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  1. ;*****************************************************************************
  2. ;* MMX/SSE2/AVX-optimized H.264 deblocking code
  3. ;*****************************************************************************
  4. ;* Copyright (C) 2005-2011 x264 project
  5. ;*
  6. ;* Authors: Loren Merritt <lorenm@u.washington.edu>
  7. ;* Jason Garrett-Glaser <darkshikari@gmail.com>
  8. ;* Oskar Arvidsson <oskar@irock.se>
  9. ;*
  10. ;* This file is part of Libav.
  11. ;*
  12. ;* Libav is free software; you can redistribute it and/or
  13. ;* modify it under the terms of the GNU Lesser General Public
  14. ;* License as published by the Free Software Foundation; either
  15. ;* version 2.1 of the License, or (at your option) any later version.
  16. ;*
  17. ;* Libav is distributed in the hope that it will be useful,
  18. ;* but WITHOUT ANY WARRANTY; without even the implied warranty of
  19. ;* MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the GNU
  20. ;* Lesser General Public License for more details.
  21. ;*
  22. ;* You should have received a copy of the GNU Lesser General Public
  23. ;* License along with Libav; if not, write to the Free Software
  24. ;* Foundation, Inc., 51 Franklin Street, Fifth Floor, Boston, MA 02110-1301 USA
  25. ;******************************************************************************
  26. %include "libavutil/x86/x86util.asm"
  27. SECTION_RODATA
  28. pb_3_1: times 4 db 3, 1
  29. SECTION .text
  30. cextern pb_0
  31. cextern pb_1
  32. cextern pb_3
  33. cextern pb_A1
  34. ; expands to [base],...,[base+7*stride]
  35. %define PASS8ROWS(base, base3, stride, stride3) \
  36. [base], [base+stride], [base+stride*2], [base3], \
  37. [base3+stride], [base3+stride*2], [base3+stride3], [base3+stride*4]
  38. %define PASS8ROWS(base, base3, stride, stride3, offset) \
  39. PASS8ROWS(base+offset, base3+offset, stride, stride3)
  40. ; in: 8 rows of 4 bytes in %4..%11
  41. ; out: 4 rows of 8 bytes in m0..m3
  42. %macro TRANSPOSE4x8_LOAD 11
  43. movh m0, %4
  44. movh m2, %5
  45. movh m1, %6
  46. movh m3, %7
  47. punpckl%1 m0, m2
  48. punpckl%1 m1, m3
  49. mova m2, m0
  50. punpckl%2 m0, m1
  51. punpckh%2 m2, m1
  52. movh m4, %8
  53. movh m6, %9
  54. movh m5, %10
  55. movh m7, %11
  56. punpckl%1 m4, m6
  57. punpckl%1 m5, m7
  58. mova m6, m4
  59. punpckl%2 m4, m5
  60. punpckh%2 m6, m5
  61. punpckh%3 m1, m0, m4
  62. punpckh%3 m3, m2, m6
  63. punpckl%3 m0, m4
  64. punpckl%3 m2, m6
  65. %endmacro
  66. ; in: 4 rows of 8 bytes in m0..m3
  67. ; out: 8 rows of 4 bytes in %1..%8
