18c2ecf20Sopenharmony_ci/* 28c2ecf20Sopenharmony_ci * VMAC: Message Authentication Code using Universal Hashing 38c2ecf20Sopenharmony_ci * 48c2ecf20Sopenharmony_ci * Reference: https://tools.ietf.org/html/draft-krovetz-vmac-01 58c2ecf20Sopenharmony_ci * 68c2ecf20Sopenharmony_ci * Copyright (c) 2009, Intel Corporation. 78c2ecf20Sopenharmony_ci * Copyright (c) 2018, Google Inc. 88c2ecf20Sopenharmony_ci * 98c2ecf20Sopenharmony_ci * This program is free software; you can redistribute it and/or modify it 108c2ecf20Sopenharmony_ci * under the terms and conditions of the GNU General Public License, 118c2ecf20Sopenharmony_ci * version 2, as published by the Free Software Foundation. 128c2ecf20Sopenharmony_ci * 138c2ecf20Sopenharmony_ci * This program is distributed in the hope it will be useful, but WITHOUT 148c2ecf20Sopenharmony_ci * ANY WARRANTY; without even the implied warranty of MERCHANTABILITY or 158c2ecf20Sopenharmony_ci * FITNESS FOR A PARTICULAR PURPOSE. See the GNU General Public License for 168c2ecf20Sopenharmony_ci * more details. 178c2ecf20Sopenharmony_ci * 188c2ecf20Sopenharmony_ci * You should have received a copy of the GNU General Public License along with 198c2ecf20Sopenharmony_ci * this program; if not, write to the Free Software Foundation, Inc., 59 Temple 208c2ecf20Sopenharmony_ci * Place - Suite 330, Boston, MA 02111-1307 USA. 218c2ecf20Sopenharmony_ci */ 228c2ecf20Sopenharmony_ci 238c2ecf20Sopenharmony_ci/* 248c2ecf20Sopenharmony_ci * Derived from: 258c2ecf20Sopenharmony_ci * VMAC and VHASH Implementation by Ted Krovetz (tdk@acm.org) and Wei Dai. 268c2ecf20Sopenharmony_ci * This implementation is herby placed in the public domain. 278c2ecf20Sopenharmony_ci * The authors offers no warranty. Use at your own risk. 288c2ecf20Sopenharmony_ci * Last modified: 17 APR 08, 1700 PDT 298c2ecf20Sopenharmony_ci */ 308c2ecf20Sopenharmony_ci 318c2ecf20Sopenharmony_ci#include <asm/unaligned.h> 328c2ecf20Sopenharmony_ci#include <linux/init.h> 338c2ecf20Sopenharmony_ci#include <linux/types.h> 348c2ecf20Sopenharmony_ci#include <linux/crypto.h> 358c2ecf20Sopenharmony_ci#include <linux/module.h> 368c2ecf20Sopenharmony_ci#include <linux/scatterlist.h> 378c2ecf20Sopenharmony_ci#include <asm/byteorder.h> 388c2ecf20Sopenharmony_ci#include <crypto/scatterwalk.h> 398c2ecf20Sopenharmony_ci#include <crypto/internal/hash.h> 408c2ecf20Sopenharmony_ci 418c2ecf20Sopenharmony_ci/* 428c2ecf20Sopenharmony_ci * User definable settings. 438c2ecf20Sopenharmony_ci */ 448c2ecf20Sopenharmony_ci#define VMAC_TAG_LEN 64 458c2ecf20Sopenharmony_ci#define VMAC_KEY_SIZE 128/* Must be 128, 192 or 256 */ 468c2ecf20Sopenharmony_ci#define VMAC_KEY_LEN (VMAC_KEY_SIZE/8) 478c2ecf20Sopenharmony_ci#define VMAC_NHBYTES 128/* Must 2^i for any 3 < i < 13 Standard = 128*/ 488c2ecf20Sopenharmony_ci#define VMAC_NONCEBYTES 16 498c2ecf20Sopenharmony_ci 508c2ecf20Sopenharmony_ci/* per-transform (per-key) context */ 518c2ecf20Sopenharmony_cistruct vmac_tfm_ctx { 528c2ecf20Sopenharmony_ci struct crypto_cipher *cipher; 538c2ecf20Sopenharmony_ci u64 nhkey[(VMAC_NHBYTES/8)+2*(VMAC_TAG_LEN/64-1)]; 548c2ecf20Sopenharmony_ci u64 polykey[2*VMAC_TAG_LEN/64]; 558c2ecf20Sopenharmony_ci u64 l3key[2*VMAC_TAG_LEN/64]; 568c2ecf20Sopenharmony_ci}; 578c2ecf20Sopenharmony_ci 588c2ecf20Sopenharmony_ci/* per-request context */ 598c2ecf20Sopenharmony_cistruct vmac_desc_ctx { 608c2ecf20Sopenharmony_ci union { 618c2ecf20Sopenharmony_ci u8 partial[VMAC_NHBYTES]; /* partial block */ 628c2ecf20Sopenharmony_ci __le64 partial_words[VMAC_NHBYTES / 8]; 638c2ecf20Sopenharmony_ci }; 648c2ecf20Sopenharmony_ci unsigned int partial_size; /* size of the partial block */ 658c2ecf20Sopenharmony_ci bool first_block_processed; 668c2ecf20Sopenharmony_ci u64 polytmp[2*VMAC_TAG_LEN/64]; /* running total of L2-hash */ 678c2ecf20Sopenharmony_ci union { 688c2ecf20Sopenharmony_ci u8 bytes[VMAC_NONCEBYTES]; 698c2ecf20Sopenharmony_ci __be64 pads[VMAC_NONCEBYTES / 8]; 708c2ecf20Sopenharmony_ci } nonce; 718c2ecf20Sopenharmony_ci unsigned int nonce_size; /* nonce bytes filled so far */ 728c2ecf20Sopenharmony_ci}; 738c2ecf20Sopenharmony_ci 748c2ecf20Sopenharmony_ci/* 758c2ecf20Sopenharmony_ci * Constants and masks 768c2ecf20Sopenharmony_ci */ 778c2ecf20Sopenharmony_ci#define UINT64_C(x) x##ULL 788c2ecf20Sopenharmony_cistatic const u64 p64 = UINT64_C(0xfffffffffffffeff); /* 2^64 - 257 prime */ 798c2ecf20Sopenharmony_cistatic const u64 m62 = UINT64_C(0x3fffffffffffffff); /* 62-bit mask */ 808c2ecf20Sopenharmony_cistatic const u64 m63 = UINT64_C(0x7fffffffffffffff); /* 63-bit mask */ 