/* Legal Notice: Some portions of the source code contained in this file were derived from the source code of Encryption for the Masses 2.02a, which is Copyright (c) 1998-2000 Paul Le Roux and which is governed by the 'License Agreement for Encryption for the Masses'. Modifications and additions to the original source code (contained in this file) and all other portions of this file are Copyright (c) 2003-2010 TrueCrypt Developers Association and are governed by the TrueCrypt License 3.0 the full text of which is contained in the file License.txt included in TrueCrypt binary and source code distribution packages. */ #include "Tcdefs.h" #include "Crc.h" #include "Crypto.h" #include "Common/Endian.h" #include "Tests.h" #include "Xts.h" #include <string.h> #include "Pkcs5.h" typedef struct { unsigned __int8 key1[32]; unsigned __int8 key2[32]; unsigned __int8 dataUnitNo[8]; unsigned int blockNo; unsigned __int8 plaintext[ENCRYPTION_DATA_UNIT_SIZE]; unsigned __int8 ciphertext[ENCRYPTION_DATA_UNIT_SIZE]; } XTS_TEST; #define XTS_TEST_COUNT 5 XTS_TEST XTS_vectors[XTS_TEST_COUNT] = { /* XTS-AES-256 */ { // IEEE 1619 - Vector 10 { 0x27, 0x18, 0x28, 0x18, 0x28, 0x45, 0x90, 0x45, 0x23, 0x53, 0x60, 0x28, 0x74, 0x71, 0x35, 0x26, 0x62, 0x49, 0x77, 0x57, 0x24, 0x70, 0x93, 0x69, 0x99, 0x59, 0x57, 0x49, 0x66, 0x96, 0x76, 0x27 }, { 0x31, 0x41, 0x59, 0x26, 0x53, 0x58, 0x97, 0x93, 0x23, 0x84, 0x62, 0x64, 0x33, 0x83, 0x27, 0x95, 0x02, 0x88, 0x41, 0x97, 0x16, 0x93, 0x99, 0x37, 0x51, 0x05, 0x82, 0x09, 0x74, 0x94, 0x45, 0x92 }, { 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0xff }, 0, { 0x00, 0x01, 0x02, 0x03, 0x04, 0x05, 0x06, 0x07, 0x08, 0x09, 0x0a, 0x0b, 0x0c, 0x0d, 0x0e, 0x0f, 0x10, 0x11, 0x12, 0x13, 0x14, 0x15, 0x16, 0x17, 0x18, 0x19, 0x1a, 0x1b, 0x1c, 0x1d, 0x1e, 0x1f, 0x20, 0x21, 0x22, 0x23, 0x24, 0x25, 0x26, 0x27, 0x28, 0x29, 0x2a, 0x2b, 0x2c, 0x2d, 0x2e, 0x2f, 0x30, 0x31, 0x32, 0x33, 0x34, 0x35, 0x36, 0x37, 0x38, 0x39, 0x3a, 0x3b, 0x3c, 0x3d, 0x3e, 0x3f, 0x40, 0x41, 0x42, 0x43, 0x44, 0x45, 0x46, 0x47, 0x48, 0x49, 0x4a, 0x4b, 0x4c, 0x4d, 0x4e, 0x4f, 0x50, 0x51, 0x52, 0x53, 0x54, 0x55, 0x56, 0x57, 0x58, 0x59, 0x5a, 0x5b, 0x5c, 0x5d, 0x5e, 0x5f, 0x60, 0x61, 0x62, 0x63, 0x64, 0x65, 0x66, 0x67, 0x68, 0x69, 0x6a, 0x6b, 0x6c, 0x6d, 0x6e, 0x6f, 0x70, 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0x69, 0x75, 0xbe, 0x5e, 0x0b, 0x4e, 0xfc, 0xe5, 0x1c, 0xd3, 0xe7, 0x0c, 0x25, 0xa1, 0xfb, 0xbb, 0xd6, 0x09, 0xd2, 0x73, 0xad, 0x5b, 0x0d, 0x59, 0x63, 0x1c, 0x53, 0x1f, 0x6a, 0x0a, 0x57, 0xb9 } } }; // XTS_TEST XTS_vectors[] BOOL XTSAesTest (PCRYPTO_INFO ci) { unsigned __int8 p[ENCRYPTION_DATA_UNIT_SIZE]; UINT64_STRUCT dataUnitNo; int i; for (i = 0; i < XTS_TEST_COUNT; i++) { ci->ea = EAGetByName ("AES"); if (ci->ea == 0) return FALSE; ci->mode = XTS; if (EAInit (ci->ea, XTS_vectors[i].key1, ci->ks) != ERR_SUCCESS) return FALSE; memcpy (&ci->k2, XTS_vectors[i].key2, sizeof (XTS_vectors[i].key2)); if (!EAInitMode (ci)) return FALSE; memcpy (p, XTS_vectors[i].plaintext, sizeof (p)); dataUnitNo.Value = BE64 (*((unsigned __int64 *) XTS_vectors[i].dataUnitNo)); EncryptBufferXTS (p, sizeof (p), &dataUnitNo, XTS_vectors[i].blockNo, (unsigned char *) (ci->ks), (unsigned char *) ci->ks2, AES); if (memcmp (XTS_vectors[i].ciphertext, p, sizeof (p)) != 0) return FALSE; } return TRUE; } // AES ECB test vectors FIPS-197 #define AES_TEST_COUNT 1 typedef struct { unsigned char key[32]; unsigned char plaintext[16]; unsigned char ciphertext[16]; } AES_TEST; AES_TEST aes_ecb_vectors[AES_TEST_COUNT] = { 