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Manuel Pégourié-Gonnard39d2adb2012-10-31 09:26:55 +01001/*
Manuel Pégourié-Gonnard32b04c12013-12-02 15:49:09 +01002 * Elliptic curves over GF(p): generic functions
Manuel Pégourié-Gonnard39d2adb2012-10-31 09:26:55 +01003 *
Paul Bakker7dc4c442014-02-01 22:50:26 +01004 * Copyright (C) 2006-2014, Brainspark B.V.
Manuel Pégourié-Gonnard39d2adb2012-10-31 09:26:55 +01005 *
6 * This file is part of PolarSSL (http://www.polarssl.org)
7 * Lead Maintainer: Paul Bakker <polarssl_maintainer at polarssl.org>
8 *
9 * All rights reserved.
10 *
11 * This program is free software; you can redistribute it and/or modify
12 * it under the terms of the GNU General Public License as published by
13 * the Free Software Foundation; either version 2 of the License, or
14 * (at your option) any later version.
15 *
16 * This program is distributed in the hope that it will be useful,
17 * but WITHOUT ANY WARRANTY; without even the implied warranty of
18 * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
19 * GNU General Public License for more details.
20 *
21 * You should have received a copy of the GNU General Public License along
22 * with this program; if not, write to the Free Software Foundation, Inc.,
23 * 51 Franklin Street, Fifth Floor, Boston, MA 02110-1301 USA.
24 */
25
26/*
27 * References:
28 *
Manuel Pégourié-Gonnard883f3132012-11-02 09:40:25 +010029 * SEC1 http://www.secg.org/index.php?action=secg,docs_secg
Manuel Pégourié-Gonnardd070f512012-11-08 17:40:51 +010030 * GECC = Guide to Elliptic Curve Cryptography - Hankerson, Menezes, Vanstone
Manuel Pégourié-Gonnard62aad142012-11-10 00:27:12 +010031 * FIPS 186-3 http://csrc.nist.gov/publications/fips/fips186-3/fips_186-3.pdf
Manuel Pégourié-Gonnard1a967282013-02-09 17:03:58 +010032 * RFC 4492 for the related TLS structures and constants
Manuel Pégourié-Gonnard07de4b12013-09-02 16:26:04 +020033 *
Manuel Pégourié-Gonnardfe0af402013-12-04 18:14:55 +010034 * [M255] http://cr.yp.to/ecdh/curve25519-20060209.pdf
35 *
Manuel Pégourié-Gonnard07de4b12013-09-02 16:26:04 +020036 * [2] CORON, Jean-Sébastien. Resistance against differential power analysis
37 * for elliptic curve cryptosystems. In : Cryptographic Hardware and
38 * Embedded Systems. Springer Berlin Heidelberg, 1999. p. 292-302.
39 * <http://link.springer.com/chapter/10.1007/3-540-48059-5_25>
Manuel Pégourié-Gonnardd1c1ba92013-11-16 15:50:12 +010040 *
41 * [3] HEDABOU, Mustapha, PINEL, Pierre, et BÉNÉTEAU, Lucien. A comb method to
42 * render ECC resistant against Side Channel Attacks. IACR Cryptology
43 * ePrint Archive, 2004, vol. 2004, p. 342.
44 * <http://eprint.iacr.org/2004/342.pdf>
Manuel Pégourié-Gonnard39d2adb2012-10-31 09:26:55 +010045 */
46
47#include "polarssl/config.h"
48
49#if defined(POLARSSL_ECP_C)
50
51#include "polarssl/ecp.h"
Paul Bakker6e339b52013-07-03 13:37:05 +020052
Paul Bakker7dc4c442014-02-01 22:50:26 +010053#if defined(POLARSSL_PLATFORM_C)
54#include "polarssl/platform.h"
Paul Bakker6e339b52013-07-03 13:37:05 +020055#else
Paul Bakker7dc4c442014-02-01 22:50:26 +010056#define polarssl_printf printf
Paul Bakker6e339b52013-07-03 13:37:05 +020057#define polarssl_malloc malloc
58#define polarssl_free free
59#endif
60
Manuel Pégourié-Gonnardcdd44322012-11-21 16:00:55 +010061#include <stdlib.h>
Manuel Pégourié-Gonnard39d2adb2012-10-31 09:26:55 +010062
Manuel Pégourié-Gonnard0267e3d2013-11-30 15:10:14 +010063#if defined(_MSC_VER) && !defined strcasecmp && !defined(EFIX64) && \
64 !defined(EFI32)
65#define strcasecmp _stricmp
66#endif
67
Paul Bakker6a6087e2013-10-28 18:53:08 +010068#if defined(_MSC_VER) && !defined(inline)
69#define inline _inline
70#else
71#if defined(__ARMCC_VERSION) && !defined(inline)
72#define inline __inline
73#endif /* __ARMCC_VERSION */
74#endif /*_MSC_VER */
75
Manuel Pégourié-Gonnardb4a310b2012-11-13 20:57:00 +010076#if defined(POLARSSL_SELF_TEST)
77/*
Manuel Pégourié-Gonnard91814812013-11-21 20:23:55 +010078 * Counts of point addition and doubling, and field multiplications.
Manuel Pégourié-Gonnard07de4b12013-09-02 16:26:04 +020079 * Used to test resistance of point multiplication to simple timing attacks.
Manuel Pégourié-Gonnardb4a310b2012-11-13 20:57:00 +010080 */
Manuel Pégourié-Gonnard43863ee2013-12-01 16:51:27 +010081static unsigned long add_count, dbl_count, mul_count;
Manuel Pégourié-Gonnardb4a310b2012-11-13 20:57:00 +010082#endif
83
Manuel Pégourié-Gonnard7c94d8b2013-12-04 23:15:46 +010084#if defined(POLARSSL_ECP_DP_SECP192R1_ENABLED) || \
85 defined(POLARSSL_ECP_DP_SECP224R1_ENABLED) || \
86 defined(POLARSSL_ECP_DP_SECP256R1_ENABLED) || \
87 defined(POLARSSL_ECP_DP_SECP384R1_ENABLED) || \
88 defined(POLARSSL_ECP_DP_SECP521R1_ENABLED) || \
89 defined(POLARSSL_ECP_DP_BP256R1_ENABLED) || \
90 defined(POLARSSL_ECP_DP_BP384R1_ENABLED) || \
91 defined(POLARSSL_ECP_DP_BP512R1_ENABLED)
92#define POLARSSL_ECP_SHORT_WEIERSTRASS
93#endif
94
95#if defined(POLARSSL_ECP_DP_M221_ENABLED) || \
96 defined(POLARSSL_ECP_DP_M255_ENABLED) || \
97 defined(POLARSSL_ECP_DP_M383_ENABLED) || \
98 defined(POLARSSL_ECP_DP_M511_ENABLED)
99#define POLARSSL_ECP_MONTGOMERY
100#endif
101
102/*
103 * Curve types: internal for now, might be exposed later
104 */
105typedef enum
106{
107 POLARSSL_ECP_TYPE_NONE = 0,
108 POLARSSL_ECP_TYPE_SHORT_WEIERSTRASS, /* y^2 = x^3 + a x + b */
109 POLARSSL_ECP_TYPE_MONTGOMERY, /* y^2 = x^3 + a x^2 + x */
110} ecp_curve_type;
111
Manuel Pégourié-Gonnard1e8c8ec2012-10-31 19:24:21 +0100112/*
Manuel Pégourié-Gonnard568c9cf2013-09-16 17:30:04 +0200113 * List of supported curves:
114 * - internal ID
Manuel Pégourié-Gonnard8195c1a2013-10-07 19:40:41 +0200115 * - TLS NamedCurve ID (RFC 4492 sec. 5.1.1, RFC 7071 sec. 2)
Manuel Pégourié-Gonnard568c9cf2013-09-16 17:30:04 +0200116 * - size in bits
Manuel Pégourié-Gonnard8195c1a2013-10-07 19:40:41 +0200117 * - readable name
Gergely Budaie40c4692014-01-22 11:22:20 +0100118 *
Manuel Pégourié-Gonnardac719412014-02-04 14:48:50 +0100119 * Curves are listed in order: largest curves first, and for a given size,
120 * fastest curves first. This provides the default order for the SSL module.
Manuel Pégourié-Gonnard568c9cf2013-09-16 17:30:04 +0200121 */
Manuel Pégourié-Gonnardac719412014-02-04 14:48:50 +0100122static const ecp_curve_info ecp_supported_curves[POLARSSL_ECP_DP_MAX] =
Manuel Pégourié-Gonnard568c9cf2013-09-16 17:30:04 +0200123{
124#if defined(POLARSSL_ECP_DP_SECP521R1_ENABLED)
Manuel Pégourié-Gonnard8195c1a2013-10-07 19:40:41 +0200125 { POLARSSL_ECP_DP_SECP521R1, 25, 521, "secp521r1" },
Manuel Pégourié-Gonnard568c9cf2013-09-16 17:30:04 +0200126#endif
Gergely Budaie40c4692014-01-22 11:22:20 +0100127#if defined(POLARSSL_ECP_DP_BP512R1_ENABLED)
128 { POLARSSL_ECP_DP_BP512R1, 28, 512, "brainpoolP512r1" },
129#endif
Manuel Pégourié-Gonnard568c9cf2013-09-16 17:30:04 +0200130#if defined(POLARSSL_ECP_DP_SECP384R1_ENABLED)
Manuel Pégourié-Gonnard8195c1a2013-10-07 19:40:41 +0200131 { POLARSSL_ECP_DP_SECP384R1, 24, 384, "secp384r1" },
Manuel Pégourié-Gonnard568c9cf2013-09-16 17:30:04 +0200132#endif
Gergely Budaie40c4692014-01-22 11:22:20 +0100133#if defined(POLARSSL_ECP_DP_BP384R1_ENABLED)
134 { POLARSSL_ECP_DP_BP384R1, 27, 384, "brainpoolP384r1" },
135#endif
Manuel Pégourié-Gonnard568c9cf2013-09-16 17:30:04 +0200136#if defined(POLARSSL_ECP_DP_SECP256R1_ENABLED)
Manuel Pégourié-Gonnard8195c1a2013-10-07 19:40:41 +0200137 { POLARSSL_ECP_DP_SECP256R1, 23, 256, "secp256r1" },
Manuel Pégourié-Gonnard568c9cf2013-09-16 17:30:04 +0200138#endif
Manuel Pégourié-Gonnardac719412014-02-04 14:48:50 +0100139#if defined(POLARSSL_ECP_DP_SECP256K1_ENABLED)
140 { POLARSSL_ECP_DP_SECP256K1, 22, 256, "secp256k1" },
141#endif
Gergely Budaie40c4692014-01-22 11:22:20 +0100142#if defined(POLARSSL_ECP_DP_BP256R1_ENABLED)
143 { POLARSSL_ECP_DP_BP256R1, 26, 256, "brainpoolP256r1" },
144#endif
Manuel Pégourié-Gonnard568c9cf2013-09-16 17:30:04 +0200145#if defined(POLARSSL_ECP_DP_SECP224R1_ENABLED)
Manuel Pégourié-Gonnard8195c1a2013-10-07 19:40:41 +0200146 { POLARSSL_ECP_DP_SECP224R1, 21, 224, "secp224r1" },
Manuel Pégourié-Gonnard568c9cf2013-09-16 17:30:04 +0200147#endif
Manuel Pégourié-Gonnard9bcff392014-01-10 18:26:48 +0100148#if defined(POLARSSL_ECP_DP_SECP224K1_ENABLED)
149 { POLARSSL_ECP_DP_SECP224K1, 20, 224, "secp224k1" },
150#endif
Manuel Pégourié-Gonnardac719412014-02-04 14:48:50 +0100151#if defined(POLARSSL_ECP_DP_SECP192R1_ENABLED)
152 { POLARSSL_ECP_DP_SECP192R1, 19, 192, "secp192r1" },
153#endif
Manuel Pégourié-Gonnard9bcff392014-01-10 18:26:48 +0100154#if defined(POLARSSL_ECP_DP_SECP192K1_ENABLED)
155 { POLARSSL_ECP_DP_SECP192K1, 18, 192, "secp192k1" },
156#endif
Manuel Pégourié-Gonnard8195c1a2013-10-07 19:40:41 +0200157 { POLARSSL_ECP_DP_NONE, 0, 0, NULL },
Manuel Pégourié-Gonnard568c9cf2013-09-16 17:30:04 +0200158};
Manuel Pégourié-Gonnardac719412014-02-04 14:48:50 +0100159
160static ecp_group_id ecp_supported_grp_id[POLARSSL_ECP_DP_MAX];
Manuel Pégourié-Gonnard568c9cf2013-09-16 17:30:04 +0200161
162/*
Manuel Pégourié-Gonnardda179e42013-09-18 15:31:24 +0200163 * List of supported curves and associated info
164 */
165const ecp_curve_info *ecp_curve_list( void )
166{
167 return ecp_supported_curves;
168}
169
170/*
Manuel Pégourié-Gonnardac719412014-02-04 14:48:50 +0100171 * List of supported curves, group ID only
172 */
173const ecp_group_id *ecp_grp_id_list( void )
174{
175 static int init_done = 0;
176
177 if( ! init_done )
178 {
179 size_t i = 0;
180 const ecp_curve_info *curve_info;
181
182 for( curve_info = ecp_curve_list();
183 curve_info->grp_id != POLARSSL_ECP_DP_NONE;
184 curve_info++ )
185 {
186 ecp_supported_grp_id[i++] = curve_info->grp_id;
187 }
188 ecp_supported_grp_id[i] = POLARSSL_ECP_DP_NONE;
189
190 init_done = 1;
191 }
192
193 return ecp_supported_grp_id;
194}
195
196/*
197 * Get the curve info for the internal identifier
Manuel Pégourié-Gonnardcae6f3e2013-10-23 20:19:57 +0200198 */
199const ecp_curve_info *ecp_curve_info_from_grp_id( ecp_group_id grp_id )
200{
201 const ecp_curve_info *curve_info;
202
203 for( curve_info = ecp_curve_list();
204 curve_info->grp_id != POLARSSL_ECP_DP_NONE;
205 curve_info++ )
206 {
207 if( curve_info->grp_id == grp_id )
208 return( curve_info );
209 }
210
211 return( NULL );
212}
213
214/*
215 * Get the curve info from the TLS identifier
216 */
217const ecp_curve_info *ecp_curve_info_from_tls_id( uint16_t tls_id )
218{
219 const ecp_curve_info *curve_info;
220
221 for( curve_info = ecp_curve_list();
222 curve_info->grp_id != POLARSSL_ECP_DP_NONE;
223 curve_info++ )
224 {
225 if( curve_info->tls_id == tls_id )
226 return( curve_info );
227 }
228
229 return( NULL );
230}
231
232/*
Manuel Pégourié-Gonnard0267e3d2013-11-30 15:10:14 +0100233 * Get the curve info from the name
234 */
235const ecp_curve_info *ecp_curve_info_from_name( const char *name )
236{
237 const ecp_curve_info *curve_info;
238
239 for( curve_info = ecp_curve_list();
240 curve_info->grp_id != POLARSSL_ECP_DP_NONE;
241 curve_info++ )
242 {
243 if( strcasecmp( curve_info->name, name ) == 0 )
244 return( curve_info );
245 }
246
247 return( NULL );
248}
249
250/*
Manuel Pégourié-Gonnard7c94d8b2013-12-04 23:15:46 +0100251 * Get the type of a curve
Manuel Pégourié-Gonnard312d2e82013-12-04 11:08:01 +0100252 */
Manuel Pégourié-Gonnard7c94d8b2013-12-04 23:15:46 +0100253static inline ecp_curve_type ecp_get_type( const ecp_group *grp )
Manuel Pégourié-Gonnard312d2e82013-12-04 11:08:01 +0100254{
Manuel Pégourié-Gonnard7c94d8b2013-12-04 23:15:46 +0100255 if( grp->G.X.p == NULL )
256 return( POLARSSL_ECP_TYPE_NONE );
257
258 if( grp->G.Y.p == NULL )
259 return( POLARSSL_ECP_TYPE_MONTGOMERY );
260 else
261 return( POLARSSL_ECP_TYPE_SHORT_WEIERSTRASS );
Manuel Pégourié-Gonnard312d2e82013-12-04 11:08:01 +0100262}
263
264/*
Manuel Pégourié-Gonnardb505c272012-11-05 17:27:54 +0100265 * Initialize (the components of) a point
Manuel Pégourié-Gonnardae180d02012-11-02 18:14:40 +0100266 */
267void ecp_point_init( ecp_point *pt )
268{
269 if( pt == NULL )
270 return;
271
Manuel Pégourié-Gonnardb505c272012-11-05 17:27:54 +0100272 mpi_init( &pt->X );
273 mpi_init( &pt->Y );
Manuel Pégourié-Gonnard1c2782c2012-11-19 20:16:28 +0100274 mpi_init( &pt->Z );
Manuel Pégourié-Gonnardb505c272012-11-05 17:27:54 +0100275}
276
277/*
278 * Initialize (the components of) a group
279 */
280void ecp_group_init( ecp_group *grp )
281{
282 if( grp == NULL )
283 return;
284
Manuel Pégourié-Gonnardc9727702013-09-16 18:56:28 +0200285 memset( grp, 0, sizeof( ecp_group ) );
Manuel Pégourié-Gonnardae180d02012-11-02 18:14:40 +0100286}
287
288/*
Manuel Pégourié-Gonnardb8c6e0e2013-07-01 13:40:52 +0200289 * Initialize (the components of) a key pair
290 */
291void ecp_keypair_init( ecp_keypair *key )
292{
293 if ( key == NULL )
294 return;
295
296 ecp_group_init( &key->grp );
297 mpi_init( &key->d );
298 ecp_point_init( &key->Q );
Manuel Pégourié-Gonnardb8c6e0e2013-07-01 13:40:52 +0200299}
300
301/*
Manuel Pégourié-Gonnard1e8c8ec2012-10-31 19:24:21 +0100302 * Unallocate (the components of) a point
303 */
304void ecp_point_free( ecp_point *pt )
305{
306 if( pt == NULL )
307 return;
308
309 mpi_free( &( pt->X ) );
310 mpi_free( &( pt->Y ) );
Manuel Pégourié-Gonnard1c2782c2012-11-19 20:16:28 +0100311 mpi_free( &( pt->Z ) );
Manuel Pégourié-Gonnard1e8c8ec2012-10-31 19:24:21 +0100312}
313
314/*
315 * Unallocate (the components of) a group
316 */
317void ecp_group_free( ecp_group *grp )
318{
Manuel Pégourié-Gonnard161ef962013-09-17 19:13:10 +0200319 size_t i;
320
Manuel Pégourié-Gonnard1e8c8ec2012-10-31 19:24:21 +0100321 if( grp == NULL )
322 return;
323
Manuel Pégourié-Gonnard1f82b042013-12-06 12:51:50 +0100324 if( grp->h != 1 )
325 {
