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Manuel Pégourié-Gonnard39d2adb2012-10-31 09:26:55 +01001/*
2 * Elliptic curves over GF(p)
3 *
Paul Bakkercf4365f2013-01-16 17:00:43 +01004 * Copyright (C) 2006-2013, 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 *
34 * [1] OKEYA, Katsuyuki and TAKAGI, Tsuyoshi. The width-w NAF method provides
35 * small memory and fast elliptic scalar multiplications secure against
36 * side channel attacks. In : Topics in Cryptology—CT-RSA 2003. Springer
37 * Berlin Heidelberg, 2003. p. 328-343.
38 * <http://rd.springer.com/chapter/10.1007/3-540-36563-X_23>.
39 *
40 * [2] CORON, Jean-Sébastien. Resistance against differential power analysis
41 * for elliptic curve cryptosystems. In : Cryptographic Hardware and
42 * Embedded Systems. Springer Berlin Heidelberg, 1999. p. 292-302.
43 * <http://link.springer.com/chapter/10.1007/3-540-48059-5_25>
Manuel Pégourié-Gonnard39d2adb2012-10-31 09:26:55 +010044 */
45
46#include "polarssl/config.h"
47
48#if defined(POLARSSL_ECP_C)
49
50#include "polarssl/ecp.h"
Paul Bakker6e339b52013-07-03 13:37:05 +020051
52#if defined(POLARSSL_MEMORY_C)
53#include "polarssl/memory.h"
54#else
55#define polarssl_malloc malloc
56#define polarssl_free free
57#endif
58
Manuel Pégourié-Gonnard84338242012-11-11 20:45:18 +010059#include <limits.h>
Manuel Pégourié-Gonnardcdd44322012-11-21 16:00:55 +010060#include <stdlib.h>
Manuel Pégourié-Gonnard39d2adb2012-10-31 09:26:55 +010061
Manuel Pégourié-Gonnardb4a310b2012-11-13 20:57:00 +010062#if defined(POLARSSL_SELF_TEST)
63/*
64 * Counts of point addition and doubling operations.
Manuel Pégourié-Gonnard07de4b12013-09-02 16:26:04 +020065 * Used to test resistance of point multiplication to simple timing attacks.
Manuel Pégourié-Gonnardb4a310b2012-11-13 20:57:00 +010066 */
67unsigned long add_count, dbl_count;
68#endif
69
Manuel Pégourié-Gonnard1e8c8ec2012-10-31 19:24:21 +010070/*
Manuel Pégourié-Gonnard568c9cf2013-09-16 17:30:04 +020071 * List of supported curves:
72 * - internal ID
Manuel Pégourié-Gonnard8195c1a2013-10-07 19:40:41 +020073 * - TLS NamedCurve ID (RFC 4492 sec. 5.1.1, RFC 7071 sec. 2)
Manuel Pégourié-Gonnard568c9cf2013-09-16 17:30:04 +020074 * - size in bits
Manuel Pégourié-Gonnard8195c1a2013-10-07 19:40:41 +020075 * - readable name
Manuel Pégourié-Gonnard568c9cf2013-09-16 17:30:04 +020076 */
Manuel Pégourié-Gonnarda79d1232013-09-17 15:42:35 +020077const ecp_curve_info ecp_supported_curves[] =
Manuel Pégourié-Gonnard568c9cf2013-09-16 17:30:04 +020078{
Manuel Pégourié-Gonnard8195c1a2013-10-07 19:40:41 +020079#if defined(POLARSSL_ECP_DP_BP512R1_ENABLED)
80 { POLARSSL_ECP_DP_BP512R1, 28, 512, "brainpool512r1" },
81#endif
82#if defined(POLARSSL_ECP_DP_BP384R1_ENABLED)
83 { POLARSSL_ECP_DP_BP384R1, 27, 384, "brainpool384r1" },
84#endif
85#if defined(POLARSSL_ECP_DP_BP256R1_ENABLED)
86 { POLARSSL_ECP_DP_BP256R1, 26, 256, "brainpool256r1" },
87#endif
Manuel Pégourié-Gonnard568c9cf2013-09-16 17:30:04 +020088#if defined(POLARSSL_ECP_DP_SECP521R1_ENABLED)
Manuel Pégourié-Gonnard8195c1a2013-10-07 19:40:41 +020089 { POLARSSL_ECP_DP_SECP521R1, 25, 521, "secp521r1" },
Manuel Pégourié-Gonnard568c9cf2013-09-16 17:30:04 +020090#endif
91#if defined(POLARSSL_ECP_DP_SECP384R1_ENABLED)
Manuel Pégourié-Gonnard8195c1a2013-10-07 19:40:41 +020092 { POLARSSL_ECP_DP_SECP384R1, 24, 384, "secp384r1" },
Manuel Pégourié-Gonnard568c9cf2013-09-16 17:30:04 +020093#endif
94#if defined(POLARSSL_ECP_DP_SECP256R1_ENABLED)
Manuel Pégourié-Gonnard8195c1a2013-10-07 19:40:41 +020095 { POLARSSL_ECP_DP_SECP256R1, 23, 256, "secp256r1" },
Manuel Pégourié-Gonnard568c9cf2013-09-16 17:30:04 +020096#endif
97#if defined(POLARSSL_ECP_DP_SECP224R1_ENABLED)
Manuel Pégourié-Gonnard8195c1a2013-10-07 19:40:41 +020098 { POLARSSL_ECP_DP_SECP224R1, 21, 224, "secp224r1" },
Manuel Pégourié-Gonnard568c9cf2013-09-16 17:30:04 +020099#endif
100#if defined(POLARSSL_ECP_DP_SECP192R1_ENABLED)
Manuel Pégourié-Gonnard8195c1a2013-10-07 19:40:41 +0200101 { POLARSSL_ECP_DP_SECP192R1, 19, 192, "secp192r1" },
Manuel Pégourié-Gonnard568c9cf2013-09-16 17:30:04 +0200102#endif
Manuel Pégourié-Gonnard8195c1a2013-10-07 19:40:41 +0200103 { POLARSSL_ECP_DP_NONE, 0, 0, NULL },
Manuel Pégourié-Gonnard568c9cf2013-09-16 17:30:04 +0200104};
105
106/*
Manuel Pégourié-Gonnardda179e42013-09-18 15:31:24 +0200107 * List of supported curves and associated info
108 */
109const ecp_curve_info *ecp_curve_list( void )
110{
111 return ecp_supported_curves;
112}
113
114/*
Manuel Pégourié-Gonnardb505c272012-11-05 17:27:54 +0100115 * Initialize (the components of) a point
Manuel Pégourié-Gonnardae180d02012-11-02 18:14:40 +0100116 */
117void ecp_point_init( ecp_point *pt )
118{
119 if( pt == NULL )
120 return;
121
Manuel Pégourié-Gonnardb505c272012-11-05 17:27:54 +0100122 mpi_init( &pt->X );
123 mpi_init( &pt->Y );
Manuel Pégourié-Gonnard1c2782c2012-11-19 20:16:28 +0100124 mpi_init( &pt->Z );
Manuel Pégourié-Gonnardb505c272012-11-05 17:27:54 +0100125}
126
127/*
128 * Initialize (the components of) a group
129 */
130void ecp_group_init( ecp_group *grp )
131{
132 if( grp == NULL )
133 return;
134
Manuel Pégourié-Gonnardc9727702013-09-16 18:56:28 +0200135 memset( grp, 0, sizeof( ecp_group ) );
Manuel Pégourié-Gonnardae180d02012-11-02 18:14:40 +0100136}
137
138/*
Manuel Pégourié-Gonnardb8c6e0e2013-07-01 13:40:52 +0200139 * Initialize (the components of) a key pair
140 */
141void ecp_keypair_init( ecp_keypair *key )
142{
143 if ( key == NULL )
144 return;
145
146 ecp_group_init( &key->grp );
147 mpi_init( &key->d );
148 ecp_point_init( &key->Q );
Manuel Pégourié-Gonnardb8c6e0e2013-07-01 13:40:52 +0200149}
150
151/*
Manuel Pégourié-Gonnard1e8c8ec2012-10-31 19:24:21 +0100152 * Unallocate (the components of) a point
153 */
154void ecp_point_free( ecp_point *pt )
155{
156 if( pt == NULL )
157 return;
158
159 mpi_free( &( pt->X ) );
160 mpi_free( &( pt->Y ) );
Manuel Pégourié-Gonnard1c2782c2012-11-19 20:16:28 +0100161 mpi_free( &( pt->Z ) );
Manuel Pégourié-Gonnard1e8c8ec2012-10-31 19:24:21 +0100162}
163
164/*
165 * Unallocate (the components of) a group
166 */
167void ecp_group_free( ecp_group *grp )
168{
Manuel Pégourié-Gonnard161ef962013-09-17 19:13:10 +0200169 size_t i;
170
Manuel Pégourié-Gonnard1e8c8ec2012-10-31 19:24:21 +0100171 if( grp == NULL )
172 return;
173
Manuel Pégourié-Gonnard883f3132012-11-02 09:40:25 +0100174 mpi_free( &grp->P );
Manuel Pégourié-Gonnarda070ada2013-10-08 12:04:56 +0200175 mpi_free( &grp->A );
Manuel Pégourié-Gonnard883f3132012-11-02 09:40:25 +0100176 mpi_free( &grp->B );
177 ecp_point_free( &grp->G );
178 mpi_free( &grp->N );
Manuel Pégourié-Gonnardc9727702013-09-16 18:56:28 +0200179
Manuel Pégourié-Gonnard161ef962013-09-17 19:13:10 +0200180 if( grp->T != NULL )
181 {
182 for( i = 0; i < grp->T_size; i++ )
183 ecp_point_free( &grp->T[i] );
184 polarssl_free( grp->T );
185 }
186
Manuel Pégourié-Gonnardc9727702013-09-16 18:56:28 +0200187 memset( grp, 0, sizeof( ecp_group ) );
Manuel Pégourié-Gonnard1e8c8ec2012-10-31 19:24:21 +0100188}
Manuel Pégourié-Gonnard39d2adb2012-10-31 09:26:55 +0100189
Manuel Pégourié-Gonnard883f3132012-11-02 09:40:25 +0100190/*
Manuel Pégourié-Gonnardb8c6e0e2013-07-01 13:40:52 +0200191 * Unallocate (the components of) a key pair
192 */
193void ecp_keypair_free( ecp_keypair *key )
194{
195 if ( key == NULL )
196 return;
197
198 ecp_group_free( &key->grp );
199 mpi_free( &key->d );
200 ecp_point_free( &key->Q );
Manuel Pégourié-Gonnardb8c6e0e2013-07-01 13:40:52 +0200201}
202
203/*
Manuel Pégourié-Gonnardae180d02012-11-02 18:14:40 +0100204 * Set point to zero
205 */
Manuel Pégourié-Gonnard1c2782c2012-11-19 20:16:28 +0100206int ecp_set_zero( ecp_point *pt )
Manuel Pégourié-Gonnardae180d02012-11-02 18:14:40 +0100207{
Manuel Pégourié-Gonnard1c2782c2012-11-19 20:16:28 +0100208 int ret;
209
210 MPI_CHK( mpi_lset( &pt->X , 1 ) );
211 MPI_CHK( mpi_lset( &pt->Y , 1 ) );
212 MPI_CHK( mpi_lset( &pt->Z , 0 ) );
213
214cleanup:
215 return( ret );
Manuel Pégourié-Gonnardae180d02012-11-02 18:14:40 +0100216}
217
218/*
Manuel Pégourié-Gonnard6545ca72013-01-26 16:05:22 +0100219 * Tell if a point is zero
220 */
221int ecp_is_zero( ecp_point *pt )
222{
223 return( mpi_cmp_int( &pt->Z, 0 ) == 0 );
224}
225
226/*
Manuel Pégourié-Gonnard883f3132012-11-02 09:40:25 +0100227 * Copy the contents of Q into P
228 */
229int ecp_copy( ecp_point *P, const ecp_point *Q )
230{
Manuel Pégourié-Gonnard47123252012-11-10 14:44:24 +0100231 int ret;
Manuel Pégourié-Gonnard883f3132012-11-02 09:40:25 +0100232
Manuel Pégourié-Gonnard883f3132012-11-02 09:40:25 +0100233 MPI_CHK( mpi_copy( &P->X, &Q->X ) );
234 MPI_CHK( mpi_copy( &P->Y, &Q->Y ) );
Manuel Pégourié-Gonnard1c2782c2012-11-19 20:16:28 +0100235 MPI_CHK( mpi_copy( &P->Z, &Q->Z ) );
Manuel Pégourié-Gonnard883f3132012-11-02 09:40:25 +0100236
237cleanup:
238 return( ret );
239}
Manuel Pégourié-Gonnard5179e462012-10-31 19:37:54 +0100240
Manuel Pégourié-Gonnardae180d02012-11-02 18:14:40 +0100241/*
Manuel Pégourié-Gonnarde09631b2013-08-12 15:44:31 +0200242 * Copy the contents of a group object
243 */
244int ecp_group_copy( ecp_group *dst, const ecp_group *src )
245{
246 return ecp_use_known_dp( dst, src->id );
247}
248
249/*
Manuel Pégourié-Gonnard847395a2012-11-05 13:13:44 +0100250 * Import a non-zero point from ASCII strings
251 */
252int ecp_point_read_string( ecp_point *P, int radix,
253 const char *x, const char *y )
254{
Manuel Pégourié-Gonnard47123252012-11-10 14:44:24 +0100255 int ret;
Manuel Pégourié-Gonnard847395a2012-11-05 13:13:44 +0100256
Manuel Pégourié-Gonnard847395a2012-11-05 13:13:44 +0100257 MPI_CHK( mpi_read_string( &P->X, radix, x ) );
258 MPI_CHK( mpi_read_string( &P->Y, radix, y ) );
Manuel Pégourié-Gonnard1c2782c2012-11-19 20:16:28 +0100259 MPI_CHK( mpi_lset( &P->Z, 1 ) );
Manuel Pégourié-Gonnard847395a2012-11-05 13:13:44 +0100260
261cleanup:
262 return( ret );
263}
264
265/*
Manuel Pégourié-Gonnarda070ada2013-10-08 12:04:56 +0200266 * Import an ECP group from ASCII strings, general case (A used)
Manuel Pégourié-Gonnard847395a2012-11-05 13:13:44 +0100267 */
Manuel Pégourié-Gonnarda070ada2013-10-08 12:04:56 +0200268static int ecp_group_read_string_gen( ecp_group *grp, int radix,
269 const char *p, const char *a, const char *b,
Manuel Pégourié-Gonnard847395a2012-11-05 13:13:44 +0100270 const char *gx, const char *gy, const char *n)
271{
Manuel Pégourié-Gonnard47123252012-11-10 14:44:24 +0100272 int ret;
Manuel Pégourié-Gonnard847395a2012-11-05 13:13:44 +0100273
274 MPI_CHK( mpi_read_string( &grp->P, radix, p ) );
Manuel Pégourié-Gonnarda070ada2013-10-08 12:04:56 +0200275 MPI_CHK( mpi_read_string( &grp->A, radix, a ) );
Manuel Pégourié-Gonnard847395a2012-11-05 13:13:44 +0100276 MPI_CHK( mpi_read_string( &grp->B, radix, b ) );
277 MPI_CHK( ecp_point_read_string( &grp->G, radix, gx, gy ) );
278 MPI_CHK( mpi_read_string( &grp->N, radix, n ) );
279
Manuel Pégourié-Gonnard773ed542012-11-18 13:19:07 +0100280 grp->pbits = mpi_msb( &grp->P );
281 grp->nbits = mpi_msb( &grp->N );
282
Manuel Pégourié-Gonnard847395a2012-11-05 13:13:44 +0100283cleanup:
Manuel Pégourié-Gonnarda070ada2013-10-08 12:04:56 +0200284 if( ret != 0 )
285 ecp_group_free( grp );
286
287 return( ret );
288}
289
290/*
Manuel Pégourié-Gonnard0cd6f982013-10-10 15:55:39 +0200291 * Import an ECP group from ASCII strings, case A == -3
Manuel Pégourié-Gonnarda070ada2013-10-08 12:04:56 +0200292 */
293int ecp_group_read_string( ecp_group *grp, int radix,
294 const char *p, const char *b,
295 const char *gx, const char *gy, const char *n)
296{
Manuel Pégourié-Gonnard0cd6f982013-10-10 15:55:39 +0200297 int ret;
Manuel Pégourié-Gonnarda070ada2013-10-08 12:04:56 +0200298
Manuel Pégourié-Gonnard0cd6f982013-10-10 15:55:39 +0200299 MPI_CHK( ecp_group_read_string_gen( grp, radix, p, "00", b, gx, gy, n ) );
300 MPI_CHK( mpi_add_int( &grp->A, &grp->P, -3 ) );
301
302cleanup:
303 if( ret != 0 )
304 ecp_group_free( grp );
Manuel Pégourié-Gonnarda070ada2013-10-08 12:04:56 +0200305
Manuel Pégourié-Gonnard847395a2012-11-05 13:13:44 +0100306 return( ret );
307}
308
Manuel Pégourié-Gonnarda5402fe2012-11-07 20:24:05 +0100309/*
Manuel Pégourié-Gonnard37d218a2012-11-24 15:19:55 +0100310 * Export a point into unsigned binary data (SEC1 2.3.3)
Manuel Pégourié-Gonnarde19feb52012-11-24 14:10:14 +0100311 */
Manuel Pégourié-Gonnard7e860252013-02-10 10:58:48 +0100312int ecp_point_write_binary( const ecp_group *grp, const ecp_point *P,
