umac.c revision 1.1.1.7 1 1.1.1.7 christos /* $OpenBSD: umac.c,v 1.16 2017/12/12 15:06:12 naddy Exp $ */
2 1.1 christos /* -----------------------------------------------------------------------
3 1.1.1.7 christos *
4 1.1 christos * umac.c -- C Implementation UMAC Message Authentication
5 1.1 christos *
6 1.1 christos * Version 0.93b of rfc4418.txt -- 2006 July 18
7 1.1 christos *
8 1.1 christos * For a full description of UMAC message authentication see the UMAC
9 1.1 christos * world-wide-web page at http://www.cs.ucdavis.edu/~rogaway/umac
10 1.1 christos * Please report bugs and suggestions to the UMAC webpage.
11 1.1 christos *
12 1.1 christos * Copyright (c) 1999-2006 Ted Krovetz
13 1.1.1.7 christos *
14 1.1 christos * Permission to use, copy, modify, and distribute this software and
15 1.1 christos * its documentation for any purpose and with or without fee, is hereby
16 1.1 christos * granted provided that the above copyright notice appears in all copies
17 1.1 christos * and in supporting documentation, and that the name of the copyright
18 1.1 christos * holder not be used in advertising or publicity pertaining to
19 1.1 christos * distribution of the software without specific, written prior permission.
20 1.1 christos *
21 1.1.1.7 christos * Comments should be directed to Ted Krovetz (tdk (at) acm.org)
22 1.1.1.7 christos *
23 1.1 christos * ---------------------------------------------------------------------- */
24 1.1.1.7 christos
25 1.1 christos /* ////////////////////// IMPORTANT NOTES /////////////////////////////////
26 1.1 christos *
27 1.1 christos * 1) This version does not work properly on messages larger than 16MB
28 1.1 christos *
29 1.1 christos * 2) If you set the switch to use SSE2, then all data must be 16-byte
30 1.1 christos * aligned
31 1.1 christos *
32 1.1 christos * 3) When calling the function umac(), it is assumed that msg is in
33 1.1 christos * a writable buffer of length divisible by 32 bytes. The message itself
34 1.1 christos * does not have to fill the entire buffer, but bytes beyond msg may be
35 1.1 christos * zeroed.
36 1.1 christos *
37 1.1 christos * 4) Three free AES implementations are supported by this implementation of
38 1.1 christos * UMAC. Paulo Barreto's version is in the public domain and can be found
39 1.1 christos * at http://www.esat.kuleuven.ac.be/~rijmen/rijndael/ (search for
40 1.1 christos * "Barreto"). The only two files needed are rijndael-alg-fst.c and
41 1.1 christos * rijndael-alg-fst.h. Brian Gladman's version is distributed with the GNU
42 1.1 christos * Public lisence at http://fp.gladman.plus.com/AES/index.htm. It
43 1.1 christos * includes a fast IA-32 assembly version. The OpenSSL crypo library is
44 1.1 christos * the third.
45 1.1 christos *
46 1.1 christos * 5) With FORCE_C_ONLY flags set to 0, incorrect results are sometimes
47 1.1 christos * produced under gcc with optimizations set -O3 or higher. Dunno why.
48 1.1 christos *
49 1.1 christos /////////////////////////////////////////////////////////////////////// */
50 1.1.1.7 christos
51 1.1 christos /* ---------------------------------------------------------------------- */
52 1.1 christos /* --- User Switches ---------------------------------------------------- */
53 1.1 christos /* ---------------------------------------------------------------------- */
54 1.1 christos
55 1.1.1.7 christos #ifndef UMAC_OUTPUT_LEN
56 1.1 christos #define UMAC_OUTPUT_LEN 8 /* Alowable: 4, 8, 12, 16 */
57 1.1.1.7 christos #endif
58 1.1 christos /* #define FORCE_C_ONLY 1 ANSI C and 64-bit integers req'd */
59 1.1 christos /* #define AES_IMPLEMENTAION 1 1 = OpenSSL, 2 = Barreto, 3 = Gladman */
60 1.1 christos /* #define SSE2 0 Is SSE2 is available? */
61 1.1 christos /* #define RUN_TESTS 0 Run basic correctness/speed tests */
62 1.1 christos /* #define UMAC_AE_SUPPORT 0 Enable auhthenticated encrytion */
63 1.1 christos
64 1.1 christos /* ---------------------------------------------------------------------- */
65 1.1 christos /* -- Global Includes --------------------------------------------------- */
66 1.1 christos /* ---------------------------------------------------------------------- */
67 1.1 christos
68 1.1 christos #include <sys/types.h>
69 1.1.1.5 christos #include <endian.h>
70 1.1 christos #include <string.h>
71 1.1.1.5 christos #include <stdio.h>
72 1.1 christos #include <stdlib.h>
73 1.1 christos #include <stddef.h>
74 1.1 christos
75 1.1.1.5 christos #include "xmalloc.h"
76 1.1.1.5 christos #include "umac.h"
77 1.1.1.5 christos #include "misc.h"
78 1.1.1.5 christos
79 1.1 christos /* ---------------------------------------------------------------------- */
80 1.1 christos /* --- Primitive Data Types --- */
81 1.1 christos /* ---------------------------------------------------------------------- */
82 1.1 christos
83 1.1 christos /* The following assumptions may need change on your system */
84 1.1 christos typedef u_int8_t UINT8; /* 1 byte */
85 1.1 christos typedef u_int16_t UINT16; /* 2 byte */
86 1.1 christos typedef u_int32_t UINT32; /* 4 byte */
87 1.1 christos typedef u_int64_t UINT64; /* 8 bytes */
88 1.1 christos typedef unsigned int UWORD; /* Register */
89 1.1 christos
90 1.1 christos /* ---------------------------------------------------------------------- */
91 1.1 christos /* --- Constants -------------------------------------------------------- */
92 1.1 christos /* ---------------------------------------------------------------------- */
93 1.1 christos
94 1.1 christos #define UMAC_KEY_LEN 16 /* UMAC takes 16 bytes of external key */
95 1.1 christos
96 1.1 christos /* Message "words" are read from memory in an endian-specific manner. */
97 1.1 christos /* For this implementation to behave correctly, __LITTLE_ENDIAN__ must */
98 1.1 christos /* be set true if the host computer is little-endian. */
99 1.1 christos
100 1.1 christos #if BYTE_ORDER == LITTLE_ENDIAN
101 1.1 christos #define __LITTLE_ENDIAN__ 1
102 1.1 christos #else
103 1.1 christos #define __LITTLE_ENDIAN__ 0
104 1.1 christos #endif
105 1.1 christos
106 1.1 christos /* ---------------------------------------------------------------------- */
107 1.1 christos /* ---------------------------------------------------------------------- */
108 1.1 christos /* ----- Architecture Specific ------------------------------------------ */
109 1.1 christos /* ---------------------------------------------------------------------- */
110 1.1 christos /* ---------------------------------------------------------------------- */
111 1.1 christos
112 1.1 christos
113 1.1 christos /* ---------------------------------------------------------------------- */
114 1.1 christos /* ---------------------------------------------------------------------- */
115 1.1 christos /* ----- Primitive Routines --------------------------------------------- */
116 1.1 christos /* ---------------------------------------------------------------------- */
117 1.1 christos /* ---------------------------------------------------------------------- */
118 1.1 christos
119 1.1 christos
120 1.1 christos /* ---------------------------------------------------------------------- */
121 1.1 christos /* --- 32-bit by 32-bit to 64-bit Multiplication ------------------------ */
122 1.1 christos /* ---------------------------------------------------------------------- */
123 1.1 christos
124 1.1 christos #define MUL64(a,b) ((UINT64)((UINT64)(UINT32)(a) * (UINT64)(UINT32)(b)))
125 1.1 christos
126 1.1 christos /* ---------------------------------------------------------------------- */
127 1.1 christos /* --- Endian Conversion --- Forcing assembly on some platforms */
128 1.1 christos /* ---------------------------------------------------------------------- */
129 1.1 christos
130 1.1 christos /* The following definitions use the above reversal-primitives to do the right
131 1.1 christos * thing on endian specific load and stores.
132 1.1 christos */
133 1.1 christos
134 1.1.1.5 christos #if BYTE_ORDER == LITTLE_ENDIAN
135 1.1.1.5 christos #define LOAD_UINT32_REVERSED(p) get_u32(p)
136 1.1.1.7 christos #define STORE_UINT32_REVERSED(p,v) put_u32(p,v)
137 1.1 christos #else
138 1.1.1.5 christos #define LOAD_UINT32_REVERSED(p) get_u32_le(p)
139 1.1.1.7 christos #define STORE_UINT32_REVERSED(p,v) put_u32_le(p,v)
140 1.1 christos #endif
141 1.1 christos
142 1.1.1.5 christos #define LOAD_UINT32_LITTLE(p) (get_u32_le(p))
143 1.1.1.5 christos #define STORE_UINT32_BIG(p,v) put_u32(p, v)
144 1.1.1.5 christos
145 1.1 christos
146 1.1 christos
147 1.1 christos /* ---------------------------------------------------------------------- */
148 1.1 christos /* ---------------------------------------------------------------------- */
149 1.1 christos /* ----- Begin KDF & PDF Section ---------------------------------------- */
150 1.1 christos /* ---------------------------------------------------------------------- */
151 1.1 christos /* ---------------------------------------------------------------------- */
152 1.1 christos
153 1.1 christos /* UMAC uses AES with 16 byte block and key lengths */
154 1.1 christos #define AES_BLOCK_LEN 16
155 1.1 christos
156 1.1.1.5 christos #ifdef WITH_OPENSSL
157 1.1 christos #include <openssl/aes.h>
158 1.1 christos typedef AES_KEY aes_int_key[1];
159 1.1 christos #define aes_encryption(in,out,int_key) \
160 1.1 christos AES_encrypt((u_char *)(in),(u_char *)(out),(AES_KEY *)int_key)
161 1.1 christos #define aes_key_setup(key,int_key) \
162 1.1.1.4 christos AES_set_encrypt_key((const u_char *)(key),UMAC_KEY_LEN*8,int_key)
163 1.1.1.5 christos #else
164 1.1.1.5 christos #include "rijndael.h"
165 1.1.1.5 christos #define AES_ROUNDS ((UMAC_KEY_LEN / 4) + 6)
166 1.1.1.5 christos typedef UINT8 aes_int_key[AES_ROUNDS+1][4][4]; /* AES internal */
167 1.1.1.5 christos #define aes_encryption(in,out,int_key) \
168 1.1.1.5 christos rijndaelEncrypt((u32 *)(int_key), AES_ROUNDS, (u8 *)(in), (u8 *)(out))
169 1.1.1.5 christos #define aes_key_setup(key,int_key) \
170 1.1.1.5 christos rijndaelKeySetupEnc((u32 *)(int_key), (const unsigned char *)(key), \
171 1.1.1.5 christos UMAC_KEY_LEN*8)
172 1.1.1.5 christos #endif
173 1.1 christos
174 1.1 christos /* The user-supplied UMAC key is stretched using AES in a counter
175 1.1 christos * mode to supply all random bits needed by UMAC. The kdf function takes
176 1.1 christos * an AES internal key representation 'key' and writes a stream of
177 1.1 christos * 'nbytes' bytes to the memory pointed at by 'buffer_ptr'. Each distinct
178 1.1 christos * 'ndx' causes a distinct byte stream.