818c2ecf20Sopenharmony_cistatic const u64 m64 = UINT64_C(0xffffffffffffffff); /* 64-bit mask */ 828c2ecf20Sopenharmony_cistatic const u64 mpoly = UINT64_C(0x1fffffff1fffffff); /* Poly key mask */ 838c2ecf20Sopenharmony_ci 848c2ecf20Sopenharmony_ci#define pe64_to_cpup le64_to_cpup /* Prefer little endian */ 858c2ecf20Sopenharmony_ci 868c2ecf20Sopenharmony_ci#ifdef __LITTLE_ENDIAN 878c2ecf20Sopenharmony_ci#define INDEX_HIGH 1 888c2ecf20Sopenharmony_ci#define INDEX_LOW 0 898c2ecf20Sopenharmony_ci#else 908c2ecf20Sopenharmony_ci#define INDEX_HIGH 0 918c2ecf20Sopenharmony_ci#define INDEX_LOW 1 928c2ecf20Sopenharmony_ci#endif 938c2ecf20Sopenharmony_ci 948c2ecf20Sopenharmony_ci/* 958c2ecf20Sopenharmony_ci * The following routines are used in this implementation. They are 968c2ecf20Sopenharmony_ci * written via macros to simulate zero-overhead call-by-reference. 978c2ecf20Sopenharmony_ci * 988c2ecf20Sopenharmony_ci * MUL64: 64x64->128-bit multiplication 998c2ecf20Sopenharmony_ci * PMUL64: assumes top bits cleared on inputs 1008c2ecf20Sopenharmony_ci * ADD128: 128x128->128-bit addition 1018c2ecf20Sopenharmony_ci */ 1028c2ecf20Sopenharmony_ci 1038c2ecf20Sopenharmony_ci#define ADD128(rh, rl, ih, il) \ 1048c2ecf20Sopenharmony_ci do { \ 1058c2ecf20Sopenharmony_ci u64 _il = (il); \ 1068c2ecf20Sopenharmony_ci (rl) += (_il); \ 1078c2ecf20Sopenharmony_ci if ((rl) < (_il)) \ 1088c2ecf20Sopenharmony_ci (rh)++; \ 1098c2ecf20Sopenharmony_ci (rh) += (ih); \ 1108c2ecf20Sopenharmony_ci } while (0) 1118c2ecf20Sopenharmony_ci 1128c2ecf20Sopenharmony_ci#define MUL32(i1, i2) ((u64)(u32)(i1)*(u32)(i2)) 1138c2ecf20Sopenharmony_ci 1148c2ecf20Sopenharmony_ci#define PMUL64(rh, rl, i1, i2) /* Assumes m doesn't overflow */ \ 1158c2ecf20Sopenharmony_ci do { \ 1168c2ecf20Sopenharmony_ci u64 _i1 = (i1), _i2 = (i2); \ 1178c2ecf20Sopenharmony_ci u64 m = MUL32(_i1, _i2>>32) + MUL32(_i1>>32, _i2); \ 1188c2ecf20Sopenharmony_ci rh = MUL32(_i1>>32, _i2>>32); \ 1198c2ecf20Sopenharmony_ci rl = MUL32(_i1, _i2); \ 1208c2ecf20Sopenharmony_ci ADD128(rh, rl, (m >> 32), (m << 32)); \ 1218c2ecf20Sopenharmony_ci } while (0) 1228c2ecf20Sopenharmony_ci 1238c2ecf20Sopenharmony_ci#define MUL64(rh, rl, i1, i2) \ 1248c2ecf20Sopenharmony_ci do { \ 1258c2ecf20Sopenharmony_ci u64 _i1 = (i1), _i2 = (i2); \ 1268c2ecf20Sopenharmony_ci u64 m1 = MUL32(_i1, _i2>>32); \ 1278c2ecf20Sopenharmony_ci u64 m2 = MUL32(_i1>>32, _i2); \ 1288c2ecf20Sopenharmony_ci rh = MUL32(_i1>>32, _i2>>32); \ 1298c2ecf20Sopenharmony_ci rl = MUL32(_i1, _i2); \ 1308c2ecf20Sopenharmony_ci ADD128(rh, rl, (m1 >> 32), (m1 << 32)); \ 1318c2ecf20Sopenharmony_ci ADD128(rh, rl, (m2 >> 32), (m2 << 32)); \ 1328c2ecf20Sopenharmony_ci } while (0) 1338c2ecf20Sopenharmony_ci 1348c2ecf20Sopenharmony_ci/* 1358c2ecf20Sopenharmony_ci * For highest performance the L1 NH and L2 polynomial hashes should be 1368c2ecf20Sopenharmony_ci * carefully implemented to take advantage of one's target architecture. 1378c2ecf20Sopenharmony_ci * Here these two hash functions are defined multiple time; once for 1388c2ecf20Sopenharmony_ci * 64-bit architectures, once for 32-bit SSE2 architectures, and once 1398c2ecf20Sopenharmony_ci * for the rest (32-bit) architectures. 1408c2ecf20Sopenharmony_ci * For each, nh_16 *must* be defined (works on multiples of 16 bytes). 1418c2ecf20Sopenharmony_ci * Optionally, nh_vmac_nhbytes can be defined (for multiples of 1428c2ecf20Sopenharmony_ci * VMAC_NHBYTES), and nh_16_2 and nh_vmac_nhbytes_2 (versions that do two 1438c2ecf20Sopenharmony_ci * NH computations at once). 1448c2ecf20Sopenharmony_ci */ 1458c2ecf20Sopenharmony_ci 1468c2ecf20Sopenharmony_ci#ifdef CONFIG_64BIT 1478c2ecf20Sopenharmony_ci 1488c2ecf20Sopenharmony_ci#define nh_16(mp, kp, nw, rh, rl) \ 1498c2ecf20Sopenharmony_ci do { \ 1508c2ecf20Sopenharmony_ci int i; u64 th, tl; \ 1518c2ecf20Sopenharmony_ci rh = rl = 0; \ 1528c2ecf20Sopenharmony_ci for (i = 0; i < nw; i += 2) { \ 1538c2ecf20Sopenharmony_ci MUL64(th, tl, pe64_to_cpup((mp)+i)+(kp)[i], \ 1548c2ecf20Sopenharmony_ci pe64_to_cpup((mp)+i+1)+(kp)[i+1]); \ 1558c2ecf20Sopenharmony_ci ADD128(rh, rl, th, tl); \ 1568c2ecf20Sopenharmony_ci } \ 1578c2ecf20Sopenharmony_ci } while (0) 1588c2ecf20Sopenharmony_ci 1598c2ecf20Sopenharmony_ci#define nh_16_2(mp, kp, nw, rh, rl, rh1, rl1) \ 1608c2ecf20Sopenharmony_ci do { \ 1618c2ecf20Sopenharmony_ci int i; u64 th, tl; \ 1628c2ecf20Sopenharmony_ci rh1 = rl1 = rh = rl = 0; \ 1638c2ecf20Sopenharmony_ci for (i = 0; i < nw; i += 2) { \ 1648c2ecf20Sopenharmony_ci MUL64(th, tl, pe64_to_cpup((mp)+i)+(kp)[i], \ 1658c2ecf20Sopenharmony_ci