blob: 664cd0862b1c40664905b2c83aedbbb722802e7b [file] [log] [blame]
Jarno Lamsa7c5dc6b2019-08-26 13:12:35 +03001/* BEGIN_HEADER */
2
3#include "tinycrypt/ecc.h"
4#include "tinycrypt/ecc_dh.h"
5#include "tinycrypt/ecc_dsa.h"
6
7/* END_HEADER */
8
9/* BEGIN_DEPENDENCIES
10 * depends_on:MBEDTLS_USE_TINYCRYPT
11 * END_DEPENDENCIES
12 */
13
14/* BEGIN_CASE depends_on:MBEDTLS_USE_TINYCRYPT */
15void test_ecdh()
16{
17 uint8_t private1[NUM_ECC_BYTES] = {0};
18 uint8_t private2[NUM_ECC_BYTES] = {0};
19 uint8_t public1[2*NUM_ECC_BYTES] = {0};
20 uint8_t public2[2*NUM_ECC_BYTES] = {0};
21 uint8_t secret1[NUM_ECC_BYTES] = {0};
22 uint8_t secret2[NUM_ECC_BYTES] = {0};
23
24 const struct uECC_Curve_t * curve = uECC_secp256r1();
25
Jarno Lamsa34fcbfe2019-08-26 14:37:33 +030026 uECC_set_rng( &uecc_rng_wrapper );
27
Jarno Lamsa7c5dc6b2019-08-26 13:12:35 +030028 TEST_ASSERT( uECC_make_key( public1, private1, curve ) != 0 );
Jarno Lamsa34fcbfe2019-08-26 14:37:33 +030029
Jarno Lamsa7c5dc6b2019-08-26 13:12:35 +030030 TEST_ASSERT( uECC_make_key( public2, private2, curve ) != 0 );
31
32 TEST_ASSERT( uECC_shared_secret( public2, private1, secret1, curve ) != 0 );
33
34 TEST_ASSERT( uECC_shared_secret( public1, private2, secret2, curve ) != 0 );
35
36 TEST_ASSERT( memcmp( secret1, secret2, sizeof( secret1 ) ) == 0 );
37}
38/* END_CASE */
Jarno Lamsa6c2f76e2019-08-26 13:34:45 +030039
40/* BEGIN_CASE depends_on:MBEDTLS_USE_TINYCRYPT */
41void test_ecdsa()
42{
43 uint8_t private[NUM_ECC_BYTES] = {0};
44 uint8_t public[2*NUM_ECC_BYTES] = {0};
45 uint8_t hash[NUM_ECC_BYTES] = {0};
46 uint8_t sig[2*NUM_ECC_BYTES] = {0};
Jarno Lamsa6c2f76e2019-08-26 13:34:45 +030047
48 const struct uECC_Curve_t * curve = uECC_secp256r1();
49
Jarno Lamsa34fcbfe2019-08-26 14:37:33 +030050 uECC_set_rng( &uecc_rng_wrapper );
51
Jarno Lamsaf35f35b2019-09-02 15:36:49 +030052 TEST_ASSERT( rnd_std_rand( NULL, hash, NUM_ECC_BYTES ) == 0 );
Jarno Lamsa6c2f76e2019-08-26 13:34:45 +030053
54 TEST_ASSERT( uECC_make_key( public, private, curve ) != 0 );
55
56 TEST_ASSERT( uECC_sign( private, hash, sizeof( hash ), sig, curve ) != 0 );
57
Manuel Pégourié-Gonnard10d8e8e2019-11-06 10:30:26 +010058 TEST_ASSERT( uECC_verify( public, hash, sizeof( hash ), sig, curve ) == UECC_SUCCESS );
Jarno Lamsa6c2f76e2019-08-26 13:34:45 +030059}
Jarno Lamsaa7e0f632019-09-02 09:47:37 +030060/* END_CASE */
61
62/* BEGIN_CASE depends_on:MBEDTLS_USE_TINYCRYPT */
63void ecdh_primitive_testvec( data_t * private1, data_t * xA_str,
64 data_t * yA_str, data_t * private2,
65 data_t * xB_str, data_t * yB_str, data_t * z_str )
66{
67 const struct uECC_Curve_t * curve = uECC_secp256r1();
68 uint8_t public1[2*NUM_ECC_BYTES] = {0};
69 uint8_t public2[2*NUM_ECC_BYTES] = {0};
70 uint8_t secret1[NUM_ECC_BYTES] = {0};
71 uint8_t secret2[NUM_ECC_BYTES] = {0};
72
73 memcpy( public1, xA_str->x, xA_str->len );
74 memcpy( public1 + NUM_ECC_BYTES, yA_str->x, yA_str->len );
75 memcpy( public2, xB_str->x, xB_str->len );
76 memcpy( public2 + NUM_ECC_BYTES, yB_str->x, yB_str->len );
77
78 // Compute shared secrets and compare to test vector secret
79 TEST_ASSERT( uECC_shared_secret( public2, private1->x, secret1, curve ) != 0 );
80
81 TEST_ASSERT( uECC_shared_secret( public1, private2->x, secret2, curve ) != 0 );
82
83 TEST_ASSERT( memcmp( secret1, secret2, sizeof( secret1 ) ) == 0 );
84 TEST_ASSERT( memcmp( secret1, z_str->x, sizeof( secret1 ) ) == 0 );
85 TEST_ASSERT( memcmp( secret2, z_str->x, sizeof( secret2 ) ) == 0 );
86}
87/* END_CASE */
88
89/* BEGIN_CASE depends_on:MBEDTLS_USE_TINYCRYPT */
90void ecdsa_primitive_testvec( data_t * xQ_str, data_t * yQ_str,
Manuel Pégourié-Gonnard10d8e8e2019-11-06 10:30:26 +010091 data_t * hash, data_t * r_str, data_t * s_str )
Jarno Lamsaa7e0f632019-09-02 09:47:37 +030092{
93 const struct uECC_Curve_t * curve = uECC_secp256r1();
94 uint8_t pub_bytes[2*NUM_ECC_BYTES] = {0};
95 uint8_t sig_bytes[2*NUM_ECC_BYTES] = {0};
96
97 memcpy( pub_bytes, xQ_str->x, xQ_str->len );
98 memcpy( pub_bytes + NUM_ECC_BYTES, yQ_str->x, yQ_str->len );
99 memcpy( sig_bytes, r_str->x, r_str->len );
100 memcpy( sig_bytes + NUM_ECC_BYTES, s_str->x, r_str->len );
101
102 TEST_ASSERT( uECC_verify( pub_bytes, hash->x, hash->len,
Manuel Pégourié-Gonnard10d8e8e2019-11-06 10:30:26 +0100103 sig_bytes, curve ) == UECC_SUCCESS );
Jarno Lamsaa7e0f632019-09-02 09:47:37 +0300104
105 // Alter the signature and check the verification fails
106 for( int i = 0; i < 2*NUM_ECC_BYTES; i++ )
107 {
108 uint8_t temp = sig_bytes[i];
109 sig_bytes[i] = ( sig_bytes[i] + 1 ) % 256;
110 TEST_ASSERT( uECC_verify( pub_bytes, hash->x, hash->len,
Manuel Pégourié-Gonnard10d8e8e2019-11-06 10:30:26 +0100111 sig_bytes, curve ) == UECC_FAILURE );
Jarno Lamsaa7e0f632019-09-02 09:47:37 +0300112 sig_bytes[i] = temp;
113 }
114
115}
116/* END_CASE */