
lookup_translation(struct translation_st * tmpl,const struct translation_st * translations,size_t translations_num)2507 lookup_translation(struct translation_st *tmpl,
2508 const struct translation_st *translations,
2509 size_t translations_num)
2510 {
2511 size_t i;
2512
2513 for (i = 0; i < translations_num; i++) {
2514 const struct translation_st *item = &translations[i];
2515
2516 /*
2517 * Sanity check the translation table item.
2518 *
2519 * 1. Either both keytypes are -1, or neither of them are.
2520 * 2. TBA...
2521 */
2522 if (!ossl_assert((item->keytype1 == -1) == (item->keytype2 == -1)))
2523 continue;
2524
2525
2526 /*
2527 * Base search criteria: check that the optype and keytypes match,
2528 * if relevant. All callers must synthesise these bits somehow.
2529 */
2530 if (item->optype != -1 && (tmpl->optype & item->optype) == 0)
2531 continue;
2532 /*
2533 * This expression is stunningly simple thanks to the sanity check
2534 * above.
2535 */
2536 if (item->keytype1 != -1
2537 && tmpl->keytype1 != item->keytype1
2538 && tmpl->keytype2 != item->keytype2)
2539 continue;
2540
2541 /*
2542 * Done with the base search criteria, now we check the criteria for
2543 * the individual types of translations:
2544 * ctrl->params, ctrl_str->params, and params->ctrl
2545 */
2546 if (tmpl->ctrl_num != 0) {
2547 if (tmpl->ctrl_num != item->ctrl_num)
2548 continue;
2549 } else if (tmpl->ctrl_str != NULL) {
2550 const char *ctrl_str = NULL;
2551 const char *ctrl_hexstr = NULL;
2552
2553 /*
2554 * Search criteria that originates from a ctrl_str is only used
2555 * for setting, never for getting. Therefore, we only look at
2556 * the setter items.
2557 */
2558 if (item->action_type != NONE
2559 && item->action_type != SET)
2560 continue;
2561 /*
2562 * At least one of the ctrl cmd names must be match the ctrl
2563 * cmd name in the template.
2564 */
2565 if (item->ctrl_str != NULL
2566 && OPENSSL_strcasecmp(tmpl->ctrl_str, item->ctrl_str) == 0)
2567 ctrl_str = tmpl->ctrl_str;
2568 else if (item->ctrl_hexstr != NULL
2569 && OPENSSL_strcasecmp(tmpl->ctrl_hexstr,
2570 item->ctrl_hexstr) == 0)
2571 ctrl_hexstr = tmpl->ctrl_hexstr;
2572 else
2573 continue;
2574
2575 /* Modify the template to signal which string matched */
2576 tmpl->ctrl_str = ctrl_str;
2577 tmpl->ctrl_hexstr = ctrl_hexstr;
2578 } else if (tmpl->param_key != NULL) {
2579 /*
2580 * Search criteria that originates from a OSSL_PARAM setter or
2581 * getter.
2582 *
2583 * Ctrls were fundamentally bidirectional, with only the ctrl
2584 * command macro name implying direction (if you're lucky).
2585 * A few ctrl commands were even taking advantage of the
2586 * bidirectional nature, making the direction depend in the
2587 * value of the numeric argument.
2588 *
2589 * OSSL_PARAM functions are fundamentally different, in that
2590 * setters and getters are separated, so the data direction is
2591 * implied by the function that's used. The same OSSL_PARAM
2592 * key name can therefore be used in both directions. We must
2593 * therefore take the action type into account in this case.
2594 */
2595 if ((item->action_type != NONE
2596 && tmpl->action_type != item->action_type)
2597 || (item->param_key != NULL
2598 && OPENSSL_strcasecmp(tmpl->param_key,
2599 item->param_key) != 0))
2600 continue;
2601 } else {
2602 return NULL;
2603 }
2604
2605 return item;
2606 }
2607
2608 return NULL;
2609 }
2610
2611 static const struct translation_st *
lookup_evp_pkey_ctx_translation(struct translation_st * tmpl)2612 lookup_evp_pkey_ctx_translation(struct translation_st *tmpl)
2613 {
2614 return lookup_translation(tmpl, evp_pkey_ctx_translations,
2615 OSSL_NELEM(evp_pkey_ctx_translations));
2616 }
2617
2618 static const struct translation_st *
lookup_evp_pkey_translation(struct translation_st * tmpl)2619 lookup_evp_pkey_translation(struct translation_st *tmpl)
2620 {
2621 return lookup_translation(tmpl, evp_pkey_translations,
2622 OSSL_NELEM(evp_pkey_translations));