179 1.1 christos */
180 1.1 christos static void kdf(void *buffer_ptr, aes_int_key key, UINT8 ndx, int nbytes)
181 1.1 christos {
182 1.1 christos UINT8 in_buf[AES_BLOCK_LEN] = {0};
183 1.1 christos UINT8 out_buf[AES_BLOCK_LEN];
184 1.1 christos UINT8 *dst_buf = (UINT8 *)buffer_ptr;
185 1.1 christos int i;
186 1.1.1.7 christos
187 1.1 christos /* Setup the initial value */
188 1.1 christos in_buf[AES_BLOCK_LEN-9] = ndx;
189 1.1 christos in_buf[AES_BLOCK_LEN-1] = i = 1;
190 1.1.1.7 christos
191 1.1 christos while (nbytes >= AES_BLOCK_LEN) {
192 1.1 christos aes_encryption(in_buf, out_buf, key);
193 1.1 christos memcpy(dst_buf,out_buf,AES_BLOCK_LEN);
194 1.1 christos in_buf[AES_BLOCK_LEN-1] = ++i;
195 1.1 christos nbytes -= AES_BLOCK_LEN;
196 1.1 christos dst_buf += AES_BLOCK_LEN;
197 1.1 christos }
198 1.1 christos if (nbytes) {
199 1.1 christos aes_encryption(in_buf, out_buf, key);
200 1.1 christos memcpy(dst_buf,out_buf,nbytes);
201 1.1 christos }
202 1.1.1.6 christos explicit_bzero(in_buf, sizeof(in_buf));
203 1.1.1.6 christos explicit_bzero(out_buf, sizeof(out_buf));
204 1.1 christos }
205 1.1 christos
206 1.1 christos /* The final UHASH result is XOR'd with the output of a pseudorandom
207 1.1.1.7 christos * function. Here, we use AES to generate random output and
208 1.1 christos * xor the appropriate bytes depending on the last bits of nonce.
209 1.1 christos * This scheme is optimized for sequential, increasing big-endian nonces.
210 1.1 christos */
211 1.1 christos
212 1.1 christos typedef struct {
213 1.1 christos UINT8 cache[AES_BLOCK_LEN]; /* Previous AES output is saved */
214 1.1 christos UINT8 nonce[AES_BLOCK_LEN]; /* The AES input making above cache */
215 1.1 christos aes_int_key prf_key; /* Expanded AES key for PDF */
216 1.1 christos } pdf_ctx;
217 1.1 christos
218 1.1 christos static void pdf_init(pdf_ctx *pc, aes_int_key prf_key)
219 1.1 christos {
220 1.1 christos UINT8 buf[UMAC_KEY_LEN];
221 1.1.1.7 christos
222 1.1 christos kdf(buf, prf_key, 0, UMAC_KEY_LEN);
223 1.1 christos aes_key_setup(buf, pc->prf_key);
224 1.1.1.7 christos
225 1.1 christos /* Initialize pdf and cache */
226 1.1 christos memset(pc->nonce, 0, sizeof(pc->nonce));
227 1.1 christos aes_encryption(pc->nonce, pc->cache, pc->prf_key);
228 1.1.1.6 christos explicit_bzero(buf, sizeof(buf));
229 1.1 christos }
230 1.1 christos
231 1.1.1.4 christos static void pdf_gen_xor(pdf_ctx *pc, const UINT8 nonce[8], UINT8 buf[8])
232 1.1 christos {
233 1.1 christos /* 'ndx' indicates that we'll be using the 0th or 1st eight bytes
234 1.1 christos * of the AES output. If last time around we returned the ndx-1st
235 1.1 christos * element, then we may have the result in the cache already.
236 1.1 christos */
237 1.1.1.7 christos
238 1.1 christos #if (UMAC_OUTPUT_LEN == 4)
239 1.1 christos #define LOW_BIT_MASK 3
240 1.1 christos #elif (UMAC_OUTPUT_LEN == 8)
241 1.1 christos #define LOW_BIT_MASK 1
242 1.1 christos #elif (UMAC_OUTPUT_LEN > 8)
243 1.1 christos #define LOW_BIT_MASK 0
244 1.1 christos #endif
245 1.1.1.4 christos union {
246 1.1.1.4 christos UINT8 tmp_nonce_lo[4];
247 1.1.1.4 christos UINT32 align;
248 1.1.1.4 christos } t;
249 1.1 christos #if LOW_BIT_MASK != 0
250 1.1 christos int ndx = nonce[7] & LOW_BIT_MASK;
251 1.1 christos #endif
252 1.1.1.4 christos *(UINT32 *)t.tmp_nonce_lo = ((const UINT32 *)nonce)[1];
253 1.1.1.4 christos t.tmp_nonce_lo[3] &= ~LOW_BIT_MASK; /* zero last bit */
254 1.1.1.7 christos
255 1.1.1.4 christos if ( (((UINT32 *)t.tmp_nonce_lo)[0] != ((UINT32 *)pc->nonce)[1]) ||
256 1.1.1.4 christos (((const UINT32 *)nonce)[0] != ((UINT32 *)pc->nonce)[0]) )
257 1.1 christos {
258 1.1.1.4 christos ((UINT32 *)pc->nonce)[0] = ((const UINT32 *)nonce)[0];
259 1.1.1.4 christos ((UINT32 *)pc->nonce)[1] = ((UINT32 *)t.tmp_nonce_lo)[0];
260 1.1 christos aes_encryption(pc->nonce, pc->cache, pc->prf_key);
261 1.1 christos }
262 1.1.1.7 christos
263 1.1 christos #if (UMAC_OUTPUT_LEN == 4)
264 1.1 christos *((UINT32 *)buf) ^= ((UINT32 *)pc->cache)[ndx];
265 1.1 christos #elif (UMAC_OUTPUT_LEN == 8)
266 1.1 christos *((UINT64 *)buf) ^= ((UINT64 *)pc->cache)[ndx];
267 1.1 christos #elif (UMAC_OUTPUT_LEN == 12)
268 1.1 christos ((UINT64 *)buf)[0] ^= ((UINT64 *)pc->cache)[0];
269 1.1 christos ((UINT32 *)buf)[2] ^= ((UINT32 *)pc->cache)[2];
270 1.1 christos #elif (UMAC_OUTPUT_LEN == 16)
271 1.1 christos ((UINT64 *)buf)[0] ^= ((UINT64 *)pc->cache)[0];
272 1.1 christos ((UINT64 *)buf)[1] ^= ((UINT64 *)pc->cache)[1];
273 1.1 christos #endif
274 1.1 christos }
275 1.1 christos
276 1.1 christos /* ---------------------------------------------------------------------- */
277 1.1 christos /* ---------------------------------------------------------------------- */
278 1.1 christos /* ----- Begin NH Hash Section ------------------------------------------ */
279 1.1 christos /* ---------------------------------------------------------------------- */
280 1.1 christos /* ---------------------------------------------------------------------- */
281 1.1 christos
282 1.1 christos /* The NH-based hash functions used in UMAC are described in the UMAC paper
283 1.1.1.7 christos * and specification, both of which can be found at the UMAC website.
284 1.1.1.7 christos * The interface to this implementation has two
285 1.1 christos * versions, one expects the entire message being hashed to be passed
286 1.1 christos * in a single buffer and returns the hash result immediately. The second
287 1.1.1.7 christos * allows the message to be passed in a sequence of buffers. In the
288 1.1.1.7 christos * muliple-buffer interface, the client calls the routine nh_update() as
289 1.1.1.7 christos * many times as necessary. When there is no more data to be fed to the
290 1.1.1.7 christos * hash, the client calls nh_final() which calculates the hash output.
291 1.1.1.7 christos * Before beginning another hash calculation the nh_reset() routine
292 1.1.1.7 christos * must be called. The single-buffer routine, nh(), is equivalent to
293 1.1.1.7 christos * the sequence of calls nh_update() and nh_final(); however it is
294 1.1 christos * optimized and should be prefered whenever the multiple-buffer interface
295 1.1.1.7 christos * is not necessary. When using either interface, it is the client's
296 1.1.1.7 christos * responsability to pass no more than L1_KEY_LEN bytes per hash result.
297 1.1.1.7 christos *
298 1.1.1.7 christos * The routine nh_init() initializes the nh_ctx data structure and
299 1.1.1.7 christos * must be called once, before any other PDF routine.