pe64_to_cpup((mp)+i+1)+(kp)[i+1]); \ 1668c2ecf20Sopenharmony_ci ADD128(rh, rl, th, tl); \ 1678c2ecf20Sopenharmony_ci MUL64(th, tl, pe64_to_cpup((mp)+i)+(kp)[i+2], \ 1688c2ecf20Sopenharmony_ci pe64_to_cpup((mp)+i+1)+(kp)[i+3]); \ 1698c2ecf20Sopenharmony_ci ADD128(rh1, rl1, th, tl); \ 1708c2ecf20Sopenharmony_ci } \ 1718c2ecf20Sopenharmony_ci } while (0) 1728c2ecf20Sopenharmony_ci 1738c2ecf20Sopenharmony_ci#if (VMAC_NHBYTES >= 64) /* These versions do 64-bytes of message at a time */ 1748c2ecf20Sopenharmony_ci#define nh_vmac_nhbytes(mp, kp, nw, rh, rl) \ 1758c2ecf20Sopenharmony_ci do { \ 1768c2ecf20Sopenharmony_ci int i; u64 th, tl; \ 1778c2ecf20Sopenharmony_ci rh = rl = 0; \ 1788c2ecf20Sopenharmony_ci for (i = 0; i < nw; i += 8) { \ 1798c2ecf20Sopenharmony_ci MUL64(th, tl, pe64_to_cpup((mp)+i)+(kp)[i], \ 1808c2ecf20Sopenharmony_ci pe64_to_cpup((mp)+i+1)+(kp)[i+1]); \ 1818c2ecf20Sopenharmony_ci ADD128(rh, rl, th, tl); \ 1828c2ecf20Sopenharmony_ci MUL64(th, tl, pe64_to_cpup((mp)+i+2)+(kp)[i+2], \ 1838c2ecf20Sopenharmony_ci pe64_to_cpup((mp)+i+3)+(kp)[i+3]); \ 1848c2ecf20Sopenharmony_ci ADD128(rh, rl, th, tl); \ 1858c2ecf20Sopenharmony_ci MUL64(th, tl, pe64_to_cpup((mp)+i+4)+(kp)[i+4], \ 1868c2ecf20Sopenharmony_ci pe64_to_cpup((mp)+i+5)+(kp)[i+5]); \ 1878c2ecf20Sopenharmony_ci ADD128(rh, rl, th, tl); \ 1888c2ecf20Sopenharmony_ci MUL64(th, tl, pe64_to_cpup((mp)+i+6)+(kp)[i+6], \ 1898c2ecf20Sopenharmony_ci pe64_to_cpup((mp)+i+7)+(kp)[i+7]); \ 1908c2ecf20Sopenharmony_ci ADD128(rh, rl, th, tl); \ 1918c2ecf20Sopenharmony_ci } \ 1928c2ecf20Sopenharmony_ci } while (0) 1938c2ecf20Sopenharmony_ci 1948c2ecf20Sopenharmony_ci#define nh_vmac_nhbytes_2(mp, kp, nw, rh, rl, rh1, rl1) \ 1958c2ecf20Sopenharmony_ci do { \ 1968c2ecf20Sopenharmony_ci int i; u64 th, tl; \ 1978c2ecf20Sopenharmony_ci rh1 = rl1 = rh = rl = 0; \ 1988c2ecf20Sopenharmony_ci for (i = 0; i < nw; i += 8) { \ 1998c2ecf20Sopenharmony_ci MUL64(th, tl, pe64_to_cpup((mp)+i)+(kp)[i], \ 2008c2ecf20Sopenharmony_ci pe64_to_cpup((mp)+i+1)+(kp)[i+1]); \ 2018c2ecf20Sopenharmony_ci ADD128(rh, rl, th, tl); \ 2028c2ecf20Sopenharmony_ci MUL64(th, tl, pe64_to_cpup((mp)+i)+(kp)[i+2], \ 2038c2ecf20Sopenharmony_ci pe64_to_cpup((mp)+i+1)+(kp)[i+3]); \ 2048c2ecf20Sopenharmony_ci ADD128(rh1, rl1, th, tl); \ 2058c2ecf20Sopenharmony_ci MUL64(th, tl, pe64_to_cpup((mp)+i+2)+(kp)[i+2], \ 2068c2ecf20Sopenharmony_ci pe64_to_cpup((mp)+i+3)+(kp)[i+3]); \ 2078c2ecf20Sopenharmony_ci ADD128(rh, rl, th, tl); \ 2088c2ecf20Sopenharmony_ci MUL64(th, tl, pe64_to_cpup((mp)+i+2)+(kp)[i+4], \ 2098c2ecf20Sopenharmony_ci pe64_to_cpup((mp)+i+3)+(kp)[i+5]); \ 2108c2ecf20Sopenharmony_ci ADD128(rh1, rl1, th, tl); \ 2118c2ecf20Sopenharmony_ci MUL64(th, tl, pe64_to_cpup((mp)+i+4)+(kp)[i+4], \ 2128c2ecf20Sopenharmony_ci pe64_to_cpup((mp)+i+5)+(kp)[i+5]); \ 2138c2ecf20Sopenharmony_ci ADD128(rh, rl, th, tl); \ 2148c2ecf20Sopenharmony_ci MUL64(th, tl, pe64_to_cpup((mp)+i+4)+(kp)[i+6], \ 2158c2ecf20Sopenharmony_ci pe64_to_cpup((mp)+i+5)+(kp)[i+7]); \ 2168c2ecf20Sopenharmony_ci ADD128(rh1, rl1, th, tl); \ 2178c2ecf20Sopenharmony_ci MUL64(th, tl, pe64_to_cpup((mp)+i+6)+(kp)[i+6], \ 2188c2ecf20Sopenharmony_ci pe64_to_cpup((mp)+i+7)+(kp)[i+7]); \ 2198c2ecf20Sopenharmony_ci ADD128(rh, rl, th, tl); \ 2208c2ecf20Sopenharmony_ci MUL64(th, tl, pe64_to_cpup((mp)+i+6)+(kp)[i+8], \ 2218c2ecf20Sopenharmony_ci pe64_to_cpup((mp)+i+7)+(kp)[i+9]); \ 2228c2ecf20Sopenharmony_ci ADD128(rh1, rl1, th, tl); \ 2238c2ecf20Sopenharmony_ci } \ 2248c2ecf20Sopenharmony_ci } while (0) 2258c2ecf20Sopenharmony_ci#endif 2268c2ecf20Sopenharmony_ci 2278c2ecf20Sopenharmony_ci#define poly_step(ah, al, kh, kl, mh, ml) \ 2288c2ecf20Sopenharmony_ci do { \ 2298c2ecf20Sopenharmony_ci u64 t1h, t1l, t2h, t2l, t3h, t3l, z = 0; \ 2308c2ecf20Sopenharmony_ci /* compute ab*cd, put bd into result registers */ \ 2318c2ecf20Sopenharmony_ci PMUL64(t3h, t3l, al, kh); \ 2328c2ecf20Sopenharmony_ci PMUL64(t2h, t2l, ah, kl); \ 2338c2ecf20Sopenharmony_ci PMUL64(t1h, t1l, ah, 2*kh); \ 2348c2ecf20Sopenharmony_ci PMUL64(ah, al, al, kl); \ 2358c2ecf20Sopenharmony_ci /* add 2 * ac to result */ \ 2368c2ecf20Sopenharmony_ci ADD128(ah, al, t1h, t1l); \ 2378c2ecf20Sopenharmony_ci /* add together ad + bc */ \ 2388c2ecf20Sopenharmony_ci ADD128(t2h, t2l, t3h, t3l); \ 2398c2ecf20Sopenharmony_ci /* now (ah,al), (t2l,2*t2h) need summing */ \ 2408c2ecf20Sopenharmony_ci /* first add the high registers, carrying into t2h */ \ 2418c2ecf20Sopenharmony_ci ADD128(t2h, ah, z, t2l); \ 2428c2ecf20Sopenharmony_ci /* double t2h and add top bit of ah */ \ 