326 mpi_free( &grp->P );
327 mpi_free( &grp->A );
328 mpi_free( &grp->B );
329 ecp_point_free( &grp->G );
330 mpi_free( &grp->N );
331 }
Manuel Pégourié-Gonnardc9727702013-09-16 18:56:28 +0200332
Manuel Pégourié-Gonnard161ef962013-09-17 19:13:10 +0200333 if( grp->T != NULL )
334 {
335 for( i = 0; i < grp->T_size; i++ )
336 ecp_point_free( &grp->T[i] );
337 polarssl_free( grp->T );
338 }
339
Manuel Pégourié-Gonnardc9727702013-09-16 18:56:28 +0200340 memset( grp, 0, sizeof( ecp_group ) );
Manuel Pégourié-Gonnard1e8c8ec2012-10-31 19:24:21 +0100341}
Manuel Pégourié-Gonnard39d2adb2012-10-31 09:26:55 +0100342
Manuel Pégourié-Gonnard883f3132012-11-02 09:40:25 +0100343/*
Manuel Pégourié-Gonnardb8c6e0e2013-07-01 13:40:52 +0200344 * Unallocate (the components of) a key pair
345 */
346void ecp_keypair_free( ecp_keypair *key )
347{
348 if ( key == NULL )
349 return;
350
351 ecp_group_free( &key->grp );
352 mpi_free( &key->d );
353 ecp_point_free( &key->Q );
Manuel Pégourié-Gonnardb8c6e0e2013-07-01 13:40:52 +0200354}
355
356/*
Manuel Pégourié-Gonnardcae6f3e2013-10-23 20:19:57 +0200357 * Copy the contents of a point
358 */
359int ecp_copy( ecp_point *P, const ecp_point *Q )
360{
361 int ret;
362
363 MPI_CHK( mpi_copy( &P->X, &Q->X ) );
364 MPI_CHK( mpi_copy( &P->Y, &Q->Y ) );
365 MPI_CHK( mpi_copy( &P->Z, &Q->Z ) );
366
367cleanup:
368 return( ret );
369}
370
371/*
372 * Copy the contents of a group object
373 */
374int ecp_group_copy( ecp_group *dst, const ecp_group *src )
375{
376 return ecp_use_known_dp( dst, src->id );
377}
378
379/*
Manuel Pégourié-Gonnardae180d02012-11-02 18:14:40 +0100380 * Set point to zero
381 */
Manuel Pégourié-Gonnard1c2782c2012-11-19 20:16:28 +0100382int ecp_set_zero( ecp_point *pt )
Manuel Pégourié-Gonnardae180d02012-11-02 18:14:40 +0100383{
Manuel Pégourié-Gonnard1c2782c2012-11-19 20:16:28 +0100384 int ret;
385
386 MPI_CHK( mpi_lset( &pt->X , 1 ) );
387 MPI_CHK( mpi_lset( &pt->Y , 1 ) );
388 MPI_CHK( mpi_lset( &pt->Z , 0 ) );
389
390cleanup:
391 return( ret );
Manuel Pégourié-Gonnardae180d02012-11-02 18:14:40 +0100392}
393
394/*
Manuel Pégourié-Gonnard6545ca72013-01-26 16:05:22 +0100395 * Tell if a point is zero
396 */
397int ecp_is_zero( ecp_point *pt )
398{
399 return( mpi_cmp_int( &pt->Z, 0 ) == 0 );
400}
401
402/*
Manuel Pégourié-Gonnard847395a2012-11-05 13:13:44 +0100403 * Import a non-zero point from ASCII strings
404 */
405int ecp_point_read_string( ecp_point *P, int radix,
406 const char *x, const char *y )
407{
Manuel Pégourié-Gonnard47123252012-11-10 14:44:24 +0100408 int ret;
Manuel Pégourié-Gonnard847395a2012-11-05 13:13:44 +0100409
Manuel Pégourié-Gonnard847395a2012-11-05 13:13:44 +0100410 MPI_CHK( mpi_read_string( &P->X, radix, x ) );
411 MPI_CHK( mpi_read_string( &P->Y, radix, y ) );
Manuel Pégourié-Gonnard1c2782c2012-11-19 20:16:28 +0100412 MPI_CHK( mpi_lset( &P->Z, 1 ) );
Manuel Pégourié-Gonnard847395a2012-11-05 13:13:44 +0100413
414cleanup:
415 return( ret );
416}
417
418/*
Manuel Pégourié-Gonnard37d218a2012-11-24 15:19:55 +0100419 * Export a point into unsigned binary data (SEC1 2.3.3)
Manuel Pégourié-Gonnarde19feb52012-11-24 14:10:14 +0100420 */
Manuel Pégourié-Gonnard7e860252013-02-10 10:58:48 +0100421int ecp_point_write_binary( const ecp_group *grp, const ecp_point *P,
Manuel Pégourié-Gonnard420f1eb2013-02-10 12:22:46 +0100422 int format, size_t *olen,
Manuel Pégourié-Gonnard7e860252013-02-10 10:58:48 +0100423 unsigned char *buf, size_t buflen )
Manuel Pégourié-Gonnarde19feb52012-11-24 14:10:14 +0100424{
Paul Bakkera280d0f2013-04-08 13:40:17 +0200425 int ret = 0;
Manuel Pégourié-Gonnarde19feb52012-11-24 14:10:14 +0100426 size_t plen;
427
Manuel Pégourié-Gonnard37d218a2012-11-24 15:19:55 +0100428 if( format != POLARSSL_ECP_PF_UNCOMPRESSED &&
429 format != POLARSSL_ECP_PF_COMPRESSED )
Manuel Pégourié-Gonnard00794052013-02-09 19:00:07 +0100430 return( POLARSSL_ERR_ECP_BAD_INPUT_DATA );
Manuel Pégourié-Gonnard37d218a2012-11-24 15:19:55 +0100431
Manuel Pégourié-Gonnarde19feb52012-11-24 14:10:14 +0100432 /*
Manuel Pégourié-Gonnard37d218a2012-11-24 15:19:55 +0100433 * Common case: P == 0
Manuel Pégourié-Gonnarde19feb52012-11-24 14:10:14 +0100434 */
435 if( mpi_cmp_int( &P->Z, 0 ) == 0 )
436 {
437 if( buflen < 1 )
Manuel Pégourié-Gonnard00794052013-02-09 19:00:07 +0100438 return( POLARSSL_ERR_ECP_BUFFER_TOO_SMALL );
Manuel Pégourié-Gonnarde19feb52012-11-24 14:10:14 +0100439
440 buf[0] = 0x00;
441 *olen = 1;
442
443 return( 0 );
444 }
445
446 plen = mpi_size( &grp->P );
Manuel Pégourié-Gonnarde19feb52012-11-24 14:10:14 +0100447
Manuel Pégourié-Gonnard37d218a2012-11-24 15:19:55 +0100448 if( format == POLARSSL_ECP_PF_UNCOMPRESSED )
449 {
450 *olen = 2 * plen + 1;
Manuel Pégourié-Gonnarde19feb52012-11-24 14:10:14 +0100451
Manuel Pégourié-Gonnard37d218a2012-11-24 15:19:55 +0100452 if( buflen < *olen )
Manuel Pégourié-Gonnard00794052013-02-09 19:00:07 +0100453 return( POLARSSL_ERR_ECP_BUFFER_TOO_SMALL );
Manuel Pégourié-Gonnard37d218a2012-11-24 15:19:55 +0100454
455 buf[0] = 0x04;
456 MPI_CHK( mpi_write_binary( &P->X, buf + 1, plen ) );
457 MPI_CHK( mpi_write_binary( &P->Y, buf + 1 + plen, plen ) );
458 }
459 else if( format == POLARSSL_ECP_PF_COMPRESSED )
460 {
461 *olen = plen + 1;
462
463 if( buflen < *olen )
Manuel Pégourié-Gonnard00794052013-02-09 19:00:07 +0100464 return( POLARSSL_ERR_ECP_BUFFER_TOO_SMALL );
Manuel Pégourié-Gonnard37d218a2012-11-24 15:19:55 +0100465
466 buf[0] = 0x02 + mpi_get_bit( &P->Y, 0 );
467 MPI_CHK( mpi_write_binary( &P->X, buf + 1, plen ) );
468 }
Manuel Pégourié-Gonnarde19feb52012-11-24 14:10:14 +0100469
470cleanup:
471 return( ret );
472}
473
474/*
Manuel Pégourié-Gonnard5e402d82012-11-24 16:19:42 +0100475 * Import a point from unsigned binary data (SEC1 2.3.4)
476 */
Manuel Pégourié-Gonnard7e860252013-02-10 10:58:48 +0100477int ecp_point_read_binary( const ecp_group *grp, ecp_point *pt,
478 const unsigned char *buf, size_t ilen ) {
Manuel Pégourié-Gonnard5e402d82012-11-24 16:19:42 +0100479 int ret;
480 size_t plen;
481
Manuel Pégourié-Gonnard5e402d82012-11-24 16:19:42 +0100482 if( ilen == 1 && buf[0] == 0x00 )
Manuel Pégourié-Gonnardd84895d2013-02-10 10:53:04 +0100483 return( ecp_set_zero( pt ) );
Manuel Pégourié-Gonnard5e402d82012-11-24 16:19:42 +0100484
Manuel Pégourié-Gonnardd84895d2013-02-10 10:53:04 +0100485 plen = mpi_size( &grp->P );
Manuel Pégourié-Gonnard5e402d82012-11-24 16:19:42 +0100486
487 if( ilen != 2 * plen + 1 || buf[0] != 0x04 )
Manuel Pégourié-Gonnardd84895d2013-02-10 10:53:04 +0100488 return( POLARSSL_ERR_ECP_BAD_INPUT_DATA );
Manuel Pégourié-Gonnard5e402d82012-11-24 16:19:42 +0100489
Manuel Pégourié-Gonnardd84895d2013-02-10 10:53:04 +0100490 MPI_CHK( mpi_read_binary( &pt->X, buf + 1, plen ) );
491 MPI_CHK( mpi_read_binary( &pt->Y, buf + 1 + plen, plen ) );
492 MPI_CHK( mpi_lset( &pt->Z, 1 ) );
Manuel Pégourié-Gonnard5e402d82012-11-24 16:19:42 +0100493
494cleanup:
495 return( ret );
496}
497
498/*
Manuel Pégourié-Gonnard00794052013-02-09 19:00:07 +0100499 * Import a point from a TLS ECPoint record (RFC 4492)
500 * struct {
501 * opaque point <1..2^8-1>;
502 * } ECPoint;
503 */
504int ecp_tls_read_point( const ecp_group *grp, ecp_point *pt,
Manuel Pégourié-Gonnard98f51812013-02-10 13:38:29 +0100505 const unsigned char **buf, size_t buf_len )
Manuel Pégourié-Gonnard00794052013-02-09 19:00:07 +0100506{
507 unsigned char data_len;
Manuel Pégourié-Gonnard98f51812013-02-10 13:38:29 +0100508 const unsigned char *buf_start;
Manuel Pégourié-Gonnard00794052013-02-09 19:00:07 +0100509
510 /*
511 * We must have at least two bytes (1 for length, at least of for data)
512 */
513 if( buf_len < 2 )
514 return( POLARSSL_ERR_ECP_BAD_INPUT_DATA );
515
Manuel Pégourié-Gonnard98f51812013-02-10 13:38:29 +0100516 data_len = *(*buf)++;
Manuel Pégourié-Gonnard00794052013-02-09 19:00:07 +0100517 if( data_len < 1 || data_len > buf_len - 1 )
518 return( POLARSSL_ERR_ECP_BAD_INPUT_DATA );
519
Manuel Pégourié-Gonnard98f51812013-02-10 13:38:29 +0100520 /*
521 * Save buffer start for read_binary and update buf
522 */
523 buf_start = *buf;
524 *buf += data_len;
525
526 return ecp_point_read_binary( grp, pt, buf_start, data_len );
Manuel Pégourié-Gonnard00794052013-02-09 19:00:07 +0100527}
528
529/*
530 * Export a point as a TLS ECPoint record (RFC 4492)
531 * struct {
532 * opaque point <1..2^8-1>;
533 * } ECPoint;
534 */
535int ecp_tls_write_point( const ecp_group *grp, const ecp_point *pt,
Manuel Pégourié-Gonnard420f1eb2013-02-10 12:22:46 +0100536 int format, size_t *olen,
537 unsigned char *buf, size_t blen )
Manuel Pégourié-Gonnard00794052013-02-09 19:00:07 +0100538{
Manuel Pégourié-Gonnard420f1eb2013-02-10 12:22:46 +0100539 int ret;
540
Manuel Pégourié-Gonnard00794052013-02-09 19:00:07 +0100541 /*
Manuel Pégourié-Gonnard420f1eb2013-02-10 12:22:46 +0100542 * buffer length must be at least one, for our length byte
Manuel Pégourié-Gonnard00794052013-02-09 19:00:07 +0100543 */
Manuel Pégourié-Gonnard420f1eb2013-02-10 12:22:46 +0100544 if( blen < 1 )
Manuel Pégourié-Gonnard00794052013-02-09 19:00:07 +0100545 return( POLARSSL_ERR_ECP_BAD_INPUT_DATA );
546
Manuel Pégourié-Gonnard420f1eb2013-02-10 12:22:46 +0100547 if( ( ret = ecp_point_write_binary( grp, pt, format,
548 olen, buf + 1, blen - 1) ) != 0 )
549 return( ret );
550
551 /*
552 * write length to the first byte and update total length
553 */
Paul Bakkerb9cfaa02013-10-11 18:58:55 +0200554 buf[0] = (unsigned char) *olen;
Manuel Pégourié-Gonnard420f1eb2013-02-10 12:22:46 +0100555 ++*olen;
556
557 return 0;
Manuel Pégourié-Gonnard00794052013-02-09 19:00:07 +0100558}
559
560/*
Manuel Pégourié-Gonnardcae6f3e2013-10-23 20:19:57 +0200561 * Import an ECP group from ASCII strings, case A == -3
Manuel Pégourié-Gonnard210b4582013-10-23 14:03:00 +0200562 */
Manuel Pégourié-Gonnardcae6f3e2013-10-23 20:19:57 +0200563int ecp_group_read_string( ecp_group *grp, int radix,
564 const char *p, const char *b,
565 const char *gx, const char *gy, const char *n)
Manuel Pégourié-Gonnard84338242012-11-11 20:45:18 +0100566{
567 int ret;
Manuel Pégourié-Gonnard84338242012-11-11 20:45:18 +0100568
Manuel Pégourié-Gonnardd5e0fbe2013-12-02 17:20:39 +0100569 MPI_CHK( mpi_read_string( &grp->P, radix, p ) );
Manuel Pégourié-Gonnardd5e0fbe2013-12-02 17:20:39 +0100570 MPI_CHK( mpi_read_string( &grp->B, radix, b ) );
571 MPI_CHK( ecp_point_read_string( &grp->G, radix, gx, gy ) );
572 MPI_CHK( mpi_read_string( &grp->N, radix, n ) );
573
574 grp->pbits = mpi_msb( &grp->P );
575 grp->nbits = mpi_msb( &grp->N );
Manuel Pégourié-Gonnard84338242012-11-11 20:45:18 +0100576
577cleanup:
Manuel Pégourié-Gonnardcae6f3e2013-10-23 20:19:57 +0200578 if( ret != 0 )
579 ecp_group_free( grp );
Manuel Pégourié-Gonnarde783f062013-10-21 14:52:21 +0200580
581 return( ret );
582}
Manuel Pégourié-Gonnardc04c5302013-10-23 16:11:52 +0200583
Manuel Pégourié-Gonnard62aad142012-11-10 00:27:12 +0100584/*
Manuel Pégourié-Gonnard1a967282013-02-09 17:03:58 +0100585 * Set a group from an ECParameters record (RFC 4492)
586 */
Manuel Pégourié-Gonnard7c145c62013-02-10 13:20:52 +0100587int ecp_tls_read_group( ecp_group *grp, const unsigned char **buf, size_t len )
Manuel Pégourié-Gonnard1a967282013-02-09 17:03:58 +0100588{
Manuel Pégourié-Gonnardf24b4a72013-09-23 18:14:50 +0200589 uint16_t tls_id;
590 const ecp_curve_info *curve_info;
Manuel Pégourié-Gonnard1a967282013-02-09 17:03:58 +0100591
592 /*
593 * We expect at least three bytes (see below)
594 */
595 if( len < 3 )
596 return( POLARSSL_ERR_ECP_BAD_INPUT_DATA );
597
598 /*
599 * First byte is curve_type; only named_curve is handled
600 */
Manuel Pégourié-Gonnard7c145c62013-02-10 13:20:52 +0100601 if( *(*buf)++ != POLARSSL_ECP_TLS_NAMED_CURVE )
Manuel Pégourié-Gonnard1a967282013-02-09 17:03:58 +0100602 return( POLARSSL_ERR_ECP_BAD_INPUT_DATA );
603
604 /*
Manuel Pégourié-Gonnardb3258872013-02-10 12:06:19 +0100605 * Next two bytes are the namedcurve value
Manuel Pégourié-Gonnard1a967282013-02-09 17:03:58 +0100606 */
Manuel Pégourié-Gonnardf24b4a72013-09-23 18:14:50 +0200607 tls_id = *(*buf)++;
608 tls_id <<= 8;
609 tls_id |= *(*buf)++;
610
611 if( ( curve_info = ecp_curve_info_from_tls_id( tls_id ) ) == NULL )
612 return( POLARSSL_ERR_ECP_FEATURE_UNAVAILABLE );
613
614 return ecp_use_known_dp( grp, curve_info->grp_id );
Manuel Pégourié-Gonnardb3258872013-02-10 12:06:19 +0100615}
616
617/*
618 * Write the ECParameters record corresponding to a group (RFC 4492)
619 */
620int ecp_tls_write_group( const ecp_group *grp, size_t *olen,
621 unsigned char *buf, size_t blen )
622{
Manuel Pégourié-Gonnardf24b4a72013-09-23 18:14:50 +0200623 const ecp_curve_info *curve_info;
624
625 if( ( curve_info = ecp_curve_info_from_grp_id( grp->id ) ) == NULL )
626 return( POLARSSL_ERR_ECP_BAD_INPUT_DATA );
Manuel Pégourié-Gonnard70380392013-09-16 16:19:53 +0200627
Manuel Pégourié-Gonnardb3258872013-02-10 12:06:19 +0100628 /*
629 * We are going to write 3 bytes (see below)
630 */
631 *olen = 3;
632 if( blen < *olen )
633 return( POLARSSL_ERR_ECP_BUFFER_TOO_SMALL );
634
635 /*
636 * First byte is curve_type, always named_curve
637 */
638 *buf++ = POLARSSL_ECP_TLS_NAMED_CURVE;
639
640 /*
641 * Next two bytes are the namedcurve value
642 */
Manuel Pégourié-Gonnardf24b4a72013-09-23 18:14:50 +0200643 buf[0] = curve_info->tls_id >> 8;
644 buf[1] = curve_info->tls_id & 0xFF;
Manuel Pégourié-Gonnardb3258872013-02-10 12:06:19 +0100645
646 return 0;
Manuel Pégourié-Gonnarda5402fe2012-11-07 20:24:05 +0100647}
Manuel Pégourié-Gonnardab38b702012-11-05 17:34:55 +0100648
Manuel Pégourié-Gonnard568c9cf2013-09-16 17:30:04 +0200649/*
Manuel Pégourié-Gonnardcae6f3e2013-10-23 20:19:57 +0200650 * Wrapper around fast quasi-modp functions, with fall-back to mpi_mod_mpi.