300 1.1 christos */
301 1.1.1.7 christos
302 1.1 christos /* The "nh_aux" routines do the actual NH hashing work. They
303 1.1 christos * expect buffers to be multiples of L1_PAD_BOUNDARY. These routines
304 1.1.1.7 christos * produce output for all STREAMS NH iterations in one call,
305 1.1 christos * allowing the parallel implementation of the streams.
306 1.1 christos */
307 1.1 christos
308 1.1 christos #define STREAMS (UMAC_OUTPUT_LEN / 4) /* Number of times hash is applied */
309 1.1 christos #define L1_KEY_LEN 1024 /* Internal key bytes */
310 1.1 christos #define L1_KEY_SHIFT 16 /* Toeplitz key shift between streams */
311 1.1 christos #define L1_PAD_BOUNDARY 32 /* pad message to boundary multiple */
312 1.1 christos #define ALLOC_BOUNDARY 16 /* Keep buffers aligned to this */
313 1.1 christos #define HASH_BUF_BYTES 64 /* nh_aux_hb buffer multiple */
314 1.1 christos
315 1.1 christos typedef struct {
316 1.1 christos UINT8 nh_key [L1_KEY_LEN + L1_KEY_SHIFT * (STREAMS - 1)]; /* NH Key */
317 1.1.1.3 christos UINT8 data [HASH_BUF_BYTES]; /* Incoming data buffer */
318 1.1 christos int next_data_empty; /* Bookeeping variable for data buffer. */
319 1.1 christos int bytes_hashed; /* Bytes (out of L1_KEY_LEN) incorperated. */
320 1.1 christos UINT64 state[STREAMS]; /* on-line state */
321 1.1 christos } nh_ctx;
322 1.1 christos
323 1.1 christos
324 1.1 christos #if (UMAC_OUTPUT_LEN == 4)
325 1.1 christos
326 1.1.1.4 christos static void nh_aux(void *kp, const void *dp, void *hp, UINT32 dlen)
327 1.1.1.7 christos /* NH hashing primitive. Previous (partial) hash result is loaded and
328 1.1 christos * then stored via hp pointer. The length of the data pointed at by "dp",
329 1.1 christos * "dlen", is guaranteed to be divisible by L1_PAD_BOUNDARY (32). Key
330 1.1.1.7 christos * is expected to be endian compensated in memory at key setup.
331 1.1 christos */
332 1.1 christos {
333 1.1 christos UINT64 h;
334 1.1 christos UWORD c = dlen / 32;
335 1.1 christos UINT32 *k = (UINT32 *)kp;
336 1.1.1.4 christos const UINT32 *d = (const UINT32 *)dp;
337 1.1 christos UINT32 d0,d1,d2,d3,d4,d5,d6,d7;
338 1.1 christos UINT32 k0,k1,k2,k3,k4,k5,k6,k7;
339 1.1.1.7 christos
340 1.1 christos h = *((UINT64 *)hp);
341 1.1 christos do {
342 1.1 christos d0 = LOAD_UINT32_LITTLE(d+0); d1 = LOAD_UINT32_LITTLE(d+1);
343 1.1 christos d2 = LOAD_UINT32_LITTLE(d+2); d3 = LOAD_UINT32_LITTLE(d+3);
344 1.1 christos d4 = LOAD_UINT32_LITTLE(d+4); d5 = LOAD_UINT32_LITTLE(d+5);
345 1.1 christos d6 = LOAD_UINT32_LITTLE(d+6); d7 = LOAD_UINT32_LITTLE(d+7);
346 1.1 christos k0 = *(k+0); k1 = *(k+1); k2 = *(k+2); k3 = *(k+3);
347 1.1 christos k4 = *(k+4); k5 = *(k+5); k6 = *(k+6); k7 = *(k+7);
348 1.1 christos h += MUL64((k0 + d0), (k4 + d4));
349 1.1 christos h += MUL64((k1 + d1), (k5 + d5));
350 1.1 christos h += MUL64((k2 + d2), (k6 + d6));
351 1.1 christos h += MUL64((k3 + d3), (k7 + d7));
352 1.1.1.7 christos
353 1.1 christos d += 8;
354 1.1 christos k += 8;
355 1.1 christos } while (--c);
356 1.1 christos *((UINT64 *)hp) = h;
357 1.1 christos }
358 1.1 christos
359 1.1 christos #elif (UMAC_OUTPUT_LEN == 8)
360 1.1 christos
361 1.1.1.4 christos static void nh_aux(void *kp, const void *dp, void *hp, UINT32 dlen)
362 1.1 christos /* Same as previous nh_aux, but two streams are handled in one pass,
363 1.1 christos * reading and writing 16 bytes of hash-state per call.
364 1.1 christos */
365 1.1 christos {
366 1.1 christos UINT64 h1,h2;
367 1.1 christos UWORD c = dlen / 32;
368 1.1 christos UINT32 *k = (UINT32 *)kp;
369 1.1.1.4 christos const UINT32 *d = (const UINT32 *)dp;
370 1.1 christos UINT32 d0,d1,d2,d3,d4,d5,d6,d7;
371 1.1 christos UINT32 k0,k1,k2,k3,k4,k5,k6,k7,
372 1.1 christos k8,k9,k10,k11;
373 1.1 christos
374 1.1 christos h1 = *((UINT64 *)hp);
375 1.1 christos h2 = *((UINT64 *)hp + 1);
376 1.1 christos k0 = *(k+0); k1 = *(k+1); k2 = *(k+2); k3 = *(k+3);
377 1.1 christos do {
378 1.1 christos d0 = LOAD_UINT32_LITTLE(d+0); d1 = LOAD_UINT32_LITTLE(d+1);
379 1.1 christos d2 = LOAD_UINT32_LITTLE(d+2); d3 = LOAD_UINT32_LITTLE(d+3);
380 1.1 christos d4 = LOAD_UINT32_LITTLE(d+4); d5 = LOAD_UINT32_LITTLE(d+5);
381 1.1 christos d6 = LOAD_UINT32_LITTLE(d+6); d7 = LOAD_UINT32_LITTLE(d+7);
382 1.1 christos k4 = *(k+4); k5 = *(k+5); k6 = *(k+6); k7 = *(k+7);
383 1.1 christos k8 = *(k+8); k9 = *(k+9); k10 = *(k+10); k11 = *(k+11);
384 1.1 christos
385 1.1 christos h1 += MUL64((k0 + d0), (k4 + d4));
386 1.1 christos h2 += MUL64((k4 + d0), (k8 + d4));
387 1.1 christos
388 1.1 christos h1 += MUL64((k1 + d1), (k5 + d5));
389 1.1 christos h2 += MUL64((k5 + d1), (k9 + d5));
390 1.1 christos
391 1.1 christos h1 += MUL64((k2 + d2), (k6 + d6));
392 1.1 christos h2 += MUL64((k6 + d2), (k10 + d6));
393 1.1 christos
394 1.1 christos h1 += MUL64((k3 + d3), (k7 + d7));
395 1.1 christos h2 += MUL64((k7 + d3), (k11 + d7));
396 1.1 christos
397 1.1 christos k0 = k8; k1 = k9; k2 = k10; k3 = k11;
398 1.1 christos
399 1.1 christos d += 8;
400 1.1 christos k += 8;
401 1.1 christos } while (--c);
402 1.1 christos ((UINT64 *)hp)[0] = h1;
403 1.1 christos ((UINT64 *)hp)[1] = h2;
404 1.1 christos }
405 1.1 christos
406 1.1 christos #elif (UMAC_OUTPUT_LEN == 12)
407 1.1 christos
408 1.1.1.4 christos static void nh_aux(void *kp, const void *dp, void *hp, UINT32 dlen)
409 1.1 christos /* Same as previous nh_aux, but two streams are handled in one pass,
410 1.1 christos * reading and writing 24 bytes of hash-state per call.
411 1.1 christos */
412 1.1 christos {
413 1.1 christos UINT64 h1,h2,h3;
414 1.1 christos UWORD c = dlen / 32;
415 1.1 christos UINT32 *k = (UINT32 *)kp;
416 1.1.1.4 christos const UINT32 *d = (const UINT32 *)dp;
417 1.1 christos UINT32 d0,d1,d2,d3,d4,d5,d6,d7;
418 1.1 christos UINT32 k0,k1,k2,k3,k4,k5,k6,k7,
419 1.1 christos k8,k9,k10,k11,k12,k13,k14,k15;
420 1.1.1.7 christos
421 1.1 christos h1 = *((UINT64 *)hp);
422 1.1 christos h2 = *((UINT64 *)hp + 1);
423 1.1 christos h3 = *((UINT64 *)hp + 2);
424 1.1 christos k0 = *(k+0); k1 = *(k+1); k2 = *(k+2); k3 = *(k+3);
425 1.1 christos k4 = *(k+4); k5 = *(k+5); k6 = *(k+6); k7 = *(k+7);
426 1.1 christos do {
427 1.1 christos d0 = LOAD_UINT32_LITTLE(d+0); d1 = LOAD_UINT32_LITTLE(d+1);
428 1.1 christos d2 = LOAD_UINT32_LITTLE(d+2); d3 = LOAD_UINT32_LITTLE(d+3);
429 1.1 christos d4 = LOAD_UINT32_LITTLE(d+4); d5 = LOAD_UINT32_LITTLE(d+5);
430 1.1 christos d6 = LOAD_UINT32_LITTLE(d+6); d7 = LOAD_UINT32_LITTLE(d+7);
431 1.1 christos k8 = *(k+8); k9 = *(k+9); k10 = *(k+10); k11 = *(k+11);
432 1.1 christos k12 = *(k+12); k13 = *(k+13); k14 = *(k+14); k15 = *(k+15);
433 1.1.1.7 christos
434 1.1 christos h1 += MUL64((k0 + d0), (k4 + d4));
435 1.1 christos h2 += MUL64((k4 + d0), (k8 + d4));
436 1.1 christos h3 += MUL64((k8 + d0), (k12 + d4));
437 1.1.1.7 christos
438 1.1 christos h1 += MUL64((k1 + d1), (k5 + d5));
439 1.1 christos h2 += MUL64((k5 + d1), (k9 + d5));
440 1.1 christos h3 += MUL64((k9 + d1), (k13 + d5));
441 1.1.1.7 christos
442 1.1 christos h1 += MUL64((k2 + d2), (k6 + d6));
443 1.1 christos h2 += MUL64((k6 + d2), (k10 + d6));
444 1.1 christos h3 += MUL64((k10 + d2), (k14 + d6));
445 1.1.1.7 christos
446 1.1 christos h1 += MUL64((k3 + d3), (k7 + d7));
447 1.1 christos h2 += MUL64((k7 + d3), (k11 + d7));
448 1.1 christos h3 += MUL64((k11 + d3), (k15 + d7));
449 1.1.1.7 christos
450 1.1 christos k0 = k8; k1 = k9; k2 = k10; k3 = k11;
451 1.1 christos k4 = k12; k5 = k13; k6 = k14; k7 = k15;
452 1.1.1.7 christos
453 1.1 christos d += 8;
454 1.1 christos k += 8;
455 1.1 christos } while (--c);
456 1.1 christos ((UINT64 *)hp)[0] = h1;
457 1.1 christos ((UINT64 *)hp)[1] = h2;
458 1.1 christos ((UINT64 *)hp)[2] = h3;
459 1.1 christos }
460 1.1 christos
461 1.1 christos #elif (UMAC_OUTPUT_LEN == 16)
462 1.1 christos
463 1.1.1.4 christos static void nh_aux(void *kp, const void *dp, void *hp, UINT32 dlen)
464 1.1 christos /* Same as previous nh_aux, but two streams are handled in one pass,
465 1.1 christos * reading and writing 24 bytes of hash-state per call.
