aesni-x86_64.pl 127 KB

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  1. #! /usr/bin/env perl
  2. # Copyright 2009-2020 The OpenSSL Project Authors. All Rights Reserved.
  3. #
  4. # Licensed under the OpenSSL license (the "License"). You may not use
  5. # this file except in compliance with the License. You can obtain a copy
  6. # in the file LICENSE in the source distribution or at
  7. # https://www.openssl.org/source/license.html
  8. #
  9. # ====================================================================
  10. # Written by Andy Polyakov <appro@openssl.org> for the OpenSSL
  11. # project. The module is, however, dual licensed under OpenSSL and
  12. # CRYPTOGAMS licenses depending on where you obtain it. For further
  13. # details see http://www.openssl.org/~appro/cryptogams/.
  14. # ====================================================================
  15. #
  16. # This module implements support for Intel AES-NI extension. In
  17. # OpenSSL context it's used with Intel engine, but can also be used as
  18. # drop-in replacement for crypto/aes/asm/aes-x86_64.pl [see below for
  19. # details].
  20. #
  21. # Performance.
  22. #
  23. # Given aes(enc|dec) instructions' latency asymptotic performance for
  24. # non-parallelizable modes such as CBC encrypt is 3.75 cycles per byte
  25. # processed with 128-bit key. And given their throughput asymptotic
  26. # performance for parallelizable modes is 1.25 cycles per byte. Being
  27. # asymptotic limit it's not something you commonly achieve in reality,
  28. # but how close does one get? Below are results collected for
  29. # different modes and block sized. Pairs of numbers are for en-/
  30. # decryption.
  31. #
  32. # 16-byte 64-byte 256-byte 1-KB 8-KB
  33. # ECB 4.25/4.25 1.38/1.38 1.28/1.28 1.26/1.26 1.26/1.26
  34. # CTR 5.42/5.42 1.92/1.92 1.44/1.44 1.28/1.28 1.26/1.26
  35. # CBC 4.38/4.43 4.15/1.43 4.07/1.32 4.07/1.29 4.06/1.28
  36. # CCM 5.66/9.42 4.42/5.41 4.16/4.40 4.09/4.15 4.06/4.07
  37. # OFB 5.42/5.42 4.64/4.64 4.44/4.44 4.39/4.39 4.38/4.38
  38. # CFB 5.73/5.85 5.56/5.62 5.48/5.56 5.47/5.55 5.47/5.55
  39. #
  40. # ECB, CTR, CBC and CCM results are free from EVP overhead. This means
  41. # that otherwise used 'openssl speed -evp aes-128-??? -engine aesni
  42. # [-decrypt]' will exhibit 10-15% worse results for smaller blocks.
  43. # The results were collected with specially crafted speed.c benchmark
  44. # in order to compare them with results reported in "Intel Advanced
  45. # Encryption Standard (AES) New Instruction Set" White Paper Revision
  46. # 3.0 dated May 2010. All above results are consistently better. This
  47. # module also provides better performance for block sizes smaller than
  48. # 128 bytes in points *not* represented in the above table.
  49. #
  50. # Looking at the results for 8-KB buffer.
  51. #
  52. # CFB and OFB results are far from the limit, because implementation
  53. # uses "generic" CRYPTO_[c|o]fb128_encrypt interfaces relying on
  54. # single-block aesni_encrypt, which is not the most optimal way to go.
  55. # CBC encrypt result is unexpectedly high and there is no documented
  56. # explanation for it. Seemingly there is a small penalty for feeding
  57. # the result back to AES unit the way it's done in CBC mode. There is
  58. # nothing one can do and the result appears optimal. CCM result is
  59. # identical to CBC, because CBC-MAC is essentially CBC encrypt without
  60. # saving output. CCM CTR "stays invisible," because it's neatly
  61. # interleaved with CBC-MAC. This provides ~30% improvement over
  62. # "straightforward" CCM implementation with CTR and CBC-MAC performed
  63. # disjointly. Parallelizable modes practically achieve the theoretical
  64. # limit.
  65. #
  66. # Looking at how results vary with buffer size.
  67. #
  68. # Curves are practically saturated at 1-KB buffer size. In most cases
  69. # "256-byte" performance is >95%, and "64-byte" is ~90% of "8-KB" one.
  70. # CTR curve doesn't follow this pattern and is "slowest" changing one
  71. # with "256-byte" result being 87% of "8-KB." This is because overhead
  72. # in CTR mode is most computationally intensive. Small-block CCM
  73. # decrypt is slower than encrypt, because first CTR and last CBC-MAC
  74. # iterations can't be interleaved.
  75. #
  76. # Results for 192- and 256-bit keys.
  77. #
  78. # EVP-free results were observed to scale perfectly with number of
  79. # rounds for larger block sizes, i.e. 192-bit result being 10/12 times
  80. # lower and 256-bit one - 10/14. Well, in CBC encrypt case differences
  81. # are a tad smaller, because the above mentioned penalty biases all
  82. # results by same constant value. In similar way function call
  83. # overhead affects small-block performance, as well as OFB and CFB
  84. # results. Differences are not large, most common coefficients are
  85. # 10/11.7 and 10/13.4 (as opposite to 10/12.0 and 10/14.0), but one
  86. # observe even 10/11.2 and 10/12.4 (CTR, OFB, CFB)...
  87. # January 2011
  88. #
  89. # While Westmere processor features 6 cycles latency for aes[enc|dec]
  90. # instructions, which can be scheduled every second cycle, Sandy
  91. # Bridge spends 8 cycles per instruction, but it can schedule them
  92. # every cycle. This means that code targeting Westmere would perform
  93. # suboptimally on Sandy Bridge. Therefore this update.
  94. #
  95. # In addition, non-parallelizable CBC encrypt (as well as CCM) is
  96. # optimized. Relative improvement might appear modest, 8% on Westmere,
  97. # but in absolute terms it's 3.77 cycles per byte encrypted with
  98. # 128-bit key on Westmere, and 5.07 - on Sandy Bridge. These numbers
  99. # should be compared to asymptotic limits of 3.75 for Westmere and
  100. # 5.00 for Sandy Bridge. Actually, the fact that they get this close
  101. # to asymptotic limits is quite amazing. Indeed, the limit is
  102. # calculated as latency times number of rounds, 10 for 128-bit key,
  103. # and divided by 16, the number of bytes in block, or in other words
  104. # it accounts *solely* for aesenc instructions. But there are extra
  105. # instructions, and numbers so close to the asymptotic limits mean
  106. # that it's as if it takes as little as *one* additional cycle to
  107. # execute all of them. How is it possible? It is possible thanks to
  108. # out-of-order execution logic, which manages to overlap post-
  109. # processing of previous block, things like saving the output, with
  110. # actual encryption of current block, as well as pre-processing of
  111. # current block, things like fetching input and xor-ing it with
  112. # 0-round element of the key schedule, with actual encryption of
  113. # previous block. Keep this in mind...
  114. #
  115. # For parallelizable modes, such as ECB, CBC decrypt, CTR, higher
  116. # performance is achieved by interleaving instructions working on
  117. # independent blocks. In which case asymptotic limit for such modes
  118. # can be obtained by dividing above mentioned numbers by AES
  119. # instructions' interleave factor. Westmere can execute at most 3
  120. # instructions at a time, meaning that optimal interleave factor is 3,
  121. # and that's where the "magic" number of 1.25 come from. "Optimal
  122. # interleave factor" means that increase of interleave factor does
  123. # not improve performance. The formula has proven to reflect reality
  124. # pretty well on Westmere... Sandy Bridge on the other hand can
  125. # execute up to 8 AES instructions at a time, so how does varying
  126. # interleave factor affect the performance? Here is table for ECB
  127. # (numbers are cycles per byte processed with 128-bit key):
  128. #
  129. # instruction interleave factor 3x 6x 8x
  130. # theoretical asymptotic limit 1.67 0.83 0.625
  131. # measured performance for 8KB block 1.05 0.86 0.84
  132. #
  133. # "as if" interleave factor 4.7x 5.8x 6.0x
  134. #
  135. # Further data for other parallelizable modes:
  136. #
  137. # CBC decrypt 1.16 0.93 0.74
  138. # CTR 1.14 0.91 0.74
  139. #
  140. # Well, given 3x column it's probably inappropriate to call the limit
  141. # asymptotic, if it can be surpassed, isn't it? What happens there?
  142. # Rewind to CBC paragraph for the answer. Yes, out-of-order execution
  143. # magic is responsible for this. Processor overlaps not only the
  144. # additional instructions with AES ones, but even AES instructions
  145. # processing adjacent triplets of independent blocks. In the 6x case
  146. # additional instructions still claim disproportionally small amount
  147. # of additional cycles, but in 8x case number of instructions must be
  148. # a tad too high for out-of-order logic to cope with, and AES unit
  149. # remains underutilized... As you can see 8x interleave is hardly
  150. # justifiable, so there no need to feel bad that 32-bit aesni-x86.pl
  151. # utilizes 6x interleave because of limited register bank capacity.
  152. #
  153. # Higher interleave factors do have negative impact on Westmere
  154. # performance. While for ECB mode it's negligible ~1.5%, other
  155. # parallelizables perform ~5% worse, which is outweighed by ~25%
  156. # improvement on Sandy Bridge. To balance regression on Westmere
  157. # CTR mode was implemented with 6x aesenc interleave factor.
  158. # April 2011
  159. #
  160. # Add aesni_xts_[en|de]crypt. Westmere spends 1.25 cycles processing
  161. # one byte out of 8KB with 128-bit key, Sandy Bridge - 0.90. Just like
  162. # in CTR mode AES instruction interleave factor was chosen to be 6x.
  163. # November 2015
  164. #
  165. # Add aesni_ocb_[en|de]crypt. AES instruction interleave factor was
  166. # chosen to be 6x.
  167. ######################################################################
  168. # Current large-block performance in cycles per byte processed with
  169. # 128-bit key (less is better).
  170. #
  171. # CBC en-/decrypt CTR XTS ECB OCB
  172. # Westmere 3.77/1.25 1.25 1.25 1.26
  173. # * Bridge 5.07/0.74 0.75 0.90 0.85 0.98
  174. # Haswell 4.44/0.63 0.63 0.73 0.63 0.70
  175. # Skylake 2.62/0.63 0.63 0.63 0.63
  176. # Silvermont 5.75/3.54 3.56 4.12 3.87(*) 4.11
  177. # Knights L 2.54/0.77 0.78 0.85 - 1.50
  178. # Goldmont 3.82/1.26 1.26 1.29 1.29 1.50
  179. # Bulldozer 5.77/0.70 0.72 0.90 0.70 0.95
  180. # Ryzen 2.71/0.35 0.35 0.44 0.38 0.49
  181. #
  182. # (*) Atom Silvermont ECB result is suboptimal because of penalties
  183. # incurred by operations on %xmm8-15. As ECB is not considered
  184. # critical, nothing was done to mitigate the problem.
  185. $PREFIX="aesni"; # if $PREFIX is set to "AES", the script
  186. # generates drop-in replacement for
  187. # crypto/aes/asm/aes-x86_64.pl:-)
  188. $flavour = shift;
  189. $output = shift;
  190. if ($flavour =~ /\./) { $output = $flavour; undef $flavour; }
  191. $win64=0; $win64=1 if ($flavour =~ /[nm]asm|mingw64/ || $output =~ /\.asm$/);
  192. $0 =~ m/(.*[\/\\])[^\/\\]+$/; $dir=$1;
  193. ( $xlate="${dir}x86_64-xlate.pl" and -f $xlate ) or
  194. ( $xlate="${dir}../../perlasm/x86_64-xlate.pl" and -f $xlate) or
  195. die "can't locate x86_64-xlate.pl";
  196. open OUT,"| \"$^X\" \"$xlate\" $flavour \"$output\"";
  197. *STDOUT=*OUT;
  198. $movkey = $PREFIX eq "aesni" ? "movups" : "movups";
  199. @_4args=$win64? ("%rcx","%rdx","%r8", "%r9") : # Win64 order
  200. ("%rdi","%rsi","%rdx","%rcx"); # Unix order
  201. $code=".text\n";
  202. $code.=".extern OPENSSL_ia32cap_P\n";
  203. $rounds="%eax"; # input to and changed by aesni_[en|de]cryptN !!!
  204. # this is natural Unix argument order for public $PREFIX_[ecb|cbc]_encrypt ...
  205. $inp="%rdi";
  206. $out="%rsi";
  207. $len="%rdx";
  208. $key="%rcx"; # input to and changed by aesni_[en|de]cryptN !!!
  209. $ivp="%r8"; # cbc, ctr, ...
  210. $rnds_="%r10d"; # backup copy for $rounds
  211. $key_="%r11"; # backup copy for $key
  212. # %xmm register layout
  213. $rndkey0="%xmm0"; $rndkey1="%xmm1";
  214. $inout0="%xmm2"; $inout1="%xmm3";
  215. $inout2="%xmm4"; $inout3="%xmm5";
  216. $inout4="%xmm6"; $inout5="%xmm7";
  217. $inout6="%xmm8"; $inout7="%xmm9";
  218. $in2="%xmm6"; $in1="%xmm7"; # used in CBC decrypt, CTR, ...
  219. $in0="%xmm8"; $iv="%xmm9";
  220. # Inline version of internal aesni_[en|de]crypt1.
  221. #
  222. # Why folded loop? Because aes[enc|dec] is slow enough to accommodate
  223. # cycles which take care of loop variables...
  224. { my $sn;
  225. sub aesni_generate1 {
  226. my ($p,$key,$rounds,$inout,$ivec)=@_; $inout=$inout0 if (!defined($inout));
  227. ++$sn;
  228. $code.=<<___;
  229. $movkey ($key),$rndkey0
  230. $movkey 16($key),$rndkey1
  231. ___
  232. $code.=<<___ if (defined($ivec));
  233. xorps $rndkey0,$ivec
  234. lea 32($key),$key
  235. xorps $ivec,$inout
  236. ___
  237. $code.=<<___ if (!defined($ivec));
  238. lea 32($key),$key
  239. xorps $rndkey0,$inout
  240. ___
  241. $code.=<<___;
  242. .Loop_${p}1_$sn:
  243. aes${p} $rndkey1,$inout
  244. dec $rounds
  245. $movkey ($key),$rndkey1
  246. lea 16($key),$key
  247. jnz .Loop_${p}1_$sn # loop body is 16 bytes
  248. aes${p}last $rndkey1,$inout
  249. ___
  250. }}
  251. # void $PREFIX_[en|de]crypt (const void *inp,void *out,const AES_KEY *key);
  252. #
  253. { my ($inp,$out,$key) = @_4args;
  254. $code.=<<___;
  255. .globl ${PREFIX}_encrypt
  256. .type ${PREFIX}_encrypt,\@abi-omnipotent
  257. .align 16
  258. ${PREFIX}_encrypt:
  259. .cfi_startproc
  260. movups ($inp),$inout0 # load input
  261. mov 240($key),$rounds # key->rounds
  262. ___
  263. &aesni_generate1("enc",$key,$rounds);
  264. $code.=<<___;
  265. pxor $rndkey0,$rndkey0 # clear register bank
  266. pxor $rndkey1,$rndkey1
  267. movups $inout0,($out) # output
  268. pxor $inout0,$inout0
  269. ret
  270. .cfi_endproc
  271. .size ${PREFIX}_encrypt,.-${PREFIX}_encrypt
  272. .globl ${PREFIX}_decrypt
  273. .type ${PREFIX}_decrypt,\@abi-omnipotent
  274. .align 16
  275. ${PREFIX}_decrypt:
  276. .cfi_startproc
  277. movups ($inp),$inout0 # load input
  278. mov 240($key),$rounds # key->rounds
  279. ___
  280. &aesni_generate1("dec",$key,$rounds);
  281. $code.=<<___;
  282. pxor $rndkey0,$rndkey0 # clear register bank
  283. pxor $rndkey1,$rndkey1
  284. movups $inout0,($out) # output
  285. pxor $inout0,$inout0
  286. ret
  287. .cfi_endproc
  288. .size ${PREFIX}_decrypt, .-${PREFIX}_decrypt
  289. ___
  290. }
  291. # _aesni_[en|de]cryptN are private interfaces, N denotes interleave
  292. # factor. Why 3x subroutine were originally used in loops? Even though
  293. # aes[enc|dec] latency was originally 6, it could be scheduled only
  294. # every *2nd* cycle. Thus 3x interleave was the one providing optimal
  295. # utilization, i.e. when subroutine's throughput is virtually same as
  296. # of non-interleaved subroutine [for number of input blocks up to 3].
  297. # This is why it originally made no sense to implement 2x subroutine.
  298. # But times change and it became appropriate to spend extra 192 bytes
  299. # on 2x subroutine on Atom Silvermont account. For processors that
  300. # can schedule aes[enc|dec] every cycle optimal interleave factor
  301. # equals to corresponding instructions latency. 8x is optimal for
  302. # * Bridge and "super-optimal" for other Intel CPUs...
  303. sub aesni_generate2 {
  304. my $dir=shift;
  305. # As already mentioned it takes in $key and $rounds, which are *not*
  306. # preserved. $inout[0-1] is cipher/clear text...
  307. $code.=<<___;
  308. .type _aesni_${dir}rypt2,\@abi-omnipotent
  309. .align 16
  310. _aesni_${dir}rypt2:
  311. .cfi_startproc
  312. $movkey ($key),$rndkey0
  313. shl \$4,$rounds
  314. $movkey 16($key),$rndkey1
  315. xorps $rndkey0,$inout0
  316. xorps $rndkey0,$inout1
  317. $movkey 32($key),$rndkey0
  318. lea 32($key,$rounds),$key
  319. neg %rax # $rounds
  320. add \$16,%rax
  321. .L${dir}_loop2:
  322. aes${dir} $rndkey1,$inout0
  323. aes${dir} $rndkey1,$inout1
  324. $movkey ($key,%rax),$rndkey1
  325. add \$32,%rax
  326. aes${dir} $rndkey0,$inout0
  327. aes${dir} $rndkey0,$inout1
  328. $movkey -16($key,%rax),$rndkey0
  329. jnz .L${dir}_loop2
  330. aes${dir} $rndkey1,$inout0
  331. aes${dir} $rndkey1,$inout1
  332. aes${dir}last $rndkey0,$inout0
  333. aes${dir}last $rndkey0,$inout1
  334. ret
  335. .cfi_endproc
  336. .size _aesni_${dir}rypt2,.-_aesni_${dir}rypt2
  337. ___
  338. }
  339. sub aesni_generate3 {
  340. my $dir=shift;
  341. # As already mentioned it takes in $key and $rounds, which are *not*
  342. # preserved. $inout[0-2] is cipher/clear text...
  343. $code.=<<___;
  344. .type _aesni_${dir}rypt3,\@abi-omnipotent
  345. .align 16
  346. _aesni_${dir}rypt3:
  347. .cfi_startproc
  348. $movkey ($key),$rndkey0
  349. shl \$4,$rounds
  350. $movkey 16($key),$rndkey1
  351. xorps $rndkey0,$inout0
  352. xorps $rndkey0,$inout1
  353. xorps $rndkey0,$inout2
  354. $movkey 32($key),$rndkey0
  355. lea 32($key,$rounds),$key
  356. neg %rax # $rounds
  357. add \$16,%rax
  358. .L${dir}_loop3:
  359. aes${dir} $rndkey1,$inout0
  360. aes${dir} $rndkey1,$inout1
  361. aes${dir} $rndkey1,$inout2
  362. $movkey ($key,%rax),$rndkey1
  363. add \$32,%rax
  364. aes${dir} $rndkey0,$inout0
  365. aes${dir} $rndkey0,$inout1
  366. aes${dir} $rndkey0,$inout2
  367. $movkey -16($key,%rax),$rndkey0
  368. jnz .L${dir}_loop3
  369. aes${dir} $rndkey1,$inout0
  370. aes${dir} $rndkey1,$inout1
  371. aes${dir} $rndkey1,$inout2
  372. aes${dir}last $rndkey0,$inout0
  373. aes${dir}last $rndkey0,$inout1
  374. aes${dir}last $rndkey0,$inout2
  375. ret
  376. .cfi_endproc
  377. .size _aesni_${dir}rypt3,.-_aesni_${dir}rypt3
  378. ___
  379. }
  380. # 4x interleave is implemented to improve small block performance,
  381. # most notably [and naturally] 4 block by ~30%. One can argue that one
  382. # should have implemented 5x as well, but improvement would be <20%,
  383. # so it's not worth it...
  384. sub aesni_generate4 {
  385. my $dir=shift;
  386. # As already mentioned it takes in $key and $rounds, which are *not*
  387. # preserved. $inout[0-3] is cipher/clear text...
  388. $code.=<<___;
  389. .type _aesni_${dir}rypt4,\@abi-omnipotent
  390. .align 16
  391. _aesni_${dir}rypt4:
  392. .cfi_startproc
  393. $movkey ($key),$rndkey0
  394. shl \$4,$rounds
  395. $movkey 16($key),$rndkey1
  396. xorps $rndkey0,$inout0
  397. xorps $rndkey0,$inout1
  398. xorps $rndkey0,$inout2
  399. xorps $rndkey0,$inout3
  400. $movkey 32($key),$rndkey0
  401. lea 32($key,$rounds),$key
  402. neg %rax # $rounds
  403. .byte 0x0f,0x1f,0x00
  404. add \$16,%rax
  405. .L${dir}_loop4:
  406. aes${dir} $rndkey1,$inout0
  407. aes${dir} $rndkey1,$inout1
  408. aes${dir} $rndkey1,$inout2
  409. aes${dir} $rndkey1,$inout3
  410. $movkey ($key,%rax),$rndkey1
  411. add \$32,%rax
  412. aes${dir} $rndkey0,$inout0
  413. aes${dir} $rndkey0,$inout1
  414. aes${dir} $rndkey0,$inout2
  415. aes${dir} $rndkey0,$inout3
  416. $movkey -16($key,%rax),$rndkey0
  417. jnz .L${dir}_loop4
  418. aes${dir} $rndkey1,$inout0
  419. aes${dir} $rndkey1,$inout1
  420. aes${dir} $rndkey1,$inout2
  421. aes${dir} $rndkey1,$inout3
  422. aes${dir}last $rndkey0,$inout0
  423. aes${dir}last $rndkey0,$inout1
  424. aes${dir}last $rndkey0,$inout2
  425. aes${dir}last $rndkey0,$inout3
  426. ret
  427. .cfi_endproc
  428. .size _aesni_${dir}rypt4,.-_aesni_${dir}rypt4
  429. ___
  430. }
  431. sub aesni_generate6 {
  432. my $dir=shift;
  433. # As already mentioned it takes in $key and $rounds, which are *not*
  434. # preserved. $inout[0-5] is cipher/clear text...
  435. $code.=<<___;
  436. .type _aesni_${dir}rypt6,\@abi-omnipotent
  437. .align 16
  438. _aesni_${dir}rypt6:
  439. .cfi_startproc
  440. $movkey ($key),$rndkey0
  441. shl \$4,$rounds
  442. $movkey 16($key),$rndkey1
  443. xorps $rndkey0,$inout0
  444. pxor $rndkey0,$inout1
  445. pxor $rndkey0,$inout2
  446. aes${dir} $rndkey1,$inout0
  447. lea 32($key,$rounds),$key
  448. neg %rax # $rounds
  449. aes${dir} $rndkey1,$inout1
  450. pxor $rndkey0,$inout3
  451. pxor $rndkey0,$inout4
  452. aes${dir} $rndkey1,$inout2
  453. pxor $rndkey0,$inout5
  454. $movkey ($key,%rax),$rndkey0
  455. add \$16,%rax
  456. jmp .L${dir}_loop6_enter
  457. .align 16
  458. .L${dir}_loop6:
  459. aes${dir} $rndkey1,$inout0
  460. aes${dir} $rndkey1,$inout1
  461. aes${dir} $rndkey1,$inout2
  462. .L${dir}_loop6_enter:
  463. aes${dir} $rndkey1,$inout3
  464. aes${dir} $rndkey1,$inout4
  465. aes${dir} $rndkey1,$inout5
  466. $movkey ($key,%rax),$rndkey1
  467. add \$32,%rax
  468. aes${dir} $rndkey0,$inout0
  469. aes${dir} $rndkey0,$inout1
  470. aes${dir} $rndkey0,$inout2
  471. aes${dir} $rndkey0,$inout3
  472. aes${dir} $rndkey0,$inout4
  473. aes${dir} $rndkey0,$inout5
  474. $movkey -16($key,%rax),$rndkey0
  475. jnz .L${dir}_loop6
  476. aes${dir} $rndkey1,$inout0
  477. aes${dir} $rndkey1,$inout1
  478. aes${dir} $rndkey1,$inout2
  479. aes${dir} $rndkey1,$inout3
  480. aes${dir} $rndkey1,$inout4
  481. aes${dir} $rndkey1,$inout5
  482. aes${dir}last $rndkey0,$inout0
  483. aes${dir}last $rndkey0,$inout1
  484. aes${dir}last $rndkey0,$inout2
  485. aes${dir}last $rndkey0,$inout3
  486. aes${dir}last $rndkey0,$inout4
  487. aes${dir}last $rndkey0,$inout5
  488. ret
  489. .cfi_endproc
  490. .size _aesni_${dir}rypt6,.-_aesni_${dir}rypt6
  491. ___
  492. }
  493. sub aesni_generate8 {
  494. my $dir=shift;
  495. # As already mentioned it takes in $key and $rounds, which are *not*
  496. # preserved. $inout[0-7] is cipher/clear text...
