xref: /OK3568_Linux_fs/kernel/lib/crypto/aes.c (revision 4882a59341e53eb6f0b4789bf948001014eff981)
1*4882a593Smuzhiyun // SPDX-License-Identifier: GPL-2.0
2*4882a593Smuzhiyun /*
3*4882a593Smuzhiyun  * Copyright (C) 2017-2019 Linaro Ltd <ard.biesheuvel@linaro.org>
4*4882a593Smuzhiyun  */
5*4882a593Smuzhiyun 
6*4882a593Smuzhiyun #include <crypto/aes.h>
7*4882a593Smuzhiyun #include <linux/crypto.h>
8*4882a593Smuzhiyun #include <linux/module.h>
9*4882a593Smuzhiyun #include <asm/unaligned.h>
10*4882a593Smuzhiyun #include <trace/hooks/fips140.h>
11*4882a593Smuzhiyun 
12*4882a593Smuzhiyun /*
13*4882a593Smuzhiyun  * Emit the sbox as volatile const to prevent the compiler from doing
14*4882a593Smuzhiyun  * constant folding on sbox references involving fixed indexes.
15*4882a593Smuzhiyun  */
16*4882a593Smuzhiyun static volatile const u8 __cacheline_aligned aes_sbox[] = {
17*4882a593Smuzhiyun 	0x63, 0x7c, 0x77, 0x7b, 0xf2, 0x6b, 0x6f, 0xc5,
18*4882a593Smuzhiyun 	0x30, 0x01, 0x67, 0x2b, 0xfe, 0xd7, 0xab, 0x76,
19*4882a593Smuzhiyun 	0xca, 0x82, 0xc9, 0x7d, 0xfa, 0x59, 0x47, 0xf0,
20*4882a593Smuzhiyun 	0xad, 0xd4, 0xa2, 0xaf, 0x9c, 0xa4, 0x72, 0xc0,
21*4882a593Smuzhiyun 	0xb7, 0xfd, 0x93, 0x26, 0x36, 0x3f, 0xf7, 0xcc,
22*4882a593Smuzhiyun 	0x34, 0xa5, 0xe5, 0xf1, 0x71, 0xd8, 0x31, 0x15,
23*4882a593Smuzhiyun 	0x04, 0xc7, 0x23, 0xc3, 0x18, 0x96, 0x05, 0x9a,
24*4882a593Smuzhiyun 	0x07, 0x12, 0x80, 0xe2, 0xeb, 0x27, 0xb2, 0x75,
25*4882a593Smuzhiyun 	0x09, 0x83, 0x2c, 0x1a, 0x1b, 0x6e, 0x5a, 0xa0,
26*4882a593Smuzhiyun 	0x52, 0x3b, 0xd6, 0xb3, 0x29, 0xe3, 0x2f, 0x84,
27*4882a593Smuzhiyun 	0x53, 0xd1, 0x00, 0xed, 0x20, 0xfc, 0xb1, 0x5b,
28*4882a593Smuzhiyun 	0x6a, 0xcb, 0xbe, 0x39, 0x4a, 0x4c, 0x58, 0xcf,
29*4882a593Smuzhiyun 	0xd0, 0xef, 0xaa, 0xfb, 0x43, 0x4d, 0x33, 0x85,
30*4882a593Smuzhiyun 	0x45, 0xf9, 0x02, 0x7f, 0x50, 0x3c, 0x9f, 0xa8,
31*4882a593Smuzhiyun 	0x51, 0xa3, 0x40, 0x8f, 0x92, 0x9d, 0x38, 0xf5,
32*4882a593Smuzhiyun 	0xbc, 0xb6, 0xda, 0x21, 0x10, 0xff, 0xf3, 0xd2,
33*4882a593Smuzhiyun 	0xcd, 0x0c, 0x13, 0xec, 0x5f, 0x97, 0x44, 0x17,
34*4882a593Smuzhiyun 	0xc4, 0xa7, 0x7e, 0x3d, 0x64, 0x5d, 0x19, 0x73,
35*4882a593Smuzhiyun 	0x60, 0x81, 0x4f, 0xdc, 0x22, 0x2a, 0x90, 0x88,
36*4882a593Smuzhiyun 	0x46, 0xee, 0xb8, 0x14, 0xde, 0x5e, 0x0b, 0xdb,
37*4882a593Smuzhiyun 	0xe0, 0x32, 0x3a, 0x0a, 0x49, 0x06, 0x24, 0x5c,
38*4882a593Smuzhiyun 	0xc2, 0xd3, 0xac, 0x62, 0x91, 0x95, 0xe4, 0x79,
39*4882a593Smuzhiyun 	0xe7, 0xc8, 0x37, 0x6d, 0x8d, 0xd5, 0x4e, 0xa9,