466 1.1 christos */
467 1.1 christos {
468 1.1 christos UINT64 h1,h2,h3,h4;
469 1.1 christos UWORD c = dlen / 32;
470 1.1 christos UINT32 *k = (UINT32 *)kp;
471 1.1.1.4 christos const UINT32 *d = (const UINT32 *)dp;
472 1.1 christos UINT32 d0,d1,d2,d3,d4,d5,d6,d7;
473 1.1 christos UINT32 k0,k1,k2,k3,k4,k5,k6,k7,
474 1.1 christos k8,k9,k10,k11,k12,k13,k14,k15,
475 1.1 christos k16,k17,k18,k19;
476 1.1.1.7 christos
477 1.1 christos h1 = *((UINT64 *)hp);
478 1.1 christos h2 = *((UINT64 *)hp + 1);
479 1.1 christos h3 = *((UINT64 *)hp + 2);
480 1.1 christos h4 = *((UINT64 *)hp + 3);
481 1.1 christos k0 = *(k+0); k1 = *(k+1); k2 = *(k+2); k3 = *(k+3);
482 1.1 christos k4 = *(k+4); k5 = *(k+5); k6 = *(k+6); k7 = *(k+7);
483 1.1 christos do {
484 1.1 christos d0 = LOAD_UINT32_LITTLE(d+0); d1 = LOAD_UINT32_LITTLE(d+1);
485 1.1 christos d2 = LOAD_UINT32_LITTLE(d+2); d3 = LOAD_UINT32_LITTLE(d+3);
486 1.1 christos d4 = LOAD_UINT32_LITTLE(d+4); d5 = LOAD_UINT32_LITTLE(d+5);
487 1.1 christos d6 = LOAD_UINT32_LITTLE(d+6); d7 = LOAD_UINT32_LITTLE(d+7);
488 1.1 christos k8 = *(k+8); k9 = *(k+9); k10 = *(k+10); k11 = *(k+11);
489 1.1 christos k12 = *(k+12); k13 = *(k+13); k14 = *(k+14); k15 = *(k+15);
490 1.1 christos k16 = *(k+16); k17 = *(k+17); k18 = *(k+18); k19 = *(k+19);
491 1.1.1.7 christos
492 1.1 christos h1 += MUL64((k0 + d0), (k4 + d4));
493 1.1 christos h2 += MUL64((k4 + d0), (k8 + d4));
494 1.1 christos h3 += MUL64((k8 + d0), (k12 + d4));
495 1.1 christos h4 += MUL64((k12 + d0), (k16 + d4));
496 1.1.1.7 christos
497 1.1 christos h1 += MUL64((k1 + d1), (k5 + d5));
498 1.1 christos h2 += MUL64((k5 + d1), (k9 + d5));
499 1.1 christos h3 += MUL64((k9 + d1), (k13 + d5));
500 1.1 christos h4 += MUL64((k13 + d1), (k17 + d5));
501 1.1.1.7 christos
502 1.1 christos h1 += MUL64((k2 + d2), (k6 + d6));
503 1.1 christos h2 += MUL64((k6 + d2), (k10 + d6));
504 1.1 christos h3 += MUL64((k10 + d2), (k14 + d6));
505 1.1 christos h4 += MUL64((k14 + d2), (k18 + d6));
506 1.1.1.7 christos
507 1.1 christos h1 += MUL64((k3 + d3), (k7 + d7));
508 1.1 christos h2 += MUL64((k7 + d3), (k11 + d7));
509 1.1 christos h3 += MUL64((k11 + d3), (k15 + d7));
510 1.1 christos h4 += MUL64((k15 + d3), (k19 + d7));
511 1.1.1.7 christos
512 1.1 christos k0 = k8; k1 = k9; k2 = k10; k3 = k11;
513 1.1 christos k4 = k12; k5 = k13; k6 = k14; k7 = k15;
514 1.1 christos k8 = k16; k9 = k17; k10 = k18; k11 = k19;
515 1.1.1.7 christos
516 1.1 christos d += 8;
517 1.1 christos k += 8;
518 1.1 christos } while (--c);
519 1.1 christos ((UINT64 *)hp)[0] = h1;
520 1.1 christos ((UINT64 *)hp)[1] = h2;
521 1.1 christos ((UINT64 *)hp)[2] = h3;
522 1.1 christos ((UINT64 *)hp)[3] = h4;
523 1.1 christos }
524 1.1 christos
525 1.1 christos /* ---------------------------------------------------------------------- */
526 1.1 christos #endif /* UMAC_OUTPUT_LENGTH */
527 1.1 christos /* ---------------------------------------------------------------------- */
528 1.1 christos
529 1.1 christos
530 1.1 christos /* ---------------------------------------------------------------------- */
531 1.1 christos
532 1.1.1.4 christos static void nh_transform(nh_ctx *hc, const UINT8 *buf, UINT32 nbytes)
533 1.1 christos /* This function is a wrapper for the primitive NH hash functions. It takes
534 1.1 christos * as argument "hc" the current hash context and a buffer which must be a
535 1.1 christos * multiple of L1_PAD_BOUNDARY. The key passed to nh_aux is offset
536 1.1 christos * appropriately according to how much message has been hashed already.
537 1.1 christos */
538 1.1 christos {
539 1.1 christos UINT8 *key;
540 1.1.1.7 christos
541 1.1 christos key = hc->nh_key + hc->bytes_hashed;
542 1.1 christos nh_aux(key, buf, hc->state, nbytes);
543 1.1 christos }
544 1.1 christos
545 1.1 christos /* ---------------------------------------------------------------------- */
546 1.1 christos
547 1.1.1.6 christos #if (__LITTLE_ENDIAN__)
548 1.1 christos static void endian_convert(void *buf, UWORD bpw, UINT32 num_bytes)
549 1.1 christos /* We endian convert the keys on little-endian computers to */
550 1.1 christos /* compensate for the lack of big-endian memory reads during hashing. */
551 1.1 christos {
552 1.1 christos UWORD iters = num_bytes / bpw;
553 1.1 christos if (bpw == 4) {
554 1.1 christos UINT32 *p = (UINT32 *)buf;
555 1.1 christos do {
556 1.1 christos *p = LOAD_UINT32_REVERSED(p);
557 1.1 christos p++;
558 1.1 christos } while (--iters);
559 1.1 christos } else if (bpw == 8) {
560 1.1 christos UINT32 *p = (UINT32 *)buf;
561 1.1 christos UINT32 t;
562 1.1 christos do {
563 1.1 christos t = LOAD_UINT32_REVERSED(p+1);
564 1.1 christos p[1] = LOAD_UINT32_REVERSED(p);
565 1.1 christos p[0] = t;
566 1.1 christos p += 2;
567 1.1 christos } while (--iters);
568 1.1 christos }
569 1.1 christos }
570 1.1 christos #define endian_convert_if_le(x,y,z) endian_convert((x),(y),(z))
571 1.1 christos #else
572 1.1 christos #define endian_convert_if_le(x,y,z) do{}while(0) /* Do nothing */
573 1.1 christos #endif
574 1.1 christos
575 1.1 christos /* ---------------------------------------------------------------------- */
576 1.1 christos
577 1.1 christos static void nh_reset(nh_ctx *hc)
578 1.1 christos /* Reset nh_ctx to ready for hashing of new data */
579 1.1 christos {
580 1.1 christos hc->bytes_hashed = 0;
581 1.1 christos hc->next_data_empty = 0;
582 1.1 christos hc->state[0] = 0;
583 1.1 christos #if (UMAC_OUTPUT_LEN >= 8)
584 1.1 christos hc->state[1] = 0;
585 1.1 christos #endif
586 1.1 christos #if (UMAC_OUTPUT_LEN >= 12)
587 1.1 christos hc->state[2] = 0;
588 1.1 christos #endif
589 1.1 christos #if (UMAC_OUTPUT_LEN == 16)
590 1.1 christos hc->state[3] = 0;
591 1.1 christos #endif
592 1.1 christos
593 1.1 christos }
594 1.1 christos
595 1.1 christos /* ---------------------------------------------------------------------- */
596 1.1 christos
597 1.1 christos static void nh_init(nh_ctx *hc, aes_int_key prf_key)
598 1.1 christos /* Generate nh_key, endian convert and reset to be ready for hashing. */
599 1.1 christos {
600 1.1 christos kdf(hc->nh_key, prf_key, 1, sizeof(hc->nh_key));
601 1.1 christos endian_convert_if_le(hc->nh_key, 4, sizeof(hc->nh_key));
602 1.1 christos nh_reset(hc);
603 1.1 christos }
604 1.1 christos
605 1.1 christos /* ---------------------------------------------------------------------- */
606 1.1 christos
607 1.1.1.4 christos static void nh_update(nh_ctx *hc, const UINT8 *buf, UINT32 nbytes)
608 1.1 christos /* Incorporate nbytes of data into a nh_ctx, buffer whatever is not an */
609 1.1 christos /* even multiple of HASH_BUF_BYTES. */
610 1.1 christos {
611 1.1 christos UINT32 i,j;
612 1.1.1.7 christos
613 1.1 christos j = hc->next_data_empty;