  497. $code.=<<___;
  498. .type _aesni_${dir}rypt8,\@abi-omnipotent
  499. .align 16
  500. _aesni_${dir}rypt8:
  501. .cfi_startproc
  502. $movkey ($key),$rndkey0
  503. shl \$4,$rounds
  504. $movkey 16($key),$rndkey1
  505. xorps $rndkey0,$inout0
  506. xorps $rndkey0,$inout1
  507. pxor $rndkey0,$inout2
  508. pxor $rndkey0,$inout3
  509. pxor $rndkey0,$inout4
  510. lea 32($key,$rounds),$key
  511. neg %rax # $rounds
  512. aes${dir} $rndkey1,$inout0
  513. pxor $rndkey0,$inout5
  514. pxor $rndkey0,$inout6
  515. aes${dir} $rndkey1,$inout1
  516. pxor $rndkey0,$inout7
  517. $movkey ($key,%rax),$rndkey0
  518. add \$16,%rax
  519. jmp .L${dir}_loop8_inner
  520. .align 16
  521. .L${dir}_loop8:
  522. aes${dir} $rndkey1,$inout0
  523. aes${dir} $rndkey1,$inout1
  524. .L${dir}_loop8_inner:
  525. aes${dir} $rndkey1,$inout2
  526. aes${dir} $rndkey1,$inout3
  527. aes${dir} $rndkey1,$inout4
  528. aes${dir} $rndkey1,$inout5
  529. aes${dir} $rndkey1,$inout6
  530. aes${dir} $rndkey1,$inout7
  531. .L${dir}_loop8_enter:
  532. $movkey ($key,%rax),$rndkey1
  533. add \$32,%rax
  534. aes${dir} $rndkey0,$inout0
  535. aes${dir} $rndkey0,$inout1
  536. aes${dir} $rndkey0,$inout2
  537. aes${dir} $rndkey0,$inout3
  538. aes${dir} $rndkey0,$inout4
  539. aes${dir} $rndkey0,$inout5
  540. aes${dir} $rndkey0,$inout6
  541. aes${dir} $rndkey0,$inout7
  542. $movkey -16($key,%rax),$rndkey0
  543. jnz .L${dir}_loop8
  544. aes${dir} $rndkey1,$inout0
  545. aes${dir} $rndkey1,$inout1
  546. aes${dir} $rndkey1,$inout2
  547. aes${dir} $rndkey1,$inout3
  548. aes${dir} $rndkey1,$inout4
  549. aes${dir} $rndkey1,$inout5
  550. aes${dir} $rndkey1,$inout6
  551. aes${dir} $rndkey1,$inout7
  552. aes${dir}last $rndkey0,$inout0
  553. aes${dir}last $rndkey0,$inout1
  554. aes${dir}last $rndkey0,$inout2
  555. aes${dir}last $rndkey0,$inout3
  556. aes${dir}last $rndkey0,$inout4
  557. aes${dir}last $rndkey0,$inout5
  558. aes${dir}last $rndkey0,$inout6
  559. aes${dir}last $rndkey0,$inout7
  560. ret
  561. .cfi_endproc
  562. .size _aesni_${dir}rypt8,.-_aesni_${dir}rypt8
  563. ___
  564. }
  565. &aesni_generate2("enc") if ($PREFIX eq "aesni");
  566. &aesni_generate2("dec");
  567. &aesni_generate3("enc") if ($PREFIX eq "aesni");
  568. &aesni_generate3("dec");
  569. &aesni_generate4("enc") if ($PREFIX eq "aesni");
  570. &aesni_generate4("dec");
  571. &aesni_generate6("enc") if ($PREFIX eq "aesni");
  572. &aesni_generate6("dec");
  573. &aesni_generate8("enc") if ($PREFIX eq "aesni");
  574. &aesni_generate8("dec");
  575. if ($PREFIX eq "aesni") {
  576. ########################################################################
  577. # void aesni_ecb_encrypt (const void *in, void *out,
  578. # size_t length, const AES_KEY *key,
  579. # int enc);
  580. $code.=<<___;
  581. .globl aesni_ecb_encrypt
  582. .type aesni_ecb_encrypt,\@function,5
  583. .align 16
  584. aesni_ecb_encrypt:
  585. .cfi_startproc
  586. ___
  587. $code.=<<___ if ($win64);
  588. lea -0x58(%rsp),%rsp
  589. movaps %xmm6,(%rsp) # offload $inout4..7
  590. movaps %xmm7,0x10(%rsp)
  591. movaps %xmm8,0x20(%rsp)
  592. movaps %xmm9,0x30(%rsp)
  593. .Lecb_enc_body:
  594. ___
  595. $code.=<<___;
  596. and \$-16,$len # if ($len<16)
  597. jz .Lecb_ret # return
  598. mov 240($key),$rounds # key->rounds
  599. $movkey ($key),$rndkey0
  600. mov $key,$key_ # backup $key
  601. mov $rounds,$rnds_ # backup $rounds
  602. test %r8d,%r8d # 5th argument
  603. jz .Lecb_decrypt
  604. #--------------------------- ECB ENCRYPT ------------------------------#
  605. cmp \$0x80,$len # if ($len<8*16)
  606. jb .Lecb_enc_tail # short input
  607. movdqu ($inp),$inout0 # load 8 input blocks
  608. movdqu 0x10($inp),$inout1
  609. movdqu 0x20($inp),$inout2
  610. movdqu 0x30($inp),$inout3
  611. movdqu 0x40($inp),$inout4
  612. movdqu 0x50($inp),$inout5
  613. movdqu 0x60($inp),$inout6
  614. movdqu 0x70($inp),$inout7
  615. lea 0x80($inp),$inp # $inp+=8*16
  616. sub \$0x80,$len # $len-=8*16 (can be zero)
  617. jmp .Lecb_enc_loop8_enter
  618. .align 16
  619. .Lecb_enc_loop8:
  620. movups $inout0,($out) # store 8 output blocks
  621. mov $key_,$key # restore $key
  622. movdqu ($inp),$inout0 # load 8 input blocks
  623. mov $rnds_,$rounds # restore $rounds
  624. movups $inout1,0x10($out)
  625. movdqu 0x10($inp),$inout1
  626. movups $inout2,0x20($out)
  627. movdqu 0x20($inp),$inout2
  628. movups $inout3,0x30($out)
  629. movdqu 0x30($inp),$inout3
  630. movups $inout4,0x40($out)
  631. movdqu 0x40($inp),$inout4
  632. movups $inout5,0x50($out)
  633. movdqu 0x50($inp),$inout5
  634. movups $inout6,0x60($out)
  635. movdqu 0x60($inp),$inout6
  636. movups $inout7,0x70($out)
  637. lea 0x80($out),$out # $out+=8*16
  638. movdqu 0x70($inp),$inout7
  639. lea 0x80($inp),$inp # $inp+=8*16
  640. .Lecb_enc_loop8_enter:
  641. call _aesni_encrypt8
  642. sub \$0x80,$len
  643. jnc .Lecb_enc_loop8 # loop if $len-=8*16 didn't borrow
  644. movups $inout0,($out) # store 8 output blocks
  645. mov $key_,$key # restore $key
  646. movups $inout1,0x10($out)
  647. mov $rnds_,$rounds # restore $rounds
  648. movups $inout2,0x20($out)
  649. movups $inout3,0x30($out)
  650. movups $inout4,0x40($out)
  651. movups $inout5,0x50($out)
  652. movups $inout6,0x60($out)
  653. movups $inout7,0x70($out)
  654. lea 0x80($out),$out # $out+=8*16
  655. add \$0x80,$len # restore real remaining $len
  656. jz .Lecb_ret # done if ($len==0)
  657. .Lecb_enc_tail: # $len is less than 8*16
  658. movups ($inp),$inout0
  659. cmp \$0x20,$len
  660. jb .Lecb_enc_one
  661. movups 0x10($inp),$inout1
  662. je .Lecb_enc_two
  663. movups 0x20($inp),$inout2
  664. cmp \$0x40,$len
  665. jb .Lecb_enc_three
  666. movups 0x30($inp),$inout3
  667. je .Lecb_enc_four
  668. movups 0x40($inp),$inout4
  669. cmp \$0x60,$len
  670. jb .Lecb_enc_five
  671. movups 0x50($inp),$inout5
  672. je .Lecb_enc_six
  673. movdqu 0x60($inp),$inout6
  674. xorps $inout7,$inout7
  675. call _aesni_encrypt8
  676. movups $inout0,($out) # store 7 output blocks
  677. movups $inout1,0x10($out)
  678. movups $inout2,0x20($out)
  679. movups $inout3,0x30($out)
  680. movups $inout4,0x40($out)
  681. movups $inout5,0x50($out)
  682. movups $inout6,0x60($out)
  683. jmp .Lecb_ret
  684. .align 16
  685. .Lecb_enc_one:
  686. ___
  687. &aesni_generate1("enc",$key,$rounds);
  688. $code.=<<___;
  689. movups $inout0,($out) # store one output block
  690. jmp .Lecb_ret
  691. .align 16
  692. .Lecb_enc_two:
  693. call _aesni_encrypt2
  694. movups $inout0,($out) # store 2 output blocks
  695. movups $inout1,0x10($out)
  696. jmp .Lecb_ret
  697. .align 16
  698. .Lecb_enc_three:
  699. call _aesni_encrypt3
  700. movups $inout0,($out) # store 3 output blocks
  701. movups $inout1,0x10($out)
  702. movups $inout2,0x20($out)
  703. jmp .Lecb_ret
  704. .align 16
  705. .Lecb_enc_four:
  706. call _aesni_encrypt4
  707. movups $inout0,($out) # store 4 output blocks
  708. movups $inout1,0x10($out)
  709. movups $inout2,0x20($out)
  710. movups $inout3,0x30($out)
  711. jmp .Lecb_ret
  712. .align 16
  713. .Lecb_enc_five:
  714. xorps $inout5,$inout5
  715. call _aesni_encrypt6
  716. movups $inout0,($out) # store 5 output blocks
  717. movups $inout1,0x10($out)
  718. movups $inout2,0x20($out)
  719. movups $inout3,0x30($out)
  720. movups $inout4,0x40($out)
  721. jmp .Lecb_ret
  722. .align 16
  723. .Lecb_enc_six:
  724. call _aesni_encrypt6
  725. movups $inout0,($out) # store 6 output blocks
  726. movups $inout1,0x10($out)
  727. movups $inout2,0x20($out)
  728. movups $inout3,0x30($out)
  729. movups $inout4,0x40($out)
  730. movups $inout5,0x50($out)
  731. jmp .Lecb_ret
  732. #--------------------------- ECB DECRYPT ------------------------------#
  733. .align 16
  734. .Lecb_decrypt:
  735. cmp \$0x80,$len # if ($len<8*16)
  736. jb .Lecb_dec_tail # short input
  737. movdqu ($inp),$inout0 # load 8 input blocks
  738. movdqu 0x10($inp),$inout1
  739. movdqu 0x20($inp),$inout2
  740. movdqu 0x30($inp),$inout3
  741. movdqu 0x40($inp),$inout4
  742. movdqu 0x50($inp),$inout5
  743. movdqu 0x60($inp),$inout6
  744. movdqu 0x70($inp),$inout7
  745. lea 0x80($inp),$inp # $inp+=8*16
  746. sub \$0x80,$len # $len-=8*16 (can be zero)
  747. jmp .Lecb_dec_loop8_enter
  748. .align 16
  749. .Lecb_dec_loop8:
  750. movups $inout0,($out) # store 8 output blocks
  751. mov $key_,$key # restore $key
  752. movdqu ($inp),$inout0 # load 8 input blocks
  753. mov $rnds_,$rounds # restore $rounds
  754. movups $inout1,0x10($out)
  755. movdqu 0x10($inp),$inout1
  756. movups $inout2,0x20($out)
  757. movdqu 0x20($inp),$inout2
  758. movups $inout3,0x30($out)
  759. movdqu 0x30($inp),$inout3
  760. movups $inout4,0x40($out)
  761. movdqu 0x40($inp),$inout4
  762. movups $inout5,0x50($out)
  763. movdqu 0x50($inp),$inout5
  764. movups $inout6,0x60($out)
  765. movdqu 0x60($inp),$inout6
  766. movups $inout7,0x70($out)
  767. lea 0x80($out),$out # $out+=8*16
  768. movdqu 0x70($inp),$inout7
  769. lea 0x80($inp),$inp # $inp+=8*16
  770. .Lecb_dec_loop8_enter:
  771. call _aesni_decrypt8
  772. $movkey ($key_),$rndkey0
  773. sub \$0x80,$len
  774. jnc .Lecb_dec_loop8 # loop if $len-=8*16 didn't borrow
  775. movups $inout0,($out) # store 8 output blocks
  776. pxor $inout0,$inout0 # clear register bank
  777. mov $key_,$key # restore $key
  778. movups $inout1,0x10($out)
  779. pxor $inout1,$inout1
  780. mov $rnds_,$rounds # restore $rounds
  781. movups $inout2,0x20($out)
  782. pxor $inout2,$inout2
  783. movups $inout3,0x30($out)
  784. pxor $inout3,$inout3
  785. movups $inout4,0x40($out)
  786. pxor $inout4,$inout4
  787. movups $inout5,0x50($out)
  788. pxor $inout5,$inout5
  789. movups $inout6,0x60($out)
  790. pxor $inout6,$inout6
  791. movups $inout7,0x70($out)
  792. pxor $inout7,$inout7
  793. lea 0x80($out),$out # $out+=8*16
  794. add \$0x80,$len # restore real remaining $len
  795. jz .Lecb_ret # done if ($len==0)
  796. .Lecb_dec_tail:
  797. movups ($inp),$inout0
  798. cmp \$0x20,$len
  799. jb .Lecb_dec_one
  800. movups 0x10($inp),$inout1
  801. je .Lecb_dec_two
  802. movups 0x20($inp),$inout2
  803. cmp \$0x40,$len
  804. jb .Lecb_dec_three
  805. movups 0x30($inp),$inout3
  806. je .Lecb_dec_four
  807. movups 0x40($inp),$inout4
  808. cmp \$0x60,$len
  809. jb .Lecb_dec_five
  810. movups 0x50($inp),$inout5
  811. je .Lecb_dec_six
  812. movups 0x60($inp),$inout6
  813. $movkey ($key),$rndkey0
  814. xorps $inout7,$inout7
  815. call _aesni_decrypt8
  816. movups $inout0,($out) # store 7 output blocks
  817. pxor $inout0,$inout0 # clear register bank
  818. movups $inout1,0x10($out)
  819. pxor $inout1,$inout1
  820. movups $inout2,0x20($out)
  821. pxor $inout2,$inout2
  822. movups $inout3,0x30($out)
  823. pxor $inout3,$inout3
  824. movups $inout4,0x40($out)
  825. pxor $inout4,$inout4
  826. movups $inout5,0x50($out)
  827. pxor $inout5,$inout5
  828. movups $inout6,0x60($out)
  829. pxor $inout6,$inout6
  830. pxor $inout7,$inout7
  831. jmp .Lecb_ret
  832. .align 16
  833. .Lecb_dec_one:
  834. ___
  835. &aesni_generate1("dec",$key,$rounds);
  836. $code.=<<___;
  837. movups $inout0,($out) # store one output block
  838. pxor $inout0,$inout0 # clear register bank
  839. jmp .Lecb_ret
  840. .align 16
  841. .Lecb_dec_two:
  842. call _aesni_decrypt2
  843. movups $inout0,($out) # store 2 output blocks
  844. pxor $inout0,$inout0 # clear register bank
  845. movups $inout1,0x10($out)
  846. pxor $inout1,$inout1
  847. jmp .Lecb_ret
  848. .align 16
  849. .Lecb_dec_three:
  850. call _aesni_decrypt3
  851. movups $inout0,($out) # store 3 output blocks
  852. pxor $inout0,$inout0 # clear register bank
  853. movups $inout1,0x10($out)
  854. pxor $inout1,$inout1
  855. movups $inout2,0x20($out)
  856. pxor $inout2,$inout2
  857. jmp .Lecb_ret
  858. .align 16
  859. .Lecb_dec_four:
  860. call _aesni_decrypt4
  861. movups $inout0,($out) # store 4 output blocks
  862. pxor $inout0,$inout0 # clear register bank
  863. movups $inout1,0x10($out)
  864. pxor $inout1,$inout1
  865. movups $inout2,0x20($out)
  866. pxor $inout2,$inout2
  867. movups $inout3,0x30($out)
  868. pxor $inout3,$inout3
  869. jmp .Lecb_ret
  870. .align 16
  871. .Lecb_dec_five:
  872. xorps $inout5,$inout5
  873. call _aesni_decrypt6
  874. movups $inout0,($out) # store 5 output blocks
  875. pxor $inout0,$inout0 # clear register bank
  876. movups $inout1,0x10($out)
  877. pxor $inout1,$inout1
  878. movups $inout2,0x20($out)
  879. pxor $inout2,$inout2
  880. movups $inout3,0x30($out)
  881. pxor $inout3,$inout3
  882. movups $inout4,0x40($out)
  883. pxor $inout4,$inout4
  884. pxor $inout5,$inout5
  885. jmp .Lecb_ret
  886. .align 16
  887. .Lecb_dec_six:
  888. call _aesni_decrypt6
  889. movups $inout0,($out) # store 6 output blocks
  890. pxor $inout0,$inout0 # clear register bank
  891. movups $inout1,0x10($out)
  892. pxor $inout1,$inout1
  893. movups $inout2,0x20($out)
  894. pxor $inout2,$inout2
  895. movups $inout3,0x30($out)
  896. pxor $inout3,$inout3
  897. movups $inout4,0x40($out)
  898. pxor $inout4,$inout4
  899. movups $inout5,0x50($out)
  900. pxor $inout5,$inout5
  901. .Lecb_ret:
  902. xorps $rndkey0,$rndkey0 # %xmm0
  903. pxor $rndkey1,$rndkey1
  904. ___
  905. $code.=<<___ if ($win64);
  906. movaps (%rsp),%xmm6
  907. movaps %xmm0,(%rsp) # clear stack
  908. movaps 0x10(%rsp),%xmm7
  909. movaps %xmm0,0x10(%rsp)
  910. movaps 0x20(%rsp),%xmm8
  911. movaps %xmm0,0x20(%rsp)
  912. movaps 0x30(%rsp),%xmm9
  913. movaps %xmm0,0x30(%rsp)
  914. lea 0x58(%rsp),%rsp
  915. .Lecb_enc_ret:
  916. ___
  917. $code.=<<___;
  918. ret
  919. .cfi_endproc
  920. .size aesni_ecb_encrypt,.-aesni_ecb_encrypt
  921. ___
  922. {
  923. ######################################################################
  924. # void aesni_ccm64_[en|de]crypt_blocks (const void *in, void *out,
  925. # size_t blocks, const AES_KEY *key,
  926. # const char *ivec,char *cmac);
  927. #
  928. # Handles only complete blocks, operates on 64-bit counter and
  929. # does not update *ivec! Nor does it finalize CMAC value
  930. # (see engine/eng_aesni.c for details)
  931. #
  932. {
  933. my $cmac="%r9"; # 6th argument
  934. my $increment="%xmm9";
  935. my $iv="%xmm6";
  936. my $bswap_mask="%xmm7";
  937. $code.=<<___;
  938. .globl aesni_ccm64_encrypt_blocks
  939. .type aesni_ccm64_encrypt_blocks,\@function,6
  940. .align 16
  941. aesni_ccm64_encrypt_blocks:
  942. .cfi_startproc
  943. ___
  944. $code.=<<___ if ($win64);
  945. lea -0x58(%rsp),%rsp
  946. movaps %xmm6,(%rsp) # $iv
  947. movaps %xmm7,0x10(%rsp) # $bswap_mask
  948. movaps %xmm8,0x20(%rsp) # $in0
  949. movaps %xmm9,0x30(%rsp) # $increment
  950. .Lccm64_enc_body:
  951. ___
  952. $code.=<<___;
  953. mov 240($key),$rounds # key->rounds
  954. movdqu ($ivp),$iv
  955. movdqa .Lincrement64(%rip),$increment
  956. movdqa .Lbswap_mask(%rip),$bswap_mask
  957. shl \$4,$rounds
  958. mov \$16,$rnds_
  959. lea 0($key),$key_
  960. movdqu ($cmac),$inout1
  961. movdqa $iv,$inout0
  962. lea 32($key,$rounds),$key # end of key schedule
  963. pshufb $bswap_mask,$iv
  964. sub %rax,%r10 # twisted $rounds
  965. jmp .Lccm64_enc_outer
  966. .align 16
  967. .Lccm64_enc_outer:
  968. $movkey ($key_),$rndkey0
  969. mov %r10,%rax
  970. movups ($inp),$in0 # load inp
  971. xorps $rndkey0,$inout0 # counter
  972. $movkey 16($key_),$rndkey1
  973. xorps $in0,$rndkey0
  974. xorps $rndkey0,$inout1 # cmac^=inp
  975. $movkey 32($key_),$rndkey0
  976. .Lccm64_enc2_loop:
  977. aesenc $rndkey1,$inout0
  978. aesenc $rndkey1,$inout1
  979. $movkey ($key,%rax),$rndkey1
  980. add \$32,%rax
  981. aesenc $rndkey0,$inout0
  982. aesenc $rndkey0,$inout1
  983. $movkey -16($key,%rax),$rndkey0
  984. jnz .Lccm64_enc2_loop
  985. aesenc $rndkey1,$inout0
  986. aesenc $rndkey1,$inout1
  987. paddq $increment,$iv
  988. dec $len # $len-- ($len is in blocks)
  989. aesenclast $rndkey0,$inout0
  990. aesenclast $rndkey0,$inout1
  991. lea 16($inp),$inp
  992. xorps $inout0,$in0 # inp ^= E(iv)
  993. movdqa $iv,$inout0
  994. movups $in0,($out) # save output
  995. pshufb $bswap_mask,$inout0
  996. lea 16($out),$out # $out+=16
  997. jnz .Lccm64_enc_outer # loop if ($len!=0)
  998. pxor $rndkey0,$rndkey0 # clear register bank
  999. pxor $rndkey1,$rndkey1
  1000. pxor $inout0,$inout0
  1001. movups $inout1,($cmac) # store resulting mac
  1002. pxor $inout1,$inout1
  1003. pxor $in0,$in0
  1004. pxor $iv,$iv
  1005. ___
  1006. $code.=<<___ if ($win64);
  1007. movaps (%rsp),%xmm6
  1008. movaps %xmm0,(%rsp) # clear stack
  1009. movaps 0x10(%rsp),%xmm7
  1010. movaps %xmm0,0x10(%rsp)
  1011. movaps 0x20(%rsp),%xmm8
  1012. movaps %xmm0,0x20(%rsp)
  1013. movaps 0x30(%rsp),%xmm9
  1014. movaps %xmm0,0x30(%rsp)
  1015. lea 0x58(%rsp),%rsp
  1016. .Lccm64_enc_ret:
  1017. ___
  1018. $code.=<<___;
  1019. ret
  1020. .cfi_endproc
  1021. .size aesni_ccm64_encrypt_blocks,.-aesni_ccm64_encrypt_blocks
  1022. ___
  1023. ######################################################################
  1024. $code.=<<___;
  1025. .globl aesni_ccm64_decrypt_blocks
  1026. .type aesni_ccm64_decrypt_blocks,\@function,6
  1027. .align 16
  1028. aesni_ccm64_decrypt_blocks:
  1029. .cfi_startproc
  1030. ___
  1031. $code.=<<___ if ($win64);
  1032. lea -0x58(%rsp),%rsp
  1033. movaps %xmm6,(%rsp) # $iv
  1034. movaps %xmm7,0x10(%rsp) # $bswap_mask
  1035. movaps %xmm8,0x20(%rsp) # $in8
  1036. movaps %xmm9,0x30(%rsp) # $increment
  1037. .Lccm64_dec_body:
  1038. ___
  1039. $code.=<<___;
  1040. mov 240($key),$rounds # key->rounds
  1041. movups ($ivp),$iv
  1042. movdqu ($cmac),$inout1
  1043. movdqa .Lincrement64(%rip),$increment
  1044. movdqa .Lbswap_mask(%rip),$bswap_mask
  1045. movaps $iv,$inout0
  1046. mov $rounds,$rnds_
  1047. mov $key,$key_
  1048. pshufb $bswap_mask,$iv
  1049. ___
  1050. &aesni_generate1("enc",$key,$rounds);
  1051. $code.=<<___;
  1052. shl \$4,$rnds_
  1053. mov \$16,$rounds
  1054. movups ($inp),$in0 # load inp
  1055. paddq $increment,$iv
  1056. lea 16($inp),$inp # $inp+=16
  1057. sub %r10,%rax # twisted $rounds
  1058. lea 32($key_,$rnds_),$key # end of key schedule
  1059. mov %rax,%r10
  1060. jmp .Lccm64_dec_outer
  1061. .align 16
  1062. .Lccm64_dec_outer:
  1063. xorps $inout0,$in0 # inp ^= E(iv)
  1064. movdqa $iv,$inout0
  1065. movups $in0,($out) # save output
  1066. lea 16($out),$out # $out+=16
  1067. pshufb $bswap_mask,$inout0
  1068. sub \$1,$len # $len-- ($len is in blocks)
  1069. jz .Lccm64_dec_break # if ($len==0) break
  1070. $movkey ($key_),$rndkey0
  1071. mov %r10,%rax
  1072. $movkey 16($key_),$rndkey1
  1073. xorps $rndkey0,$in0
  1074. xorps $rndkey0,$inout0
  1075. xorps $in0,$inout1 # cmac^=out
  1076. $movkey 32($key_),$rndkey0
  1077. jmp .Lccm64_dec2_loop
  1078. .align 16
  1079. .Lccm64_dec2_loop:
  1080. aesenc $rndkey1,$inout0
  1081. aesenc $rndkey1,$inout1
  1082. $movkey ($key,%rax),$rndkey1
  1083. add \$32,%rax
  1084. aesenc $rndkey0,$inout0
  1085. aesenc $rndkey0,$inout1
  1086. $movkey -16($key,%rax),$rndkey0
  1087. jnz .Lccm64_dec2_loop
  1088. movups ($inp),$in0 # load input
  1089. paddq $increment,$iv
  1090. aesenc $rndkey1,$inout0
  1091. aesenc $rndkey1,$inout1
  1092. aesenclast $rndkey0,$inout0
  1093. aesenclast $rndkey0,$inout1
  1094. lea 16($inp),$inp # $inp+=16
  1095. jmp .Lccm64_dec_outer
  1096. .align 16
  1097. .Lccm64_dec_break:
  1098. #xorps $in0,$inout1 # cmac^=out
  1099. mov 240($key_),$rounds
  1100. ___
  1101. &aesni_generate1("enc",$key_,$rounds,$inout1,$in0);
  1102. $code.=<<___;
  1103. pxor $rndkey0,$rndkey0 # clear register bank
  1104. pxor $rndkey1,$rndkey1
  1105. pxor $inout0,$inout0
  1106. movups $inout1,($cmac) # store resulting mac
  1107. pxor $inout1,$inout1
  1108. pxor $in0,$in0
  1109. pxor $iv,$iv
  1110. ___
  1111. $code.=<<___ if ($win64);
  1112. movaps (%rsp),%xmm6
  1113. movaps %xmm0,(%rsp) # clear stack
  1114. movaps 0x10(%rsp),%xmm7
  1115. movaps %xmm0,0x10(%rsp)
  1116. movaps 0x20(%rsp),%xmm8
  1117. movaps %xmm0,0x20(%rsp)
  1118. movaps 0x30(%rsp),%xmm9
  1119. movaps %xmm0,0x30(%rsp)
  1120. lea 0x58(%rsp),%rsp
  1121. .Lccm64_dec_ret:
  1122. ___
  1123. $code.=<<___;
  1124. ret
  1125. .cfi_endproc
  1126. .size aesni_ccm64_decrypt_blocks,.-aesni_ccm64_decrypt_blocks
  1127. ___
  1128. }
  1129. ######################################################################
  1130. # void aesni_ctr32_encrypt_blocks (const void *in, void *out,
  1131. # size_t blocks, const AES_KEY *key,
  1132. # const char *ivec);
  1133. #
  1134. # Handles only complete blocks, operates on 32-bit counter and
  1135. # does not update *ivec! (see crypto/modes/ctr128.c for details)
  1136. #
  1137. # Overhaul based on suggestions from Shay Gueron and Vlad Krasnov,
  1138. # http://rt.openssl.org/Ticket/Display.html?id=3021&user=guest&pass=guest.
  1139. # Keywords are full unroll and modulo-schedule counter calculations
  1140. # with zero-round key xor.