40*4882a593Smuzhiyun 	0x6c, 0x56, 0xf4, 0xea, 0x65, 0x7a, 0xae, 0x08,
41*4882a593Smuzhiyun 	0xba, 0x78, 0x25, 0x2e, 0x1c, 0xa6, 0xb4, 0xc6,
42*4882a593Smuzhiyun 	0xe8, 0xdd, 0x74, 0x1f, 0x4b, 0xbd, 0x8b, 0x8a,
43*4882a593Smuzhiyun 	0x70, 0x3e, 0xb5, 0x66, 0x48, 0x03, 0xf6, 0x0e,
44*4882a593Smuzhiyun 	0x61, 0x35, 0x57, 0xb9, 0x86, 0xc1, 0x1d, 0x9e,
45*4882a593Smuzhiyun 	0xe1, 0xf8, 0x98, 0x11, 0x69, 0xd9, 0x8e, 0x94,
46*4882a593Smuzhiyun 	0x9b, 0x1e, 0x87, 0xe9, 0xce, 0x55, 0x28, 0xdf,
47*4882a593Smuzhiyun 	0x8c, 0xa1, 0x89, 0x0d, 0xbf, 0xe6, 0x42, 0x68,
48*4882a593Smuzhiyun 	0x41, 0x99, 0x2d, 0x0f, 0xb0, 0x54, 0xbb, 0x16,
49*4882a593Smuzhiyun };
50*4882a593Smuzhiyun 
51*4882a593Smuzhiyun static volatile const u8 __cacheline_aligned aes_inv_sbox[] = {
52*4882a593Smuzhiyun 	0x52, 0x09, 0x6a, 0xd5, 0x30, 0x36, 0xa5, 0x38,
53*4882a593Smuzhiyun 	0xbf, 0x40, 0xa3, 0x9e, 0x81, 0xf3, 0xd7, 0xfb,
54*4882a593Smuzhiyun 	0x7c, 0xe3, 0x39, 0x82, 0x9b, 0x2f, 0xff, 0x87,
55*4882a593Smuzhiyun 	0x34, 0x8e, 0x43, 0x44, 0xc4, 0xde, 0xe9, 0xcb,
56*4882a593Smuzhiyun 	0x54, 0x7b, 0x94, 0x32, 0xa6, 0xc2, 0x23, 0x3d,
57*4882a593Smuzhiyun 	0xee, 0x4c, 0x95, 0x0b, 0x42, 0xfa, 0xc3, 0x4e,
58*4882a593Smuzhiyun 	0x08, 0x2e, 0xa1, 0x66, 0x28, 0xd9, 0x24, 0xb2,
59*4882a593Smuzhiyun 	0x76, 0x5b, 0xa2, 0x49, 0x6d, 0x8b, 0xd1, 0x25,
60*4882a593Smuzhiyun 	0x72, 0xf8, 0xf6, 0x64, 0x86, 0x68, 0x98, 0x16,
61*4882a593Smuzhiyun 	0xd4, 0xa4, 0x5c, 0xcc, 0x5d, 0x65, 0xb6, 0x92,
62*4882a593Smuzhiyun 	0x6c, 0x70, 0x48, 0x50, 0xfd, 0xed, 0xb9, 0xda,
63*4882a593Smuzhiyun 	0x5e, 0x15, 0x46, 0x57, 0xa7, 0x8d, 0x9d, 0x84,
64*4882a593Smuzhiyun 	0x90, 0xd8, 0xab, 0x00, 0x8c, 0xbc, 0xd3, 0x0a,
65*4882a593Smuzhiyun 	0xf7, 0xe4, 0x58, 0x05, 0xb8, 0xb3, 0x45, 0x06,
66*4882a593Smuzhiyun 	0xd0, 0x2c, 0x1e, 0x8f, 0xca, 0x3f, 0x0f, 0x02,
67*4882a593Smuzhiyun 	0xc1, 0xaf, 0xbd, 0x03, 0x01, 0x13, 0x8a, 0x6b,
68*4882a593Smuzhiyun 	0x3a, 0x91, 0x11, 0x41, 0x4f, 0x67, 0xdc, 0xea,
69*4882a593Smuzhiyun 	0x97, 0xf2, 0xcf, 0xce, 0xf0, 0xb4, 0xe6, 0x73,
70*4882a593Smuzhiyun 	0x96, 0xac, 0x74, 0x22, 0xe7, 0xad, 0x35, 0x85,
71*4882a593Smuzhiyun 	0xe2, 0xf9, 0x37, 0xe8, 0x1c, 0x75, 0xdf, 0x6e,
72*4882a593Smuzhiyun 	0x47, 0xf1, 0x1a, 0x71, 0x1d, 0x29, 0xc5, 0x89,
73*4882a593Smuzhiyun 	0x6f, 0xb7, 0x62, 0x0e, 0xaa, 0x18, 0xbe, 0x1b,
74*4882a593Smuzhiyun 	0xfc, 0x56, 0x3e, 0x4b, 0xc6, 0xd2, 0x79, 0x20,
75*4882a593Smuzhiyun 	0x9a, 0xdb, 0xc0, 0xfe, 0x78, 0xcd, 0x5a, 0xf4,
76*4882a593Smuzhiyun 	0x1f, 0xdd, 0xa8, 0x33, 0x88, 0x07, 0xc7, 0x31,
