4 * TEA, XTEA, and XETA crypto alogrithms
6 * The TEA and Xtended TEA algorithms were developed by David Wheeler
7 * and Roger Needham at the Computer Laboratory of Cambridge University.
9 * Due to the order of evaluation in XTEA many people have incorrectly
10 * implemented it. XETA (XTEA in the wrong order), exists for
11 * compatibility with these implementations.
13 * Copyright (c) 2004 Aaron Grothe ajgrothe@yahoo.com
15 * This program is free software; you can redistribute it and/or modify
16 * it under the terms of the GNU General Public License as published by
17 * the Free Software Foundation; either version 2 of the License, or
18 * (at your option) any later version.
22 #include <linux/init.h>
23 #include <linux/module.h>
25 #include <asm/byteorder.h>
26 #include <asm/scatterlist.h>
27 #include <linux/crypto.h>
28 #include <linux/types.h>
30 #define TEA_KEY_SIZE 16
31 #define TEA_BLOCK_SIZE 8
33 #define TEA_DELTA 0x9e3779b9
35 #define XTEA_KEY_SIZE 16
36 #define XTEA_BLOCK_SIZE 8
37 #define XTEA_ROUNDS 32
38 #define XTEA_DELTA 0x9e3779b9
48 static int tea_setkey(struct crypto_tfm
*tfm
, const u8
*in_key
,
51 struct tea_ctx
*ctx
= crypto_tfm_ctx(tfm
);
52 const __le32
*key
= (const __le32
*)in_key
;
54 ctx
->KEY
[0] = le32_to_cpu(key
[0]);
55 ctx
->KEY
[1] = le32_to_cpu(key
[1]);
56 ctx
->KEY
[2] = le32_to_cpu(key
[2]);
57 ctx
->KEY
[3] = le32_to_cpu(key
[3]);
63 static void tea_encrypt(struct crypto_tfm
*tfm
, u8
*dst
, const u8
*src
)
67 struct tea_ctx
*ctx
= crypto_tfm_ctx(tfm
);
68 const __le32
*in
= (const __le32
*)src
;
69 __le32
*out
= (__le32
*)dst
;
71 y
= le32_to_cpu(in
[0]);
72 z
= le32_to_cpu(in
[1]);
83 y
+= ((z
<< 4) + k0
) ^ (z
+ sum
) ^ ((z
>> 5) + k1
);
84 z
+= ((y
<< 4) + k2
) ^ (y
+ sum
) ^ ((y
>> 5) + k3
);
87 out
[0] = cpu_to_le32(y
);
88 out
[1] = cpu_to_le32(z
);
91 static void tea_decrypt(struct crypto_tfm
*tfm
, u8
*dst
, const u8
*src
)
95 struct tea_ctx
*ctx
= crypto_tfm_ctx(tfm
);
96 const __le32
*in
= (const __le32
*)src
;
97 __le32
*out
= (__le32
*)dst
;
99 y
= le32_to_cpu(in
[0]);
100 z
= le32_to_cpu(in
[1]);
107 sum
= TEA_DELTA
<< 5;
112 z
-= ((y
<< 4) + k2
) ^ (y
+ sum
) ^ ((y
>> 5) + k3
);
113 y
-= ((z
<< 4) + k0
) ^ (z
+ sum
) ^ ((z
>> 5) + k1
);
117 out
[0] = cpu_to_le32(y
);
118 out
[1] = cpu_to_le32(z
);
121 static int xtea_setkey(struct crypto_tfm
*tfm
, const u8
*in_key
,
122 unsigned int key_len
)
124 struct xtea_ctx
*ctx
= crypto_tfm_ctx(tfm
);
125 const __le32
*key
= (const __le32
*)in_key
;
127 ctx
->KEY
[0] = le32_to_cpu(key
[0]);
128 ctx
->KEY
[1] = le32_to_cpu(key
[1]);
129 ctx
->KEY
[2] = le32_to_cpu(key
[2]);
130 ctx
->KEY
[3] = le32_to_cpu(key
[3]);
136 static void xtea_encrypt(struct crypto_tfm
*tfm
, u8
*dst
, const u8
*src
)
139 u32 limit
= XTEA_DELTA
* XTEA_ROUNDS
;
140 struct xtea_ctx
*ctx
= crypto_tfm_ctx(tfm
);
141 const __le32
*in
= (const __le32
*)src
;
142 __le32
*out
= (__le32
*)dst
;
144 y
= le32_to_cpu(in
[0]);
145 z
= le32_to_cpu(in
[1]);
147 while (sum
!= limit
) {
148 y
+= ((z
<< 4 ^ z
>> 5) + z
) ^ (sum
+ ctx
->KEY
[sum
&3]);
150 z
+= ((y
<< 4 ^ y
>> 5) + y
) ^ (sum
+ ctx
->KEY
[sum
>>11 &3]);
153 out
[0] = cpu_to_le32(y
);
154 out
[1] = cpu_to_le32(z
);
157 static void xtea_decrypt(struct crypto_tfm
*tfm
, u8
*dst
, const u8
*src
)
160 struct tea_ctx
*ctx
= crypto_tfm_ctx(tfm
);
161 const __le32