2438c2ecf20Sopenharmony_ci t2h = 2 * t2h + (ah >> 63); \ 2448c2ecf20Sopenharmony_ci ah &= m63; \ 2458c2ecf20Sopenharmony_ci /* now add the low registers */ \ 2468c2ecf20Sopenharmony_ci ADD128(ah, al, mh, ml); \ 2478c2ecf20Sopenharmony_ci ADD128(ah, al, z, t2h); \ 2488c2ecf20Sopenharmony_ci } while (0) 2498c2ecf20Sopenharmony_ci 2508c2ecf20Sopenharmony_ci#else /* ! CONFIG_64BIT */ 2518c2ecf20Sopenharmony_ci 2528c2ecf20Sopenharmony_ci#ifndef nh_16 2538c2ecf20Sopenharmony_ci#define nh_16(mp, kp, nw, rh, rl) \ 2548c2ecf20Sopenharmony_ci do { \ 2558c2ecf20Sopenharmony_ci u64 t1, t2, m1, m2, t; \ 2568c2ecf20Sopenharmony_ci int i; \ 2578c2ecf20Sopenharmony_ci rh = rl = t = 0; \ 2588c2ecf20Sopenharmony_ci for (i = 0; i < nw; i += 2) { \ 2598c2ecf20Sopenharmony_ci t1 = pe64_to_cpup(mp+i) + kp[i]; \ 2608c2ecf20Sopenharmony_ci t2 = pe64_to_cpup(mp+i+1) + kp[i+1]; \ 2618c2ecf20Sopenharmony_ci m2 = MUL32(t1 >> 32, t2); \ 2628c2ecf20Sopenharmony_ci m1 = MUL32(t1, t2 >> 32); \ 2638c2ecf20Sopenharmony_ci ADD128(rh, rl, MUL32(t1 >> 32, t2 >> 32), \ 2648c2ecf20Sopenharmony_ci MUL32(t1, t2)); \ 2658c2ecf20Sopenharmony_ci rh += (u64)(u32)(m1 >> 32) \ 2668c2ecf20Sopenharmony_ci + (u32)(m2 >> 32); \ 2678c2ecf20Sopenharmony_ci t += (u64)(u32)m1 + (u32)m2; \ 2688c2ecf20Sopenharmony_ci } \ 2698c2ecf20Sopenharmony_ci ADD128(rh, rl, (t >> 32), (t << 32)); \ 2708c2ecf20Sopenharmony_ci } while (0) 2718c2ecf20Sopenharmony_ci#endif 2728c2ecf20Sopenharmony_ci 2738c2ecf20Sopenharmony_cistatic void poly_step_func(u64 *ahi, u64 *alo, 2748c2ecf20Sopenharmony_ci const u64 *kh, const u64 *kl, 2758c2ecf20Sopenharmony_ci const u64 *mh, const u64 *ml) 2768c2ecf20Sopenharmony_ci{ 2778c2ecf20Sopenharmony_ci#define a0 (*(((u32 *)alo)+INDEX_LOW)) 2788c2ecf20Sopenharmony_ci#define a1 (*(((u32 *)alo)+INDEX_HIGH)) 2798c2ecf20Sopenharmony_ci#define a2 (*(((u32 *)ahi)+INDEX_LOW)) 2808c2ecf20Sopenharmony_ci#define a3 (*(((u32 *)ahi)+INDEX_HIGH)) 2818c2ecf20Sopenharmony_ci#define k0 (*(((u32 *)kl)+INDEX_LOW)) 2828c2ecf20Sopenharmony_ci#define k1 (*(((u32 *)kl)+INDEX_HIGH)) 2838c2ecf20Sopenharmony_ci#define k2 (*(((u32 *)kh)+INDEX_LOW)) 2848c2ecf20Sopenharmony_ci#define k3 (*(((u32 *)kh)+INDEX_HIGH)) 2858c2ecf20Sopenharmony_ci 2868c2ecf20Sopenharmony_ci u64 p, q, t; 2878c2ecf20Sopenharmony_ci u32 t2; 2888c2ecf20Sopenharmony_ci 2898c2ecf20Sopenharmony_ci p = MUL32(a3, k3); 2908c2ecf20Sopenharmony_ci p += p; 2918c2ecf20Sopenharmony_ci p += *(u64 *)mh; 2928c2ecf20Sopenharmony_ci p += MUL32(a0, k2); 2938c2ecf20Sopenharmony_ci p += MUL32(a1, k1); 2948c2ecf20Sopenharmony_ci p += MUL32(a2, k0); 2958c2ecf20Sopenharmony_ci t = (u32)(p); 2968c2ecf20Sopenharmony_ci p >>= 32; 2978c2ecf20Sopenharmony_ci p += MUL32(a0, k3); 2988c2ecf20Sopenharmony_ci p += MUL32(a1, k2); 2998c2ecf20Sopenharmony_ci p += MUL32(a2, k1); 3008c2ecf20Sopenharmony_ci p += MUL32(a3, k0); 3018c2ecf20Sopenharmony_ci t |= ((u64)((u32)p & 0x7fffffff)) << 32; 3028c2ecf20Sopenharmony_ci p >>= 31; 3038c2ecf20Sopenharmony_ci p += (u64)(((u32 *)ml)[INDEX_LOW]); 3048c2ecf20Sopenharmony_ci p += MUL32(a0, k0); 3058c2ecf20Sopenharmony_ci q = MUL32(a1, k3); 3068c2ecf20Sopenharmony_ci q += MUL32(a2, k2); 3078c2ecf20Sopenharmony_ci q += MUL32(a3, k1); 3088c2ecf20Sopenharmony_ci q += q; 3098c2ecf20Sopenharmony_ci p += q; 3108c2ecf20Sopenharmony_ci t2 = (u32)(p); 3118c2ecf20Sopenharmony_ci p >>= 32; 3128c2ecf20Sopenharmony_ci p += (u64)(((u32 *)ml)[INDEX_HIGH]); 3138c2ecf20Sopenharmony_ci p += MUL32(a0, k1); 3148c2ecf20Sopenharmony_ci p += MUL32(a1, k0); 3158c2ecf20Sopenharmony_ci q = MUL32(a2, k3); 3168c2ecf20Sopenharmony_ci q += MUL32(a3, k2); 3178c2ecf20Sopenharmony_ci q += q; 3188c2ecf20Sopenharmony_ci p += q; 3198c2ecf20Sopenharmony_ci *(u64 *)(alo) = (p << 32) | t2; 3208c2ecf20Sopenharmony_ci p >>= 32; 3218c2ecf20Sopenharmony_ci *(u64 *)(ahi) = p + t; 3228c2ecf20Sopenharmony_ci 3238c2ecf20Sopenharmony_ci#undef a0 3248c2ecf20Sopenharmony_ci#undef a1 3258c2ecf20Sopenharmony_ci#undef a2 3268c2ecf20Sopenharmony_ci#undef a3 3278c2ecf20Sopenharmony_ci#undef k0 3288c2ecf20Sopenharmony_ci#undef k1 3298c2ecf20Sopenharmony_ci#undef k2 3308c2ecf20Sopenharmony_ci#undef k3 3318c2ecf20Sopenharmony_ci} 3328c2ecf20Sopenharmony_ci 3338c2ecf20Sopenharmony_ci#define poly_step(ah, al, kh, kl, mh, ml) \ 3348c2ecf20Sopenharmony_ci poly_step_func(&(ah), &(al), &(kh), &(kl), &(mh), &(ml)) 3358c2ecf20Sopenharmony_ci 3368c2ecf20Sopenharmony_ci#endif /* end of specialized NH and poly definitions */ 3378c2ecf20Sopenharmony_ci 3388c2ecf20Sopenharmony_ci/* At least nh_16 is defined. Defined others as needed here */ 