Manuel Pégourié-Gonnard420f1eb2013-02-10 12:22:46 +0100313 int format, size_t *olen,
Manuel Pégourié-Gonnard7e860252013-02-10 10:58:48 +0100314 unsigned char *buf, size_t buflen )
Manuel Pégourié-Gonnarde19feb52012-11-24 14:10:14 +0100315{
Paul Bakkera280d0f2013-04-08 13:40:17 +0200316 int ret = 0;
Manuel Pégourié-Gonnarde19feb52012-11-24 14:10:14 +0100317 size_t plen;
318
Manuel Pégourié-Gonnard37d218a2012-11-24 15:19:55 +0100319 if( format != POLARSSL_ECP_PF_UNCOMPRESSED &&
320 format != POLARSSL_ECP_PF_COMPRESSED )
Manuel Pégourié-Gonnard00794052013-02-09 19:00:07 +0100321 return( POLARSSL_ERR_ECP_BAD_INPUT_DATA );
Manuel Pégourié-Gonnard37d218a2012-11-24 15:19:55 +0100322
Manuel Pégourié-Gonnarde19feb52012-11-24 14:10:14 +0100323 /*
Manuel Pégourié-Gonnard37d218a2012-11-24 15:19:55 +0100324 * Common case: P == 0
Manuel Pégourié-Gonnarde19feb52012-11-24 14:10:14 +0100325 */
326 if( mpi_cmp_int( &P->Z, 0 ) == 0 )
327 {
328 if( buflen < 1 )
Manuel Pégourié-Gonnard00794052013-02-09 19:00:07 +0100329 return( POLARSSL_ERR_ECP_BUFFER_TOO_SMALL );
Manuel Pégourié-Gonnarde19feb52012-11-24 14:10:14 +0100330
331 buf[0] = 0x00;
332 *olen = 1;
333
334 return( 0 );
335 }
336
337 plen = mpi_size( &grp->P );
Manuel Pégourié-Gonnarde19feb52012-11-24 14:10:14 +0100338
Manuel Pégourié-Gonnard37d218a2012-11-24 15:19:55 +0100339 if( format == POLARSSL_ECP_PF_UNCOMPRESSED )
340 {
341 *olen = 2 * plen + 1;
Manuel Pégourié-Gonnarde19feb52012-11-24 14:10:14 +0100342
Manuel Pégourié-Gonnard37d218a2012-11-24 15:19:55 +0100343 if( buflen < *olen )
Manuel Pégourié-Gonnard00794052013-02-09 19:00:07 +0100344 return( POLARSSL_ERR_ECP_BUFFER_TOO_SMALL );
Manuel Pégourié-Gonnard37d218a2012-11-24 15:19:55 +0100345
346 buf[0] = 0x04;
347 MPI_CHK( mpi_write_binary( &P->X, buf + 1, plen ) );
348 MPI_CHK( mpi_write_binary( &P->Y, buf + 1 + plen, plen ) );
349 }
350 else if( format == POLARSSL_ECP_PF_COMPRESSED )
351 {
352 *olen = plen + 1;
353
354 if( buflen < *olen )
Manuel Pégourié-Gonnard00794052013-02-09 19:00:07 +0100355 return( POLARSSL_ERR_ECP_BUFFER_TOO_SMALL );
Manuel Pégourié-Gonnard37d218a2012-11-24 15:19:55 +0100356
357 buf[0] = 0x02 + mpi_get_bit( &P->Y, 0 );
358 MPI_CHK( mpi_write_binary( &P->X, buf + 1, plen ) );
359 }
Manuel Pégourié-Gonnarde19feb52012-11-24 14:10:14 +0100360
361cleanup:
362 return( ret );
363}
364
365/*
Manuel Pégourié-Gonnard5e402d82012-11-24 16:19:42 +0100366 * Import a point from unsigned binary data (SEC1 2.3.4)
367 */
Manuel Pégourié-Gonnard7e860252013-02-10 10:58:48 +0100368int ecp_point_read_binary( const ecp_group *grp, ecp_point *pt,
369 const unsigned char *buf, size_t ilen ) {
Manuel Pégourié-Gonnard5e402d82012-11-24 16:19:42 +0100370 int ret;
371 size_t plen;
372
Manuel Pégourié-Gonnard5e402d82012-11-24 16:19:42 +0100373 if( ilen == 1 && buf[0] == 0x00 )
Manuel Pégourié-Gonnardd84895d2013-02-10 10:53:04 +0100374 return( ecp_set_zero( pt ) );
Manuel Pégourié-Gonnard5e402d82012-11-24 16:19:42 +0100375
Manuel Pégourié-Gonnardd84895d2013-02-10 10:53:04 +0100376 plen = mpi_size( &grp->P );
Manuel Pégourié-Gonnard5e402d82012-11-24 16:19:42 +0100377
378 if( ilen != 2 * plen + 1 || buf[0] != 0x04 )
Manuel Pégourié-Gonnardd84895d2013-02-10 10:53:04 +0100379 return( POLARSSL_ERR_ECP_BAD_INPUT_DATA );
Manuel Pégourié-Gonnard5e402d82012-11-24 16:19:42 +0100380
Manuel Pégourié-Gonnardd84895d2013-02-10 10:53:04 +0100381 MPI_CHK( mpi_read_binary( &pt->X, buf + 1, plen ) );
382 MPI_CHK( mpi_read_binary( &pt->Y, buf + 1 + plen, plen ) );
383 MPI_CHK( mpi_lset( &pt->Z, 1 ) );
Manuel Pégourié-Gonnard5e402d82012-11-24 16:19:42 +0100384
385cleanup:
386 return( ret );
387}
388
389/*
Manuel Pégourié-Gonnard00794052013-02-09 19:00:07 +0100390 * Import a point from a TLS ECPoint record (RFC 4492)
391 * struct {
392 * opaque point <1..2^8-1>;
393 * } ECPoint;
394 */
395int ecp_tls_read_point( const ecp_group *grp, ecp_point *pt,
Manuel Pégourié-Gonnard98f51812013-02-10 13:38:29 +0100396 const unsigned char **buf, size_t buf_len )
Manuel Pégourié-Gonnard00794052013-02-09 19:00:07 +0100397{
398 unsigned char data_len;
Manuel Pégourié-Gonnard98f51812013-02-10 13:38:29 +0100399 const unsigned char *buf_start;
Manuel Pégourié-Gonnard00794052013-02-09 19:00:07 +0100400
401 /*
402 * We must have at least two bytes (1 for length, at least of for data)
403 */
404 if( buf_len < 2 )
405 return( POLARSSL_ERR_ECP_BAD_INPUT_DATA );
406
Manuel Pégourié-Gonnard98f51812013-02-10 13:38:29 +0100407 data_len = *(*buf)++;
Manuel Pégourié-Gonnard00794052013-02-09 19:00:07 +0100408 if( data_len < 1 || data_len > buf_len - 1 )
409 return( POLARSSL_ERR_ECP_BAD_INPUT_DATA );
410
Manuel Pégourié-Gonnard98f51812013-02-10 13:38:29 +0100411 /*
412 * Save buffer start for read_binary and update buf
413 */
414 buf_start = *buf;
415 *buf += data_len;
416
417 return ecp_point_read_binary( grp, pt, buf_start, data_len );
Manuel Pégourié-Gonnard00794052013-02-09 19:00:07 +0100418}
419
420/*
421 * Export a point as a TLS ECPoint record (RFC 4492)
422 * struct {
423 * opaque point <1..2^8-1>;
424 * } ECPoint;
425 */
426int ecp_tls_write_point( const ecp_group *grp, const ecp_point *pt,
Manuel Pégourié-Gonnard420f1eb2013-02-10 12:22:46 +0100427 int format, size_t *olen,
428 unsigned char *buf, size_t blen )
Manuel Pégourié-Gonnard00794052013-02-09 19:00:07 +0100429{
Manuel Pégourié-Gonnard420f1eb2013-02-10 12:22:46 +0100430 int ret;
431
Manuel Pégourié-Gonnard00794052013-02-09 19:00:07 +0100432 /*
Manuel Pégourié-Gonnard420f1eb2013-02-10 12:22:46 +0100433 * buffer length must be at least one, for our length byte
Manuel Pégourié-Gonnard00794052013-02-09 19:00:07 +0100434 */
Manuel Pégourié-Gonnard420f1eb2013-02-10 12:22:46 +0100435 if( blen < 1 )
Manuel Pégourié-Gonnard00794052013-02-09 19:00:07 +0100436 return( POLARSSL_ERR_ECP_BAD_INPUT_DATA );
437
Manuel Pégourié-Gonnard420f1eb2013-02-10 12:22:46 +0100438 if( ( ret = ecp_point_write_binary( grp, pt, format,
439 olen, buf + 1, blen - 1) ) != 0 )
440 return( ret );
441
442 /*
443 * write length to the first byte and update total length
444 */
Paul Bakkerb9cfaa02013-10-11 18:58:55 +0200445 buf[0] = (unsigned char) *olen;
Manuel Pégourié-Gonnard420f1eb2013-02-10 12:22:46 +0100446 ++*olen;
447
448 return 0;
Manuel Pégourié-Gonnard00794052013-02-09 19:00:07 +0100449}
450
451/*
Manuel Pégourié-Gonnard773ed542012-11-18 13:19:07 +0100452 * Wrapper around fast quasi-modp functions, with fall-back to mpi_mod_mpi.
453 * See the documentation of struct ecp_group.
Manuel Pégourié-Gonnardc9e387c2013-10-17 17:15:35 +0200454 *
455 * This function is in the critial loop for ecp_mul, so pay attention to perf.
Manuel Pégourié-Gonnard62aad142012-11-10 00:27:12 +0100456 */
457static int ecp_modp( mpi *N, const ecp_group *grp )
458{
Manuel Pégourié-Gonnard47123252012-11-10 14:44:24 +0100459 int ret;
Manuel Pégourié-Gonnard62aad142012-11-10 00:27:12 +0100460
461 if( grp->modp == NULL )
462 return( mpi_mod_mpi( N, N, &grp->P ) );
463
Manuel Pégourié-Gonnardc9e387c2013-10-17 17:15:35 +0200464 /* N->s < 0 is a much faster test, which fails only if N is 0 */
465 if( ( N->s < 0 && mpi_cmp_int( N, 0 ) != 0 ) ||
466 mpi_msb( N ) > 2 * grp->pbits )
467 {
Manuel Pégourié-Gonnard456d3b92013-09-16 18:04:38 +0200468 return( POLARSSL_ERR_ECP_BAD_INPUT_DATA );
Manuel Pégourié-Gonnardc9e387c2013-10-17 17:15:35 +0200469 }
Manuel Pégourié-Gonnard62aad142012-11-10 00:27:12 +0100470
471 MPI_CHK( grp->modp( N ) );
472
Manuel Pégourié-Gonnardc9e387c2013-10-17 17:15:35 +0200473 /* N->s < 0 is a much faster test, which fails only if N is 0 */
474 while( N->s < 0 && mpi_cmp_int( N, 0 ) != 0 )
Manuel Pégourié-Gonnard62aad142012-11-10 00:27:12 +0100475 MPI_CHK( mpi_add_mpi( N, N, &grp->P ) );
476
477 while( mpi_cmp_mpi( N, &grp->P ) >= 0 )
Manuel Pégourié-Gonnardc9e387c2013-10-17 17:15:35 +0200478 /* we known P, N and the result are positive */
479 MPI_CHK( mpi_sub_abs( N, N, &grp->P ) );
Manuel Pégourié-Gonnard62aad142012-11-10 00:27:12 +0100480
481cleanup:
482 return( ret );
483}
484
Manuel Pégourié-Gonnardc04c5302013-10-23 16:11:52 +0200485#if defined(POLARSSL_ECP_NIST_OPTIM)
486
Paul Bakker5dc6b5f2013-06-29 23:26:34 +0200487#if defined(POLARSSL_ECP_DP_SECP192R1_ENABLED)
Manuel Pégourié-Gonnard210b4582013-10-23 14:03:00 +0200488/*
489 * Compared to the way things are presented in FIPS 186-3 D.2,
490 * we proceed in columns, from right (least significant chunk) to left,
491 * adding chunks to N in place, and keeping a carry for the next chunk.
492 * This avoids moving things around in memory, and uselessly adding zeros,
493 * compared to the more straightforward, line-oriented approach.
494 *
495 * For this prime we need to handle data in chunks of 64 bits.
496 * Since this is always a multiple of our basic t_uint, we can
497 * use a t_uint * to designate such a chunk, and small loops to handle it.
498 */
Manuel Pégourié-Gonnard84338242012-11-11 20:45:18 +0100499
Manuel Pégourié-Gonnardd1e7a452013-10-22 21:03:16 +0200500/* Add 64-bit chunks (dst += src) and update carry */
Manuel Pégourié-Gonnard210b4582013-10-23 14:03:00 +0200501static inline void add64( t_uint *dst, t_uint *src, t_uint *carry )
Manuel Pégourié-Gonnardd1e7a452013-10-22 21:03:16 +0200502{
503 unsigned char i;
504 t_uint c = 0;
505 for( i = 0; i < 8 / sizeof( t_uint ); i++, dst++, src++ )
506 {
507 *dst += c; c = ( *dst < c );
508 *dst += *src; c += ( *dst < *src );
509 }
510 *carry += c;
511}
Manuel Pégourié-Gonnard84338242012-11-11 20:45:18 +0100512
Manuel Pégourié-Gonnardd1e7a452013-10-22 21:03:16 +0200513/* Add carry to a 64-bit chunk and update carry */
514static inline void carry64( t_uint *dst, t_uint *carry )
515{
516 unsigned char i;
517 for( i = 0; i < 8 / sizeof( t_uint ); i++, dst++ )
518 {
519 *dst += *carry;
520 *carry = ( *dst < *carry );
521 }
522}
523
Manuel Pégourié-Gonnard210b4582013-10-23 14:03:00 +0200524#define WIDTH 8 / sizeof( t_uint )
525#define A( i ) N->p + i * WIDTH
526#define ADD( i ) add64( p, A( i ), &c )
527#define NEXT p += WIDTH; carry64( p, &c )
528#define LAST p += WIDTH; *p = c; while( ++p < end ) *p = 0
Manuel Pégourié-Gonnard84338242012-11-11 20:45:18 +0100529
530/*
531 * Fast quasi-reduction modulo p192 (FIPS 186-3 D.2.1)
532 */
533static int ecp_mod_p192( mpi *N )
534{
535 int ret;
Manuel Pégourié-Gonnardd1e7a452013-10-22 21:03:16 +0200536 t_uint c = 0;
537 t_uint *p, *end;
Manuel Pégourié-Gonnard84338242012-11-11 20:45:18 +0100538
Manuel Pégourié-Gonnard210b4582013-10-23 14:03:00 +0200539 /* Make sure we have enough blocks so that A(5) is legal */
540 MPI_CHK( mpi_grow( N, 6 * WIDTH ) );
541
Manuel Pégourié-Gonnardd1e7a452013-10-22 21:03:16 +0200542 p = N->p;
543 end = p + N->n;
Manuel Pégourié-Gonnard84338242012-11-11 20:45:18 +0100544
Manuel Pégourié-Gonnardd1e7a452013-10-22 21:03:16 +0200545 ADD( 3 ); ADD( 5 ); NEXT; // A0 += A3 + A5
546 ADD( 3 ); ADD( 4 ); ADD( 5 ); NEXT; // A1 += A3 + A4 + A5
547 ADD( 4 ); ADD( 5 ); LAST; // A2 += A4 + A5
Manuel Pégourié-Gonnard84338242012-11-11 20:45:18 +0100548
549cleanup:
550 return( ret );
551}
Manuel Pégourié-Gonnardd1e7a452013-10-22 21:03:16 +0200552
Manuel Pégourié-Gonnard210b4582013-10-23 14:03:00 +0200553#undef WIDTH
Manuel Pégourié-Gonnardd1e7a452013-10-22 21:03:16 +0200554#undef A
555#undef ADD
556#undef NEXT
557#undef LAST
Paul Bakker5dc6b5f2013-06-29 23:26:34 +0200558#endif /* POLARSSL_ECP_DP_SECP192R1_ENABLED */
Manuel Pégourié-Gonnard84338242012-11-11 20:45:18 +0100559
Manuel Pégourié-Gonnard210b4582013-10-23 14:03:00 +0200560#if defined(POLARSSL_ECP_DP_SECP224R1_ENABLED) || \
561 defined(POLARSSL_ECP_DP_SECP256R1_ENABLED) || \
562 defined(POLARSSL_ECP_DP_SECP384R1_ENABLED)
563/*
564 * The reader is advised to first understand ecp_mod_p192() since the same
565 * general structure is used here, but with additional complications:
566 * (1) chunks of 32 bits, and (2) subtractions.
567 */
Manuel Pégourié-Gonnarde783f062013-10-21 14:52:21 +0200568
Manuel Pégourié-Gonnard210b4582013-10-23 14:03:00 +0200569/*
570 * For these primes, we need to handle data in chunks of 32 bits.
571 * This makes it more complicated if we use 64 bits limbs in MPI,
572 * which prevents us from using a uniform access method as for p192.
573 *
574 * So, we define a mini abstraction layer to access 32 bit chunks,
575 * load them in 'cur' for work, and store them back from 'cur' when done.