0x00,0x01,0x02,0x03,0x04,0x05,0x06,0x07,0x08,0x09,0x0a,0x0b,0x0c,0x0d,0x0e,0x0f, 0x10,0x11,0x12,0x13,0x14,0x15,0x16,0x17,0x18,0x19,0x1a,0x1b,0x1c,0x1d,0x1e,0x1f, 0x00,0x11,0x22,0x33,0x44,0x55,0x66,0x77,0x88,0x99,0xaa,0xbb,0xcc,0xdd,0xee,0xff, 0x8e,0xa2,0xb7,0xca,0x51,0x67,0x45,0xbf,0xea,0xfc,0x49,0x90,0x4b,0x49,0x60,0x89 }; // Serpent ECB test vectors #define SERPENT_TEST_COUNT 1 typedef struct { unsigned char key[32]; unsigned char plaintext[16]; unsigned char ciphertext[16]; } SERPENT_TEST; SERPENT_TEST serpent_vectors[SERPENT_TEST_COUNT] = { 0x00, 0x01, 0x02, 0x03, 0x04, 0x05, 0x06, 0x07, 0x08, 0x09, 0x0a, 0x0b, 0x0c, 0x0d, 0x0e, 0x0f, 0x10, 0x11, 0x12, 0x13, 0x14, 0x15, 0x16, 0x17, 0x18, 0x19, 0x1a, 0x1b, 0x1c, 0x1d, 0x1e, 0x1f, 0x00, 0x01, 0x02, 0x03, 0x04, 0x05, 0x06, 0x07, 0x08, 0x09, 0x0a, 0x0b, 0x0c, 0x0d, 0x0e, 0x0f, 0xde, 0x26, 0x9f, 0xf8, 0x33, 0xe4, 0x32, 0xb8, 0x5b, 0x2e, 0x88, 0xd2, 0x70, 0x1c, 0xe7, 0x5c }; // Twofish ECB test vectors #define TWOFISH_TEST_COUNT 1 typedef struct { unsigned char key[32]; unsigned char plaintext[16]; unsigned char ciphertext[16]; } TWOFISH_TEST; TWOFISH_TEST twofish_vectors[TWOFISH_TEST_COUNT] = { 0xD4, 0x3B, 0xB7, 0x55, 0x6E, 0xA3, 0x2E, 0x46, 0xF2, 0xA2, 0x82, 0xB7, 0xD4, 0x5B, 0x4E, 0x0D, 0x57, 0xFF, 0x73, 0x9D, 0x4D, 0xC9, 0x2C, 0x1B, 0xD7, 0xFC, 0x01, 0x70, 0x0C, 0xC8, 0x21, 0x6F, 0x90, 0xAF, 0xE9, 0x1B, 0xB2, 0x88, 0x54, 0x4F, 0x2C, 0x32, 0xDC, 0x23, 0x9B, 0x26, 0x35, 0xE6, 0x6C, 0xB4, 0x56, 0x1C, 0x40, 0xBF, 0x0A, 0x97, 0x05, 0x93, 0x1C, 0xB6, 0xD4, 0x08, 0xE7, 0xFA }; /* Test vectors from FIPS 198a, RFC 4231, RFC 2104, RFC 2202, and other sources. */ char *hmac_sha256_test_keys[] = { "\x0b\x0b\x0b\x0b\x0b\x0b\x0b\x0b\x0b\x0b\x0b\x0b\x0b\x0b\x0b\x0b\x0b\x0b\x0b\x0b", "Jefe", "\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa", "\x01\x02\x03\x04\x05\x06\x07\x08\x09\x0a\x0b\x0c\x0d\x0e\x0f\x10\x11\x12\x13\x14\x15\x16\x17\x18\x19", "\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa", "\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa", }; char *hmac_sha256_test_data[] = { "Hi There", "what do ya want for nothing?", "\xdd\xdd\xdd\xdd\xdd\xdd\xdd\xdd\xdd\xdd\xdd\xdd\xdd\xdd\xdd\xdd\xdd\xdd\xdd\xdd\xdd\xdd\xdd\xdd\xdd\xdd\xdd\xdd\xdd\xdd\xdd\xdd\xdd\xdd\xdd\xdd\xdd\xdd\xdd\xdd\xdd\xdd\xdd\xdd\xdd\xdd\xdd\xdd\xdd\xdd", "\xcd\xcd\xcd\xcd\xcd\xcd\xcd\xcd\xcd\xcd\xcd\xcd\xcd\xcd\xcd\xcd\xcd\xcd\xcd\xcd\xcd\xcd\xcd\xcd\xcd\xcd\xcd\xcd\xcd\xcd\xcd\xcd\xcd\xcd\xcd\xcd\xcd\xcd\xcd\xcd\xcd\xcd\xcd\xcd\xcd\xcd\xcd\xcd\xcd\xcd", "Test Using Larger Than Block-Size Key - Hash Key First", "This is a test using a larger than block-size key and a larger than block-size data. The key needs to be hashed before being used by the HMAC algorithm.", }; char *hmac_sha256_test_vectors[] = { "\xb0\x34\x4c\x61\xd8\xdb\x38\x53\x5c\xa8\xaf\xce\xaf\x0b\xf1\x2b\x88\x1d\xc2\x00\xc9\x83\x3d\xa7\x26\xe9\x37\x6c\x2e\x32\xcf\xf7", "\x5b\xdc\xc1\x46\xbf\x60\x75\x4e\x6a\x04\x24\x26\x08\x95\x75\xc7\x5a\x00\x3f\x08\x9d\x27\x39\x83\x9d\xec\x58\xb9\x64\xec\x38\x43", "\x77\x3e\xa9\x1e\x36\x80\x0e\x46\x85\x4d\xb8\xeb\xd0\x91\x81\xa7\x29\x59\x09\x8b\x3e\xf8\xc1\x22\xd9\x63\x55\x14\xce\xd5\x65\xfe", "\x82\x55\x8a\x38\x9a\x44\x3c\x0e\xa4\xcc\x81\x98\x99\xf2\x08\x3a\x85\xf0\xfa\xa3\xe5\x78\xf8\x07\x7a\x2e\x3f\xf4\x67\x29\x66\x5b", "\x60\xe4\x31\x59\x1e\xe0\xb6\x7f\x0d\x8a\x26\xaa\xcb\xf5\xb7\x7f\x8e\x0b\xc6\x21\x37\x28\xc5\x14\x05\x46\x04\x0f\x0e\xe3\x7f\x54", "\x9b\x09\xff\xa7\x1b\x94\x2f\xcb\x27\x63\x5f\xbc\xd5\xb0\xe9\x44\xbf\xdc\x63\x64\x4f\x07\x13\x93\x8a\x7f\x51\x53\x5c\x3a\x35\xe2", }; char *hmac_sha512_test_keys[] = { "\x0b\x0b\x0b\x0b\x0b\x0b\x0b\x0b\x0b\x0b\x0b\x0b\x0b\x0b\x0b\x0b\x0b\x0b\x0b\x0b", "Jefe", "\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa", "\x01\x02\x03\x04\x05\x06\x07\x08\x09\x0a\x0b\x0c\x0d\x0e\x0f\x10\x11\x12\x13\x14\x15\x16\x17\x18\x19", "\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa", "\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa\xaa", }; char *hmac_sha512_test_data[] = { "Hi There", "what do ya want for nothing?", "\xdd\xdd\xdd\xdd\xdd\xdd\xdd\xdd\xdd\xdd\xdd\xdd\xdd\xdd\xdd\xdd\xdd\xdd\xdd\xdd\xdd\xdd\xdd\xdd\xdd\xdd\xdd\xdd\xdd\xdd\xdd\xdd\xdd\xdd\xdd\xdd\xdd\xdd\xdd\xdd\xdd\xdd\xdd\xdd\xdd\xdd\xdd\xdd\xdd\xdd", "\xcd\xcd\xcd\xcd\xcd\xcd\xcd\xcd\xcd\xcd\xcd\xcd\xcd\xcd\xcd\xcd\xcd\xcd\xcd\xcd\xcd\xcd\xcd\xcd\xcd\xcd\xcd\xcd\xcd\xcd\xcd\xcd\xcd\xcd\xcd\xcd\xcd\xcd\xcd\xcd\xcd\xcd\xcd\xcd\xcd\xcd\xcd\xcd\xcd\xcd", "Test Using Larger Than Block-Size Key - Hash Key First", "This is a test using a larger than block-size key and a larger than block-size data. The key needs to be hashed before being used by the HMAC algorithm.", }; char *hmac_sha512_test_vectors[] = { "\x87\xaa\x7c\xde\xa5\xef\x61\x9d\x4f\xf0\xb4\x24\x1a\x1d\x6c\xb0\x23\x79\xf4\xe2\xce\x4e\xc2\x78\x7a\xd0\xb3\x05\x45\xe1\x7c\xde\xda\xa8\x33\xb7\xd6\xb8\xa7\x02\x03\x8b\x27\x4e\xae\xa3\xf4\xe4\xbe\x9d\x91\x4e\xeb\x61\xf1\x70\x2e\x69\x6c\x20\x3a\x12\x68\x54", "\x16\x4b\x7a\x7b\xfc\xf8\x19\xe2\xe3\x95\xfb\xe7\x3b\x56\xe0\xa3\x87\xbd\x64\x22\x2e\x83\x1f\xd6\x10\x27\x0c\xd7\xea\x25\x05\x54\x97\x58\xbf\x75\xc0\x5a\x99\x4a\x6d\x03\x4f\x65\xf8\xf0\xe6\xfd\xca\xea\xb1\xa3\x4d\x4a\x6b\x4b\x63\x6e\x07\x0a\x38\xbc\xe7\x37", "\xfa\x73\xb0\x08\x9d\x56\xa2\x84\xef\xb0\xf0\x75\x6c\x89\x0b\xe9\xb1\xb5\xdb\xdd\x8e\xe8\x1a\x36\x55\xf8\x3e\x33\xb2\x27\x9d\x39\xbf\x3e\x84\x82\x79\xa7\x22\xc8\x06\xb4\x85\xa4\x7e\x67\xc8\x07\xb9\x46\xa3\x37\xbe\xe8\x94\x26\x74\x27\x88\x59\xe1\x32\x92\xfb", "\xb0\xba\x46\x56\x37\x45\x8c\x69\x90\xe5\xa8\xc5\xf6\x1d\x4a\xf7\xe5\x76\xd9\x7f\xf9\x4b\x87\x2d\xe7\x6f\x80\x50\x36\x1e\xe3\xdb\xa9\x1c\xa5\xc1\x1a\xa2\x5e\xb4\xd6\x79\x27\x5c\xc5\x78\x80\x63\xa5\xf1\x97\x41\x12\x0c\x4f\x2d\xe2\xad\xeb\xeb\x10\xa2\x98\xdd", "\x80\xb2\x42\x63\xc7\xc1\xa3\xeb\xb7\x14\x93\xc1\xdd\x7b\xe8\xb4\x9b\x46\xd1\xf4\x1b\x4a\xee\xc1\x12\x1b\x01\x37\x83\xf8\xf3\x52\x6b\x56\xd0\x37\xe0\x5f\x25\x98\xbd\x0f\xd2\x21\x5d\x6a\x1e\x52\x95\xe6\x4f\x73\xf6\x3f\x0a\xec\x8b\x91\x5a\x98\x5d\x78\x65\x98", "\xe3\x7b\x6a\x77\x5d\xc8\x7d\xba\xa4\xdf\xa9\xf9\x6e\x5e\x3f\xfd\xde\xbd\x71\xf8\x86\x72\x89\x86\x5d\xf5\xa3\x2d\x20\xcd\xc9\x44\xb6\x02\x2c\xac\x3c\x49\x82\xb1\x0d\x5e\xeb\x55\xc3\xe4\xde\x15\x13\x46\x76\xfb\x6d\xe0\x44\x60\x65\xc9\x74\x40\xfa\x8c\x6a\x58", }; char *hmac_ripemd160_test_keys[] = { "\x00\x11\x22\x33\x44\x55\x66\x77\x88\x99\xaa\xbb\xcc\xdd\xee\xff\x01\x23\x45\x67", "\x01\x23\x45\x67\x89\xab\xcd\xef\xfe\xdc\xba\x98\x76\x54\x32\x10\x00\x11\x22\x33", }; char *hmac_ripemd160_test_data[] = { "message digest", "12345678901234567890123456789012345678901234567890123456789012345678901234567890", }; char *hmac_ripemd160_test_vectors[] = { "\xf8\x36\x62\xcc\x8d\x33\x9c\x22\x7e\x60\x0f\xcd\x63\x6c\x57\xd2\x57\x1b\x1c\x34", "\x85\xf1\x64\x70\x3e\x61\xa6\x31\x31\xbe\x7e\x45\x95\x8e\x07\x94\x12\x39\x04\xf9", }; char *hmac_whirlpool_test_key = { "\x00\x11\x22\x33\x44\x55\x66\x77\x88\x99\xAA\xBB\xCC\xDD\xEE\xFF\x01\x23\x45\x67\x89\xAB\xCD\xEF\x00\x11\x22\x33\x44\x55\x66\x77\x88\x99\xAA\xBB\xCC\xDD\xEE\xFF\x01\x23\x45\x67\x89\xAB\xCD\xEF\x00\x11\x22\x33\x44\x55\x66\x77\x88\x99\xAA\xBB\xCC\xDD\xEE\xFF" }; char *hmac_whirlpool_test_data = { "abcdbcdecdefdefgefghfghighijhijkijkljklmklmnlmnomnopnopq" }; char *hmac_whirlpool_test_vectors = { "\x03\x91\xd2\x80\x00\xb6\x62\xbb\xb8\xe6\x23\x3e\xe8\x6c\xf2\xb2\x84\x74\x4c\x73" "\x8b\x58\x00\xba\x28\x12\xed\x52\x6f\xe3\x15\x3a\xb1\xba\xe7\xe2\x36\xbe\x96\x54" "\x49\x3f\x19\xfa\xce\xa6\x44\x1f\x60\xf5\xf0\x18\x93\x09\x11\xa5\xe5\xce\xd8\xf2" "\x6a\xbf\xa4\x02" }; unsigned char ks_tmp[MAX_EXPANDED_KEY]; void CipherInit2(int cipher, void* key, void* ks, int key_len) { switch (cipher) { case AES: CipherInit(cipher,key,ks); break; case SERPENT: CipherInit(cipher,key,ks); break; case TWOFISH: CipherInit(cipher,key,ks); break; default: /* Unknown/wrong ID */ TC_THROW_FATAL_EXCEPTION; } } BOOL TestSectorBufEncryption (PCRYPTO_INFO ci) { unsigned char buf [ENCRYPTION_DATA_UNIT_SIZE * 4]; unsigned int i; char name[64]; unsigned __int32 crc; UINT64_STRUCT unitNo; uint32 nbrUnits; unsigned __int64 writeOffset; int testCase = 0; int nTestsPerformed = 0; static unsigned char key1[] = { 0x27, 0x18, 0x28, 0x18, 0x28, 0x45, 0x90, 0x45, 0x23, 0x53, 0x60, 0x28, 0x74, 0x71, 0x35, 0x26, 0x62, 0x49, 0x77, 0x57, 0x24, 0x70, 0x93, 0x69, 0x99, 0x59, 0x57, 0x49, 0x66, 0x96, 0x76, 0x27, 0x31, 0x41, 0x59, 0x26, 0x53, 0x58, 0x97, 0x93, 0x23, 0x84, 0x62, 0x64, 0x33, 0x83, 0x27, 0x95, 0x02, 0x88, 0x41, 0x97, 0x16, 0x93, 0x99, 0x37, 0x51, 0x05, 0x82, 0x09, 0x74, 0x94, 0x45, 0x92, 0x00, 0x00, 0x00, 0xff, 0xff, 0xff, 0xff, 0xff, 0x00, 0x00, 0x00, 0x00, 0x00, 0x01, 0x02, 0x03, 0x04, 0x05, 0x06, 0x07, 0x08, 0x09, 0x0a, 0x0b, 0x0c, 0x0d, 0x0e, 0x0f, 0x10, 0x11, 0x12, 0x13 }; /* Encryption/decryption of data units (typically, volume data sectors) */ nbrUnits = sizeof (buf) / ENCRYPTION_DATA_UNIT_SIZE; ci->mode = XTS; // we only implement XTS /* The buffer can accommodate 4 data units and we'll test 4 cases by "scrolling". The data unit 0xFFFFFFFFFF will "move" from the start of the buffer to its end. For a 512-byte data unit, the byte offset 562949953420800 corresponds to the data unit 0xFFFFFFFFFF. */ for (writeOffset = 562949953420800ULL; writeOffset > 562949953420800ULL - nbrUnits * ENCRYPTION_DATA_UNIT_SIZE; writeOffset -= ENCRYPTION_DATA_UNIT_SIZE) { unitNo.Value = writeOffset / ENCRYPTION_DATA_UNIT_SIZE; // Test all EAs that support this mode of operation for (ci->ea = EAGetFirst (); ci->ea != 0; ci->ea = EAGetNext (ci->ea)) { if (!EAIsModeSupported (ci->ea, ci->mode)) continue; EAGetName (name, ci->ea, 0); if (EAInit (ci->ea, key1, ci->ks) != ERR_SUCCESS) return FALSE; for (i = 0; i < sizeof (ci->k2); i++) ci->k2[i] = (unsigned char) i; memcpy (&ci->k2, XTS_vectors[XTS_TEST_COUNT-1].key2, sizeof (XTS_vectors[XTS_TEST_COUNT-1].key2)); if (!EAInitMode (ci)) return FALSE; // Each data unit will contain the same plaintext for (i = 0; i < nbrUnits; i++) { memcpy ((unsigned char *) buf + i * ENCRYPTION_DATA_UNIT_SIZE, XTS_vectors[XTS_TEST_COUNT-1].plaintext, ENCRYPTION_DATA_UNIT_SIZE); } EncryptDataUnits (buf, &unitNo, nbrUnits, ci); crc = GetCrc32 (buf, sizeof (buf)); if (strcmp (name, "AES") == 0) { // Verify the ciphertext of the "moving" data unit using the IEEE test vector #14 if (memcmp (XTS_vectors[XTS_TEST_COUNT-1].ciphertext, (unsigned char *) buf + testCase * ENCRYPTION_DATA_UNIT_SIZE, ENCRYPTION_DATA_UNIT_SIZE) != 0) { return FALSE; } // CRC of all data units in the buffer for each test case switch (testCase) { case 0: if (crc != 0x888f2990) return FALSE; nTestsPerformed++; break; case 