3398c2ecf20Sopenharmony_ci#ifndef nh_16_2 3408c2ecf20Sopenharmony_ci#define nh_16_2(mp, kp, nw, rh, rl, rh2, rl2) \ 3418c2ecf20Sopenharmony_ci do { \ 3428c2ecf20Sopenharmony_ci nh_16(mp, kp, nw, rh, rl); \ 3438c2ecf20Sopenharmony_ci nh_16(mp, ((kp)+2), nw, rh2, rl2); \ 3448c2ecf20Sopenharmony_ci } while (0) 3458c2ecf20Sopenharmony_ci#endif 3468c2ecf20Sopenharmony_ci#ifndef nh_vmac_nhbytes 3478c2ecf20Sopenharmony_ci#define nh_vmac_nhbytes(mp, kp, nw, rh, rl) \ 3488c2ecf20Sopenharmony_ci nh_16(mp, kp, nw, rh, rl) 3498c2ecf20Sopenharmony_ci#endif 3508c2ecf20Sopenharmony_ci#ifndef nh_vmac_nhbytes_2 3518c2ecf20Sopenharmony_ci#define nh_vmac_nhbytes_2(mp, kp, nw, rh, rl, rh2, rl2) \ 3528c2ecf20Sopenharmony_ci do { \ 3538c2ecf20Sopenharmony_ci nh_vmac_nhbytes(mp, kp, nw, rh, rl); \ 3548c2ecf20Sopenharmony_ci nh_vmac_nhbytes(mp, ((kp)+2), nw, rh2, rl2); \ 3558c2ecf20Sopenharmony_ci } while (0) 3568c2ecf20Sopenharmony_ci#endif 3578c2ecf20Sopenharmony_ci 3588c2ecf20Sopenharmony_cistatic u64 l3hash(u64 p1, u64 p2, u64 k1, u64 k2, u64 len) 3598c2ecf20Sopenharmony_ci{ 3608c2ecf20Sopenharmony_ci u64 rh, rl, t, z = 0; 3618c2ecf20Sopenharmony_ci 3628c2ecf20Sopenharmony_ci /* fully reduce (p1,p2)+(len,0) mod p127 */ 3638c2ecf20Sopenharmony_ci t = p1 >> 63; 3648c2ecf20Sopenharmony_ci p1 &= m63; 3658c2ecf20Sopenharmony_ci ADD128(p1, p2, len, t); 3668c2ecf20Sopenharmony_ci /* At this point, (p1,p2) is at most 2^127+(len<<64) */ 3678c2ecf20Sopenharmony_ci t = (p1 > m63) + ((p1 == m63) && (p2 == m64)); 3688c2ecf20Sopenharmony_ci ADD128(p1, p2, z, t); 3698c2ecf20Sopenharmony_ci p1 &= m63; 3708c2ecf20Sopenharmony_ci 3718c2ecf20Sopenharmony_ci /* compute (p1,p2)/(2^64-2^32) and (p1,p2)%(2^64-2^32) */ 3728c2ecf20Sopenharmony_ci t = p1 + (p2 >> 32); 3738c2ecf20Sopenharmony_ci t += (t >> 32); 3748c2ecf20Sopenharmony_ci t += (u32)t > 0xfffffffeu; 3758c2ecf20Sopenharmony_ci p1 += (t >> 32); 3768c2ecf20Sopenharmony_ci p2 += (p1 << 32); 3778c2ecf20Sopenharmony_ci 3788c2ecf20Sopenharmony_ci /* compute (p1+k1)%p64 and (p2+k2)%p64 */ 3798c2ecf20Sopenharmony_ci p1 += k1; 3808c2ecf20Sopenharmony_ci p1 += (0 - (p1 < k1)) & 257; 3818c2ecf20Sopenharmony_ci p2 += k2; 3828c2ecf20Sopenharmony_ci p2 += (0 - (p2 < k2)) & 257; 3838c2ecf20Sopenharmony_ci 3848c2ecf20Sopenharmony_ci /* compute (p1+k1)*(p2+k2)%p64 */ 3858c2ecf20Sopenharmony_ci MUL64(rh, rl, p1, p2); 3868c2ecf20Sopenharmony_ci t = rh >> 56; 3878c2ecf20Sopenharmony_ci ADD128(t, rl, z, rh); 3888c2ecf20Sopenharmony_ci rh <<= 8; 3898c2ecf20Sopenharmony_ci ADD128(t, rl, z, rh); 3908c2ecf20Sopenharmony_ci t += t << 8; 3918c2ecf20Sopenharmony_ci rl += t; 3928c2ecf20Sopenharmony_ci rl += (0 - (rl < t)) & 257; 3938c2ecf20Sopenharmony_ci rl += (0 - (rl > p64-1)) & 257; 3948c2ecf20Sopenharmony_ci return rl; 3958c2ecf20Sopenharmony_ci} 3968c2ecf20Sopenharmony_ci 3978c2ecf20Sopenharmony_ci/* L1 and L2-hash one or more VMAC_NHBYTES-byte blocks */ 3988c2ecf20Sopenharmony_cistatic void vhash_blocks(const struct vmac_tfm_ctx *tctx, 3998c2ecf20Sopenharmony_ci struct vmac_desc_ctx *dctx, 4008c2ecf20Sopenharmony_ci const __le64 *mptr, unsigned int blocks) 4018c2ecf20Sopenharmony_ci{ 4028c2ecf20Sopenharmony_ci const u64 *kptr = tctx->nhkey; 4038c2ecf20Sopenharmony_ci const u64 pkh = tctx->polykey[0]; 4048c2ecf20Sopenharmony_ci const u64 pkl = tctx->polykey[1]; 4058c2ecf20Sopenharmony_ci u64 ch = dctx->polytmp[0]; 4068c2ecf20Sopenharmony_ci u64 cl = dctx->polytmp[1]; 4078c2ecf20Sopenharmony_ci u64 rh, rl; 4088c2ecf20Sopenharmony_ci 4098c2ecf20Sopenharmony_ci if (!dctx->first_block_processed) { 4108c2ecf20Sopenharmony_ci dctx->first_block_processed = true; 4118c2ecf20Sopenharmony_ci nh_vmac_nhbytes(mptr, kptr, VMAC_NHBYTES/8, rh, rl); 4128c2ecf20Sopenharmony_ci rh &= m62; 4138c2ecf20Sopenharmony_ci ADD128(ch, cl, rh, rl); 4148c2ecf20Sopenharmony_ci mptr += (VMAC_NHBYTES/sizeof(u64)); 4158c2ecf20Sopenharmony_ci blocks--; 4168c2ecf20Sopenharmony_ci } 4178c2ecf20Sopenharmony_ci 4188c2ecf20Sopenharmony_ci while (blocks--) { 4198c2ecf20Sopenharmony_ci nh_vmac_nhbytes(mptr, kptr, VMAC_NHBYTES/8, rh, rl); 4208c2ecf20Sopenharmony_ci rh &= m62; 4218c2ecf20Sopenharmony_ci poly_step(ch, cl, pkh, pkl, rh, rl); 4228c2ecf20Sopenharmony_ci mptr += (VMAC_NHBYTES/sizeof(u64)); 4238c2ecf20Sopenharmony_ci } 4248c2ecf20Sopenharmony_ci 4258c2ecf20Sopenharmony_ci dctx->polytmp[0] = ch; 4268c2ecf20Sopenharmony_ci dctx->polytmp[1] = cl; 4278c2ecf20Sopenharmony_ci} 4288c2ecf20Sopenharmony_ci 4298c2ecf20Sopenharmony_cistatic int vmac_setkey(struct crypto_shash *tfm, 4308c2ecf20Sopenharmony_ci const u8 *key, unsigned