77*4882a593Smuzhiyun 	0xb1, 0x12, 0x10, 0x59, 0x27, 0x80, 0xec, 0x5f,
78*4882a593Smuzhiyun 	0x60, 0x51, 0x7f, 0xa9, 0x19, 0xb5, 0x4a, 0x0d,
79*4882a593Smuzhiyun 	0x2d, 0xe5, 0x7a, 0x9f, 0x93, 0xc9, 0x9c, 0xef,
80*4882a593Smuzhiyun 	0xa0, 0xe0, 0x3b, 0x4d, 0xae, 0x2a, 0xf5, 0xb0,
81*4882a593Smuzhiyun 	0xc8, 0xeb, 0xbb, 0x3c, 0x83, 0x53, 0x99, 0x61,
82*4882a593Smuzhiyun 	0x17, 0x2b, 0x04, 0x7e, 0xba, 0x77, 0xd6, 0x26,
83*4882a593Smuzhiyun 	0xe1, 0x69, 0x14, 0x63, 0x55, 0x21, 0x0c, 0x7d,
84*4882a593Smuzhiyun };
85*4882a593Smuzhiyun 
86*4882a593Smuzhiyun extern const u8 crypto_aes_sbox[256] __alias(aes_sbox);
87*4882a593Smuzhiyun extern const u8 crypto_aes_inv_sbox[256] __alias(aes_inv_sbox);
88*4882a593Smuzhiyun 
89*4882a593Smuzhiyun EXPORT_SYMBOL(crypto_aes_sbox);
90*4882a593Smuzhiyun EXPORT_SYMBOL(crypto_aes_inv_sbox);
91*4882a593Smuzhiyun 
mul_by_x(u32 w)92*4882a593Smuzhiyun static u32 mul_by_x(u32 w)
93*4882a593Smuzhiyun {
94*4882a593Smuzhiyun 	u32 x = w & 0x7f7f7f7f;
95*4882a593Smuzhiyun 	u32 y = w & 0x80808080;
96*4882a593Smuzhiyun 
97*4882a593Smuzhiyun 	/* multiply by polynomial 'x' (0b10) in GF(2^8) */
98*4882a593Smuzhiyun 	return (x << 1) ^ (y >> 7) * 0x1b;
99*4882a593Smuzhiyun }
100*4882a593Smuzhiyun 
mul_by_x2(u32 w)101*4882a593Smuzhiyun static u32 mul_by_x2(u32 w)
102*4882a593Smuzhiyun {
103*4882a593Smuzhiyun 	u32 x = w & 0x3f3f3f3f;
104*4882a593Smuzhiyun 	u32 y = w & 0x80808080;
105*4882a593Smuzhiyun 	u32 z = w & 0x40404040;
106*4882a593Smuzhiyun 
107*4882a593Smuzhiyun 	/* multiply by polynomial 'x^2' (0b100) in GF(2^8) */
108*4882a593Smuzhiyun 	return (x << 2) ^ (y >> 7) * 0x36 ^ (z >> 6) * 0x1b;
109*4882a593Smuzhiyun }
110*4882a593Smuzhiyun 
mix_columns(u32 x)111*4882a593Smuzhiyun static u32 mix_columns(u32 x)
112*4882a593Smuzhiyun {
113*4882a593Smuzhiyun 	/*
114*4882a593Smuzhiyun 	 * Perform the following matrix multiplication in GF(2^8)
115*4882a593Smuzhiyun 	 *
116*4882a593Smuzhiyun 	 * | 0x2 0x3 0x1 0x1 |   | x[0] |
117*4882a593Smuzhiyun 	 * | 0x1 0x2 0x3 0x1 |   | x[1] |
118*4882a593Smuzhiyun 	 * | 0x1 0x1 0x2 0x3 | x | x[2] |
119*4882a593Smuzhiyun 	 * | 0x3 0x1 0x1 0x2 |   | x[3] |
120*4882a593Smuzhiyun 	 */
121*4882a593Smuzhiyun 	u32 y = mul_by_x(x) ^ ror32(x, 16);
122*4882a593Smuzhiyun 
123*4882a593Smuzhiyun 	return y ^ ror32(x ^ y, 8);
124*4882a593Smuzhiyun }
125*4882a593Smuzhiyun 
inv_mix_columns(u32 x)126*4882a593Smuzhiyun static u32 inv_mix_columns(u32 x)
127*4882a593Smuzhiyun {
128*4882a593Smuzhiyun 	/*