  68. %macro TRANSPOSE8x4B_STORE 8
  69. punpckhdq m4, m0, m0
  70. punpckhdq m5, m1, m1
  71. punpckhdq m6, m2, m2
  72. punpcklbw m0, m1
  73. punpcklbw m2, m3
  74. punpcklwd m1, m0, m2
  75. punpckhwd m0, m2
  76. movh %1, m1
  77. punpckhdq m1, m1
  78. movh %2, m1
  79. movh %3, m0
  80. punpckhdq m0, m0
  81. movh %4, m0
  82. punpckhdq m3, m3
  83. punpcklbw m4, m5
  84. punpcklbw m6, m3
  85. punpcklwd m5, m4, m6
  86. punpckhwd m4, m6
  87. movh %5, m5
  88. punpckhdq m5, m5
  89. movh %6, m5
  90. movh %7, m4
  91. punpckhdq m4, m4
  92. movh %8, m4
  93. %endmacro
  94. %macro TRANSPOSE4x8B_LOAD 8
  95. TRANSPOSE4x8_LOAD bw, wd, dq, %1, %2, %3, %4, %5, %6, %7, %8
  96. %endmacro
  97. %macro SBUTTERFLY3 4
  98. punpckh%1 %4, %2, %3
  99. punpckl%1 %2, %3
  100. %endmacro
  101. ; in: 8 rows of 8 (only the middle 6 pels are used) in %1..%8
  102. ; out: 6 rows of 8 in [%9+0*16] .. [%9+5*16]
  103. %macro TRANSPOSE6x8_MEM 9
  104. RESET_MM_PERMUTATION
  105. movq m0, %1
  106. movq m1, %2
  107. movq m2, %3
  108. movq m3, %4
  109. movq m4, %5
  110. movq m5, %6
  111. movq m6, %7
  112. SBUTTERFLY bw, 0, 1, 7
  113. SBUTTERFLY bw, 2, 3, 7
  114. SBUTTERFLY bw, 4, 5, 7
  115. movq [%9+0x10], m3
  116. SBUTTERFLY3 bw, m6, %8, m7
  117. SBUTTERFLY wd, 0, 2, 3
  118. SBUTTERFLY wd, 4, 6, 3
  119. punpckhdq m0, m4
  120. movq [%9+0x00], m0
  121. SBUTTERFLY3 wd, m1, [%9+0x10], m3
  122. SBUTTERFLY wd, 5, 7, 0
  123. SBUTTERFLY dq, 1, 5, 0
  124. SBUTTERFLY dq, 2, 6, 0
  125. punpckldq m3, m7
  126. movq [%9+0x10], m2
  127. movq [%9+0x20], m6
  128. movq [%9+0x30], m1
  129. movq [%9+0x40], m5
  130. movq [%9+0x50], m3
  131. RESET_MM_PERMUTATION
  132. %endmacro
  133. ; in: 8 rows of 8 in %1..%8
  134. ; out: 8 rows of 8 in %9..%16
  135. %macro TRANSPOSE8x8_MEM 16
  136. RESET_MM_PERMUTATION
  137. movq m0, %1
  138. movq m1, %2
  139. movq m2, %3
  140. movq m3, %4
  141. movq m4, %5
  142. movq m5, %6
  143. movq m6, %7
  144. SBUTTERFLY bw, 0, 1, 7
  145. SBUTTERFLY bw, 2, 3, 7
  146. SBUTTERFLY bw, 4, 5, 7
  147. SBUTTERFLY3 bw, m6, %8, m7
  148. movq %9, m5
  149. SBUTTERFLY wd, 0, 2, 5
  150. SBUTTERFLY wd, 4, 6, 5
  151. SBUTTERFLY wd, 1, 3, 5
  152. movq %11, m6
  153. movq m6, %9
  154. SBUTTERFLY wd, 6, 7, 5
  155. SBUTTERFLY dq, 0, 4, 5
  156. SBUTTERFLY dq, 1, 6, 5
  157. movq %9, m0
  158. movq %10, m4
  159. movq %13, m1
  160. movq %14, m6
  161. SBUTTERFLY3 dq, m2, %11, m0
  162. SBUTTERFLY dq, 3, 7, 4
  163. movq %11, m2
  164. movq %12, m0
  165. movq %15, m3
  166. movq %16, m7
  167. RESET_MM_PERMUTATION
  168. %endmacro
  169. ; out: %4 = |%1-%2|>%3
  170. ; clobbers: %5
  171. %macro DIFF_GT 5