614 1.1 christos if ((j + nbytes) >= HASH_BUF_BYTES) {
615 1.1 christos if (j) {
616 1.1 christos i = HASH_BUF_BYTES - j;
617 1.1 christos memcpy(hc->data+j, buf, i);
618 1.1 christos nh_transform(hc,hc->data,HASH_BUF_BYTES);
619 1.1 christos nbytes -= i;
620 1.1 christos buf += i;
621 1.1 christos hc->bytes_hashed += HASH_BUF_BYTES;
622 1.1 christos }
623 1.1 christos if (nbytes >= HASH_BUF_BYTES) {
624 1.1 christos i = nbytes & ~(HASH_BUF_BYTES - 1);
625 1.1 christos nh_transform(hc, buf, i);
626 1.1 christos nbytes -= i;
627 1.1 christos buf += i;
628 1.1 christos hc->bytes_hashed += i;
629 1.1 christos }
630 1.1 christos j = 0;
631 1.1 christos }
632 1.1 christos memcpy(hc->data + j, buf, nbytes);
633 1.1 christos hc->next_data_empty = j + nbytes;
634 1.1 christos }
635 1.1 christos
636 1.1 christos /* ---------------------------------------------------------------------- */
637 1.1 christos
638 1.1 christos static void zero_pad(UINT8 *p, int nbytes)
639 1.1 christos {
640 1.1 christos /* Write "nbytes" of zeroes, beginning at "p" */
641 1.1 christos if (nbytes >= (int)sizeof(UWORD)) {
642 1.1 christos while ((ptrdiff_t)p % sizeof(UWORD)) {
643 1.1 christos *p = 0;
644 1.1 christos nbytes--;
645 1.1 christos p++;
646 1.1 christos }
647 1.1 christos while (nbytes >= (int)sizeof(UWORD)) {
648 1.1 christos *(UWORD *)p = 0;
649 1.1 christos nbytes -= sizeof(UWORD);
650 1.1 christos p += sizeof(UWORD);
651 1.1 christos }
652 1.1 christos }
653 1.1 christos while (nbytes) {
654 1.1 christos *p = 0;
655 1.1 christos nbytes--;
656 1.1 christos p++;
657 1.1 christos }
658 1.1 christos }
659 1.1 christos
660 1.1 christos /* ---------------------------------------------------------------------- */
661 1.1 christos
662 1.1 christos static void nh_final(nh_ctx *hc, UINT8 *result)
663 1.1 christos /* After passing some number of data buffers to nh_update() for integration
664 1.1 christos * into an NH context, nh_final is called to produce a hash result. If any
665 1.1 christos * bytes are in the buffer hc->data, incorporate them into the
666 1.1 christos * NH context. Finally, add into the NH accumulation "state" the total number
667 1.1 christos * of bits hashed. The resulting numbers are written to the buffer "result".
668 1.1 christos * If nh_update was never called, L1_PAD_BOUNDARY zeroes are incorporated.
669 1.1 christos */
670 1.1 christos {
671 1.1 christos int nh_len, nbits;
672 1.1 christos
673 1.1 christos if (hc->next_data_empty != 0) {
674 1.1 christos nh_len = ((hc->next_data_empty + (L1_PAD_BOUNDARY - 1)) &
675 1.1 christos ~(L1_PAD_BOUNDARY - 1));
676 1.1.1.7 christos zero_pad(hc->data + hc->next_data_empty,
677 1.1 christos nh_len - hc->next_data_empty);
678 1.1 christos nh_transform(hc, hc->data, nh_len);
679 1.1 christos hc->bytes_hashed += hc->next_data_empty;
680 1.1 christos } else if (hc->bytes_hashed == 0) {
681 1.1.1.7 christos nh_len = L1_PAD_BOUNDARY;
682 1.1 christos zero_pad(hc->data, L1_PAD_BOUNDARY);
683 1.1 christos nh_transform(hc, hc->data, nh_len);
684 1.1 christos }
685 1.1 christos
686 1.1 christos nbits = (hc->bytes_hashed << 3);
687 1.1 christos ((UINT64 *)result)[0] = ((UINT64 *)hc->state)[0] + nbits;
688 1.1 christos #if (UMAC_OUTPUT_LEN >= 8)
689 1.1 christos ((UINT64 *)result)[1] = ((UINT64 *)hc->state)[1] + nbits;
690 1.1 christos #endif
691 1.1 christos #if (UMAC_OUTPUT_LEN >= 12)
692 1.1 christos ((UINT64 *)result)[2] = ((UINT64 *)hc->state)[2] + nbits;
693 1.1 christos #endif
694 1.1 christos #if (UMAC_OUTPUT_LEN == 16)
695 1.1 christos ((UINT64 *)result)[3] = ((UINT64 *)hc->state)[3] + nbits;
696 1.1 christos #endif
697 1.1 christos nh_reset(hc);
698 1.1 christos }
699 1.1 christos
700 1.1 christos /* ---------------------------------------------------------------------- */
701 1.1 christos
702 1.1.1.4 christos static void nh(nh_ctx *hc, const UINT8 *buf, UINT32 padded_len,
703 1.1 christos UINT32 unpadded_len, UINT8 *result)
704 1.1 christos /* All-in-one nh_update() and nh_final() equivalent.
705 1.1 christos * Assumes that padded_len is divisible by L1_PAD_BOUNDARY and result is
706 1.1 christos * well aligned
707 1.1 christos */
708 1.1 christos {
709 1.1 christos UINT32 nbits;
710 1.1.1.7 christos
711 1.1 christos /* Initialize the hash state */
712 1.1 christos nbits = (unpadded_len << 3);
713 1.1.1.7 christos
714 1.1 christos ((UINT64 *)result)[0] = nbits;
715 1.1 christos #if (UMAC_OUTPUT_LEN >= 8)
716 1.1 christos ((UINT64 *)result)[1] = nbits;
717 1.1 christos #endif
718 1.1 christos #if (UMAC_OUTPUT_LEN >= 12)
719 1.1 christos ((UINT64 *)result)[2] = nbits;
720 1.1 christos #endif
721 1.1 christos #if (UMAC_OUTPUT_LEN == 16)
722 1.1 christos ((UINT64 *)result)[3] = nbits;
723 1.1 christos #endif
724 1.1.1.7 christos
725 1.1 christos nh_aux(hc->nh_key, buf, result, padded_len);
726 1.1 christos }
727 1.1 christos
728 1.1 christos /* ---------------------------------------------------------------------- */
729 1.1 christos /* ---------------------------------------------------------------------- */
730 1.1 christos /* ----- Begin UHASH Section -------------------------------------------- */
731 1.1 christos /* ---------------------------------------------------------------------- */
732 1.1 christos /* ---------------------------------------------------------------------- */
733 1.1 christos
734 1.1 christos /* UHASH is a multi-layered algorithm. Data presented to UHASH is first
735 1.1 christos * hashed by NH. The NH output is then hashed by a polynomial-hash layer
736 1.1 christos * unless the initial data to be hashed is short. After the polynomial-
737 1.1 christos * layer, an inner-product hash is used to produce the final UHASH output.
738 1.1 christos *
739 1.1 christos * UHASH provides two interfaces, one all-at-once and another where data
740 1.1 christos * buffers are presented sequentially. In the sequential interface, the
741 1.1 christos * UHASH client calls the routine uhash_update() as many times as necessary.
742 1.1 christos * When there is no more data to be fed to UHASH, the client calls
743 1.1.1.7 christos * uhash_final() which
744 1.1.1.7 christos * calculates the UHASH output. Before beginning another UHASH calculation
745 1.1.1.7 christos * the uhash_reset() routine must be called. The all-at-once UHASH routine,
746 1.1.1.7 christos * uhash(), is equivalent to the sequence of calls uhash_update() and
747 1.1.1.7 christos * uhash_final(); however it is optimized and should be
748 1.1.1.7 christos * used whenever the sequential interface is not necessary.
749 1.1.1.7 christos *
750 1.1.1.7 christos * The routine uhash_init() initializes the uhash_ctx data structure and
751 1.1 christos * must be called once, before any other UHASH routine.