651 * See the documentation of struct ecp_group.
652 *
653 * This function is in the critial loop for ecp_mul, so pay attention to perf.
Manuel Pégourié-Gonnard568c9cf2013-09-16 17:30:04 +0200654 */
Manuel Pégourié-Gonnardcae6f3e2013-10-23 20:19:57 +0200655static int ecp_modp( mpi *N, const ecp_group *grp )
Manuel Pégourié-Gonnard70380392013-09-16 16:19:53 +0200656{
Manuel Pégourié-Gonnardcae6f3e2013-10-23 20:19:57 +0200657 int ret;
Manuel Pégourié-Gonnard568c9cf2013-09-16 17:30:04 +0200658
Manuel Pégourié-Gonnardcae6f3e2013-10-23 20:19:57 +0200659 if( grp->modp == NULL )
660 return( mpi_mod_mpi( N, N, &grp->P ) );
661
662 /* N->s < 0 is a much faster test, which fails only if N is 0 */
663 if( ( N->s < 0 && mpi_cmp_int( N, 0 ) != 0 ) ||
664 mpi_msb( N ) > 2 * grp->pbits )
Manuel Pégourié-Gonnard70380392013-09-16 16:19:53 +0200665 {
Manuel Pégourié-Gonnardcae6f3e2013-10-23 20:19:57 +0200666 return( POLARSSL_ERR_ECP_BAD_INPUT_DATA );
Manuel Pégourié-Gonnard70380392013-09-16 16:19:53 +0200667 }
Manuel Pégourié-Gonnard568c9cf2013-09-16 17:30:04 +0200668
Manuel Pégourié-Gonnardcae6f3e2013-10-23 20:19:57 +0200669 MPI_CHK( grp->modp( N ) );
Manuel Pégourié-Gonnard70380392013-09-16 16:19:53 +0200670
Manuel Pégourié-Gonnardcae6f3e2013-10-23 20:19:57 +0200671 /* N->s < 0 is a much faster test, which fails only if N is 0 */
672 while( N->s < 0 && mpi_cmp_int( N, 0 ) != 0 )
673 MPI_CHK( mpi_add_mpi( N, N, &grp->P ) );
Manuel Pégourié-Gonnard568c9cf2013-09-16 17:30:04 +0200674
Manuel Pégourié-Gonnardcae6f3e2013-10-23 20:19:57 +0200675 while( mpi_cmp_mpi( N, &grp->P ) >= 0 )
676 /* we known P, N and the result are positive */
677 MPI_CHK( mpi_sub_abs( N, N, &grp->P ) );
Manuel Pégourié-Gonnard568c9cf2013-09-16 17:30:04 +0200678
Manuel Pégourié-Gonnardcae6f3e2013-10-23 20:19:57 +0200679cleanup:
680 return( ret );
Manuel Pégourié-Gonnard70380392013-09-16 16:19:53 +0200681}
Manuel Pégourié-Gonnard568c9cf2013-09-16 17:30:04 +0200682
Manuel Pégourié-Gonnard847395a2012-11-05 13:13:44 +0100683/*
Manuel Pégourié-Gonnard47123252012-11-10 14:44:24 +0100684 * Fast mod-p functions expect their argument to be in the 0..p^2 range.
Manuel Pégourié-Gonnarddada4da2012-11-10 14:23:17 +0100685 *
Manuel Pégourié-Gonnard47123252012-11-10 14:44:24 +0100686 * In order to guarantee that, we need to ensure that operands of
687 * mpi_mul_mpi are in the 0..p range. So, after each operation we will
Manuel Pégourié-Gonnarddada4da2012-11-10 14:23:17 +0100688 * bring the result back to this range.
689 *
Manuel Pégourié-Gonnard47123252012-11-10 14:44:24 +0100690 * The following macros are shortcuts for doing that.
Manuel Pégourié-Gonnarddada4da2012-11-10 14:23:17 +0100691 */
692
693/*
Manuel Pégourié-Gonnard84d1aea2012-11-09 02:09:38 +0100694 * Reduce a mpi mod p in-place, general case, to use after mpi_mul_mpi
695 */
Manuel Pégourié-Gonnard91814812013-11-21 20:23:55 +0100696#if defined(POLARSSL_SELF_TEST)
697#define INC_MUL_COUNT mul_count++;
698#else
699#define INC_MUL_COUNT
700#endif
701
702#define MOD_MUL( N ) do { MPI_CHK( ecp_modp( &N, grp ) ); INC_MUL_COUNT } \
703 while( 0 )
Manuel Pégourié-Gonnard84d1aea2012-11-09 02:09:38 +0100704
705/*
706 * Reduce a mpi mod p in-place, to use after mpi_sub_mpi
Manuel Pégourié-Gonnardc9e387c2013-10-17 17:15:35 +0200707 * N->s < 0 is a very fast test, which fails only if N is 0
Manuel Pégourié-Gonnard84d1aea2012-11-09 02:09:38 +0100708 */
709#define MOD_SUB( N ) \
Manuel Pégourié-Gonnardcae6f3e2013-10-23 20:19:57 +0200710 while( N.s < 0 && mpi_cmp_int( &N, 0 ) != 0 ) \
Manuel Pégourié-Gonnard84d1aea2012-11-09 02:09:38 +0100711 MPI_CHK( mpi_add_mpi( &N, &N, &grp->P ) )
712
713/*
Manuel Pégourié-Gonnardc9e387c2013-10-17 17:15:35 +0200714 * Reduce a mpi mod p in-place, to use after mpi_add_mpi and mpi_mul_int.
715 * We known P, N and the result are positive, so sub_abs is correct, and
716 * a bit faster.
Manuel Pégourié-Gonnard84d1aea2012-11-09 02:09:38 +0100717 */
718#define MOD_ADD( N ) \
719 while( mpi_cmp_mpi( &N, &grp->P ) >= 0 ) \
Manuel Pégourié-Gonnardc9e387c2013-10-17 17:15:35 +0200720 MPI_CHK( mpi_sub_abs( &N, &N, &grp->P ) )
Manuel Pégourié-Gonnard84d1aea2012-11-09 02:09:38 +0100721
Manuel Pégourié-Gonnard7c94d8b2013-12-04 23:15:46 +0100722#if defined(POLARSSL_ECP_SHORT_WEIERSTRASS)
723/*
724 * For curves in short Weierstrass form, we do all the internal operations in
725 * Jacobian coordinates.
726 *
727 * For multiplication, we'll use a comb method with coutermeasueres against
728 * SPA, hence timing attacks.
729 */
730
Manuel Pégourié-Gonnard84d1aea2012-11-09 02:09:38 +0100731/*
Manuel Pégourié-Gonnard1c2782c2012-11-19 20:16:28 +0100732 * Normalize jacobian coordinates so that Z == 0 || Z == 1 (GECC 3.2.1)
Manuel Pégourié-Gonnard04a02252013-11-20 22:57:38 +0100733 * Cost: 1N := 1I + 3M + 1S
Manuel Pégourié-Gonnardd070f512012-11-08 17:40:51 +0100734 */
Manuel Pégourié-Gonnard3c0b4ea2013-12-02 19:44:41 +0100735static int ecp_normalize_jac( const ecp_group *grp, ecp_point *pt )
Manuel Pégourié-Gonnardd070f512012-11-08 17:40:51 +0100736{
Manuel Pégourié-Gonnard47123252012-11-10 14:44:24 +0100737 int ret;
Manuel Pégourié-Gonnardcdd44322012-11-21 16:00:55 +0100738 mpi Zi, ZZi;
Manuel Pégourié-Gonnardd070f512012-11-08 17:40:51 +0100739
Manuel Pégourié-Gonnard1c2782c2012-11-19 20:16:28 +0100740 if( mpi_cmp_int( &pt->Z, 0 ) == 0 )
Manuel Pégourié-Gonnardd070f512012-11-08 17:40:51 +0100741 return( 0 );
Manuel Pégourié-Gonnardd070f512012-11-08 17:40:51 +0100742
Manuel Pégourié-Gonnardcdd44322012-11-21 16:00:55 +0100743 mpi_init( &Zi ); mpi_init( &ZZi );
Manuel Pégourié-Gonnardd070f512012-11-08 17:40:51 +0100744
Manuel Pégourié-Gonnard1c2782c2012-11-19 20:16:28 +0100745 /*
746 * X = X / Z^2 mod p
747 */
748 MPI_CHK( mpi_inv_mod( &Zi, &pt->Z, &grp->P ) );
749 MPI_CHK( mpi_mul_mpi( &ZZi, &Zi, &Zi ) ); MOD_MUL( ZZi );
750 MPI_CHK( mpi_mul_mpi( &pt->X, &pt->X, &ZZi ) ); MOD_MUL( pt->X );
Manuel Pégourié-Gonnardd070f512012-11-08 17:40:51 +0100751
752 /*
Manuel Pégourié-Gonnard1c2782c2012-11-19 20:16:28 +0100753 * Y = Y / Z^3 mod p
Manuel Pégourié-Gonnardd070f512012-11-08 17:40:51 +0100754 */
Manuel Pégourié-Gonnard1c2782c2012-11-19 20:16:28 +0100755 MPI_CHK( mpi_mul_mpi( &pt->Y, &pt->Y, &ZZi ) ); MOD_MUL( pt->Y );
756 MPI_CHK( mpi_mul_mpi( &pt->Y, &pt->Y, &Zi ) ); MOD_MUL( pt->Y );
Manuel Pégourié-Gonnardd070f512012-11-08 17:40:51 +0100757
758 /*
Manuel Pégourié-Gonnard1c2782c2012-11-19 20:16:28 +0100759 * Z = 1
Manuel Pégourié-Gonnardd070f512012-11-08 17:40:51 +0100760 */
Manuel Pégourié-Gonnard1c2782c2012-11-19 20:16:28 +0100761 MPI_CHK( mpi_lset( &pt->Z, 1 ) );
Manuel Pégourié-Gonnardd070f512012-11-08 17:40:51 +0100762
763cleanup:
764
Manuel Pégourié-Gonnardcdd44322012-11-21 16:00:55 +0100765 mpi_free( &Zi ); mpi_free( &ZZi );
Manuel Pégourié-Gonnardd070f512012-11-08 17:40:51 +0100766
767 return( ret );
768}
769
770/*
Manuel Pégourié-Gonnardd1c1ba92013-11-16 15:50:12 +0100771 * Normalize jacobian coordinates of an array of (pointers to) points,
Manuel Pégourié-Gonnard3680c822012-11-21 18:49:45 +0100772 * using Montgomery's trick to perform only one inversion mod P.
Manuel Pégourié-Gonnardcdd44322012-11-21 16:00:55 +0100773 * (See for example Cohen's "A Course in Computational Algebraic Number
774 * Theory", Algorithm 10.3.4.)
775 *
Manuel Pégourié-Gonnard07de4b12013-09-02 16:26:04 +0200776 * Warning: fails (returning an error) if one of the points is zero!
Manuel Pégourié-Gonnard7a949d32013-12-05 10:26:01 +0100777 * This should never happen, see choice of w in ecp_mul_comb().
Manuel Pégourié-Gonnard04a02252013-11-20 22:57:38 +0100778 *
779 * Cost: 1N(t) := 1I + (6t - 3)M + 1S
Manuel Pégourié-Gonnardcdd44322012-11-21 16:00:55 +0100780 */
Manuel Pégourié-Gonnard3c0b4ea2013-12-02 19:44:41 +0100781static int ecp_normalize_jac_many( const ecp_group *grp,
Manuel Pégourié-Gonnard7c94d8b2013-12-04 23:15:46 +0100782 ecp_point *T[], size_t t_len )
Manuel Pégourié-Gonnardcdd44322012-11-21 16:00:55 +0100783{
784 int ret;
785 size_t i;
786 mpi *c, u, Zi, ZZi;
787
788 if( t_len < 2 )
Manuel Pégourié-Gonnard3c0b4ea2013-12-02 19:44:41 +0100789 return( ecp_normalize_jac( grp, *T ) );
Manuel Pégourié-Gonnardcdd44322012-11-21 16:00:55 +0100790
Paul Bakker6e339b52013-07-03 13:37:05 +0200791 if( ( c = (mpi *) polarssl_malloc( t_len * sizeof( mpi ) ) ) == NULL )
Manuel Pégourié-Gonnard456d3b92013-09-16 18:04:38 +0200792 return( POLARSSL_ERR_ECP_MALLOC_FAILED );
Manuel Pégourié-Gonnardcdd44322012-11-21 16:00:55 +0100793
794 mpi_init( &u ); mpi_init( &Zi ); mpi_init( &ZZi );
795 for( i = 0; i < t_len; i++ )
796 mpi_init( &c[i] );
797
798 /*
799 * c[i] = Z_0 * ... * Z_i
800 */
Manuel Pégourié-Gonnardd1c1ba92013-11-16 15:50:12 +0100801 MPI_CHK( mpi_copy( &c[0], &T[0]->Z ) );
Manuel Pégourié-Gonnardcdd44322012-11-21 16:00:55 +0100802 for( i = 1; i < t_len; i++ )
803 {
Manuel Pégourié-Gonnardd1c1ba92013-11-16 15:50:12 +0100804 MPI_CHK( mpi_mul_mpi( &c[i], &c[i-1], &T[i]->Z ) );
Manuel Pégourié-Gonnardcdd44322012-11-21 16:00:55 +0100805 MOD_MUL( c[i] );
806 }
807
808 /*
809 * u = 1 / (Z_0 * ... * Z_n) mod P
810 */
811 MPI_CHK( mpi_inv_mod( &u, &c[t_len-1], &grp->P ) );
812
813 for( i = t_len - 1; ; i-- )
814 {
815 /*
816 * Zi = 1 / Z_i mod p
817 * u = 1 / (Z_0 * ... * Z_i) mod P
818 */
819 if( i == 0 ) {
820 MPI_CHK( mpi_copy( &Zi, &u ) );
821 }
822 else
823 {
Manuel Pégourié-Gonnardd1c1ba92013-11-16 15:50:12 +0100824 MPI_CHK( mpi_mul_mpi( &Zi, &u, &c[i-1] ) ); MOD_MUL( Zi );
825 MPI_CHK( mpi_mul_mpi( &u, &u, &T[i]->Z ) ); MOD_MUL( u );
Manuel Pégourié-Gonnardcdd44322012-11-21 16:00:55 +0100826 }
827
828 /*
829 * proceed as in normalize()
830 */
Manuel Pégourié-Gonnardd1c1ba92013-11-16 15:50:12 +0100831 MPI_CHK( mpi_mul_mpi( &ZZi, &Zi, &Zi ) ); MOD_MUL( ZZi );
832 MPI_CHK( mpi_mul_mpi( &T[i]->X, &T[i]->X, &ZZi ) ); MOD_MUL( T[i]->X );
833 MPI_CHK( mpi_mul_mpi( &T[i]->Y, &T[i]->Y, &ZZi ) ); MOD_MUL( T[i]->Y );
834 MPI_CHK( mpi_mul_mpi( &T[i]->Y, &T[i]->Y, &Zi ) ); MOD_MUL( T[i]->Y );
Manuel Pégourié-Gonnard1f789b82013-12-30 17:31:56 +0100835
836 /*
837 * Post-precessing: reclaim some memory by shrinking coordinates
838 * - not storing Z (always 1)
839 * - shrinking other coordinates, but still keeping the same number of
840 * limbs as P, as otherwise it will too likely be regrown too fast.