  172. %if avx_enabled == 0
  173. mova %5, %2
  174. mova %4, %1
  175. psubusb %5, %1
  176. psubusb %4, %2
  177. %else
  178. psubusb %5, %2, %1
  179. psubusb %4, %1, %2
  180. %endif
  181. por %4, %5
  182. psubusb %4, %3
  183. %endmacro
  184. ; out: %4 = |%1-%2|>%3
  185. ; clobbers: %5
  186. %macro DIFF_GT2 5
  187. %if ARCH_X86_64
  188. psubusb %5, %2, %1
  189. psubusb %4, %1, %2
  190. %else
  191. mova %5, %2
  192. mova %4, %1
  193. psubusb %5, %1
  194. psubusb %4, %2
  195. %endif
  196. psubusb %5, %3
  197. psubusb %4, %3
  198. pcmpeqb %4, %5
  199. %endmacro
  200. ; in: m0=p1 m1=p0 m2=q0 m3=q1 %1=alpha-1 %2=beta-1
  201. ; out: m5=beta-1, m7=mask, %3=alpha-1
  202. ; clobbers: m4,m6
  203. %macro LOAD_MASK 2-3
  204. movd m4, %1
  205. movd m5, %2
  206. SPLATW m4, m4
  207. SPLATW m5, m5
  208. packuswb m4, m4 ; 16x alpha-1
  209. packuswb m5, m5 ; 16x beta-1
  210. %if %0>2
  211. mova %3, m4
  212. %endif
  213. DIFF_GT m1, m2, m4, m7, m6 ; |p0-q0| > alpha-1
  214. DIFF_GT m0, m1, m5, m4, m6 ; |p1-p0| > beta-1
  215. por m7, m4
  216. DIFF_GT m3, m2, m5, m4, m6 ; |q1-q0| > beta-1
  217. por m7, m4
  218. pxor m6, m6
  219. pcmpeqb m7, m6
  220. %endmacro
  221. ; in: m0=p1 m1=p0 m2=q0 m3=q1 m7=(tc&mask)
  222. ; out: m1=p0' m2=q0'
  223. ; clobbers: m0,3-6
  224. %macro DEBLOCK_P0_Q0 0
  225. pcmpeqb m4, m4
  226. pxor m5, m1, m2 ; p0^q0
  227. pxor m3, m4
  228. pand m5, [pb_1] ; (p0^q0)&1
  229. pavgb m3, m0 ; (p1 - q1 + 256)>>1
  230. pxor m4, m1
  231. pavgb m3, [pb_3] ; (((p1 - q1 + 256)>>1)+4)>>1 = 64+2+(p1-q1)>>2
  232. pavgb m4, m2 ; (q0 - p0 + 256)>>1
  233. pavgb m3, m5
  234. mova m6, [pb_A1]
  235. paddusb m3, m4 ; d+128+33
  236. psubusb m6, m3
  237. psubusb m3, [pb_A1]
  238. pminub m6, m7
  239. pminub m3, m7
  240. psubusb m1, m6
  241. psubusb m2, m3
  242. paddusb m1, m3
  243. paddusb m2, m6
  244. %endmacro
  245. ; in: m1=p0 m2=q0
  246. ; %1=p1 %2=q2 %3=[q2] %4=[q1] %5=tc0 %6=tmp
  247. ; out: [q1] = clip( (q2+((p0+q0+1)>>1))>>1, q1-tc0, q1+tc0 )
  248. ; clobbers: q2, tmp, tc0
  249. %macro LUMA_Q1 6
  250. pavgb %6, m1, m2
  251. pavgb %2, %6 ; avg(p2,avg(p0,q0))
  252. pxor %6, %3
  253. pand %6, [pb_1] ; (p2^avg(p0,q0))&1
  254. psubusb %2, %6 ; (p2+((p0+q0+1)>>1))>>1
  255. psubusb %6, %1, %5
  256. paddusb %5, %1
  257. pmaxub %2, %6
  258. pminub %2, %5
  259. mova %4, %2
  260. %endmacro
  261. %if ARCH_X86_64
  262. ;-----------------------------------------------------------------------------
  263. ; void deblock_v_luma( uint8_t *pix, int stride, int alpha, int beta, int8_t *tc0 )
  264. ;-----------------------------------------------------------------------------