*in
= (const __le32
*)src
;
162 __le32
*out
= (__le32
*)dst
;
164 y
= le32_to_cpu(in
[0]);
165 z
= le32_to_cpu(in
[1]);
167 sum
= XTEA_DELTA
* XTEA_ROUNDS
;
170 z
-= ((y
<< 4 ^ y
>> 5) + y
) ^ (sum
+ ctx
->KEY
[sum
>>11 & 3]);
172 y
-= ((z
<< 4 ^ z
>> 5) + z
) ^ (sum
+ ctx
->KEY
[sum
& 3]);
175 out
[0] = cpu_to_le32(y
);
176 out
[1] = cpu_to_le32(z
);
180 static void xeta_encrypt(struct crypto_tfm
*tfm
, u8
*dst
, const u8
*src
)
183 u32 limit
= XTEA_DELTA
* XTEA_ROUNDS
;
184 struct xtea_ctx
*ctx
= crypto_tfm_ctx(tfm
);
185 const __le32
*in
= (const __le32
*)src
;
186 __le32
*out
= (__le32
*)dst
;
188 y
= le32_to_cpu(in
[0]);
189 z
= le32_to_cpu(in
[1]);
191 while (sum
!= limit
) {
192 y
+= (z
<< 4 ^ z
>> 5) + (z
^ sum
) + ctx
->KEY
[sum
&3];
194 z
+= (y
<< 4 ^ y
>> 5) + (y
^ sum
) + ctx
->KEY
[sum
>>11 &3];
197 out
[0] = cpu_to_le32(y
);
198 out
[1] = cpu_to_le32(z
);
201 static void xeta_decrypt(struct crypto_tfm
*tfm
, u8
*dst
, const u8
*src
)
204 struct tea_ctx
*ctx
= crypto_tfm_ctx(tfm
);
205 const __le32
*in
= (const __le32
*)src
;
206 __le32
*out
= (__le32
*)dst
;
208 y
= le32_to_cpu(in
[0]);
209 z
= le32_to_cpu(in
[1]);
211 sum
= XTEA_DELTA
* XTEA_ROUNDS
;
214 z
-= (y
<< 4 ^ y
>> 5) + (y
^ sum
) + ctx
->KEY
[sum
>>11 & 3];
216 y
-= (z
<< 4 ^ z
>> 5) + (z
^ sum
) + ctx
->KEY
[sum
& 3];
219 out
[0] = cpu_to_le32(y
);
220 out
[1] = cpu_to_le32(z
);
223 static struct crypto_alg tea_alg
= {
225 .cra_flags
= CRYPTO_ALG_TYPE_CIPHER
,
226 .cra_blocksize
= TEA_BLOCK_SIZE
,
227 .cra_ctxsize
= sizeof (struct tea_ctx
),
229 .cra_module
= THIS_MODULE
,
230 .cra_list
= LIST_HEAD_INIT(tea_alg
.cra_list
),
231 .cra_u
= { .cipher
= {
232 .cia_min_keysize
= TEA_KEY_SIZE
,
233 .cia_max_keysize
= TEA_KEY_SIZE
,
234 .cia_setkey
= tea_setkey
,
235 .cia_encrypt
= tea_encrypt
,
236 .cia_decrypt
= tea_decrypt
} }
239 static struct crypto_alg xtea_alg
= {
241 .cra_flags
= CRYPTO_ALG_TYPE_CIPHER
,
242 .cra_blocksize
= XTEA_BLOCK_SIZE
,
243 .cra_ctxsize
= sizeof (struct xtea_ctx
),
245 .cra_module
= THIS_MODULE
,
246 .cra_list
= LIST_HEAD_INIT(xtea_alg
.cra_list
),
247 .cra_u
= { .cipher
= {
248 .cia_min_keysize
= XTEA_KEY_SIZE
,
249 .cia_max_keysize
= XTEA_KEY_SIZE
,
250 .cia_setkey
= xtea_setkey
,
251 .cia_encrypt
= xtea_encrypt
,
252 .cia_decrypt
= xtea_decrypt
} }
255 static struct crypto_alg xeta_alg
= {
257 .cra_flags
= CRYPTO_ALG_TYPE_CIPHER
,
258 .cra_blocksize
= XTEA_BLOCK_SIZE
,
259 .cra_ctxsize
= sizeof (struct xtea_ctx
),
261 .cra_module
= THIS_MODULE
,
262 .cra_list
= LIST_HEAD_INIT(xtea_alg
.cra_list
),
263 .cra_u
= { .cipher
= {
264 .cia_min_keysize
= XTEA_KEY_SIZE
,
265 .cia_max_keysize
= XTEA_KEY_SIZE
,
266 .cia_setkey
= xtea_setkey
,
267 .cia_encrypt
= xeta_encrypt
,
268 .cia_decrypt
= xeta_decrypt
} }
271 static int __init
init(void)
275 ret
= crypto_register_alg(&tea_alg
);
279 ret
= crypto_register_alg(&xtea_alg
);
281 crypto_unregister_alg(&tea_alg
);
285 ret
= crypto_register_alg(&xeta_alg
);
287 crypto_unregister_alg(&tea_alg
);
288 crypto_unregister_alg(&xtea_alg
);
296 static void __exit
fini(void)
298 crypto_unregister_alg(&tea_alg
);
299 crypto_unregister_alg(&xtea_alg
);
300 crypto_unregister_alg(&xeta_alg
);
303 MODULE_ALIAS("xtea");
304 MODULE_ALIAS("xeta");
309 MODULE_LICENSE("GPL");
310 MODULE_DESCRIPTION("TEA, XTEA & XETA Cryptographic Algorithms");