841 */
Manuel Pégourié-Gonnard26bc1c02013-12-30 19:33:33 +0100842 MPI_CHK( mpi_shrink( &T[i]->X, grp->P.n ) );
843 MPI_CHK( mpi_shrink( &T[i]->Y, grp->P.n ) );
Manuel Pégourié-Gonnard1f789b82013-12-30 17:31:56 +0100844 mpi_free( &T[i]->Z );
Manuel Pégourié-Gonnardcdd44322012-11-21 16:00:55 +0100845
846 if( i == 0 )
847 break;
848 }
849
850cleanup:
851
852 mpi_free( &u ); mpi_free( &Zi ); mpi_free( &ZZi );
853 for( i = 0; i < t_len; i++ )
854 mpi_free( &c[i] );
Paul Bakker6e339b52013-07-03 13:37:05 +0200855 polarssl_free( c );
Manuel Pégourié-Gonnardcdd44322012-11-21 16:00:55 +0100856
857 return( ret );
858}
859
Manuel Pégourié-Gonnardcdd44322012-11-21 16:00:55 +0100860/*
Manuel Pégourié-Gonnard01fca5e2013-11-21 17:47:12 +0100861 * Conditional point inversion: Q -> -Q = (Q.X, -Q.Y, Q.Z) without leak.
862 * "inv" must be 0 (don't invert) or 1 (invert) or the result will be invalid
863 */
Manuel Pégourié-Gonnard3c0b4ea2013-12-02 19:44:41 +0100864static int ecp_safe_invert_jac( const ecp_group *grp,
Manuel Pégourié-Gonnard01fca5e2013-11-21 17:47:12 +0100865 ecp_point *Q,
866 unsigned char inv )
867{
868 int ret;
869 unsigned char nonzero;
870 mpi mQY;
871
872 mpi_init( &mQY );
873
874 /* Use the fact that -Q.Y mod P = P - Q.Y unless Q.Y == 0 */
875 MPI_CHK( mpi_sub_mpi( &mQY, &grp->P, &Q->Y ) );
876 nonzero = mpi_cmp_int( &Q->Y, 0 ) != 0;
877 MPI_CHK( mpi_safe_cond_assign( &Q->Y, &mQY, inv & nonzero ) );
878
879cleanup:
880 mpi_free( &mQY );
881
882 return( ret );
883}
884
885/*
Manuel Pégourié-Gonnard0cd6f982013-10-10 15:55:39 +0200886 * Point doubling R = 2 P, Jacobian coordinates
Manuel Pégourié-Gonnard0ace4b32013-10-10 12:44:27 +0200887 *
Manuel Pégourié-Gonnard1c4aa242013-10-09 16:09:46 +0200888 * http://www.hyperelliptic.org/EFD/g1p/auto-code/shortw/jacobian/doubling/dbl-2007-bl.op3
Manuel Pégourié-Gonnard0ace4b32013-10-10 12:44:27 +0200889 * with heavy variable renaming, some reordering and one minor modification
890 * (a = 2 * b, c = d - 2a replaced with c = d, c = c - b, c = c - b)
891 * in order to use a lot less intermediate variables (6 vs 25).
Manuel Pégourié-Gonnard04a02252013-11-20 22:57:38 +0100892 *
893 * Cost: 1D := 2M + 8S
Manuel Pégourié-Gonnard1c4aa242013-10-09 16:09:46 +0200894 */
Manuel Pégourié-Gonnard0cd6f982013-10-10 15:55:39 +0200895static int ecp_double_jac( const ecp_group *grp, ecp_point *R,
896 const ecp_point *P )
Manuel Pégourié-Gonnard1c4aa242013-10-09 16:09:46 +0200897{
898 int ret;
Manuel Pégourié-Gonnard0ace4b32013-10-10 12:44:27 +0200899 mpi T1, T2, T3, X3, Y3, Z3;
Manuel Pégourié-Gonnard1c4aa242013-10-09 16:09:46 +0200900
Manuel Pégourié-Gonnard0cd6f982013-10-10 15:55:39 +0200901#if defined(POLARSSL_SELF_TEST)
902 dbl_count++;
903#endif
904
Manuel Pégourié-Gonnard0ace4b32013-10-10 12:44:27 +0200905 mpi_init( &T1 ); mpi_init( &T2 ); mpi_init( &T3 );
906 mpi_init( &X3 ); mpi_init( &Y3 ); mpi_init( &Z3 );
Manuel Pégourié-Gonnard1c4aa242013-10-09 16:09:46 +0200907
Manuel Pégourié-Gonnard0ace4b32013-10-10 12:44:27 +0200908 MPI_CHK( mpi_mul_mpi( &T3, &P->X, &P->X ) ); MOD_MUL( T3 );
909 MPI_CHK( mpi_mul_mpi( &T2, &P->Y, &P->Y ) ); MOD_MUL( T2 );
910 MPI_CHK( mpi_mul_mpi( &Y3, &T2, &T2 ) ); MOD_MUL( Y3 );
911 MPI_CHK( mpi_add_mpi( &X3, &P->X, &T2 ) ); MOD_ADD( X3 );
912 MPI_CHK( mpi_mul_mpi( &X3, &X3, &X3 ) ); MOD_MUL( X3 );
913 MPI_CHK( mpi_sub_mpi( &X3, &X3, &Y3 ) ); MOD_SUB( X3 );
914 MPI_CHK( mpi_sub_mpi( &X3, &X3, &T3 ) ); MOD_SUB( X3 );
915 MPI_CHK( mpi_mul_int( &T1, &X3, 2 ) ); MOD_ADD( T1 );
916 MPI_CHK( mpi_mul_mpi( &Z3, &P->Z, &P->Z ) ); MOD_MUL( Z3 );
917 MPI_CHK( mpi_mul_mpi( &X3, &Z3, &Z3 ) ); MOD_MUL( X3 );
918 MPI_CHK( mpi_mul_int( &T3, &T3, 3 ) ); MOD_ADD( T3 );
Manuel Pégourié-Gonnard73cc01d2013-12-06 12:41:30 +0100919
920 /* Special case for A = -3 */
921 if( grp->A.p == NULL )
922 {
923 MPI_CHK( mpi_mul_int( &X3, &X3, 3 ) );
924 X3.s = -1; /* mpi_mul_int doesn't handle negative numbers */
925 MOD_SUB( X3 );
926 }
927 else
928 MPI_CHK( mpi_mul_mpi( &X3, &X3, &grp->A ) ); MOD_MUL( X3 );
929
Manuel Pégourié-Gonnard0ace4b32013-10-10 12:44:27 +0200930 MPI_CHK( mpi_add_mpi( &T3, &T3, &X3 ) ); MOD_ADD( T3 );
931 MPI_CHK( mpi_mul_mpi( &X3, &T3, &T3 ) ); MOD_MUL( X3 );
932 MPI_CHK( mpi_sub_mpi( &X3, &X3, &T1 ) ); MOD_SUB( X3 );
933 MPI_CHK( mpi_sub_mpi( &X3, &X3, &T1 ) ); MOD_SUB( X3 );
934 MPI_CHK( mpi_sub_mpi( &T1, &T1, &X3 ) ); MOD_SUB( T1 );
935 MPI_CHK( mpi_mul_mpi( &T1, &T3, &T1 ) ); MOD_MUL( T1 );
936 MPI_CHK( mpi_mul_int( &T3, &Y3, 8 ) ); MOD_ADD( T3 );
937 MPI_CHK( mpi_sub_mpi( &Y3, &T1, &T3 ) ); MOD_SUB( Y3 );
938 MPI_CHK( mpi_add_mpi( &T1, &P->Y, &P->Z ) ); MOD_ADD( T1 );
939 MPI_CHK( mpi_mul_mpi( &T1, &T1, &T1 ) ); MOD_MUL( T1 );
940 MPI_CHK( mpi_sub_mpi( &T1, &T1, &T2 ) ); MOD_SUB( T1 );
941 MPI_CHK( mpi_sub_mpi( &Z3, &T1, &Z3 ) ); MOD_SUB( Z3 );
Manuel Pégourié-Gonnard1c4aa242013-10-09 16:09:46 +0200942
943 MPI_CHK( mpi_copy( &R->X, &X3 ) );
944 MPI_CHK( mpi_copy( &R->Y, &Y3 ) );
945 MPI_CHK( mpi_copy( &R->Z, &Z3 ) );
946
947cleanup:
Manuel Pégourié-Gonnard0ace4b32013-10-10 12:44:27 +0200948 mpi_free( &T1 ); mpi_free( &T2 ); mpi_free( &T3 );
949 mpi_free( &X3 ); mpi_free( &Y3 ); mpi_free( &Z3 );
Manuel Pégourié-Gonnard1c4aa242013-10-09 16:09:46 +0200950
951 return( ret );
952}
953
954/*
Manuel Pégourié-Gonnard469a2092013-11-21 18:20:43 +0100955 * Addition: R = P + Q, mixed affine-Jacobian coordinates (GECC 3.22)
Manuel Pégourié-Gonnard9674fd02012-11-19 21:23:27 +0100956 *
957 * The coordinates of Q must be normalized (= affine),
958 * but those of P don't need to. R is not normalized.
959 *
Manuel Pégourié-Gonnardaade42f2013-11-21 19:19:54 +0100960 * Special cases: (1) P or Q is zero, (2) R is zero, (3) P == Q.
Manuel Pégourié-Gonnard7a949d32013-12-05 10:26:01 +0100961 * None of these cases can happen as intermediate step in ecp_mul_comb():
Manuel Pégourié-Gonnardaade42f2013-11-21 19:19:54 +0100962 * - at each step, P, Q and R are multiples of the base point, the factor
963 * being less than its order, so none of them is zero;
964 * - Q is an odd multiple of the base point, P an even multiple,
965 * due to the choice of precomputed points in the modified comb method.
966 * So branches for these cases do not leak secret information.
967 *
Manuel Pégourié-Gonnard72c172a2013-12-30 16:04:55 +0100968 * We accept Q->Z being unset (saving memory in tables) as meaning 1.
969 *
Manuel Pégourié-Gonnard04a02252013-11-20 22:57:38 +0100970 * Cost: 1A := 8M + 3S
Manuel Pégourié-Gonnardae180d02012-11-02 18:14:40 +0100971 */
Manuel Pégourié-Gonnard1c2782c2012-11-19 20:16:28 +0100972static int ecp_add_mixed( const ecp_group *grp, ecp_point *R,
Manuel Pégourié-Gonnard469a2092013-11-21 18:20:43 +0100973 const ecp_point *P, const ecp_point *Q )
Manuel Pégourié-Gonnardae180d02012-11-02 18:14:40 +0100974{
Manuel Pégourié-Gonnard47123252012-11-10 14:44:24 +0100975 int ret;
Manuel Pégourié-Gonnard7e0adfb2012-11-08 23:21:46 +0100976 mpi T1, T2, T3, T4, X, Y, Z;
Manuel Pégourié-Gonnardae180d02012-11-02 18:14:40 +0100977
Manuel Pégourié-Gonnardb4a310b2012-11-13 20:57:00 +0100978#if defined(POLARSSL_SELF_TEST)
979 add_count++;
980#endif
981
Manuel Pégourié-Gonnardae180d02012-11-02 18:14:40 +0100982 /*
Manuel Pégourié-Gonnardaade42f2013-11-21 19:19:54 +0100983 * Trivial cases: P == 0 or Q == 0 (case 1)
Manuel Pégourié-Gonnardae180d02012-11-02 18:14:40 +0100984 */
Manuel Pégourié-Gonnard469a2092013-11-21 18:20:43 +0100985 if( mpi_cmp_int( &P->Z, 0 ) == 0 )
986 return( ecp_copy( R, Q ) );
987
Manuel Pégourié-Gonnard72c172a2013-12-30 16:04:55 +0100988 if( Q->Z.p != NULL && mpi_cmp_int( &Q->Z, 0 ) == 0 )
Manuel Pégourié-Gonnard1c2782c2012-11-19 20:16:28 +0100989 return( ecp_copy( R, P ) );
990
991 /*
992 * Make sure Q coordinates are normalized
993 */
Manuel Pégourié-Gonnard72c172a2013-12-30 16:04:55 +0100994 if( Q->Z.p != NULL && mpi_cmp_int( &Q->Z, 1 ) != 0 )
Manuel Pégourié-Gonnard456d3b92013-09-16 18:04:38 +0200995 return( POLARSSL_ERR_ECP_BAD_INPUT_DATA );
Manuel Pégourié-Gonnardae180d02012-11-02 18:14:40 +0100996
Manuel Pégourié-Gonnard7e0adfb2012-11-08 23:21:46 +0100997 mpi_init( &T1 ); mpi_init( &T2 ); mpi_init( &T3 ); mpi_init( &T4 );
998 mpi_init( &X ); mpi_init( &Y ); mpi_init( &Z );
Manuel Pégourié-Gonnardab38b702012-11-05 17:34:55 +0100999
Manuel Pégourié-Gonnard47123252012-11-10 14:44:24 +01001000 MPI_CHK( mpi_mul_mpi( &T1, &P->Z, &P->Z ) ); MOD_MUL( T1 );
1001 MPI_CHK( mpi_mul_mpi( &T2, &T1, &P->Z ) ); MOD_MUL( T2 );
1002 MPI_CHK( mpi_mul_mpi( &T1, &T1, &Q->X ) ); MOD_MUL( T1 );
1003 MPI_CHK( mpi_mul_mpi( &T2, &T2, &Q->Y ) ); MOD_MUL( T2 );
1004 MPI_CHK( mpi_sub_mpi( &T1, &T1, &P->X ) ); MOD_SUB( T1 );
1005 MPI_CHK( mpi_sub_mpi( &T2, &T2, &P->Y ) ); MOD_SUB( T2 );
Manuel Pégourié-Gonnardae180d02012-11-02 18:14:40 +01001006
Manuel Pégourié-Gonnardaade42f2013-11-21 19:19:54 +01001007 /* Special cases (2) and (3) */
Manuel Pégourié-Gonnard7e0adfb2012-11-08 23:21:46 +01001008 if( mpi_cmp_int( &T1, 0 ) == 0 )
1009 {
1010 if( mpi_cmp_int( &T2, 0 ) == 0 )
1011 {
1012 ret = ecp_double_jac( grp, R, P );
1013 goto cleanup;
1014 }
1015 else
1016 {
Manuel Pégourié-Gonnard1c2782c2012-11-19 20:16:28 +01001017 ret = ecp_set_zero( R );
Manuel Pégourié-Gonnard7e0adfb2012-11-08 23:21:46 +01001018 goto cleanup;
1019 }
1020 }
1021
Manuel Pégourié-Gonnard47123252012-11-10 14:44:24 +01001022 MPI_CHK( mpi_mul_mpi( &Z, &P->Z, &T1 ) ); MOD_MUL( Z );
1023 MPI_CHK( mpi_mul_mpi( &T3, &T1, &T1 ) ); MOD_MUL( T3 );
1024 MPI_CHK( mpi_mul_mpi( &T4, &T3, &T1 ) ); MOD_MUL( T4 );
1025 MPI_CHK( mpi_mul_mpi( &T3, &T3, &P->X ) ); MOD_MUL( T3 );
1026 MPI_CHK( mpi_mul_int( &T1, &T3, 2 ) ); MOD_ADD( T1 );
1027 MPI_CHK( mpi_mul_mpi( &X, &T2, &T2 ) ); MOD_MUL( X );
1028 MPI_CHK( mpi_sub_mpi( &X, &X, &T1 ) ); MOD_SUB( X );
1029 MPI_CHK( mpi_sub_mpi( &X, &X, &T4 ) ); MOD_SUB( X );
1030 MPI_CHK( mpi_sub_mpi( &T3, &T3, &X ) ); MOD_SUB( T3 );
1031 MPI_CHK( mpi_mul_mpi( &T3, &T3, &T2 ) ); MOD_MUL( T3 );
1032 MPI_CHK( mpi_mul_mpi( &T4, &T4, &P->Y ) ); MOD_MUL( T4 );
1033 MPI_CHK( mpi_sub_mpi( &Y, &T3, &T4 ) ); MOD_SUB( Y );
Manuel Pégourié-Gonnard7e0adfb2012-11-08 23:21:46 +01001034
Manuel Pégourié-Gonnard84d1aea2012-11-09 02:09:38 +01001035 MPI_CHK( mpi_copy( &R->X, &X ) );
1036 MPI_CHK( mpi_copy( &R->Y, &Y ) );
1037 MPI_CHK( mpi_copy( &R->Z, &Z ) );
Manuel Pégourié-Gonnardae180d02012-11-02 18:14:40 +01001038
1039cleanup:
1040
Manuel Pégourié-Gonnard7e0adfb2012-11-08 23:21:46 +01001041 mpi_free( &T1 ); mpi_free( &T2 ); mpi_free( &T3 ); mpi_free( &T4 );
1042 mpi_free( &X ); mpi_free( &Y ); mpi_free( &Z );
Manuel Pégourié-Gonnardae180d02012-11-02 18:14:40 +01001043
1044 return( ret );
1045}
1046
1047/*
Manuel Pégourié-Gonnard1c2782c2012-11-19 20:16:28 +01001048 * Addition: R = P + Q, result's coordinates normalized
Manuel Pégourié-Gonnardae180d02012-11-02 18:14:40 +01001049 */
1050int ecp_add( const ecp_group *grp, ecp_point *R,
1051 const ecp_point *P, const ecp_point *Q )
1052{
Manuel Pégourié-Gonnard47123252012-11-10 14:44:24 +01001053 int ret;
Manuel Pégourié-Gonnard989c32b2012-11-08 22:02:42 +01001054
Manuel Pégourié-Gonnard7c94d8b2013-12-04 23:15:46 +01001055 if( ecp_get_type( grp ) != POLARSSL_ECP_TYPE_SHORT_WEIERSTRASS )
Manuel Pégourié-Gonnard97871ef2013-12-04 20:52:04 +01001056 return( POLARSSL_ERR_ECP_FEATURE_UNAVAILABLE );
1057
Manuel Pégourié-Gonnard469a2092013-11-21 18:20:43 +01001058 MPI_CHK( ecp_add_mixed( grp, R, P, Q ) );
Manuel Pégourié-Gonnard3c0b4ea2013-12-02 19:44:41 +01001059 MPI_CHK( ecp_normalize_jac( grp, R ) );
Manuel Pégourié-Gonnard9674fd02012-11-19 21:23:27 +01001060
1061cleanup:
1062 return( ret );
1063}
1064
1065/*
1066 * Subtraction: R = P - Q, result's coordinates normalized
1067 */
1068int ecp_sub( const ecp_group *grp, ecp_point *R,
1069 const ecp_point *P, const ecp_point *Q )
1070{
1071 int ret;
Manuel Pégourié-Gonnard469a2092013-11-21 18:20:43 +01001072 ecp_point mQ;
Manuel Pégourié-Gonnard9674fd02012-11-19 21:23:27 +01001073
Manuel Pégourié-Gonnard469a2092013-11-21 18:20:43 +01001074 ecp_point_init( &mQ );
1075
Manuel Pégourié-Gonnard7c94d8b2013-12-04 23:15:46 +01001076 if( ecp_get_type( grp ) != POLARSSL_ECP_TYPE_SHORT_WEIERSTRASS )
Manuel Pégourié-Gonnard97871ef2013-12-04 20:52:04 +01001077 return( POLARSSL_ERR_ECP_FEATURE_UNAVAILABLE );
1078
Manuel Pégourié-Gonnard469a2092013-11-21 18:20:43 +01001079 /* mQ = - Q */
Manuel Pégourié-Gonnard26bc1c02013-12-30 19:33:33 +01001080 MPI_CHK( ecp_copy( &mQ, Q ) );
Manuel Pégourié-Gonnard469a2092013-11-21 18:20:43 +01001081 if( mpi_cmp_int( &mQ.Y, 0 ) != 0 )
1082 MPI_CHK( mpi_sub_mpi( &mQ.Y, &grp->P, &mQ.Y ) );
1083
1084 MPI_CHK( ecp_add_mixed( grp, R, P, &mQ ) );
Manuel Pégourié-Gonnard3c0b4ea2013-12-02 19:44:41 +01001085 MPI_CHK( ecp_normalize_jac( grp, R ) );
Manuel Pégourié-Gonnardae180d02012-11-02 18:14:40 +01001086
Manuel Pégourié-Gonnard989c32b2012-11-08 22:02:42 +01001087cleanup:
Manuel Pégourié-Gonnard469a2092013-11-21 18:20:43 +01001088 ecp_point_free( &mQ );
1089
Manuel Pégourié-Gonnard7e0adfb2012-11-08 23:21:46 +01001090 return( ret );
Manuel Pégourié-Gonnardae180d02012-11-02 18:14:40 +01001091}
1092
Manuel Pégourié-Gonnardefaa31e2012-11-06 21:34:35 +01001093/*
Manuel Pégourié-Gonnard07de4b12013-09-02 16:26:04 +02001094 * Randomize jacobian coordinates:
1095 * (X, Y, Z) -> (l^2 X, l^3 Y, l Z) for random l
Manuel Pégourié-Gonnard3c0b4ea2013-12-02 19:44:41 +01001096 * This is sort of the reverse operation of ecp_normalize_jac().