576 *
577 * While at it, also define the size of N in terms of 32-bit chunks.
578 */
579#define LOAD32 cur = A( i );
Manuel Pégourié-Gonnarde783f062013-10-21 14:52:21 +0200580
Manuel Pégourié-Gonnard210b4582013-10-23 14:03:00 +0200581#if defined(POLARSSL_HAVE_INT8) /* 8 bit */
Manuel Pégourié-Gonnard2a08c0d2013-10-22 21:07:14 +0200582
583#define MAX32 N->n / 4
584#define A( j ) (uint32_t)( N->p[4*j+0] ) | \
585 ( N->p[4*j+1] << 8 ) | \
586 ( N->p[4*j+2] << 16 ) | \
587 ( N->p[4*j+3] << 24 )
588#define STORE32 N->p[4*i+0] = (uint8_t)( cur ); \
589 N->p[4*i+1] = (uint8_t)( cur >> 8 ); \
590 N->p[4*i+2] = (uint8_t)( cur >> 16 ); \
591 N->p[4*i+3] = (uint8_t)( cur >> 24 );
592
Manuel Pégourié-Gonnard210b4582013-10-23 14:03:00 +0200593#elif defined(POLARSSL_HAVE_INT16) /* 16 bit */
Manuel Pégourié-Gonnard2a08c0d2013-10-22 21:07:14 +0200594
595#define MAX32 N->n / 2
596#define A( j ) (uint32_t)( N->p[2*j] ) | ( N->p[2*j+1] << 16 )
597#define STORE32 N->p[2*i+0] = (uint16_t)( cur ); \
598 N->p[2*i+1] = (uint16_t)( cur >> 16 );
599
Manuel Pégourié-Gonnard210b4582013-10-23 14:03:00 +0200600#elif defined(POLARSSL_HAVE_INT32) /* 32 bit */
Manuel Pégourié-Gonnard2a08c0d2013-10-22 21:07:14 +0200601
602#define MAX32 N->n
Manuel Pégourié-Gonnarda47e7052013-10-21 17:51:45 +0200603#define A( j ) N->p[j]
604#define STORE32 N->p[i] = cur;
Manuel Pégourié-Gonnard2a08c0d2013-10-22 21:07:14 +0200605
Manuel Pégourié-Gonnard210b4582013-10-23 14:03:00 +0200606#else /* 64-bit */
Manuel Pégourié-Gonnard2a08c0d2013-10-22 21:07:14 +0200607
608#define MAX32 N->n * 2
Manuel Pégourié-Gonnarda47e7052013-10-21 17:51:45 +0200609#define A( j ) j % 2 ? (uint32_t)( N->p[j/2] >> 32 ) : (uint32_t)( N->p[j/2] )
610#define STORE32 \
611 if( i % 2 ) { \
612 N->p[i/2] &= 0x00000000FFFFFFFF; \
613 N->p[i/2] |= ((uint64_t) cur) << 32; \
614 } else { \
615 N->p[i/2] &= 0xFFFFFFFF00000000; \
616 N->p[i/2] |= (uint64_t) cur; \
617 }
Manuel Pégourié-Gonnard2a08c0d2013-10-22 21:07:14 +0200618
Manuel Pégourié-Gonnard210b4582013-10-23 14:03:00 +0200619#endif /* sizeof( t_uint ) */
620
621/*
622 * Helpers for addition and subtraction of chunks, with signed carry.
623 */
624static inline void add32( uint32_t *dst, uint32_t src, signed char *carry )
625{
626 *dst += src;
627 *carry += ( *dst < src );
628}
629
630static inline void sub32( uint32_t *dst, uint32_t src, signed char *carry )
631{
632 *carry -= ( *dst < src );
633 *dst -= src;
634}
Manuel Pégourié-Gonnarda47e7052013-10-21 17:51:45 +0200635
636#define ADD( j ) add32( &cur, A( j ), &c );
637#define SUB( j ) sub32( &cur, A( j ), &c );
638
Manuel Pégourié-Gonnard210b4582013-10-23 14:03:00 +0200639/*
640 * Helpers for the main 'loop'
641 */
642#define INIT( b ) \
643 int ret; \
644 signed char c = 0, cc; \
645 uint32_t cur; \
646 size_t i = 0, bits = b; \
647 \
648 MPI_CHK( mpi_grow( N, b * 2 / 8 / sizeof( t_uint ) ) ); \
649 LOAD32;
Manuel Pégourié-Gonnarde783f062013-10-21 14:52:21 +0200650
651#define NEXT \
Manuel Pégourié-Gonnarda47e7052013-10-21 17:51:45 +0200652 STORE32; i++; LOAD32; \
653 cc = c; c = 0; \
Manuel Pégourié-Gonnarde783f062013-10-21 14:52:21 +0200654 if( cc < 0 ) \
Manuel Pégourié-Gonnarda47e7052013-10-21 17:51:45 +0200655 sub32( &cur, -cc, &c ); \
Manuel Pégourié-Gonnarde783f062013-10-21 14:52:21 +0200656 else \
Manuel Pégourié-Gonnard2a08c0d2013-10-22 21:07:14 +0200657 add32( &cur, cc, &c ); \
Manuel Pégourié-Gonnarde783f062013-10-21 14:52:21 +0200658
Manuel Pégourié-Gonnard2a08c0d2013-10-22 21:07:14 +0200659#define LAST \
660 STORE32; i++; \
661 cur = c > 0 ? c : 0; STORE32; \
662 cur = 0; while( ++i < MAX32 ) { STORE32; } \
Manuel Pégourié-Gonnarde783f062013-10-21 14:52:21 +0200663 if( c < 0 ) fix_negative( N, c, bits );
664
665/*
666 * If the result is negative, we get it in the form c * 2^192 + N,
667 * with c negative and N positive (the c >= 0 case is handled by LAST).
668 */
669static inline int fix_negative( mpi *N, signed char c, size_t bits )
670{
671 int ret;
672 mpi C;
673
674 mpi_init( &C );
675
676 MPI_CHK( mpi_lset( &C, c ) );
677 MPI_CHK( mpi_shift_l( &C, bits ) );
678 MPI_CHK( mpi_add_mpi( N, N, &C ) );
679
680cleanup:
681 mpi_free( &C );
682
683 return( ret );
684}
Manuel Pégourié-Gonnard210b4582013-10-23 14:03:00 +0200685#endif /* POLARSSL_ECP_DP_SECP224R1_ENABLED ||
686 POLARSSL_ECP_DP_SECP256R1_ENABLED ||
687 POLARSSL_ECP_DP_SECP384R1_ENABLED */
Manuel Pégourié-Gonnarde783f062013-10-21 14:52:21 +0200688
Manuel Pégourié-Gonnard210b4582013-10-23 14:03:00 +0200689#if defined(POLARSSL_ECP_DP_SECP224R1_ENABLED)
Manuel Pégourié-Gonnarde783f062013-10-21 14:52:21 +0200690/*
691 * Fast quasi-reduction modulo p224 (FIPS 186-3 D.2.2)
692 */
693static int ecp_mod_p224( mpi *N )
694{
Manuel Pégourié-Gonnard210b4582013-10-23 14:03:00 +0200695 INIT( 224 );
Manuel Pégourié-Gonnarde783f062013-10-21 14:52:21 +0200696
Manuel Pégourié-Gonnarde783f062013-10-21 14:52:21 +0200697 SUB( 7 ); SUB( 11 ); NEXT; // A0 += -A7 - A11
698 SUB( 8 ); SUB( 12 ); NEXT; // A1 += -A8 - A12
699 SUB( 9 ); SUB( 13 ); NEXT; // A2 += -A9 - A13
700 SUB( 10 ); ADD( 7 ); ADD( 11 ); NEXT; // A3 += -A10 + A7 + A11
701 SUB( 11 ); ADD( 8 ); ADD( 12 ); NEXT; // A4 += -A11 + A8 + A12
702 SUB( 12 ); ADD( 9 ); ADD( 13 ); NEXT; // A5 += -A12 + A9 + A13
703 SUB( 13 ); ADD( 10 ); LAST; // A6 += -A13 + A10
704
705cleanup:
706 return( ret );
707}
708#endif /* POLARSSL_ECP_DP_SECP224R1_ENABLED */
709
Manuel Pégourié-Gonnardec655c92013-10-23 14:50:39 +0200710#if defined(POLARSSL_ECP_DP_SECP256R1_ENABLED)
711/*
712 * Fast quasi-reduction modulo p256 (FIPS 186-3 D.2.3)
713 */
714static int ecp_mod_p256( mpi *N )
715{
716 INIT( 256 );
717
718 ADD( 8 ); ADD( 9 );
719 SUB( 11 ); SUB( 12 ); SUB( 13 ); SUB( 14 ); NEXT; // A0
720
721 ADD( 9 ); ADD( 10 );
722 SUB( 12 ); SUB( 13 ); SUB( 14 ); SUB( 15 ); NEXT; // A1
723
724 ADD( 10 ); ADD( 11 );
725 SUB( 13 ); SUB( 14 ); SUB( 15 ); NEXT; // A2
726
727 ADD( 11 ); ADD( 11 ); ADD( 12 ); ADD( 12 ); ADD( 13 );
728 SUB( 15 ); SUB( 8 ); SUB( 9 ); NEXT; // A3
729
730 ADD( 12 ); ADD( 12 ); ADD( 13 ); ADD( 13 ); ADD( 14 );
731 SUB( 9 ); SUB( 10 ); NEXT; // A4
732
733 ADD( 13 ); ADD( 13 ); ADD( 14 ); ADD( 14 ); ADD( 15 );
734 SUB( 10 ); SUB( 11 ); NEXT; // A5
735
736 ADD( 14 ); ADD( 14 ); ADD( 15 ); ADD( 15 ); ADD( 14 ); ADD( 13 );
737 SUB( 8 ); SUB( 9 ); NEXT; // A6
738
739 ADD( 15 ); ADD( 15 ); ADD( 15 ); ADD( 8 );
740 SUB( 10 ); SUB( 11 ); SUB( 12 ); SUB( 13 ); LAST; // A7
741
742cleanup:
743 return( ret );
744}
745#endif /* POLARSSL_ECP_DP_SECP256R1_ENABLED */
746
Manuel Pégourié-Gonnard0f9149c2013-10-23 15:06:37 +0200747#if defined(POLARSSL_ECP_DP_SECP384R1_ENABLED)
748/*
749 * Fast quasi-reduction modulo p384 (FIPS 186-3 D.2.4)
750 */
751static int ecp_mod_p384( mpi *N )
752{
753 INIT( 384 );
754
755 ADD( 12 ); ADD( 21 ); ADD( 20 );
756 SUB( 23 ); NEXT; // A0
757
758 ADD( 13 ); ADD( 22 ); ADD( 23 );
759 SUB( 12 ); SUB( 20 ); NEXT; // A2
760
761 ADD( 14 ); ADD( 23 );
762 SUB( 13 ); SUB( 21 ); NEXT; // A2
763
764 ADD( 15 ); ADD( 12 ); ADD( 20 ); ADD( 21 );
765 SUB( 14 ); SUB( 22 ); SUB( 23 ); NEXT; // A3
766
767 ADD( 21 ); ADD( 21 ); ADD( 16 ); ADD( 13 ); ADD( 12 ); ADD( 20 ); ADD( 22 );
768 SUB( 15 ); SUB( 23 ); SUB( 23 ); NEXT; // A4
769
770 ADD( 22 ); ADD( 22 ); ADD( 17 ); ADD( 14 ); ADD( 13 ); ADD( 21 ); ADD( 23 );
771 SUB( 16 ); NEXT; // A5
772
773 ADD( 23 ); ADD( 23 ); ADD( 18 ); ADD( 15 ); ADD( 14 ); ADD( 22 );
774 SUB( 17 ); NEXT; // A6
775
776 ADD( 19 ); ADD( 16 ); ADD( 15 ); ADD( 23 );
777 SUB( 18 ); NEXT; // A7
778
779 ADD( 20 ); ADD( 17 ); ADD( 16 );
780 SUB( 19 ); NEXT; // A8
781
782 ADD( 21 ); ADD( 18 ); ADD( 17 );
783 SUB( 20 ); NEXT; // A9
784
785 ADD( 22 ); ADD( 19 ); ADD( 18 );
786 SUB( 21 ); NEXT; // A10
787
788 ADD( 23 ); ADD( 20 ); ADD( 19 );
789 SUB( 22 ); LAST; // A11
790
791cleanup:
792 return( ret );
793}
794#endif /* POLARSSL_ECP_DP_SECP384R1_ENABLED */
795
Manuel Pégourié-Gonnard210b4582013-10-23 14:03:00 +0200796#if defined(POLARSSL_ECP_DP_SECP224R1_ENABLED) || \
797 defined(POLARSSL_ECP_DP_SECP256R1_ENABLED) || \
798 defined(POLARSSL_ECP_DP_SECP384R1_ENABLED)
799
800#undef A
801#undef LOAD32
802#undef STORE32
803#undef MAX32
804#undef INIT
805#undef NEXT
806#undef LAST
807
808#endif /* POLARSSL_ECP_DP_SECP224R1_ENABLED ||
809 POLARSSL_ECP_DP_SECP256R1_ENABLED ||
810 POLARSSL_ECP_DP_SECP384R1_ENABLED */
811
Manuel Pégourié-Gonnarde783f062013-10-21 14:52:21 +0200812#if defined(POLARSSL_ECP_DP_SECP521R1_ENABLED)
Manuel Pégourié-Gonnard84338242012-11-11 20:45:18 +0100813/*
Manuel Pégourié-Gonnard210b4582013-10-23 14:03:00 +0200814 * Here we have a real Mersenne prime, so things are more straightforward.
815 * However, things are aligned on a 'weird' boundary (521 bits).