2623 }
2624
2625 /* This must ONLY be called for provider side operations */
evp_pkey_ctx_ctrl_to_param(EVP_PKEY_CTX * pctx,int keytype,int optype,int cmd,int p1,void * p2)2626 int evp_pkey_ctx_ctrl_to_param(EVP_PKEY_CTX *pctx,
2627 int keytype, int optype,
2628 int cmd, int p1, void *p2)
2629 {
2630 struct translation_ctx_st ctx = { 0, };
2631 struct translation_st tmpl = { 0, };
2632 const struct translation_st *translation = NULL;
2633 OSSL_PARAM params[2] = { OSSL_PARAM_END, OSSL_PARAM_END };
2634 int ret;
2635 fixup_args_fn *fixup = default_fixup_args;
2636
2637 if (keytype == -1)
2638 keytype = pctx->legacy_keytype;
2639 tmpl.ctrl_num = cmd;
2640 tmpl.keytype1 = tmpl.keytype2 = keytype;
2641 tmpl.optype = optype;
2642 translation = lookup_evp_pkey_ctx_translation(&tmpl);
2643
2644 if (translation == NULL) {
2645 ERR_raise(ERR_LIB_EVP, EVP_R_COMMAND_NOT_SUPPORTED);
2646 return -2;
2647 }
2648
2649 if (pctx->pmeth != NULL
2650 && pctx->pmeth->pkey_id != translation->keytype1
2651 && pctx->pmeth->pkey_id != translation->keytype2)
2652 return -1;
2653
2654 if (translation->fixup_args != NULL)
2655 fixup = translation->fixup_args;
2656 ctx.action_type = translation->action_type;
2657 ctx.ctrl_cmd = cmd;
2658 ctx.p1 = p1;
2659 ctx.p2 = p2;
2660 ctx.pctx = pctx;
2661 ctx.params = params;
2662
2663 ret = fixup(PRE_CTRL_TO_PARAMS, translation, &ctx);
2664
2665 if (ret > 0) {
2666 switch (ctx.action_type) {
2667 default:
2668 /* fixup_args is expected to make sure this is dead code */
2669 break;
2670 case GET:
2671 ret = evp_pkey_ctx_get_params_strict(pctx, ctx.params);
2672 break;
2673 case SET:
2674 ret = evp_pkey_ctx_set_params_strict(pctx, ctx.params);
2675 break;
2676 }
2677 }
2678
2679 /*
2680 * In POST, we pass the return value as p1, allowing the fixup_args
2681 * function to affect it by changing its value.
2682 */
2683 if (ret > 0) {
2684 ctx.p1 = ret;
2685 fixup(POST_CTRL_TO_PARAMS, translation, &ctx);
2686 ret = ctx.p1;
2687 }
2688
2689 cleanup_translation_ctx(POST_CTRL_TO_PARAMS, translation, &ctx);
2690
2691 return ret;
2692 }
2693
2694 /* This must ONLY be called for provider side operations */
evp_pkey_ctx_ctrl_str_to_param(EVP_PKEY_CTX * pctx,const char * name,const char * value)2695 int evp_pkey_ctx_ctrl_str_to_param(EVP_PKEY_CTX *pctx,
2696 const char *name, const char *value)
2697 {
2698 struct translation_ctx_st ctx = { 0, };
2699 struct translation_st tmpl = { 0, };
2700 const struct translation_st *translation = NULL;
2701 OSSL_PARAM params[2] = { OSSL_PARAM_END, OSSL_PARAM_END };
2702 int keytype = pctx->legacy_keytype;
2703 int optype = pctx->operation == 0 ? -1 : pctx->operation;
2704 int ret;
2705 fixup_args_fn *fixup = default_fixup_args;
2706
2707 tmpl.action_type = SET;
2708 tmpl.keytype1 = tmpl.keytype2 = keytype;
2709 tmpl.optype = optype;
2710 tmpl.ctrl_str = name;
2711 tmpl.ctrl_hexstr = name;
2712 translation = lookup_evp_pkey_ctx_translation(&tmpl);
2713
2714 if (translation != NULL) {
2715 if (translation->fixup_args != NULL)
2716 fixup = translation->fixup_args;
2717 ctx.action_type = translation->action_type;
2718 ctx.ishex = (tmpl.ctrl_hexstr != NULL);
2719 } else {
2720 /* String controls really only support setting */
2721 ctx.action_type = SET;
2722 }
2723 ctx.ctrl_str = name;
2724 ctx.p1 = (int)strlen(value);
2725 ctx.p2 = (char *)value;
2726 ctx.pctx = pctx;
2727 ctx.params = params;
2728
2729 ret = fixup(PRE_CTRL_STR_TO_PARAMS, translation, &ctx);
2730
2731 if (ret > 0) {
2732 switch (ctx.action_type) {
2733 default:
2734 /* fixup_args is expected to make sure this is dead code */
2735 break;
2736 case GET:
2737 /*
2738 * this is dead code, but must be present, or some compilers
2739 * will complain
2740 */
2741 break;
2742 case SET:
2743 ret = evp_pkey_ctx_set_params_strict(pctx, ctx.params);
2744 break;
2745 }
2746 }
2747
2748 if (ret > 0)
2749 ret = fixup(POST_CTRL_STR_TO_PARAMS, translation, &ctx);
2750
2751 cleanup_translation_ctx(CLEANUP_CTRL_STR_TO_PARAMS, translation, &ctx);