752 1.1.1.7 christos */
753 1.1 christos
754 1.1 christos /* ---------------------------------------------------------------------- */
755 1.1 christos /* ----- Constants and uhash_ctx ---------------------------------------- */
756 1.1 christos /* ---------------------------------------------------------------------- */
757 1.1 christos
758 1.1 christos /* ---------------------------------------------------------------------- */
759 1.1 christos /* ----- Poly hash and Inner-Product hash Constants --------------------- */
760 1.1 christos /* ---------------------------------------------------------------------- */
761 1.1 christos
762 1.1 christos /* Primes and masks */
763 1.1 christos #define p36 ((UINT64)0x0000000FFFFFFFFBull) /* 2^36 - 5 */
764 1.1 christos #define p64 ((UINT64)0xFFFFFFFFFFFFFFC5ull) /* 2^64 - 59 */
765 1.1 christos #define m36 ((UINT64)0x0000000FFFFFFFFFull) /* The low 36 of 64 bits */
766 1.1 christos
767 1.1 christos
768 1.1 christos /* ---------------------------------------------------------------------- */
769 1.1 christos
770 1.1 christos typedef struct uhash_ctx {
771 1.1 christos nh_ctx hash; /* Hash context for L1 NH hash */
772 1.1 christos UINT64 poly_key_8[STREAMS]; /* p64 poly keys */
773 1.1 christos UINT64 poly_accum[STREAMS]; /* poly hash result */
774 1.1 christos UINT64 ip_keys[STREAMS*4]; /* Inner-product keys */
775 1.1 christos UINT32 ip_trans[STREAMS]; /* Inner-product translation */
776 1.1 christos UINT32 msg_len; /* Total length of data passed */
777 1.1 christos /* to uhash */
778 1.1 christos } uhash_ctx;
779 1.1 christos typedef struct uhash_ctx *uhash_ctx_t;
780 1.1 christos
781 1.1 christos /* ---------------------------------------------------------------------- */
782 1.1 christos
783 1.1 christos
784 1.1 christos /* The polynomial hashes use Horner's rule to evaluate a polynomial one
785 1.1 christos * word at a time. As described in the specification, poly32 and poly64
786 1.1 christos * require keys from special domains. The following implementations exploit
787 1.1 christos * the special domains to avoid overflow. The results are not guaranteed to
788 1.1 christos * be within Z_p32 and Z_p64, but the Inner-Product hash implementation
789 1.1 christos * patches any errant values.
790 1.1 christos */
791 1.1 christos
792 1.1 christos static UINT64 poly64(UINT64 cur, UINT64 key, UINT64 data)
793 1.1 christos {
794 1.1 christos UINT32 key_hi = (UINT32)(key >> 32),
795 1.1 christos key_lo = (UINT32)key,
796 1.1 christos cur_hi = (UINT32)(cur >> 32),
797 1.1 christos cur_lo = (UINT32)cur,
798 1.1 christos x_lo,
799 1.1 christos x_hi;
800 1.1 christos UINT64 X,T,res;
801 1.1.1.7 christos
802 1.1 christos X = MUL64(key_hi, cur_lo) + MUL64(cur_hi, key_lo);
803 1.1 christos x_lo = (UINT32)X;
804 1.1 christos x_hi = (UINT32)(X >> 32);
805 1.1.1.7 christos
806 1.1 christos res = (MUL64(key_hi, cur_hi) + x_hi) * 59 + MUL64(key_lo, cur_lo);
807 1.1.1.7 christos
808 1.1 christos T = ((UINT64)x_lo << 32);
809 1.1 christos res += T;
810 1.1 christos if (res < T)
811 1.1 christos res += 59;
812 1.1 christos
813 1.1 christos res += data;
814 1.1 christos if (res < data)
815 1.1 christos res += 59;
816 1.1 christos
817 1.1 christos return res;
818 1.1 christos }
819 1.1 christos
820 1.1 christos
821 1.1 christos /* Although UMAC is specified to use a ramped polynomial hash scheme, this
822 1.1 christos * implementation does not handle all ramp levels. Because we don't handle
823 1.1 christos * the ramp up to p128 modulus in this implementation, we are limited to
824 1.1 christos * 2^14 poly_hash() invocations per stream (for a total capacity of 2^24
825 1.1 christos * bytes input to UMAC per tag, ie. 16MB).
826 1.1 christos */
827 1.1 christos static void poly_hash(uhash_ctx_t hc, UINT32 data_in[])
828 1.1 christos {
829 1.1 christos int i;
830 1.1 christos UINT64 *data=(UINT64*)data_in;
831 1.1.1.7 christos
832 1.1 christos for (i = 0; i < STREAMS; i++) {
833 1.1 christos if ((UINT32)(data[i] >> 32) == 0xfffffffful) {
834 1.1.1.7 christos hc->poly_accum[i] = poly64(hc->poly_accum[i],
835 1.1 christos hc->poly_key_8[i], p64 - 1);
836 1.1 christos hc->poly_accum[i] = poly64(hc->poly_accum[i],
837 1.1 christos hc->poly_key_8[i], (data[i] - 59));
838 1.1 christos } else {
839 1.1 christos hc->poly_accum[i] = poly64(hc->poly_accum[i],
840 1.1 christos hc->poly_key_8[i], data[i]);
841 1.1 christos }
842 1.1 christos }
843 1.1 christos }
844 1.1 christos
845 1.1 christos
846 1.1 christos /* ---------------------------------------------------------------------- */
847 1.1 christos
848 1.1 christos
849 1.1 christos /* The final step in UHASH is an inner-product hash. The poly hash
850 1.1 christos * produces a result not neccesarily WORD_LEN bytes long. The inner-
851 1.1 christos * product hash breaks the polyhash output into 16-bit chunks and
852 1.1 christos * multiplies each with a 36 bit key.
853 1.1 christos */
854 1.1 christos
855 1.1 christos static UINT64 ip_aux(UINT64 t, UINT64 *ipkp, UINT64 data)
856 1.1 christos {
857 1.1 christos t = t + ipkp[0] * (UINT64)(UINT16)(data >> 48);
858 1.1 christos t = t + ipkp[1] * (UINT64)(UINT16)(data >> 32);
859 1.1 christos t = t + ipkp[2] * (UINT64)(UINT16)(data >> 16);
860 1.1 christos t = t + ipkp[3] * (UINT64)(UINT16)(data);
861 1.1.1.7 christos
862 1.1 christos return t;
863 1.1 christos }
864 1.1 christos
865 1.1 christos static UINT32 ip_reduce_p36(UINT64 t)
866 1.1 christos {
867 1.1 christos /* Divisionless modular reduction */
868 1.1 christos UINT64 ret;
869 1.1.1.7 christos
870 1.1 christos ret = (t & m36) + 5 * (t >> 36);
871 1.1 christos if (ret >= p36)
872 1.1 christos ret -= p36;
873 1.1 christos
874 1.1 christos /* return least significant 32 bits */
875 1.1 christos return (UINT32)(ret);
876 1.1 christos }
877 1.1 christos
878 1.1 christos
879 1.1 christos /* If the data being hashed by UHASH is no longer than L1_KEY_LEN, then
880 1.1 christos * the polyhash stage is skipped and ip_short is applied directly to the
881 1.1 christos * NH output.
882 1.1 christos */
883 1.1 christos static void ip_short(uhash_ctx_t ahc, UINT8 *nh_res, u_char *res)
884 1.1 christos {
885 1.1 christos UINT64 t;
886 1.1 christos UINT64 *nhp = (UINT64 *)nh_res;
887 1.1.1.7 christos
888 1.1 christos t = ip_aux(0,ahc->ip_keys, nhp[0]);
889 1.1 christos STORE_UINT32_BIG((UINT32 *)res+0, ip_reduce_p36(t) ^ ahc->ip_trans[0]);
890 1.1 christos #if (UMAC_OUTPUT_LEN >= 8)
891 1.1 christos t = ip_aux(0,ahc->ip_keys+4, nhp[1]);
892 1.1 christos STORE_UINT32_BIG((UINT32 *)res+1, ip_reduce_p36(t) ^ ahc->ip_trans[1]);
893 1.1 christos #endif
894 1.1 christos #if (UMAC_OUTPUT_LEN >= 12)
895 1.1 christos t = ip_aux(0,ahc->ip_keys+8, nhp[2]);
896 1.1 christos STORE_UINT32_BIG((UINT32 *)res+2, ip_reduce_p36(t) ^ ahc->ip_trans[2]);
897 1.1 christos #endif
898 1.1 christos #if (UMAC_OUTPUT_LEN == 16)
899 1.1 christos t = ip_aux(0,ahc->ip_keys+12, nhp[3]);
900 1.1 christos STORE_UINT32_BIG((UINT32 *)res+3, ip_reduce_p36(t) ^ ahc->ip_trans[3]);
901 1.1 christos #endif
902 1.1 christos }
903 1.1 christos
904 1.1 christos /* If the data being hashed by UHASH is longer than L1_KEY_LEN, then
905 1.1 christos * the polyhash stage is not skipped and ip_long is applied to the
906 1.1 christos * polyhash output.
907 1.1 christos */
908 1.1 christos static void ip_long(uhash_ctx_t ahc, u_char *res)
909 1.1 christos {
910 1.1 christos int i;
911 1.1 christos UINT64 t;
912 1.1 christos
913 1.1 christos for (i = 0; i < STREAMS; i++) {
914 1.1 christos /* fix polyhash output not in Z_p64 */
915 1.1 christos if (ahc->poly_accum[i] >= p64)
916 1.1 christos ahc->poly_accum[i] -= p64;
917 1.1 christos t = ip_aux(0,ahc->ip_keys+(i*4), ahc->poly_accum[i]);
918 1.1.1.7 christos STORE_UINT32_BIG((UINT32 *)res+i,
919 1.1 christos ip_reduce_p36(t) ^ ahc->ip_trans[i]);
920 1.1 christos }
921 1.1 christos }
922 1.1 christos
923 1.1 christos
924 1.1 christos /* ---------------------------------------------------------------------- */
925 1.1 christos
926 1.1 christos /* ---------------------------------------------------------------------- */
927 1.1 christos
928 1.1 christos /* Reset uhash context for next hash session */
929 1.1 christos static int uhash_reset(uhash_ctx_t pc)
930 1.1 christos {
931 1.1 christos nh_reset(&pc->hash);
932 1.1 christos pc->msg_len = 0;
933 1.1 christos pc->poly_accum[0] = 1;
934 1.1 christos #if (UMAC_OUTPUT_LEN >= 8)
935 1.1 christos pc->poly_accum[1] = 1;
936 1.1 christos #endif
937 1.1 christos #if (UMAC_OUTPUT_LEN >= 12)
938 1.1 christos pc->poly_accum[2] = 1;
939 1.1 christos #endif
940 1.1 christos #if (UMAC_OUTPUT_LEN == 16)
941 1.1 christos pc->poly_accum[3] = 1;
942 1.1 christos #endif
943 1.1 christos return 1;
944 1.1 christos }
945 1.1 christos
946 1.1 christos /* ---------------------------------------------------------------------- */
947 1.1 christos
948 1.1 christos /* Given a pointer to the internal key needed by kdf() and a uhash context,
949 1.1 christos * initialize the NH context and generate keys needed for poly and inner-
950 1.1 christos * product hashing. All keys are endian adjusted in memory so that native
951 1.1 christos * loads cause correct keys to be in registers during calculation.