Manuel Pégourié-Gonnard62aad142012-11-10 00:27:12 +0100816 */
Manuel Pégourié-Gonnard62aad142012-11-10 00:27:12 +0100817
Manuel Pégourié-Gonnard210b4582013-10-23 14:03:00 +0200818/* Size of p521 in terms of t_uint */
819#define P521_WIDTH ( 521 / 8 / sizeof( t_uint ) + 1 )
820
821/* Bits to keep in the most significant t_uint */
Manuel Pégourié-Gonnardcc67aee2013-10-18 10:55:45 +0200822#if defined(POLARSSL_HAVE_INT8)
Manuel Pégourié-Gonnard62aad142012-11-10 00:27:12 +0100823#define P521_MASK 0x01
824#else
825#define P521_MASK 0x01FF
826#endif
827
828/*
829 * Fast quasi-reduction modulo p521 (FIPS 186-3 D.2.5)
Manuel Pégourié-Gonnardcc67aee2013-10-18 10:55:45 +0200830 * Write N as A1 + 2^521 A0, return A0 + A1
Manuel Pégourié-Gonnard62aad142012-11-10 00:27:12 +0100831 */
832static int ecp_mod_p521( mpi *N )
833{
Manuel Pégourié-Gonnard47123252012-11-10 14:44:24 +0100834 int ret;
Manuel Pégourié-Gonnardcc67aee2013-10-18 10:55:45 +0200835 size_t i;
Manuel Pégourié-Gonnard62aad142012-11-10 00:27:12 +0100836 mpi M;
Manuel Pégourié-Gonnard210b4582013-10-23 14:03:00 +0200837 t_uint Mp[P521_WIDTH + 1];
838 /* Worst case for the size of M is when t_uint is 16 bits:
Manuel Pégourié-Gonnardcc67aee2013-10-18 10:55:45 +0200839 * we need to hold bits 513 to 1056, which is 34 limbs, that is
Manuel Pégourié-Gonnard210b4582013-10-23 14:03:00 +0200840 * P521_WIDTH + 1. Otherwise P521_WIDTH is enough. */
Manuel Pégourié-Gonnard62aad142012-11-10 00:27:12 +0100841
Manuel Pégourié-Gonnard210b4582013-10-23 14:03:00 +0200842 if( N->n < P521_WIDTH )
Manuel Pégourié-Gonnard62aad142012-11-10 00:27:12 +0100843 return( 0 );
844
Manuel Pégourié-Gonnardcc67aee2013-10-18 10:55:45 +0200845 /* M = A1 */
Manuel Pégourié-Gonnard62aad142012-11-10 00:27:12 +0100846 M.s = 1;
Manuel Pégourié-Gonnard210b4582013-10-23 14:03:00 +0200847 M.n = N->n - ( P521_WIDTH - 1 );
848 if( M.n > P521_WIDTH + 1 )
849 M.n = P521_WIDTH + 1;
Manuel Pégourié-Gonnard62aad142012-11-10 00:27:12 +0100850 M.p = Mp;
Manuel Pégourié-Gonnard210b4582013-10-23 14:03:00 +0200851 memcpy( Mp, N->p + P521_WIDTH - 1, M.n * sizeof( t_uint ) );
Manuel Pégourié-Gonnardcc67aee2013-10-18 10:55:45 +0200852 MPI_CHK( mpi_shift_r( &M, 521 % ( 8 * sizeof( t_uint ) ) ) );
Manuel Pégourié-Gonnard62aad142012-11-10 00:27:12 +0100853
Manuel Pégourié-Gonnardcc67aee2013-10-18 10:55:45 +0200854 /* N = A0 */
Manuel Pégourié-Gonnard210b4582013-10-23 14:03:00 +0200855 N->p[P521_WIDTH - 1] &= P521_MASK;
856 for( i = P521_WIDTH; i < N->n; i++ )
Manuel Pégourié-Gonnardcc67aee2013-10-18 10:55:45 +0200857 N->p[i] = 0;
Manuel Pégourié-Gonnard62aad142012-11-10 00:27:12 +0100858
Manuel Pégourié-Gonnardcc67aee2013-10-18 10:55:45 +0200859 /* N = A0 + A1 */
Manuel Pégourié-Gonnard62aad142012-11-10 00:27:12 +0100860 MPI_CHK( mpi_add_abs( N, N, &M ) );
861
862cleanup:
863 return( ret );
864}
Manuel Pégourié-Gonnard210b4582013-10-23 14:03:00 +0200865
866#undef P521_WIDTH
867#undef P521_MASK
Paul Bakker5dc6b5f2013-06-29 23:26:34 +0200868#endif /* POLARSSL_ECP_DP_SECP521R1_ENABLED */
Manuel Pégourié-Gonnard62aad142012-11-10 00:27:12 +0100869
Manuel Pégourié-Gonnardc04c5302013-10-23 16:11:52 +0200870#endif /* POLARSSL_ECP_NIST_OPTIM */
871
Manuel Pégourié-Gonnard62aad142012-11-10 00:27:12 +0100872/*
Manuel Pégourié-Gonnarddada4da2012-11-10 14:23:17 +0100873 * Domain parameters for secp192r1
874 */
875#define SECP192R1_P \
876 "FFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFEFFFFFFFFFFFFFFFF"
877#define SECP192R1_B \
878 "64210519E59C80E70FA7E9AB72243049FEB8DEECC146B9B1"
879#define SECP192R1_GX \
880 "188DA80EB03090F67CBF20EB43A18800F4FF0AFD82FF1012"
881#define SECP192R1_GY \
882 "07192B95FFC8DA78631011ED6B24CDD573F977A11E794811"
883#define SECP192R1_N \
884 "FFFFFFFFFFFFFFFFFFFFFFFF99DEF836146BC9B1B4D22831"
885
886/*
887 * Domain parameters for secp224r1
888 */
889#define SECP224R1_P \
890 "FFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFF000000000000000000000001"
891#define SECP224R1_B \
892 "B4050A850C04B3ABF54132565044B0B7D7BFD8BA270B39432355FFB4"
893#define SECP224R1_GX \
894 "B70E0CBD6BB4BF7F321390B94A03C1D356C21122343280D6115C1D21"
895#define SECP224R1_GY \
896 "BD376388B5F723FB4C22DFE6CD4375A05A07476444D5819985007E34"
897#define SECP224R1_N \
898 "FFFFFFFFFFFFFFFFFFFFFFFFFFFF16A2E0B8F03E13DD29455C5C2A3D"
899
900/*
901 * Domain parameters for secp256r1
902 */
903#define SECP256R1_P \
904 "FFFFFFFF00000001000000000000000000000000FFFFFFFFFFFFFFFFFFFFFFFF"
905#define SECP256R1_B \
906 "5AC635D8AA3A93E7B3EBBD55769886BC651D06B0CC53B0F63BCE3C3E27D2604B"
907#define SECP256R1_GX \
908 "6B17D1F2E12C4247F8BCE6E563A440F277037D812DEB33A0F4A13945D898C296"
909#define SECP256R1_GY \
910 "4FE342E2FE1A7F9B8EE7EB4A7C0F9E162BCE33576B315ECECBB6406837BF51F5"
911#define SECP256R1_N \
912 "FFFFFFFF00000000FFFFFFFFFFFFFFFFBCE6FAADA7179E84F3B9CAC2FC632551"
913
914/*
915 * Domain parameters for secp384r1
916 */
917#define SECP384R1_P \
918 "FFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFF" \
919 "FFFFFFFFFFFFFFFEFFFFFFFF0000000000000000FFFFFFFF"
920#define SECP384R1_B \
921 "B3312FA7E23EE7E4988E056BE3F82D19181D9C6EFE814112" \
922 "0314088F5013875AC656398D8A2ED19D2A85C8EDD3EC2AEF"
923#define SECP384R1_GX \
924 "AA87CA22BE8B05378EB1C71EF320AD746E1D3B628BA79B98" \
925 "59F741E082542A385502F25DBF55296C3A545E3872760AB7"
926#define SECP384R1_GY \
927 "3617DE4A96262C6F5D9E98BF9292DC29F8F41DBD289A147C" \
928 "E9DA3113B5F0B8C00A60B1CE1D7E819D7A431D7C90EA0E5F"
929#define SECP384R1_N \
930 "FFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFF" \
931 "C7634D81F4372DDF581A0DB248B0A77AECEC196ACCC52973"
932
933/*
934 * Domain parameters for secp521r1
935 */
936#define SECP521R1_P \
937 "000001FFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFF" \
938 "FFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFF" \
939 "FFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFF"
940#define SECP521R1_B \
941 "00000051953EB9618E1C9A1F929A21A0B68540EEA2DA725B" \
942 "99B315F3B8B489918EF109E156193951EC7E937B1652C0BD" \
943 "3BB1BF073573DF883D2C34F1EF451FD46B503F00"
944#define SECP521R1_GX \
945 "000000C6858E06B70404E9CD9E3ECB662395B4429C648139" \
946 "053FB521F828AF606B4D3DBAA14B5E77EFE75928FE1DC127" \
947 "A2FFA8DE3348B3C1856A429BF97E7E31C2E5BD66"
948#define SECP521R1_GY \
949 "0000011839296A789A3BC0045C8A5FB42C7D1BD998F54449" \
950 "579B446817AFBD17273E662C97EE72995EF42640C550B901" \
951 "3FAD0761353C7086A272C24088BE94769FD16650"
952#define SECP521R1_N \
953 "000001FFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFF" \
954 "FFFFFFFFFFFFFFFFFFFFFFFA51868783BF2F966B7FCC0148" \
955 "F709A5D03BB5C9B8899C47AEBB6FB71E91386409"
956
957/*
Manuel Pégourié-Gonnardcec4a532013-10-07 19:52:27 +0200958 * Domain parameters for brainpoolP256r1 (RFC 5639 3.4)
959 */
960#define BP256R1_P \
961 "A9FB57DBA1EEA9BC3E660A909D838D726E3BF623D52620282013481D1F6E5377"
962#define BP256R1_A \
963 "7D5A0975FC2C3057EEF67530417AFFE7FB8055C126DC5C6CE94A4B44F330B5D9"
964#define BP256R1_B \
965 "26DC5C6CE94A4B44F330B5D9BBD77CBF958416295CF7E1CE6BCCDC18FF8C07B6"
966#define BP256R1_GX \
967 "8BD2AEB9CB7E57CB2C4B482FFC81B7AFB9DE27E1E3BD23C23A4453BD9ACE3262"
968#define BP256R1_GY \
969 "547EF835C3DAC4FD97F8461A14611DC9C27745132DED8E545C1D54C72F046997"
970#define BP256R1_N \
971 "A9FB57DBA1EEA9BC3E660A909D838D718C397AA3B561A6F7901E0E82974856A7"
972
973/*
974 * Domain parameters for brainpoolP384r1 (RFC 5639 3.6)
975 */
976#define BP384R1_P \
977 "8CB91E82A3386D280F5D6F7E50E641DF152F7109ED5456B412B1DA197FB711" \
978 "23ACD3A729901D1A71874700133107EC53"
979#define BP384R1_A \
980 "7BC382C63D8C150C3C72080ACE05AFA0C2BEA28E4FB22787139165EFBA91F9" \
981 "0F8AA5814A503AD4EB04A8C7DD22CE2826"
982#define BP384R1_B \
983 "04A8C7DD22CE28268B39B55416F0447C2FB77DE107DCD2A62E880EA53EEB62" \
984 "D57CB4390295DBC9943AB78696FA504C11"
985#define BP384R1_GX \
986 "1D1C64F068CF45FFA2A63A81B7C13F6B8847A3E77EF14FE3DB7FCAFE0CBD10" \
987 "E8E826E03436D646AAEF87B2E247D4AF1E"
988#define BP384R1_GY \
989 "8ABE1D7520F9C2A45CB1EB8E95CFD55262B70B29FEEC5864E19C054FF99129" \
990 "280E4646217791811142820341263C5315"
991#define BP384R1_N \
992 "8CB91E82A3386D280F5D6F7E50E641DF152F7109ED5456B31F166E6CAC0425" \
993 "A7CF3AB6AF6B7FC3103B883202E9046565"
994
995/*
996 * Domain parameters for brainpoolP512r1 (RFC 5639 3.7)
997 */
998#define BP512R1_P \
999 "AADD9DB8DBE9C48B3FD4E6AE33C9FC07CB308DB3B3C9D20ED6639CCA703308" \
1000 "717D4D9B009BC66842AECDA12AE6A380E62881FF2F2D82C68528AA6056583A48F3"
1001#define BP512R1_A \
1002 "7830A3318B603B89E2327145AC234CC594CBDD8D3DF91610A83441CAEA9863" \
1003 "BC2DED5D5AA8253AA10A2EF1C98B9AC8B57F1117A72BF2C7B9E7C1AC4D77FC94CA"
1004#define BP512R1_B \
1005 "3DF91610A83441CAEA9863BC2DED5D5AA8253AA10A2EF1C98B9AC8B57F1117" \
1006 "A72BF2C7B9E7C1AC4D77FC94CADC083E67984050B75EBAE5DD2809BD638016F723"
1007#define BP512R1_GX \
1008 "81AEE4BDD82ED9645A21322E9C4C6A9385ED9F70B5D916C1B43B62EEF4D009" \
1009 "8EFF3B1F78E2D0D48D50D1687B93B97D5F7C6D5047406A5E688B352209BCB9F822"
1010#define BP512R1_GY \
1011 "7DDE385D566332ECC0EABFA9CF7822FDF209F70024A57B1AA000C55B881F81" \
1012 "11B2DCDE494A5F485E5BCA4BD88A2763AED1CA2B2FA8F0540678CD1E0F3AD80892"
1013#define BP512R1_N \
1014 "AADD9DB8DBE9C48B3FD4E6AE33C9FC07CB308DB3B3C9D20ED6639CCA703308" \
1015 "70553E5C414CA92619418661197FAC10471DB1D381085DDADDB58796829CA90069"
1016
1017/*
Manuel Pégourié-Gonnarda5402fe2012-11-07 20:24:05 +01001018 * Set a group using well-known domain parameters
1019 */
Manuel Pégourié-Gonnardb3258872013-02-10 12:06:19 +01001020int ecp_use_known_dp( ecp_group *grp, ecp_group_id id )
Manuel Pégourié-Gonnarda5402fe2012-11-07 20:24:05 +01001021{
Manuel Pégourié-Gonnardb3258872013-02-10 12:06:19 +01001022 grp->id = id;
1023
1024 switch( id )
Manuel Pégourié-Gonnarda5402fe2012-11-07 20:24:05 +01001025 {
Paul Bakker5dc6b5f2013-06-29 23:26:34 +02001026#if defined(POLARSSL_ECP_DP_SECP192R1_ENABLED)
Manuel Pégourié-Gonnarda5402fe2012-11-07 20:24:05 +01001027 case POLARSSL_ECP_DP_SECP192R1:
Manuel Pégourié-Gonnardc04c5302013-10-23 16:11:52 +02001028#if defined(POLARSSL_ECP_NIST_OPTIM)
Manuel Pégourié-Gonnard84338242012-11-11 20:45:18 +01001029 grp->modp = ecp_mod_p192;
Manuel Pégourié-Gonnardc04c5302013-10-23 16:11:52 +02001030#endif
Manuel Pégourié-Gonnarda5402fe2012-11-07 20:24:05 +01001031 return( ecp_group_read_string( grp, 16,
Manuel Pégourié-Gonnarddada4da2012-11-10 14:23:17 +01001032 SECP192R1_P, SECP192R1_B,
1033 SECP192R1_GX, SECP192R1_GY, SECP192R1_N ) );
Paul Bakker5dc6b5f2013-06-29 23:26:34 +02001034#endif /* POLARSSL_ECP_DP_SECP192R1_ENABLED */
Manuel Pégourié-Gonnarddada4da2012-11-10 14:23:17 +01001035
Paul Bakker5dc6b5f2013-06-29 23:26:34 +02001036#if defined(POLARSSL_ECP_DP_SECP224R1_ENABLED)
Manuel Pégourié-Gonnarda5402fe2012-11-07 20:24:05 +01001037 case POLARSSL_ECP_DP_SECP224R1:
Manuel Pégourié-Gonnardc04c5302013-10-23 16:11:52 +02001038#if defined(POLARSSL_ECP_NIST_OPTIM)
Manuel Pégourié-Gonnarde783f062013-10-21 14:52:21 +02001039 grp->modp = ecp_mod_p224;
Manuel Pégourié-Gonnardc04c5302013-10-23 16:11:52 +02001040#endif
Manuel Pégourié-Gonnarda5402fe2012-11-07 20:24:05 +01001041 return( ecp_group_read_string( grp, 16,
Manuel Pégourié-Gonnarddada4da2012-11-10 14:23:17 +01001042 SECP224R1_P, SECP224R1_B,
1043 SECP224R1_GX, SECP224R1_GY, SECP224R1_N ) );
Paul Bakker5dc6b5f2013-06-29 23:26:34 +02001044#endif /* POLARSSL_ECP_DP_SECP224R1_ENABLED */
Manuel Pégourié-Gonnarddada4da2012-11-10 14:23:17 +01001045
Paul Bakker5dc6b5f2013-06-29 23:26:34 +02001046#if defined(POLARSSL_ECP_DP_SECP256R1_ENABLED)
Manuel Pégourié-Gonnarda5402fe2012-11-07 20:24:05 +01001047 case POLARSSL_ECP_DP_SECP256R1:
Manuel Pégourié-Gonnardc04c5302013-10-23 16:11:52 +02001048#if defined(POLARSSL_ECP_NIST_OPTIM)
Manuel Pégourié-Gonnardec655c92013-10-23 14:50:39 +02001049 grp->modp = ecp_mod_p256;
Manuel Pégourié-Gonnardc04c5302013-10-23 16:11:52 +02001050#endif
Manuel Pégourié-Gonnarda5402fe2012-11-07 20:24:05 +01001051 return( ecp_group_read_string( grp, 16,
Manuel Pégourié-Gonnarddada4da2012-11-10 14:23:17 +01001052 SECP256R1_P, SECP256R1_B,
1053 SECP256R1_GX, SECP256R1_GY, SECP256R1_N ) );
Paul Bakker5dc6b5f2013-06-29 23:26:34 +02001054#endif /* POLARSSL_ECP_DP_SECP256R1_ENABLED */
Manuel Pégourié-Gonnarddada4da2012-11-10 14:23:17 +01001055
Paul Bakker5dc6b5f2013-06-29 23:26:34 +02001056#if defined(POLARSSL_ECP_DP_SECP384R1_ENABLED)
Manuel Pégourié-Gonnarda5402fe2012-11-07 20:24:05 +01001057 case POLARSSL_ECP_DP_SECP384R1:
Manuel Pégourié-Gonnardc04c5302013-10-23 16:11:52 +02001058#if defined(POLARSSL_ECP_NIST_OPTIM)
Manuel Pégourié-Gonnard0f9149c2013-10-23 15:06:37 +02001059 grp->modp = ecp_mod_p384;
Manuel Pégourié-Gonnardc04c5302013-10-23 16:11:52 +02001060#endif