  1141. {
  1142. my ($in0,$in1,$in2,$in3,$in4,$in5)=map("%xmm$_",(10..15));
  1143. my ($key0,$ctr)=("%ebp","${ivp}d");
  1144. my $frame_size = 0x80 + ($win64?160:0);
  1145. $code.=<<___;
  1146. .globl aesni_ctr32_encrypt_blocks
  1147. .type aesni_ctr32_encrypt_blocks,\@function,5
  1148. .align 16
  1149. aesni_ctr32_encrypt_blocks:
  1150. .cfi_startproc
  1151. cmp \$1,$len
  1152. jne .Lctr32_bulk
  1153. # handle single block without allocating stack frame,
  1154. # useful when handling edges
  1155. movups ($ivp),$inout0
  1156. movups ($inp),$inout1
  1157. mov 240($key),%edx # key->rounds
  1158. ___
  1159. &aesni_generate1("enc",$key,"%edx");
  1160. $code.=<<___;
  1161. pxor $rndkey0,$rndkey0 # clear register bank
  1162. pxor $rndkey1,$rndkey1
  1163. xorps $inout1,$inout0
  1164. pxor $inout1,$inout1
  1165. movups $inout0,($out)
  1166. xorps $inout0,$inout0
  1167. jmp .Lctr32_epilogue
  1168. .align 16
  1169. .Lctr32_bulk:
  1170. lea (%rsp),$key_ # use $key_ as frame pointer
  1171. .cfi_def_cfa_register $key_
  1172. push %rbp
  1173. .cfi_push %rbp
  1174. sub \$$frame_size,%rsp
  1175. and \$-16,%rsp # Linux kernel stack can be incorrectly seeded
  1176. ___
  1177. $code.=<<___ if ($win64);
  1178. movaps %xmm6,-0xa8($key_) # offload everything
  1179. movaps %xmm7,-0x98($key_)
  1180. movaps %xmm8,-0x88($key_)
  1181. movaps %xmm9,-0x78($key_)
  1182. movaps %xmm10,-0x68($key_)
  1183. movaps %xmm11,-0x58($key_)
  1184. movaps %xmm12,-0x48($key_)
  1185. movaps %xmm13,-0x38($key_)
  1186. movaps %xmm14,-0x28($key_)
  1187. movaps %xmm15,-0x18($key_)
  1188. .Lctr32_body:
  1189. ___
  1190. $code.=<<___;
  1191. # 8 16-byte words on top of stack are counter values
  1192. # xor-ed with zero-round key
  1193. movdqu ($ivp),$inout0
  1194. movdqu ($key),$rndkey0
  1195. mov 12($ivp),$ctr # counter LSB
  1196. pxor $rndkey0,$inout0
  1197. mov 12($key),$key0 # 0-round key LSB
  1198. movdqa $inout0,0x00(%rsp) # populate counter block
  1199. bswap $ctr
  1200. movdqa $inout0,$inout1
  1201. movdqa $inout0,$inout2
  1202. movdqa $inout0,$inout3
  1203. movdqa $inout0,0x40(%rsp)
  1204. movdqa $inout0,0x50(%rsp)
  1205. movdqa $inout0,0x60(%rsp)
  1206. mov %rdx,%r10 # about to borrow %rdx
  1207. movdqa $inout0,0x70(%rsp)
  1208. lea 1($ctr),%rax
  1209. lea 2($ctr),%rdx
  1210. bswap %eax
  1211. bswap %edx
  1212. xor $key0,%eax
  1213. xor $key0,%edx
  1214. pinsrd \$3,%eax,$inout1
  1215. lea 3($ctr),%rax
  1216. movdqa $inout1,0x10(%rsp)
  1217. pinsrd \$3,%edx,$inout2
  1218. bswap %eax
  1219. mov %r10,%rdx # restore %rdx
  1220. lea 4($ctr),%r10
  1221. movdqa $inout2,0x20(%rsp)
  1222. xor $key0,%eax
  1223. bswap %r10d
  1224. pinsrd \$3,%eax,$inout3
  1225. xor $key0,%r10d
  1226. movdqa $inout3,0x30(%rsp)
  1227. lea 5($ctr),%r9
  1228. mov %r10d,0x40+12(%rsp)
  1229. bswap %r9d
  1230. lea 6($ctr),%r10
  1231. mov 240($key),$rounds # key->rounds
  1232. xor $key0,%r9d
  1233. bswap %r10d
  1234. mov %r9d,0x50+12(%rsp)
  1235. xor $key0,%r10d
  1236. lea 7($ctr),%r9
  1237. mov %r10d,0x60+12(%rsp)
  1238. bswap %r9d
  1239. mov OPENSSL_ia32cap_P+4(%rip),%r10d
  1240. xor $key0,%r9d
  1241. and \$`1<<26|1<<22`,%r10d # isolate XSAVE+MOVBE
  1242. mov %r9d,0x70+12(%rsp)
  1243. $movkey 0x10($key),$rndkey1
  1244. movdqa 0x40(%rsp),$inout4
  1245. movdqa 0x50(%rsp),$inout5
  1246. cmp \$8,$len # $len is in blocks
  1247. jb .Lctr32_tail # short input if ($len<8)
  1248. sub \$6,$len # $len is biased by -6
  1249. cmp \$`1<<22`,%r10d # check for MOVBE without XSAVE
  1250. je .Lctr32_6x # [which denotes Atom Silvermont]
  1251. lea 0x80($key),$key # size optimization
  1252. sub \$2,$len # $len is biased by -8
  1253. jmp .Lctr32_loop8
  1254. .align 16
  1255. .Lctr32_6x:
  1256. shl \$4,$rounds
  1257. mov \$48,$rnds_
  1258. bswap $key0
  1259. lea 32($key,$rounds),$key # end of key schedule
  1260. sub %rax,%r10 # twisted $rounds
  1261. jmp .Lctr32_loop6
  1262. .align 16
  1263. .Lctr32_loop6:
  1264. add \$6,$ctr # next counter value
  1265. $movkey -48($key,$rnds_),$rndkey0
  1266. aesenc $rndkey1,$inout0
  1267. mov $ctr,%eax
  1268. xor $key0,%eax
  1269. aesenc $rndkey1,$inout1
  1270. movbe %eax,`0x00+12`(%rsp) # store next counter value
  1271. lea 1($ctr),%eax
  1272. aesenc $rndkey1,$inout2
  1273. xor $key0,%eax
  1274. movbe %eax,`0x10+12`(%rsp)
  1275. aesenc $rndkey1,$inout3
  1276. lea 2($ctr),%eax
  1277. xor $key0,%eax
  1278. aesenc $rndkey1,$inout4
  1279. movbe %eax,`0x20+12`(%rsp)
  1280. lea 3($ctr),%eax
  1281. aesenc $rndkey1,$inout5
  1282. $movkey -32($key,$rnds_),$rndkey1
  1283. xor $key0,%eax
  1284. aesenc $rndkey0,$inout0
  1285. movbe %eax,`0x30+12`(%rsp)
  1286. lea 4($ctr),%eax
  1287. aesenc $rndkey0,$inout1
  1288. xor $key0,%eax
  1289. movbe %eax,`0x40+12`(%rsp)
  1290. aesenc $rndkey0,$inout2
  1291. lea 5($ctr),%eax
  1292. xor $key0,%eax
  1293. aesenc $rndkey0,$inout3
  1294. movbe %eax,`0x50+12`(%rsp)
  1295. mov %r10,%rax # mov $rnds_,$rounds
  1296. aesenc $rndkey0,$inout4
  1297. aesenc $rndkey0,$inout5
  1298. $movkey -16($key,$rnds_),$rndkey0
  1299. call .Lenc_loop6
  1300. movdqu ($inp),$inout6 # load 6 input blocks
  1301. movdqu 0x10($inp),$inout7
  1302. movdqu 0x20($inp),$in0
  1303. movdqu 0x30($inp),$in1
  1304. movdqu 0x40($inp),$in2
  1305. movdqu 0x50($inp),$in3
  1306. lea 0x60($inp),$inp # $inp+=6*16
  1307. $movkey -64($key,$rnds_),$rndkey1
  1308. pxor $inout0,$inout6 # inp^=E(ctr)
  1309. movaps 0x00(%rsp),$inout0 # load next counter [xor-ed with 0 round]
  1310. pxor $inout1,$inout7
  1311. movaps 0x10(%rsp),$inout1
  1312. pxor $inout2,$in0
  1313. movaps 0x20(%rsp),$inout2
  1314. pxor $inout3,$in1
  1315. movaps 0x30(%rsp),$inout3
  1316. pxor $inout4,$in2
  1317. movaps 0x40(%rsp),$inout4
  1318. pxor $inout5,$in3
  1319. movaps 0x50(%rsp),$inout5
  1320. movdqu $inout6,($out) # store 6 output blocks
  1321. movdqu $inout7,0x10($out)
  1322. movdqu $in0,0x20($out)
  1323. movdqu $in1,0x30($out)
  1324. movdqu $in2,0x40($out)
  1325. movdqu $in3,0x50($out)
  1326. lea 0x60($out),$out # $out+=6*16
  1327. sub \$6,$len
  1328. jnc .Lctr32_loop6 # loop if $len-=6 didn't borrow
  1329. add \$6,$len # restore real remaining $len
  1330. jz .Lctr32_done # done if ($len==0)
  1331. lea -48($rnds_),$rounds
  1332. lea -80($key,$rnds_),$key # restore $key
  1333. neg $rounds
  1334. shr \$4,$rounds # restore $rounds
  1335. jmp .Lctr32_tail
  1336. .align 32
  1337. .Lctr32_loop8:
  1338. add \$8,$ctr # next counter value
  1339. movdqa 0x60(%rsp),$inout6
  1340. aesenc $rndkey1,$inout0
  1341. mov $ctr,%r9d
  1342. movdqa 0x70(%rsp),$inout7
  1343. aesenc $rndkey1,$inout1
  1344. bswap %r9d
  1345. $movkey 0x20-0x80($key),$rndkey0
  1346. aesenc $rndkey1,$inout2
  1347. xor $key0,%r9d
  1348. nop
  1349. aesenc $rndkey1,$inout3
  1350. mov %r9d,0x00+12(%rsp) # store next counter value
  1351. lea 1($ctr),%r9
  1352. aesenc $rndkey1,$inout4
  1353. aesenc $rndkey1,$inout5
  1354. aesenc $rndkey1,$inout6
  1355. aesenc $rndkey1,$inout7
  1356. $movkey 0x30-0x80($key),$rndkey1
  1357. ___
  1358. for($i=2;$i<8;$i++) {
  1359. my $rndkeyx = ($i&1)?$rndkey1:$rndkey0;
  1360. $code.=<<___;
  1361. bswap %r9d
  1362. aesenc $rndkeyx,$inout0
  1363. aesenc $rndkeyx,$inout1
  1364. xor $key0,%r9d
  1365. .byte 0x66,0x90
  1366. aesenc $rndkeyx,$inout2
  1367. aesenc $rndkeyx,$inout3
  1368. mov %r9d,`0x10*($i-1)`+12(%rsp)
  1369. lea $i($ctr),%r9
  1370. aesenc $rndkeyx,$inout4
  1371. aesenc $rndkeyx,$inout5
  1372. aesenc $rndkeyx,$inout6
  1373. aesenc $rndkeyx,$inout7
  1374. $movkey `0x20+0x10*$i`-0x80($key),$rndkeyx
  1375. ___
  1376. }
  1377. $code.=<<___;
  1378. bswap %r9d
  1379. aesenc $rndkey0,$inout0
  1380. aesenc $rndkey0,$inout1
  1381. aesenc $rndkey0,$inout2
  1382. xor $key0,%r9d
  1383. movdqu 0x00($inp),$in0 # start loading input
  1384. aesenc $rndkey0,$inout3
  1385. mov %r9d,0x70+12(%rsp)
  1386. cmp \$11,$rounds
  1387. aesenc $rndkey0,$inout4
  1388. aesenc $rndkey0,$inout5
  1389. aesenc $rndkey0,$inout6
  1390. aesenc $rndkey0,$inout7
  1391. $movkey 0xa0-0x80($key),$rndkey0
  1392. jb .Lctr32_enc_done
  1393. aesenc $rndkey1,$inout0
  1394. aesenc $rndkey1,$inout1
  1395. aesenc $rndkey1,$inout2
  1396. aesenc $rndkey1,$inout3
  1397. aesenc $rndkey1,$inout4
  1398. aesenc $rndkey1,$inout5
  1399. aesenc $rndkey1,$inout6
  1400. aesenc $rndkey1,$inout7
  1401. $movkey 0xb0-0x80($key),$rndkey1
  1402. aesenc $rndkey0,$inout0
  1403. aesenc $rndkey0,$inout1
  1404. aesenc $rndkey0,$inout2
  1405. aesenc $rndkey0,$inout3
  1406. aesenc $rndkey0,$inout4
  1407. aesenc $rndkey0,$inout5
  1408. aesenc $rndkey0,$inout6
  1409. aesenc $rndkey0,$inout7
  1410. $movkey 0xc0-0x80($key),$rndkey0
  1411. je .Lctr32_enc_done
  1412. aesenc $rndkey1,$inout0
  1413. aesenc $rndkey1,$inout1
  1414. aesenc $rndkey1,$inout2
  1415. aesenc $rndkey1,$inout3
  1416. aesenc $rndkey1,$inout4
  1417. aesenc $rndkey1,$inout5
  1418. aesenc $rndkey1,$inout6
  1419. aesenc $rndkey1,$inout7
  1420. $movkey 0xd0-0x80($key),$rndkey1
  1421. aesenc $rndkey0,$inout0
  1422. aesenc $rndkey0,$inout1
  1423. aesenc $rndkey0,$inout2
  1424. aesenc $rndkey0,$inout3
  1425. aesenc $rndkey0,$inout4
  1426. aesenc $rndkey0,$inout5
  1427. aesenc $rndkey0,$inout6
  1428. aesenc $rndkey0,$inout7
  1429. $movkey 0xe0-0x80($key),$rndkey0
  1430. jmp .Lctr32_enc_done
  1431. .align 16
  1432. .Lctr32_enc_done:
  1433. movdqu 0x10($inp),$in1
  1434. pxor $rndkey0,$in0 # input^=round[last]
  1435. movdqu 0x20($inp),$in2
  1436. pxor $rndkey0,$in1
  1437. movdqu 0x30($inp),$in3
  1438. pxor $rndkey0,$in2
  1439. movdqu 0x40($inp),$in4
  1440. pxor $rndkey0,$in3
  1441. movdqu 0x50($inp),$in5
  1442. pxor $rndkey0,$in4
  1443. pxor $rndkey0,$in5
  1444. aesenc $rndkey1,$inout0
  1445. aesenc $rndkey1,$inout1
  1446. aesenc $rndkey1,$inout2
  1447. aesenc $rndkey1,$inout3
  1448. aesenc $rndkey1,$inout4
  1449. aesenc $rndkey1,$inout5
  1450. aesenc $rndkey1,$inout6
  1451. aesenc $rndkey1,$inout7
  1452. movdqu 0x60($inp),$rndkey1 # borrow $rndkey1 for inp[6]
  1453. lea 0x80($inp),$inp # $inp+=8*16
  1454. aesenclast $in0,$inout0 # $inN is inp[N]^round[last]
  1455. pxor $rndkey0,$rndkey1 # borrowed $rndkey
  1456. movdqu 0x70-0x80($inp),$in0
  1457. aesenclast $in1,$inout1
  1458. pxor $rndkey0,$in0
  1459. movdqa 0x00(%rsp),$in1 # load next counter block
  1460. aesenclast $in2,$inout2
  1461. aesenclast $in3,$inout3
  1462. movdqa 0x10(%rsp),$in2
  1463. movdqa 0x20(%rsp),$in3
  1464. aesenclast $in4,$inout4
  1465. aesenclast $in5,$inout5
  1466. movdqa 0x30(%rsp),$in4
  1467. movdqa 0x40(%rsp),$in5
  1468. aesenclast $rndkey1,$inout6
  1469. movdqa 0x50(%rsp),$rndkey0
  1470. $movkey 0x10-0x80($key),$rndkey1#real 1st-round key
  1471. aesenclast $in0,$inout7
  1472. movups $inout0,($out) # store 8 output blocks
  1473. movdqa $in1,$inout0
  1474. movups $inout1,0x10($out)
  1475. movdqa $in2,$inout1
  1476. movups $inout2,0x20($out)
  1477. movdqa $in3,$inout2
  1478. movups $inout3,0x30($out)
  1479. movdqa $in4,$inout3
  1480. movups $inout4,0x40($out)
  1481. movdqa $in5,$inout4
  1482. movups $inout5,0x50($out)
  1483. movdqa $rndkey0,$inout5
  1484. movups $inout6,0x60($out)
  1485. movups $inout7,0x70($out)
  1486. lea 0x80($out),$out # $out+=8*16
  1487. sub \$8,$len
  1488. jnc .Lctr32_loop8 # loop if $len-=8 didn't borrow
  1489. add \$8,$len # restore real remaining $len
  1490. jz .Lctr32_done # done if ($len==0)
  1491. lea -0x80($key),$key
  1492. .Lctr32_tail:
  1493. # note that at this point $inout0..5 are populated with
  1494. # counter values xor-ed with 0-round key
  1495. lea 16($key),$key
  1496. cmp \$4,$len
  1497. jb .Lctr32_loop3
  1498. je .Lctr32_loop4
  1499. # if ($len>4) compute 7 E(counter)
  1500. shl \$4,$rounds
  1501. movdqa 0x60(%rsp),$inout6
  1502. pxor $inout7,$inout7
  1503. $movkey 16($key),$rndkey0
  1504. aesenc $rndkey1,$inout0
  1505. aesenc $rndkey1,$inout1
  1506. lea 32-16($key,$rounds),$key# prepare for .Lenc_loop8_enter
  1507. neg %rax
  1508. aesenc $rndkey1,$inout2
  1509. add \$16,%rax # prepare for .Lenc_loop8_enter
  1510. movups ($inp),$in0
  1511. aesenc $rndkey1,$inout3
  1512. aesenc $rndkey1,$inout4
  1513. movups 0x10($inp),$in1 # pre-load input
  1514. movups 0x20($inp),$in2
  1515. aesenc $rndkey1,$inout5
  1516. aesenc $rndkey1,$inout6
  1517. call .Lenc_loop8_enter
  1518. movdqu 0x30($inp),$in3
  1519. pxor $in0,$inout0
  1520. movdqu 0x40($inp),$in0
  1521. pxor $in1,$inout1
  1522. movdqu $inout0,($out) # store output
  1523. pxor $in2,$inout2
  1524. movdqu $inout1,0x10($out)
  1525. pxor $in3,$inout3
  1526. movdqu $inout2,0x20($out)
  1527. pxor $in0,$inout4
  1528. movdqu $inout3,0x30($out)
  1529. movdqu $inout4,0x40($out)
  1530. cmp \$6,$len
  1531. jb .Lctr32_done # $len was 5, stop store
  1532. movups 0x50($inp),$in1
  1533. xorps $in1,$inout5
  1534. movups $inout5,0x50($out)
  1535. je .Lctr32_done # $len was 6, stop store
  1536. movups 0x60($inp),$in2
  1537. xorps $in2,$inout6
  1538. movups $inout6,0x60($out)
  1539. jmp .Lctr32_done # $len was 7, stop store
  1540. .align 32
  1541. .Lctr32_loop4:
  1542. aesenc $rndkey1,$inout0
  1543. lea 16($key),$key
  1544. dec $rounds
  1545. aesenc $rndkey1,$inout1
  1546. aesenc $rndkey1,$inout2
  1547. aesenc $rndkey1,$inout3
  1548. $movkey ($key),$rndkey1
  1549. jnz .Lctr32_loop4
  1550. aesenclast $rndkey1,$inout0
  1551. aesenclast $rndkey1,$inout1
  1552. movups ($inp),$in0 # load input
  1553. movups 0x10($inp),$in1
  1554. aesenclast $rndkey1,$inout2
  1555. aesenclast $rndkey1,$inout3
  1556. movups 0x20($inp),$in2
  1557. movups 0x30($inp),$in3
  1558. xorps $in0,$inout0
  1559. movups $inout0,($out) # store output
  1560. xorps $in1,$inout1
  1561. movups $inout1,0x10($out)
  1562. pxor $in2,$inout2
  1563. movdqu $inout2,0x20($out)
  1564. pxor $in3,$inout3
  1565. movdqu $inout3,0x30($out)
  1566. jmp .Lctr32_done # $len was 4, stop store
  1567. .align 32
  1568. .Lctr32_loop3:
  1569. aesenc $rndkey1,$inout0
  1570. lea 16($key),$key
  1571. dec $rounds
  1572. aesenc $rndkey1,$inout1
  1573. aesenc $rndkey1,$inout2
  1574. $movkey ($key),$rndkey1
  1575. jnz .Lctr32_loop3
  1576. aesenclast $rndkey1,$inout0
  1577. aesenclast $rndkey1,$inout1
  1578. aesenclast $rndkey1,$inout2
  1579. movups ($inp),$in0 # load input
  1580. xorps $in0,$inout0
  1581. movups $inout0,($out) # store output
  1582. cmp \$2,$len
  1583. jb .Lctr32_done # $len was 1, stop store
  1584. movups 0x10($inp),$in1
  1585. xorps $in1,$inout1
  1586. movups $inout1,0x10($out)
  1587. je .Lctr32_done # $len was 2, stop store
  1588. movups 0x20($inp),$in2
  1589. xorps $in2,$inout2
  1590. movups $inout2,0x20($out) # $len was 3, stop store
  1591. .Lctr32_done:
  1592. xorps %xmm0,%xmm0 # clear register bank
  1593. xor $key0,$key0
  1594. pxor %xmm1,%xmm1
  1595. pxor %xmm2,%xmm2
  1596. pxor %xmm3,%xmm3
  1597. pxor %xmm4,%xmm4
  1598. pxor %xmm5,%xmm5
  1599. ___
  1600. $code.=<<___ if (!$win64);
  1601. pxor %xmm6,%xmm6
  1602. pxor %xmm7,%xmm7
  1603. movaps %xmm0,0x00(%rsp) # clear stack
  1604. pxor %xmm8,%xmm8
  1605. movaps %xmm0,0x10(%rsp)
  1606. pxor %xmm9,%xmm9
  1607. movaps %xmm0,0x20(%rsp)
  1608. pxor %xmm10,%xmm10
  1609. movaps %xmm0,0x30(%rsp)
  1610. pxor %xmm11,%xmm11
  1611. movaps %xmm0,0x40(%rsp)
  1612. pxor %xmm12,%xmm12
  1613. movaps %xmm0,0x50(%rsp)
  1614. pxor %xmm13,%xmm13
  1615. movaps %xmm0,0x60(%rsp)
  1616. pxor %xmm14,%xmm14
  1617. movaps %xmm0,0x70(%rsp)
  1618. pxor %xmm15,%xmm15
  1619. ___
  1620. $code.=<<___ if ($win64);
  1621. movaps -0xa8($key_),%xmm6
  1622. movaps %xmm0,-0xa8($key_) # clear stack
  1623. movaps -0x98($key_),%xmm7
  1624. movaps %xmm0,-0x98($key_)
  1625. movaps -0x88($key_),%xmm8
  1626. movaps %xmm0,-0x88($key_)
  1627. movaps -0x78($key_),%xmm9
  1628. movaps %xmm0,-0x78($key_)
  1629. movaps -0x68($key_),%xmm10
  1630. movaps %xmm0,-0x68($key_)
  1631. movaps -0x58($key_),%xmm11
  1632. movaps %xmm0,-0x58($key_)
  1633. movaps -0x48($key_),%xmm12
  1634. movaps %xmm0,-0x48($key_)
  1635. movaps -0x38($key_),%xmm13
  1636. movaps %xmm0,-0x38($key_)
  1637. movaps -0x28($key_),%xmm14
  1638. movaps %xmm0,-0x28($key_)
  1639. movaps -0x18($key_),%xmm15
  1640. movaps %xmm0,-0x18($key_)
  1641. movaps %xmm0,0x00(%rsp)
  1642. movaps %xmm0,0x10(%rsp)
  1643. movaps %xmm0,0x20(%rsp)
  1644. movaps %xmm0,0x30(%rsp)
  1645. movaps %xmm0,0x40(%rsp)
  1646. movaps %xmm0,0x50(%rsp)
  1647. movaps %xmm0,0x60(%rsp)
  1648. movaps %xmm0,0x70(%rsp)
  1649. ___
  1650. $code.=<<___;
  1651. mov -8($key_),%rbp
  1652. .cfi_restore %rbp
  1653. lea ($key_),%rsp
  1654. .cfi_def_cfa_register %rsp
  1655. .Lctr32_epilogue:
  1656. ret
  1657. .cfi_endproc
  1658. .size aesni_ctr32_encrypt_blocks,.-aesni_ctr32_encrypt_blocks
  1659. ___
  1660. }
  1661. ######################################################################
  1662. # void aesni_xts_[en|de]crypt(const char *inp,char *out,size_t len,
  1663. # const AES_KEY *key1, const AES_KEY *key2
  1664. # const unsigned char iv[16]);
  1665. #
  1666. {
  1667. my @tweak=map("%xmm$_",(10..15));
  1668. my ($twmask,$twres,$twtmp)=("%xmm8","%xmm9",@tweak[4]);
  1669. my ($key2,$ivp,$len_)=("%r8","%r9","%r9");
  1670. my $frame_size = 0x70 + ($win64?160:0);
  1671. my $key_ = "%rbp"; # override so that we can use %r11 as FP
  1672. $code.=<<___;
  1673. .globl aesni_xts_encrypt
  1674. .type aesni_xts_encrypt,\@function,6
  1675. .align 16
  1676. aesni_xts_encrypt:
  1677. .cfi_startproc
  1678. lea (%rsp),%r11 # frame pointer
  1679. .cfi_def_cfa_register %r11
  1680. push %rbp
  1681. .cfi_push %rbp
  1682. sub \$$frame_size,%rsp
  1683. and \$-16,%rsp # Linux kernel stack can be incorrectly seeded
  1684. ___
  1685. $code.=<<___ if ($win64);
  1686. movaps %xmm6,-0xa8(%r11) # offload everything
  1687. movaps %xmm7,-0x98(%r11)
  1688. movaps %xmm8,-0x88(%r11)
  1689. movaps %xmm9,-0x78(%r11)
  1690. movaps %xmm10,-0x68(%r11)
  1691. movaps %xmm11,-0x58(%r11)
  1692. movaps %xmm12,-0x48(%r11)
  1693. movaps %xmm13,-0x38(%r11)
  1694. movaps %xmm14,-0x28(%r11)
  1695. movaps %xmm15,-0x18(%r11)
  1696. .Lxts_enc_body:
  1697. ___
  1698. $code.=<<___;
  1699. movups ($ivp),$inout0 # load clear-text tweak
  1700. mov 240(%r8),$rounds # key2->rounds
  1701. mov 240($key),$rnds_ # key1->rounds
  1702. ___
  1703. # generate the tweak
  1704. &aesni_generate1("enc",$key2,$rounds,$inout0);
  1705. $code.=<<___;
  1706. $movkey ($key),$rndkey0 # zero round key
  1707. mov $key,$key_ # backup $key
  1708. mov $rnds_,$rounds # backup $rounds
  1709. shl \$4,$rnds_
  1710. mov $len,$len_ # backup $len
  1711. and \$-16,$len
  1712. $movkey 16($key,$rnds_),$rndkey1 # last round key
  1713. movdqa .Lxts_magic(%rip),$twmask
  1714. movdqa $inout0,@tweak[5]
  1715. pshufd \$0x5f,$inout0,$twres
  1716. pxor $rndkey0,$rndkey1
  1717. ___
  1718. # alternative tweak calculation algorithm is based on suggestions
  1719. # by Shay Gueron. psrad doesn't conflict with AES-NI instructions
  1720. # and should help in the future...