129*4882a593Smuzhiyun 	 * Perform the following matrix multiplication in GF(2^8)
130*4882a593Smuzhiyun 	 *
131*4882a593Smuzhiyun 	 * | 0xe 0xb 0xd 0x9 |   | x[0] |
132*4882a593Smuzhiyun 	 * | 0x9 0xe 0xb 0xd |   | x[1] |
133*4882a593Smuzhiyun 	 * | 0xd 0x9 0xe 0xb | x | x[2] |
134*4882a593Smuzhiyun 	 * | 0xb 0xd 0x9 0xe |   | x[3] |
135*4882a593Smuzhiyun 	 *
136*4882a593Smuzhiyun 	 * which can conveniently be reduced to
137*4882a593Smuzhiyun 	 *
138*4882a593Smuzhiyun 	 * | 0x2 0x3 0x1 0x1 |   | 0x5 0x0 0x4 0x0 |   | x[0] |
139*4882a593Smuzhiyun 	 * | 0x1 0x2 0x3 0x1 |   | 0x0 0x5 0x0 0x4 |   | x[1] |
140*4882a593Smuzhiyun 	 * | 0x1 0x1 0x2 0x3 | x | 0x4 0x0 0x5 0x0 | x | x[2] |
141*4882a593Smuzhiyun 	 * | 0x3 0x1 0x1 0x2 |   | 0x0 0x4 0x0 0x5 |   | x[3] |
142*4882a593Smuzhiyun 	 */
143*4882a593Smuzhiyun 	u32 y = mul_by_x2(x);
144*4882a593Smuzhiyun 
145*4882a593Smuzhiyun 	return mix_columns(x ^ y ^ ror32(y, 16));
146*4882a593Smuzhiyun }
147*4882a593Smuzhiyun 
subshift(u32 in[],int pos)148*4882a593Smuzhiyun static __always_inline u32 subshift(u32 in[], int pos)
149*4882a593Smuzhiyun {
150*4882a593Smuzhiyun 	return (aes_sbox[in[pos] & 0xff]) ^
151*4882a593Smuzhiyun 	       (aes_sbox[(in[(pos + 1) % 4] >>  8) & 0xff] <<  8) ^
152*4882a593Smuzhiyun 	       (aes_sbox[(in[(pos + 2) % 4] >> 16) & 0xff] << 16) ^
153*4882a593Smuzhiyun 	       (aes_sbox[(in[(pos + 3) % 4] >> 24) & 0xff] << 24);
154*4882a593Smuzhiyun }
155*4882a593Smuzhiyun 
inv_subshift(u32 in[],int pos)156*4882a593Smuzhiyun static __always_inline u32 inv_subshift(u32 in[], int pos)
157*4882a593Smuzhiyun {
158*4882a593Smuzhiyun 	return (aes_inv_sbox[in[pos] & 0xff]) ^
159*4882a593Smuzhiyun 	       (aes_inv_sbox[(in[(pos + 3) % 4] >>  8) & 0xff] <<  8) ^
160*4882a593Smuzhiyun 	       (aes_inv_sbox[(in[(pos + 2) % 4] >> 16) & 0xff] << 16) ^
161*4882a593Smuzhiyun 	       (aes_inv_sbox[(in[(pos + 1) % 4] >> 24) & 0xff] << 24);
162*4882a593Smuzhiyun }
163*4882a593Smuzhiyun 
subw(u32 in)164*4882a593Smuzhiyun static u32 subw(u32 in)
165*4882a593Smuzhiyun {
166*4882a593Smuzhiyun 	return (aes_sbox[in & 0xff]) ^
167*4882a593Smuzhiyun 	       (aes_sbox[(in >>  8) & 0xff] <<  8) ^
168*4882a593Smuzhiyun 	       (aes_sbox[(in >> 16) & 0xff] << 16) ^
169*4882a593Smuzhiyun 	       (aes_sbox[(in >> 24) & 0xff] << 24);
170*4882a593Smuzhiyun }
171*4882a593Smuzhiyun 
172*4882a593Smuzhiyun /**
173*4882a593Smuzhiyun  * aes_expandkey - Expands the AES key as described in FIPS-197
174*4882a593Smuzhiyun  * @ctx:	The location where the computed key will be stored.