Manuel Pégourié-Gonnarda5402fe2012-11-07 20:24:05 +01001061 return( ecp_group_read_string( grp, 16,
Manuel Pégourié-Gonnarddada4da2012-11-10 14:23:17 +01001062 SECP384R1_P, SECP384R1_B,
1063 SECP384R1_GX, SECP384R1_GY, SECP384R1_N ) );
Paul Bakker5dc6b5f2013-06-29 23:26:34 +02001064#endif /* POLARSSL_ECP_DP_SECP384R1_ENABLED */
Manuel Pégourié-Gonnarddada4da2012-11-10 14:23:17 +01001065
Paul Bakker5dc6b5f2013-06-29 23:26:34 +02001066#if defined(POLARSSL_ECP_DP_SECP521R1_ENABLED)
Manuel Pégourié-Gonnarda5402fe2012-11-07 20:24:05 +01001067 case POLARSSL_ECP_DP_SECP521R1:
Manuel Pégourié-Gonnardc04c5302013-10-23 16:11:52 +02001068#if defined(POLARSSL_ECP_NIST_OPTIM)
Manuel Pégourié-Gonnard62aad142012-11-10 00:27:12 +01001069 grp->modp = ecp_mod_p521;
Manuel Pégourié-Gonnardc04c5302013-10-23 16:11:52 +02001070#endif
Manuel Pégourié-Gonnarda5402fe2012-11-07 20:24:05 +01001071 return( ecp_group_read_string( grp, 16,
Manuel Pégourié-Gonnarddada4da2012-11-10 14:23:17 +01001072 SECP521R1_P, SECP521R1_B,
1073 SECP521R1_GX, SECP521R1_GY, SECP521R1_N ) );
Paul Bakker5dc6b5f2013-06-29 23:26:34 +02001074#endif /* POLARSSL_ECP_DP_SECP521R1_ENABLED */
Manuel Pégourié-Gonnarda5402fe2012-11-07 20:24:05 +01001075
Manuel Pégourié-Gonnarda070ada2013-10-08 12:04:56 +02001076#if defined(POLARSSL_ECP_DP_BP256R1_ENABLED)
1077 case POLARSSL_ECP_DP_BP256R1:
1078 return( ecp_group_read_string_gen( grp, 16,
1079 BP256R1_P, BP256R1_A, BP256R1_B,
1080 BP256R1_GX, BP256R1_GY, BP256R1_N ) );
1081#endif /* POLARSSL_ECP_DP_BP256R1_ENABLED */
1082
1083#if defined(POLARSSL_ECP_DP_BP384R1_ENABLED)
1084 case POLARSSL_ECP_DP_BP384R1:
1085 return( ecp_group_read_string_gen( grp, 16,
1086 BP384R1_P, BP384R1_A, BP384R1_B,
1087 BP384R1_GX, BP384R1_GY, BP384R1_N ) );
1088#endif /* POLARSSL_ECP_DP_BP384R1_ENABLED */
1089
1090#if defined(POLARSSL_ECP_DP_BP512R1_ENABLED)
1091 case POLARSSL_ECP_DP_BP512R1:
1092 return( ecp_group_read_string_gen( grp, 16,
1093 BP512R1_P, BP512R1_A, BP512R1_B,
1094 BP512R1_GX, BP512R1_GY, BP512R1_N ) );
1095#endif /* POLARSSL_ECP_DP_BP512R1_ENABLED */
1096
Manuel Pégourié-Gonnard70380392013-09-16 16:19:53 +02001097 default:
Manuel Pégourié-Gonnarda070ada2013-10-08 12:04:56 +02001098 ecp_group_free( grp );
Manuel Pégourié-Gonnard70380392013-09-16 16:19:53 +02001099 return( POLARSSL_ERR_ECP_FEATURE_UNAVAILABLE );
1100 }
Manuel Pégourié-Gonnard1a967282013-02-09 17:03:58 +01001101}
1102
1103/*
1104 * Set a group from an ECParameters record (RFC 4492)
1105 */
Manuel Pégourié-Gonnard7c145c62013-02-10 13:20:52 +01001106int ecp_tls_read_group( ecp_group *grp, const unsigned char **buf, size_t len )
Manuel Pégourié-Gonnard1a967282013-02-09 17:03:58 +01001107{
Manuel Pégourié-Gonnardf24b4a72013-09-23 18:14:50 +02001108 uint16_t tls_id;
1109 const ecp_curve_info *curve_info;
Manuel Pégourié-Gonnard1a967282013-02-09 17:03:58 +01001110
1111 /*
1112 * We expect at least three bytes (see below)
1113 */
1114 if( len < 3 )
1115 return( POLARSSL_ERR_ECP_BAD_INPUT_DATA );
1116
1117 /*
1118 * First byte is curve_type; only named_curve is handled
1119 */
Manuel Pégourié-Gonnard7c145c62013-02-10 13:20:52 +01001120 if( *(*buf)++ != POLARSSL_ECP_TLS_NAMED_CURVE )
Manuel Pégourié-Gonnard1a967282013-02-09 17:03:58 +01001121 return( POLARSSL_ERR_ECP_BAD_INPUT_DATA );
1122
1123 /*
Manuel Pégourié-Gonnardb3258872013-02-10 12:06:19 +01001124 * Next two bytes are the namedcurve value
Manuel Pégourié-Gonnard1a967282013-02-09 17:03:58 +01001125 */
Manuel Pégourié-Gonnardf24b4a72013-09-23 18:14:50 +02001126 tls_id = *(*buf)++;
1127 tls_id <<= 8;
1128 tls_id |= *(*buf)++;
1129
1130 if( ( curve_info = ecp_curve_info_from_tls_id( tls_id ) ) == NULL )
1131 return( POLARSSL_ERR_ECP_FEATURE_UNAVAILABLE );
1132
1133 return ecp_use_known_dp( grp, curve_info->grp_id );
Manuel Pégourié-Gonnardb3258872013-02-10 12:06:19 +01001134}
1135
1136/*
1137 * Write the ECParameters record corresponding to a group (RFC 4492)
1138 */
1139int ecp_tls_write_group( const ecp_group *grp, size_t *olen,
1140 unsigned char *buf, size_t blen )
1141{
Manuel Pégourié-Gonnardf24b4a72013-09-23 18:14:50 +02001142 const ecp_curve_info *curve_info;
1143
1144 if( ( curve_info = ecp_curve_info_from_grp_id( grp->id ) ) == NULL )
1145 return( POLARSSL_ERR_ECP_BAD_INPUT_DATA );
Manuel Pégourié-Gonnard70380392013-09-16 16:19:53 +02001146
Manuel Pégourié-Gonnardb3258872013-02-10 12:06:19 +01001147 /*
1148 * We are going to write 3 bytes (see below)
1149 */
1150 *olen = 3;
1151 if( blen < *olen )
1152 return( POLARSSL_ERR_ECP_BUFFER_TOO_SMALL );
1153
1154 /*
1155 * First byte is curve_type, always named_curve
1156 */
1157 *buf++ = POLARSSL_ECP_TLS_NAMED_CURVE;
1158
1159 /*
1160 * Next two bytes are the namedcurve value
1161 */
Manuel Pégourié-Gonnardf24b4a72013-09-23 18:14:50 +02001162 buf[0] = curve_info->tls_id >> 8;
1163 buf[1] = curve_info->tls_id & 0xFF;
Manuel Pégourié-Gonnardb3258872013-02-10 12:06:19 +01001164
1165 return 0;
Manuel Pégourié-Gonnarda5402fe2012-11-07 20:24:05 +01001166}
Manuel Pégourié-Gonnardab38b702012-11-05 17:34:55 +01001167
Manuel Pégourié-Gonnard568c9cf2013-09-16 17:30:04 +02001168/*
Manuel Pégourié-Gonnardf24b4a72013-09-23 18:14:50 +02001169 * Get the curve info from the TLS identifier
Manuel Pégourié-Gonnard568c9cf2013-09-16 17:30:04 +02001170 */
Manuel Pégourié-Gonnardf24b4a72013-09-23 18:14:50 +02001171const ecp_curve_info *ecp_curve_info_from_tls_id( uint16_t tls_id )
Manuel Pégourié-Gonnard70380392013-09-16 16:19:53 +02001172{
Manuel Pégourié-Gonnarda79d1232013-09-17 15:42:35 +02001173 const ecp_curve_info *curve_info;
Manuel Pégourié-Gonnard568c9cf2013-09-16 17:30:04 +02001174
Manuel Pégourié-Gonnardda179e42013-09-18 15:31:24 +02001175 for( curve_info = ecp_curve_list();
Manuel Pégourié-Gonnard568c9cf2013-09-16 17:30:04 +02001176 curve_info->grp_id != POLARSSL_ECP_DP_NONE;
1177 curve_info++ )
Manuel Pégourié-Gonnard70380392013-09-16 16:19:53 +02001178 {
Manuel Pégourié-Gonnard56cd3192013-09-17 17:23:07 +02001179 if( curve_info->tls_id == tls_id )
Manuel Pégourié-Gonnardf24b4a72013-09-23 18:14:50 +02001180 return( curve_info );
Manuel Pégourié-Gonnard70380392013-09-16 16:19:53 +02001181 }
Manuel Pégourié-Gonnard568c9cf2013-09-16 17:30:04 +02001182
Manuel Pégourié-Gonnardf24b4a72013-09-23 18:14:50 +02001183 return( NULL );
Manuel Pégourié-Gonnard70380392013-09-16 16:19:53 +02001184}
1185
Manuel Pégourié-Gonnard568c9cf2013-09-16 17:30:04 +02001186/*
Manuel Pégourié-Gonnardf24b4a72013-09-23 18:14:50 +02001187 * Get the curve info for the internal identifer
Manuel Pégourié-Gonnard568c9cf2013-09-16 17:30:04 +02001188 */
Manuel Pégourié-Gonnardf24b4a72013-09-23 18:14:50 +02001189const ecp_curve_info *ecp_curve_info_from_grp_id( ecp_group_id grp_id )
Manuel Pégourié-Gonnard70380392013-09-16 16:19:53 +02001190{
Manuel Pégourié-Gonnarda79d1232013-09-17 15:42:35 +02001191 const ecp_curve_info *curve_info;
Manuel Pégourié-Gonnard568c9cf2013-09-16 17:30:04 +02001192
Manuel Pégourié-Gonnardda179e42013-09-18 15:31:24 +02001193 for( curve_info = ecp_curve_list();
Manuel Pégourié-Gonnard568c9cf2013-09-16 17:30:04 +02001194 curve_info->grp_id != POLARSSL_ECP_DP_NONE;
1195 curve_info++ )
Manuel Pégourié-Gonnard70380392013-09-16 16:19:53 +02001196 {
Manuel Pégourié-Gonnard56cd3192013-09-17 17:23:07 +02001197 if( curve_info->grp_id == grp_id )
Manuel Pégourié-Gonnardf24b4a72013-09-23 18:14:50 +02001198 return( curve_info );
Manuel Pégourié-Gonnard70380392013-09-16 16:19:53 +02001199 }
Manuel Pégourié-Gonnard568c9cf2013-09-16 17:30:04 +02001200
Manuel Pégourié-Gonnardf24b4a72013-09-23 18:14:50 +02001201 return( NULL );
Manuel Pégourié-Gonnard70380392013-09-16 16:19:53 +02001202}
Manuel Pégourié-Gonnard568c9cf2013-09-16 17:30:04 +02001203
Manuel Pégourié-Gonnard847395a2012-11-05 13:13:44 +01001204/*
Manuel Pégourié-Gonnard47123252012-11-10 14:44:24 +01001205 * Fast mod-p functions expect their argument to be in the 0..p^2 range.
Manuel Pégourié-Gonnarddada4da2012-11-10 14:23:17 +01001206 *
Manuel Pégourié-Gonnard47123252012-11-10 14:44:24 +01001207 * In order to guarantee that, we need to ensure that operands of
1208 * mpi_mul_mpi are in the 0..p range. So, after each operation we will
Manuel Pégourié-Gonnarddada4da2012-11-10 14:23:17 +01001209 * bring the result back to this range.
1210 *
Manuel Pégourié-Gonnard47123252012-11-10 14:44:24 +01001211 * The following macros are shortcuts for doing that.
Manuel Pégourié-Gonnarddada4da2012-11-10 14:23:17 +01001212 */
1213
1214/*
Manuel Pégourié-Gonnard84d1aea2012-11-09 02:09:38 +01001215 * Reduce a mpi mod p in-place, general case, to use after mpi_mul_mpi
1216 */
Manuel Pégourié-Gonnard62aad142012-11-10 00:27:12 +01001217#define MOD_MUL( N ) MPI_CHK( ecp_modp( &N, grp ) )
Manuel Pégourié-Gonnard84d1aea2012-11-09 02:09:38 +01001218
1219/*
1220 * Reduce a mpi mod p in-place, to use after mpi_sub_mpi
Manuel Pégourié-Gonnardc9e387c2013-10-17 17:15:35 +02001221 * N->s < 0 is a very fast test, which fails only if N is 0
Manuel Pégourié-Gonnard84d1aea2012-11-09 02:09:38 +01001222 */
1223#define MOD_SUB( N ) \
Manuel Pégourié-Gonnardc9e387c2013-10-17 17:15:35 +02001224 while( N.s < 0 && mpi_cmp_int( &N, 0 ) != 0 ) \
Manuel Pégourié-Gonnard84d1aea2012-11-09 02:09:38 +01001225 MPI_CHK( mpi_add_mpi( &N, &N, &grp->P ) )
1226
1227/*
Manuel Pégourié-Gonnardc9e387c2013-10-17 17:15:35 +02001228 * Reduce a mpi mod p in-place, to use after mpi_add_mpi and mpi_mul_int.
1229 * We known P, N and the result are positive, so sub_abs is correct, and
1230 * a bit faster.
Manuel Pégourié-Gonnard84d1aea2012-11-09 02:09:38 +01001231 */
1232#define MOD_ADD( N ) \
1233 while( mpi_cmp_mpi( &N, &grp->P ) >= 0 ) \
Manuel Pégourié-Gonnardc9e387c2013-10-17 17:15:35 +02001234 MPI_CHK( mpi_sub_abs( &N, &N, &grp->P ) )
Manuel Pégourié-Gonnard84d1aea2012-11-09 02:09:38 +01001235
1236/*
Manuel Pégourié-Gonnard1c2782c2012-11-19 20:16:28 +01001237 * Normalize jacobian coordinates so that Z == 0 || Z == 1 (GECC 3.2.1)
Manuel Pégourié-Gonnardd070f512012-11-08 17:40:51 +01001238 */
Manuel Pégourié-Gonnard1c2782c2012-11-19 20:16:28 +01001239static int ecp_normalize( const ecp_group *grp, ecp_point *pt )
Manuel Pégourié-Gonnardd070f512012-11-08 17:40:51 +01001240{
Manuel Pégourié-Gonnard47123252012-11-10 14:44:24 +01001241 int ret;
Manuel Pégourié-Gonnardcdd44322012-11-21 16:00:55 +01001242 mpi Zi, ZZi;
Manuel Pégourié-Gonnardd070f512012-11-08 17:40:51 +01001243
Manuel Pégourié-Gonnard1c2782c2012-11-19 20:16:28 +01001244 if( mpi_cmp_int( &pt->Z, 0 ) == 0 )
Manuel Pégourié-Gonnardd070f512012-11-08 17:40:51 +01001245 return( 0 );
Manuel Pégourié-Gonnardd070f512012-11-08 17:40:51 +01001246
Manuel Pégourié-Gonnardcdd44322012-11-21 16:00:55 +01001247 mpi_init( &Zi ); mpi_init( &ZZi );
Manuel Pégourié-Gonnardd070f512012-11-08 17:40:51 +01001248
Manuel Pégourié-Gonnard1c2782c2012-11-19 20:16:28 +01001249 /*
1250 * X = X / Z^2 mod p
1251 */
1252 MPI_CHK( mpi_inv_mod( &Zi, &pt->Z, &grp->P ) );
1253 MPI_CHK( mpi_mul_mpi( &ZZi, &Zi, &Zi ) ); MOD_MUL( ZZi );
1254 MPI_CHK( mpi_mul_mpi( &pt->X, &pt->X, &ZZi ) ); MOD_MUL( pt->X );
Manuel Pégourié-Gonnardd070f512012-11-08 17:40:51 +01001255
1256 /*
Manuel Pégourié-Gonnard1c2782c2012-11-19 20:16:28 +01001257 * Y = Y / Z^3 mod p
Manuel Pégourié-Gonnardd070f512012-11-08 17:40:51 +01001258 */
Manuel Pégourié-Gonnard1c2782c2012-11-19 20:16:28 +01001259 MPI_CHK( mpi_mul_mpi( &pt->Y, &pt->Y, &ZZi ) ); MOD_MUL( pt->Y );
1260 MPI_CHK( mpi_mul_mpi( &pt->Y, &pt->Y, &Zi ) ); MOD_MUL( pt->Y );
Manuel Pégourié-Gonnardd070f512012-11-08 17:40:51 +01001261
1262 /*
Manuel Pégourié-Gonnard1c2782c2012-11-19 20:16:28 +01001263 * Z = 1
Manuel Pégourié-Gonnardd070f512012-11-08 17:40:51 +01001264 */
Manuel Pégourié-Gonnard1c2782c2012-11-19 20:16:28 +01001265 MPI_CHK( mpi_lset( &pt->Z, 1 ) );
Manuel Pégourié-Gonnardd070f512012-11-08 17:40:51 +01001266
1267cleanup:
1268
Manuel Pégourié-Gonnardcdd44322012-11-21 16:00:55 +01001269 mpi_free( &Zi ); mpi_free( &ZZi );
Manuel Pégourié-Gonnardd070f512012-11-08 17:40:51 +01001270
1271 return( ret );
1272}
1273
1274/*
Manuel Pégourié-Gonnardcdd44322012-11-21 16:00:55 +01001275 * Normalize jacobian coordinates of an array of points,
Manuel Pégourié-Gonnard3680c822012-11-21 18:49:45 +01001276 * using Montgomery's trick to perform only one inversion mod P.
Manuel Pégourié-Gonnardcdd44322012-11-21 16:00:55 +01001277 * (See for example Cohen's "A Course in Computational Algebraic Number
1278 * Theory", Algorithm 10.3.4.)
1279 *
Manuel Pégourié-Gonnard07de4b12013-09-02 16:26:04 +02001280 * Warning: fails (returning an error) if one of the points is zero!
Manuel Pégourié-Gonnard3680c822012-11-21 18:49:45 +01001281 * This should never happen, see choice of w in ecp_mul().