  1721. for ($i=0;$i<4;$i++) {
  1722. $code.=<<___;
  1723. movdqa $twres,$twtmp
  1724. paddd $twres,$twres
  1725. movdqa @tweak[5],@tweak[$i]
  1726. psrad \$31,$twtmp # broadcast upper bits
  1727. paddq @tweak[5],@tweak[5]
  1728. pand $twmask,$twtmp
  1729. pxor $rndkey0,@tweak[$i]
  1730. pxor $twtmp,@tweak[5]
  1731. ___
  1732. }
  1733. $code.=<<___;
  1734. movdqa @tweak[5],@tweak[4]
  1735. psrad \$31,$twres
  1736. paddq @tweak[5],@tweak[5]
  1737. pand $twmask,$twres
  1738. pxor $rndkey0,@tweak[4]
  1739. pxor $twres,@tweak[5]
  1740. movaps $rndkey1,0x60(%rsp) # save round[0]^round[last]
  1741. sub \$16*6,$len
  1742. jc .Lxts_enc_short # if $len-=6*16 borrowed
  1743. mov \$16+96,$rounds
  1744. lea 32($key_,$rnds_),$key # end of key schedule
  1745. sub %r10,%rax # twisted $rounds
  1746. $movkey 16($key_),$rndkey1
  1747. mov %rax,%r10 # backup twisted $rounds
  1748. lea .Lxts_magic(%rip),%r8
  1749. jmp .Lxts_enc_grandloop
  1750. .align 32
  1751. .Lxts_enc_grandloop:
  1752. movdqu `16*0`($inp),$inout0 # load input
  1753. movdqa $rndkey0,$twmask
  1754. movdqu `16*1`($inp),$inout1
  1755. pxor @tweak[0],$inout0 # input^=tweak^round[0]
  1756. movdqu `16*2`($inp),$inout2
  1757. pxor @tweak[1],$inout1
  1758. aesenc $rndkey1,$inout0
  1759. movdqu `16*3`($inp),$inout3
  1760. pxor @tweak[2],$inout2
  1761. aesenc $rndkey1,$inout1
  1762. movdqu `16*4`($inp),$inout4
  1763. pxor @tweak[3],$inout3
  1764. aesenc $rndkey1,$inout2
  1765. movdqu `16*5`($inp),$inout5
  1766. pxor @tweak[5],$twmask # round[0]^=tweak[5]
  1767. movdqa 0x60(%rsp),$twres # load round[0]^round[last]
  1768. pxor @tweak[4],$inout4
  1769. aesenc $rndkey1,$inout3
  1770. $movkey 32($key_),$rndkey0
  1771. lea `16*6`($inp),$inp
  1772. pxor $twmask,$inout5
  1773. pxor $twres,@tweak[0] # calculate tweaks^round[last]
  1774. aesenc $rndkey1,$inout4
  1775. pxor $twres,@tweak[1]
  1776. movdqa @tweak[0],`16*0`(%rsp) # put aside tweaks^round[last]
  1777. aesenc $rndkey1,$inout5
  1778. $movkey 48($key_),$rndkey1
  1779. pxor $twres,@tweak[2]
  1780. aesenc $rndkey0,$inout0
  1781. pxor $twres,@tweak[3]
  1782. movdqa @tweak[1],`16*1`(%rsp)
  1783. aesenc $rndkey0,$inout1
  1784. pxor $twres,@tweak[4]
  1785. movdqa @tweak[2],`16*2`(%rsp)
  1786. aesenc $rndkey0,$inout2
  1787. aesenc $rndkey0,$inout3
  1788. pxor $twres,$twmask
  1789. movdqa @tweak[4],`16*4`(%rsp)
  1790. aesenc $rndkey0,$inout4
  1791. aesenc $rndkey0,$inout5
  1792. $movkey 64($key_),$rndkey0
  1793. movdqa $twmask,`16*5`(%rsp)
  1794. pshufd \$0x5f,@tweak[5],$twres
  1795. jmp .Lxts_enc_loop6
  1796. .align 32
  1797. .Lxts_enc_loop6:
  1798. aesenc $rndkey1,$inout0
  1799. aesenc $rndkey1,$inout1
  1800. aesenc $rndkey1,$inout2
  1801. aesenc $rndkey1,$inout3
  1802. aesenc $rndkey1,$inout4
  1803. aesenc $rndkey1,$inout5
  1804. $movkey -64($key,%rax),$rndkey1
  1805. add \$32,%rax
  1806. aesenc $rndkey0,$inout0
  1807. aesenc $rndkey0,$inout1
  1808. aesenc $rndkey0,$inout2
  1809. aesenc $rndkey0,$inout3
  1810. aesenc $rndkey0,$inout4
  1811. aesenc $rndkey0,$inout5
  1812. $movkey -80($key,%rax),$rndkey0
  1813. jnz .Lxts_enc_loop6
  1814. movdqa (%r8),$twmask # start calculating next tweak
  1815. movdqa $twres,$twtmp
  1816. paddd $twres,$twres
  1817. aesenc $rndkey1,$inout0
  1818. paddq @tweak[5],@tweak[5]
  1819. psrad \$31,$twtmp
  1820. aesenc $rndkey1,$inout1
  1821. pand $twmask,$twtmp
  1822. $movkey ($key_),@tweak[0] # load round[0]
  1823. aesenc $rndkey1,$inout2
  1824. aesenc $rndkey1,$inout3
  1825. aesenc $rndkey1,$inout4
  1826. pxor $twtmp,@tweak[5]
  1827. movaps @tweak[0],@tweak[1] # copy round[0]
  1828. aesenc $rndkey1,$inout5
  1829. $movkey -64($key),$rndkey1
  1830. movdqa $twres,$twtmp
  1831. aesenc $rndkey0,$inout0
  1832. paddd $twres,$twres
  1833. pxor @tweak[5],@tweak[0]
  1834. aesenc $rndkey0,$inout1
  1835. psrad \$31,$twtmp
  1836. paddq @tweak[5],@tweak[5]
  1837. aesenc $rndkey0,$inout2
  1838. aesenc $rndkey0,$inout3
  1839. pand $twmask,$twtmp
  1840. movaps @tweak[1],@tweak[2]
  1841. aesenc $rndkey0,$inout4
  1842. pxor $twtmp,@tweak[5]
  1843. movdqa $twres,$twtmp
  1844. aesenc $rndkey0,$inout5
  1845. $movkey -48($key),$rndkey0
  1846. paddd $twres,$twres
  1847. aesenc $rndkey1,$inout0
  1848. pxor @tweak[5],@tweak[1]
  1849. psrad \$31,$twtmp
  1850. aesenc $rndkey1,$inout1
  1851. paddq @tweak[5],@tweak[5]
  1852. pand $twmask,$twtmp
  1853. aesenc $rndkey1,$inout2
  1854. aesenc $rndkey1,$inout3
  1855. movdqa @tweak[3],`16*3`(%rsp)
  1856. pxor $twtmp,@tweak[5]
  1857. aesenc $rndkey1,$inout4
  1858. movaps @tweak[2],@tweak[3]
  1859. movdqa $twres,$twtmp
  1860. aesenc $rndkey1,$inout5
  1861. $movkey -32($key),$rndkey1
  1862. paddd $twres,$twres
  1863. aesenc $rndkey0,$inout0
  1864. pxor @tweak[5],@tweak[2]
  1865. psrad \$31,$twtmp
  1866. aesenc $rndkey0,$inout1
  1867. paddq @tweak[5],@tweak[5]
  1868. pand $twmask,$twtmp
  1869. aesenc $rndkey0,$inout2
  1870. aesenc $rndkey0,$inout3
  1871. aesenc $rndkey0,$inout4
  1872. pxor $twtmp,@tweak[5]
  1873. movaps @tweak[3],@tweak[4]
  1874. aesenc $rndkey0,$inout5
  1875. movdqa $twres,$rndkey0
  1876. paddd $twres,$twres
  1877. aesenc $rndkey1,$inout0
  1878. pxor @tweak[5],@tweak[3]
  1879. psrad \$31,$rndkey0
  1880. aesenc $rndkey1,$inout1
  1881. paddq @tweak[5],@tweak[5]
  1882. pand $twmask,$rndkey0
  1883. aesenc $rndkey1,$inout2
  1884. aesenc $rndkey1,$inout3
  1885. pxor $rndkey0,@tweak[5]
  1886. $movkey ($key_),$rndkey0
  1887. aesenc $rndkey1,$inout4
  1888. aesenc $rndkey1,$inout5
  1889. $movkey 16($key_),$rndkey1
  1890. pxor @tweak[5],@tweak[4]
  1891. aesenclast `16*0`(%rsp),$inout0
  1892. psrad \$31,$twres
  1893. paddq @tweak[5],@tweak[5]
  1894. aesenclast `16*1`(%rsp),$inout1
  1895. aesenclast `16*2`(%rsp),$inout2
  1896. pand $twmask,$twres
  1897. mov %r10,%rax # restore $rounds
  1898. aesenclast `16*3`(%rsp),$inout3
  1899. aesenclast `16*4`(%rsp),$inout4
  1900. aesenclast `16*5`(%rsp),$inout5
  1901. pxor $twres,@tweak[5]
  1902. lea `16*6`($out),$out # $out+=6*16
  1903. movups $inout0,`-16*6`($out) # store 6 output blocks
  1904. movups $inout1,`-16*5`($out)
  1905. movups $inout2,`-16*4`($out)
  1906. movups $inout3,`-16*3`($out)
  1907. movups $inout4,`-16*2`($out)
  1908. movups $inout5,`-16*1`($out)
  1909. sub \$16*6,$len
  1910. jnc .Lxts_enc_grandloop # loop if $len-=6*16 didn't borrow
  1911. mov \$16+96,$rounds
  1912. sub $rnds_,$rounds
  1913. mov $key_,$key # restore $key
  1914. shr \$4,$rounds # restore original value
  1915. .Lxts_enc_short:
  1916. # at the point @tweak[0..5] are populated with tweak values
  1917. mov $rounds,$rnds_ # backup $rounds
  1918. pxor $rndkey0,@tweak[0]
  1919. add \$16*6,$len # restore real remaining $len
  1920. jz .Lxts_enc_done # done if ($len==0)
  1921. pxor $rndkey0,@tweak[1]
  1922. cmp \$0x20,$len
  1923. jb .Lxts_enc_one # $len is 1*16
  1924. pxor $rndkey0,@tweak[2]
  1925. je .Lxts_enc_two # $len is 2*16
  1926. pxor $rndkey0,@tweak[3]
  1927. cmp \$0x40,$len
  1928. jb .Lxts_enc_three # $len is 3*16
  1929. pxor $rndkey0,@tweak[4]
  1930. je .Lxts_enc_four # $len is 4*16
  1931. movdqu ($inp),$inout0 # $len is 5*16
  1932. movdqu 16*1($inp),$inout1
  1933. movdqu 16*2($inp),$inout2
  1934. pxor @tweak[0],$inout0
  1935. movdqu 16*3($inp),$inout3
  1936. pxor @tweak[1],$inout1
  1937. movdqu 16*4($inp),$inout4
  1938. lea 16*5($inp),$inp # $inp+=5*16
  1939. pxor @tweak[2],$inout2
  1940. pxor @tweak[3],$inout3
  1941. pxor @tweak[4],$inout4
  1942. pxor $inout5,$inout5
  1943. call _aesni_encrypt6
  1944. xorps @tweak[0],$inout0
  1945. movdqa @tweak[5],@tweak[0]
  1946. xorps @tweak[1],$inout1
  1947. xorps @tweak[2],$inout2
  1948. movdqu $inout0,($out) # store 5 output blocks
  1949. xorps @tweak[3],$inout3
  1950. movdqu $inout1,16*1($out)
  1951. xorps @tweak[4],$inout4
  1952. movdqu $inout2,16*2($out)
  1953. movdqu $inout3,16*3($out)
  1954. movdqu $inout4,16*4($out)
  1955. lea 16*5($out),$out # $out+=5*16
  1956. jmp .Lxts_enc_done
  1957. .align 16
  1958. .Lxts_enc_one:
  1959. movups ($inp),$inout0
  1960. lea 16*1($inp),$inp # inp+=1*16
  1961. xorps @tweak[0],$inout0
  1962. ___
  1963. &aesni_generate1("enc",$key,$rounds);
  1964. $code.=<<___;
  1965. xorps @tweak[0],$inout0
  1966. movdqa @tweak[1],@tweak[0]
  1967. movups $inout0,($out) # store one output block
  1968. lea 16*1($out),$out # $out+=1*16
  1969. jmp .Lxts_enc_done
  1970. .align 16
  1971. .Lxts_enc_two:
  1972. movups ($inp),$inout0
  1973. movups 16($inp),$inout1
  1974. lea 32($inp),$inp # $inp+=2*16
  1975. xorps @tweak[0],$inout0
  1976. xorps @tweak[1],$inout1
  1977. call _aesni_encrypt2
  1978. xorps @tweak[0],$inout0
  1979. movdqa @tweak[2],@tweak[0]
  1980. xorps @tweak[1],$inout1
  1981. movups $inout0,($out) # store 2 output blocks
  1982. movups $inout1,16*1($out)
  1983. lea 16*2($out),$out # $out+=2*16
  1984. jmp .Lxts_enc_done
  1985. .align 16
  1986. .Lxts_enc_three:
  1987. movups ($inp),$inout0
  1988. movups 16*1($inp),$inout1
  1989. movups 16*2($inp),$inout2
  1990. lea 16*3($inp),$inp # $inp+=3*16
  1991. xorps @tweak[0],$inout0
  1992. xorps @tweak[1],$inout1
  1993. xorps @tweak[2],$inout2
  1994. call _aesni_encrypt3
  1995. xorps @tweak[0],$inout0
  1996. movdqa @tweak[3],@tweak[0]
  1997. xorps @tweak[1],$inout1
  1998. xorps @tweak[2],$inout2
  1999. movups $inout0,($out) # store 3 output blocks
  2000. movups $inout1,16*1($out)
  2001. movups $inout2,16*2($out)
  2002. lea 16*3($out),$out # $out+=3*16
  2003. jmp .Lxts_enc_done
  2004. .align 16
  2005. .Lxts_enc_four:
  2006. movups ($inp),$inout0
  2007. movups 16*1($inp),$inout1
  2008. movups 16*2($inp),$inout2
  2009. xorps @tweak[0],$inout0
  2010. movups 16*3($inp),$inout3
  2011. lea 16*4($inp),$inp # $inp+=4*16
  2012. xorps @tweak[1],$inout1
  2013. xorps @tweak[2],$inout2
  2014. xorps @tweak[3],$inout3
  2015. call _aesni_encrypt4
  2016. pxor @tweak[0],$inout0
  2017. movdqa @tweak[4],@tweak[0]
  2018. pxor @tweak[1],$inout1
  2019. pxor @tweak[2],$inout2
  2020. movdqu $inout0,($out) # store 4 output blocks
  2021. pxor @tweak[3],$inout3
  2022. movdqu $inout1,16*1($out)
  2023. movdqu $inout2,16*2($out)
  2024. movdqu $inout3,16*3($out)
  2025. lea 16*4($out),$out # $out+=4*16
  2026. jmp .Lxts_enc_done
  2027. .align 16
  2028. .Lxts_enc_done:
  2029. and \$15,$len_ # see if $len%16 is 0
  2030. jz .Lxts_enc_ret
  2031. mov $len_,$len
  2032. .Lxts_enc_steal:
  2033. movzb ($inp),%eax # borrow $rounds ...
  2034. movzb -16($out),%ecx # ... and $key
  2035. lea 1($inp),$inp
  2036. mov %al,-16($out)
  2037. mov %cl,0($out)
  2038. lea 1($out),$out
  2039. sub \$1,$len
  2040. jnz .Lxts_enc_steal
  2041. sub $len_,$out # rewind $out
  2042. mov $key_,$key # restore $key
  2043. mov $rnds_,$rounds # restore $rounds
  2044. movups -16($out),$inout0
  2045. xorps @tweak[0],$inout0
  2046. ___
  2047. &aesni_generate1("enc",$key,$rounds);
  2048. $code.=<<___;
  2049. xorps @tweak[0],$inout0
  2050. movups $inout0,-16($out)
  2051. .Lxts_enc_ret:
  2052. xorps %xmm0,%xmm0 # clear register bank
  2053. pxor %xmm1,%xmm1
  2054. pxor %xmm2,%xmm2
  2055. pxor %xmm3,%xmm3
  2056. pxor %xmm4,%xmm4
  2057. pxor %xmm5,%xmm5
  2058. ___
  2059. $code.=<<___ if (!$win64);
  2060. pxor %xmm6,%xmm6
  2061. pxor %xmm7,%xmm7
  2062. movaps %xmm0,0x00(%rsp) # clear stack
  2063. pxor %xmm8,%xmm8
  2064. movaps %xmm0,0x10(%rsp)
  2065. pxor %xmm9,%xmm9
  2066. movaps %xmm0,0x20(%rsp)
  2067. pxor %xmm10,%xmm10
  2068. movaps %xmm0,0x30(%rsp)
  2069. pxor %xmm11,%xmm11
  2070. movaps %xmm0,0x40(%rsp)
  2071. pxor %xmm12,%xmm12
  2072. movaps %xmm0,0x50(%rsp)
  2073. pxor %xmm13,%xmm13
  2074. movaps %xmm0,0x60(%rsp)
  2075. pxor %xmm14,%xmm14
  2076. pxor %xmm15,%xmm15
  2077. ___
  2078. $code.=<<___ if ($win64);
  2079. movaps -0xa8(%r11),%xmm6
  2080. movaps %xmm0,-0xa8(%r11) # clear stack
  2081. movaps -0x98(%r11),%xmm7
  2082. movaps %xmm0,-0x98(%r11)
  2083. movaps -0x88(%r11),%xmm8
  2084. movaps %xmm0,-0x88(%r11)
  2085. movaps -0x78(%r11),%xmm9
  2086. movaps %xmm0,-0x78(%r11)
  2087. movaps -0x68(%r11),%xmm10
  2088. movaps %xmm0,-0x68(%r11)
  2089. movaps -0x58(%r11),%xmm11
  2090. movaps %xmm0,-0x58(%r11)
  2091. movaps -0x48(%r11),%xmm12
  2092. movaps %xmm0,-0x48(%r11)
  2093. movaps -0x38(%r11),%xmm13
  2094. movaps %xmm0,-0x38(%r11)
  2095. movaps -0x28(%r11),%xmm14
  2096. movaps %xmm0,-0x28(%r11)
  2097. movaps -0x18(%r11),%xmm15
  2098. movaps %xmm0,-0x18(%r11)
  2099. movaps %xmm0,0x00(%rsp)
  2100. movaps %xmm0,0x10(%rsp)
  2101. movaps %xmm0,0x20(%rsp)
  2102. movaps %xmm0,0x30(%rsp)
  2103. movaps %xmm0,0x40(%rsp)
  2104. movaps %xmm0,0x50(%rsp)
  2105. movaps %xmm0,0x60(%rsp)
  2106. ___
  2107. $code.=<<___;
  2108. mov -8(%r11),%rbp
  2109. .cfi_restore %rbp
  2110. lea (%r11),%rsp
  2111. .cfi_def_cfa_register %rsp
  2112. .Lxts_enc_epilogue:
  2113. ret
  2114. .cfi_endproc
  2115. .size aesni_xts_encrypt,.-aesni_xts_encrypt
  2116. ___
  2117. $code.=<<___;
  2118. .globl aesni_xts_decrypt
  2119. .type aesni_xts_decrypt,\@function,6
  2120. .align 16
  2121. aesni_xts_decrypt:
  2122. .cfi_startproc
  2123. lea (%rsp),%r11 # frame pointer
  2124. .cfi_def_cfa_register %r11
  2125. push %rbp
  2126. .cfi_push %rbp
  2127. sub \$$frame_size,%rsp
  2128. and \$-16,%rsp # Linux kernel stack can be incorrectly seeded
  2129. ___
  2130. $code.=<<___ if ($win64);
  2131. movaps %xmm6,-0xa8(%r11) # offload everything
  2132. movaps %xmm7,-0x98(%r11)
  2133. movaps %xmm8,-0x88(%r11)
  2134. movaps %xmm9,-0x78(%r11)
  2135. movaps %xmm10,-0x68(%r11)
  2136. movaps %xmm11,-0x58(%r11)
  2137. movaps %xmm12,-0x48(%r11)
  2138. movaps %xmm13,-0x38(%r11)
  2139. movaps %xmm14,-0x28(%r11)
  2140. movaps %xmm15,-0x18(%r11)
  2141. .Lxts_dec_body:
  2142. ___
  2143. $code.=<<___;
  2144. movups ($ivp),$inout0 # load clear-text tweak
  2145. mov 240($key2),$rounds # key2->rounds
  2146. mov 240($key),$rnds_ # key1->rounds
  2147. ___
  2148. # generate the tweak
  2149. &aesni_generate1("enc",$key2,$rounds,$inout0);
  2150. $code.=<<___;
  2151. xor %eax,%eax # if ($len%16) len-=16;
  2152. test \$15,$len
  2153. setnz %al
  2154. shl \$4,%rax
  2155. sub %rax,$len
  2156. $movkey ($key),$rndkey0 # zero round key
  2157. mov $key,$key_ # backup $key
  2158. mov $rnds_,$rounds # backup $rounds
  2159. shl \$4,$rnds_
  2160. mov $len,$len_ # backup $len
  2161. and \$-16,$len
  2162. $movkey 16($key,$rnds_),$rndkey1 # last round key
  2163. movdqa .Lxts_magic(%rip),$twmask
  2164. movdqa $inout0,@tweak[5]
  2165. pshufd \$0x5f,$inout0,$twres
  2166. pxor $rndkey0,$rndkey1
  2167. ___
  2168. for ($i=0;$i<4;$i++) {
  2169. $code.=<<___;
  2170. movdqa $twres,$twtmp
  2171. paddd $twres,$twres
  2172. movdqa @tweak[5],@tweak[$i]
  2173. psrad \$31,$twtmp # broadcast upper bits
  2174. paddq @tweak[5],@tweak[5]
  2175. pand $twmask,$twtmp
  2176. pxor $rndkey0,@tweak[$i]
  2177. pxor $twtmp,@tweak[5]
  2178. ___
  2179. }
  2180. $code.=<<___;
  2181. movdqa @tweak[5],@tweak[4]
  2182. psrad \$31,$twres
  2183. paddq @tweak[5],@tweak[5]
  2184. pand $twmask,$twres
  2185. pxor $rndkey0,@tweak[4]
  2186. pxor $twres,@tweak[5]
  2187. movaps $rndkey1,0x60(%rsp) # save round[0]^round[last]
  2188. sub \$16*6,$len
  2189. jc .Lxts_dec_short # if $len-=6*16 borrowed
  2190. mov \$16+96,$rounds
  2191. lea 32($key_,$rnds_),$key # end of key schedule
  2192. sub %r10,%rax # twisted $rounds
  2193. $movkey 16($key_),$rndkey1
  2194. mov %rax,%r10 # backup twisted $rounds
  2195. lea .Lxts_magic(%rip),%r8
  2196. jmp .Lxts_dec_grandloop
  2197. .align 32
  2198. .Lxts_dec_grandloop:
  2199. movdqu `16*0`($inp),$inout0 # load input
  2200. movdqa $rndkey0,$twmask
  2201. movdqu `16*1`($inp),$inout1
  2202. pxor @tweak[0],$inout0 # input^=tweak^round[0]
  2203. movdqu `16*2`($inp),$inout2
  2204. pxor @tweak[1],$inout1
  2205. aesdec $rndkey1,$inout0
  2206. movdqu `16*3`($inp),$inout3
  2207. pxor @tweak[2],$inout2
  2208. aesdec $rndkey1,$inout1
  2209. movdqu `16*4`($inp),$inout4
  2210. pxor @tweak[3],$inout3
  2211. aesdec $rndkey1,$inout2
  2212. movdqu `16*5`($inp),$inout5
  2213. pxor @tweak[5],$twmask # round[0]^=tweak[5]
  2214. movdqa 0x60(%rsp),$twres # load round[0]^round[last]
  2215. pxor @tweak[4],$inout4
  2216. aesdec $rndkey1,$inout3
  2217. $movkey 32($key_),$rndkey0
  2218. lea `16*6`($inp),$inp
  2219. pxor $twmask,$inout5
  2220. pxor $twres,@tweak[0] # calculate tweaks^round[last]
  2221. aesdec $rndkey1,$inout4
  2222. pxor $twres,@tweak[1]
  2223. movdqa @tweak[0],`16*0`(%rsp) # put aside tweaks^last round key
  2224. aesdec $rndkey1,$inout5
  2225. $movkey 48($key_),$rndkey1
  2226. pxor $twres,@tweak[2]
  2227. aesdec $rndkey0,$inout0
  2228. pxor $twres,@tweak[3]
  2229. movdqa @tweak[1],`16*1`(%rsp)
  2230. aesdec $rndkey0,$inout1
  2231. pxor $twres,@tweak[4]
  2232. movdqa @tweak[2],`16*2`(%rsp)
  2233. aesdec $rndkey0,$inout2
  2234. aesdec $rndkey0,$inout3
  2235. pxor $twres,$twmask
  2236. movdqa @tweak[4],`16*4`(%rsp)
  2237. aesdec $rndkey0,$inout4
  2238. aesdec $rndkey0,$inout5
  2239. $movkey 64($key_),$rndkey0
  2240. movdqa $twmask,`16*5`(%rsp)
  2241. pshufd \$0x5f,@tweak[5],$twres
  2242. jmp .Lxts_dec_loop6
  2243. .align 32
  2244. .Lxts_dec_loop6:
  2245. aesdec $rndkey1,$inout0
  2246. aesdec $rndkey1,$inout1
  2247. aesdec $rndkey1,$inout2
  2248. aesdec $rndkey1,$inout3
  2249. aesdec $rndkey1,$inout4
  2250. aesdec $rndkey1,$inout5
  2251. $movkey -64($key,%rax),$rndkey1
  2252. add \$32,%rax
  2253. aesdec $rndkey0,$inout0
  2254. aesdec $rndkey0,$inout1
  2255. aesdec $rndkey0,$inout2
  2256. aesdec $rndkey0,$inout3
  2257. aesdec $rndkey0,$inout4
  2258. aesdec $rndkey0,$inout5
  2259. $movkey -80($key,%rax),$rndkey0
  2260. jnz .Lxts_dec_loop6
  2261. movdqa (%r8),$twmask # start calculating next tweak
  2262. movdqa $twres,$twtmp
  2263. paddd $twres,$twres
  2264. aesdec $rndkey1,$inout0
  2265. paddq @tweak[5],@tweak[5]
  2266. psrad \$31,$twtmp
  2267. aesdec $rndkey1,$inout1
  2268. pand $twmask,$twtmp
  2269. $movkey ($key_),@tweak[0] # load round[0]
  2270. aesdec $rndkey1,$inout2
  2271. aesdec $rndkey1,$inout3
  2272. aesdec $rndkey1,$inout4
  2273. pxor $twtmp,@tweak[5]
  2274. movaps @tweak[0],@tweak[1] # copy round[0]
  2275. aesdec $rndkey1,$inout5
  2276. $movkey -64($key),$rndkey1
  2277. movdqa $twres,$twtmp
  2278. aesdec $rndkey0,$inout0
  2279. paddd $twres,$twres
  2280. pxor @tweak[5],@tweak[0]
  2281. aesdec $rndkey0,$inout1
  2282. psrad \$31,$twtmp
  2283. paddq @tweak[5],@tweak[5]
  2284. aesdec $rndkey0,$inout2
  2285. aesdec $rndkey0,$inout3
  2286. pand $twmask,$twtmp
  2287. movaps @tweak[1],@tweak[2]
  2288. aesdec $rndkey0,$inout4
  2289. pxor $twtmp,@tweak[5]
  2290. movdqa $twres,$twtmp
  2291. aesdec $rndkey0,$inout5
  2292. $movkey -48($key),$rndkey0
  2293. paddd $twres,$twres
  2294. aesdec $rndkey1,$inout0
  2295. pxor @tweak[5],@tweak[1]
  2296. psrad \$31,$twtmp
  2297. aesdec $rndkey1,$inout1
  2298. paddq @tweak[5],@tweak[5]
  2299. pand $twmask,$twtmp
  2300. aesdec $rndkey1,$inout2
  2301. aesdec $rndkey1,$inout3
  2302. movdqa @tweak[3],`16*3`(%rsp)
  2303. pxor $twtmp,@tweak[5]
  2304. aesdec $rndkey1,$inout4
  2305. movaps @tweak[2],@tweak[3]
  2306. movdqa $twres,$twtmp
  2307. aesdec $rndkey1,$inout5
  2308. $movkey -32($key),$rndkey1
  2309. paddd $twres,$twres
  2310. aesdec $rndkey0,$inout0
  2311. pxor @tweak[5],@tweak[2]
  2312. psrad \$31,$twtmp
  2313. aesdec $rndkey0,$inout1
  2314. paddq @tweak[5],@tweak[5]
  2315. pand $twmask,$twtmp
  2316. aesdec $rndkey0,$inout2
  2317. aesdec $rndkey0,$inout3
  2318. aesdec $rndkey0,$inout4
  2319. pxor $twtmp,@tweak[5]
  2320. movaps @tweak[3],@tweak[4]
  2321. aesdec $rndkey0,$inout5
  2322. movdqa $twres,$rndkey0
  2323. paddd $twres,$twres
  2324. aesdec $rndkey1,$inout0
  2325. pxor @tweak[5],@tweak[3]
  2326. psrad \$31,$rndkey0
  2327. aesdec $rndkey1,$inout1
  2328. paddq @tweak[5],@tweak[5]
  2329. pand $twmask,$rndkey0
  2330. aesdec $rndkey1,$inout2
  2331. aesdec $rndkey1,$inout3
  2332. pxor $rndkey0,@tweak[5]
  2333. $movkey ($key_),$rndkey0
  2334. aesdec $rndkey1,$inout4
  2335. aesdec $rndkey1,$inout5
  2336. $movkey 16($key_),$rndkey1
  2337. pxor @tweak[5],@tweak[4]
  2338. aesdeclast `16*0`(%rsp),$inout0
  2339. psrad \$31,$twres
  2340. paddq @tweak[5],@tweak[5]
  2341. aesdeclast `16*1`(%rsp),$inout1
  2342. aesdeclast `16*2`(%rsp),$inout2
  2343. pand $twmask,$twres
  2344. mov %r10,%rax # restore $rounds
  2345. aesdeclast `16*3`(%rsp),$inout3
  2346. aesdeclast `16*4`(%rsp),$inout4
  2347. aesdeclast `16*5`(%rsp),$inout5
  2348. pxor $twres,@tweak[5]
  2349. lea `16*6`($out),$out # $out+=6*16
  2350. movups $inout0,`-16*6`($out) # store 6 output blocks
  2351. movups $inout1,`-16*5`($out)
  2352. movups $inout2,`-16*4`($out)
  2353. movups $inout3,`-16*3`($out)
  2354. movups $inout4,`-16*2`($out)
  2355. movups $inout5,`-16*1`($out)
  2356. sub \$16*6,$len
  2357. jnc .Lxts_dec_grandloop # loop if $len-=6*16 didn't borrow
  2358. mov \$16+96,$rounds
  2359. sub $rnds_,$rounds
  2360. mov $key_,$key # restore $key
  2361. shr \$4,$rounds # restore original value
  2362. .Lxts_dec_short:
  2363. # at the point @tweak[0..5] are populated with tweak values
  2364. mov $rounds,$rnds_ # backup $rounds
  2365. pxor $rndkey0,@tweak[0]
  2366. pxor $rndkey0,@tweak[1]
  2367. add \$16*6,$len # restore real remaining $len
  2368. jz .Lxts_dec_done # done if ($len==0)
  2369. pxor $rndkey0,@tweak[2]
  2370. cmp \$0x20,$len
  2371. jb .Lxts_dec_one # $len is 1*16
  2372. pxor $rndkey0,@tweak[3]
  2373. je .Lxts_dec_two # $len is 2*16
  2374. pxor $rndkey0,@tweak[4]
  2375. cmp \$0x40,$len
  2376. jb .Lxts_dec_three # $len is 3*16
  2377. je .Lxts_dec_four # $len is 4*16
  2378. movdqu ($inp),$inout0 # $len is 5*16
  2379. movdqu 16*1($inp),$inout1
  2380. movdqu 16*2($inp),$inout2
  2381. pxor @tweak[0],$inout0
  2382. movdqu 16*3($inp),$inout3
  2383. pxor @tweak[1],$inout1
  2384. movdqu 16*4($inp),$inout4
  2385. lea 16*5($inp),$inp # $inp+=5*16
  2386. pxor @tweak[2],$inout2
  2387. pxor @tweak[3],$inout3
  2388. pxor @tweak[4],$inout4
  2389. call _aesni_decrypt6
  2390. xorps @tweak[0],$inout0
  2391. xorps @tweak[1],$inout1
  2392. xorps @tweak[2],$inout2
  2393. movdqu $inout0,($out) # store 5 output blocks
  2394. xorps @tweak[3],$inout3
  2395. movdqu $inout1,16*1($out)
  2396. xorps @tweak[4],$inout4
  2397. movdqu $inout2,16*2($out)
  2398. pxor $twtmp,$twtmp
  2399. movdqu $inout3,16*3($out)
  2400. pcmpgtd @tweak[5],$twtmp
  2401. movdqu $inout4,16*4($out)
  2402. lea 16*5($out),$out # $out+=5*16
  2403. pshufd \$0x13,$twtmp,@tweak[1] # $twres
  2404. and \$15,$len_
  2405. jz .Lxts_dec_ret
  2406. movdqa @tweak[5],@tweak[0]
  2407. paddq @tweak[5],@tweak[5] # psllq 1,$tweak
  2408. pand $twmask,@tweak[1] # isolate carry and residue
  2409. pxor @tweak[5],@tweak[1]
  2410. jmp .Lxts_dec_done2
  2411. .align 16
  2412. .Lxts_dec_one:
  2413. movups ($inp),$inout0
  2414. lea 16*1($inp),$inp # $inp+=1*16
  2415. xorps @tweak[0],$inout0
  2416. ___
  2417. &aesni_generate1("dec",$key,$rounds);
  2418. $code.=<<___;
  2419. xorps @tweak[0],$inout0
  2420. movdqa @tweak[1],@tweak[0]
  2421. movups $inout0,($out) # store one output block
  2422. movdqa @tweak[2],@tweak[1]
  2423. lea 16*1($out),$out # $out+=1*16
  2424. jmp .Lxts_dec_done
  2425. .align 16
  2426. .Lxts_dec_two:
  2427. movups ($inp),$inout0
  2428. movups 16($inp),$inout1
  2429. lea 32($inp),$inp # $inp+=2*16
  2430. xorps @tweak[0],$inout0
  2431. xorps @tweak[1],$inout1
  2432. call _aesni_decrypt2
  2433. xorps @tweak[0],$inout0
  2434. movdqa @tweak[2],@tweak[0]
  2435. xorps @tweak[1],$inout1
  2436. movdqa @tweak[3],@tweak[1]
  2437. movups $inout0,($out) # store 2 output blocks
  2438. movups $inout1,16*1($out)
  2439. lea 16*2($out),$out # $out+=2*16
  2440. jmp .Lxts_dec_done
  2441. .align 16
  2442. .Lxts_dec_three:
  2443. movups ($inp),$inout0
  2444. movups 16*1($inp),$inout1
  2445. movups 16*2($inp),$inout2
  2446. lea 16*3($inp),$inp # $inp+=3*16
  2447. xorps @tweak[0],$inout0
  2448. xorps @tweak[1],$inout1
  2449. xorps @tweak[2],$inout2
  2450. call _aesni_decrypt3
  2451. xorps @tweak[0],$inout0
  2452. movdqa @tweak[3],@tweak[0]
  2453. xorps @tweak[1],$inout1
  2454. movdqa @tweak[4],@tweak[1]
  2455. xorps @tweak[2],$inout2
  2456. movups $inout0,($out) # store 3 output blocks
  2457. movups $inout1,16*1($out)
  2458. movups $inout2,16*2($out)
  2459. lea 16*3($out),$out # $out+=3*16
  2460. jmp .Lxts_dec_done
  2461. .align 16
  2462. .Lxts_dec_four:
  2463. movups ($inp),$inout0
  2464. movups 16*1($inp),$inout1
  2465. movups 16*2($inp),$inout2
  2466. xorps @tweak[0],$inout0
  2467. movups 16*3($inp),$inout3
  2468. lea 16*4($inp),$inp # $inp+=4*16
  2469. xorps @tweak[1],$inout1
  2470. xorps @tweak[2],$inout2
  2471. xorps @tweak[3],$inout3
  2472. call _aesni_decrypt4
  2473. pxor @tweak[0],$inout0
  2474. movdqa @tweak[4],@tweak[0]
  2475. pxor @tweak[1],$inout1
  2476. movdqa @tweak[5],@tweak[1]
  2477. pxor @tweak[2],$inout2
  2478. movdqu $inout0,($out) # store 4 output blocks
  2479. pxor @tweak[3],$inout3
  2480. movdqu $inout1,16*1($out)
  2481. movdqu $inout2,16*2($out)
  2482. movdqu $inout3,16*3($out)
  2483. lea 16*4($out),$out # $out+=4*16
  2484. jmp .Lxts_dec_done
  2485. .align 16
  2486. .Lxts_dec_done:
  2487. and \$15,$len_ # see if $len%16 is 0
  2488. jz .Lxts_dec_ret
  2489. .Lxts_dec_done2:
  2490. mov $len_,$len
  2491. mov $key_,$key # restore $key
  2492. mov $rnds_,$rounds # restore $rounds
  2493. movups ($inp),$inout0
  2494. xorps @tweak[1],$inout0
  2495. ___
  2496. &aesni_generate1("dec",$key,$rounds);
  2497. $code.=<<___;
  2498. xorps @tweak[1],$inout0
  2499. movups $inout0,($out)
  2500. .Lxts_dec_steal:
  2501. movzb 16($inp),%eax # borrow $rounds ...