175*4882a593Smuzhiyun  * @in_key:	The supplied key.
176*4882a593Smuzhiyun  * @key_len:	The length of the supplied key.
177*4882a593Smuzhiyun  *
178*4882a593Smuzhiyun  * Returns 0 on success. The function fails only if an invalid key size (or
179*4882a593Smuzhiyun  * pointer) is supplied.
180*4882a593Smuzhiyun  * The expanded key size is 240 bytes (max of 14 rounds with a unique 16 bytes
181*4882a593Smuzhiyun  * key schedule plus a 16 bytes key which is used before the first round).
182*4882a593Smuzhiyun  * The decryption key is prepared for the "Equivalent Inverse Cipher" as
183*4882a593Smuzhiyun  * described in FIPS-197. The first slot (16 bytes) of each key (enc or dec) is
184*4882a593Smuzhiyun  * for the initial combination, the second slot for the first round and so on.
185*4882a593Smuzhiyun  */
aes_expandkey(struct crypto_aes_ctx * ctx,const u8 * in_key,unsigned int key_len)186*4882a593Smuzhiyun int aes_expandkey(struct crypto_aes_ctx *ctx, const u8 *in_key,
187*4882a593Smuzhiyun 		  unsigned int key_len)
188*4882a593Smuzhiyun {
189*4882a593Smuzhiyun 	u32 kwords = key_len / sizeof(u32);
190*4882a593Smuzhiyun 	u32 rc, i, j;
191*4882a593Smuzhiyun 	int err;
192*4882a593Smuzhiyun 
193*4882a593Smuzhiyun #if defined(CONFIG_CRYPTO_FIPS140) && !defined(BUILD_FIPS140_KO)
194*4882a593Smuzhiyun 	err = -(MAX_ERRNO + 1);
195*4882a593Smuzhiyun 	trace_android_vh_aes_expandkey(ctx, in_key, key_len, &err);
196*4882a593Smuzhiyun 	if (err != -(MAX_ERRNO + 1))
197*4882a593Smuzhiyun 		return err;
198*4882a593Smuzhiyun #endif
199*4882a593Smuzhiyun 
200*4882a593Smuzhiyun 	err = aes_check_keylen(key_len);
201*4882a593Smuzhiyun 	if (err)
202*4882a593Smuzhiyun 		return err;
203*4882a593Smuzhiyun 
204*4882a593Smuzhiyun 	ctx->key_length = key_len;
205*4882a593Smuzhiyun 
206*4882a593Smuzhiyun 	for (i = 0; i < kwords; i++)
207*4882a593Smuzhiyun 		ctx->key_enc[i] = get_unaligned_le32(in_key + i * sizeof(u32));
208*4882a593Smuzhiyun 
209*4882a593Smuzhiyun 	for (i = 0, rc = 1; i < 10; i++, rc = mul_by_x(rc)) {
210*4882a593Smuzhiyun 		u32 *rki = ctx->key_enc + (i * kwords);
211*4882a593Smuzhiyun 		u32 *rko = rki + kwords;
212*4882a593Smuzhiyun 
213*4882a593Smuzhiyun 		rko[0] = ror32(subw(rki[kwords - 1]), 8) ^ rc ^ rki[0];
214*4882a593Smuzhiyun 		rko[1] = rko[0] ^ rki[1];
215*4882a593Smuzhiyun 		rko[2] = rko[1] ^ rki[2];
216*4882a593Smuzhiyun 		rko[3] = rko[2] ^ rki[3];
217*4882a593Smuzhiyun 
218*4882a593Smuzhiyun 		if (key_len == AES_KEYSIZE_192) {
219*4882a593Smuzhiyun 			if (i >= 7)
220*4882a593Smuzhiyun 				break;
221*4882a593Smuzhiyun 			rko[4] = rko[3] ^ rki[4];
222*4882a593Smuzhiyun 			rko[5] = rko[4] ^ rki[5];
223*4882a593Smuzhiyun 		} else if (key_len == AES_KEYSIZE_256) {
224*4882a593Smuzhiyun 			if (i >= 6)
225*4882a593Smuzhiyun 				break;
226*4882a593Smuzhiyun 			rko[4] = subw(rko[3]) ^ rki[4];
227*4882a593Smuzhiyun 			rko[5] = rko[4] ^ rki[5];
228*4882a593Smuzhiyun 			rko[6] = rko[5] ^ rki[6];
229*4882a593Smuzhiyun 			rko[7] = rko[6] ^ rki[7];
230*4882a593Smuzhiyun 		}
231*4882a593Smuzhiyun 	}
232*4882a593Smuzhiyun 
233*4882a593Smuzhiyun 	/*
234*4882a593Smuzhiyun 	 * Generate the decryption keys for the Equivalent Inverse Cipher.