  265. %macro DEBLOCK_LUMA 0
  266. cglobal deblock_v_luma_8, 5,5,10
  267. movd m8, [r4] ; tc0
  268. lea r4, [r1*3]
  269. dec r2d ; alpha-1
  270. neg r4
  271. dec r3d ; beta-1
  272. add r4, r0 ; pix-3*stride
  273. mova m0, [r4+r1] ; p1
  274. mova m1, [r4+2*r1] ; p0
  275. mova m2, [r0] ; q0
  276. mova m3, [r0+r1] ; q1
  277. LOAD_MASK r2d, r3d
  278. punpcklbw m8, m8
  279. punpcklbw m8, m8 ; tc = 4x tc0[3], 4x tc0[2], 4x tc0[1], 4x tc0[0]
  280. pcmpeqb m9, m9
  281. pcmpeqb m9, m8
  282. pandn m9, m7
  283. pand m8, m9
  284. movdqa m3, [r4] ; p2
  285. DIFF_GT2 m1, m3, m5, m6, m7 ; |p2-p0| > beta-1
  286. pand m6, m9
  287. psubb m7, m8, m6
  288. pand m6, m8
  289. LUMA_Q1 m0, m3, [r4], [r4+r1], m6, m4
  290. movdqa m4, [r0+2*r1] ; q2
  291. DIFF_GT2 m2, m4, m5, m6, m3 ; |q2-q0| > beta-1
  292. pand m6, m9
  293. pand m8, m6
  294. psubb m7, m6
  295. mova m3, [r0+r1]
  296. LUMA_Q1 m3, m4, [r0+2*r1], [r0+r1], m8, m6
  297. DEBLOCK_P0_Q0
  298. mova [r4+2*r1], m1
  299. mova [r0], m2
  300. RET
  301. ;-----------------------------------------------------------------------------
  302. ; void deblock_h_luma( uint8_t *pix, int stride, int alpha, int beta, int8_t *tc0 )
  303. ;-----------------------------------------------------------------------------
  304. INIT_MMX cpuname
  305. cglobal deblock_h_luma_8, 5,9
  306. movsxd r7, r1d
  307. lea r8, [r7+r7*2]
  308. lea r6, [r0-4]
  309. lea r5, [r0-4+r8]
  310. %if WIN64
  311. sub rsp, 0x98
  312. %define pix_tmp rsp+0x30
  313. %else
  314. sub rsp, 0x68
  315. %define pix_tmp rsp
  316. %endif
  317. ; transpose 6x16 -> tmp space
  318. TRANSPOSE6x8_MEM PASS8ROWS(r6, r5, r7, r8), pix_tmp
  319. lea r6, [r6+r7*8]
  320. lea r5, [r5+r7*8]
  321. TRANSPOSE6x8_MEM PASS8ROWS(r6, r5, r7, r8), pix_tmp+8
  322. ; vertical filter
  323. ; alpha, beta, tc0 are still in r2d, r3d, r4
  324. ; don't backup r6, r5, r7, r8 because deblock_v_luma_sse2 doesn't use them
  325. lea r0, [pix_tmp+0x30]
  326. mov r1d, 0x10
  327. %if WIN64
  328. mov [rsp+0x20], r4
  329. %endif
  330. call deblock_v_luma_8
  331. ; transpose 16x4 -> original space (only the middle 4 rows were changed by the filter)
  332. add r6, 2
  333. add r5, 2
  334. movq m0, [pix_tmp+0x18]
  335. movq m1, [pix_tmp+0x28]
  336. movq m2, [pix_tmp+0x38]
  337. movq m3, [pix_tmp+0x48]
  338. TRANSPOSE8x4B_STORE PASS8ROWS(r6, r5, r7, r8)
  339. shl r7, 3
  340. sub r6, r7
  341. sub r5, r7
  342. shr r7, 3
  343. movq m0, [pix_tmp+0x10]
  344. movq m1, [pix_tmp+0x20]
  345. movq m2, [pix_tmp+0x30]
  346. movq m3, [pix_tmp+0x40]
  347. TRANSPOSE8x4B_STORE PASS8ROWS(r6, r5, r7, r8)