  2502. movzb ($out),%ecx # ... and $key
  2503. lea 1($inp),$inp
  2504. mov %al,($out)
  2505. mov %cl,16($out)
  2506. lea 1($out),$out
  2507. sub \$1,$len
  2508. jnz .Lxts_dec_steal
  2509. sub $len_,$out # rewind $out
  2510. mov $key_,$key # restore $key
  2511. mov $rnds_,$rounds # restore $rounds
  2512. movups ($out),$inout0
  2513. xorps @tweak[0],$inout0
  2514. ___
  2515. &aesni_generate1("dec",$key,$rounds);
  2516. $code.=<<___;
  2517. xorps @tweak[0],$inout0
  2518. movups $inout0,($out)
  2519. .Lxts_dec_ret:
  2520. xorps %xmm0,%xmm0 # clear register bank
  2521. pxor %xmm1,%xmm1
  2522. pxor %xmm2,%xmm2
  2523. pxor %xmm3,%xmm3
  2524. pxor %xmm4,%xmm4
  2525. pxor %xmm5,%xmm5
  2526. ___
  2527. $code.=<<___ if (!$win64);
  2528. pxor %xmm6,%xmm6
  2529. pxor %xmm7,%xmm7
  2530. movaps %xmm0,0x00(%rsp) # clear stack
  2531. pxor %xmm8,%xmm8
  2532. movaps %xmm0,0x10(%rsp)
  2533. pxor %xmm9,%xmm9
  2534. movaps %xmm0,0x20(%rsp)
  2535. pxor %xmm10,%xmm10
  2536. movaps %xmm0,0x30(%rsp)
  2537. pxor %xmm11,%xmm11
  2538. movaps %xmm0,0x40(%rsp)
  2539. pxor %xmm12,%xmm12
  2540. movaps %xmm0,0x50(%rsp)
  2541. pxor %xmm13,%xmm13
  2542. movaps %xmm0,0x60(%rsp)
  2543. pxor %xmm14,%xmm14
  2544. pxor %xmm15,%xmm15
  2545. ___
  2546. $code.=<<___ if ($win64);
  2547. movaps -0xa8(%r11),%xmm6
  2548. movaps %xmm0,-0xa8(%r11) # clear stack
  2549. movaps -0x98(%r11),%xmm7
  2550. movaps %xmm0,-0x98(%r11)
  2551. movaps -0x88(%r11),%xmm8
  2552. movaps %xmm0,-0x88(%r11)
  2553. movaps -0x78(%r11),%xmm9
  2554. movaps %xmm0,-0x78(%r11)
  2555. movaps -0x68(%r11),%xmm10
  2556. movaps %xmm0,-0x68(%r11)
  2557. movaps -0x58(%r11),%xmm11
  2558. movaps %xmm0,-0x58(%r11)
  2559. movaps -0x48(%r11),%xmm12
  2560. movaps %xmm0,-0x48(%r11)
  2561. movaps -0x38(%r11),%xmm13
  2562. movaps %xmm0,-0x38(%r11)
  2563. movaps -0x28(%r11),%xmm14
  2564. movaps %xmm0,-0x28(%r11)
  2565. movaps -0x18(%r11),%xmm15
  2566. movaps %xmm0,-0x18(%r11)
  2567. movaps %xmm0,0x00(%rsp)
  2568. movaps %xmm0,0x10(%rsp)
  2569. movaps %xmm0,0x20(%rsp)
  2570. movaps %xmm0,0x30(%rsp)
  2571. movaps %xmm0,0x40(%rsp)
  2572. movaps %xmm0,0x50(%rsp)
  2573. movaps %xmm0,0x60(%rsp)
  2574. ___
  2575. $code.=<<___;
  2576. mov -8(%r11),%rbp
  2577. .cfi_restore %rbp
  2578. lea (%r11),%rsp
  2579. .cfi_def_cfa_register %rsp
  2580. .Lxts_dec_epilogue:
  2581. ret
  2582. .cfi_endproc
  2583. .size aesni_xts_decrypt,.-aesni_xts_decrypt
  2584. ___
  2585. }
  2586. ######################################################################
  2587. # void aesni_ocb_[en|de]crypt(const char *inp, char *out, size_t blocks,
  2588. # const AES_KEY *key, unsigned int start_block_num,
  2589. # unsigned char offset_i[16], const unsigned char L_[][16],
  2590. # unsigned char checksum[16]);
  2591. #
  2592. {
  2593. my @offset=map("%xmm$_",(10..15));
  2594. my ($checksum,$rndkey0l)=("%xmm8","%xmm9");
  2595. my ($block_num,$offset_p)=("%r8","%r9"); # 5th and 6th arguments
  2596. my ($L_p,$checksum_p) = ("%rbx","%rbp");
  2597. my ($i1,$i3,$i5) = ("%r12","%r13","%r14");
  2598. my $seventh_arg = $win64 ? 56 : 8;
  2599. my $blocks = $len;
  2600. $code.=<<___;
  2601. .globl aesni_ocb_encrypt
  2602. .type aesni_ocb_encrypt,\@function,6
  2603. .align 32
  2604. aesni_ocb_encrypt:
  2605. .cfi_startproc
  2606. lea (%rsp),%rax
  2607. push %rbx
  2608. .cfi_push %rbx
  2609. push %rbp
  2610. .cfi_push %rbp
  2611. push %r12
  2612. .cfi_push %r12
  2613. push %r13
  2614. .cfi_push %r13
  2615. push %r14
  2616. .cfi_push %r14
  2617. ___
  2618. $code.=<<___ if ($win64);
  2619. lea -0xa0(%rsp),%rsp
  2620. movaps %xmm6,0x00(%rsp) # offload everything
  2621. movaps %xmm7,0x10(%rsp)
  2622. movaps %xmm8,0x20(%rsp)
  2623. movaps %xmm9,0x30(%rsp)
  2624. movaps %xmm10,0x40(%rsp)
  2625. movaps %xmm11,0x50(%rsp)
  2626. movaps %xmm12,0x60(%rsp)
  2627. movaps %xmm13,0x70(%rsp)
  2628. movaps %xmm14,0x80(%rsp)
  2629. movaps %xmm15,0x90(%rsp)
  2630. .Locb_enc_body:
  2631. ___
  2632. $code.=<<___;
  2633. mov $seventh_arg(%rax),$L_p # 7th argument
  2634. mov $seventh_arg+8(%rax),$checksum_p# 8th argument
  2635. mov 240($key),$rnds_
  2636. mov $key,$key_
  2637. shl \$4,$rnds_
  2638. $movkey ($key),$rndkey0l # round[0]
  2639. $movkey 16($key,$rnds_),$rndkey1 # round[last]
  2640. movdqu ($offset_p),@offset[5] # load last offset_i
  2641. pxor $rndkey1,$rndkey0l # round[0] ^ round[last]
  2642. pxor $rndkey1,@offset[5] # offset_i ^ round[last]
  2643. mov \$16+32,$rounds
  2644. lea 32($key_,$rnds_),$key
  2645. $movkey 16($key_),$rndkey1 # round[1]
  2646. sub %r10,%rax # twisted $rounds
  2647. mov %rax,%r10 # backup twisted $rounds
  2648. movdqu ($L_p),@offset[0] # L_0 for all odd-numbered blocks
  2649. movdqu ($checksum_p),$checksum # load checksum
  2650. test \$1,$block_num # is first block number odd?
  2651. jnz .Locb_enc_odd
  2652. bsf $block_num,$i1
  2653. add \$1,$block_num
  2654. shl \$4,$i1
  2655. movdqu ($L_p,$i1),$inout5 # borrow
  2656. movdqu ($inp),$inout0
  2657. lea 16($inp),$inp
  2658. call __ocb_encrypt1
  2659. movdqa $inout5,@offset[5]
  2660. movups $inout0,($out)
  2661. lea 16($out),$out
  2662. sub \$1,$blocks
  2663. jz .Locb_enc_done
  2664. .Locb_enc_odd:
  2665. lea 1($block_num),$i1 # even-numbered blocks
  2666. lea 3($block_num),$i3
  2667. lea 5($block_num),$i5
  2668. lea 6($block_num),$block_num
  2669. bsf $i1,$i1 # ntz(block)
  2670. bsf $i3,$i3
  2671. bsf $i5,$i5
  2672. shl \$4,$i1 # ntz(block) -> table offset
  2673. shl \$4,$i3
  2674. shl \$4,$i5
  2675. sub \$6,$blocks
  2676. jc .Locb_enc_short
  2677. jmp .Locb_enc_grandloop
  2678. .align 32
  2679. .Locb_enc_grandloop:
  2680. movdqu `16*0`($inp),$inout0 # load input
  2681. movdqu `16*1`($inp),$inout1
  2682. movdqu `16*2`($inp),$inout2
  2683. movdqu `16*3`($inp),$inout3
  2684. movdqu `16*4`($inp),$inout4
  2685. movdqu `16*5`($inp),$inout5
  2686. lea `16*6`($inp),$inp
  2687. call __ocb_encrypt6
  2688. movups $inout0,`16*0`($out) # store output
  2689. movups $inout1,`16*1`($out)
  2690. movups $inout2,`16*2`($out)
  2691. movups $inout3,`16*3`($out)
  2692. movups $inout4,`16*4`($out)
  2693. movups $inout5,`16*5`($out)
  2694. lea `16*6`($out),$out
  2695. sub \$6,$blocks
  2696. jnc .Locb_enc_grandloop
  2697. .Locb_enc_short:
  2698. add \$6,$blocks
  2699. jz .Locb_enc_done
  2700. movdqu `16*0`($inp),$inout0
  2701. cmp \$2,$blocks
  2702. jb .Locb_enc_one
  2703. movdqu `16*1`($inp),$inout1
  2704. je .Locb_enc_two
  2705. movdqu `16*2`($inp),$inout2
  2706. cmp \$4,$blocks
  2707. jb .Locb_enc_three
  2708. movdqu `16*3`($inp),$inout3
  2709. je .Locb_enc_four
  2710. movdqu `16*4`($inp),$inout4
  2711. pxor $inout5,$inout5
  2712. call __ocb_encrypt6
  2713. movdqa @offset[4],@offset[5]
  2714. movups $inout0,`16*0`($out)
  2715. movups $inout1,`16*1`($out)
  2716. movups $inout2,`16*2`($out)
  2717. movups $inout3,`16*3`($out)
  2718. movups $inout4,`16*4`($out)
  2719. jmp .Locb_enc_done
  2720. .align 16
  2721. .Locb_enc_one:
  2722. movdqa @offset[0],$inout5 # borrow
  2723. call __ocb_encrypt1
  2724. movdqa $inout5,@offset[5]
  2725. movups $inout0,`16*0`($out)
  2726. jmp .Locb_enc_done
  2727. .align 16
  2728. .Locb_enc_two:
  2729. pxor $inout2,$inout2
  2730. pxor $inout3,$inout3
  2731. call __ocb_encrypt4
  2732. movdqa @offset[1],@offset[5]
  2733. movups $inout0,`16*0`($out)
  2734. movups $inout1,`16*1`($out)
  2735. jmp .Locb_enc_done
  2736. .align 16
  2737. .Locb_enc_three:
  2738. pxor $inout3,$inout3
  2739. call __ocb_encrypt4
  2740. movdqa @offset[2],@offset[5]
  2741. movups $inout0,`16*0`($out)
  2742. movups $inout1,`16*1`($out)
  2743. movups $inout2,`16*2`($out)
  2744. jmp .Locb_enc_done
  2745. .align 16
  2746. .Locb_enc_four:
  2747. call __ocb_encrypt4
  2748. movdqa @offset[3],@offset[5]
  2749. movups $inout0,`16*0`($out)
  2750. movups $inout1,`16*1`($out)
  2751. movups $inout2,`16*2`($out)
  2752. movups $inout3,`16*3`($out)
  2753. .Locb_enc_done:
  2754. pxor $rndkey0,@offset[5] # "remove" round[last]
  2755. movdqu $checksum,($checksum_p) # store checksum
  2756. movdqu @offset[5],($offset_p) # store last offset_i
  2757. xorps %xmm0,%xmm0 # clear register bank
  2758. pxor %xmm1,%xmm1
  2759. pxor %xmm2,%xmm2
  2760. pxor %xmm3,%xmm3
  2761. pxor %xmm4,%xmm4
  2762. pxor %xmm5,%xmm5
  2763. ___
  2764. $code.=<<___ if (!$win64);
  2765. pxor %xmm6,%xmm6
  2766. pxor %xmm7,%xmm7
  2767. pxor %xmm8,%xmm8
  2768. pxor %xmm9,%xmm9
  2769. pxor %xmm10,%xmm10
  2770. pxor %xmm11,%xmm11
  2771. pxor %xmm12,%xmm12
  2772. pxor %xmm13,%xmm13
  2773. pxor %xmm14,%xmm14
  2774. pxor %xmm15,%xmm15
  2775. lea 0x28(%rsp),%rax
  2776. .cfi_def_cfa %rax,8
  2777. ___
  2778. $code.=<<___ if ($win64);
  2779. movaps 0x00(%rsp),%xmm6
  2780. movaps %xmm0,0x00(%rsp) # clear stack
  2781. movaps 0x10(%rsp),%xmm7
  2782. movaps %xmm0,0x10(%rsp)
  2783. movaps 0x20(%rsp),%xmm8
  2784. movaps %xmm0,0x20(%rsp)
  2785. movaps 0x30(%rsp),%xmm9
  2786. movaps %xmm0,0x30(%rsp)
  2787. movaps 0x40(%rsp),%xmm10
  2788. movaps %xmm0,0x40(%rsp)
  2789. movaps 0x50(%rsp),%xmm11
  2790. movaps %xmm0,0x50(%rsp)
  2791. movaps 0x60(%rsp),%xmm12
  2792. movaps %xmm0,0x60(%rsp)
  2793. movaps 0x70(%rsp),%xmm13
  2794. movaps %xmm0,0x70(%rsp)
  2795. movaps 0x80(%rsp),%xmm14
  2796. movaps %xmm0,0x80(%rsp)
  2797. movaps 0x90(%rsp),%xmm15
  2798. movaps %xmm0,0x90(%rsp)
  2799. lea 0xa0+0x28(%rsp),%rax
  2800. .Locb_enc_pop:
  2801. ___
  2802. $code.=<<___;
  2803. mov -40(%rax),%r14
  2804. .cfi_restore %r14
  2805. mov -32(%rax),%r13
  2806. .cfi_restore %r13
  2807. mov -24(%rax),%r12
  2808. .cfi_restore %r12
  2809. mov -16(%rax),%rbp
  2810. .cfi_restore %rbp
  2811. mov -8(%rax),%rbx
  2812. .cfi_restore %rbx
  2813. lea (%rax),%rsp
  2814. .cfi_def_cfa_register %rsp
  2815. .Locb_enc_epilogue:
  2816. ret
  2817. .cfi_endproc
  2818. .size aesni_ocb_encrypt,.-aesni_ocb_encrypt
  2819. .type __ocb_encrypt6,\@abi-omnipotent
  2820. .align 32
  2821. __ocb_encrypt6:
  2822. .cfi_startproc
  2823. pxor $rndkey0l,@offset[5] # offset_i ^ round[0]
  2824. movdqu ($L_p,$i1),@offset[1]
  2825. movdqa @offset[0],@offset[2]
  2826. movdqu ($L_p,$i3),@offset[3]
  2827. movdqa @offset[0],@offset[4]
  2828. pxor @offset[5],@offset[0]
  2829. movdqu ($L_p,$i5),@offset[5]
  2830. pxor @offset[0],@offset[1]
  2831. pxor $inout0,$checksum # accumulate checksum
  2832. pxor @offset[0],$inout0 # input ^ round[0] ^ offset_i
  2833. pxor @offset[1],@offset[2]
  2834. pxor $inout1,$checksum
  2835. pxor @offset[1],$inout1
  2836. pxor @offset[2],@offset[3]
  2837. pxor $inout2,$checksum
  2838. pxor @offset[2],$inout2
  2839. pxor @offset[3],@offset[4]
  2840. pxor $inout3,$checksum
  2841. pxor @offset[3],$inout3
  2842. pxor @offset[4],@offset[5]
  2843. pxor $inout4,$checksum
  2844. pxor @offset[4],$inout4
  2845. pxor $inout5,$checksum
  2846. pxor @offset[5],$inout5
  2847. $movkey 32($key_),$rndkey0
  2848. lea 1($block_num),$i1 # even-numbered blocks
  2849. lea 3($block_num),$i3
  2850. lea 5($block_num),$i5
  2851. add \$6,$block_num
  2852. pxor $rndkey0l,@offset[0] # offset_i ^ round[last]
  2853. bsf $i1,$i1 # ntz(block)
  2854. bsf $i3,$i3
  2855. bsf $i5,$i5
  2856. aesenc $rndkey1,$inout0
  2857. aesenc $rndkey1,$inout1
  2858. aesenc $rndkey1,$inout2
  2859. aesenc $rndkey1,$inout3
  2860. pxor $rndkey0l,@offset[1]
  2861. pxor $rndkey0l,@offset[2]
  2862. aesenc $rndkey1,$inout4
  2863. pxor $rndkey0l,@offset[3]
  2864. pxor $rndkey0l,@offset[4]
  2865. aesenc $rndkey1,$inout5
  2866. $movkey 48($key_),$rndkey1
  2867. pxor $rndkey0l,@offset[5]
  2868. aesenc $rndkey0,$inout0
  2869. aesenc $rndkey0,$inout1
  2870. aesenc $rndkey0,$inout2
  2871. aesenc $rndkey0,$inout3
  2872. aesenc $rndkey0,$inout4
  2873. aesenc $rndkey0,$inout5
  2874. $movkey 64($key_),$rndkey0
  2875. shl \$4,$i1 # ntz(block) -> table offset
  2876. shl \$4,$i3
  2877. jmp .Locb_enc_loop6
  2878. .align 32
  2879. .Locb_enc_loop6:
  2880. aesenc $rndkey1,$inout0
  2881. aesenc $rndkey1,$inout1
  2882. aesenc $rndkey1,$inout2
  2883. aesenc $rndkey1,$inout3
  2884. aesenc $rndkey1,$inout4
  2885. aesenc $rndkey1,$inout5
  2886. $movkey ($key,%rax),$rndkey1
  2887. add \$32,%rax
  2888. aesenc $rndkey0,$inout0
  2889. aesenc $rndkey0,$inout1
  2890. aesenc $rndkey0,$inout2
  2891. aesenc $rndkey0,$inout3
  2892. aesenc $rndkey0,$inout4
  2893. aesenc $rndkey0,$inout5
  2894. $movkey -16($key,%rax),$rndkey0
  2895. jnz .Locb_enc_loop6
  2896. aesenc $rndkey1,$inout0
  2897. aesenc $rndkey1,$inout1
  2898. aesenc $rndkey1,$inout2
  2899. aesenc $rndkey1,$inout3
  2900. aesenc $rndkey1,$inout4
  2901. aesenc $rndkey1,$inout5
  2902. $movkey 16($key_),$rndkey1
  2903. shl \$4,$i5
  2904. aesenclast @offset[0],$inout0
  2905. movdqu ($L_p),@offset[0] # L_0 for all odd-numbered blocks
  2906. mov %r10,%rax # restore twisted rounds
  2907. aesenclast @offset[1],$inout1
  2908. aesenclast @offset[2],$inout2
  2909. aesenclast @offset[3],$inout3
  2910. aesenclast @offset[4],$inout4
  2911. aesenclast @offset[5],$inout5
  2912. ret
  2913. .cfi_endproc
  2914. .size __ocb_encrypt6,.-__ocb_encrypt6
  2915. .type __ocb_encrypt4,\@abi-omnipotent
  2916. .align 32
  2917. __ocb_encrypt4:
  2918. .cfi_startproc
  2919. pxor $rndkey0l,@offset[5] # offset_i ^ round[0]
  2920. movdqu ($L_p,$i1),@offset[1]
  2921. movdqa @offset[0],@offset[2]
  2922. movdqu ($L_p,$i3),@offset[3]
  2923. pxor @offset[5],@offset[0]
  2924. pxor @offset[0],@offset[1]
  2925. pxor $inout0,$checksum # accumulate checksum
  2926. pxor @offset[0],$inout0 # input ^ round[0] ^ offset_i
  2927. pxor @offset[1],@offset[2]
  2928. pxor $inout1,$checksum
  2929. pxor @offset[1],$inout1
  2930. pxor @offset[2],@offset[3]
  2931. pxor $inout2,$checksum
  2932. pxor @offset[2],$inout2
  2933. pxor $inout3,$checksum
  2934. pxor @offset[3],$inout3
  2935. $movkey 32($key_),$rndkey0
  2936. pxor $rndkey0l,@offset[0] # offset_i ^ round[last]
  2937. pxor $rndkey0l,@offset[1]
  2938. pxor $rndkey0l,@offset[2]
  2939. pxor $rndkey0l,@offset[3]
  2940. aesenc $rndkey1,$inout0
  2941. aesenc $rndkey1,$inout1
  2942. aesenc $rndkey1,$inout2
  2943. aesenc $rndkey1,$inout3
  2944. $movkey 48($key_),$rndkey1
  2945. aesenc $rndkey0,$inout0
  2946. aesenc $rndkey0,$inout1
  2947. aesenc $rndkey0,$inout2
  2948. aesenc $rndkey0,$inout3
  2949. $movkey 64($key_),$rndkey0
  2950. jmp .Locb_enc_loop4
  2951. .align 32
  2952. .Locb_enc_loop4:
  2953. aesenc $rndkey1,$inout0
  2954. aesenc $rndkey1,$inout1
  2955. aesenc $rndkey1,$inout2
  2956. aesenc $rndkey1,$inout3
  2957. $movkey ($key,%rax),$rndkey1
  2958. add \$32,%rax
  2959. aesenc $rndkey0,$inout0
  2960. aesenc $rndkey0,$inout1
  2961. aesenc $rndkey0,$inout2
  2962. aesenc $rndkey0,$inout3
  2963. $movkey -16($key,%rax),$rndkey0
  2964. jnz .Locb_enc_loop4
  2965. aesenc $rndkey1,$inout0
  2966. aesenc $rndkey1,$inout1
  2967. aesenc $rndkey1,$inout2
  2968. aesenc $rndkey1,$inout3
  2969. $movkey 16($key_),$rndkey1
  2970. mov %r10,%rax # restore twisted rounds
  2971. aesenclast @offset[0],$inout0
  2972. aesenclast @offset[1],$inout1
  2973. aesenclast @offset[2],$inout2
  2974. aesenclast @offset[3],$inout3
  2975. ret
  2976. .cfi_endproc
  2977. .size __ocb_encrypt4,.-__ocb_encrypt4
  2978. .type __ocb_encrypt1,\@abi-omnipotent
  2979. .align 32
  2980. __ocb_encrypt1:
  2981. .cfi_startproc
  2982. pxor @offset[5],$inout5 # offset_i
  2983. pxor $rndkey0l,$inout5 # offset_i ^ round[0]
  2984. pxor $inout0,$checksum # accumulate checksum
  2985. pxor $inout5,$inout0 # input ^ round[0] ^ offset_i
  2986. $movkey 32($key_),$rndkey0
  2987. aesenc $rndkey1,$inout0
  2988. $movkey 48($key_),$rndkey1
  2989. pxor $rndkey0l,$inout5 # offset_i ^ round[last]
  2990. aesenc $rndkey0,$inout0
  2991. $movkey 64($key_),$rndkey0
  2992. jmp .Locb_enc_loop1
  2993. .align 32
  2994. .Locb_enc_loop1:
  2995. aesenc $rndkey1,$inout0
  2996. $movkey ($key,%rax),$rndkey1
  2997. add \$32,%rax
  2998. aesenc $rndkey0,$inout0
  2999. $movkey -16($key,%rax),$rndkey0
  3000. jnz .Locb_enc_loop1
  3001. aesenc $rndkey1,$inout0
  3002. $movkey 16($key_),$rndkey1 # redundant in tail
  3003. mov %r10,%rax # restore twisted rounds
  3004. aesenclast $inout5,$inout0
  3005. ret
  3006. .cfi_endproc
  3007. .size __ocb_encrypt1,.-__ocb_encrypt1
  3008. .globl aesni_ocb_decrypt
  3009. .type aesni_ocb_decrypt,\@function,6
  3010. .align 32
  3011. aesni_ocb_decrypt:
  3012. .cfi_startproc
  3013. lea (%rsp),%rax
  3014. push %rbx
  3015. .cfi_push %rbx
  3016. push %rbp
  3017. .cfi_push %rbp
  3018. push %r12
  3019. .cfi_push %r12
  3020. push %r13
  3021. .cfi_push %r13
  3022. push %r14
  3023. .cfi_push %r14
  3024. ___
  3025. $code.=<<___ if ($win64);
  3026. lea -0xa0(%rsp),%rsp
  3027. movaps %xmm6,0x00(%rsp) # offload everything
  3028. movaps %xmm7,0x10(%rsp)
  3029. movaps %xmm8,0x20(%rsp)
  3030. movaps %xmm9,0x30(%rsp)
  3031. movaps %xmm10,0x40(%rsp)
  3032. movaps %xmm11,0x50(%rsp)
  3033. movaps %xmm12,0x60(%rsp)
  3034. movaps %xmm13,0x70(%rsp)
  3035. movaps %xmm14,0x80(%rsp)
  3036. movaps %xmm15,0x90(%rsp)
  3037. .Locb_dec_body:
  3038. ___
  3039. $code.=<<___;
  3040. mov $seventh_arg(%rax),$L_p # 7th argument
  3041. mov $seventh_arg+8(%rax),$checksum_p# 8th argument
  3042. mov 240($key),$rnds_
  3043. mov $key,$key_
  3044. shl \$4,$rnds_
  3045. $movkey ($key),$rndkey0l # round[0]
  3046. $movkey 16($key,$rnds_),$rndkey1 # round[last]
  3047. movdqu ($offset_p),@offset[5] # load last offset_i
  3048. pxor $rndkey1,$rndkey0l # round[0] ^ round[last]
  3049. pxor $rndkey1,@offset[5] # offset_i ^ round[last]
  3050. mov \$16+32,$rounds
  3051. lea 32($key_,$rnds_),$key
  3052. $movkey 16($key_),$rndkey1 # round[1]
  3053. sub %r10,%rax # twisted $rounds
  3054. mov %rax,%r10 # backup twisted $rounds
  3055. movdqu ($L_p),@offset[0] # L_0 for all odd-numbered blocks
  3056. movdqu ($checksum_p),$checksum # load checksum
  3057. test \$1,$block_num # is first block number odd?