Manuel Pégourié-Gonnard44aab792013-11-21 10:53:59 +01001097 *
1098 * This countermeasure was first suggested in [2].
Manuel Pégourié-Gonnard07de4b12013-09-02 16:26:04 +02001099 */
Manuel Pégourié-Gonnard3afa07f2013-12-03 13:28:21 +01001100static int ecp_randomize_jac( const ecp_group *grp, ecp_point *pt,
Manuel Pégourié-Gonnard07de4b12013-09-02 16:26:04 +02001101 int (*f_rng)(void *, unsigned char *, size_t), void *p_rng )
1102{
1103 int ret;
1104 mpi l, ll;
1105 size_t p_size = (grp->pbits + 7) / 8;
1106 int count = 0;
1107
1108 mpi_init( &l ); mpi_init( &ll );
1109
1110 /* Generate l such that 1 < l < p */
1111 do
1112 {
1113 mpi_fill_random( &l, p_size, f_rng, p_rng );
1114
1115 while( mpi_cmp_mpi( &l, &grp->P ) >= 0 )
1116 mpi_shift_r( &l, 1 );
1117
1118 if( count++ > 10 )
Manuel Pégourié-Gonnard456d3b92013-09-16 18:04:38 +02001119 return( POLARSSL_ERR_ECP_RANDOM_FAILED );
Manuel Pégourié-Gonnard07de4b12013-09-02 16:26:04 +02001120 }
1121 while( mpi_cmp_int( &l, 1 ) <= 0 );
1122
1123 /* Z = l * Z */
1124 MPI_CHK( mpi_mul_mpi( &pt->Z, &pt->Z, &l ) ); MOD_MUL( pt->Z );
1125
1126 /* X = l^2 * X */
1127 MPI_CHK( mpi_mul_mpi( &ll, &l, &l ) ); MOD_MUL( ll );
1128 MPI_CHK( mpi_mul_mpi( &pt->X, &pt->X, &ll ) ); MOD_MUL( pt->X );
1129
1130 /* Y = l^3 * Y */
1131 MPI_CHK( mpi_mul_mpi( &ll, &ll, &l ) ); MOD_MUL( ll );
1132 MPI_CHK( mpi_mul_mpi( &pt->Y, &pt->Y, &ll ) ); MOD_MUL( pt->Y );
1133
1134cleanup:
1135 mpi_free( &l ); mpi_free( &ll );
1136
1137 return( ret );
1138}
1139
1140/*
Manuel Pégourié-Gonnardc30200e2013-11-20 18:39:55 +01001141 * Check and define parameters used by the comb method (see below for details)
1142 */
1143#if POLARSSL_ECP_WINDOW_SIZE < 2 || POLARSSL_ECP_WINDOW_SIZE > 7
1144#error "POLARSSL_ECP_WINDOW_SIZE out of bounds"
1145#endif
1146
1147/* d = ceil( n / w ) */
1148#define COMB_MAX_D ( POLARSSL_ECP_MAX_BITS + 1 ) / 2
1149
1150/* number of precomputed points */
1151#define COMB_MAX_PRE ( 1 << ( POLARSSL_ECP_WINDOW_SIZE - 1 ) )
1152
1153/*
1154 * Compute the representation of m that will be used with our comb method.
Manuel Pégourié-Gonnardd1c1ba92013-11-16 15:50:12 +01001155 *
1156 * The basic comb method is described in GECC 3.44 for example. We use a
Manuel Pégourié-Gonnard101a39f2013-11-20 14:47:19 +01001157 * modified version that provides resistance to SPA by avoiding zero
1158 * digits in the representation as in [3]. We modify the method further by
1159 * requiring that all K_i be odd, which has the small cost that our
Manuel Pégourié-Gonnardc30200e2013-11-20 18:39:55 +01001160 * representation uses one more K_i, due to carries.
Manuel Pégourié-Gonnard101a39f2013-11-20 14:47:19 +01001161 *
1162 * Also, for the sake of compactness, only the seven low-order bits of x[i]
1163 * are used to represent K_i, and the msb of x[i] encodes the the sign (s_i in
1164 * the paper): it is set if and only if if s_i == -1;
Manuel Pégourié-Gonnardd1c1ba92013-11-16 15:50:12 +01001165 *
1166 * Calling conventions:
Manuel Pégourié-Gonnard101a39f2013-11-20 14:47:19 +01001167 * - x is an array of size d + 1
Manuel Pégourié-Gonnardc30200e2013-11-20 18:39:55 +01001168 * - w is the size, ie number of teeth, of the comb, and must be between
1169 * 2 and 7 (in practice, between 2 and POLARSSL_ECP_WINDOW_SIZE)
Manuel Pégourié-Gonnard101a39f2013-11-20 14:47:19 +01001170 * - m is the MPI, expected to be odd and such that bitlength(m) <= w * d
1171 * (the result will be incorrect if these assumptions are not satisfied)
Manuel Pégourié-Gonnardd1c1ba92013-11-16 15:50:12 +01001172 */
Manuel Pégourié-Gonnard101a39f2013-11-20 14:47:19 +01001173static void ecp_comb_fixed( unsigned char x[], size_t d,
Manuel Pégourié-Gonnardd1c1ba92013-11-16 15:50:12 +01001174 unsigned char w, const mpi *m )
1175{
1176 size_t i, j;
Manuel Pégourié-Gonnard101a39f2013-11-20 14:47:19 +01001177 unsigned char c, cc, adjust;
Manuel Pégourié-Gonnardd1c1ba92013-11-16 15:50:12 +01001178
Manuel Pégourié-Gonnard101a39f2013-11-20 14:47:19 +01001179 memset( x, 0, d+1 );
Manuel Pégourié-Gonnardd1c1ba92013-11-16 15:50:12 +01001180
Manuel Pégourié-Gonnardedc1a1f2013-11-21 09:50:00 +01001181 /* First get the classical comb values (except for x_d = 0) */
1182 for( i = 0; i < d; i++ )
Manuel Pégourié-Gonnardd1c1ba92013-11-16 15:50:12 +01001183 for( j = 0; j < w; j++ )
1184 x[i] |= mpi_get_bit( m, i + d * j ) << j;
1185
Manuel Pégourié-Gonnardedc1a1f2013-11-21 09:50:00 +01001186 /* Now make sure x_1 .. x_d are odd */
1187 c = 0;
1188 for( i = 1; i <= d; i++ )
1189 {
Manuel Pégourié-Gonnard101a39f2013-11-20 14:47:19 +01001190 /* Add carry and update it */
1191 cc = x[i] & c;
1192 x[i] = x[i] ^ c;
1193 c = cc;
1194
Manuel Pégourié-Gonnardedc1a1f2013-11-21 09:50:00 +01001195 /* Adjust if needed, avoiding branches */
Manuel Pégourié-Gonnard101a39f2013-11-20 14:47:19 +01001196 adjust = 1 - ( x[i] & 0x01 );
1197 c |= x[i] & ( x[i-1] * adjust );
1198 x[i] = x[i] ^ ( x[i-1] * adjust );
1199 x[i-1] |= adjust << 7;
Manuel Pégourié-Gonnardd1c1ba92013-11-16 15:50:12 +01001200 }
1201}
1202
1203/*
1204 * Precompute points for the comb method
1205 *
Manuel Pégourié-Gonnard101a39f2013-11-20 14:47:19 +01001206 * If i = i_{w-1} ... i_1 is the binary representation of i, then
1207 * T[i] = i_{w-1} 2^{(w-1)d} P + ... + i_1 2^d P + P
Manuel Pégourié-Gonnardd1c1ba92013-11-16 15:50:12 +01001208 *
Manuel Pégourié-Gonnard04a02252013-11-20 22:57:38 +01001209 * T must be able to hold 2^{w - 1} elements
1210 *
1211 * Cost: d(w-1) D + (2^{w-1} - 1) A + 1 N(w-1) + 1 N(2^{w-1} - 1)
Manuel Pégourié-Gonnardd1c1ba92013-11-16 15:50:12 +01001212 */
1213static int ecp_precompute_comb( const ecp_group *grp,
1214 ecp_point T[], const ecp_point *P,
1215 unsigned char w, size_t d )
1216{
1217 int ret;
Manuel Pégourié-Gonnardc30200e2013-11-20 18:39:55 +01001218 unsigned char i, k;
1219 size_t j;
1220 ecp_point *cur, *TT[COMB_MAX_PRE - 1];
Manuel Pégourié-Gonnardd1c1ba92013-11-16 15:50:12 +01001221
1222 /*
Manuel Pégourié-Gonnard101a39f2013-11-20 14:47:19 +01001223 * Set T[0] = P and
1224 * T[2^{l-1}] = 2^{dl} P for l = 1 .. w-1 (this is not the final value)
Manuel Pégourié-Gonnardd1c1ba92013-11-16 15:50:12 +01001225 */
1226 MPI_CHK( ecp_copy( &T[0], P ) );
1227
Manuel Pégourié-Gonnard101a39f2013-11-20 14:47:19 +01001228 k = 0;
1229 for( i = 1; i < ( 1U << (w-1) ); i <<= 1 )
Manuel Pégourié-Gonnardd1c1ba92013-11-16 15:50:12 +01001230 {
Manuel Pégourié-Gonnard101a39f2013-11-20 14:47:19 +01001231 cur = T + i;
1232 MPI_CHK( ecp_copy( cur, T + ( i >> 1 ) ) );
Manuel Pégourié-Gonnardd1c1ba92013-11-16 15:50:12 +01001233 for( j = 0; j < d; j++ )
1234 MPI_CHK( ecp_double_jac( grp, cur, cur ) );
Manuel Pégourié-Gonnard101a39f2013-11-20 14:47:19 +01001235
1236 TT[k++] = cur;
Manuel Pégourié-Gonnardd1c1ba92013-11-16 15:50:12 +01001237 }
1238
Manuel Pégourié-Gonnard26bc1c02013-12-30 19:33:33 +01001239 MPI_CHK( ecp_normalize_jac_many( grp, TT, k ) );
Manuel Pégourié-Gonnardd1c1ba92013-11-16 15:50:12 +01001240
1241 /*
1242 * Compute the remaining ones using the minimal number of additions
Manuel Pégourié-Gonnard101a39f2013-11-20 14:47:19 +01001243 * Be careful to update T[2^l] only after using it!
Manuel Pégourié-Gonnardd1c1ba92013-11-16 15:50:12 +01001244 */
Manuel Pégourié-Gonnard101a39f2013-11-20 14:47:19 +01001245 k = 0;
1246 for( i = 1; i < ( 1U << (w-1) ); i <<= 1 )
Manuel Pégourié-Gonnardd1c1ba92013-11-16 15:50:12 +01001247 {
Manuel Pégourié-Gonnard101a39f2013-11-20 14:47:19 +01001248 j = i;
1249 while( j-- )
1250 {
Manuel Pégourié-Gonnard26bc1c02013-12-30 19:33:33 +01001251 MPI_CHK( ecp_add_mixed( grp, &T[i + j], &T[j], &T[i] ) );
Manuel Pégourié-Gonnard101a39f2013-11-20 14:47:19 +01001252 TT[k++] = &T[i + j];
1253 }
Manuel Pégourié-Gonnardd1c1ba92013-11-16 15:50:12 +01001254 }
1255
Manuel Pégourié-Gonnard26bc1c02013-12-30 19:33:33 +01001256 MPI_CHK( ecp_normalize_jac_many( grp, TT, k ) );
Manuel Pégourié-Gonnarde2820122013-11-21 10:08:50 +01001257
Manuel Pégourié-Gonnardd1c1ba92013-11-16 15:50:12 +01001258cleanup:
1259 return( ret );
1260}
1261
1262/*
Manuel Pégourié-Gonnard101a39f2013-11-20 14:47:19 +01001263 * Select precomputed point: R = sign(i) * T[ abs(i) / 2 ]
Manuel Pégourié-Gonnardd1c1ba92013-11-16 15:50:12 +01001264 */
1265static int ecp_select_comb( const ecp_group *grp, ecp_point *R,
Manuel Pégourié-Gonnard96c7a922013-11-25 18:28:53 +01001266 const ecp_point T[], unsigned char t_len,
Manuel Pégourié-Gonnardd7283502013-11-21 20:00:38 +01001267 unsigned char i )
Manuel Pégourié-Gonnardd1c1ba92013-11-16 15:50:12 +01001268{
1269 int ret;
Manuel Pégourié-Gonnardd7283502013-11-21 20:00:38 +01001270 unsigned char ii, j;
Manuel Pégourié-Gonnardd1c1ba92013-11-16 15:50:12 +01001271
Manuel Pégourié-Gonnardd7283502013-11-21 20:00:38 +01001272 /* Ignore the "sign" bit and scale down */
1273 ii = ( i & 0x7Fu ) >> 1;
Manuel Pégourié-Gonnardd1c1ba92013-11-16 15:50:12 +01001274
Manuel Pégourié-Gonnardd7283502013-11-21 20:00:38 +01001275 /* Read the whole table to thwart cache-based timing attacks */
1276 for( j = 0; j < t_len; j++ )
1277 {
1278 MPI_CHK( mpi_safe_cond_assign( &R->X, &T[j].X, j == ii ) );
1279 MPI_CHK( mpi_safe_cond_assign( &R->Y, &T[j].Y, j == ii ) );
1280 }
1281
Manuel Pégourié-Gonnard01fca5e2013-11-21 17:47:12 +01001282 /* Safely invert result if i is "negative" */
Manuel Pégourié-Gonnard3c0b4ea2013-12-02 19:44:41 +01001283 MPI_CHK( ecp_safe_invert_jac( grp, R, i >> 7 ) );
Manuel Pégourié-Gonnardd1c1ba92013-11-16 15:50:12 +01001284
1285cleanup:
1286 return( ret );
1287}
1288
1289/*
1290 * Core multiplication algorithm for the (modified) comb method.