2752
2753 return ret;
2754 }
2755
2756 /* This must ONLY be called for legacy operations */
evp_pkey_ctx_setget_params_to_ctrl(EVP_PKEY_CTX * pctx,enum action action_type,OSSL_PARAM * params)2757 static int evp_pkey_ctx_setget_params_to_ctrl(EVP_PKEY_CTX *pctx,
2758 enum action action_type,
2759 OSSL_PARAM *params)
2760 {
2761 int keytype = pctx->legacy_keytype;
2762 int optype = pctx->operation == 0 ? -1 : pctx->operation;
2763
2764 for (; params != NULL && params->key != NULL; params++) {
2765 struct translation_ctx_st ctx = { 0, };
2766 struct translation_st tmpl = { 0, };
2767 const struct translation_st *translation = NULL;
2768 fixup_args_fn *fixup = default_fixup_args;
2769 int ret;
2770
2771 tmpl.action_type = action_type;
2772 tmpl.keytype1 = tmpl.keytype2 = keytype;
2773 tmpl.optype = optype;
2774 tmpl.param_key = params->key;
2775 translation = lookup_evp_pkey_ctx_translation(&tmpl);
2776
2777 if (translation != NULL) {
2778 if (translation->fixup_args != NULL)
2779 fixup = translation->fixup_args;
2780 ctx.action_type = translation->action_type;
2781 ctx.ctrl_cmd = translation->ctrl_num;
2782 }
2783 ctx.pctx = pctx;
2784 ctx.params = params;
2785
2786 ret = fixup(PRE_PARAMS_TO_CTRL, translation, &ctx);
2787
2788 if (ret > 0 && ctx.action_type != NONE)
2789 ret = EVP_PKEY_CTX_ctrl(pctx, keytype, optype,
2790 ctx.ctrl_cmd, ctx.p1, ctx.p2);
2791
2792 /*
2793 * In POST, we pass the return value as p1, allowing the fixup_args
2794 * function to put it to good use, or maybe affect it.
2795 */
2796 if (ret > 0) {
2797 ctx.p1 = ret;
2798 fixup(POST_PARAMS_TO_CTRL, translation, &ctx);
2799 ret = ctx.p1;
2800 }
2801
2802 cleanup_translation_ctx(CLEANUP_PARAMS_TO_CTRL, translation, &ctx);
2803
2804 if (ret <= 0)
2805 return 0;
2806 }
2807 return 1;
2808 }
2809
evp_pkey_ctx_set_params_to_ctrl(EVP_PKEY_CTX * ctx,const OSSL_PARAM * params)2810 int evp_pkey_ctx_set_params_to_ctrl(EVP_PKEY_CTX *ctx, const OSSL_PARAM *params)
2811 {
2812 return evp_pkey_ctx_setget_params_to_ctrl(ctx, SET, (OSSL_PARAM *)params);
2813 }
2814
evp_pkey_ctx_get_params_to_ctrl(EVP_PKEY_CTX * ctx,OSSL_PARAM * params)2815 int evp_pkey_ctx_get_params_to_ctrl(EVP_PKEY_CTX *ctx, OSSL_PARAM *params)
2816 {
2817 return evp_pkey_ctx_setget_params_to_ctrl(ctx, GET, params);
2818 }
2819
2820 /* This must ONLY be called for legacy EVP_PKEYs */
evp_pkey_setget_params_to_ctrl(const EVP_PKEY * pkey,enum action action_type,OSSL_PARAM * params)2821 static int evp_pkey_setget_params_to_ctrl(const EVP_PKEY *pkey,
2822 enum action action_type,
2823 OSSL_PARAM *params)
2824 {
2825 int ret = 1;
2826
2827 for (; params != NULL && params->key != NULL; params++) {
2828 struct translation_ctx_st ctx = { 0, };
2829 struct translation_st tmpl = { 0, };
2830 const struct translation_st *translation = NULL;
2831 fixup_args_fn *fixup = default_fixup_args;
2832
2833 tmpl.action_type = action_type;
2834 tmpl.param_key = params->key;
2835 translation = lookup_evp_pkey_translation(&tmpl);
2836
2837 if (translation != NULL) {
2838 if (translation->fixup_args != NULL)
2839 fixup = translation->fixup_args;
2840 ctx.action_type = translation->action_type;
2841 }
2842 ctx.p2 = (void *)pkey;
2843 ctx.params = params;
2844
2845 /*
2846 * EVP_PKEY doesn't have any ctrl function, so we rely completely
2847 * on fixup_args to do the whole work. Also, we currently only
2848 * support getting.
2849 */
2850 if (!ossl_assert(translation != NULL)
2851 || !ossl_assert(translation->action_type == GET)
2852 || !ossl_assert(translation->fixup_args != NULL)) {
2853 return -2;
2854 }
2855
2856 ret = fixup(PKEY, translation, &ctx);
2857
2858 cleanup_translation_ctx(PKEY, translation, &ctx);
2859 }
2860 return ret;
2861 }
2862
evp_pkey_get_params_to_ctrl(const EVP_PKEY * pkey,OSSL_PARAM * params)2863 int evp_pkey_get_params_to_ctrl(const EVP_PKEY *pkey, OSSL_PARAM *params)
2864 {
2865 return evp_pkey_setget_params_to_ctrl(pkey, GET, params);
2866 }
2867