235*4882a593Smuzhiyun 	 * This involves reversing the order of the round keys, and applying
236*4882a593Smuzhiyun 	 * the Inverse Mix Columns transformation to all but the first and
237*4882a593Smuzhiyun 	 * the last one.
238*4882a593Smuzhiyun 	 */
239*4882a593Smuzhiyun 	ctx->key_dec[0] = ctx->key_enc[key_len + 24];
240*4882a593Smuzhiyun 	ctx->key_dec[1] = ctx->key_enc[key_len + 25];
241*4882a593Smuzhiyun 	ctx->key_dec[2] = ctx->key_enc[key_len + 26];
242*4882a593Smuzhiyun 	ctx->key_dec[3] = ctx->key_enc[key_len + 27];
243*4882a593Smuzhiyun 
244*4882a593Smuzhiyun 	for (i = 4, j = key_len + 20; j > 0; i += 4, j -= 4) {
245*4882a593Smuzhiyun 		ctx->key_dec[i]     = inv_mix_columns(ctx->key_enc[j]);
246*4882a593Smuzhiyun 		ctx->key_dec[i + 1] = inv_mix_columns(ctx->key_enc[j + 1]);
247*4882a593Smuzhiyun 		ctx->key_dec[i + 2] = inv_mix_columns(ctx->key_enc[j + 2]);
248*4882a593Smuzhiyun 		ctx->key_dec[i + 3] = inv_mix_columns(ctx->key_enc[j + 3]);
249*4882a593Smuzhiyun 	}
250*4882a593Smuzhiyun 
251*4882a593Smuzhiyun 	ctx->key_dec[i]     = ctx->key_enc[0];
252*4882a593Smuzhiyun 	ctx->key_dec[i + 1] = ctx->key_enc[1];
253*4882a593Smuzhiyun 	ctx->key_dec[i + 2] = ctx->key_enc[2];
254*4882a593Smuzhiyun 	ctx->key_dec[i + 3] = ctx->key_enc[3];
255*4882a593Smuzhiyun 
256*4882a593Smuzhiyun 	return 0;
257*4882a593Smuzhiyun }
258*4882a593Smuzhiyun EXPORT_SYMBOL(aes_expandkey);
259*4882a593Smuzhiyun 
260*4882a593Smuzhiyun /**
261*4882a593Smuzhiyun  * aes_encrypt - Encrypt a single AES block
262*4882a593Smuzhiyun  * @ctx:	Context struct containing the key schedule
263*4882a593Smuzhiyun  * @out:	Buffer to store the ciphertext
264*4882a593Smuzhiyun  * @in:		Buffer containing the plaintext
265*4882a593Smuzhiyun  */
aes_encrypt(const struct crypto_aes_ctx * ctx,u8 * out,const u8 * in)266*4882a593Smuzhiyun void aes_encrypt(const struct crypto_aes_ctx *ctx, u8 *out, const u8 *in)
267*4882a593Smuzhiyun {
268*4882a593Smuzhiyun 	const u32 *rkp = ctx->key_enc + 4;
269*4882a593Smuzhiyun 	int rounds = 6 + ctx->key_length / 4;
270*4882a593Smuzhiyun 	u32 st0[4], st1[4];
271*4882a593Smuzhiyun 	int round;
272*4882a593Smuzhiyun #if defined(CONFIG_CRYPTO_FIPS140) && !defined(BUILD_FIPS140_KO)
273*4882a593Smuzhiyun 	int hook_inuse = 0;
274*4882a593Smuzhiyun 
275*4882a593Smuzhiyun 	trace_android_vh_aes_encrypt(ctx, out, in, &hook_inuse);
276*4882a593Smuzhiyun 	if (hook_inuse)
277*4882a593Smuzhiyun 		return;
278*4882a593Smuzhiyun #endif
279*4882a593Smuzhiyun 
280*4882a593Smuzhiyun 	st0[0] = ctx->key_enc[0] ^ get_unaligned_le32(in);
281*4882a593Smuzhiyun 	st0[1] = ctx->key_enc[1] ^ get_unaligned_le32(in + 4);
282*4882a593Smuzhiyun 	st0[2] = ctx->key_enc[2] ^ get_unaligned_le32(in + 8);
283*4882a593Smuzhiyun 	st0[3] = ctx->key_enc[3] ^ get_unaligned_le32(in + 12);
284*4882a593Smuzhiyun 
285*4882a593Smuzhiyun 	/*
286*4882a593Smuzhiyun 	 * Force the compiler to emit data independent Sbox references,
287*4882a593Smuzhiyun 	 * by xoring the input with Sbox values that are known to add up
288*4882a593Smuzhiyun 	 * to zero. This pulls the entire Sbox into the D-cache before any
289*4882a593Smuzhiyun 	 * data dependent lookups are done.