Manuel Pégourié-Gonnardcdd44322012-11-21 16:00:55 +01001282 */
1283static int ecp_normalize_many( const ecp_group *grp,
1284 ecp_point T[], size_t t_len )
1285{
1286 int ret;
1287 size_t i;
1288 mpi *c, u, Zi, ZZi;
1289
1290 if( t_len < 2 )
1291 return( ecp_normalize( grp, T ) );
1292
Paul Bakker6e339b52013-07-03 13:37:05 +02001293 if( ( c = (mpi *) polarssl_malloc( t_len * sizeof( mpi ) ) ) == NULL )
Manuel Pégourié-Gonnard456d3b92013-09-16 18:04:38 +02001294 return( POLARSSL_ERR_ECP_MALLOC_FAILED );
Manuel Pégourié-Gonnardcdd44322012-11-21 16:00:55 +01001295
1296 mpi_init( &u ); mpi_init( &Zi ); mpi_init( &ZZi );
1297 for( i = 0; i < t_len; i++ )
1298 mpi_init( &c[i] );
1299
1300 /*
1301 * c[i] = Z_0 * ... * Z_i
1302 */
1303 MPI_CHK( mpi_copy( &c[0], &T[0].Z ) );
1304 for( i = 1; i < t_len; i++ )
1305 {
1306 MPI_CHK( mpi_mul_mpi( &c[i], &c[i-1], &T[i].Z ) );
1307 MOD_MUL( c[i] );
1308 }
1309
1310 /*
1311 * u = 1 / (Z_0 * ... * Z_n) mod P
1312 */
1313 MPI_CHK( mpi_inv_mod( &u, &c[t_len-1], &grp->P ) );
1314
1315 for( i = t_len - 1; ; i-- )
1316 {
1317 /*
1318 * Zi = 1 / Z_i mod p
1319 * u = 1 / (Z_0 * ... * Z_i) mod P
1320 */
1321 if( i == 0 ) {
1322 MPI_CHK( mpi_copy( &Zi, &u ) );
1323 }
1324 else
1325 {
1326 MPI_CHK( mpi_mul_mpi( &Zi, &u, &c[i-1] ) ); MOD_MUL( Zi );
1327 MPI_CHK( mpi_mul_mpi( &u, &u, &T[i].Z ) ); MOD_MUL( u );
1328 }
1329
1330 /*
1331 * proceed as in normalize()
1332 */
1333 MPI_CHK( mpi_mul_mpi( &ZZi, &Zi, &Zi ) ); MOD_MUL( ZZi );
1334 MPI_CHK( mpi_mul_mpi( &T[i].X, &T[i].X, &ZZi ) ); MOD_MUL( T[i].X );
1335 MPI_CHK( mpi_mul_mpi( &T[i].Y, &T[i].Y, &ZZi ) ); MOD_MUL( T[i].Y );
1336 MPI_CHK( mpi_mul_mpi( &T[i].Y, &T[i].Y, &Zi ) ); MOD_MUL( T[i].Y );
1337 MPI_CHK( mpi_lset( &T[i].Z, 1 ) );
1338
1339 if( i == 0 )
1340 break;
1341 }
1342
1343cleanup:
1344
1345 mpi_free( &u ); mpi_free( &Zi ); mpi_free( &ZZi );
1346 for( i = 0; i < t_len; i++ )
1347 mpi_free( &c[i] );
Paul Bakker6e339b52013-07-03 13:37:05 +02001348 polarssl_free( c );
Manuel Pégourié-Gonnardcdd44322012-11-21 16:00:55 +01001349
1350 return( ret );
1351}
1352
Manuel Pégourié-Gonnardcdd44322012-11-21 16:00:55 +01001353/*
Manuel Pégourié-Gonnard0cd6f982013-10-10 15:55:39 +02001354 * Point doubling R = 2 P, Jacobian coordinates
Manuel Pégourié-Gonnard0ace4b32013-10-10 12:44:27 +02001355 *
Manuel Pégourié-Gonnard1c4aa242013-10-09 16:09:46 +02001356 * http://www.hyperelliptic.org/EFD/g1p/auto-code/shortw/jacobian/doubling/dbl-2007-bl.op3
Manuel Pégourié-Gonnard0ace4b32013-10-10 12:44:27 +02001357 * with heavy variable renaming, some reordering and one minor modification
1358 * (a = 2 * b, c = d - 2a replaced with c = d, c = c - b, c = c - b)
1359 * in order to use a lot less intermediate variables (6 vs 25).
Manuel Pégourié-Gonnard1c4aa242013-10-09 16:09:46 +02001360 */
Manuel Pégourié-Gonnard0cd6f982013-10-10 15:55:39 +02001361static int ecp_double_jac( const ecp_group *grp, ecp_point *R,
1362 const ecp_point *P )
Manuel Pégourié-Gonnard1c4aa242013-10-09 16:09:46 +02001363{
1364 int ret;
Manuel Pégourié-Gonnard0ace4b32013-10-10 12:44:27 +02001365 mpi T1, T2, T3, X3, Y3, Z3;
Manuel Pégourié-Gonnard1c4aa242013-10-09 16:09:46 +02001366
Manuel Pégourié-Gonnard0cd6f982013-10-10 15:55:39 +02001367#if defined(POLARSSL_SELF_TEST)
1368 dbl_count++;
1369#endif
1370
Manuel Pégourié-Gonnard0ace4b32013-10-10 12:44:27 +02001371 mpi_init( &T1 ); mpi_init( &T2 ); mpi_init( &T3 );
1372 mpi_init( &X3 ); mpi_init( &Y3 ); mpi_init( &Z3 );
Manuel Pégourié-Gonnard1c4aa242013-10-09 16:09:46 +02001373
Manuel Pégourié-Gonnard0ace4b32013-10-10 12:44:27 +02001374 MPI_CHK( mpi_mul_mpi( &T3, &P->X, &P->X ) ); MOD_MUL( T3 );
1375 MPI_CHK( mpi_mul_mpi( &T2, &P->Y, &P->Y ) ); MOD_MUL( T2 );
1376 MPI_CHK( mpi_mul_mpi( &Y3, &T2, &T2 ) ); MOD_MUL( Y3 );
1377 MPI_CHK( mpi_add_mpi( &X3, &P->X, &T2 ) ); MOD_ADD( X3 );
1378 MPI_CHK( mpi_mul_mpi( &X3, &X3, &X3 ) ); MOD_MUL( X3 );
1379 MPI_CHK( mpi_sub_mpi( &X3, &X3, &Y3 ) ); MOD_SUB( X3 );
1380 MPI_CHK( mpi_sub_mpi( &X3, &X3, &T3 ) ); MOD_SUB( X3 );
1381 MPI_CHK( mpi_mul_int( &T1, &X3, 2 ) ); MOD_ADD( T1 );
1382 MPI_CHK( mpi_mul_mpi( &Z3, &P->Z, &P->Z ) ); MOD_MUL( Z3 );
1383 MPI_CHK( mpi_mul_mpi( &X3, &Z3, &Z3 ) ); MOD_MUL( X3 );
1384 MPI_CHK( mpi_mul_int( &T3, &T3, 3 ) ); MOD_ADD( T3 );
1385 MPI_CHK( mpi_mul_mpi( &X3, &X3, &grp->A ) ); MOD_MUL( X3 );
1386 MPI_CHK( mpi_add_mpi( &T3, &T3, &X3 ) ); MOD_ADD( T3 );
1387 MPI_CHK( mpi_mul_mpi( &X3, &T3, &T3 ) ); MOD_MUL( X3 );
1388 MPI_CHK( mpi_sub_mpi( &X3, &X3, &T1 ) ); MOD_SUB( X3 );
1389 MPI_CHK( mpi_sub_mpi( &X3, &X3, &T1 ) ); MOD_SUB( X3 );
1390 MPI_CHK( mpi_sub_mpi( &T1, &T1, &X3 ) ); MOD_SUB( T1 );
1391 MPI_CHK( mpi_mul_mpi( &T1, &T3, &T1 ) ); MOD_MUL( T1 );
1392 MPI_CHK( mpi_mul_int( &T3, &Y3, 8 ) ); MOD_ADD( T3 );
1393 MPI_CHK( mpi_sub_mpi( &Y3, &T1, &T3 ) ); MOD_SUB( Y3 );
1394 MPI_CHK( mpi_add_mpi( &T1, &P->Y, &P->Z ) ); MOD_ADD( T1 );
1395 MPI_CHK( mpi_mul_mpi( &T1, &T1, &T1 ) ); MOD_MUL( T1 );
1396 MPI_CHK( mpi_sub_mpi( &T1, &T1, &T2 ) ); MOD_SUB( T1 );
1397 MPI_CHK( mpi_sub_mpi( &Z3, &T1, &Z3 ) ); MOD_SUB( Z3 );
Manuel Pégourié-Gonnard1c4aa242013-10-09 16:09:46 +02001398
1399 MPI_CHK( mpi_copy( &R->X, &X3 ) );
1400 MPI_CHK( mpi_copy( &R->Y, &Y3 ) );
1401 MPI_CHK( mpi_copy( &R->Z, &Z3 ) );
1402
1403cleanup:
Manuel Pégourié-Gonnard0ace4b32013-10-10 12:44:27 +02001404 mpi_free( &T1 ); mpi_free( &T2 ); mpi_free( &T3 );
1405 mpi_free( &X3 ); mpi_free( &Y3 ); mpi_free( &Z3 );
Manuel Pégourié-Gonnard1c4aa242013-10-09 16:09:46 +02001406
1407 return( ret );
1408}
1409
1410/*
Manuel Pégourié-Gonnard9674fd02012-11-19 21:23:27 +01001411 * Addition or subtraction: R = P + Q or R = P + Q,
1412 * mixed affine-Jacobian coordinates (GECC 3.22)
1413 *
1414 * The coordinates of Q must be normalized (= affine),
1415 * but those of P don't need to. R is not normalized.
1416 *
1417 * If sign >= 0, perform addition, otherwise perform subtraction,
1418 * taking advantage of the fact that, for Q != 0, we have
1419 * -Q = (Q.X, -Q.Y, Q.Z)
Manuel Pégourié-Gonnardae180d02012-11-02 18:14:40 +01001420 */
Manuel Pégourié-Gonnard1c2782c2012-11-19 20:16:28 +01001421static int ecp_add_mixed( const ecp_group *grp, ecp_point *R,
Manuel Pégourié-Gonnard9674fd02012-11-19 21:23:27 +01001422 const ecp_point *P, const ecp_point *Q,
1423 signed char sign )
Manuel Pégourié-Gonnardae180d02012-11-02 18:14:40 +01001424{
Manuel Pégourié-Gonnard47123252012-11-10 14:44:24 +01001425 int ret;
Manuel Pégourié-Gonnard7e0adfb2012-11-08 23:21:46 +01001426 mpi T1, T2, T3, T4, X, Y, Z;
Manuel Pégourié-Gonnardae180d02012-11-02 18:14:40 +01001427
Manuel Pégourié-Gonnardb4a310b2012-11-13 20:57:00 +01001428#if defined(POLARSSL_SELF_TEST)
1429 add_count++;
1430#endif
1431
Manuel Pégourié-Gonnardae180d02012-11-02 18:14:40 +01001432 /*
Manuel Pégourié-Gonnard7e0adfb2012-11-08 23:21:46 +01001433 * Trivial cases: P == 0 or Q == 0
Manuel Pégourié-Gonnard9674fd02012-11-19 21:23:27 +01001434 * (Check Q first, so that we know Q != 0 when we compute -Q.)
Manuel Pégourié-Gonnardae180d02012-11-02 18:14:40 +01001435 */
Manuel Pégourié-Gonnard1c2782c2012-11-19 20:16:28 +01001436 if( mpi_cmp_int( &Q->Z, 0 ) == 0 )
1437 return( ecp_copy( R, P ) );
1438
Manuel Pégourié-Gonnard9674fd02012-11-19 21:23:27 +01001439 if( mpi_cmp_int( &P->Z, 0 ) == 0 )
1440 {
1441 ret = ecp_copy( R, Q );
1442
1443 /*
1444 * -R.Y mod P = P - R.Y unless R.Y == 0
1445 */
1446 if( ret == 0 && sign < 0)
1447 if( mpi_cmp_int( &R->Y, 0 ) != 0 )
1448 ret = mpi_sub_mpi( &R->Y, &grp->P, &R->Y );
1449
1450 return( ret );
1451 }
1452
Manuel Pégourié-Gonnard1c2782c2012-11-19 20:16:28 +01001453 /*
1454 * Make sure Q coordinates are normalized
1455 */
1456 if( mpi_cmp_int( &Q->Z, 1 ) != 0 )
Manuel Pégourié-Gonnard456d3b92013-09-16 18:04:38 +02001457 return( POLARSSL_ERR_ECP_BAD_INPUT_DATA );
Manuel Pégourié-Gonnardae180d02012-11-02 18:14:40 +01001458
Manuel Pégourié-Gonnard7e0adfb2012-11-08 23:21:46 +01001459 mpi_init( &T1 ); mpi_init( &T2 ); mpi_init( &T3 ); mpi_init( &T4 );
1460 mpi_init( &X ); mpi_init( &Y ); mpi_init( &Z );
Manuel Pégourié-Gonnardab38b702012-11-05 17:34:55 +01001461
Manuel Pégourié-Gonnard47123252012-11-10 14:44:24 +01001462 MPI_CHK( mpi_mul_mpi( &T1, &P->Z, &P->Z ) ); MOD_MUL( T1 );
1463 MPI_CHK( mpi_mul_mpi( &T2, &T1, &P->Z ) ); MOD_MUL( T2 );
1464 MPI_CHK( mpi_mul_mpi( &T1, &T1, &Q->X ) ); MOD_MUL( T1 );
1465 MPI_CHK( mpi_mul_mpi( &T2, &T2, &Q->Y ) ); MOD_MUL( T2 );
Manuel Pégourié-Gonnard9674fd02012-11-19 21:23:27 +01001466
1467 /*
1468 * For subtraction, -Q.Y should have been used instead of Q.Y,
1469 * so we replace T2 by -T2, which is P - T2 mod P
1470 */
1471 if( sign < 0 )
1472 {
1473 MPI_CHK( mpi_sub_mpi( &T2, &grp->P, &T2 ) );
1474 MOD_SUB( T2 );
1475 }
1476
Manuel Pégourié-Gonnard47123252012-11-10 14:44:24 +01001477 MPI_CHK( mpi_sub_mpi( &T1, &T1, &P->X ) ); MOD_SUB( T1 );
1478 MPI_CHK( mpi_sub_mpi( &T2, &T2, &P->Y ) ); MOD_SUB( T2 );
Manuel Pégourié-Gonnardae180d02012-11-02 18:14:40 +01001479
Manuel Pégourié-Gonnard7e0adfb2012-11-08 23:21:46 +01001480 if( mpi_cmp_int( &T1, 0 ) == 0 )
1481 {
1482 if( mpi_cmp_int( &T2, 0 ) == 0 )
1483 {
1484 ret = ecp_double_jac( grp, R, P );
1485 goto cleanup;
1486 }
1487 else
1488 {
Manuel Pégourié-Gonnard1c2782c2012-11-19 20:16:28 +01001489 ret = ecp_set_zero( R );
Manuel Pégourié-Gonnard7e0adfb2012-11-08 23:21:46 +01001490 goto cleanup;
1491 }
1492 }
1493
Manuel Pégourié-Gonnard47123252012-11-10 14:44:24 +01001494 MPI_CHK( mpi_mul_mpi( &Z, &P->Z, &T1 ) ); MOD_MUL( Z );
1495 MPI_CHK( mpi_mul_mpi( &T3, &T1, &T1 ) ); MOD_MUL( T3 );
1496 MPI_CHK( mpi_mul_mpi( &T4, &T3, &T1 ) ); MOD_MUL( T4 );
1497 MPI_CHK( mpi_mul_mpi( &T3, &T3, &P->X ) ); MOD_MUL( T3 );
1498 MPI_CHK( mpi_mul_int( &T1, &T3, 2 ) ); MOD_ADD( T1 );
1499 MPI_CHK( mpi_mul_mpi( &X, &T2, &T2 ) ); MOD_MUL( X );
1500 MPI_CHK( mpi_sub_mpi( &X, &X, &T1 ) ); MOD_SUB( X );
1501 MPI_CHK( mpi_sub_mpi( &X, &X, &T4 ) ); MOD_SUB( X );
1502 MPI_CHK( mpi_sub_mpi( &T3, &T3, &X ) ); MOD_SUB( T3 );
1503 MPI_CHK( mpi_mul_mpi( &T3, &T3, &T2 ) ); MOD_MUL( T3 );
1504 MPI_CHK( mpi_mul_mpi( &T4, &T4, &P->Y ) ); MOD_MUL( T4 );
1505 MPI_CHK( mpi_sub_mpi( &Y, &T3, &T4 ) ); MOD_SUB( Y );
Manuel Pégourié-Gonnard7e0adfb2012-11-08 23:21:46 +01001506
Manuel Pégourié-Gonnard84d1aea2012-11-09 02:09:38 +01001507 MPI_CHK( mpi_copy( &R->X, &X ) );
1508 MPI_CHK( mpi_copy( &R->Y, &Y ) );
1509 MPI_CHK( mpi_copy( &R->Z, &Z ) );
Manuel Pégourié-Gonnardae180d02012-11-02 18:14:40 +01001510
1511cleanup:
1512
Manuel Pégourié-Gonnard7e0adfb2012-11-08 23:21:46 +01001513 mpi_free( &T1 ); mpi_free( &T2 ); mpi_free( &T3 ); mpi_free( &T4 );
1514 mpi_free( &X ); mpi_free( &Y ); mpi_free( &Z );
Manuel Pégourié-Gonnardae180d02012-11-02 18:14:40 +01001515
1516 return( ret );
1517}
1518
1519/*
Manuel Pégourié-Gonnard1c2782c2012-11-19 20:16:28 +01001520 * Addition: R = P + Q, result's coordinates normalized
Manuel Pégourié-Gonnardae180d02012-11-02 18:14:40 +01001521 */
1522int ecp_add( const ecp_group *grp, ecp_point *R,
1523 const ecp_point *P, const ecp_point *Q )
1524{
Manuel Pégourié-Gonnard47123252012-11-10 14:44:24 +01001525 int ret;
Manuel Pégourié-Gonnard989c32b2012-11-08 22:02:42 +01001526
Manuel Pégourié-Gonnard9674fd02012-11-19 21:23:27 +01001527 MPI_CHK( ecp_add_mixed( grp, R, P, Q , 1 ) );
1528 MPI_CHK( ecp_normalize( grp, R ) );
1529
1530cleanup:
1531 return( ret );
1532}
1533
1534/*
1535 * Subtraction: R = P - Q, result's coordinates normalized
1536 */
1537int ecp_sub( const ecp_group *grp, ecp_point *R,
1538 const ecp_point *P, const ecp_point *Q )
1539{
1540 int ret;
1541
1542 MPI_CHK( ecp_add_mixed( grp, R, P, Q, -1 ) );
Manuel Pégourié-Gonnard1c2782c2012-11-19 20:16:28 +01001543 MPI_CHK( ecp_normalize( grp, R ) );
Manuel Pégourié-Gonnardae180d02012-11-02 18:14:40 +01001544
Manuel Pégourié-Gonnard989c32b2012-11-08 22:02:42 +01001545cleanup:
Manuel Pégourié-Gonnard7e0adfb2012-11-08 23:21:46 +01001546 return( ret );
Manuel Pégourié-Gonnardae180d02012-11-02 18:14:40 +01001547}
1548
Manuel Pégourié-Gonnardefaa31e2012-11-06 21:34:35 +01001549/*
Manuel Pégourié-Gonnard85556072012-11-17 19:54:20 +01001550 * Compute a modified width-w non-adjacent form (NAF) of a number,
Manuel Pégourié-Gonnard07de4b12013-09-02 16:26:04 +02001551 * with a fixed pattern for resistance to simple timing attacks (even SPA),
1552 * see [1]. (The resulting multiplication algorithm can also been seen as a
1553 * modification of 2^w-ary multiplication, with signed coefficients, all of
1554 * them odd.)