1291 * This part is actually common with the basic comb method (GECC 3.44)
Manuel Pégourié-Gonnard04a02252013-11-20 22:57:38 +01001292 *
1293 * Cost: d A + d D + 1 R
Manuel Pégourié-Gonnardd1c1ba92013-11-16 15:50:12 +01001294 */
1295static int ecp_mul_comb_core( const ecp_group *grp, ecp_point *R,
Manuel Pégourié-Gonnard96c7a922013-11-25 18:28:53 +01001296 const ecp_point T[], unsigned char t_len,
Manuel Pégourié-Gonnard70c14372013-11-20 20:07:26 +01001297 const unsigned char x[], size_t d,
1298 int (*f_rng)(void *, unsigned char *, size_t),
1299 void *p_rng )
Manuel Pégourié-Gonnardd1c1ba92013-11-16 15:50:12 +01001300{
1301 int ret;
1302 ecp_point Txi;
1303 size_t i;
1304
1305 ecp_point_init( &Txi );
1306
Manuel Pégourié-Gonnard70c14372013-11-20 20:07:26 +01001307 /* Start with a non-zero point and randomize its coordinates */
Manuel Pégourié-Gonnard101a39f2013-11-20 14:47:19 +01001308 i = d;
Manuel Pégourié-Gonnardd7283502013-11-21 20:00:38 +01001309 MPI_CHK( ecp_select_comb( grp, R, T, t_len, x[i] ) );
Manuel Pégourié-Gonnard72c172a2013-12-30 16:04:55 +01001310 MPI_CHK( mpi_lset( &R->Z, 1 ) );
Manuel Pégourié-Gonnard70c14372013-11-20 20:07:26 +01001311 if( f_rng != 0 )
Manuel Pégourié-Gonnard3afa07f2013-12-03 13:28:21 +01001312 MPI_CHK( ecp_randomize_jac( grp, R, f_rng, p_rng ) );
Manuel Pégourié-Gonnardd1c1ba92013-11-16 15:50:12 +01001313
1314 while( i-- != 0 )
1315 {
1316 MPI_CHK( ecp_double_jac( grp, R, R ) );
Manuel Pégourié-Gonnardd7283502013-11-21 20:00:38 +01001317 MPI_CHK( ecp_select_comb( grp, &Txi, T, t_len, x[i] ) );
Manuel Pégourié-Gonnard469a2092013-11-21 18:20:43 +01001318 MPI_CHK( ecp_add_mixed( grp, R, R, &Txi ) );
Manuel Pégourié-Gonnardd1c1ba92013-11-16 15:50:12 +01001319 }
1320
1321cleanup:
1322 ecp_point_free( &Txi );
1323
1324 return( ret );
1325}
1326
1327/*
Manuel Pégourié-Gonnarda0179b82013-12-04 11:49:20 +01001328 * Multiplication using the comb method,
1329 * for curves in short Weierstrass form
Manuel Pégourié-Gonnardd1c1ba92013-11-16 15:50:12 +01001330 */
Manuel Pégourié-Gonnarda0179b82013-12-04 11:49:20 +01001331static int ecp_mul_comb( ecp_group *grp, ecp_point *R,
1332 const mpi *m, const ecp_point *P,
1333 int (*f_rng)(void *, unsigned char *, size_t),
1334 void *p_rng )
Manuel Pégourié-Gonnardd1c1ba92013-11-16 15:50:12 +01001335{
1336 int ret;
Manuel Pégourié-Gonnardd7283502013-11-21 20:00:38 +01001337 unsigned char w, m_is_odd, p_eq_g, pre_len, i;
1338 size_t d;
Manuel Pégourié-Gonnardc30200e2013-11-20 18:39:55 +01001339 unsigned char k[COMB_MAX_D + 1];
Manuel Pégourié-Gonnardaade42f2013-11-21 19:19:54 +01001340 ecp_point *T;
1341 mpi M, mm;
Manuel Pégourié-Gonnardd1c1ba92013-11-16 15:50:12 +01001342
Manuel Pégourié-Gonnardd1c1ba92013-11-16 15:50:12 +01001343 mpi_init( &M );
Manuel Pégourié-Gonnardaade42f2013-11-21 19:19:54 +01001344 mpi_init( &mm );
Manuel Pégourié-Gonnardd1c1ba92013-11-16 15:50:12 +01001345
Manuel Pégourié-Gonnarda0179b82013-12-04 11:49:20 +01001346 /* we need N to be odd to trnaform m in an odd number, check now */
1347 if( mpi_get_bit( &grp->N, 0 ) != 1 )
1348 return( POLARSSL_ERR_ECP_BAD_INPUT_DATA );
1349
Manuel Pégourié-Gonnardd1c1ba92013-11-16 15:50:12 +01001350 /*
Manuel Pégourié-Gonnard04a02252013-11-20 22:57:38 +01001351 * Minimize the number of multiplications, that is minimize
Manuel Pégourié-Gonnard36daa132013-11-21 18:33:36 +01001352 * 10 * d * w + 18 * 2^(w-1) + 11 * d + 7 * w, with d = ceil( nbits / w )
Manuel Pégourié-Gonnard04a02252013-11-20 22:57:38 +01001353 * (see costs of the various parts, with 1S = 1M)
1354 */
1355 w = grp->nbits >= 384 ? 5 : 4;
Manuel Pégourié-Gonnardd1c1ba92013-11-16 15:50:12 +01001356
Manuel Pégourié-Gonnard04a02252013-11-20 22:57:38 +01001357 /*
1358 * If P == G, pre-compute a bit more, since this may be re-used later.
Manuel Pégourié-Gonnard9e4191c2013-12-30 18:41:16 +01001359 * Just adding one avoids upping the cost of the first mul too much,
1360 * and the memory cost too.
Manuel Pégourié-Gonnard04a02252013-11-20 22:57:38 +01001361 */
Manuel Pégourié-Gonnard9e4191c2013-12-30 18:41:16 +01001362#if POLARSSL_ECP_FIXED_POINT_OPTIM == 1
Manuel Pégourié-Gonnarda0179b82013-12-04 11:49:20 +01001363 p_eq_g = ( mpi_cmp_mpi( &P->Y, &grp->G.Y ) == 0 &&
1364 mpi_cmp_mpi( &P->X, &grp->G.X ) == 0 );
Manuel Pégourié-Gonnard04a02252013-11-20 22:57:38 +01001365 if( p_eq_g )
1366 w++;
Manuel Pégourié-Gonnard9e4191c2013-12-30 18:41:16 +01001367#else
1368 p_eq_g = 0;
1369#endif
Manuel Pégourié-Gonnard04a02252013-11-20 22:57:38 +01001370
1371 /*
Manuel Pégourié-Gonnard36daa132013-11-21 18:33:36 +01001372 * Make sure w is within bounds.
Manuel Pégourié-Gonnard04a02252013-11-20 22:57:38 +01001373 * (The last test is useful only for very small curves in the test suite.)
1374 */
1375 if( w > POLARSSL_ECP_WINDOW_SIZE )
1376 w = POLARSSL_ECP_WINDOW_SIZE;
Manuel Pégourié-Gonnard36daa132013-11-21 18:33:36 +01001377 if( w >= grp->nbits )
Manuel Pégourié-Gonnard04a02252013-11-20 22:57:38 +01001378 w = 2;
1379
1380 /* Other sizes that depend on w */
Manuel Pégourié-Gonnardc30200e2013-11-20 18:39:55 +01001381 pre_len = 1U << ( w - 1 );
Manuel Pégourié-Gonnardd1c1ba92013-11-16 15:50:12 +01001382 d = ( grp->nbits + w - 1 ) / w;
1383
1384 /*
1385 * Prepare precomputed points: if P == G we want to
Manuel Pégourié-Gonnardedc1a1f2013-11-21 09:50:00 +01001386 * use grp->T if already initialized, or initialize it.
Manuel Pégourié-Gonnardd1c1ba92013-11-16 15:50:12 +01001387 */
Manuel Pégourié-Gonnardaade42f2013-11-21 19:19:54 +01001388 T = p_eq_g ? grp->T : NULL;
Manuel Pégourié-Gonnardedc1a1f2013-11-21 09:50:00 +01001389
1390 if( T == NULL )
Manuel Pégourié-Gonnardd1c1ba92013-11-16 15:50:12 +01001391 {
1392 T = (ecp_point *) polarssl_malloc( pre_len * sizeof( ecp_point ) );
1393 if( T == NULL )
1394 {
1395 ret = POLARSSL_ERR_ECP_MALLOC_FAILED;
1396 goto cleanup;
1397 }
1398
1399 for( i = 0; i < pre_len; i++ )
1400 ecp_point_init( &T[i] );
1401
1402 MPI_CHK( ecp_precompute_comb( grp, T, P, w, d ) );
1403
1404 if( p_eq_g )
1405 {
1406 grp->T = T;
1407 grp->T_size = pre_len;
1408 }
1409 }
Manuel Pégourié-Gonnardd1c1ba92013-11-16 15:50:12 +01001410
1411 /*
Manuel Pégourié-Gonnardaade42f2013-11-21 19:19:54 +01001412 * Make sure M is odd (M = m or M = N - m, since N is odd)
1413 * using the fact that m * P = - (N - m) * P
Manuel Pégourié-Gonnardd1c1ba92013-11-16 15:50:12 +01001414 */
1415 m_is_odd = ( mpi_get_bit( m, 0 ) == 1 );
Manuel Pégourié-Gonnardd1c1ba92013-11-16 15:50:12 +01001416 MPI_CHK( mpi_copy( &M, m ) );
Manuel Pégourié-Gonnardaade42f2013-11-21 19:19:54 +01001417 MPI_CHK( mpi_sub_mpi( &mm, &grp->N, m ) );
1418 MPI_CHK( mpi_safe_cond_assign( &M, &mm, ! m_is_odd ) );
Manuel Pégourié-Gonnardd1c1ba92013-11-16 15:50:12 +01001419
1420 /*
Manuel Pégourié-Gonnardaade42f2013-11-21 19:19:54 +01001421 * Go for comb multiplication, R = M * P
Manuel Pégourié-Gonnardd1c1ba92013-11-16 15:50:12 +01001422 */
1423 ecp_comb_fixed( k, d, w, &M );
Manuel Pégourié-Gonnardd7283502013-11-21 20:00:38 +01001424 MPI_CHK( ecp_mul_comb_core( grp, R, T, pre_len, k, d, f_rng, p_rng ) );
Manuel Pégourié-Gonnardd1c1ba92013-11-16 15:50:12 +01001425
1426 /*
Manuel Pégourié-Gonnardaade42f2013-11-21 19:19:54 +01001427 * Now get m * P from M * P and normalize it
Manuel Pégourié-Gonnardd1c1ba92013-11-16 15:50:12 +01001428 */
Manuel Pégourié-Gonnard3c0b4ea2013-12-02 19:44:41 +01001429 MPI_CHK( ecp_safe_invert_jac( grp, R, ! m_is_odd ) );
1430 MPI_CHK( ecp_normalize_jac( grp, R ) );
Manuel Pégourié-Gonnardd1c1ba92013-11-16 15:50:12 +01001431
1432cleanup:
1433
1434 if( T != NULL && ! p_eq_g )
1435 {
1436 for( i = 0; i < pre_len; i++ )
1437 ecp_point_free( &T[i] );
1438 polarssl_free( T );
1439 }
1440
Manuel Pégourié-Gonnardd1c1ba92013-11-16 15:50:12 +01001441 mpi_free( &M );
Manuel Pégourié-Gonnardaade42f2013-11-21 19:19:54 +01001442 mpi_free( &mm );
1443
1444 if( ret != 0 )
1445 ecp_point_free( R );
Manuel Pégourié-Gonnardd1c1ba92013-11-16 15:50:12 +01001446
1447 return( ret );
1448}
1449
Manuel Pégourié-Gonnard7c94d8b2013-12-04 23:15:46 +01001450#endif /* POLARSSL_ECP_SHORT_WEIERSTRASS */
1451
1452#if defined(POLARSSL_ECP_MONTGOMERY)
1453/*
1454 * For Montgomery curves, we do all the internal arithmetic in projective
1455 * coordinates. Import/export of points uses only the x coordinates, which is
1456 * internaly represented as X / Z.
1457 *
1458 * For scalar multiplication, we'll use a Montgomery ladder.
1459 */
1460
Manuel Pégourié-Gonnardd1c1ba92013-11-16 15:50:12 +01001461/*
Manuel Pégourié-Gonnardd9ea82e72013-12-03 12:02:28 +01001462 * Normalize Montgomery x/z coordinates: X = X/Z, Z = 1
1463 * Cost: 1M + 1I
1464 */
1465static int ecp_normalize_mxz( const ecp_group *grp, ecp_point *P )
1466{
1467 int ret;
1468
1469 MPI_CHK( mpi_inv_mod( &P->Z, &P->Z, &grp->P ) );
1470 MPI_CHK( mpi_mul_mpi( &P->X, &P->X, &P->Z ) ); MOD_MUL( P->X );
1471 MPI_CHK( mpi_lset( &P->Z, 1 ) );
1472
1473cleanup:
1474 return( ret );
1475}
1476
1477/*
Manuel Pégourié-Gonnard3afa07f2013-12-03 13:28:21 +01001478 * Randomize projective x/z coordinates:
1479 * (X, Z) -> (l X, l Z) for random l
1480 * This is sort of the reverse operation of ecp_normalize_mxz().
1481 *
1482 * This countermeasure was first suggested in [2].
1483 * Cost: 2M
1484 */
1485static int ecp_randomize_mxz( const ecp_group *grp, ecp_point *P,
1486 int (*f_rng)(void *, unsigned char *, size_t), void *p_rng )
1487{
1488 int ret;
1489 mpi l;
1490 size_t p_size = (grp->pbits + 7) / 8;
1491 int count = 0;
1492
1493 mpi_init( &l );
1494
1495 /* Generate l such that 1 < l < p */
1496 do
1497 {
1498 mpi_fill_random( &l, p_size, f_rng, p_rng );
1499
1500 while( mpi_cmp_mpi( &l, &grp->P ) >= 0 )
1501 mpi_shift_r( &l, 1 );
1502
1503 if( count++ > 10 )
1504 return( POLARSSL_ERR_ECP_RANDOM_FAILED );
1505 }
1506 while( mpi_cmp_int( &l, 1 ) <= 0 );
1507
1508 MPI_CHK( mpi_mul_mpi( &P->X, &P->X, &l ) ); MOD_MUL( P->X );
1509 MPI_CHK( mpi_mul_mpi( &P->Z, &P->Z, &l ) ); MOD_MUL( P->Z );
1510
1511cleanup:
1512 mpi_free( &l );
1513
1514 return( ret );
1515}
1516
1517/*
Manuel Pégourié-Gonnardd9ea82e72013-12-03 12:02:28 +01001518 * Double-and-add: R = 2P, S = P + Q, with d = X(P - Q),
1519 * for Montgomery curves in x/z coordinates.
1520 *
1521 * http://www.hyperelliptic.org/EFD/g1p/auto-code/montgom/xz/ladder/mladd-1987-m.op3
1522 * with
1523 * d = X1
1524 * P = (X2, Z2)
1525 * Q = (X3, Z3)
1526 * R = (X4, Z4)
1527 * S = (X5, Z5)
1528 * and eliminating temporary variables tO, ..., t4.