  348. %if WIN64
  349. add rsp, 0x98
  350. %else
  351. add rsp, 0x68
  352. %endif
  353. RET
  354. %endmacro
  355. INIT_XMM sse2
  356. DEBLOCK_LUMA
  357. INIT_XMM avx
  358. DEBLOCK_LUMA
  359. %else
  360. %macro DEBLOCK_LUMA 2
  361. ;-----------------------------------------------------------------------------
  362. ; void deblock_v8_luma( uint8_t *pix, int stride, int alpha, int beta, int8_t *tc0 )
  363. ;-----------------------------------------------------------------------------
  364. cglobal deblock_%1_luma_8, 5,5
  365. lea r4, [r1*3]
  366. dec r2 ; alpha-1
  367. neg r4
  368. dec r3 ; beta-1
  369. add r4, r0 ; pix-3*stride
  370. %assign pad 2*%2+12-(stack_offset&15)
  371. SUB esp, pad
  372. mova m0, [r4+r1] ; p1
  373. mova m1, [r4+2*r1] ; p0
  374. mova m2, [r0] ; q0
  375. mova m3, [r0+r1] ; q1
  376. LOAD_MASK r2, r3
  377. mov r3, r4mp
  378. pcmpeqb m3, m3
  379. movd m4, [r3] ; tc0
  380. punpcklbw m4, m4
  381. punpcklbw m4, m4 ; tc = 4x tc0[3], 4x tc0[2], 4x tc0[1], 4x tc0[0]
  382. mova [esp+%2], m4 ; tc
  383. pcmpgtb m4, m3
  384. mova m3, [r4] ; p2
  385. pand m4, m7
  386. mova [esp], m4 ; mask
  387. DIFF_GT2 m1, m3, m5, m6, m7 ; |p2-p0| > beta-1
  388. pand m6, m4
  389. pand m4, [esp+%2] ; tc
  390. psubb m7, m4, m6
  391. pand m6, m4
  392. LUMA_Q1 m0, m3, [r4], [r4+r1], m6, m4
  393. mova m4, [r0+2*r1] ; q2
  394. DIFF_GT2 m2, m4, m5, m6, m3 ; |q2-q0| > beta-1
  395. pand m6, [esp] ; mask
  396. mova m5, [esp+%2] ; tc
  397. psubb m7, m6
  398. pand m5, m6
  399. mova m3, [r0+r1]
  400. LUMA_Q1 m3, m4, [r0+2*r1], [r0+r1], m5, m6
  401. DEBLOCK_P0_Q0
  402. mova [r4+2*r1], m1
  403. mova [r0], m2
  404. ADD esp, pad
  405. RET
  406. ;-----------------------------------------------------------------------------
  407. ; void deblock_h_luma( uint8_t *pix, int stride, int alpha, int beta, int8_t *tc0 )
  408. ;-----------------------------------------------------------------------------
  409. INIT_MMX cpuname
  410. cglobal deblock_h_luma_8, 0,5
  411. mov r0, r0mp
  412. mov r3, r1m
  413. lea r4, [r3*3]
  414. sub r0, 4
  415. lea r1, [r0+r4]
  416. %assign pad 0x78-(stack_offset&15)
  417. SUB esp, pad
  418. %define pix_tmp esp+12
  419. ; transpose 6x16 -> tmp space
  420. TRANSPOSE6x8_MEM PASS8ROWS(r0, r1, r3, r4), pix_tmp
  421. lea r0, [r0+r3*8]
  422. lea r1, [r1+r3*8]
  423. TRANSPOSE6x8_MEM PASS8ROWS(r0, r1, r3, r4), pix_tmp+8
  424. ; vertical filter
  425. lea r0, [pix_tmp+0x30]
  426. PUSH dword r4m
  427. PUSH dword r3m
  428. PUSH dword r2m
  429. PUSH dword 16
  430. PUSH dword r0
  431. call deblock_%1_luma_8