  3058. jnz .Locb_dec_odd
  3059. bsf $block_num,$i1
  3060. add \$1,$block_num
  3061. shl \$4,$i1
  3062. movdqu ($L_p,$i1),$inout5 # borrow
  3063. movdqu ($inp),$inout0
  3064. lea 16($inp),$inp
  3065. call __ocb_decrypt1
  3066. movdqa $inout5,@offset[5]
  3067. movups $inout0,($out)
  3068. xorps $inout0,$checksum # accumulate checksum
  3069. lea 16($out),$out
  3070. sub \$1,$blocks
  3071. jz .Locb_dec_done
  3072. .Locb_dec_odd:
  3073. lea 1($block_num),$i1 # even-numbered blocks
  3074. lea 3($block_num),$i3
  3075. lea 5($block_num),$i5
  3076. lea 6($block_num),$block_num
  3077. bsf $i1,$i1 # ntz(block)
  3078. bsf $i3,$i3
  3079. bsf $i5,$i5
  3080. shl \$4,$i1 # ntz(block) -> table offset
  3081. shl \$4,$i3
  3082. shl \$4,$i5
  3083. sub \$6,$blocks
  3084. jc .Locb_dec_short
  3085. jmp .Locb_dec_grandloop
  3086. .align 32
  3087. .Locb_dec_grandloop:
  3088. movdqu `16*0`($inp),$inout0 # load input
  3089. movdqu `16*1`($inp),$inout1
  3090. movdqu `16*2`($inp),$inout2
  3091. movdqu `16*3`($inp),$inout3
  3092. movdqu `16*4`($inp),$inout4
  3093. movdqu `16*5`($inp),$inout5
  3094. lea `16*6`($inp),$inp
  3095. call __ocb_decrypt6
  3096. movups $inout0,`16*0`($out) # store output
  3097. pxor $inout0,$checksum # accumulate checksum
  3098. movups $inout1,`16*1`($out)
  3099. pxor $inout1,$checksum
  3100. movups $inout2,`16*2`($out)
  3101. pxor $inout2,$checksum
  3102. movups $inout3,`16*3`($out)
  3103. pxor $inout3,$checksum
  3104. movups $inout4,`16*4`($out)
  3105. pxor $inout4,$checksum
  3106. movups $inout5,`16*5`($out)
  3107. pxor $inout5,$checksum
  3108. lea `16*6`($out),$out
  3109. sub \$6,$blocks
  3110. jnc .Locb_dec_grandloop
  3111. .Locb_dec_short:
  3112. add \$6,$blocks
  3113. jz .Locb_dec_done
  3114. movdqu `16*0`($inp),$inout0
  3115. cmp \$2,$blocks
  3116. jb .Locb_dec_one
  3117. movdqu `16*1`($inp),$inout1
  3118. je .Locb_dec_two
  3119. movdqu `16*2`($inp),$inout2
  3120. cmp \$4,$blocks
  3121. jb .Locb_dec_three
  3122. movdqu `16*3`($inp),$inout3
  3123. je .Locb_dec_four
  3124. movdqu `16*4`($inp),$inout4
  3125. pxor $inout5,$inout5
  3126. call __ocb_decrypt6
  3127. movdqa @offset[4],@offset[5]
  3128. movups $inout0,`16*0`($out) # store output
  3129. pxor $inout0,$checksum # accumulate checksum
  3130. movups $inout1,`16*1`($out)
  3131. pxor $inout1,$checksum
  3132. movups $inout2,`16*2`($out)
  3133. pxor $inout2,$checksum
  3134. movups $inout3,`16*3`($out)
  3135. pxor $inout3,$checksum
  3136. movups $inout4,`16*4`($out)
  3137. pxor $inout4,$checksum
  3138. jmp .Locb_dec_done
  3139. .align 16
  3140. .Locb_dec_one:
  3141. movdqa @offset[0],$inout5 # borrow
  3142. call __ocb_decrypt1
  3143. movdqa $inout5,@offset[5]
  3144. movups $inout0,`16*0`($out) # store output
  3145. xorps $inout0,$checksum # accumulate checksum
  3146. jmp .Locb_dec_done
  3147. .align 16
  3148. .Locb_dec_two:
  3149. pxor $inout2,$inout2
  3150. pxor $inout3,$inout3
  3151. call __ocb_decrypt4
  3152. movdqa @offset[1],@offset[5]
  3153. movups $inout0,`16*0`($out) # store output
  3154. xorps $inout0,$checksum # accumulate checksum
  3155. movups $inout1,`16*1`($out)
  3156. xorps $inout1,$checksum
  3157. jmp .Locb_dec_done
  3158. .align 16
  3159. .Locb_dec_three:
  3160. pxor $inout3,$inout3
  3161. call __ocb_decrypt4
  3162. movdqa @offset[2],@offset[5]
  3163. movups $inout0,`16*0`($out) # store output
  3164. xorps $inout0,$checksum # accumulate checksum
  3165. movups $inout1,`16*1`($out)
  3166. xorps $inout1,$checksum
  3167. movups $inout2,`16*2`($out)
  3168. xorps $inout2,$checksum
  3169. jmp .Locb_dec_done
  3170. .align 16
  3171. .Locb_dec_four:
  3172. call __ocb_decrypt4
  3173. movdqa @offset[3],@offset[5]
  3174. movups $inout0,`16*0`($out) # store output
  3175. pxor $inout0,$checksum # accumulate checksum
  3176. movups $inout1,`16*1`($out)
  3177. pxor $inout1,$checksum
  3178. movups $inout2,`16*2`($out)
  3179. pxor $inout2,$checksum
  3180. movups $inout3,`16*3`($out)
  3181. pxor $inout3,$checksum
  3182. .Locb_dec_done:
  3183. pxor $rndkey0,@offset[5] # "remove" round[last]
  3184. movdqu $checksum,($checksum_p) # store checksum
  3185. movdqu @offset[5],($offset_p) # store last offset_i
  3186. xorps %xmm0,%xmm0 # clear register bank
  3187. pxor %xmm1,%xmm1
  3188. pxor %xmm2,%xmm2
  3189. pxor %xmm3,%xmm3
  3190. pxor %xmm4,%xmm4
  3191. pxor %xmm5,%xmm5
  3192. ___
  3193. $code.=<<___ if (!$win64);
  3194. pxor %xmm6,%xmm6
  3195. pxor %xmm7,%xmm7
  3196. pxor %xmm8,%xmm8
  3197. pxor %xmm9,%xmm9
  3198. pxor %xmm10,%xmm10
  3199. pxor %xmm11,%xmm11
  3200. pxor %xmm12,%xmm12
  3201. pxor %xmm13,%xmm13
  3202. pxor %xmm14,%xmm14
  3203. pxor %xmm15,%xmm15
  3204. lea 0x28(%rsp),%rax
  3205. .cfi_def_cfa %rax,8
  3206. ___
  3207. $code.=<<___ if ($win64);
  3208. movaps 0x00(%rsp),%xmm6
  3209. movaps %xmm0,0x00(%rsp) # clear stack
  3210. movaps 0x10(%rsp),%xmm7
  3211. movaps %xmm0,0x10(%rsp)
  3212. movaps 0x20(%rsp),%xmm8
  3213. movaps %xmm0,0x20(%rsp)
  3214. movaps 0x30(%rsp),%xmm9
  3215. movaps %xmm0,0x30(%rsp)
  3216. movaps 0x40(%rsp),%xmm10
  3217. movaps %xmm0,0x40(%rsp)
  3218. movaps 0x50(%rsp),%xmm11
  3219. movaps %xmm0,0x50(%rsp)
  3220. movaps 0x60(%rsp),%xmm12
  3221. movaps %xmm0,0x60(%rsp)
  3222. movaps 0x70(%rsp),%xmm13
  3223. movaps %xmm0,0x70(%rsp)
  3224. movaps 0x80(%rsp),%xmm14
  3225. movaps %xmm0,0x80(%rsp)
  3226. movaps 0x90(%rsp),%xmm15
  3227. movaps %xmm0,0x90(%rsp)
  3228. lea 0xa0+0x28(%rsp),%rax
  3229. .Locb_dec_pop:
  3230. ___
  3231. $code.=<<___;
  3232. mov -40(%rax),%r14
  3233. .cfi_restore %r14
  3234. mov -32(%rax),%r13
  3235. .cfi_restore %r13
  3236. mov -24(%rax),%r12
  3237. .cfi_restore %r12
  3238. mov -16(%rax),%rbp
  3239. .cfi_restore %rbp
  3240. mov -8(%rax),%rbx
  3241. .cfi_restore %rbx
  3242. lea (%rax),%rsp
  3243. .cfi_def_cfa_register %rsp
  3244. .Locb_dec_epilogue:
  3245. ret
  3246. .cfi_endproc
  3247. .size aesni_ocb_decrypt,.-aesni_ocb_decrypt
  3248. .type __ocb_decrypt6,\@abi-omnipotent
  3249. .align 32
  3250. __ocb_decrypt6:
  3251. .cfi_startproc
  3252. pxor $rndkey0l,@offset[5] # offset_i ^ round[0]
  3253. movdqu ($L_p,$i1),@offset[1]
  3254. movdqa @offset[0],@offset[2]
  3255. movdqu ($L_p,$i3),@offset[3]
  3256. movdqa @offset[0],@offset[4]
  3257. pxor @offset[5],@offset[0]
  3258. movdqu ($L_p,$i5),@offset[5]
  3259. pxor @offset[0],@offset[1]
  3260. pxor @offset[0],$inout0 # input ^ round[0] ^ offset_i
  3261. pxor @offset[1],@offset[2]
  3262. pxor @offset[1],$inout1
  3263. pxor @offset[2],@offset[3]
  3264. pxor @offset[2],$inout2
  3265. pxor @offset[3],@offset[4]
  3266. pxor @offset[3],$inout3
  3267. pxor @offset[4],@offset[5]
  3268. pxor @offset[4],$inout4
  3269. pxor @offset[5],$inout5
  3270. $movkey 32($key_),$rndkey0
  3271. lea 1($block_num),$i1 # even-numbered blocks
  3272. lea 3($block_num),$i3
  3273. lea 5($block_num),$i5
  3274. add \$6,$block_num
  3275. pxor $rndkey0l,@offset[0] # offset_i ^ round[last]
  3276. bsf $i1,$i1 # ntz(block)
  3277. bsf $i3,$i3
  3278. bsf $i5,$i5
  3279. aesdec $rndkey1,$inout0
  3280. aesdec $rndkey1,$inout1
  3281. aesdec $rndkey1,$inout2
  3282. aesdec $rndkey1,$inout3
  3283. pxor $rndkey0l,@offset[1]
  3284. pxor $rndkey0l,@offset[2]
  3285. aesdec $rndkey1,$inout4
  3286. pxor $rndkey0l,@offset[3]
  3287. pxor $rndkey0l,@offset[4]
  3288. aesdec $rndkey1,$inout5
  3289. $movkey 48($key_),$rndkey1
  3290. pxor $rndkey0l,@offset[5]
  3291. aesdec $rndkey0,$inout0
  3292. aesdec $rndkey0,$inout1
  3293. aesdec $rndkey0,$inout2
  3294. aesdec $rndkey0,$inout3
  3295. aesdec $rndkey0,$inout4
  3296. aesdec $rndkey0,$inout5
  3297. $movkey 64($key_),$rndkey0
  3298. shl \$4,$i1 # ntz(block) -> table offset
  3299. shl \$4,$i3
  3300. jmp .Locb_dec_loop6
  3301. .align 32
  3302. .Locb_dec_loop6:
  3303. aesdec $rndkey1,$inout0
  3304. aesdec $rndkey1,$inout1
  3305. aesdec $rndkey1,$inout2
  3306. aesdec $rndkey1,$inout3
  3307. aesdec $rndkey1,$inout4
  3308. aesdec $rndkey1,$inout5
  3309. $movkey ($key,%rax),$rndkey1
  3310. add \$32,%rax
  3311. aesdec $rndkey0,$inout0
  3312. aesdec $rndkey0,$inout1
  3313. aesdec $rndkey0,$inout2
  3314. aesdec $rndkey0,$inout3
  3315. aesdec $rndkey0,$inout4
  3316. aesdec $rndkey0,$inout5
  3317. $movkey -16($key,%rax),$rndkey0
  3318. jnz .Locb_dec_loop6
  3319. aesdec $rndkey1,$inout0
  3320. aesdec $rndkey1,$inout1
  3321. aesdec $rndkey1,$inout2
  3322. aesdec $rndkey1,$inout3
  3323. aesdec $rndkey1,$inout4
  3324. aesdec $rndkey1,$inout5
  3325. $movkey 16($key_),$rndkey1
  3326. shl \$4,$i5
  3327. aesdeclast @offset[0],$inout0
  3328. movdqu ($L_p),@offset[0] # L_0 for all odd-numbered blocks
  3329. mov %r10,%rax # restore twisted rounds
  3330. aesdeclast @offset[1],$inout1
  3331. aesdeclast @offset[2],$inout2
  3332. aesdeclast @offset[3],$inout3
  3333. aesdeclast @offset[4],$inout4
  3334. aesdeclast @offset[5],$inout5
  3335. ret
  3336. .cfi_endproc
  3337. .size __ocb_decrypt6,.-__ocb_decrypt6
  3338. .type __ocb_decrypt4,\@abi-omnipotent
  3339. .align 32
  3340. __ocb_decrypt4:
  3341. .cfi_startproc
  3342. pxor $rndkey0l,@offset[5] # offset_i ^ round[0]
  3343. movdqu ($L_p,$i1),@offset[1]
  3344. movdqa @offset[0],@offset[2]
  3345. movdqu ($L_p,$i3),@offset[3]
  3346. pxor @offset[5],@offset[0]
  3347. pxor @offset[0],@offset[1]
  3348. pxor @offset[0],$inout0 # input ^ round[0] ^ offset_i
  3349. pxor @offset[1],@offset[2]
  3350. pxor @offset[1],$inout1
  3351. pxor @offset[2],@offset[3]
  3352. pxor @offset[2],$inout2
  3353. pxor @offset[3],$inout3
  3354. $movkey 32($key_),$rndkey0
  3355. pxor $rndkey0l,@offset[0] # offset_i ^ round[last]
  3356. pxor $rndkey0l,@offset[1]
  3357. pxor $rndkey0l,@offset[2]
  3358. pxor $rndkey0l,@offset[3]
  3359. aesdec $rndkey1,$inout0
  3360. aesdec $rndkey1,$inout1
  3361. aesdec $rndkey1,$inout2
  3362. aesdec $rndkey1,$inout3
  3363. $movkey 48($key_),$rndkey1
  3364. aesdec $rndkey0,$inout0
  3365. aesdec $rndkey0,$inout1
  3366. aesdec $rndkey0,$inout2
  3367. aesdec $rndkey0,$inout3
  3368. $movkey 64($key_),$rndkey0
  3369. jmp .Locb_dec_loop4
  3370. .align 32
  3371. .Locb_dec_loop4:
  3372. aesdec $rndkey1,$inout0
  3373. aesdec $rndkey1,$inout1
  3374. aesdec $rndkey1,$inout2
  3375. aesdec $rndkey1,$inout3
  3376. $movkey ($key,%rax),$rndkey1
  3377. add \$32,%rax
  3378. aesdec $rndkey0,$inout0
  3379. aesdec $rndkey0,$inout1
  3380. aesdec $rndkey0,$inout2
  3381. aesdec $rndkey0,$inout3
  3382. $movkey -16($key,%rax),$rndkey0
  3383. jnz .Locb_dec_loop4
  3384. aesdec $rndkey1,$inout0
  3385. aesdec $rndkey1,$inout1
  3386. aesdec $rndkey1,$inout2
  3387. aesdec $rndkey1,$inout3
  3388. $movkey 16($key_),$rndkey1
  3389. mov %r10,%rax # restore twisted rounds
  3390. aesdeclast @offset[0],$inout0
  3391. aesdeclast @offset[1],$inout1
  3392. aesdeclast @offset[2],$inout2
  3393. aesdeclast @offset[3],$inout3
  3394. ret
  3395. .cfi_endproc
  3396. .size __ocb_decrypt4,.-__ocb_decrypt4
  3397. .type __ocb_decrypt1,\@abi-omnipotent
  3398. .align 32
  3399. __ocb_decrypt1:
  3400. .cfi_startproc
  3401. pxor @offset[5],$inout5 # offset_i
  3402. pxor $rndkey0l,$inout5 # offset_i ^ round[0]
  3403. pxor $inout5,$inout0 # input ^ round[0] ^ offset_i
  3404. $movkey 32($key_),$rndkey0
  3405. aesdec $rndkey1,$inout0
  3406. $movkey 48($key_),$rndkey1
  3407. pxor $rndkey0l,$inout5 # offset_i ^ round[last]
  3408. aesdec $rndkey0,$inout0
  3409. $movkey 64($key_),$rndkey0
  3410. jmp .Locb_dec_loop1
  3411. .align 32
  3412. .Locb_dec_loop1:
  3413. aesdec $rndkey1,$inout0
  3414. $movkey ($key,%rax),$rndkey1
  3415. add \$32,%rax
  3416. aesdec $rndkey0,$inout0
  3417. $movkey -16($key,%rax),$rndkey0
  3418. jnz .Locb_dec_loop1
  3419. aesdec $rndkey1,$inout0
  3420. $movkey 16($key_),$rndkey1 # redundant in tail
  3421. mov %r10,%rax # restore twisted rounds
  3422. aesdeclast $inout5,$inout0
  3423. ret
  3424. .cfi_endproc
  3425. .size __ocb_decrypt1,.-__ocb_decrypt1
  3426. ___
  3427. } }}
  3428. ########################################################################
  3429. # void $PREFIX_cbc_encrypt (const void *inp, void *out,
  3430. # size_t length, const AES_KEY *key,
  3431. # unsigned char *ivp,const int enc);
  3432. {
  3433. my $frame_size = 0x10 + ($win64?0xa0:0); # used in decrypt
  3434. my ($iv,$in0,$in1,$in2,$in3,$in4)=map("%xmm$_",(10..15));
  3435. $code.=<<___;
  3436. .globl ${PREFIX}_cbc_encrypt
  3437. .type ${PREFIX}_cbc_encrypt,\@function,6
  3438. .align 16
  3439. ${PREFIX}_cbc_encrypt:
  3440. .cfi_startproc
  3441. test $len,$len # check length
  3442. jz .Lcbc_ret
  3443. mov 240($key),$rnds_ # key->rounds
  3444. mov $key,$key_ # backup $key
  3445. test %r9d,%r9d # 6th argument
  3446. jz .Lcbc_decrypt
  3447. #--------------------------- CBC ENCRYPT ------------------------------#
  3448. movups ($ivp),$inout0 # load iv as initial state
  3449. mov $rnds_,$rounds
  3450. cmp \$16,$len
  3451. jb .Lcbc_enc_tail
  3452. sub \$16,$len
  3453. jmp .Lcbc_enc_loop
  3454. .align 16
  3455. .Lcbc_enc_loop:
  3456. movups ($inp),$inout1 # load input
  3457. lea 16($inp),$inp
  3458. #xorps $inout1,$inout0
  3459. ___
  3460. &aesni_generate1("enc",$key,$rounds,$inout0,$inout1);
  3461. $code.=<<___;
  3462. mov $rnds_,$rounds # restore $rounds
  3463. mov $key_,$key # restore $key
  3464. movups $inout0,0($out) # store output
  3465. lea 16($out),$out
  3466. sub \$16,$len
  3467. jnc .Lcbc_enc_loop
  3468. add \$16,$len
  3469. jnz .Lcbc_enc_tail
  3470. pxor $rndkey0,$rndkey0 # clear register bank
  3471. pxor $rndkey1,$rndkey1
  3472. movups $inout0,($ivp)
  3473. pxor $inout0,$inout0
  3474. pxor $inout1,$inout1
  3475. jmp .Lcbc_ret
  3476. .Lcbc_enc_tail:
  3477. mov $len,%rcx # zaps $key
  3478. xchg $inp,$out # $inp is %rsi and $out is %rdi now
  3479. .long 0x9066A4F3 # rep movsb
  3480. mov \$16,%ecx # zero tail
  3481. sub $len,%rcx
  3482. xor %eax,%eax
  3483. .long 0x9066AAF3 # rep stosb
  3484. lea -16(%rdi),%rdi # rewind $out by 1 block
  3485. mov $rnds_,$rounds # restore $rounds
  3486. mov %rdi,%rsi # $inp and $out are the same
  3487. mov $key_,$key # restore $key
  3488. xor $len,$len # len=16
  3489. jmp .Lcbc_enc_loop # one more spin
  3490. #--------------------------- CBC DECRYPT ------------------------------#
  3491. .align 16
  3492. .Lcbc_decrypt:
  3493. cmp \$16,$len
  3494. jne .Lcbc_decrypt_bulk
  3495. # handle single block without allocating stack frame,
  3496. # useful in ciphertext stealing mode
  3497. movdqu ($inp),$inout0 # load input
  3498. movdqu ($ivp),$inout1 # load iv
  3499. movdqa $inout0,$inout2 # future iv
  3500. ___
  3501. &aesni_generate1("dec",$key,$rnds_);
  3502. $code.=<<___;
  3503. pxor $rndkey0,$rndkey0 # clear register bank
  3504. pxor $rndkey1,$rndkey1
  3505. movdqu $inout2,($ivp) # store iv
  3506. xorps $inout1,$inout0 # ^=iv
  3507. pxor $inout1,$inout1
  3508. movups $inout0,($out) # store output
  3509. pxor $inout0,$inout0
  3510. jmp .Lcbc_ret
  3511. .align 16
  3512. .Lcbc_decrypt_bulk:
  3513. lea (%rsp),%r11 # frame pointer
  3514. .cfi_def_cfa_register %r11
  3515. push %rbp
  3516. .cfi_push %rbp
  3517. sub \$$frame_size,%rsp
  3518. and \$-16,%rsp # Linux kernel stack can be incorrectly seeded
  3519. ___
  3520. $code.=<<___ if ($win64);
  3521. movaps %xmm6,0x10(%rsp)
  3522. movaps %xmm7,0x20(%rsp)
  3523. movaps %xmm8,0x30(%rsp)
  3524. movaps %xmm9,0x40(%rsp)
  3525. movaps %xmm10,0x50(%rsp)
  3526. movaps %xmm11,0x60(%rsp)
  3527. movaps %xmm12,0x70(%rsp)
  3528. movaps %xmm13,0x80(%rsp)
  3529. movaps %xmm14,0x90(%rsp)
  3530. movaps %xmm15,0xa0(%rsp)
  3531. .Lcbc_decrypt_body:
  3532. ___
  3533. my $inp_=$key_="%rbp"; # reassign $key_
  3534. $code.=<<___;
  3535. mov $key,$key_ # [re-]backup $key [after reassignment]
  3536. movups ($ivp),$iv
  3537. mov $rnds_,$rounds
  3538. cmp \$0x50,$len
  3539. jbe .Lcbc_dec_tail
  3540. $movkey ($key),$rndkey0
  3541. movdqu 0x00($inp),$inout0 # load input
  3542. movdqu 0x10($inp),$inout1
  3543. movdqa $inout0,$in0
  3544. movdqu 0x20($inp),$inout2
  3545. movdqa $inout1,$in1
  3546. movdqu 0x30($inp),$inout3
  3547. movdqa $inout2,$in2
  3548. movdqu 0x40($inp),$inout4
  3549. movdqa $inout3,$in3
  3550. movdqu 0x50($inp),$inout5
  3551. movdqa $inout4,$in4
  3552. mov OPENSSL_ia32cap_P+4(%rip),%r9d
  3553. cmp \$0x70,$len
  3554. jbe .Lcbc_dec_six_or_seven
  3555. and \$`1<<26|1<<22`,%r9d # isolate XSAVE+MOVBE
  3556. sub \$0x50,$len # $len is biased by -5*16
  3557. cmp \$`1<<22`,%r9d # check for MOVBE without XSAVE
  3558. je .Lcbc_dec_loop6_enter # [which denotes Atom Silvermont]
  3559. sub \$0x20,$len # $len is biased by -7*16
  3560. lea 0x70($key),$key # size optimization
  3561. jmp .Lcbc_dec_loop8_enter
  3562. .align 16
  3563. .Lcbc_dec_loop8:
  3564. movups $inout7,($out)
  3565. lea 0x10($out),$out
  3566. .Lcbc_dec_loop8_enter:
  3567. movdqu 0x60($inp),$inout6
  3568. pxor $rndkey0,$inout0
  3569. movdqu 0x70($inp),$inout7
  3570. pxor $rndkey0,$inout1
  3571. $movkey 0x10-0x70($key),$rndkey1
  3572. pxor $rndkey0,$inout2
  3573. mov \$-1,$inp_
  3574. cmp \$0x70,$len # is there at least 0x60 bytes ahead?