1529 *
1530 * Cost: 5M + 4S
1531 */
1532static int ecp_double_add_mxz( const ecp_group *grp,
1533 ecp_point *R, ecp_point *S,
1534 const ecp_point *P, const ecp_point *Q,
1535 const mpi *d )
1536{
1537 int ret;
1538 mpi A, AA, B, BB, E, C, D, DA, CB;
1539
1540 mpi_init( &A ); mpi_init( &AA ); mpi_init( &B );
1541 mpi_init( &BB ); mpi_init( &E ); mpi_init( &C );
1542 mpi_init( &D ); mpi_init( &DA ); mpi_init( &CB );
1543
1544 MPI_CHK( mpi_add_mpi( &A, &P->X, &P->Z ) ); MOD_ADD( A );
1545 MPI_CHK( mpi_mul_mpi( &AA, &A, &A ) ); MOD_MUL( AA );
1546 MPI_CHK( mpi_sub_mpi( &B, &P->X, &P->Z ) ); MOD_SUB( B );
1547 MPI_CHK( mpi_mul_mpi( &BB, &B, &B ) ); MOD_MUL( BB );
1548 MPI_CHK( mpi_sub_mpi( &E, &AA, &BB ) ); MOD_SUB( E );
1549 MPI_CHK( mpi_add_mpi( &C, &Q->X, &Q->Z ) ); MOD_ADD( C );
1550 MPI_CHK( mpi_sub_mpi( &D, &Q->X, &Q->Z ) ); MOD_SUB( D );
1551 MPI_CHK( mpi_mul_mpi( &DA, &D, &A ) ); MOD_MUL( DA );
1552 MPI_CHK( mpi_mul_mpi( &CB, &C, &B ) ); MOD_MUL( CB );
1553 MPI_CHK( mpi_add_mpi( &S->X, &DA, &CB ) ); MOD_MUL( S->X );
1554 MPI_CHK( mpi_mul_mpi( &S->X, &S->X, &S->X ) ); MOD_MUL( S->X );
1555 MPI_CHK( mpi_sub_mpi( &S->Z, &DA, &CB ) ); MOD_SUB( S->Z );
1556 MPI_CHK( mpi_mul_mpi( &S->Z, &S->Z, &S->Z ) ); MOD_MUL( S->Z );
1557 MPI_CHK( mpi_mul_mpi( &S->Z, d, &S->Z ) ); MOD_MUL( S->Z );
1558 MPI_CHK( mpi_mul_mpi( &R->X, &AA, &BB ) ); MOD_MUL( R->X );
1559 MPI_CHK( mpi_mul_mpi( &R->Z, &grp->A, &E ) ); MOD_MUL( R->Z );
1560 MPI_CHK( mpi_add_mpi( &R->Z, &BB, &R->Z ) ); MOD_ADD( R->Z );
1561 MPI_CHK( mpi_mul_mpi( &R->Z, &E, &R->Z ) ); MOD_MUL( R->Z );
1562
1563cleanup:
1564 mpi_free( &A ); mpi_free( &AA ); mpi_free( &B );
1565 mpi_free( &BB ); mpi_free( &E ); mpi_free( &C );
1566 mpi_free( &D ); mpi_free( &DA ); mpi_free( &CB );
1567
1568 return( ret );
1569}
1570
1571/*
Manuel Pégourié-Gonnarda0179b82013-12-04 11:49:20 +01001572 * Multiplication with Montgomery ladder in x/z coordinates,
1573 * for curves in Montgomery form
Manuel Pégourié-Gonnardd9ea82e72013-12-03 12:02:28 +01001574 */
Manuel Pégourié-Gonnarda0179b82013-12-04 11:49:20 +01001575static int ecp_mul_mxz( ecp_group *grp, ecp_point *R,
1576 const mpi *m, const ecp_point *P,
1577 int (*f_rng)(void *, unsigned char *, size_t),
1578 void *p_rng )
Manuel Pégourié-Gonnardd9ea82e72013-12-03 12:02:28 +01001579{
1580 int ret;
1581 size_t i;
Manuel Pégourié-Gonnardb6f45a62013-12-04 21:54:36 +01001582 unsigned char b;
Manuel Pégourié-Gonnardd9ea82e72013-12-03 12:02:28 +01001583 ecp_point RP;
1584 mpi PX;
1585
1586 ecp_point_init( &RP ); mpi_init( &PX );
1587
Manuel Pégourié-Gonnard3afa07f2013-12-03 13:28:21 +01001588 /* Save PX and read from P before writing to R, in case P == R */
Manuel Pégourié-Gonnardd9ea82e72013-12-03 12:02:28 +01001589 mpi_copy( &PX, &P->X );
1590 MPI_CHK( ecp_copy( &RP, P ) );
Manuel Pégourié-Gonnard357ff652013-12-04 18:39:17 +01001591
1592 /* Set R to zero in modified x/z coordinates */
1593 MPI_CHK( mpi_lset( &R->X, 1 ) );
1594 MPI_CHK( mpi_lset( &R->Z, 0 ) );
1595 mpi_free( &R->Y );
Manuel Pégourié-Gonnardd9ea82e72013-12-03 12:02:28 +01001596
Manuel Pégourié-Gonnard93f41db2013-12-05 10:48:42 +01001597 /* RP.X might be sligtly larger than P, so reduce it */
1598 MOD_ADD( RP.X );
1599
Manuel Pégourié-Gonnard3afa07f2013-12-03 13:28:21 +01001600 /* Randomize coordinates of the starting point */
Manuel Pégourié-Gonnard357ff652013-12-04 18:39:17 +01001601 if( f_rng != NULL )
1602 MPI_CHK( ecp_randomize_mxz( grp, &RP, f_rng, p_rng ) );
Manuel Pégourié-Gonnardd9ea82e72013-12-03 12:02:28 +01001603
Manuel Pégourié-Gonnardb6f45a62013-12-04 21:54:36 +01001604 /* Loop invariant: R = result so far, RP = R + P */
Manuel Pégourié-Gonnard357ff652013-12-04 18:39:17 +01001605 i = mpi_msb( m ); /* one past the (zero-based) most significant bit */
Manuel Pégourié-Gonnardd9ea82e72013-12-03 12:02:28 +01001606 while( i-- > 0 )
1607 {
Manuel Pégourié-Gonnardb6f45a62013-12-04 21:54:36 +01001608 b = mpi_get_bit( m, i );
1609 /*
1610 * if (b) R = 2R + P else R = 2R,
1611 * which is:
1612 * if (b) double_add( RP, R, RP, R )
1613 * else double_add( R, RP, R, RP )
1614 * but using safe conditional swaps to avoid leaks
1615 */
1616 MPI_CHK( mpi_safe_cond_swap( &R->X, &RP.X, b ) );
1617 MPI_CHK( mpi_safe_cond_swap( &R->Z, &RP.Z, b ) );
1618 MPI_CHK( ecp_double_add_mxz( grp, R, &RP, R, &RP, &PX ) );
1619 MPI_CHK( mpi_safe_cond_swap( &R->X, &RP.X, b ) );
1620 MPI_CHK( mpi_safe_cond_swap( &R->Z, &RP.Z, b ) );
Manuel Pégourié-Gonnardd9ea82e72013-12-03 12:02:28 +01001621 }
1622
1623 MPI_CHK( ecp_normalize_mxz( grp, R ) );
1624
1625cleanup:
1626 ecp_point_free( &RP ); mpi_free( &PX );
1627
1628 return( ret );
1629}
1630
Manuel Pégourié-Gonnard7c94d8b2013-12-04 23:15:46 +01001631#endif /* POLARSSL_ECP_MONTGOMERY */
1632
Manuel Pégourié-Gonnardd9ea82e72013-12-03 12:02:28 +01001633/*
Manuel Pégourié-Gonnarda0179b82013-12-04 11:49:20 +01001634 * Multiplication R = m * P
1635 */
1636int ecp_mul( ecp_group *grp, ecp_point *R,
1637 const mpi *m, const ecp_point *P,
1638 int (*f_rng)(void *, unsigned char *, size_t), void *p_rng )
1639{
1640 int ret;
1641
1642 /* Common sanity checks */
1643 if( mpi_cmp_int( &P->Z, 1 ) != 0 )
1644 return( POLARSSL_ERR_ECP_BAD_INPUT_DATA );
1645
1646 if( ( ret = ecp_check_privkey( grp, m ) ) != 0 ||
1647 ( ret = ecp_check_pubkey( grp, P ) ) != 0 )
1648 return( ret );
1649
Manuel Pégourié-Gonnard7c94d8b2013-12-04 23:15:46 +01001650#if defined(POLARSSL_ECP_MONTGOMERY)
1651 if( ecp_get_type( grp ) == POLARSSL_ECP_TYPE_MONTGOMERY )
Manuel Pégourié-Gonnarda0179b82013-12-04 11:49:20 +01001652 return( ecp_mul_mxz( grp, R, m, P, f_rng, p_rng ) );
Manuel Pégourié-Gonnard7c94d8b2013-12-04 23:15:46 +01001653#endif
1654#if defined(POLARSSL_ECP_SHORT_WEIERSTRASS)
1655 if( ecp_get_type( grp ) == POLARSSL_ECP_TYPE_SHORT_WEIERSTRASS )
Manuel Pégourié-Gonnarda0179b82013-12-04 11:49:20 +01001656 return( ecp_mul_comb( grp, R, m, P, f_rng, p_rng ) );
Manuel Pégourié-Gonnard7c94d8b2013-12-04 23:15:46 +01001657#endif
1658 return( POLARSSL_ERR_ECP_BAD_INPUT_DATA );
Manuel Pégourié-Gonnarda0179b82013-12-04 11:49:20 +01001659}
1660
Manuel Pégourié-Gonnardd9622732013-12-05 10:06:06 +01001661#if defined(POLARSSL_ECP_SHORT_WEIERSTRASS)
Manuel Pégourié-Gonnarda0179b82013-12-04 11:49:20 +01001662/*
Manuel Pégourié-Gonnardd9622732013-12-05 10:06:06 +01001663 * Check that an affine point is valid as a public key,
1664 * short weierstrass curves (SEC1 3.2.3.1)
Manuel Pégourié-Gonnardc8dc2952013-07-01 14:06:13 +02001665 */
Manuel Pégourié-Gonnardd9622732013-12-05 10:06:06 +01001666static int ecp_check_pubkey_sw( const ecp_group *grp, const ecp_point *pt )
Manuel Pégourié-Gonnardc8dc2952013-07-01 14:06:13 +02001667{
1668 int ret;
1669 mpi YY, RHS;
1670
Manuel Pégourié-Gonnard312d2e82013-12-04 11:08:01 +01001671 /* pt coordinates must be normalized for our checks */
Manuel Pégourié-Gonnardc8dc2952013-07-01 14:06:13 +02001672 if( mpi_cmp_int( &pt->X, 0 ) < 0 ||
1673 mpi_cmp_int( &pt->Y, 0 ) < 0 ||
1674 mpi_cmp_mpi( &pt->X, &grp->P ) >= 0 ||
1675 mpi_cmp_mpi( &pt->Y, &grp->P ) >= 0 )
Manuel Pégourié-Gonnard456d3b92013-09-16 18:04:38 +02001676 return( POLARSSL_ERR_ECP_INVALID_KEY );
Manuel Pégourié-Gonnardc8dc2952013-07-01 14:06:13 +02001677
1678 mpi_init( &YY ); mpi_init( &RHS );
1679
1680 /*
1681 * YY = Y^2
Manuel Pégourié-Gonnardcd7458a2013-10-08 13:11:30 +02001682 * RHS = X (X^2 + A) + B = X^3 + A X + B
Manuel Pégourié-Gonnardc8dc2952013-07-01 14:06:13 +02001683 */
Manuel Pégourié-Gonnardcd7458a2013-10-08 13:11:30 +02001684 MPI_CHK( mpi_mul_mpi( &YY, &pt->Y, &pt->Y ) ); MOD_MUL( YY );
1685 MPI_CHK( mpi_mul_mpi( &RHS, &pt->X, &pt->X ) ); MOD_MUL( RHS );
Manuel Pégourié-Gonnard73cc01d2013-12-06 12:41:30 +01001686
1687 /* Special case for A = -3 */
1688 if( grp->A.p == NULL )
1689 {
1690 MPI_CHK( mpi_sub_int( &RHS, &RHS, 3 ) ); MOD_SUB( RHS );
1691 }
1692 else
1693 {
1694 MPI_CHK( mpi_add_mpi( &RHS, &RHS, &grp->A ) ); MOD_ADD( RHS );
1695 }
1696
Manuel Pégourié-Gonnardcd7458a2013-10-08 13:11:30 +02001697 MPI_CHK( mpi_mul_mpi( &RHS, &RHS, &pt->X ) ); MOD_MUL( RHS );
1698 MPI_CHK( mpi_add_mpi( &RHS, &RHS, &grp->B ) ); MOD_ADD( RHS );
Manuel Pégourié-Gonnardc8dc2952013-07-01 14:06:13 +02001699
1700 if( mpi_cmp_mpi( &YY, &RHS ) != 0 )
Manuel Pégourié-Gonnard456d3b92013-09-16 18:04:38 +02001701 ret = POLARSSL_ERR_ECP_INVALID_KEY;
Manuel Pégourié-Gonnardc8dc2952013-07-01 14:06:13 +02001702
1703cleanup:
1704
1705 mpi_free( &YY ); mpi_free( &RHS );
1706
1707 return( ret );
1708}
Manuel Pégourié-Gonnardd9622732013-12-05 10:06:06 +01001709#endif /* POLARSSL_ECP_SHORT_WEIERSTRASS */
1710
1711
1712#if defined(POLARSSL_ECP_MONTGOMERY)
1713/*
1714 * Check validity of a public key for Montgomery curves with x-only schemes
1715 */
1716static int ecp_check_pubkey_mx( const ecp_group *grp, const ecp_point *pt )
1717{
1718 /* [M255 p. 5] Just check X is the correct number of bytes */
1719 if( mpi_size( &pt->X ) > ( grp->nbits + 7 ) / 8 )
1720 return( POLARSSL_ERR_ECP_INVALID_KEY );
1721
1722 return( 0 );
1723}
1724#endif /* POLARSSL_ECP_MONTGOMERY */
1725
1726/*
1727 * Check that a point is valid as a public key
1728 */
1729int ecp_check_pubkey( const ecp_group *grp, const ecp_point *pt )
1730{
1731 /* Must use affine coordinates */
1732 if( mpi_cmp_int( &pt->Z, 1 ) != 0 )
1733 return( POLARSSL_ERR_ECP_INVALID_KEY );
1734
1735#if defined(POLARSSL_ECP_MONTGOMERY)
1736 if( ecp_get_type( grp ) == POLARSSL_ECP_TYPE_MONTGOMERY )
1737 return( ecp_check_pubkey_mx( grp, pt ) );
1738#endif
1739#if defined(POLARSSL_ECP_SHORT_WEIERSTRASS)
1740 if( ecp_get_type( grp ) == POLARSSL_ECP_TYPE_SHORT_WEIERSTRASS )
1741 return( ecp_check_pubkey_sw( grp, pt ) );
1742#endif
1743 return( POLARSSL_ERR_ECP_BAD_INPUT_DATA );
1744}
Manuel Pégourié-Gonnardc8dc2952013-07-01 14:06:13 +02001745
1746/*
Manuel Pégourié-Gonnard312d2e82013-12-04 11:08:01 +01001747 * Check that an mpi is valid as a private key
Manuel Pégourié-Gonnardc8dc2952013-07-01 14:06:13 +02001748 */
Manuel Pégourié-Gonnardde44a4a2013-07-09 16:05:52 +02001749int ecp_check_privkey( const ecp_group *grp, const mpi *d )
Manuel Pégourié-Gonnardc8dc2952013-07-01 14:06:13 +02001750{
Manuel Pégourié-Gonnardd9622732013-12-05 10:06:06 +01001751#if defined(POLARSSL_ECP_MONTGOMERY)
Manuel Pégourié-Gonnard7c94d8b2013-12-04 23:15:46 +01001752 if( ecp_get_type( grp ) == POLARSSL_ECP_TYPE_MONTGOMERY )
Manuel Pégourié-Gonnard312d2e82013-12-04 11:08:01 +01001753 {
Manuel Pégourié-Gonnardfe0af402013-12-04 18:14:55 +01001754 /* see [M255] page 5 */
Manuel Pégourié-Gonnard312d2e82013-12-04 11:08:01 +01001755 if( mpi_get_bit( d, 0 ) != 0 ||
1756 mpi_get_bit( d, 1 ) != 0 ||
1757 mpi_get_bit( d, 2 ) != 0 ||
1758 mpi_msb( d ) - 1 != grp->nbits ) /* mpi_msb is one-based! */
1759 return( POLARSSL_ERR_ECP_INVALID_KEY );
Manuel Pégourié-Gonnardd9622732013-12-05 10:06:06 +01001760 else
1761 return( 0 );
Manuel Pégourié-Gonnard312d2e82013-12-04 11:08:01 +01001762 }
Manuel Pégourié-Gonnardd9622732013-12-05 10:06:06 +01001763#endif
1764#if defined(POLARSSL_ECP_SHORT_WEIERSTRASS)
1765 if( ecp_get_type( grp ) == POLARSSL_ECP_TYPE_SHORT_WEIERSTRASS )
Manuel Pégourié-Gonnard312d2e82013-12-04 11:08:01 +01001766 {
1767 /* see SEC1 3.2 */
1768 if( mpi_cmp_int( d, 1 ) < 0 ||
1769 mpi_cmp_mpi( d, &grp->N ) >= 0 )
1770 return( POLARSSL_ERR_ECP_INVALID_KEY );
Manuel Pégourié-Gonnardd9622732013-12-05 10:06:06 +01001771 else
1772 return( 0 );
Manuel Pégourié-Gonnard312d2e82013-12-04 11:08:01 +01001773 }
Manuel Pégourié-Gonnardd9622732013-12-05 10:06:06 +01001774#endif
Manuel Pégourié-Gonnardc8dc2952013-07-01 14:06:13 +02001775
Manuel Pégourié-Gonnardd9622732013-12-05 10:06:06 +01001776 return( POLARSSL_ERR_ECP_BAD_INPUT_DATA );
Manuel Pégourié-Gonnardc8dc2952013-07-01 14:06:13 +02001777}
1778
1779/*
Manuel Pégourié-Gonnardfe0af402013-12-04 18:14:55 +01001780 * Generate a keypair
Manuel Pégourié-Gonnard45a035a2013-01-26 14:42:45 +01001781 */
Manuel Pégourié-Gonnard161ef962013-09-17 19:13:10 +02001782int ecp_gen_keypair( ecp_group *grp, mpi *d, ecp_point *Q,
Manuel Pégourié-Gonnard45a035a2013-01-26 14:42:45 +01001783 int (*f_rng)(void *, unsigned char *, size_t),
1784 void *p_rng )
1785{
Manuel Pégourié-Gonnardc9573992014-01-03 12:54:00 +01001786 int ret;
Manuel Pégourié-Gonnard45a035a2013-01-26 14:42:45 +01001787 size_t n_size = (grp->nbits + 7) / 8;
1788
Manuel Pégourié-Gonnardd9622732013-12-05 10:06:06 +01001789#if defined(POLARSSL_ECP_MONTGOMERY)
Manuel Pégourié-Gonnard7c94d8b2013-12-04 23:15:46 +01001790 if( ecp_get_type( grp ) == POLARSSL_ECP_TYPE_MONTGOMERY )
Manuel Pégourié-Gonnard45a035a2013-01-26 14:42:45 +01001791 {
Manuel Pégourié-Gonnardfe0af402013-12-04 18:14:55 +01001792 /* [M225] page 5 */
1793 size_t b;
1794
Manuel Pégourié-Gonnardc9573992014-01-03 12:54:00 +01001795 MPI_CHK( mpi_fill_random( d, n_size, f_rng, p_rng ) );
Manuel Pégourié-Gonnard45a035a2013-01-26 14:42:45 +01001796
Manuel Pégourié-Gonnardfe0af402013-12-04 18:14:55 +01001797 /* Make sure the most significant bit is nbits */
1798 b = mpi_msb( d ) - 1; /* mpi_msb is one-based */
1799 if( b > grp->nbits )
Manuel Pégourié-Gonnardc9573992014-01-03 12:54:00 +01001800 MPI_CHK( mpi_shift_r( d, b - grp->nbits ) );
Manuel Pégourié-Gonnardfe0af402013-12-04 18:14:55 +01001801 else
Manuel Pégourié-Gonnardc9573992014-01-03 12:54:00 +01001802 MPI_CHK( mpi_set_bit( d, grp->nbits, 1 ) );
Manuel Pégourié-Gonnard45a035a2013-01-26 14:42:45 +01001803
Manuel Pégourié-Gonnardfe0af402013-12-04 18:14:55 +01001804 /* Make sure the last three bits are unset */
Manuel Pégourié-Gonnardc9573992014-01-03 12:54:00 +01001805 MPI_CHK( mpi_set_bit( d, 0, 0 ) );
1806 MPI_CHK( mpi_set_bit( d, 1, 0 ) );
1807 MPI_CHK( mpi_set_bit( d, 2, 0 ) );
Manuel Pégourié-Gonnard45a035a2013-01-26 14:42:45 +01001808 }
Manuel Pégourié-Gonnardfe0af402013-12-04 18:14:55 +01001809 else
Manuel Pégourié-Gonnardd9622732013-12-05 10:06:06 +01001810#endif
1811#if defined(POLARSSL_ECP_SHORT_WEIERSTRASS)
1812 if( ecp_get_type( grp ) == POLARSSL_ECP_TYPE_SHORT_WEIERSTRASS )
Manuel Pégourié-Gonnardfe0af402013-12-04 18:14:55 +01001813 {
1814 /* SEC1 3.2.1: Generate d such that 1 <= n < N */
Manuel Pégourié-Gonnardd9622732013-12-05 10:06:06 +01001815 int count = 0;
Manuel Pégourié-Gonnard79f73b92014-01-03 12:35:05 +01001816 unsigned char rnd[POLARSSL_ECP_MAX_BYTES];
1817
1818 /*
1819 * Match the procedure given in RFC 6979 (deterministic ECDSA):
1820 * - use the same byte ordering;
1821 * - keep the leftmost nbits bits of the generated octet string;
1822 * - try until result is in the desired range.