  432. %ifidn %1, v8
  433. add dword [esp ], 8 ; pix_tmp+0x38
  434. add dword [esp+16], 2 ; tc0+2
  435. call deblock_%1_luma_8
  436. %endif
  437. ADD esp, 20
  438. ; transpose 16x4 -> original space (only the middle 4 rows were changed by the filter)
  439. mov r0, r0mp
  440. sub r0, 2
  441. movq m0, [pix_tmp+0x10]
  442. movq m1, [pix_tmp+0x20]
  443. lea r1, [r0+r4]
  444. movq m2, [pix_tmp+0x30]
  445. movq m3, [pix_tmp+0x40]
  446. TRANSPOSE8x4B_STORE PASS8ROWS(r0, r1, r3, r4)
  447. lea r0, [r0+r3*8]
  448. lea r1, [r1+r3*8]
  449. movq m0, [pix_tmp+0x18]
  450. movq m1, [pix_tmp+0x28]
  451. movq m2, [pix_tmp+0x38]
  452. movq m3, [pix_tmp+0x48]
  453. TRANSPOSE8x4B_STORE PASS8ROWS(r0, r1, r3, r4)
  454. ADD esp, pad
  455. RET
  456. %endmacro ; DEBLOCK_LUMA
  457. INIT_MMX mmxext
  458. DEBLOCK_LUMA v8, 8
  459. INIT_XMM sse2
  460. DEBLOCK_LUMA v, 16
  461. INIT_XMM avx
  462. DEBLOCK_LUMA v, 16
  463. %endif ; ARCH
  464. %macro LUMA_INTRA_P012 4 ; p0..p3 in memory
  465. %if ARCH_X86_64
  466. pavgb t0, p2, p1
  467. pavgb t1, p0, q0
  468. %else
  469. mova t0, p2
  470. mova t1, p0
  471. pavgb t0, p1
  472. pavgb t1, q0
  473. %endif
  474. pavgb t0, t1 ; ((p2+p1+1)/2 + (p0+q0+1)/2 + 1)/2
  475. mova t5, t1
  476. %if ARCH_X86_64
  477. paddb t2, p2, p1
  478. paddb t3, p0, q0
  479. %else
  480. mova t2, p2
  481. mova t3, p0
  482. paddb t2, p1
  483. paddb t3, q0
  484. %endif
  485. paddb t2, t3
  486. mova t3, t2
  487. mova t4, t2
  488. psrlw t2, 1
  489. pavgb t2, mpb_0
  490. pxor t2, t0
  491. pand t2, mpb_1
  492. psubb t0, t2 ; p1' = (p2+p1+p0+q0+2)/4;
  493. %if ARCH_X86_64
  494. pavgb t1, p2, q1
  495. psubb t2, p2, q1
  496. %else
  497. mova t1, p2
  498. mova t2, p2
  499. pavgb t1, q1
  500. psubb t2, q1
  501. %endif
  502. paddb t3, t3
  503. psubb t3, t2 ; p2+2*p1+2*p0+2*q0+q1
  504. pand t2, mpb_1
  505. psubb t1, t2
  506. pavgb t1, p1
  507. pavgb t1, t5 ; (((p2+q1)/2 + p1+1)/2 + (p0+q0+1)/2 + 1)/2
  508. psrlw t3, 2
  509. pavgb t3, mpb_0
  510. pxor t3, t1
  511. pand t3, mpb_1
  512. psubb t1, t3 ; p0'a = (p2+2*p1+2*p0+2*q0+q1+4)/8
  513. pxor t3, p0, q1
  514. pavgb t2, p0, q1
  515. pand t3, mpb_1
  516. psubb t2, t3
  517. pavgb t2, p1 ; p0'b = (2*p1+p0+q0+2)/4
  518. pxor t1, t2
  519. pxor t2, p0
  520. pand t1, mask1p
  521. pand t2, mask0
  522. pxor t1, t2
  523. pxor t1, p0
  524. mova %1, t1 ; store p0
  525. mova t1, %4 ; p3
  526. paddb t2, t1, p2
  527. pavgb t1, p2
  528. pavgb t1, t0 ; (p3+p2+1)/2 + (p2+p1+p0+q0+2)/4
  529. paddb t2, t2
  530. paddb t2, t4 ; 2*p3+3*p2+p1+p0+q0
  531. psrlw t2, 2
  532. pavgb t2, mpb_0
  533. pxor t2, t1
  534. pand t2, mpb_1