Manuel Pégourié-Gonnard85556072012-11-17 19:54:20 +01001555 *
1556 * Input:
1557 * m must be an odd positive mpi less than w * k bits long
1558 * x must be an array of k elements
1559 * w must be less than a certain maximum (currently 8)
1560 *
1561 * The result is a sequence x[0], ..., x[k-1] with x[i] in the range
1562 * - 2^(width - 1) .. 2^(width - 1) - 1 such that
1563 * m = (2 * x[0] + 1) + 2^width * (2 * x[1] + 1) + ...
1564 * + 2^((k-1) * width) * (2 * x[k-1] + 1)
1565 *
1566 * Compared to "Algorithm SPA-resistant Width-w NAF with Odd Scalar"
1567 * p. 335 of the cited reference, here we return only u, not d_w since
1568 * it is known that the other d_w[j] will be 0. Moreover, the returned
1569 * string doesn't actually store u_i but x_i = u_i / 2 since it is known
1570 * that u_i is odd. Also, since we always select a positive value for d
1571 * mod 2^w, we don't need to check the sign of u[i-1] when the reference
1572 * does. Finally, there is an off-by-one error in the reference: the
1573 * last index should be k-1, not k.
1574 */
Manuel Pégourié-Gonnard7652a592012-11-21 10:00:45 +01001575static int ecp_w_naf_fixed( signed char x[], size_t k,
1576 unsigned char w, const mpi *m )
Manuel Pégourié-Gonnard85556072012-11-17 19:54:20 +01001577{
1578 int ret;
1579 unsigned int i, u, mask, carry;
1580 mpi M;
1581
1582 mpi_init( &M );
1583
1584 MPI_CHK( mpi_copy( &M, m ) );
1585 mask = ( 1 << w ) - 1;
1586 carry = 1 << ( w - 1 );
1587
1588 for( i = 0; i < k; i++ )
1589 {
1590 u = M.p[0] & mask;
1591
1592 if( ( u & 1 ) == 0 && i > 0 )
1593 x[i - 1] -= carry;
1594
1595 x[i] = u >> 1;
1596 mpi_shift_r( &M, w );
1597 }
1598
1599 /*
Manuel Pégourié-Gonnard456d3b92013-09-16 18:04:38 +02001600 * We should have consumed all bits, unless the input value was too big
Manuel Pégourié-Gonnard85556072012-11-17 19:54:20 +01001601 */
1602 if( mpi_cmp_int( &M, 0 ) != 0 )
Manuel Pégourié-Gonnard456d3b92013-09-16 18:04:38 +02001603 ret = POLARSSL_ERR_ECP_BAD_INPUT_DATA;
Manuel Pégourié-Gonnard85556072012-11-17 19:54:20 +01001604
1605cleanup:
1606
1607 mpi_free( &M );
1608
1609 return( ret );
1610}
1611
1612/*
Manuel Pégourié-Gonnard7652a592012-11-21 10:00:45 +01001613 * Precompute odd multiples of P up to (2 * t_len - 1) P.
1614 * The table is filled with T[i] = (2 * i + 1) P.
1615 */
Manuel Pégourié-Gonnardb63f9e92012-11-21 13:00:58 +01001616static int ecp_precompute( const ecp_group *grp,
1617 ecp_point T[], size_t t_len,
1618 const ecp_point *P )
Manuel Pégourié-Gonnard7652a592012-11-21 10:00:45 +01001619{
1620 int ret;
1621 size_t i;
1622 ecp_point PP;
1623
1624 ecp_point_init( &PP );
1625
1626 MPI_CHK( ecp_add( grp, &PP, P, P ) );
1627
1628 MPI_CHK( ecp_copy( &T[0], P ) );
1629
Manuel Pégourié-Gonnard7652a592012-11-21 10:00:45 +01001630 for( i = 1; i < t_len; i++ )
Manuel Pégourié-Gonnardcdd44322012-11-21 16:00:55 +01001631 MPI_CHK( ecp_add_mixed( grp, &T[i], &T[i-1], &PP, +1 ) );
1632
1633 /*
1634 * T[0] = P already has normalized coordinates
1635 */
Manuel Pégourié-Gonnard3680c822012-11-21 18:49:45 +01001636 MPI_CHK( ecp_normalize_many( grp, T + 1, t_len - 1 ) );
Manuel Pégourié-Gonnard7652a592012-11-21 10:00:45 +01001637
1638cleanup:
1639
1640 ecp_point_free( &PP );
1641
1642 return( ret );
1643}
1644
1645/*
Manuel Pégourié-Gonnard07de4b12013-09-02 16:26:04 +02001646 * Randomize jacobian coordinates:
1647 * (X, Y, Z) -> (l^2 X, l^3 Y, l Z) for random l
1648 * This is sort of the reverse operation of ecp_normalize().
1649 */
1650static int ecp_randomize_coordinates( const ecp_group *grp, ecp_point *pt,
1651 int (*f_rng)(void *, unsigned char *, size_t), void *p_rng )
1652{
1653 int ret;
1654 mpi l, ll;
1655 size_t p_size = (grp->pbits + 7) / 8;
1656 int count = 0;
1657
1658 mpi_init( &l ); mpi_init( &ll );
1659
1660 /* Generate l such that 1 < l < p */
1661 do
1662 {
1663 mpi_fill_random( &l, p_size, f_rng, p_rng );
1664
1665 while( mpi_cmp_mpi( &l, &grp->P ) >= 0 )
1666 mpi_shift_r( &l, 1 );
1667
1668 if( count++ > 10 )
Manuel Pégourié-Gonnard456d3b92013-09-16 18:04:38 +02001669 return( POLARSSL_ERR_ECP_RANDOM_FAILED );
Manuel Pégourié-Gonnard07de4b12013-09-02 16:26:04 +02001670 }
1671 while( mpi_cmp_int( &l, 1 ) <= 0 );
1672
1673 /* Z = l * Z */
1674 MPI_CHK( mpi_mul_mpi( &pt->Z, &pt->Z, &l ) ); MOD_MUL( pt->Z );
1675
1676 /* X = l^2 * X */
1677 MPI_CHK( mpi_mul_mpi( &ll, &l, &l ) ); MOD_MUL( ll );
1678 MPI_CHK( mpi_mul_mpi( &pt->X, &pt->X, &ll ) ); MOD_MUL( pt->X );
1679
1680 /* Y = l^3 * Y */
1681 MPI_CHK( mpi_mul_mpi( &ll, &ll, &l ) ); MOD_MUL( ll );
1682 MPI_CHK( mpi_mul_mpi( &pt->Y, &pt->Y, &ll ) ); MOD_MUL( pt->Y );
1683
1684cleanup:
1685 mpi_free( &l ); mpi_free( &ll );
1686
1687 return( ret );
1688}
1689
1690/*
Manuel Pégourié-Gonnardb63f9e92012-11-21 13:00:58 +01001691 * Maximum length of the precomputed table
1692 */
1693#define MAX_PRE_LEN ( 1 << (POLARSSL_ECP_WINDOW_SIZE - 1) )
1694
1695/*
1696 * Maximum length of the NAF: ceil( grp->nbits + 1 ) / w
1697 * (that is: grp->nbits / w + 1)
1698 * Allow p_bits + 1 bits in case M = grp->N + 1 is one bit longer than N.
1699 */
Manuel Pégourié-Gonnardb694b482013-08-08 13:30:57 +02001700#define MAX_NAF_LEN ( POLARSSL_ECP_MAX_BITS / 2 + 1 )
Manuel Pégourié-Gonnardb63f9e92012-11-21 13:00:58 +01001701
1702/*
1703 * Integer multiplication: R = m * P
1704 *
Manuel Pégourié-Gonnard07de4b12013-09-02 16:26:04 +02001705 * Based on fixed-pattern width-w NAF, see comments of ecp_w_naf_fixed().
Manuel Pégourié-Gonnardb63f9e92012-11-21 13:00:58 +01001706 *
1707 * This function executes a fixed number of operations for
1708 * random m in the range 0 .. 2^nbits - 1.
Manuel Pégourié-Gonnard07de4b12013-09-02 16:26:04 +02001709 *
Manuel Pégourié-Gonnard161ef962013-09-17 19:13:10 +02001710 * As an additional countermeasure against potential timing attacks,
1711 * we randomize coordinates before each addition. This was suggested as a
Manuel Pégourié-Gonnard07de4b12013-09-02 16:26:04 +02001712 * countermeasure against DPA in 5.3 of [2] (with the obvious adaptation that
1713 * we use jacobian coordinates, not standard projective coordinates).
Manuel Pégourié-Gonnardefaa31e2012-11-06 21:34:35 +01001714 */
Manuel Pégourié-Gonnard161ef962013-09-17 19:13:10 +02001715int ecp_mul( ecp_group *grp, ecp_point *R,
Manuel Pégourié-Gonnarde09d2f82013-09-02 14:29:09 +02001716 const mpi *m, const ecp_point *P,
1717 int (*f_rng)(void *, unsigned char *, size_t), void *p_rng )
Manuel Pégourié-Gonnardefaa31e2012-11-06 21:34:35 +01001718{
Manuel Pégourié-Gonnardb63f9e92012-11-21 13:00:58 +01001719 int ret;
Manuel Pégourié-Gonnard161ef962013-09-17 19:13:10 +02001720 unsigned char w, m_is_odd, p_eq_g;
Paul Bakkerb9cfaa02013-10-11 18:58:55 +02001721 size_t pre_len = 1, naf_len, i, j;
Manuel Pégourié-Gonnardb63f9e92012-11-21 13:00:58 +01001722 signed char naf[ MAX_NAF_LEN ];
Manuel Pégourié-Gonnard161ef962013-09-17 19:13:10 +02001723 ecp_point Q, *T = NULL, S[2];
Manuel Pégourié-Gonnardb63f9e92012-11-21 13:00:58 +01001724 mpi M;
Manuel Pégourié-Gonnardefaa31e2012-11-06 21:34:35 +01001725
Manuel Pégourié-Gonnardb63f9e92012-11-21 13:00:58 +01001726 if( mpi_cmp_int( m, 0 ) < 0 || mpi_msb( m ) > grp->nbits )
Manuel Pégourié-Gonnarde09d2f82013-09-02 14:29:09 +02001727 return( POLARSSL_ERR_ECP_BAD_INPUT_DATA );
Manuel Pégourié-Gonnard4bdd47d2012-11-11 14:33:59 +01001728
Manuel Pégourié-Gonnard161ef962013-09-17 19:13:10 +02001729 mpi_init( &M );
1730 ecp_point_init( &Q );
1731 ecp_point_init( &S[0] );
1732 ecp_point_init( &S[1] );
1733
1734 /*
1735 * Check if P == G
1736 */
1737 p_eq_g = ( mpi_cmp_int( &P->Z, 1 ) == 0 &&
1738 mpi_cmp_mpi( &P->Y, &grp->G.Y ) == 0 &&
1739 mpi_cmp_mpi( &P->X, &grp->G.X ) == 0 );
1740
1741 /*
1742 * If P == G, pre-compute a lot of points: this will be re-used later,
1743 * otherwise, choose window size depending on curve size
1744 */
1745 if( p_eq_g )
1746 w = POLARSSL_ECP_WINDOW_SIZE;
1747 else
1748 w = grp->nbits >= 512 ? 6 :
1749 grp->nbits >= 224 ? 5 :
1750 4;
Manuel Pégourié-Gonnardb63f9e92012-11-21 13:00:58 +01001751
Manuel Pégourié-Gonnard3680c822012-11-21 18:49:45 +01001752 /*
1753 * Make sure w is within the limits.
1754 * The last test ensures that none of the precomputed points is zero,
1755 * which wouldn't be handled correctly by ecp_normalize_many().
Manuel Pégourié-Gonnard161ef962013-09-17 19:13:10 +02001756 * It is only useful for very small curves as used in the test suite.
Manuel Pégourié-Gonnard3680c822012-11-21 18:49:45 +01001757 */
Manuel Pégourié-Gonnardb63f9e92012-11-21 13:00:58 +01001758 if( w > POLARSSL_ECP_WINDOW_SIZE )
1759 w = POLARSSL_ECP_WINDOW_SIZE;
Manuel Pégourié-Gonnard3680c822012-11-21 18:49:45 +01001760 if( w < 2 || w >= grp->nbits )
1761 w = 2;
Manuel Pégourié-Gonnardb63f9e92012-11-21 13:00:58 +01001762
Paul Bakkerb9cfaa02013-10-11 18:58:55 +02001763 pre_len <<= ( w - 1 );
Manuel Pégourié-Gonnardb63f9e92012-11-21 13:00:58 +01001764 naf_len = grp->nbits / w + 1;
1765
Manuel Pégourié-Gonnard161ef962013-09-17 19:13:10 +02001766 /*
1767 * Prepare precomputed points: if P == G we want to
1768 * use grp->T if already initialized, or initiliaze it.
1769 */
1770 if( ! p_eq_g || grp->T == NULL )
1771 {
Paul Bakkerb9cfaa02013-10-11 18:58:55 +02001772 T = (ecp_point *) polarssl_malloc( pre_len * sizeof( ecp_point ) );
1773 if( T == NULL )
Manuel Pégourié-Gonnard161ef962013-09-17 19:13:10 +02001774 {
1775 ret = POLARSSL_ERR_ECP_MALLOC_FAILED;
1776 goto cleanup;
1777 }
Manuel Pégourié-Gonnardb63f9e92012-11-21 13:00:58 +01001778
Manuel Pégourié-Gonnard161ef962013-09-17 19:13:10 +02001779 for( i = 0; i < pre_len; i++ )
1780 ecp_point_init( &T[i] );
1781
1782 MPI_CHK( ecp_precompute( grp, T, pre_len, P ) );
1783
1784 if( p_eq_g )
1785 {
1786 grp->T = T;
1787 grp->T_size = pre_len;
1788 }
1789 }
1790 else
1791 {
1792 T = grp->T;
1793
1794 /* Should never happen, but we want to be extra sure */
1795 if( pre_len != grp->T_size )
1796 {
1797 ret = POLARSSL_ERR_ECP_BAD_INPUT_DATA;
1798 goto cleanup;
1799 }
1800 }
Manuel Pégourié-Gonnardb63f9e92012-11-21 13:00:58 +01001801
Manuel Pégourié-Gonnardefaa31e2012-11-06 21:34:35 +01001802 /*
Manuel Pégourié-Gonnard161ef962013-09-17 19:13:10 +02001803 * Make sure M is odd (M = m + 1 or M = m + 2)
1804 * later we'll get m * P by subtracting P or 2 * P to M * P.
Manuel Pégourié-Gonnardefaa31e2012-11-06 21:34:35 +01001805 */
Manuel Pégourié-Gonnard161ef962013-09-17 19:13:10 +02001806 m_is_odd = ( mpi_get_bit( m, 0 ) == 1 );
1807
Manuel Pégourié-Gonnardb63f9e92012-11-21 13:00:58 +01001808 MPI_CHK( mpi_copy( &M, m ) );
1809 MPI_CHK( mpi_add_int( &M, &M, 1 + m_is_odd ) );
Manuel Pégourié-Gonnardefaa31e2012-11-06 21:34:35 +01001810
Manuel Pégourié-Gonnardb63f9e92012-11-21 13:00:58 +01001811 /*
Manuel Pégourié-Gonnard161ef962013-09-17 19:13:10 +02001812 * Compute the fixed-pattern NAF of M
Manuel Pégourié-Gonnardb63f9e92012-11-21 13:00:58 +01001813 */
1814 MPI_CHK( ecp_w_naf_fixed( naf, naf_len, w, &M ) );
Manuel Pégourié-Gonnard47123252012-11-10 14:44:24 +01001815
Manuel Pégourié-Gonnardb63f9e92012-11-21 13:00:58 +01001816 /*
1817 * Compute M * P, using a variant of left-to-right 2^w-ary multiplication:
1818 * at each step we add (2 * naf[i] + 1) P, then multiply by 2^w.