1: if (crc != 0xea28ea34) return FALSE; nTestsPerformed++; break; case 2: if (crc != 0xe058f5a2) return FALSE; nTestsPerformed++; break; case 3: if (crc != 0x10473dc9) return FALSE; nTestsPerformed++; break; } } else if (strcmp (name, "Serpent") == 0) { switch (testCase) { case 0: if (crc != 0x7edfecb3) return FALSE; nTestsPerformed++; break; case 1: if (crc != 0x357baaaa) return FALSE; nTestsPerformed++; break; case 2: if (crc != 0xc7b9fca5) return FALSE; nTestsPerformed++; break; case 3: if (crc != 0xb5263e0c) return FALSE; nTestsPerformed++; break; } } else if (strcmp (name, "Twofish") == 0) { switch (testCase) { case 0: if (crc != 0x91525124) return FALSE; nTestsPerformed++; break; case 1: if (crc != 0x2895cc47) return FALSE; nTestsPerformed++; break; case 2: if (crc != 0x6bee346d) return FALSE; nTestsPerformed++; break; case 3: if (crc != 0xb1c45759) return FALSE; nTestsPerformed++; break; } } else if (strcmp (name, "AES-Twofish") == 0) { switch (testCase) { case 0: if (crc != 0x6cea7fa2) return FALSE; nTestsPerformed++; break; case 1: if (crc != 0x69052c4c) return FALSE; nTestsPerformed++; break; case 2: if (crc != 0x88db8de5) return FALSE; nTestsPerformed++; break; case 3: if (crc != 0xf16fd8c5) return FALSE; nTestsPerformed++; break; } } else if (strcmp (name, "AES-Twofish-Serpent") == 0) { switch (testCase) { case 0: if (crc != 0xa2d7d82a) return FALSE; nTestsPerformed++; break; case 1: if (crc != 0xdbf76412) return FALSE; nTestsPerformed++; break; case 2: if (crc != 0xdf0ea03e) return FALSE; nTestsPerformed++; break; case 3: if (crc != 0xdadedff7) return FALSE; nTestsPerformed++; break; } } else if (strcmp (name, "Serpent-AES") == 0) { switch (testCase) { case 0: if (crc != 0x6dd133b3) return FALSE; nTestsPerformed++; break; case 1: if (crc != 0x0e5717d2) return FALSE; nTestsPerformed++; break; case 2: if (crc != 0x39f83cd9) return FALSE; nTestsPerformed++; break; case 3: if (crc != 0x8a79fa2c) return FALSE; nTestsPerformed++; break; } } else if (strcmp (name, "Serpent-Twofish-AES") == 0) { switch (testCase) { case 0: if (crc != 0xe536daf8) return FALSE; nTestsPerformed++; break; case 1: if (crc != 0x3ae89e7f) return FALSE; nTestsPerformed++; break; case 2: if (crc != 0x2cc1301a) return FALSE; nTestsPerformed++; break; case 3: if (crc != 0xcac7bdc7) return FALSE; nTestsPerformed++; break; } } else if (strcmp (name, "Twofish-Serpent") == 0) { switch (testCase) { case 0: if (crc != 0x2686c859) return FALSE; nTestsPerformed++; break; case 1: if (crc != 0x8a201780) return FALSE; nTestsPerformed++; break; case 2: if (crc != 0x8dd13796) return FALSE; nTestsPerformed++; break; case 3: if (crc != 0xe95196cb) return FALSE; nTestsPerformed++; break; } } if (crc == 0x9f5edd58) return FALSE; DecryptDataUnits (buf, &unitNo, nbrUnits, ci); if (GetCrc32 (buf, sizeof (buf)) != 0x9f5edd58) return FALSE; nTestsPerformed++; } testCase++; } /* Encryption/decryption of a buffer (typically, a volume header) */ nbrUnits = sizeof (buf) / ENCRYPTION_DATA_UNIT_SIZE; // Test all EAs that support this mode of operation for (ci->ea = EAGetFirst (); ci->ea != 0; ci->ea = EAGetNext (ci->ea)) { if (!EAIsModeSupported (ci->ea, ci->mode)) continue; EAGetName (name, ci->ea, 0); if (EAInit (ci->ea, key1, ci->ks) != ERR_SUCCESS) return FALSE; memcpy (&ci->k2, XTS_vectors[XTS_TEST_COUNT-1].key2, sizeof (XTS_vectors[XTS_TEST_COUNT-1].key2)); if (!EAInitMode (ci)) return FALSE; // Each data unit will contain the same plaintext for (i = 0; i < nbrUnits; i++) { memcpy ((unsigned char *) buf + i * ENCRYPTION_DATA_UNIT_SIZE, XTS_vectors[XTS_TEST_COUNT-1].plaintext, ENCRYPTION_DATA_UNIT_SIZE); } EncryptBuffer (buf, sizeof (buf), ci); crc = GetCrc32 (buf, sizeof (buf)); if (strcmp (name, "AES") == 0) { if (crc != 0x33b91fab) return FALSE; nTestsPerformed++; } else if (strcmp (name, "Serpent") == 0) { if (crc != 0x3494d480) return FALSE; nTestsPerformed++; } else if (strcmp (name, "Twofish") == 0) { if (crc != 0xc4d65b46) return FALSE; nTestsPerformed++; } else if (strcmp (name, "AES-Twofish") == 0) { if (crc != 0x14ce7385) return FALSE; nTestsPerformed++; } else if (strcmp (name, "AES-Twofish-Serpent") == 0) { if (crc != 0x0ec81bf7) return FALSE; nTestsPerformed++; } else if (strcmp (name, "Serpent-AES") == 0) { if (crc != 0x42f919ad) return FALSE; nTestsPerformed++; } else if (strcmp (name, "Serpent-Twofish-AES") == 0) { if (crc != 0x208d5c58) return FALSE; nTestsPerformed++; } else if (strcmp (name, "Twofish-Serpent") == 0) { if (crc != 0xbe78cec1) return FALSE; nTestsPerformed++; } if (crc == 0x9f5edd58) return FALSE; DecryptBuffer (buf, sizeof (buf), ci); if (GetCrc32 (buf, sizeof (buf)) != 0x9f5edd58) return FALSE; nTestsPerformed++; } return (nTestsPerformed == 80); } static BOOL DoAutoTestAlgorithms (void) { PCRYPTO_INFO ci; char key[32]; unsigned char tmp[16]; BOOL bFailed = FALSE; int i; ci = crypto_open (); if (!ci) return FALSE; memset (ci, 0, sizeof (*ci)); /* AES */ for (i = 0; i < AES_TEST_COUNT; i++) { int cipher = AES; memcpy(key, aes_ecb_vectors[i].key, 32); memcpy(tmp, aes_ecb_vectors[i].plaintext, 16); CipherInit(cipher, key, ks_tmp); EncipherBlock(cipher, tmp, ks_tmp); if (memcmp(aes_ecb_vectors[i].ciphertext, tmp, 16) != 0) break; DecipherBlock(cipher, tmp, ks_tmp); if (memcmp(aes_ecb_vectors[i].plaintext, tmp, 16) != 0) break; } if (i != AES_TEST_COUNT) bFailed = TRUE; // AES EncipherBlocks()/DecipherBlocks() { byte testData[1024]; uint32 origCrc; size_t i; for (i = 0; i < sizeof (testData); ++i) { testData[i] = (byte) i; } origCrc = GetCrc32 (testData, sizeof (testData)); CipherInit (AES, testData, ks_tmp); EncipherBlocks (AES, testData, ks_tmp, sizeof (testData) / CipherGetBlockSize (AES)); if (GetCrc32 (testData, sizeof (testData)) != 0xb5cd5631) bFailed = TRUE; DecipherBlocks (AES, testData, ks_tmp, sizeof (testData) / CipherGetBlockSize (AES)); if (origCrc != GetCrc32 (testData, sizeof (testData))) bFailed = TRUE; } /* Serpent */ for (i = 0; i < SERPENT_TEST_COUNT; i++) { int cipher = SERPENT; memcpy(key, serpent_vectors[i].key, 32); memcpy(tmp, serpent_vectors[i].plaintext, 16); CipherInit(cipher, key, ks_tmp); EncipherBlock(cipher, tmp, ks_tmp); if (memcmp(serpent_vectors[i].ciphertext, tmp, 16) != 0) break; DecipherBlock(cipher, tmp, ks_tmp); if (memcmp(serpent_vectors[i].plaintext, tmp, 16) != 0) break; } if (i != SERPENT_TEST_COUNT) bFailed = TRUE; /* Twofish */ for (i = 0; i < TWOFISH_TEST_COUNT; i++) { int cipher = TWOFISH; memcpy(key, twofish_vectors[i].key, 32); memcpy(tmp, twofish_vectors[i].plaintext, 16); CipherInit(cipher, key, ks_tmp); EncipherBlock(cipher, tmp, ks_tmp); if (memcmp(twofish_vectors[i].ciphertext, tmp, 16) != 0) break; DecipherBlock(cipher, tmp, ks_tmp); if (memcmp(twofish_vectors[i].plaintext, tmp, 16) != 0) break; } if (i != TWOFISH_TEST_COUNT) bFailed = TRUE; /* PKCS #5 and HMACs */ if (!test_pkcs5 ()) bFailed = TRUE; /* CRC-32 */ if (!crc32_selftests ()) bFailed = TRUE; /* GF multiplicator */ #if 0 if (!GfMulSelfTest ()) bFailed = TRUE; #endif /* XTS-AES */ if (!XTSAesTest (ci)) bFailed = TRUE; /* Sector and buffer