int keylen) 4318c2ecf20Sopenharmony_ci{ 4328c2ecf20Sopenharmony_ci struct vmac_tfm_ctx *tctx = crypto_shash_ctx(tfm); 4338c2ecf20Sopenharmony_ci __be64 out[2]; 4348c2ecf20Sopenharmony_ci u8 in[16] = { 0 }; 4358c2ecf20Sopenharmony_ci unsigned int i; 4368c2ecf20Sopenharmony_ci int err; 4378c2ecf20Sopenharmony_ci 4388c2ecf20Sopenharmony_ci if (keylen != VMAC_KEY_LEN) 4398c2ecf20Sopenharmony_ci return -EINVAL; 4408c2ecf20Sopenharmony_ci 4418c2ecf20Sopenharmony_ci err = crypto_cipher_setkey(tctx->cipher, key, keylen); 4428c2ecf20Sopenharmony_ci if (err) 4438c2ecf20Sopenharmony_ci return err; 4448c2ecf20Sopenharmony_ci 4458c2ecf20Sopenharmony_ci /* Fill nh key */ 4468c2ecf20Sopenharmony_ci in[0] = 0x80; 4478c2ecf20Sopenharmony_ci for (i = 0; i < ARRAY_SIZE(tctx->nhkey); i += 2) { 4488c2ecf20Sopenharmony_ci crypto_cipher_encrypt_one(tctx->cipher, (u8 *)out, in); 4498c2ecf20Sopenharmony_ci tctx->nhkey[i] = be64_to_cpu(out[0]); 4508c2ecf20Sopenharmony_ci tctx->nhkey[i+1] = be64_to_cpu(out[1]); 4518c2ecf20Sopenharmony_ci in[15]++; 4528c2ecf20Sopenharmony_ci } 4538c2ecf20Sopenharmony_ci 4548c2ecf20Sopenharmony_ci /* Fill poly key */ 4558c2ecf20Sopenharmony_ci in[0] = 0xC0; 4568c2ecf20Sopenharmony_ci in[15] = 0; 4578c2ecf20Sopenharmony_ci for (i = 0; i < ARRAY_SIZE(tctx->polykey); i += 2) { 4588c2ecf20Sopenharmony_ci crypto_cipher_encrypt_one(tctx->cipher, (u8 *)out, in); 4598c2ecf20Sopenharmony_ci tctx->polykey[i] = be64_to_cpu(out[0]) & mpoly; 4608c2ecf20Sopenharmony_ci tctx->polykey[i+1] = be64_to_cpu(out[1]) & mpoly; 4618c2ecf20Sopenharmony_ci in[15]++; 4628c2ecf20Sopenharmony_ci } 4638c2ecf20Sopenharmony_ci 4648c2ecf20Sopenharmony_ci /* Fill ip key */ 4658c2ecf20Sopenharmony_ci in[0] = 0xE0; 4668c2ecf20Sopenharmony_ci in[15] = 0; 4678c2ecf20Sopenharmony_ci for (i = 0; i < ARRAY_SIZE(tctx->l3key); i += 2) { 4688c2ecf20Sopenharmony_ci do { 4698c2ecf20Sopenharmony_ci crypto_cipher_encrypt_one(tctx->cipher, (u8 *)out, in); 4708c2ecf20Sopenharmony_ci tctx->l3key[i] = be64_to_cpu(out[0]); 4718c2ecf20Sopenharmony_ci tctx->l3key[i+1] = be64_to_cpu(out[1]); 4728c2ecf20Sopenharmony_ci in[15]++; 4738c2ecf20Sopenharmony_ci } while (tctx->l3key[i] >= p64 || tctx->l3key[i+1] >= p64); 4748c2ecf20Sopenharmony_ci } 4758c2ecf20Sopenharmony_ci 4768c2ecf20Sopenharmony_ci return 0; 4778c2ecf20Sopenharmony_ci} 4788c2ecf20Sopenharmony_ci 4798c2ecf20Sopenharmony_cistatic int vmac_init(struct shash_desc *desc) 4808c2ecf20Sopenharmony_ci{ 4818c2ecf20Sopenharmony_ci const struct vmac_tfm_ctx *tctx = crypto_shash_ctx(desc->tfm); 4828c2ecf20Sopenharmony_ci struct vmac_desc_ctx *dctx = shash_desc_ctx(desc); 4838c2ecf20Sopenharmony_ci 4848c2ecf20Sopenharmony_ci dctx->partial_size = 0; 4858c2ecf20Sopenharmony_ci dctx->first_block_processed = false; 4868c2ecf20Sopenharmony_ci memcpy(dctx->polytmp, tctx->polykey, sizeof(dctx->polytmp)); 4878c2ecf20Sopenharmony_ci dctx->nonce_size = 0; 4888c2ecf20Sopenharmony_ci return 0; 4898c2ecf20Sopenharmony_ci} 4908c2ecf20Sopenharmony_ci 4918c2ecf20Sopenharmony_cistatic int vmac_update(struct shash_desc *desc, const u8 *p, unsigned int len) 4928c2ecf20Sopenharmony_ci{ 4938c2ecf20Sopenharmony_ci const struct vmac_tfm_ctx *tctx = crypto_shash_ctx(desc->tfm); 4948c2ecf20Sopenharmony_ci struct vmac_desc_ctx *dctx = shash_desc_ctx(desc); 4958c2ecf20Sopenharmony_ci unsigned int n; 4968c2ecf20Sopenharmony_ci 4978c2ecf20Sopenharmony_ci /* Nonce is passed as first VMAC_NONCEBYTES bytes of data */ 4988c2ecf20Sopenharmony_ci if (dctx->nonce_size < VMAC_NONCEBYTES) { 4998c2ecf20Sopenharmony_ci n = min(len, VMAC_NONCEBYTES - dctx->nonce_size); 5008c2ecf20Sopenharmony_ci memcpy(&dctx->nonce.bytes[dctx->nonce_size], p, n); 5018c2ecf20Sopenharmony_ci dctx->nonce_size += n; 5028c2ecf20Sopenharmony_ci p += n; 5038c2ecf20Sopenharmony_ci len -= n; 5048c2ecf20Sopenharmony_ci } 5058c2ecf20Sopenharmony_ci 5068c2ecf20Sopenharmony_ci if (dctx->partial_size) { 5078c2ecf20Sopenharmony_ci n = min(len, VMAC_NHBYTES - dctx->partial_size); 5088c2ecf20Sopenharmony_ci memcpy(&dctx->partial[dctx->partial_size], p, n); 5098c2ecf20Sopenharmony_ci dctx->partial_size += n; 5108c2ecf20Sopenharmony_ci p += n; 5118c2ecf20Sopenharmony_ci len -= n; 5128c2ecf20Sopenharmony_ci if (dctx->partial_size == VMAC_NHBYTES) { 5138c2ecf20Sopenharmony_ci vhash_blocks(tctx, dctx, dctx->partial_words, 1); 5148c2ecf20Sopenharmony_ci dctx->partial_size = 0; 5158c2ecf20Sopenharmony_ci } 5168c2ecf20Sopenharmony_ci } 5178c2ecf20Sopenharmony_ci 5188c2ecf20Sopenharmony_ci if (len >= VMAC_NHBYTES) { 5198c2ecf20Sopenharmony_ci n = round_down(len, VMAC_NHBYTES); 5208c2ecf20Sopenharmony_ci /* TODO: 'p' may be misaligned here */ 5218c2ecf20Sopenharmony_ci vhash_blocks(tctx, dctx, (const __le64 *)p, n / VMAC_NHBYTES); 5228c2ecf20Sopenharmony_ci p += n; 5238c2ecf20Sopenharmony_ci len -= n; 5248c2ecf20Sopenharmony_ci } 5258c2ecf20Sopenharmony_ci 5268c2ecf20Sopenharmony_ci if (len) { 5278c2ecf20Sopenharmony_ci memcpy(dctx->partial, p, len); 5288c2ecf20Sopenharmony_ci dctx->partial_size = len; 5298c2ecf20Sopenharmony_ci } 5308c2ecf20Sopenharmony_ci 5318c2ecf20Sopenharmony_ci return 0; 5328c2ecf20Sopenharmony_ci} 5338c2ecf20Sopenharmony_ci 5348c2ecf20Sopenharmony_cistatic u64 vhash_final(const struct vmac_tfm_ctx *tctx, 5358c2ecf20Sopenharmony_ci struct vmac_desc_ctx *dctx) 5368c2ecf20Sopenharmony_ci{ 5378c2ecf20Sopenharmony_ci unsigned int partial = dctx->partial_size; 5388c2ecf20Sopenharmony_ci u64 ch = dctx->polytmp[0]; 5398c2ecf20Sopenharmony_ci u64 cl = dctx->polytmp[1]; 5408c2ecf20Sopenharmony_ci 5418c2ecf20Sopenharmony_ci /* L1 and L2-hash the final block if needed */ 5428c2ecf20Sopenharmony_ci if (partial) { 5438c2ecf20Sopenharmony_ci /* Zero-pad to next 128-bit boundary */ 5448c2ecf20Sopenharmony_ci unsigned int n = round_up(partial, 16); 5458c2ecf20Sopenharmony_ci u64 rh, rl; 5468c2ecf20Sopenharmony_ci 5478c2ecf20Sopenharmony_ci memset(&dctx->partial[partial], 0, n - partial); 5488c2ecf20Sopenharmony_ci nh_16(dctx->partial_words, tctx->nhkey, n / 8, rh, rl); 5498c2ecf20Sopenharmony_ci rh &= m62; 5508c2ecf20Sopenharmony_ci if (dctx->first_block_processed) 5518c2ecf20Sopenharmony_ci poly_step(ch, cl, tctx->polykey[0], tctx->polykey[1], 5528c2ecf20Sopenharmony_ci rh, rl); 5538c2ecf20Sopenharmony_ci else 5548c2ecf20Sopenharmony_ci ADD128(ch, cl, rh, rl); 5558c2ecf20Sopenharmony_ci } 5568c2ecf20Sopenharmony_ci 5578c2ecf20Sopenharmony_ci /* L3-hash the 128-bit output of L2-hash */ 5588c2ecf20Sopenharmony_ci return l3hash(ch, cl, tctx->l3key[0], tctx->l3key[1], partial * 8); 5598c2ecf20Sopenharmony_ci} 5608c2ecf20Sopenharmony_ci 5618c2ecf20Sopenharmony_cistatic int vmac_final(struct shash_desc *desc, u8 *out) 5628c2ecf20Sopenharmony_ci{ 5638c2ecf20Sopenharmony_ci const struct vmac_tfm_ctx *tctx = crypto_shash_ctx(desc->tfm); 5648c2ecf20Sopenharmony_ci struct vmac_desc_ctx *dctx = shash_desc_ctx(desc); 5658c2ecf20Sopenharmony_ci int index; 5668c2ecf20Sopenharmony_ci u64 hash, pad; 5678c2ecf20Sopenharmony_ci 5688c2ecf20Sopenharmony_ci if (dctx->nonce_size != VMAC_NONCEBYTES) 5698c2ecf20Sopenharmony_ci return -EINVAL; 5708c2ecf20Sopenharmony_ci 5718c2ecf20Sopenharmony_ci /* 5728c2ecf20Sopenharmony_ci * The VMAC specification requires a nonce at least 1 bit shorter than 5738c2ecf20Sopenharmony_ci * the block cipher's block length, so we actually only accept a 127-bit 5748c2ecf20Sopenharmony_ci * nonce. We define the unused bit to be the first one and require that 5758c2ecf20Sopenharmony_ci * it be 0, so the needed prepending of a 0 bit is implicit. 5768c2ecf20Sopenharmony_ci */ 5778c2ecf20Sopenharmony_ci if (dctx->nonce.bytes[0] & 0x80) 5788c2ecf20Sopenharmony_ci return -EINVAL; 5798c2ecf20Sopenharmony_ci 5808c2ecf20Sopenharmony_ci /* Finish calculating the VHASH of the message */ 5818c2ecf20Sopenharmony_ci hash = vhash_final(tctx, dctx); 5828c2ecf20Sopenharmony_ci 5838c2ecf20Sopenharmony_ci /* Generate pseudorandom pad by encrypting the nonce */ 5848c2ecf20Sopenharmony_ci BUILD_BUG_ON(VMAC_NONCEBYTES != 2 * (VMAC_TAG_LEN / 8)); 5858c2ecf20Sopenharmony_ci index = dctx->nonce.bytes[VMAC_NONCEBYTES - 1] & 1; 5868c2ecf20Sopenharmony_ci dctx->nonce.bytes[VMAC_NONCEBYTES - 1] &= ~1; 5878c2ecf20Sopenharmony_ci crypto_cipher_encrypt_one(tctx->cipher, dctx->nonce.bytes, 5888c2ecf20Sopenharmony_ci dctx->nonce.bytes); 5898c2ecf20Sopenharmony_ci pad = be64_to_cpu(dctx->nonce.pads[index]); 5908c2ecf20Sopenharmony_ci 5918c2ecf20Sopenharmony_ci /* The VMAC is the sum of VHASH and the pseudorandom pad */ 5928c2ecf20Sopenharmony_ci put_unaligned_be64(hash + pad, out); 5938c2ecf20Sopenharmony_ci return 0; 5948c2ecf20Sopenharmony_ci} 5958c2ecf20Sopenharmony_ci 5968c2ecf20Sopenharmony_cistatic int vmac_init_tfm(struct crypto_tfm *tfm) 5978c2ecf20Sopenharmony_ci{ 5988c2ecf20Sopenharmony_ci struct crypto_instance *inst = crypto_tfm_alg_instance(tfm); 5998c2ecf20Sopenharmony_ci struct crypto_cipher_spawn *spawn = crypto_instance_ctx(inst); 6008c2ecf20Sopenharmony_ci struct vmac_tfm_ctx *tctx = crypto_tfm_ctx(tfm); 6018c2ecf20Sopenharmony_ci struct crypto_cipher *cipher; 6028c2ecf20Sopenharmony_ci 6038c2ecf20Sopenharmony_ci cipher = crypto_spawn_cipher(spawn); 