1823 * This also avoids any biais, which is especially important for ECDSA.
1824 */
Manuel Pégourié-Gonnardfe0af402013-12-04 18:14:55 +01001825 do
1826 {
Manuel Pégourié-Gonnardc9573992014-01-03 12:54:00 +01001827 MPI_CHK( f_rng( p_rng, rnd, n_size ) );
1828 MPI_CHK( mpi_read_binary( d, rnd, n_size ) );
1829 MPI_CHK( mpi_shift_r( d, 8 * n_size - grp->nbits ) );
Manuel Pégourié-Gonnardfe0af402013-12-04 18:14:55 +01001830
Manuel Pégourié-Gonnard6e8e34d2014-01-28 19:30:56 +01001831 /*
1832 * Each try has at worst a probability 1/2 of failing (the msb has
1833 * a probability 1/2 of being 0, and then the result will be < N),
1834 * so after 30 tries failure probability is a most 2**(-30).
1835 *
1836 * For most curves, 1 try is enough with overwhelming probability,
1837 * since N starts with a lot of 1s in binary, but some curves
1838 * such as secp224k1 are actually very close to the worst case.
1839 */
1840 if( ++count > 30 )
Manuel Pégourié-Gonnardfe0af402013-12-04 18:14:55 +01001841 return( POLARSSL_ERR_ECP_RANDOM_FAILED );
1842 }
Manuel Pégourié-Gonnard79f73b92014-01-03 12:35:05 +01001843 while( mpi_cmp_int( d, 1 ) < 0 ||
1844 mpi_cmp_mpi( d, &grp->N ) >= 0 );
Manuel Pégourié-Gonnardfe0af402013-12-04 18:14:55 +01001845 }
Manuel Pégourié-Gonnardd9622732013-12-05 10:06:06 +01001846 else
1847#endif
1848 return( POLARSSL_ERR_ECP_BAD_INPUT_DATA );
Manuel Pégourié-Gonnard45a035a2013-01-26 14:42:45 +01001849
Manuel Pégourié-Gonnardc9573992014-01-03 12:54:00 +01001850cleanup:
1851 if( ret != 0 )
1852 return( ret );
1853
Manuel Pégourié-Gonnarde09d2f82013-09-02 14:29:09 +02001854 return( ecp_mul( grp, Q, d, &grp->G, f_rng, p_rng ) );
Manuel Pégourié-Gonnard45a035a2013-01-26 14:42:45 +01001855}
Manuel Pégourié-Gonnardefaa31e2012-11-06 21:34:35 +01001856
Manuel Pégourié-Gonnard104ee1d2013-11-30 14:13:16 +01001857/*
1858 * Generate a keypair, prettier wrapper
1859 */
1860int ecp_gen_key( ecp_group_id grp_id, ecp_keypair *key,
1861 int (*f_rng)(void *, unsigned char *, size_t), void *p_rng )
1862{
1863 int ret;
1864
1865 if( ( ret = ecp_use_known_dp( &key->grp, grp_id ) ) != 0 )
1866 return( ret );
1867
1868 return( ecp_gen_keypair( &key->grp, &key->d, &key->Q, f_rng, p_rng ) );
1869}
1870
Manuel Pégourié-Gonnard39d2adb2012-10-31 09:26:55 +01001871#if defined(POLARSSL_SELF_TEST)
1872
Manuel Pégourié-Gonnardb505c272012-11-05 17:27:54 +01001873/*
Manuel Pégourié-Gonnard39d2adb2012-10-31 09:26:55 +01001874 * Checkup routine
1875 */
1876int ecp_self_test( int verbose )
1877{
Manuel Pégourié-Gonnardb4a310b2012-11-13 20:57:00 +01001878 int ret;
1879 size_t i;
1880 ecp_group grp;
Manuel Pégourié-Gonnard161ef962013-09-17 19:13:10 +02001881 ecp_point R, P;
Manuel Pégourié-Gonnardb4a310b2012-11-13 20:57:00 +01001882 mpi m;
Manuel Pégourié-Gonnard91814812013-11-21 20:23:55 +01001883 unsigned long add_c_prev, dbl_c_prev, mul_c_prev;
Manuel Pégourié-Gonnardb8012fc2013-10-10 15:40:49 +02001884 /* exponents especially adapted for secp192r1 */
Paul Bakkerb6c5d2e2013-06-25 16:25:17 +02001885 const char *exponents[] =
Manuel Pégourié-Gonnardb4a310b2012-11-13 20:57:00 +01001886 {
Manuel Pégourié-Gonnardb63f9e92012-11-21 13:00:58 +01001887 "000000000000000000000000000000000000000000000001", /* one */
Manuel Pégourié-Gonnardff27b7c2013-11-21 09:28:03 +01001888 "FFFFFFFFFFFFFFFFFFFFFFFF99DEF836146BC9B1B4D22830", /* N - 1 */
Manuel Pégourié-Gonnardb63f9e92012-11-21 13:00:58 +01001889 "5EA6F389A38B8BC81E767753B15AA5569E1782E30ABE7D25", /* random */
Manuel Pégourié-Gonnardff27b7c2013-11-21 09:28:03 +01001890 "400000000000000000000000000000000000000000000000", /* one and zeros */
1891 "7FFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFF", /* all ones */
1892 "555555555555555555555555555555555555555555555555", /* 101010... */
Manuel Pégourié-Gonnardb4a310b2012-11-13 20:57:00 +01001893 };
1894
1895 ecp_group_init( &grp );
1896 ecp_point_init( &R );
Manuel Pégourié-Gonnard161ef962013-09-17 19:13:10 +02001897 ecp_point_init( &P );
Manuel Pégourié-Gonnardb4a310b2012-11-13 20:57:00 +01001898 mpi_init( &m );
1899
Manuel Pégourié-Gonnardb8012fc2013-10-10 15:40:49 +02001900 /* Use secp192r1 if available, or any available curve */
Paul Bakker5dc6b5f2013-06-29 23:26:34 +02001901#if defined(POLARSSL_ECP_DP_SECP192R1_ENABLED)
Manuel Pégourié-Gonnardb4a310b2012-11-13 20:57:00 +01001902 MPI_CHK( ecp_use_known_dp( &grp, POLARSSL_ECP_DP_SECP192R1 ) );
Paul Bakker5dc6b5f2013-06-29 23:26:34 +02001903#else
Manuel Pégourié-Gonnardb8012fc2013-10-10 15:40:49 +02001904 MPI_CHK( ecp_use_known_dp( &grp, ecp_curve_list()->grp_id ) );
1905#endif
Manuel Pégourié-Gonnardb4a310b2012-11-13 20:57:00 +01001906
1907 if( verbose != 0 )
Paul Bakker7dc4c442014-02-01 22:50:26 +01001908 polarssl_printf( " ECP test #1 (constant op_count, base point G): " );
Manuel Pégourié-Gonnard161ef962013-09-17 19:13:10 +02001909
1910 /* Do a dummy multiplication first to trigger precomputation */
1911 MPI_CHK( mpi_lset( &m, 2 ) );
1912 MPI_CHK( ecp_mul( &grp, &P, &m, &grp.G, NULL, NULL ) );
Manuel Pégourié-Gonnardb4a310b2012-11-13 20:57:00 +01001913
1914 add_count = 0;
1915 dbl_count = 0;
Manuel Pégourié-Gonnard91814812013-11-21 20:23:55 +01001916 mul_count = 0;
Manuel Pégourié-Gonnardb4a310b2012-11-13 20:57:00 +01001917 MPI_CHK( mpi_read_string( &m, 16, exponents[0] ) );
Manuel Pégourié-Gonnarde09d2f82013-09-02 14:29:09 +02001918 MPI_CHK( ecp_mul( &grp, &R, &m, &grp.G, NULL, NULL ) );
Manuel Pégourié-Gonnardb4a310b2012-11-13 20:57:00 +01001919
1920 for( i = 1; i < sizeof( exponents ) / sizeof( exponents[0] ); i++ )
1921 {
1922 add_c_prev = add_count;
1923 dbl_c_prev = dbl_count;
Manuel Pégourié-Gonnard91814812013-11-21 20:23:55 +01001924 mul_c_prev = mul_count;
Manuel Pégourié-Gonnardb4a310b2012-11-13 20:57:00 +01001925 add_count = 0;
1926 dbl_count = 0;
Manuel Pégourié-Gonnard91814812013-11-21 20:23:55 +01001927 mul_count = 0;
Manuel Pégourié-Gonnardb4a310b2012-11-13 20:57:00 +01001928
1929 MPI_CHK( mpi_read_string( &m, 16, exponents[i] ) );
Manuel Pégourié-Gonnarde09d2f82013-09-02 14:29:09 +02001930 MPI_CHK( ecp_mul( &grp, &R, &m, &grp.G, NULL, NULL ) );
Manuel Pégourié-Gonnardb4a310b2012-11-13 20:57:00 +01001931
Manuel Pégourié-Gonnard91814812013-11-21 20:23:55 +01001932 if( add_count != add_c_prev ||
1933 dbl_count != dbl_c_prev ||
1934 mul_count != mul_c_prev )
Manuel Pégourié-Gonnardb4a310b2012-11-13 20:57:00 +01001935 {
1936 if( verbose != 0 )
Paul Bakker7dc4c442014-02-01 22:50:26 +01001937 polarssl_printf( "failed (%u)\n", (unsigned int) i );
Manuel Pégourié-Gonnardb4a310b2012-11-13 20:57:00 +01001938
1939 ret = 1;
1940 goto cleanup;
1941 }
1942 }
1943
1944 if( verbose != 0 )
Paul Bakker7dc4c442014-02-01 22:50:26 +01001945 polarssl_printf( "passed\n" );
Manuel Pégourié-Gonnardb4a310b2012-11-13 20:57:00 +01001946
Manuel Pégourié-Gonnard161ef962013-09-17 19:13:10 +02001947 if( verbose != 0 )
Paul Bakker7dc4c442014-02-01 22:50:26 +01001948 polarssl_printf( " ECP test #2 (constant op_count, other point): " );
Manuel Pégourié-Gonnard161ef962013-09-17 19:13:10 +02001949 /* We computed P = 2G last time, use it */
1950
1951 add_count = 0;
1952 dbl_count = 0;
Manuel Pégourié-Gonnard91814812013-11-21 20:23:55 +01001953 mul_count = 0;
Manuel Pégourié-Gonnard161ef962013-09-17 19:13:10 +02001954 MPI_CHK( mpi_read_string( &m, 16, exponents[0] ) );
1955 MPI_CHK( ecp_mul( &grp, &R, &m, &P, NULL, NULL ) );
1956
1957 for( i = 1; i < sizeof( exponents ) / sizeof( exponents[0] ); i++ )
1958 {
1959 add_c_prev = add_count;
1960 dbl_c_prev = dbl_count;
Manuel Pégourié-Gonnard91814812013-11-21 20:23:55 +01001961 mul_c_prev = mul_count;
Manuel Pégourié-Gonnard161ef962013-09-17 19:13:10 +02001962 add_count = 0;
1963 dbl_count = 0;
Manuel Pégourié-Gonnard91814812013-11-21 20:23:55 +01001964 mul_count = 0;
Manuel Pégourié-Gonnard161ef962013-09-17 19:13:10 +02001965
1966 MPI_CHK( mpi_read_string( &m, 16, exponents[i] ) );
1967 MPI_CHK( ecp_mul( &grp, &R, &m, &P, NULL, NULL ) );
1968
Manuel Pégourié-Gonnard91814812013-11-21 20:23:55 +01001969 if( add_count != add_c_prev ||
1970 dbl_count != dbl_c_prev ||
1971 mul_count != mul_c_prev )
Manuel Pégourié-Gonnard161ef962013-09-17 19:13:10 +02001972 {
1973 if( verbose != 0 )
Paul Bakker7dc4c442014-02-01 22:50:26 +01001974 polarssl_printf( "failed (%u)\n", (unsigned int) i );
Manuel Pégourié-Gonnard161ef962013-09-17 19:13:10 +02001975
1976 ret = 1;
1977 goto cleanup;
1978 }
1979 }
1980
1981 if( verbose != 0 )
Paul Bakker7dc4c442014-02-01 22:50:26 +01001982 polarssl_printf( "passed\n" );
Manuel Pégourié-Gonnard161ef962013-09-17 19:13:10 +02001983
Manuel Pégourié-Gonnardb4a310b2012-11-13 20:57:00 +01001984cleanup:
1985
1986 if( ret < 0 && verbose != 0 )
Paul Bakker7dc4c442014-02-01 22:50:26 +01001987 polarssl_printf( "Unexpected error, return code = %08X\n", ret );
Manuel Pégourié-Gonnardb4a310b2012-11-13 20:57:00 +01001988
1989 ecp_group_free( &grp );
1990 ecp_point_free( &R );
Manuel Pégourié-Gonnard161ef962013-09-17 19:13:10 +02001991 ecp_point_free( &P );
Manuel Pégourié-Gonnardb4a310b2012-11-13 20:57:00 +01001992 mpi_free( &m );
1993
1994 if( verbose != 0 )
Paul Bakker7dc4c442014-02-01 22:50:26 +01001995 polarssl_printf( "\n" );
Manuel Pégourié-Gonnardb4a310b2012-11-13 20:57:00 +01001996
1997 return( ret );
Manuel Pégourié-Gonnard39d2adb2012-10-31 09:26:55 +01001998}
1999
2000#endif
2001
2002#endif