related algorithms */ if (!TestSectorBufEncryption (ci)) bFailed = TRUE; crypto_close (ci); return !bFailed; } BOOL AutoTestAlgorithms (void) { BOOL result = TRUE; BOOL hwEncryptionEnabled = IsHwEncryptionEnabled(); EnableHwEncryption (FALSE); if (!DoAutoTestAlgorithms()) result = FALSE; EnableHwEncryption (TRUE); if (!DoAutoTestAlgorithms()) result = FALSE; EnableHwEncryption (hwEncryptionEnabled); return result; } BOOL test_hmac_sha256 () { unsigned int i; int nTestsPerformed = 0; for (i = 0; i < sizeof (hmac_sha256_test_data) / sizeof(char *); i++) { char digest[1024]; /* large enough to hold digets and test vector inputs */ memcpy (digest, hmac_sha256_test_data[i], strlen (hmac_sha256_test_data[i])); hmac_sha256 (hmac_sha256_test_keys[i], (int) strlen (hmac_sha256_test_keys[i]), digest, (int) strlen (hmac_sha256_test_data[i])); if (memcmp (digest, hmac_sha256_test_vectors[i], SHA256_DIGESTSIZE) != 0) return FALSE; else nTestsPerformed++; } return (nTestsPerformed == 6); } BOOL test_hmac_sha512 () { unsigned int i; int nTestsPerformed = 0; for (i = 0; i < sizeof (hmac_sha512_test_data) / sizeof(char *); i++) { char digest[1024]; /* large enough to hold digets and test vector inputs */ memcpy (digest, hmac_sha512_test_data[i], (int) strlen (hmac_sha512_test_data[i])); hmac_sha512 (hmac_sha512_test_keys[i], (int) strlen (hmac_sha512_test_keys[i]), digest, (int) strlen (hmac_sha512_test_data[i])); if (memcmp (digest, hmac_sha512_test_vectors[i], SHA512_DIGESTSIZE) != 0) return FALSE; else nTestsPerformed++; } return (nTestsPerformed == 6); } BOOL test_hmac_ripemd160 () { int nTestsPerformed = 0; unsigned int i; for (i = 0; i < sizeof (hmac_ripemd160_test_data) / sizeof(char *); i++) { char digest[1024]; /* large enough to hold digets and test vector inputs */ memcpy (digest, hmac_ripemd160_test_data[i], strlen (hmac_ripemd160_test_data[i])); hmac_ripemd160 (hmac_ripemd160_test_keys[i], RIPEMD160_DIGESTSIZE, digest, (int) strlen (hmac_ripemd160_test_data[i])); if (memcmp (digest, hmac_ripemd160_test_vectors[i], RIPEMD160_DIGESTSIZE) != 0) return FALSE; else nTestsPerformed++; } return (nTestsPerformed == 2); } BOOL test_hmac_whirlpool () { unsigned char digest[1024]; /* large enough to hold digets and test vector inputs */ memcpy (digest, hmac_whirlpool_test_data, strlen (hmac_whirlpool_test_data)); hmac_whirlpool (hmac_whirlpool_test_key, 64, digest, (int) strlen (hmac_whirlpool_test_data)); if (memcmp (digest, hmac_whirlpool_test_vectors, WHIRLPOOL_DIGESTSIZE) != 0) return FALSE; return TRUE; } BOOL test_pkcs5 () { char dk[144]; /* HMAC-SHA-256 tests */ if (!test_hmac_sha256()) return FALSE; /* HMAC-SHA-512 tests */ if (!test_hmac_sha512()) return FALSE; /* HMAC-RIPEMD-160 tests */ if (test_hmac_ripemd160() == FALSE) return FALSE; /* HMAC-Whirlpool tests */ if (test_hmac_whirlpool() == FALSE) return FALSE; /* PKCS-5 test 1 with HMAC-SHA-256 used as the PRF (https://tools.ietf.org/html/draft-josefsson-scrypt-kdf-00) */ derive_key_sha256 ("passwd", 6, "\x73\x61\x6C\x74", 4, 1, dk, 64); if (memcmp (dk, "\x55\xac\x04\x6e\x56\xe3\x08\x9f\xec\x16\x91\xc2\x25\x44\xb6\x05\xf9\x41\x85\x21\x6d\xde\x04\x65\xe6\x8b\x9d\x57\xc2\x0d\xac\xbc\x49\xca\x9c\xcc\xf1\x79\xb6\x45\x99\x16\x64\xb3\x9d\x77\xef\x31\x7c\x71\xb8\x45\xb1\xe3\x0b\xd5\x09\x11\x20\x41\xd3\xa1\x97\x83", 64) != 0) return FALSE; /* PKCS-5 test 2 with HMAC-SHA-256 used as the PRF (https://stackoverflow.com/questions/5130513/pbkdf2-hmac-sha2-test-vectors) */ derive_key_sha256 ("password", 8, "\x73\x61\x6C\x74", 4, 2, dk, 