  3575. pxor $rndkey0,$inout3
  3576. pxor $rndkey0,$inout4
  3577. pxor $rndkey0,$inout5
  3578. pxor $rndkey0,$inout6
  3579. aesdec $rndkey1,$inout0
  3580. pxor $rndkey0,$inout7
  3581. $movkey 0x20-0x70($key),$rndkey0
  3582. aesdec $rndkey1,$inout1
  3583. aesdec $rndkey1,$inout2
  3584. aesdec $rndkey1,$inout3
  3585. aesdec $rndkey1,$inout4
  3586. aesdec $rndkey1,$inout5
  3587. aesdec $rndkey1,$inout6
  3588. adc \$0,$inp_
  3589. and \$128,$inp_
  3590. aesdec $rndkey1,$inout7
  3591. add $inp,$inp_
  3592. $movkey 0x30-0x70($key),$rndkey1
  3593. ___
  3594. for($i=1;$i<12;$i++) {
  3595. my $rndkeyx = ($i&1)?$rndkey0:$rndkey1;
  3596. $code.=<<___ if ($i==7);
  3597. cmp \$11,$rounds
  3598. ___
  3599. $code.=<<___;
  3600. aesdec $rndkeyx,$inout0
  3601. aesdec $rndkeyx,$inout1
  3602. aesdec $rndkeyx,$inout2
  3603. aesdec $rndkeyx,$inout3
  3604. aesdec $rndkeyx,$inout4
  3605. aesdec $rndkeyx,$inout5
  3606. aesdec $rndkeyx,$inout6
  3607. aesdec $rndkeyx,$inout7
  3608. $movkey `0x30+0x10*$i`-0x70($key),$rndkeyx
  3609. ___
  3610. $code.=<<___ if ($i<6 || (!($i&1) && $i>7));
  3611. nop
  3612. ___
  3613. $code.=<<___ if ($i==7);
  3614. jb .Lcbc_dec_done
  3615. ___
  3616. $code.=<<___ if ($i==9);
  3617. je .Lcbc_dec_done
  3618. ___
  3619. $code.=<<___ if ($i==11);
  3620. jmp .Lcbc_dec_done
  3621. ___
  3622. }
  3623. $code.=<<___;
  3624. .align 16
  3625. .Lcbc_dec_done:
  3626. aesdec $rndkey1,$inout0
  3627. aesdec $rndkey1,$inout1
  3628. pxor $rndkey0,$iv
  3629. pxor $rndkey0,$in0
  3630. aesdec $rndkey1,$inout2
  3631. aesdec $rndkey1,$inout3
  3632. pxor $rndkey0,$in1
  3633. pxor $rndkey0,$in2
  3634. aesdec $rndkey1,$inout4
  3635. aesdec $rndkey1,$inout5
  3636. pxor $rndkey0,$in3
  3637. pxor $rndkey0,$in4
  3638. aesdec $rndkey1,$inout6
  3639. aesdec $rndkey1,$inout7
  3640. movdqu 0x50($inp),$rndkey1
  3641. aesdeclast $iv,$inout0
  3642. movdqu 0x60($inp),$iv # borrow $iv
  3643. pxor $rndkey0,$rndkey1
  3644. aesdeclast $in0,$inout1
  3645. pxor $rndkey0,$iv
  3646. movdqu 0x70($inp),$rndkey0 # next IV
  3647. aesdeclast $in1,$inout2
  3648. lea 0x80($inp),$inp
  3649. movdqu 0x00($inp_),$in0
  3650. aesdeclast $in2,$inout3
  3651. aesdeclast $in3,$inout4
  3652. movdqu 0x10($inp_),$in1
  3653. movdqu 0x20($inp_),$in2
  3654. aesdeclast $in4,$inout5
  3655. aesdeclast $rndkey1,$inout6
  3656. movdqu 0x30($inp_),$in3
  3657. movdqu 0x40($inp_),$in4
  3658. aesdeclast $iv,$inout7
  3659. movdqa $rndkey0,$iv # return $iv
  3660. movdqu 0x50($inp_),$rndkey1
  3661. $movkey -0x70($key),$rndkey0
  3662. movups $inout0,($out) # store output
  3663. movdqa $in0,$inout0
  3664. movups $inout1,0x10($out)
  3665. movdqa $in1,$inout1
  3666. movups $inout2,0x20($out)
  3667. movdqa $in2,$inout2
  3668. movups $inout3,0x30($out)
  3669. movdqa $in3,$inout3
  3670. movups $inout4,0x40($out)
  3671. movdqa $in4,$inout4
  3672. movups $inout5,0x50($out)
  3673. movdqa $rndkey1,$inout5
  3674. movups $inout6,0x60($out)
  3675. lea 0x70($out),$out
  3676. sub \$0x80,$len
  3677. ja .Lcbc_dec_loop8
  3678. movaps $inout7,$inout0
  3679. lea -0x70($key),$key
  3680. add \$0x70,$len
  3681. jle .Lcbc_dec_clear_tail_collected
  3682. movups $inout7,($out)
  3683. lea 0x10($out),$out
  3684. cmp \$0x50,$len
  3685. jbe .Lcbc_dec_tail
  3686. movaps $in0,$inout0
  3687. .Lcbc_dec_six_or_seven:
  3688. cmp \$0x60,$len
  3689. ja .Lcbc_dec_seven
  3690. movaps $inout5,$inout6
  3691. call _aesni_decrypt6
  3692. pxor $iv,$inout0 # ^= IV
  3693. movaps $inout6,$iv
  3694. pxor $in0,$inout1
  3695. movdqu $inout0,($out)
  3696. pxor $in1,$inout2
  3697. movdqu $inout1,0x10($out)
  3698. pxor $inout1,$inout1 # clear register bank
  3699. pxor $in2,$inout3
  3700. movdqu $inout2,0x20($out)
  3701. pxor $inout2,$inout2
  3702. pxor $in3,$inout4
  3703. movdqu $inout3,0x30($out)
  3704. pxor $inout3,$inout3
  3705. pxor $in4,$inout5
  3706. movdqu $inout4,0x40($out)
  3707. pxor $inout4,$inout4
  3708. lea 0x50($out),$out
  3709. movdqa $inout5,$inout0
  3710. pxor $inout5,$inout5
  3711. jmp .Lcbc_dec_tail_collected
  3712. .align 16
  3713. .Lcbc_dec_seven:
  3714. movups 0x60($inp),$inout6
  3715. xorps $inout7,$inout7
  3716. call _aesni_decrypt8
  3717. movups 0x50($inp),$inout7
  3718. pxor $iv,$inout0 # ^= IV
  3719. movups 0x60($inp),$iv
  3720. pxor $in0,$inout1
  3721. movdqu $inout0,($out)
  3722. pxor $in1,$inout2
  3723. movdqu $inout1,0x10($out)
  3724. pxor $inout1,$inout1 # clear register bank
  3725. pxor $in2,$inout3
  3726. movdqu $inout2,0x20($out)
  3727. pxor $inout2,$inout2
  3728. pxor $in3,$inout4
  3729. movdqu $inout3,0x30($out)
  3730. pxor $inout3,$inout3
  3731. pxor $in4,$inout5
  3732. movdqu $inout4,0x40($out)
  3733. pxor $inout4,$inout4
  3734. pxor $inout7,$inout6
  3735. movdqu $inout5,0x50($out)
  3736. pxor $inout5,$inout5
  3737. lea 0x60($out),$out
  3738. movdqa $inout6,$inout0
  3739. pxor $inout6,$inout6
  3740. pxor $inout7,$inout7
  3741. jmp .Lcbc_dec_tail_collected
  3742. .align 16
  3743. .Lcbc_dec_loop6:
  3744. movups $inout5,($out)
  3745. lea 0x10($out),$out
  3746. movdqu 0x00($inp),$inout0 # load input
  3747. movdqu 0x10($inp),$inout1
  3748. movdqa $inout0,$in0
  3749. movdqu 0x20($inp),$inout2
  3750. movdqa $inout1,$in1
  3751. movdqu 0x30($inp),$inout3
  3752. movdqa $inout2,$in2
  3753. movdqu 0x40($inp),$inout4
  3754. movdqa $inout3,$in3
  3755. movdqu 0x50($inp),$inout5
  3756. movdqa $inout4,$in4
  3757. .Lcbc_dec_loop6_enter:
  3758. lea 0x60($inp),$inp
  3759. movdqa $inout5,$inout6
  3760. call _aesni_decrypt6
  3761. pxor $iv,$inout0 # ^= IV
  3762. movdqa $inout6,$iv
  3763. pxor $in0,$inout1
  3764. movdqu $inout0,($out)
  3765. pxor $in1,$inout2
  3766. movdqu $inout1,0x10($out)
  3767. pxor $in2,$inout3
  3768. movdqu $inout2,0x20($out)
  3769. pxor $in3,$inout4
  3770. mov $key_,$key
  3771. movdqu $inout3,0x30($out)
  3772. pxor $in4,$inout5
  3773. mov $rnds_,$rounds
  3774. movdqu $inout4,0x40($out)
  3775. lea 0x50($out),$out
  3776. sub \$0x60,$len
  3777. ja .Lcbc_dec_loop6
  3778. movdqa $inout5,$inout0
  3779. add \$0x50,$len
  3780. jle .Lcbc_dec_clear_tail_collected
  3781. movups $inout5,($out)
  3782. lea 0x10($out),$out
  3783. .Lcbc_dec_tail:
  3784. movups ($inp),$inout0
  3785. sub \$0x10,$len
  3786. jbe .Lcbc_dec_one # $len is 1*16 or less
  3787. movups 0x10($inp),$inout1
  3788. movaps $inout0,$in0
  3789. sub \$0x10,$len
  3790. jbe .Lcbc_dec_two # $len is 2*16 or less
  3791. movups 0x20($inp),$inout2
  3792. movaps $inout1,$in1
  3793. sub \$0x10,$len
  3794. jbe .Lcbc_dec_three # $len is 3*16 or less
  3795. movups 0x30($inp),$inout3
  3796. movaps $inout2,$in2
  3797. sub \$0x10,$len
  3798. jbe .Lcbc_dec_four # $len is 4*16 or less
  3799. movups 0x40($inp),$inout4 # $len is 5*16 or less
  3800. movaps $inout3,$in3
  3801. movaps $inout4,$in4
  3802. xorps $inout5,$inout5
  3803. call _aesni_decrypt6
  3804. pxor $iv,$inout0
  3805. movaps $in4,$iv
  3806. pxor $in0,$inout1
  3807. movdqu $inout0,($out)
  3808. pxor $in1,$inout2
  3809. movdqu $inout1,0x10($out)
  3810. pxor $inout1,$inout1 # clear register bank
  3811. pxor $in2,$inout3
  3812. movdqu $inout2,0x20($out)
  3813. pxor $inout2,$inout2
  3814. pxor $in3,$inout4
  3815. movdqu $inout3,0x30($out)
  3816. pxor $inout3,$inout3
  3817. lea 0x40($out),$out
  3818. movdqa $inout4,$inout0
  3819. pxor $inout4,$inout4
  3820. pxor $inout5,$inout5
  3821. sub \$0x10,$len
  3822. jmp .Lcbc_dec_tail_collected
  3823. .align 16
  3824. .Lcbc_dec_one:
  3825. movaps $inout0,$in0
  3826. ___
  3827. &aesni_generate1("dec",$key,$rounds);
  3828. $code.=<<___;
  3829. xorps $iv,$inout0
  3830. movaps $in0,$iv
  3831. jmp .Lcbc_dec_tail_collected
  3832. .align 16
  3833. .Lcbc_dec_two:
  3834. movaps $inout1,$in1
  3835. call _aesni_decrypt2
  3836. pxor $iv,$inout0
  3837. movaps $in1,$iv
  3838. pxor $in0,$inout1
  3839. movdqu $inout0,($out)
  3840. movdqa $inout1,$inout0
  3841. pxor $inout1,$inout1 # clear register bank
  3842. lea 0x10($out),$out
  3843. jmp .Lcbc_dec_tail_collected
  3844. .align 16
  3845. .Lcbc_dec_three:
  3846. movaps $inout2,$in2
  3847. call _aesni_decrypt3
  3848. pxor $iv,$inout0
  3849. movaps $in2,$iv
  3850. pxor $in0,$inout1
  3851. movdqu $inout0,($out)
  3852. pxor $in1,$inout2
  3853. movdqu $inout1,0x10($out)
  3854. pxor $inout1,$inout1 # clear register bank
  3855. movdqa $inout2,$inout0
  3856. pxor $inout2,$inout2
  3857. lea 0x20($out),$out
  3858. jmp .Lcbc_dec_tail_collected
  3859. .align 16
  3860. .Lcbc_dec_four:
  3861. movaps $inout3,$in3
  3862. call _aesni_decrypt4
  3863. pxor $iv,$inout0
  3864. movaps $in3,$iv
  3865. pxor $in0,$inout1
  3866. movdqu $inout0,($out)
  3867. pxor $in1,$inout2
  3868. movdqu $inout1,0x10($out)
  3869. pxor $inout1,$inout1 # clear register bank
  3870. pxor $in2,$inout3
  3871. movdqu $inout2,0x20($out)
  3872. pxor $inout2,$inout2
  3873. movdqa $inout3,$inout0
  3874. pxor $inout3,$inout3
  3875. lea 0x30($out),$out
  3876. jmp .Lcbc_dec_tail_collected
  3877. .align 16
  3878. .Lcbc_dec_clear_tail_collected:
  3879. pxor $inout1,$inout1 # clear register bank
  3880. pxor $inout2,$inout2
  3881. pxor $inout3,$inout3
  3882. ___
  3883. $code.=<<___ if (!$win64);
  3884. pxor $inout4,$inout4 # %xmm6..9
  3885. pxor $inout5,$inout5
  3886. pxor $inout6,$inout6
  3887. pxor $inout7,$inout7
  3888. ___
  3889. $code.=<<___;
  3890. .Lcbc_dec_tail_collected:
  3891. movups $iv,($ivp)
  3892. and \$15,$len
  3893. jnz .Lcbc_dec_tail_partial
  3894. movups $inout0,($out)
  3895. pxor $inout0,$inout0
  3896. jmp .Lcbc_dec_ret
  3897. .align 16
  3898. .Lcbc_dec_tail_partial:
  3899. movaps $inout0,(%rsp)
  3900. pxor $inout0,$inout0
  3901. mov \$16,%rcx
  3902. mov $out,%rdi
  3903. sub $len,%rcx
  3904. lea (%rsp),%rsi
  3905. .long 0x9066A4F3 # rep movsb
  3906. movdqa $inout0,(%rsp)
  3907. .Lcbc_dec_ret:
  3908. xorps $rndkey0,$rndkey0 # %xmm0
  3909. pxor $rndkey1,$rndkey1
  3910. ___
  3911. $code.=<<___ if ($win64);
  3912. movaps 0x10(%rsp),%xmm6
  3913. movaps %xmm0,0x10(%rsp) # clear stack
  3914. movaps 0x20(%rsp),%xmm7
  3915. movaps %xmm0,0x20(%rsp)
  3916. movaps 0x30(%rsp),%xmm8
  3917. movaps %xmm0,0x30(%rsp)
  3918. movaps 0x40(%rsp),%xmm9
  3919. movaps %xmm0,0x40(%rsp)
  3920. movaps 0x50(%rsp),%xmm10
  3921. movaps %xmm0,0x50(%rsp)
  3922. movaps 0x60(%rsp),%xmm11
  3923. movaps %xmm0,0x60(%rsp)
  3924. movaps 0x70(%rsp),%xmm12
  3925. movaps %xmm0,0x70(%rsp)
  3926. movaps 0x80(%rsp),%xmm13
  3927. movaps %xmm0,0x80(%rsp)
  3928. movaps 0x90(%rsp),%xmm14
  3929. movaps %xmm0,0x90(%rsp)
  3930. movaps 0xa0(%rsp),%xmm15
  3931. movaps %xmm0,0xa0(%rsp)
  3932. ___
  3933. $code.=<<___;
  3934. mov -8(%r11),%rbp
  3935. .cfi_restore %rbp
  3936. lea (%r11),%rsp
  3937. .cfi_def_cfa_register %rsp
  3938. .Lcbc_ret:
  3939. ret
  3940. .cfi_endproc
  3941. .size ${PREFIX}_cbc_encrypt,.-${PREFIX}_cbc_encrypt
  3942. ___
  3943. }
  3944. # int ${PREFIX}_set_decrypt_key(const unsigned char *inp,
  3945. # int bits, AES_KEY *key)
  3946. #
  3947. # input: $inp user-supplied key
  3948. # $bits $inp length in bits
  3949. # $key pointer to key schedule
  3950. # output: %eax 0 denoting success, -1 or -2 - failure (see C)
  3951. # *$key key schedule
  3952. #
  3953. { my ($inp,$bits,$key) = @_4args;
  3954. $bits =~ s/%r/%e/;
  3955. $code.=<<___;
  3956. .globl ${PREFIX}_set_decrypt_key
  3957. .type ${PREFIX}_set_decrypt_key,\@abi-omnipotent
  3958. .align 16
  3959. ${PREFIX}_set_decrypt_key:
  3960. .cfi_startproc
  3961. .byte 0x48,0x83,0xEC,0x08 # sub rsp,8
  3962. .cfi_adjust_cfa_offset 8
  3963. call __aesni_set_encrypt_key
  3964. shl \$4,$bits # rounds-1 after _aesni_set_encrypt_key
  3965. test %eax,%eax
  3966. jnz .Ldec_key_ret
  3967. lea 16($key,$bits),$inp # points at the end of key schedule
  3968. $movkey ($key),%xmm0 # just swap
  3969. $movkey ($inp),%xmm1
  3970. $movkey %xmm0,($inp)
  3971. $movkey %xmm1,($key)
  3972. lea 16($key),$key
  3973. lea -16($inp),$inp
  3974. .Ldec_key_inverse:
  3975. $movkey ($key),%xmm0 # swap and inverse
  3976. $movkey ($inp),%xmm1
  3977. aesimc %xmm0,%xmm0
  3978. aesimc %xmm1,%xmm1
  3979. lea 16($key),$key
  3980. lea -16($inp),$inp
  3981. $movkey %xmm0,16($inp)
  3982. $movkey %xmm1,-16($key)
  3983. cmp $key,$inp
  3984. ja .Ldec_key_inverse
  3985. $movkey ($key),%xmm0 # inverse middle
  3986. aesimc %xmm0,%xmm0
  3987. pxor %xmm1,%xmm1
  3988. $movkey %xmm0,($inp)
  3989. pxor %xmm0,%xmm0
  3990. .Ldec_key_ret:
  3991. add \$8,%rsp
  3992. .cfi_adjust_cfa_offset -8
  3993. ret
  3994. .cfi_endproc
  3995. .LSEH_end_set_decrypt_key:
  3996. .size ${PREFIX}_set_decrypt_key,.-${PREFIX}_set_decrypt_key
  3997. ___
  3998. # This is based on submission from Intel by
  3999. # Huang Ying
  4000. # Vinodh Gopal
  4001. # Kahraman Akdemir
  4002. #
  4003. # Aggressively optimized in respect to aeskeygenassist's critical path
  4004. # and is contained in %xmm0-5 to meet Win64 ABI requirement.
  4005. #
  4006. # int ${PREFIX}_set_encrypt_key(const unsigned char *inp,
  4007. # int bits, AES_KEY * const key);
  4008. #
  4009. # input: $inp user-supplied key
  4010. # $bits $inp length in bits
  4011. # $key pointer to key schedule
  4012. # output: %eax 0 denoting success, -1 or -2 - failure (see C)
  4013. # $bits rounds-1 (used in aesni_set_decrypt_key)
  4014. # *$key key schedule
  4015. # $key pointer to key schedule (used in
  4016. # aesni_set_decrypt_key)
  4017. #
  4018. # Subroutine is frame-less, which means that only volatile registers
  4019. # are used. Note that it's declared "abi-omnipotent", which means that
  4020. # amount of volatile registers is smaller on Windows.