6048c2ecf20Sopenharmony_ci if (IS_ERR(cipher)) 6058c2ecf20Sopenharmony_ci return PTR_ERR(cipher); 6068c2ecf20Sopenharmony_ci 6078c2ecf20Sopenharmony_ci tctx->cipher = cipher; 6088c2ecf20Sopenharmony_ci return 0; 6098c2ecf20Sopenharmony_ci} 6108c2ecf20Sopenharmony_ci 6118c2ecf20Sopenharmony_cistatic void vmac_exit_tfm(struct crypto_tfm *tfm) 6128c2ecf20Sopenharmony_ci{ 6138c2ecf20Sopenharmony_ci struct vmac_tfm_ctx *tctx = crypto_tfm_ctx(tfm); 6148c2ecf20Sopenharmony_ci 6158c2ecf20Sopenharmony_ci crypto_free_cipher(tctx->cipher); 6168c2ecf20Sopenharmony_ci} 6178c2ecf20Sopenharmony_ci 6188c2ecf20Sopenharmony_cistatic int vmac_create(struct crypto_template *tmpl, struct rtattr **tb) 6198c2ecf20Sopenharmony_ci{ 6208c2ecf20Sopenharmony_ci struct shash_instance *inst; 6218c2ecf20Sopenharmony_ci struct crypto_cipher_spawn *spawn; 6228c2ecf20Sopenharmony_ci struct crypto_alg *alg; 6238c2ecf20Sopenharmony_ci u32 mask; 6248c2ecf20Sopenharmony_ci int err; 6258c2ecf20Sopenharmony_ci 6268c2ecf20Sopenharmony_ci err = crypto_check_attr_type(tb, CRYPTO_ALG_TYPE_SHASH, &mask); 6278c2ecf20Sopenharmony_ci if (err) 6288c2ecf20Sopenharmony_ci return err; 6298c2ecf20Sopenharmony_ci 6308c2ecf20Sopenharmony_ci inst = kzalloc(sizeof(*inst) + sizeof(*spawn), GFP_KERNEL); 6318c2ecf20Sopenharmony_ci if (!inst) 6328c2ecf20Sopenharmony_ci return -ENOMEM; 6338c2ecf20Sopenharmony_ci spawn = shash_instance_ctx(inst); 6348c2ecf20Sopenharmony_ci 6358c2ecf20Sopenharmony_ci err = crypto_grab_cipher(spawn, shash_crypto_instance(inst), 6368c2ecf20Sopenharmony_ci crypto_attr_alg_name(tb[1]), 0, mask); 6378c2ecf20Sopenharmony_ci if (err) 6388c2ecf20Sopenharmony_ci goto err_free_inst; 6398c2ecf20Sopenharmony_ci alg = crypto_spawn_cipher_alg(spawn); 6408c2ecf20Sopenharmony_ci 6418c2ecf20Sopenharmony_ci err = -EINVAL; 6428c2ecf20Sopenharmony_ci if (alg->cra_blocksize != VMAC_NONCEBYTES) 6438c2ecf20Sopenharmony_ci goto err_free_inst; 6448c2ecf20Sopenharmony_ci 6458c2ecf20Sopenharmony_ci err = crypto_inst_setname(shash_crypto_instance(inst), tmpl->name, alg); 6468c2ecf20Sopenharmony_ci if (err) 6478c2ecf20Sopenharmony_ci goto err_free_inst; 6488c2ecf20Sopenharmony_ci 6498c2ecf20Sopenharmony_ci inst->alg.base.cra_priority = alg->cra_priority; 6508c2ecf20Sopenharmony_ci inst->alg.base.cra_blocksize = alg->cra_blocksize; 6518c2ecf20Sopenharmony_ci inst->alg.base.cra_alignmask = alg->cra_alignmask; 6528c2ecf20Sopenharmony_ci 6538c2ecf20Sopenharmony_ci inst->alg.base.cra_ctxsize = sizeof(struct vmac_tfm_ctx); 6548c2ecf20Sopenharmony_ci inst->alg.base.cra_init = vmac_init_tfm; 6558c2ecf20Sopenharmony_ci inst->alg.base.cra_exit = vmac_exit_tfm; 6568c2ecf20Sopenharmony_ci 6578c2ecf20Sopenharmony_ci inst->alg.descsize = sizeof(struct vmac_desc_ctx); 6588c2ecf20Sopenharmony_ci inst->alg.digestsize = VMAC_TAG_LEN / 8; 6598c2ecf20Sopenharmony_ci inst->alg.init = vmac_init; 6608c2ecf20Sopenharmony_ci inst->alg.update = vmac_update; 6618c2ecf20Sopenharmony_ci inst->alg.final = vmac_final; 6628c2ecf20Sopenharmony_ci inst->alg.setkey = vmac_setkey; 6638c2ecf20Sopenharmony_ci 6648c2ecf20Sopenharmony_ci inst->free = shash_free_singlespawn_instance; 6658c2ecf20Sopenharmony_ci 6668c2ecf20Sopenharmony_ci err = shash_register_instance(tmpl, inst); 6678c2ecf20Sopenharmony_ci if (err) { 6688c2ecf20Sopenharmony_cierr_free_inst: 6698c2ecf20Sopenharmony_ci shash_free_singlespawn_instance(inst); 6708c2ecf20Sopenharmony_ci } 6718c2ecf20Sopenharmony_ci return err; 6728c2ecf20Sopenharmony_ci} 6738c2ecf20Sopenharmony_ci 6748c2ecf20Sopenharmony_cistatic struct crypto_template vmac64_tmpl = { 6758c2ecf20Sopenharmony_ci .name = "vmac64", 6768c2ecf20Sopenharmony_ci .create = vmac_create, 6778c2ecf20Sopenharmony_ci .module = THIS_MODULE, 6788c2ecf20Sopenharmony_ci}; 6798c2ecf20Sopenharmony_ci 6808c2ecf20Sopenharmony_cistatic int __init vmac_module_init(void) 6818c2ecf20Sopenharmony_ci{ 6828c2ecf20Sopenharmony_ci return crypto_register_template(&vmac64_tmpl); 6838c2ecf20Sopenharmony_ci} 6848c2ecf20Sopenharmony_ci 6858c2ecf20Sopenharmony_cistatic void __exit vmac_module_exit(void) 6868c2ecf20Sopenharmony_ci{ 6878c2ecf20Sopenharmony_ci crypto_unregister_template(&vmac64_tmpl); 6888c2ecf20Sopenharmony_ci} 6898c2ecf20Sopenharmony_ci 6908c2ecf20Sopenharmony_cisubsys_initcall(vmac_module_init); 6918c2ecf20Sopenharmony_cimodule_exit(vmac_module_exit); 6928c2ecf20Sopenharmony_ci 6938c2ecf20Sopenharmony_ciMODULE_LICENSE("GPL"); 6948c2ecf20Sopenharmony_ciMODULE_DESCRIPTION("VMAC hash algorithm"); 6958c2ecf20Sopenharmony_ciMODULE_ALIAS_CRYPTO("vmac64"); 696