32); if (memcmp (dk, "\xae\x4d\x0c\x95\xaf\x6b\x46\xd3\x2d\x0a\xdf\xf9\x28\xf0\x6d\xd0\x2a\x30\x3f\x8e\xf3\xc2\x51\xdf\xd6\xe2\xd8\x5a\x95\x47\x4c\x43", 32) != 0) return FALSE; /* PKCS-5 test 3 with HMAC-SHA-256 used as the PRF (MS CryptoAPI) */ derive_key_sha256 ("password", 8, "\x12\x34\x56\x78", 4, 5, dk, 4); if (memcmp (dk, "\xf2\xa0\x4f\xb2", 4) != 0) return FALSE; /* PKCS-5 test 4 with HMAC-SHA-256 used as the PRF (MS CryptoAPI) */ derive_key_sha256 ("password", 8, "\x12\x34\x56\x78", 4, 5, dk, 144); if (memcmp (dk, "\xf2\xa0\x4f\xb2\xd3\xe9\xa5\xd8\x51\x0b\x5c\x06\xdf\x70\x8e\x24\xe9\xc7\xd9\x15\x3d\x22\xcd\xde\xb8\xa6\xdb\xfd\x71\x85\xc6\x99\x32\xc0\xee\x37\x27\xf7\x24\xcf\xea\xa6\xac\x73\xa1\x4c\x4e\x52\x9b\x94\xf3\x54\x06\xfc\x04\x65\xa1\x0a\x24\xfe\xf0\x98\x1d\xa6\x22\x28\xeb\x24\x55\x74\xce\x6a\x3a\x28\xe2\x04\x3a\x59\x13\xec\x3f\xf2\xdb\xcf\x58\xdd\x53\xd9\xf9\x17\xf6\xda\x74\x06\x3c\x0b\x66\xf5\x0f\xf5\x58\xa3\x27\x52\x8c\x5b\x07\x91\xd0\x81\xeb\xb6\xbc\x30\x69\x42\x71\xf2\xd7\x18\x42\xbe\xe8\x02\x93\x70\x66\xad\x35\x65\xbc\xf7\x96\x8e\x64\xf1\xc6\x92\xda\xe0\xdc\x1f\xb5\xf4", 144) != 0) return FALSE; /* PKCS-5 test 1 with HMAC-SHA-512 used as the PRF */ derive_key_sha512 ("password", 8, "\x12\x34\x56\x78", 4, 5, dk, 4); if (memcmp (dk, "\x13\x64\xae\xf8", 4) != 0) return FALSE; /* PKCS-5 test 2 with HMAC-SHA-512 used as the PRF (derives a key longer than the underlying hash output size and block size) */ derive_key_sha512 ("password", 8, "\x12\x34\x56\x78", 4, 5, dk, 144); if (memcmp (dk, "\x13\x64\xae\xf8\x0d\xf5\x57\x6c\x30\xd5\x71\x4c\xa7\x75\x3f\xfd\x00\xe5\x25\x8b\x39\xc7\x44\x7f\xce\x23\x3d\x08\x75\xe0\x2f\x48\xd6\x30\xd7\x00\xb6\x24\xdb\xe0\x5a\xd7\x47\xef\x52\xca\xa6\x34\x83\x47\xe5\xcb\xe9\x87\xf1\x20\x59\x6a\xe6\xa9\xcf\x51\x78\xc6\xb6\x23\xa6\x74\x0d\xe8\x91\xbe\x1a\xd0\x28\xcc\xce\x16\x98\x9a\xbe\xfb\xdc\x78\xc9\xe1\x7d\x72\x67\xce\xe1\x61\x56\x5f\x96\x68\xe6\xe1\xdd\xf4\xbf\x1b\x80\xe0\x19\x1c\xf4\xc4\xd3\xdd\xd5\xd5\x57\x2d\x83\xc7\xa3\x37\x87\xf4\x4e\xe0\xf6\xd8\x6d\x65\xdc\xa0\x52\xa3\x13\xbe\x81\xfc\x30\xbe\x7d\x69\x58\x34\xb6\xdd\x41\xc6", 144) != 0) return FALSE; /* PKCS-5 test 1 with HMAC-RIPEMD-160 used as the PRF */ derive_key_ripemd160 ("password", 8, "\x12\x34\x56\x78", 4, 5, dk, 4); if (memcmp (dk, "\x7a\x3d\x7c\x03", 4) != 0) return FALSE; /* PKCS-5 test 2 with HMAC-RIPEMD-160 used as the PRF (derives a key longer than the underlying hash) */ derive_key_ripemd160 ("password", 8, "\x12\x34\x56\x78", 4, 5, dk, 48); if (memcmp (dk, "\x7a\x3d\x7c\x03\xe7\x26\x6b\xf8\x3d\x78\xfb\x29\xd2\x64\x1f\x56\xea\xf0\xe5\xf5\xcc\xc4\x3a\x31\xa8\x84\x70\xbf\xbd\x6f\x8e\x78\x24\x5a\xc0\x0a\xf6\xfa\xf0\xf6\xe9\x00\x47\x5f\x73\xce\xe1\x43", 48) != 0) return FALSE; /* PKCS-5 test 1 with HMAC-Whirlpool used as the PRF */ derive_key_whirlpool ("password", 8, "\x12\x34\x56\x78", 4, 5, dk, 4); if (memcmp (dk, "\x50\x7c\x36\x6f", 4) != 0) return FALSE; /* PKCS-5 test 2 with HMAC-Whirlpool used as the PRF (derives a key longer than the underlying hash) */ derive_key_whirlpool ("password", 8, "\x12\x34\x56\x78", 4, 5, dk, 96); if (memcmp (dk, "\x50\x7c\x36\x6f\xee\x10\x2e\x9a\xe2\x8a\xd5\x82\x72\x7d\x27\x0f\xe8\x4d\x7f\x68\x7a\xcf\xb5\xe7\x43\x67\xaa\x98\x93\x52\x2b\x09\x6e\x42\xdf\x2c\x59\x4a\x91\x6d\x7e\x10\xae\xb2\x1a\x89\x8f\xb9\x8f\xe6\x31\xa9\xd8\x9f\x98\x26\xf4\xda\xcd\x7d\x65\x65\xde\x10\x95\x91\xb4\x84\x26\xae\x43\xa1\x00\x5b\x1e\xb8\x38\x97\xa4\x1e\x4b\xd2\x65\x64\xbc\xfa\x1f\x35\x85\xdb\x4f\x97\x65\x6f\xbd\x24", 96) != 0) return FALSE; return TRUE; }