  4021. #
  4022. $code.=<<___;
  4023. .globl ${PREFIX}_set_encrypt_key
  4024. .type ${PREFIX}_set_encrypt_key,\@abi-omnipotent
  4025. .align 16
  4026. ${PREFIX}_set_encrypt_key:
  4027. __aesni_set_encrypt_key:
  4028. .cfi_startproc
  4029. .byte 0x48,0x83,0xEC,0x08 # sub rsp,8
  4030. .cfi_adjust_cfa_offset 8
  4031. mov \$-1,%rax
  4032. test $inp,$inp
  4033. jz .Lenc_key_ret
  4034. test $key,$key
  4035. jz .Lenc_key_ret
  4036. mov \$`1<<28|1<<11`,%r10d # AVX and XOP bits
  4037. movups ($inp),%xmm0 # pull first 128 bits of *userKey
  4038. xorps %xmm4,%xmm4 # low dword of xmm4 is assumed 0
  4039. and OPENSSL_ia32cap_P+4(%rip),%r10d
  4040. lea 16($key),%rax # %rax is used as modifiable copy of $key
  4041. cmp \$256,$bits
  4042. je .L14rounds
  4043. cmp \$192,$bits
  4044. je .L12rounds
  4045. cmp \$128,$bits
  4046. jne .Lbad_keybits
  4047. .L10rounds:
  4048. mov \$9,$bits # 10 rounds for 128-bit key
  4049. cmp \$`1<<28`,%r10d # AVX, bit no XOP
  4050. je .L10rounds_alt
  4051. $movkey %xmm0,($key) # round 0
  4052. aeskeygenassist \$0x1,%xmm0,%xmm1 # round 1
  4053. call .Lkey_expansion_128_cold
  4054. aeskeygenassist \$0x2,%xmm0,%xmm1 # round 2
  4055. call .Lkey_expansion_128
  4056. aeskeygenassist \$0x4,%xmm0,%xmm1 # round 3
  4057. call .Lkey_expansion_128
  4058. aeskeygenassist \$0x8,%xmm0,%xmm1 # round 4
  4059. call .Lkey_expansion_128
  4060. aeskeygenassist \$0x10,%xmm0,%xmm1 # round 5
  4061. call .Lkey_expansion_128
  4062. aeskeygenassist \$0x20,%xmm0,%xmm1 # round 6
  4063. call .Lkey_expansion_128
  4064. aeskeygenassist \$0x40,%xmm0,%xmm1 # round 7
  4065. call .Lkey_expansion_128
  4066. aeskeygenassist \$0x80,%xmm0,%xmm1 # round 8
  4067. call .Lkey_expansion_128
  4068. aeskeygenassist \$0x1b,%xmm0,%xmm1 # round 9
  4069. call .Lkey_expansion_128
  4070. aeskeygenassist \$0x36,%xmm0,%xmm1 # round 10
  4071. call .Lkey_expansion_128
  4072. $movkey %xmm0,(%rax)
  4073. mov $bits,80(%rax) # 240(%rdx)
  4074. xor %eax,%eax
  4075. jmp .Lenc_key_ret
  4076. .align 16
  4077. .L10rounds_alt:
  4078. movdqa .Lkey_rotate(%rip),%xmm5
  4079. mov \$8,%r10d
  4080. movdqa .Lkey_rcon1(%rip),%xmm4
  4081. movdqa %xmm0,%xmm2
  4082. movdqu %xmm0,($key)
  4083. jmp .Loop_key128
  4084. .align 16
  4085. .Loop_key128:
  4086. pshufb %xmm5,%xmm0
  4087. aesenclast %xmm4,%xmm0
  4088. pslld \$1,%xmm4
  4089. lea 16(%rax),%rax
  4090. movdqa %xmm2,%xmm3
  4091. pslldq \$4,%xmm2
  4092. pxor %xmm2,%xmm3
  4093. pslldq \$4,%xmm2
  4094. pxor %xmm2,%xmm3
  4095. pslldq \$4,%xmm2
  4096. pxor %xmm3,%xmm2
  4097. pxor %xmm2,%xmm0
  4098. movdqu %xmm0,-16(%rax)
  4099. movdqa %xmm0,%xmm2
  4100. dec %r10d
  4101. jnz .Loop_key128
  4102. movdqa .Lkey_rcon1b(%rip),%xmm4
  4103. pshufb %xmm5,%xmm0
  4104. aesenclast %xmm4,%xmm0
  4105. pslld \$1,%xmm4
  4106. movdqa %xmm2,%xmm3
  4107. pslldq \$4,%xmm2
  4108. pxor %xmm2,%xmm3
  4109. pslldq \$4,%xmm2
  4110. pxor %xmm2,%xmm3
  4111. pslldq \$4,%xmm2
  4112. pxor %xmm3,%xmm2
  4113. pxor %xmm2,%xmm0
  4114. movdqu %xmm0,(%rax)
  4115. movdqa %xmm0,%xmm2
  4116. pshufb %xmm5,%xmm0
  4117. aesenclast %xmm4,%xmm0
  4118. movdqa %xmm2,%xmm3
  4119. pslldq \$4,%xmm2
  4120. pxor %xmm2,%xmm3
  4121. pslldq \$4,%xmm2
  4122. pxor %xmm2,%xmm3
  4123. pslldq \$4,%xmm2
  4124. pxor %xmm3,%xmm2
  4125. pxor %xmm2,%xmm0
  4126. movdqu %xmm0,16(%rax)
  4127. mov $bits,96(%rax) # 240($key)
  4128. xor %eax,%eax
  4129. jmp .Lenc_key_ret
  4130. .align 16
  4131. .L12rounds:
  4132. movq 16($inp),%xmm2 # remaining 1/3 of *userKey
  4133. mov \$11,$bits # 12 rounds for 192
  4134. cmp \$`1<<28`,%r10d # AVX, but no XOP
  4135. je .L12rounds_alt
  4136. $movkey %xmm0,($key) # round 0
  4137. aeskeygenassist \$0x1,%xmm2,%xmm1 # round 1,2
  4138. call .Lkey_expansion_192a_cold
  4139. aeskeygenassist \$0x2,%xmm2,%xmm1 # round 2,3
  4140. call .Lkey_expansion_192b
  4141. aeskeygenassist \$0x4,%xmm2,%xmm1 # round 4,5
  4142. call .Lkey_expansion_192a
  4143. aeskeygenassist \$0x8,%xmm2,%xmm1 # round 5,6
  4144. call .Lkey_expansion_192b
  4145. aeskeygenassist \$0x10,%xmm2,%xmm1 # round 7,8
  4146. call .Lkey_expansion_192a
  4147. aeskeygenassist \$0x20,%xmm2,%xmm1 # round 8,9
  4148. call .Lkey_expansion_192b
  4149. aeskeygenassist \$0x40,%xmm2,%xmm1 # round 10,11
  4150. call .Lkey_expansion_192a
  4151. aeskeygenassist \$0x80,%xmm2,%xmm1 # round 11,12
  4152. call .Lkey_expansion_192b
  4153. $movkey %xmm0,(%rax)
  4154. mov $bits,48(%rax) # 240(%rdx)
  4155. xor %rax, %rax
  4156. jmp .Lenc_key_ret
  4157. .align 16
  4158. .L12rounds_alt:
  4159. movdqa .Lkey_rotate192(%rip),%xmm5
  4160. movdqa .Lkey_rcon1(%rip),%xmm4
  4161. mov \$8,%r10d
  4162. movdqu %xmm0,($key)
  4163. jmp .Loop_key192
  4164. .align 16
  4165. .Loop_key192:
  4166. movq %xmm2,0(%rax)
  4167. movdqa %xmm2,%xmm1
  4168. pshufb %xmm5,%xmm2
  4169. aesenclast %xmm4,%xmm2
  4170. pslld \$1, %xmm4
  4171. lea 24(%rax),%rax
  4172. movdqa %xmm0,%xmm3
  4173. pslldq \$4,%xmm0
  4174. pxor %xmm0,%xmm3
  4175. pslldq \$4,%xmm0
  4176. pxor %xmm0,%xmm3
  4177. pslldq \$4,%xmm0
  4178. pxor %xmm3,%xmm0
  4179. pshufd \$0xff,%xmm0,%xmm3
  4180. pxor %xmm1,%xmm3
  4181. pslldq \$4,%xmm1
  4182. pxor %xmm1,%xmm3
  4183. pxor %xmm2,%xmm0
  4184. pxor %xmm3,%xmm2
  4185. movdqu %xmm0,-16(%rax)
  4186. dec %r10d
  4187. jnz .Loop_key192
  4188. mov $bits,32(%rax) # 240($key)
  4189. xor %eax,%eax
  4190. jmp .Lenc_key_ret
  4191. .align 16
  4192. .L14rounds:
  4193. movups 16($inp),%xmm2 # remaining half of *userKey
  4194. mov \$13,$bits # 14 rounds for 256
  4195. lea 16(%rax),%rax
  4196. cmp \$`1<<28`,%r10d # AVX, but no XOP
  4197. je .L14rounds_alt
  4198. $movkey %xmm0,($key) # round 0
  4199. $movkey %xmm2,16($key) # round 1
  4200. aeskeygenassist \$0x1,%xmm2,%xmm1 # round 2
  4201. call .Lkey_expansion_256a_cold
  4202. aeskeygenassist \$0x1,%xmm0,%xmm1 # round 3
  4203. call .Lkey_expansion_256b
  4204. aeskeygenassist \$0x2,%xmm2,%xmm1 # round 4
  4205. call .Lkey_expansion_256a
  4206. aeskeygenassist \$0x2,%xmm0,%xmm1 # round 5
  4207. call .Lkey_expansion_256b
  4208. aeskeygenassist \$0x4,%xmm2,%xmm1 # round 6
  4209. call .Lkey_expansion_256a
  4210. aeskeygenassist \$0x4,%xmm0,%xmm1 # round 7
  4211. call .Lkey_expansion_256b
  4212. aeskeygenassist \$0x8,%xmm2,%xmm1 # round 8
  4213. call .Lkey_expansion_256a
  4214. aeskeygenassist \$0x8,%xmm0,%xmm1 # round 9
  4215. call .Lkey_expansion_256b
  4216. aeskeygenassist \$0x10,%xmm2,%xmm1 # round 10
  4217. call .Lkey_expansion_256a
  4218. aeskeygenassist \$0x10,%xmm0,%xmm1 # round 11
  4219. call .Lkey_expansion_256b
  4220. aeskeygenassist \$0x20,%xmm2,%xmm1 # round 12
  4221. call .Lkey_expansion_256a
  4222. aeskeygenassist \$0x20,%xmm0,%xmm1 # round 13
  4223. call .Lkey_expansion_256b
  4224. aeskeygenassist \$0x40,%xmm2,%xmm1 # round 14
  4225. call .Lkey_expansion_256a
  4226. $movkey %xmm0,(%rax)
  4227. mov $bits,16(%rax) # 240(%rdx)
  4228. xor %rax,%rax
  4229. jmp .Lenc_key_ret
  4230. .align 16
  4231. .L14rounds_alt:
  4232. movdqa .Lkey_rotate(%rip),%xmm5
  4233. movdqa .Lkey_rcon1(%rip),%xmm4
  4234. mov \$7,%r10d
  4235. movdqu %xmm0,0($key)
  4236. movdqa %xmm2,%xmm1
  4237. movdqu %xmm2,16($key)
  4238. jmp .Loop_key256
  4239. .align 16
  4240. .Loop_key256:
  4241. pshufb %xmm5,%xmm2
  4242. aesenclast %xmm4,%xmm2
  4243. movdqa %xmm0,%xmm3
  4244. pslldq \$4,%xmm0
  4245. pxor %xmm0,%xmm3
  4246. pslldq \$4,%xmm0
  4247. pxor %xmm0,%xmm3
  4248. pslldq \$4,%xmm0
  4249. pxor %xmm3,%xmm0
  4250. pslld \$1,%xmm4
  4251. pxor %xmm2,%xmm0
  4252. movdqu %xmm0,(%rax)
  4253. dec %r10d
  4254. jz .Ldone_key256
  4255. pshufd \$0xff,%xmm0,%xmm2
  4256. pxor %xmm3,%xmm3
  4257. aesenclast %xmm3,%xmm2
  4258. movdqa %xmm1,%xmm3
  4259. pslldq \$4,%xmm1
  4260. pxor %xmm1,%xmm3
  4261. pslldq \$4,%xmm1
  4262. pxor %xmm1,%xmm3
  4263. pslldq \$4,%xmm1
  4264. pxor %xmm3,%xmm1
  4265. pxor %xmm1,%xmm2
  4266. movdqu %xmm2,16(%rax)
  4267. lea 32(%rax),%rax
  4268. movdqa %xmm2,%xmm1
  4269. jmp .Loop_key256
  4270. .Ldone_key256:
  4271. mov $bits,16(%rax) # 240($key)
  4272. xor %eax,%eax
  4273. jmp .Lenc_key_ret
  4274. .align 16
  4275. .Lbad_keybits:
  4276. mov \$-2,%rax
  4277. .Lenc_key_ret:
  4278. pxor %xmm0,%xmm0
  4279. pxor %xmm1,%xmm1
  4280. pxor %xmm2,%xmm2
  4281. pxor %xmm3,%xmm3
  4282. pxor %xmm4,%xmm4
  4283. pxor %xmm5,%xmm5
  4284. add \$8,%rsp
  4285. .cfi_adjust_cfa_offset -8
  4286. ret
  4287. .LSEH_end_set_encrypt_key:
  4288. .align 16
  4289. .Lkey_expansion_128:
  4290. $movkey %xmm0,(%rax)
  4291. lea 16(%rax),%rax
  4292. .Lkey_expansion_128_cold:
  4293. shufps \$0b00010000,%xmm0,%xmm4
  4294. xorps %xmm4, %xmm0
  4295. shufps \$0b10001100,%xmm0,%xmm4
  4296. xorps %xmm4, %xmm0
  4297. shufps \$0b11111111,%xmm1,%xmm1 # critical path
  4298. xorps %xmm1,%xmm0
  4299. ret
  4300. .align 16
  4301. .Lkey_expansion_192a:
  4302. $movkey %xmm0,(%rax)
  4303. lea 16(%rax),%rax
  4304. .Lkey_expansion_192a_cold:
  4305. movaps %xmm2, %xmm5
  4306. .Lkey_expansion_192b_warm:
  4307. shufps \$0b00010000,%xmm0,%xmm4
  4308. movdqa %xmm2,%xmm3
  4309. xorps %xmm4,%xmm0
  4310. shufps \$0b10001100,%xmm0,%xmm4
  4311. pslldq \$4,%xmm3
  4312. xorps %xmm4,%xmm0
  4313. pshufd \$0b01010101,%xmm1,%xmm1 # critical path
  4314. pxor %xmm3,%xmm2
  4315. pxor %xmm1,%xmm0
  4316. pshufd \$0b11111111,%xmm0,%xmm3
  4317. pxor %xmm3,%xmm2
  4318. ret
  4319. .align 16
  4320. .Lkey_expansion_192b:
  4321. movaps %xmm0,%xmm3
  4322. shufps \$0b01000100,%xmm0,%xmm5
  4323. $movkey %xmm5,(%rax)
  4324. shufps \$0b01001110,%xmm2,%xmm3
  4325. $movkey %xmm3,16(%rax)
  4326. lea 32(%rax),%rax
  4327. jmp .Lkey_expansion_192b_warm
  4328. .align 16
  4329. .Lkey_expansion_256a:
  4330. $movkey %xmm2,(%rax)
  4331. lea 16(%rax),%rax
  4332. .Lkey_expansion_256a_cold:
  4333. shufps \$0b00010000,%xmm0,%xmm4
  4334. xorps %xmm4,%xmm0
  4335. shufps \$0b10001100,%xmm0,%xmm4
  4336. xorps %xmm4,%xmm0
  4337. shufps \$0b11111111,%xmm1,%xmm1 # critical path
  4338. xorps %xmm1,%xmm0
  4339. ret
  4340. .align 16
  4341. .Lkey_expansion_256b:
  4342. $movkey %xmm0,(%rax)
  4343. lea 16(%rax),%rax
  4344. shufps \$0b00010000,%xmm2,%xmm4
  4345. xorps %xmm4,%xmm2
  4346. shufps \$0b10001100,%xmm2,%xmm4
  4347. xorps %xmm4,%xmm2
  4348. shufps \$0b10101010,%xmm1,%xmm1 # critical path
  4349. xorps %xmm1,%xmm2
  4350. ret
  4351. .cfi_endproc
  4352. .size ${PREFIX}_set_encrypt_key,.-${PREFIX}_set_encrypt_key
  4353. .size __aesni_set_encrypt_key,.-__aesni_set_encrypt_key
  4354. ___
  4355. }
  4356. $code.=<<___;
  4357. .align 64
  4358. .Lbswap_mask:
  4359. .byte 15,14,13,12,11,10,9,8,7,6,5,4,3,2,1,0
  4360. .Lincrement32:
  4361. .long 6,6,6,0
  4362. .Lincrement64:
  4363. .long 1,0,0,0
  4364. .Lxts_magic:
  4365. .long 0x87,0,1,0
  4366. .Lincrement1:
  4367. .byte 0,0,0,0,0,0,0,0,0,0,0,0,0,0,0,1
  4368. .Lkey_rotate:
  4369. .long 0x0c0f0e0d,0x0c0f0e0d,0x0c0f0e0d,0x0c0f0e0d
  4370. .Lkey_rotate192:
  4371. .long 0x04070605,0x04070605,0x04070605,0x04070605
  4372. .Lkey_rcon1:
  4373. .long 1,1,1,1
  4374. .Lkey_rcon1b:
  4375. .long 0x1b,0x1b,0x1b,0x1b
  4376. .asciz "AES for Intel AES-NI, CRYPTOGAMS by <appro\@openssl.org>"
  4377. .align 64
  4378. ___
  4379. # EXCEPTION_DISPOSITION handler (EXCEPTION_RECORD *rec,ULONG64 frame,
  4380. # CONTEXT *context,DISPATCHER_CONTEXT *disp)
  4381. if ($win64) {
  4382. $rec="%rcx";
  4383. $frame="%rdx";
  4384. $context="%r8";
  4385. $disp="%r9";
  4386. $code.=<<___;
  4387. .extern __imp_RtlVirtualUnwind
  4388. ___
  4389. $code.=<<___ if ($PREFIX eq "aesni");
  4390. .type ecb_ccm64_se_handler,\@abi-omnipotent
  4391. .align 16
  4392. ecb_ccm64_se_handler:
  4393. push %rsi
  4394. push %rdi
  4395. push %rbx
  4396. push %rbp
  4397. push %r12
  4398. push %r13
  4399. push %r14
  4400. push %r15
  4401. pushfq
  4402. sub \$64,%rsp
  4403. mov 120($context),%rax # pull context->Rax
  4404. mov 248($context),%rbx # pull context->Rip
  4405. mov 8($disp),%rsi # disp->ImageBase
  4406. mov 56($disp),%r11 # disp->HandlerData
  4407. mov 0(%r11),%r10d # HandlerData[0]
  4408. lea (%rsi,%r10),%r10 # prologue label
  4409. cmp %r10,%rbx # context->Rip<prologue label
  4410. jb .Lcommon_seh_tail
  4411. mov 152($context),%rax # pull context->Rsp
  4412. mov 4(%r11),%r10d # HandlerData[1]
  4413. lea (%rsi,%r10),%r10 # epilogue label
  4414. cmp %r10,%rbx # context->Rip>=epilogue label
  4415. jae .Lcommon_seh_tail
  4416. lea 0(%rax),%rsi # %xmm save area
  4417. lea 512($context),%rdi # &context.Xmm6
  4418. mov \$8,%ecx # 4*sizeof(%xmm0)/sizeof(%rax)
  4419. .long 0xa548f3fc # cld; rep movsq
  4420. lea 0x58(%rax),%rax # adjust stack pointer
  4421. jmp .Lcommon_seh_tail
  4422. .size ecb_ccm64_se_handler,.-ecb_ccm64_se_handler
  4423. .type ctr_xts_se_handler,\@abi-omnipotent
  4424. .align 16
  4425. ctr_xts_se_handler:
  4426. push %rsi
  4427. push %rdi
  4428. push %rbx
  4429. push %rbp
  4430. push %r12
  4431. push %r13
  4432. push %r14
  4433. push %r15
  4434. pushfq
  4435. sub \$64,%rsp
  4436. mov 120($context),%rax # pull context->Rax
  4437. mov 248($context),%rbx # pull context->Rip
  4438. mov 8($disp),%rsi # disp->ImageBase
  4439. mov 56($disp),%r11 # disp->HandlerData
  4440. mov 0(%r11),%r10d # HandlerData[0]
  4441. lea (%rsi,%r10),%r10 # prologue label
  4442. cmp %r10,%rbx # context->Rip<prologue label
  4443. jb .Lcommon_seh_tail
  4444. mov 152($context),%rax # pull context->Rsp
  4445. mov 4(%r11),%r10d # HandlerData[1]
  4446. lea (%rsi,%r10),%r10 # epilogue label
  4447. cmp %r10,%rbx # context->Rip>=epilogue label
  4448. jae .Lcommon_seh_tail
  4449. mov 208($context),%rax # pull context->R11
  4450. lea -0xa8(%rax),%rsi # %xmm save area
  4451. lea 512($context),%rdi # & context.Xmm6
  4452. mov \$20,%ecx # 10*sizeof(%xmm0)/sizeof(%rax)
  4453. .long 0xa548f3fc # cld; rep movsq
  4454. mov -8(%rax),%rbp # restore saved %rbp
  4455. mov %rbp,160($context) # restore context->Rbp
  4456. jmp .Lcommon_seh_tail
  4457. .size ctr_xts_se_handler,.-ctr_xts_se_handler
  4458. .type ocb_se_handler,\@abi-omnipotent
  4459. .align 16
  4460. ocb_se_handler:
  4461. push %rsi
  4462. push %rdi
  4463. push %rbx
  4464. push %rbp
  4465. push %r12
  4466. push %r13
  4467. push %r14
  4468. push %r15
  4469. pushfq
  4470. sub \$64,%rsp
  4471. mov 120($context),%rax # pull context->Rax
  4472. mov 248($context),%rbx # pull context->Rip
  4473. mov 8($disp),%rsi # disp->ImageBase
  4474. mov 56($disp),%r11 # disp->HandlerData
  4475. mov 0(%r11),%r10d # HandlerData[0]
  4476. lea (%rsi,%r10),%r10 # prologue label
  4477. cmp %r10,%rbx # context->Rip<prologue label
  4478. jb .Lcommon_seh_tail
  4479. mov 4(%r11),%r10d # HandlerData[1]
  4480. lea (%rsi,%r10),%r10 # epilogue label
  4481. cmp %r10,%rbx # context->Rip>=epilogue label
  4482. jae .Lcommon_seh_tail
  4483. mov 8(%r11),%r10d # HandlerData[2]
  4484. lea (%rsi,%r10),%r10
  4485. cmp %r10,%rbx # context->Rip>=pop label
  4486. jae .Locb_no_xmm
  4487. mov 152($context),%rax # pull context->Rsp
  4488. lea (%rax),%rsi # %xmm save area
  4489. lea 512($context),%rdi # & context.Xmm6
  4490. mov \$20,%ecx # 10*sizeof(%xmm0)/sizeof(%rax)
  4491. .long 0xa548f3fc # cld; rep movsq
  4492. lea 0xa0+0x28(%rax),%rax
  4493. .Locb_no_xmm:
  4494. mov -8(%rax),%rbx
  4495. mov -16(%rax),%rbp
  4496. mov -24(%rax),%r12
  4497. mov -32(%rax),%r13
  4498. mov -40(%rax),%r14
  4499. mov %rbx,144($context) # restore context->Rbx
  4500. mov %rbp,160($context) # restore context->Rbp
  4501. mov %r12,216($context) # restore context->R12
  4502. mov %r13,224($context) # restore context->R13
  4503. mov %r14,232($context) # restore context->R14
  4504. jmp .Lcommon_seh_tail
  4505. .size ocb_se_handler,.-ocb_se_handler
  4506. ___
  4507. $code.=<<___;
  4508. .type cbc_se_handler,\@abi-omnipotent
  4509. .align 16
  4510. cbc_se_handler:
  4511. push %rsi
  4512. push %rdi
  4513. push %rbx
  4514. push %rbp
  4515. push %r12
  4516. push %r13
  4517. push %r14
  4518. push %r15
  4519. pushfq
  4520. sub \$64,%rsp
  4521. mov 152($context),%rax # pull context->Rsp
  4522. mov 248($context),%rbx # pull context->Rip
  4523. lea .Lcbc_decrypt_bulk(%rip),%r10
  4524. cmp %r10,%rbx # context->Rip<"prologue" label
  4525. jb .Lcommon_seh_tail
  4526. mov 120($context),%rax # pull context->Rax
  4527. lea .Lcbc_decrypt_body(%rip),%r10
  4528. cmp %r10,%rbx # context->Rip<cbc_decrypt_body
  4529. jb .Lcommon_seh_tail
  4530. mov 152($context),%rax # pull context->Rsp
  4531. lea .Lcbc_ret(%rip),%r10
  4532. cmp %r10,%rbx # context->Rip>="epilogue" label
  4533. jae .Lcommon_seh_tail
  4534. lea 16(%rax),%rsi # %xmm save area
  4535. lea 512($context),%rdi # &context.Xmm6
  4536. mov \$20,%ecx # 10*sizeof(%xmm0)/sizeof(%rax)
  4537. .long 0xa548f3fc # cld; rep movsq
  4538. mov 208($context),%rax # pull context->R11
  4539. mov -8(%rax),%rbp # restore saved %rbp
  4540. mov %rbp,160($context) # restore context->Rbp
  4541. .Lcommon_seh_tail:
  4542. mov 8(%rax),%rdi
  4543. mov 16(%rax),%rsi
  4544. mov %rax,152($context) # restore context->Rsp
  4545. mov %rsi,168($context) # restore context->Rsi
  4546. mov %rdi,176($context) # restore context->Rdi
  4547. mov 40($disp),%rdi # disp->ContextRecord
  4548. mov $context,%rsi # context
  4549. mov \$154,%ecx # sizeof(CONTEXT)
  4550. .long 0xa548f3fc # cld; rep movsq
  4551. mov $disp,%rsi
  4552. xor %rcx,%rcx # arg1, UNW_FLAG_NHANDLER
  4553. mov 8(%rsi),%rdx # arg2, disp->ImageBase
  4554. mov 0(%rsi),%r8 # arg3, disp->ControlPc
  4555. mov 16(%rsi),%r9 # arg4, disp->FunctionEntry
  4556. mov 40(%rsi),%r10 # disp->ContextRecord
  4557. lea 56(%rsi),%r11 # &disp->HandlerData
  4558. lea 24(%rsi),%r12 # &disp->EstablisherFrame
  4559. mov %r10,32(%rsp) # arg5
  4560. mov %r11,40(%rsp) # arg6
  4561. mov %r12,48(%rsp) # arg7
  4562. mov %rcx,56(%rsp) # arg8, (NULL)
  4563. call *__imp_RtlVirtualUnwind(%rip)
  4564. mov \$1,%eax # ExceptionContinueSearch
  4565. add \$64,%rsp
  4566. popfq
  4567. pop %r15
  4568. pop %r14
  4569. pop %r13
  4570. pop %r12
  4571. pop %rbp
  4572. pop %rbx
  4573. pop %rdi
  4574. pop %rsi
  4575. ret
  4576. .size cbc_se_handler,.-cbc_se_handler
  4577. .section .pdata
  4578. .align 4
  4579. ___
  4580. $code.=<<___ if ($PREFIX eq "aesni");
  4581. .rva .LSEH_begin_aesni_ecb_encrypt
  4582. .rva .LSEH_end_aesni_ecb_encrypt
  4583. .rva .LSEH_info_ecb
  4584. .rva .LSEH_begin_aesni_ccm64_encrypt_blocks
  4585. .rva .LSEH_end_aesni_ccm64_encrypt_blocks
  4586. .rva .LSEH_info_ccm64_enc
  4587. .rva .LSEH_begin_aesni_ccm64_decrypt_blocks
  4588. .rva .LSEH_end_aesni_ccm64_decrypt_blocks
  4589. .rva .LSEH_info_ccm64_dec
  4590. .rva .LSEH_begin_aesni_ctr32_encrypt_blocks
  4591. .rva .LSEH_end_aesni_ctr32_encrypt_blocks
  4592. .rva .LSEH_info_ctr32
  4593. .rva .LSEH_begin_aesni_xts_encrypt
  4594. .rva .LSEH_end_aesni_xts_encrypt
  4595. .rva .LSEH_info_xts_enc
  4596. .rva .LSEH_begin_aesni_xts_decrypt
  4597. .rva .LSEH_end_aesni_xts_decrypt
  4598. .rva .LSEH_info_xts_dec
  4599. .rva .LSEH_begin_aesni_ocb_encrypt
  4600. .rva .LSEH_end_aesni_ocb_encrypt
  4601. .rva .LSEH_info_ocb_enc
  4602. .rva .LSEH_begin_aesni_ocb_decrypt
  4603. .rva .LSEH_end_aesni_ocb_decrypt
  4604. .rva .LSEH_info_ocb_dec
  4605. ___
  4606. $code.=<<___;
  4607. .rva .LSEH_begin_${PREFIX}_cbc_encrypt
  4608. .rva .LSEH_end_${PREFIX}_cbc_encrypt
  4609. .rva .LSEH_info_cbc
  4610. .rva ${PREFIX}_set_decrypt_key
  4611. .rva .LSEH_end_set_decrypt_key
  4612. .rva .LSEH_info_key
  4613. .rva ${PREFIX}_set_encrypt_key
  4614. .rva .LSEH_end_set_encrypt_key
  4615. .rva .LSEH_info_key
  4616. .section .xdata
  4617. .align 8
  4618. ___
  4619. $code.=<<___ if ($PREFIX eq "aesni");
  4620. .LSEH_info_ecb:
  4621. .byte 9,0,0,0
  4622. .rva ecb_ccm64_se_handler
  4623. .rva .Lecb_enc_body,.Lecb_enc_ret # HandlerData[]
  4624. .LSEH_info_ccm64_enc:
  4625. .byte 9,0,0,0
  4626. .rva ecb_ccm64_se_handler
  4627. .rva .Lccm64_enc_body,.Lccm64_enc_ret # HandlerData[]
  4628. .LSEH_info_ccm64_dec:
  4629. .byte 9,0,0,0
  4630. .rva ecb_ccm64_se_handler
  4631. .rva .Lccm64_dec_body,.Lccm64_dec_ret # HandlerData[]
  4632. .LSEH_info_ctr32:
  4633. .byte 9,0,0,0
  4634. .rva ctr_xts_se_handler
  4635. .rva .Lctr32_body,.Lctr32_epilogue # HandlerData[]
  4636. .LSEH_info_xts_enc:
  4637. .byte 9,0,0,0
  4638. .rva ctr_xts_se_handler
  4639. .rva .Lxts_enc_body,.Lxts_enc_epilogue # HandlerData[]
  4640. .LSEH_info_xts_dec:
  4641. .byte 9,0,0,0
  4642. .rva ctr_xts_se_handler
  4643. .rva .Lxts_dec_body,.Lxts_dec_epilogue # HandlerData[]
  4644. .LSEH_info_ocb_enc:
  4645. .byte 9,0,0,0
  4646. .rva ocb_se_handler
  4647. .rva .Locb_enc_body,.Locb_enc_epilogue # HandlerData[]
  4648. .rva .Locb_enc_pop
  4649. .long 0
  4650. .LSEH_info_ocb_dec:
  4651. .byte 9,0,0,0
  4652. .rva ocb_se_handler
  4653. .rva .Locb_dec_body,.Locb_dec_epilogue # HandlerData[]
  4654. .rva .Locb_dec_pop
  4655. .long 0
  4656. ___
  4657. $code.=<<___;
  4658. .LSEH_info_cbc:
  4659. .byte 9,0,0,0
  4660. .rva cbc_se_handler
  4661. .LSEH_info_key:
  4662. .byte 0x01,0x04,0x01,0x00
  4663. .byte 0x04,0x02,0x00,0x00 # sub rsp,8
  4664. ___
  4665. }
  4666. sub rex {
  4667. local *opcode=shift;
  4668. my ($dst,$src)=@_;
  4669. my $rex=0;
  4670. $rex|=0x04 if($dst>=8);
  4671. $rex|=0x01 if($src>=8);
  4672. push @opcode,$rex|0x40 if($rex);
  4673. }
  4674. sub aesni {
  4675. my $line=shift;
  4676. my @opcode=(0x66);
  4677. if ($line=~/(aeskeygenassist)\s+\$([x0-9a-f]+),\s*%xmm([0-9]+),\s*%xmm([0-9]+)/) {
  4678. rex(\@opcode,$4,$3);
  4679. push @opcode,0x0f,0x3a,0xdf;
  4680. push @opcode,0xc0|($3&7)|(($4&7)<<3); # ModR/M
  4681. my $c=$2;
  4682. push @opcode,$c=~/^0/?oct($c):$c;
  4683. return ".byte\t".join(',',@opcode);
  4684. }
  4685. elsif ($line=~/(aes[a-z]+)\s+%xmm([0-9]+),\s*%xmm([0-9]+)/) {
  4686. my %opcodelet = (
  4687. "aesimc" => 0xdb,
  4688. "aesenc" => 0xdc, "aesenclast" => 0xdd,
  4689. "aesdec" => 0xde, "aesdeclast" => 0xdf
  4690. );
  4691. return undef if (!defined($opcodelet{$1}));
  4692. rex(\@opcode,$3,$2);
  4693. push @opcode,0x0f,0x38,$opcodelet{$1};
  4694. push @opcode,0xc0|($2&7)|(($3&7)<<3); # ModR/M
  4695. return ".byte\t".join(',',@opcode);
  4696. }
  4697. elsif ($line=~/(aes[a-z]+)\s+([0x1-9a-fA-F]*)\(%rsp\),\s*%xmm([0-9]+)/) {
  4698. my %opcodelet = (
  4699. "aesenc" => 0xdc, "aesenclast" => 0xdd,
  4700. "aesdec" => 0xde, "aesdeclast" => 0xdf
  4701. );
  4702. return undef if (!defined($opcodelet{$1}));
  4703. my $off = $2;
  4704. push @opcode,0x44 if ($3>=8);
  4705. push @opcode,0x0f,0x38,$opcodelet{$1};
  4706. push @opcode,0x44|(($3&7)<<3),0x24; # ModR/M
  4707. push @opcode,($off=~/^0/?oct($off):$off)&0xff;
  4708. return ".byte\t".join(',',@opcode);
  4709. }
  4710. return $line;
  4711. }
  4712. sub movbe {
  4713. ".byte 0x0f,0x38,0xf1,0x44,0x24,".shift;
  4714. }
  4715. $code =~ s/\`([^\`]*)\`/eval($1)/gem;
  4716. $code =~ s/\b(aes.*%xmm[0-9]+).*$/aesni($1)/gem;
  4717. #$code =~ s/\bmovbe\s+%eax/bswap %eax; mov %eax/gm; # debugging artefact
  4718. $code =~ s/\bmovbe\s+%eax,\s*([0-9]+)\(%rsp\)/movbe($1)/gem;
  4719. print $code;
  4720. close STDOUT or die "error closing STDOUT: $!";