290*4882a593Smuzhiyun 	 */
291*4882a593Smuzhiyun 	st0[0] ^= aes_sbox[ 0] ^ aes_sbox[ 64] ^ aes_sbox[134] ^ aes_sbox[195];
292*4882a593Smuzhiyun 	st0[1] ^= aes_sbox[16] ^ aes_sbox[ 82] ^ aes_sbox[158] ^ aes_sbox[221];
293*4882a593Smuzhiyun 	st0[2] ^= aes_sbox[32] ^ aes_sbox[ 96] ^ aes_sbox[160] ^ aes_sbox[234];
294*4882a593Smuzhiyun 	st0[3] ^= aes_sbox[48] ^ aes_sbox[112] ^ aes_sbox[186] ^ aes_sbox[241];
295*4882a593Smuzhiyun 
296*4882a593Smuzhiyun 	for (round = 0;; round += 2, rkp += 8) {
297*4882a593Smuzhiyun 		st1[0] = mix_columns(subshift(st0, 0)) ^ rkp[0];
298*4882a593Smuzhiyun 		st1[1] = mix_columns(subshift(st0, 1)) ^ rkp[1];
299*4882a593Smuzhiyun 		st1[2] = mix_columns(subshift(st0, 2)) ^ rkp[2];
300*4882a593Smuzhiyun 		st1[3] = mix_columns(subshift(st0, 3)) ^ rkp[3];
301*4882a593Smuzhiyun 
302*4882a593Smuzhiyun 		if (round == rounds - 2)
303*4882a593Smuzhiyun 			break;
304*4882a593Smuzhiyun 
305*4882a593Smuzhiyun 		st0[0] = mix_columns(subshift(st1, 0)) ^ rkp[4];
306*4882a593Smuzhiyun 		st0[1] = mix_columns(subshift(st1, 1)) ^ rkp[5];
307*4882a593Smuzhiyun 		st0[2] = mix_columns(subshift(st1, 2)) ^ rkp[6];
308*4882a593Smuzhiyun 		st0[3] = mix_columns(subshift(st1, 3)) ^ rkp[7];
309*4882a593Smuzhiyun 	}
310*4882a593Smuzhiyun 
311*4882a593Smuzhiyun 	put_unaligned_le32(subshift(st1, 0) ^ rkp[4], out);
312*4882a593Smuzhiyun 	put_unaligned_le32(subshift(st1, 1) ^ rkp[5], out + 4);
313*4882a593Smuzhiyun 	put_unaligned_le32(subshift(st1, 2) ^ rkp[6], out + 8);
314*4882a593Smuzhiyun 	put_unaligned_le32(subshift(st1, 3) ^ rkp[7], out + 12);
315*4882a593Smuzhiyun }
316*4882a593Smuzhiyun EXPORT_SYMBOL(aes_encrypt);
317*4882a593Smuzhiyun 
318*4882a593Smuzhiyun /**
319*4882a593Smuzhiyun  * aes_decrypt - Decrypt a single AES block
320*4882a593Smuzhiyun  * @ctx:	Context struct containing the key schedule
321*4882a593Smuzhiyun  * @out:	Buffer to store the plaintext
322*4882a593Smuzhiyun  * @in:		Buffer containing the ciphertext
323*4882a593Smuzhiyun  */
aes_decrypt(const struct crypto_aes_ctx * ctx,u8 * out,const u8 * in)324*4882a593Smuzhiyun void aes_decrypt(const struct crypto_aes_ctx *ctx, u8 *out, const u8 *in)
325*4882a593Smuzhiyun {
326*4882a593Smuzhiyun 	const u32 *rkp = ctx->key_dec + 4;
327*4882a593Smuzhiyun 	int rounds = 6 + ctx->key_length / 4;
328*4882a593Smuzhiyun 	u32 st0[4], st1[4];
329*4882a593Smuzhiyun 	int round;
330*4882a593Smuzhiyun #if defined(CONFIG_CRYPTO_FIPS140) && !defined(BUILD_FIPS140_KO)
331*4882a593Smuzhiyun 	int hook_inuse = 0;
332*4882a593Smuzhiyun 
333*4882a593Smuzhiyun 	trace_android_vh_aes_decrypt(ctx, out, in, &hook_inuse);
334*4882a593Smuzhiyun 	if (hook_inuse)
335*4882a593Smuzhiyun 		return;
336*4882a593Smuzhiyun #endif
337*4882a593Smuzhiyun 
338*4882a593Smuzhiyun 	st0[0] = ctx->key_dec[0] ^ get_unaligned_le32(in);
339*4882a593Smuzhiyun 	st0[1] = ctx->key_dec[1] ^ get_unaligned_le32(in + 4);
340*4882a593Smuzhiyun 	st0[2] = ctx->key_dec[2] ^ get_unaligned_le32(in + 8);
341*4882a593Smuzhiyun 	st0[3] = ctx->key_dec[3] ^ get_unaligned_le32(in + 12);
342*4882a593Smuzhiyun 
343*4882a593Smuzhiyun 	/*
344*4882a593Smuzhiyun 	 * Force the compiler to emit data independent Sbox references,
345*4882a593Smuzhiyun 	 * by xoring the input with Sbox values that are known to add up
346*4882a593Smuzhiyun 	 * to zero. This pulls the entire Sbox into the D-cache before any
347*4882a593Smuzhiyun 	 * data dependent lookups are done.