952 1.1 christos */
953 1.1 christos static void uhash_init(uhash_ctx_t ahc, aes_int_key prf_key)
954 1.1 christos {
955 1.1 christos int i;
956 1.1 christos UINT8 buf[(8*STREAMS+4)*sizeof(UINT64)];
957 1.1.1.7 christos
958 1.1 christos /* Zero the entire uhash context */
959 1.1 christos memset(ahc, 0, sizeof(uhash_ctx));
960 1.1 christos
961 1.1 christos /* Initialize the L1 hash */
962 1.1 christos nh_init(&ahc->hash, prf_key);
963 1.1.1.7 christos
964 1.1 christos /* Setup L2 hash variables */
965 1.1 christos kdf(buf, prf_key, 2, sizeof(buf)); /* Fill buffer with index 1 key */
966 1.1 christos for (i = 0; i < STREAMS; i++) {
967 1.1 christos /* Fill keys from the buffer, skipping bytes in the buffer not
968 1.1 christos * used by this implementation. Endian reverse the keys if on a
969 1.1 christos * little-endian computer.
970 1.1 christos */
971 1.1 christos memcpy(ahc->poly_key_8+i, buf+24*i, 8);
972 1.1 christos endian_convert_if_le(ahc->poly_key_8+i, 8, 8);
973 1.1 christos /* Mask the 64-bit keys to their special domain */
974 1.1 christos ahc->poly_key_8[i] &= ((UINT64)0x01ffffffu << 32) + 0x01ffffffu;
975 1.1 christos ahc->poly_accum[i] = 1; /* Our polyhash prepends a non-zero word */
976 1.1 christos }
977 1.1.1.7 christos
978 1.1 christos /* Setup L3-1 hash variables */
979 1.1 christos kdf(buf, prf_key, 3, sizeof(buf)); /* Fill buffer with index 2 key */
980 1.1 christos for (i = 0; i < STREAMS; i++)
981 1.1 christos memcpy(ahc->ip_keys+4*i, buf+(8*i+4)*sizeof(UINT64),
982 1.1 christos 4*sizeof(UINT64));
983 1.1.1.7 christos endian_convert_if_le(ahc->ip_keys, sizeof(UINT64),
984 1.1 christos sizeof(ahc->ip_keys));
985 1.1 christos for (i = 0; i < STREAMS*4; i++)
986 1.1 christos ahc->ip_keys[i] %= p36; /* Bring into Z_p36 */
987 1.1.1.7 christos
988 1.1 christos /* Setup L3-2 hash variables */
989 1.1 christos /* Fill buffer with index 4 key */
990 1.1 christos kdf(ahc->ip_trans, prf_key, 4, STREAMS * sizeof(UINT32));
991 1.1 christos endian_convert_if_le(ahc->ip_trans, sizeof(UINT32),
992 1.1 christos STREAMS * sizeof(UINT32));
993 1.1.1.6 christos explicit_bzero(buf, sizeof(buf));
994 1.1 christos }
995 1.1 christos
996 1.1 christos /* ---------------------------------------------------------------------- */
997 1.1 christos
998 1.1 christos #if 0
999 1.1 christos static uhash_ctx_t uhash_alloc(u_char key[])
1000 1.1 christos {
1001 1.1 christos /* Allocate memory and force to a 16-byte boundary. */
1002 1.1 christos uhash_ctx_t ctx;
1003 1.1 christos u_char bytes_to_add;
1004 1.1 christos aes_int_key prf_key;
1005 1.1.1.7 christos
1006 1.1 christos ctx = (uhash_ctx_t)malloc(sizeof(uhash_ctx)+ALLOC_BOUNDARY);
1007 1.1 christos if (ctx) {
1008 1.1 christos if (ALLOC_BOUNDARY) {
1009 1.1 christos bytes_to_add = ALLOC_BOUNDARY -
1010 1.1 christos ((ptrdiff_t)ctx & (ALLOC_BOUNDARY -1));
1011 1.1 christos ctx = (uhash_ctx_t)((u_char *)ctx + bytes_to_add);
1012 1.1 christos *((u_char *)ctx - 1) = bytes_to_add;
1013 1.1 christos }
1014 1.1 christos aes_key_setup(key,prf_key);
1015 1.1 christos uhash_init(ctx, prf_key);
1016 1.1 christos }
1017 1.1 christos return (ctx);
1018 1.1 christos }
1019 1.1 christos #endif
1020 1.1 christos
1021 1.1 christos /* ---------------------------------------------------------------------- */
1022 1.1 christos
1023 1.1 christos #if 0
1024 1.1 christos static int uhash_free(uhash_ctx_t ctx)
1025 1.1 christos {
1026 1.1 christos /* Free memory allocated by uhash_alloc */
1027 1.1 christos u_char bytes_to_sub;
1028 1.1.1.7 christos
1029 1.1 christos if (ctx) {
1030 1.1 christos if (ALLOC_BOUNDARY) {
1031 1.1 christos bytes_to_sub = *((u_char *)ctx - 1);
1032 1.1 christos ctx = (uhash_ctx_t)((u_char *)ctx - bytes_to_sub);
1033 1.1 christos }
1034 1.1 christos free(ctx);
1035 1.1 christos }
1036 1.1 christos return (1);
1037 1.1 christos }
1038 1.1 christos #endif
1039 1.1 christos /* ---------------------------------------------------------------------- */
1040 1.1 christos
1041 1.1.1.4 christos static int uhash_update(uhash_ctx_t ctx, const u_char *input, long len)
1042 1.1 christos /* Given len bytes of data, we parse it into L1_KEY_LEN chunks and
1043 1.1 christos * hash each one with NH, calling the polyhash on each NH output.
1044 1.1 christos */
1045 1.1 christos {
1046 1.1 christos UWORD bytes_hashed, bytes_remaining;
1047 1.1 christos UINT64 result_buf[STREAMS];
1048 1.1 christos UINT8 *nh_result = (UINT8 *)&result_buf;
1049 1.1.1.7 christos
1050 1.1 christos if (ctx->msg_len + len <= L1_KEY_LEN) {
1051 1.1.1.4 christos nh_update(&ctx->hash, (const UINT8 *)input, len);
1052 1.1 christos ctx->msg_len += len;
1053 1.1 christos } else {
1054 1.1.1.7 christos
1055 1.1 christos bytes_hashed = ctx->msg_len % L1_KEY_LEN;
1056 1.1 christos if (ctx->msg_len == L1_KEY_LEN)
1057 1.1 christos bytes_hashed = L1_KEY_LEN;
1058 1.1 christos
1059 1.1 christos if (bytes_hashed + len >= L1_KEY_LEN) {
1060 1.1 christos
1061 1.1 christos /* If some bytes have been passed to the hash function */
1062 1.1 christos /* then we want to pass at most (L1_KEY_LEN - bytes_hashed) */
1063 1.1 christos /* bytes to complete the current nh_block. */
1064 1.1 christos if (bytes_hashed) {
1065 1.1 christos bytes_remaining = (L1_KEY_LEN - bytes_hashed);
1066 1.1.1.4 christos nh_update(&ctx->hash, (const UINT8 *)input, bytes_remaining);
1067 1.1 christos nh_final(&ctx->hash, nh_result);
1068 1.1 christos ctx->msg_len += bytes_remaining;
1069 1.1 christos poly_hash(ctx,(UINT32 *)nh_result);
1070 1.1 christos len -= bytes_remaining;
1071 1.1 christos input += bytes_remaining;
1072 1.1 christos }
1073 1.1 christos
1074 1.1 christos /* Hash directly from input stream if enough bytes */
1075 1.1 christos while (len >= L1_KEY_LEN) {
1076 1.1.1.4 christos nh(&ctx->hash, (const UINT8 *)input, L1_KEY_LEN,
1077 1.1 christos L1_KEY_LEN, nh_result);
1078 1.1 christos ctx->msg_len += L1_KEY_LEN;
1079 1.1 christos len -= L1_KEY_LEN;
1080 1.1 christos input += L1_KEY_LEN;
1081 1.1 christos poly_hash(ctx,(UINT32 *)nh_result);
1082 1.1 christos }
1083 1.1 christos }
1084 1.1 christos
1085 1.1 christos /* pass remaining < L1_KEY_LEN bytes of input data to NH */
1086 1.1 christos if (len) {
1087 1.1.1.4 christos nh_update(&ctx->hash, (const UINT8 *)input, len);
1088 1.1 christos ctx->msg_len += len;
1089 1.1 christos }
1090 1.1 christos }
1091 1.1 christos
1092 1.1 christos return (1);
1093 1.1 christos }
1094 1.1 christos
1095 1.1 christos /* ---------------------------------------------------------------------- */
1096 1.1 christos
1097 1.1 christos static int uhash_final(uhash_ctx_t ctx, u_char *res)
1098 1.1 christos /* Incorporate any pending data, pad, and generate tag */
1099 1.1 christos {
1100 1.1 christos UINT64 result_buf[STREAMS];
1101 1.1 christos UINT8 *nh_result = (UINT8 *)&result_buf;
1102 1.1 christos
1103 1.1 christos if (ctx->msg_len > L1_KEY_LEN) {
1104 1.1 christos if (ctx->msg_len % L1_KEY_LEN) {
1105 1.1 christos nh_final(&ctx->hash, nh_result);
1106 1.1 christos poly_hash(ctx,(UINT32 *)nh_result);
1107 1.1 christos }
1108 1.1 christos ip_long(ctx, res);
1109 1.1 christos } else {
1110 1.1 christos nh_final(&ctx->hash, nh_result);
1111 1.1 christos ip_short(ctx,nh_result, res);
1112 1.1 christos }
1113 1.1 christos uhash_reset(ctx);
1114 1.1 christos return (1);
1115 1.1 christos }
1116 1.1 christos
1117 1.1 christos /* ---------------------------------------------------------------------- */
1118 1.1 christos
1119 1.1 christos #if 0
1120 1.1 christos static int uhash(uhash_ctx_t ahc, u_char *msg, long len, u_char *res)
1121 1.1 christos /* assumes that msg is in a writable buffer of length divisible by */
1122 1.1 christos /* L1_PAD_BOUNDARY. Bytes beyond msg[len] may be zeroed. */
1123 1.1 christos {
1124 1.1 christos UINT8 nh_result[STREAMS*sizeof(UINT64)];
1125 1.1 christos UINT32 nh_len;
1126 1.1 christos int extra_zeroes_needed;
1127 1.1.1.7 christos
1128 1.1 christos /* If the message to be hashed is no longer than L1_HASH_LEN, we skip
1129 1.1 christos * the polyhash.