1819 *
1820 * If naf[i] >= 0, we have (2 * naf[i] + 1) P == T[ naf[i] ]
1821 * Otherwise, (2 * naf[i] + 1) P == - ( 2 * ( - naf[i] - 1 ) + 1) P
1822 * == T[ - naf[i] - 1 ]
1823 */
1824 MPI_CHK( ecp_set_zero( &Q ) );
1825 i = naf_len - 1;
1826 while( 1 )
Manuel Pégourié-Gonnardefaa31e2012-11-06 21:34:35 +01001827 {
Manuel Pégourié-Gonnard161ef962013-09-17 19:13:10 +02001828 /* Countermeasure (see comments above) */
1829 if( f_rng != NULL )
1830 ecp_randomize_coordinates( grp, &Q, f_rng, p_rng );
1831
Manuel Pégourié-Gonnardb63f9e92012-11-21 13:00:58 +01001832 if( naf[i] < 0 )
1833 {
1834 MPI_CHK( ecp_add_mixed( grp, &Q, &Q, &T[ - naf[i] - 1 ], -1 ) );
1835 }
1836 else
1837 {
1838 MPI_CHK( ecp_add_mixed( grp, &Q, &Q, &T[ naf[i] ], +1 ) );
1839 }
Manuel Pégourié-Gonnardefaa31e2012-11-06 21:34:35 +01001840
Manuel Pégourié-Gonnardb63f9e92012-11-21 13:00:58 +01001841 if( i == 0 )
Manuel Pégourié-Gonnardefaa31e2012-11-06 21:34:35 +01001842 break;
Manuel Pégourié-Gonnardb63f9e92012-11-21 13:00:58 +01001843 i--;
1844
1845 for( j = 0; j < w; j++ )
1846 {
1847 MPI_CHK( ecp_double_jac( grp, &Q, &Q ) );
1848 }
Manuel Pégourié-Gonnardefaa31e2012-11-06 21:34:35 +01001849 }
1850
Manuel Pégourié-Gonnardb63f9e92012-11-21 13:00:58 +01001851 /*
Manuel Pégourié-Gonnard161ef962013-09-17 19:13:10 +02001852 * Now get m * P from M * P
Manuel Pégourié-Gonnardb63f9e92012-11-21 13:00:58 +01001853 */
Manuel Pégourié-Gonnard161ef962013-09-17 19:13:10 +02001854 MPI_CHK( ecp_copy( &S[0], P ) );
1855 MPI_CHK( ecp_add( grp, &S[1], P, P ) );
1856 MPI_CHK( ecp_sub( grp, R, &Q, &S[m_is_odd] ) );
Manuel Pégourié-Gonnardefaa31e2012-11-06 21:34:35 +01001857
Manuel Pégourié-Gonnard3680c822012-11-21 18:49:45 +01001858
Manuel Pégourié-Gonnardefaa31e2012-11-06 21:34:35 +01001859cleanup:
1860
Manuel Pégourié-Gonnard161ef962013-09-17 19:13:10 +02001861 if( T != NULL && ! p_eq_g )
1862 {
1863 for( i = 0; i < pre_len; i++ )
1864 ecp_point_free( &T[i] );
1865 polarssl_free( T );
1866 }
1867
1868 ecp_point_free( &S[1] );
1869 ecp_point_free( &S[0] );
Manuel Pégourié-Gonnardb63f9e92012-11-21 13:00:58 +01001870 ecp_point_free( &Q );
Manuel Pégourié-Gonnard161ef962013-09-17 19:13:10 +02001871 mpi_free( &M );
Manuel Pégourié-Gonnardefaa31e2012-11-06 21:34:35 +01001872
1873 return( ret );
1874}
1875
Manuel Pégourié-Gonnard45a035a2013-01-26 14:42:45 +01001876/*
Manuel Pégourié-Gonnardc8dc2952013-07-01 14:06:13 +02001877 * Check that a point is valid as a public key (SEC1 3.2.3.1)
1878 */
1879int ecp_check_pubkey( const ecp_group *grp, const ecp_point *pt )
1880{
1881 int ret;
1882 mpi YY, RHS;
1883
1884 if( mpi_cmp_int( &pt->Z, 0 ) == 0 )
Manuel Pégourié-Gonnard456d3b92013-09-16 18:04:38 +02001885 return( POLARSSL_ERR_ECP_INVALID_KEY );
Manuel Pégourié-Gonnardc8dc2952013-07-01 14:06:13 +02001886
1887 /*
1888 * pt coordinates must be normalized for our checks
1889 */
1890 if( mpi_cmp_int( &pt->Z, 1 ) != 0 )
Manuel Pégourié-Gonnard456d3b92013-09-16 18:04:38 +02001891 return( POLARSSL_ERR_ECP_INVALID_KEY );
Manuel Pégourié-Gonnardc8dc2952013-07-01 14:06:13 +02001892
1893 if( mpi_cmp_int( &pt->X, 0 ) < 0 ||
1894 mpi_cmp_int( &pt->Y, 0 ) < 0 ||
1895 mpi_cmp_mpi( &pt->X, &grp->P ) >= 0 ||
1896 mpi_cmp_mpi( &pt->Y, &grp->P ) >= 0 )
Manuel Pégourié-Gonnard456d3b92013-09-16 18:04:38 +02001897 return( POLARSSL_ERR_ECP_INVALID_KEY );
Manuel Pégourié-Gonnardc8dc2952013-07-01 14:06:13 +02001898
1899 mpi_init( &YY ); mpi_init( &RHS );
1900
1901 /*
1902 * YY = Y^2
Manuel Pégourié-Gonnardcd7458a2013-10-08 13:11:30 +02001903 * RHS = X (X^2 + A) + B = X^3 + A X + B
Manuel Pégourié-Gonnardc8dc2952013-07-01 14:06:13 +02001904 */
Manuel Pégourié-Gonnardcd7458a2013-10-08 13:11:30 +02001905 MPI_CHK( mpi_mul_mpi( &YY, &pt->Y, &pt->Y ) ); MOD_MUL( YY );
1906 MPI_CHK( mpi_mul_mpi( &RHS, &pt->X, &pt->X ) ); MOD_MUL( RHS );
Manuel Pégourié-Gonnard0cd6f982013-10-10 15:55:39 +02001907 MPI_CHK( mpi_add_mpi( &RHS, &RHS, &grp->A ) ); MOD_ADD( RHS );
Manuel Pégourié-Gonnardcd7458a2013-10-08 13:11:30 +02001908 MPI_CHK( mpi_mul_mpi( &RHS, &RHS, &pt->X ) ); MOD_MUL( RHS );
1909 MPI_CHK( mpi_add_mpi( &RHS, &RHS, &grp->B ) ); MOD_ADD( RHS );
Manuel Pégourié-Gonnardc8dc2952013-07-01 14:06:13 +02001910
1911 if( mpi_cmp_mpi( &YY, &RHS ) != 0 )
Manuel Pégourié-Gonnard456d3b92013-09-16 18:04:38 +02001912 ret = POLARSSL_ERR_ECP_INVALID_KEY;
Manuel Pégourié-Gonnardc8dc2952013-07-01 14:06:13 +02001913
1914cleanup:
1915
1916 mpi_free( &YY ); mpi_free( &RHS );
1917
1918 return( ret );
1919}
1920
1921/*
1922 * Check that an mpi is valid as a private key (SEC1 3.2)
1923 */
Manuel Pégourié-Gonnardde44a4a2013-07-09 16:05:52 +02001924int ecp_check_privkey( const ecp_group *grp, const mpi *d )
Manuel Pégourié-Gonnardc8dc2952013-07-01 14:06:13 +02001925{
1926 /* We want 1 <= d <= N-1 */
1927 if ( mpi_cmp_int( d, 1 ) < 0 || mpi_cmp_mpi( d, &grp->N ) >= 0 )
Manuel Pégourié-Gonnard456d3b92013-09-16 18:04:38 +02001928 return( POLARSSL_ERR_ECP_INVALID_KEY );
Manuel Pégourié-Gonnardc8dc2952013-07-01 14:06:13 +02001929
1930 return( 0 );
1931}
1932
1933/*
Manuel Pégourié-Gonnard45a035a2013-01-26 14:42:45 +01001934 * Generate a keypair (SEC1 3.2.1)
1935 */
Manuel Pégourié-Gonnard161ef962013-09-17 19:13:10 +02001936int ecp_gen_keypair( ecp_group *grp, mpi *d, ecp_point *Q,
Manuel Pégourié-Gonnard45a035a2013-01-26 14:42:45 +01001937 int (*f_rng)(void *, unsigned char *, size_t),
1938 void *p_rng )
1939{
1940 int count = 0;
1941 size_t n_size = (grp->nbits + 7) / 8;
1942
1943 /*
1944 * Generate d such that 1 <= n < N
1945 */
1946 do
1947 {
1948 mpi_fill_random( d, n_size, f_rng, p_rng );
1949
1950 while( mpi_cmp_mpi( d, &grp->N ) >= 0 )
1951 mpi_shift_r( d, 1 );
1952
1953 if( count++ > 10 )
Manuel Pégourié-Gonnard456d3b92013-09-16 18:04:38 +02001954 return( POLARSSL_ERR_ECP_RANDOM_FAILED );
Manuel Pégourié-Gonnard45a035a2013-01-26 14:42:45 +01001955 }
1956 while( mpi_cmp_int( d, 1 ) < 0 );
1957
Manuel Pégourié-Gonnarde09d2f82013-09-02 14:29:09 +02001958 return( ecp_mul( grp, Q, d, &grp->G, f_rng, p_rng ) );
Manuel Pégourié-Gonnard45a035a2013-01-26 14:42:45 +01001959}
Manuel Pégourié-Gonnardefaa31e2012-11-06 21:34:35 +01001960
Manuel Pégourié-Gonnard39d2adb2012-10-31 09:26:55 +01001961#if defined(POLARSSL_SELF_TEST)
1962
Manuel Pégourié-Gonnardb505c272012-11-05 17:27:54 +01001963/*
Manuel Pégourié-Gonnard39d2adb2012-10-31 09:26:55 +01001964 * Checkup routine
1965 */
1966int ecp_self_test( int verbose )
1967{
Manuel Pégourié-Gonnardb4a310b2012-11-13 20:57:00 +01001968 int ret;
1969 size_t i;
1970 ecp_group grp;
Manuel Pégourié-Gonnard161ef962013-09-17 19:13:10 +02001971 ecp_point R, P;
Manuel Pégourié-Gonnardb4a310b2012-11-13 20:57:00 +01001972 mpi m;
1973 unsigned long add_c_prev, dbl_c_prev;
Manuel Pégourié-Gonnardb8012fc2013-10-10 15:40:49 +02001974 /* exponents especially adapted for secp192r1 */
Paul Bakkerb6c5d2e2013-06-25 16:25:17 +02001975 const char *exponents[] =
Manuel Pégourié-Gonnardb4a310b2012-11-13 20:57:00 +01001976 {
Manuel Pégourié-Gonnardb63f9e92012-11-21 13:00:58 +01001977 "000000000000000000000000000000000000000000000000", /* zero */
1978 "000000000000000000000000000000000000000000000001", /* one */
1979 "FFFFFFFFFFFFFFFFFFFFFFFF99DEF836146BC9B1B4D22831", /* N */
1980 "5EA6F389A38B8BC81E767753B15AA5569E1782E30ABE7D25", /* random */
Manuel Pégourié-Gonnardb4a310b2012-11-13 20:57:00 +01001981 "400000000000000000000000000000000000000000000000",
1982 "7FFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFF",
1983 "555555555555555555555555555555555555555555555555",
Manuel Pégourié-Gonnardb4a310b2012-11-13 20:57:00 +01001984 };
1985
1986 ecp_group_init( &grp );
1987 ecp_point_init( &R );
Manuel Pégourié-Gonnard161ef962013-09-17 19:13:10 +02001988 ecp_point_init( &P );
Manuel Pégourié-Gonnardb4a310b2012-11-13 20:57:00 +01001989 mpi_init( &m );
1990
Manuel Pégourié-Gonnardb8012fc2013-10-10 15:40:49 +02001991 /* Use secp192r1 if available, or any available curve */
Paul Bakker5dc6b5f2013-06-29 23:26:34 +02001992#if defined(POLARSSL_ECP_DP_SECP192R1_ENABLED)
Manuel Pégourié-Gonnardb4a310b2012-11-13 20:57:00 +01001993 MPI_CHK( ecp_use_known_dp( &grp, POLARSSL_ECP_DP_SECP192R1 ) );
Paul Bakker5dc6b5f2013-06-29 23:26:34 +02001994#else
Manuel Pégourié-Gonnardb8012fc2013-10-10 15:40:49 +02001995 MPI_CHK( ecp_use_known_dp( &grp, ecp_curve_list()->grp_id ) );
1996#endif
Manuel Pégourié-Gonnardb4a310b2012-11-13 20:57:00 +01001997
1998 if( verbose != 0 )
Manuel Pégourié-Gonnard161ef962013-09-17 19:13:10 +02001999 printf( " ECP test #1 (constant op_count, base point G): " );
2000
2001 /* Do a dummy multiplication first to trigger precomputation */
2002 MPI_CHK( mpi_lset( &m, 2 ) );
2003 MPI_CHK( ecp_mul( &grp, &P, &m, &grp.G, NULL, NULL ) );
Manuel Pégourié-Gonnardb4a310b2012-11-13 20:57:00 +01002004
2005 add_count = 0;
2006 dbl_count = 0;
2007 MPI_CHK( mpi_read_string( &m, 16, exponents[0] ) );
Manuel Pégourié-Gonnarde09d2f82013-09-02 14:29:09 +02002008 MPI_CHK( ecp_mul( &grp, &R, &m, &grp.G, NULL, NULL ) );
Manuel Pégourié-Gonnardb4a310b2012-11-13 20:57:00 +01002009
2010 for( i = 1; i < sizeof( exponents ) / sizeof( exponents[0] ); i++ )
2011 {
2012 add_c_prev = add_count;
2013 dbl_c_prev = dbl_count;
2014 add_count = 0;
2015 dbl_count = 0;
2016
2017 MPI_CHK( mpi_read_string( &m, 16, exponents[i] ) );
Manuel Pégourié-Gonnarde09d2f82013-09-02 14:29:09 +02002018 MPI_CHK( ecp_mul( &grp, &R, &m, &grp.G, NULL, NULL ) );
Manuel Pégourié-Gonnardb4a310b2012-11-13 20:57:00 +01002019
2020 if( add_count != add_c_prev || dbl_count != dbl_c_prev )
2021 {
2022 if( verbose != 0 )
2023 printf( "failed (%zu)\n", i );
2024
2025 ret = 1;
2026 goto cleanup;
2027 }
2028 }
2029
2030 if( verbose != 0 )
2031 printf( "passed\n" );
2032
Manuel Pégourié-Gonnard161ef962013-09-17 19:13:10 +02002033 if( verbose != 0 )
2034 printf( " ECP test #2 (constant op_count, other point): " );
2035 /* We computed P = 2G last time, use it */
2036
2037 add_count = 0;
2038 dbl_count = 0;
2039 MPI_CHK( mpi_read_string( &m, 16, exponents[0] ) );
2040 MPI_CHK( ecp_mul( &grp, &R, &m, &P, NULL, NULL ) );
2041
2042 for( i = 1; i < sizeof( exponents ) / sizeof( exponents[0] ); i++ )
2043 {
2044 add_c_prev = add_count;
2045 dbl_c_prev = dbl_count;
2046 add_count = 0;
2047 dbl_count = 0;
2048
2049 MPI_CHK( mpi_read_string( &m, 16, exponents[i] ) );
2050 MPI_CHK( ecp_mul( &grp, &R, &m, &P, NULL, NULL ) );
2051
2052 if( add_count != add_c_prev || dbl_count != dbl_c_prev )
2053 {
2054 if( verbose != 0 )
2055 printf( "failed (%zu)\n", i );
2056
2057 ret = 1;
2058 goto cleanup;
2059 }
2060 }
2061
2062 if( verbose != 0 )
2063 printf( "passed\n" );
2064
Manuel Pégourié-Gonnardb4a310b2012-11-13 20:57:00 +01002065cleanup:
2066
2067 if( ret < 0 && verbose != 0 )
2068 printf( "Unexpected error, return code = %08X\n", ret );
2069
2070 ecp_group_free( &grp );
2071 ecp_point_free( &R );
Manuel Pégourié-Gonnard161ef962013-09-17 19:13:10 +02002072 ecp_point_free( &P );
Manuel Pégourié-Gonnardb4a310b2012-11-13 20:57:00 +01002073 mpi_free( &m );
2074
2075 if( verbose != 0 )
2076 printf( "\n" );
2077
2078 return( ret );
Manuel Pégourié-Gonnard39d2adb2012-10-31 09:26:55 +01002079}
2080
2081#endif
2082
2083#endif