348*4882a593Smuzhiyun 	 */
349*4882a593Smuzhiyun 	st0[0] ^= aes_inv_sbox[ 0] ^ aes_inv_sbox[ 64] ^ aes_inv_sbox[129] ^ aes_inv_sbox[200];
350*4882a593Smuzhiyun 	st0[1] ^= aes_inv_sbox[16] ^ aes_inv_sbox[ 83] ^ aes_inv_sbox[150] ^ aes_inv_sbox[212];
351*4882a593Smuzhiyun 	st0[2] ^= aes_inv_sbox[32] ^ aes_inv_sbox[ 96] ^ aes_inv_sbox[160] ^ aes_inv_sbox[236];
352*4882a593Smuzhiyun 	st0[3] ^= aes_inv_sbox[48] ^ aes_inv_sbox[112] ^ aes_inv_sbox[187] ^ aes_inv_sbox[247];
353*4882a593Smuzhiyun 
354*4882a593Smuzhiyun 	for (round = 0;; round += 2, rkp += 8) {
355*4882a593Smuzhiyun 		st1[0] = inv_mix_columns(inv_subshift(st0, 0)) ^ rkp[0];
356*4882a593Smuzhiyun 		st1[1] = inv_mix_columns(inv_subshift(st0, 1)) ^ rkp[1];
357*4882a593Smuzhiyun 		st1[2] = inv_mix_columns(inv_subshift(st0, 2)) ^ rkp[2];
358*4882a593Smuzhiyun 		st1[3] = inv_mix_columns(inv_subshift(st0, 3)) ^ rkp[3];
359*4882a593Smuzhiyun 
360*4882a593Smuzhiyun 		if (round == rounds - 2)
361*4882a593Smuzhiyun 			break;
362*4882a593Smuzhiyun 
363*4882a593Smuzhiyun 		st0[0] = inv_mix_columns(inv_subshift(st1, 0)) ^ rkp[4];
364*4882a593Smuzhiyun 		st0[1] = inv_mix_columns(inv_subshift(st1, 1)) ^ rkp[5];
365*4882a593Smuzhiyun 		st0[2] = inv_mix_columns(inv_subshift(st1, 2)) ^ rkp[6];
366*4882a593Smuzhiyun 		st0[3] = inv_mix_columns(inv_subshift(st1, 3)) ^ rkp[7];
367*4882a593Smuzhiyun 	}
368*4882a593Smuzhiyun 
369*4882a593Smuzhiyun 	put_unaligned_le32(inv_subshift(st1, 0) ^ rkp[4], out);
370*4882a593Smuzhiyun 	put_unaligned_le32(inv_subshift(st1, 1) ^ rkp[5], out + 4);
371*4882a593Smuzhiyun 	put_unaligned_le32(inv_subshift(st1, 2) ^ rkp[6], out + 8);
372*4882a593Smuzhiyun 	put_unaligned_le32(inv_subshift(st1, 3) ^ rkp[7], out + 12);
373*4882a593Smuzhiyun }
374*4882a593Smuzhiyun EXPORT_SYMBOL(aes_decrypt);
375*4882a593Smuzhiyun 
376*4882a593Smuzhiyun MODULE_DESCRIPTION("Generic AES library");
377*4882a593Smuzhiyun MODULE_AUTHOR("Ard Biesheuvel <ard.biesheuvel@linaro.org>");
378*4882a593Smuzhiyun MODULE_LICENSE("GPL v2");
379