1130 1.1 christos */
1131 1.1 christos if (len <= L1_KEY_LEN) {
1132 1.1.1.7 christos if (len == 0) /* If zero length messages will not */
1133 1.1.1.7 christos nh_len = L1_PAD_BOUNDARY; /* be seen, comment out this case */
1134 1.1.1.7 christos else
1135 1.1.1.7 christos nh_len = ((len + (L1_PAD_BOUNDARY - 1)) & ~(L1_PAD_BOUNDARY - 1));
1136 1.1 christos extra_zeroes_needed = nh_len - len;
1137 1.1 christos zero_pad((UINT8 *)msg + len, extra_zeroes_needed);
1138 1.1 christos nh(&ahc->hash, (UINT8 *)msg, nh_len, len, nh_result);
1139 1.1 christos ip_short(ahc,nh_result, res);
1140 1.1 christos } else {
1141 1.1 christos /* Otherwise, we hash each L1_KEY_LEN chunk with NH, passing the NH
1142 1.1 christos * output to poly_hash().
1143 1.1 christos */
1144 1.1 christos do {
1145 1.1 christos nh(&ahc->hash, (UINT8 *)msg, L1_KEY_LEN, L1_KEY_LEN, nh_result);
1146 1.1 christos poly_hash(ahc,(UINT32 *)nh_result);
1147 1.1 christos len -= L1_KEY_LEN;
1148 1.1 christos msg += L1_KEY_LEN;
1149 1.1 christos } while (len >= L1_KEY_LEN);
1150 1.1 christos if (len) {
1151 1.1 christos nh_len = ((len + (L1_PAD_BOUNDARY - 1)) & ~(L1_PAD_BOUNDARY - 1));
1152 1.1 christos extra_zeroes_needed = nh_len - len;
1153 1.1 christos zero_pad((UINT8 *)msg + len, extra_zeroes_needed);
1154 1.1 christos nh(&ahc->hash, (UINT8 *)msg, nh_len, len, nh_result);
1155 1.1 christos poly_hash(ahc,(UINT32 *)nh_result);
1156 1.1 christos }
1157 1.1 christos
1158 1.1 christos ip_long(ahc, res);
1159 1.1 christos }
1160 1.1.1.7 christos
1161 1.1 christos uhash_reset(ahc);
1162 1.1 christos return 1;
1163 1.1 christos }
1164 1.1 christos #endif
1165 1.1 christos
1166 1.1 christos /* ---------------------------------------------------------------------- */
1167 1.1 christos /* ---------------------------------------------------------------------- */
1168 1.1 christos /* ----- Begin UMAC Section --------------------------------------------- */
1169 1.1 christos /* ---------------------------------------------------------------------- */
1170 1.1 christos /* ---------------------------------------------------------------------- */
1171 1.1 christos
1172 1.1 christos /* The UMAC interface has two interfaces, an all-at-once interface where
1173 1.1 christos * the entire message to be authenticated is passed to UMAC in one buffer,
1174 1.1.1.7 christos * and a sequential interface where the message is presented a little at a
1175 1.1 christos * time. The all-at-once is more optimaized than the sequential version and
1176 1.1.1.7 christos * should be preferred when the sequential interface is not required.
1177 1.1 christos */
1178 1.1 christos struct umac_ctx {
1179 1.1 christos uhash_ctx hash; /* Hash function for message compression */
1180 1.1 christos pdf_ctx pdf; /* PDF for hashed output */
1181 1.1 christos void *free_ptr; /* Address to free this struct via */
1182 1.1 christos } umac_ctx;
1183 1.1 christos
1184 1.1 christos /* ---------------------------------------------------------------------- */
1185 1.1 christos
1186 1.1 christos #if 0
1187 1.1 christos int umac_reset(struct umac_ctx *ctx)
1188 1.1 christos /* Reset the hash function to begin a new authentication. */
1189 1.1 christos {
1190 1.1 christos uhash_reset(&ctx->hash);
1191 1.1 christos return (1);
1192 1.1 christos }
1193 1.1 christos #endif
1194 1.1 christos
1195 1.1 christos /* ---------------------------------------------------------------------- */
1196 1.1 christos
1197 1.1 christos int umac_delete(struct umac_ctx *ctx)
1198 1.1 christos /* Deallocate the ctx structure */
1199 1.1 christos {
1200 1.1 christos if (ctx) {
1201 1.1 christos if (ALLOC_BOUNDARY)
1202 1.1 christos ctx = (struct umac_ctx *)ctx->free_ptr;
1203 1.1.1.6 christos explicit_bzero(ctx, sizeof(*ctx) + ALLOC_BOUNDARY);
1204 1.1.1.4 christos free(ctx);
1205 1.1 christos }
1206 1.1 christos return (1);
1207 1.1 christos }
1208 1.1 christos
1209 1.1 christos /* ---------------------------------------------------------------------- */
1210 1.1 christos
1211 1.1.1.4 christos struct umac_ctx *umac_new(const u_char key[])
1212 1.1.1.7 christos /* Dynamically allocate a umac_ctx struct, initialize variables,
1213 1.1 christos * generate subkeys from key. Align to 16-byte boundary.
1214 1.1 christos */
1215 1.1 christos {
1216 1.1 christos struct umac_ctx *ctx, *octx;
1217 1.1 christos size_t bytes_to_add;
1218 1.1 christos aes_int_key prf_key;
1219 1.1.1.7 christos
1220 1.1.1.4 christos octx = ctx = xcalloc(1, sizeof(*ctx) + ALLOC_BOUNDARY);
1221 1.1 christos if (ctx) {
1222 1.1 christos if (ALLOC_BOUNDARY) {
1223 1.1 christos bytes_to_add = ALLOC_BOUNDARY -
1224 1.1 christos ((ptrdiff_t)ctx & (ALLOC_BOUNDARY - 1));
1225 1.1 christos ctx = (struct umac_ctx *)((u_char *)ctx + bytes_to_add);
1226 1.1 christos }
1227 1.1 christos ctx->free_ptr = octx;
1228 1.1.1.4 christos aes_key_setup(key, prf_key);
1229 1.1 christos pdf_init(&ctx->pdf, prf_key);
1230 1.1 christos uhash_init(&ctx->hash, prf_key);
1231 1.1.1.6 christos explicit_bzero(prf_key, sizeof(prf_key));
1232 1.1 christos }
1233 1.1.1.7 christos
1234 1.1 christos return (ctx);
1235 1.1 christos }
1236 1.1 christos
1237 1.1 christos /* ---------------------------------------------------------------------- */
1238 1.1 christos
1239 1.1.1.4 christos int umac_final(struct umac_ctx *ctx, u_char tag[], const u_char nonce[8])
1240 1.1 christos /* Incorporate any pending data, pad, and generate tag */
1241 1.1 christos {
1242 1.1 christos uhash_final(&ctx->hash, (u_char *)tag);
1243 1.1.1.4 christos pdf_gen_xor(&ctx->pdf, (const UINT8 *)nonce, (UINT8 *)tag);
1244 1.1.1.7 christos
1245 1.1 christos return (1);
1246 1.1 christos }
1247 1.1 christos
1248 1.1 christos /* ---------------------------------------------------------------------- */
1249 1.1 christos
1250 1.1.1.4 christos int umac_update(struct umac_ctx *ctx, const u_char *input, long len)
1251 1.1 christos /* Given len bytes of data, we parse it into L1_KEY_LEN chunks and */
1252 1.1 christos /* hash each one, calling the PDF on the hashed output whenever the hash- */
1253 1.1 christos /* output buffer is full. */
1254 1.1 christos {
1255 1.1 christos uhash_update(&ctx->hash, input, len);
1256 1.1 christos return (1);
1257 1.1 christos }
1258 1.1 christos
1259 1.1 christos /* ---------------------------------------------------------------------- */
1260 1.1 christos
1261 1.1 christos #if 0
1262 1.1.1.7 christos int umac(struct umac_ctx *ctx, u_char *input,
1263 1.1 christos long len, u_char tag[],
1264 1.1 christos u_char nonce[8])
1265 1.1 christos /* All-in-one version simply calls umac_update() and umac_final(). */
1266 1.1 christos {
1267 1.1 christos uhash(&ctx->hash, input, len, (u_char *)tag);
1268 1.1 christos pdf_gen_xor(&ctx->pdf, (UINT8 *)nonce, (UINT8 *)tag);
1269 1.1.1.7 christos
1270 1.1 christos return (1);
1271 1.1 christos }
1272 1.1 christos #endif
1273 1.1 christos
1274 1.1 christos /* ---------------------------------------------------------------------- */
1275 1.1 christos /* ---------------------------------------------------------------------- */
1276 1.1 christos /* ----- End UMAC Section ----------------------------------------------- */
1277 1.1 christos /* ---------------------------------------------------------------------- */
1278 1.1 christos /* ---------------------------------------------------------------------- */
1279