  535. psubb t1, t2 ; p2' = (2*p3+3*p2+p1+p0+q0+4)/8
  536. pxor t0, p1
  537. pxor t1, p2
  538. pand t0, mask1p
  539. pand t1, mask1p
  540. pxor t0, p1
  541. pxor t1, p2
  542. mova %2, t0 ; store p1
  543. mova %3, t1 ; store p2
  544. %endmacro
  545. %macro LUMA_INTRA_SWAP_PQ 0
  546. %define q1 m0
  547. %define q0 m1
  548. %define p0 m2
  549. %define p1 m3
  550. %define p2 q2
  551. %define mask1p mask1q
  552. %endmacro
  553. %macro DEBLOCK_LUMA_INTRA 1
  554. %define p1 m0
  555. %define p0 m1
  556. %define q0 m2
  557. %define q1 m3
  558. %define t0 m4
  559. %define t1 m5
  560. %define t2 m6
  561. %define t3 m7
  562. %if ARCH_X86_64
  563. %define p2 m8
  564. %define q2 m9
  565. %define t4 m10
  566. %define t5 m11
  567. %define mask0 m12
  568. %define mask1p m13
  569. %define mask1q [rsp-24]
  570. %define mpb_0 m14
  571. %define mpb_1 m15
  572. %else
  573. %define spill(x) [esp+16*x+((stack_offset+4)&15)]
  574. %define p2 [r4+r1]
  575. %define q2 [r0+2*r1]
  576. %define t4 spill(0)
  577. %define t5 spill(1)
  578. %define mask0 spill(2)
  579. %define mask1p spill(3)
  580. %define mask1q spill(4)
  581. %define mpb_0 [pb_0]
  582. %define mpb_1 [pb_1]
  583. %endif
  584. ;-----------------------------------------------------------------------------
  585. ; void deblock_v_luma_intra( uint8_t *pix, int stride, int alpha, int beta )
  586. ;-----------------------------------------------------------------------------
  587. cglobal deblock_%1_luma_intra_8, 4,6,16
  588. %if ARCH_X86_64 == 0
  589. sub esp, 0x60
  590. %endif
  591. lea r4, [r1*4]
  592. lea r5, [r1*3] ; 3*stride
  593. dec r2d ; alpha-1
  594. jl .end
  595. neg r4
  596. dec r3d ; beta-1
  597. jl .end
  598. add r4, r0 ; pix-4*stride
  599. mova p1, [r4+2*r1]
  600. mova p0, [r4+r5]
  601. mova q0, [r0]
  602. mova q1, [r0+r1]
  603. %if ARCH_X86_64
  604. pxor mpb_0, mpb_0
  605. mova mpb_1, [pb_1]
  606. LOAD_MASK r2d, r3d, t5 ; m5=beta-1, t5=alpha-1, m7=mask0
  607. SWAP 7, 12 ; m12=mask0
  608. pavgb t5, mpb_0
  609. pavgb t5, mpb_1 ; alpha/4+1
  610. movdqa p2, [r4+r1]
  611. movdqa q2, [r0+2*r1]
  612. DIFF_GT2 p0, q0, t5, t0, t3 ; t0 = |p0-q0| > alpha/4+1
  613. DIFF_GT2 p0, p2, m5, t2, t5 ; mask1 = |p2-p0| > beta-1
  614. DIFF_GT2 q0, q2, m5, t4, t5 ; t4 = |q2-q0| > beta-1
  615. pand t0, mask0
  616. pand t4, t0
  617. pand t2, t0
  618. mova mask1q, t4
  619. mova mask1p, t2
  620. %else
  621. LOAD_MASK r2d, r3d, t5 ; m5=beta-1, t5=alpha-1, m7=mask0
  622. mova m4, t5
  623. mova mask0, m7
  624. pavgb m4, [pb_0]
  625. pavgb m4, [pb_1] ; alpha/4+1
  626. DIFF_GT2 p0, q0, m4, m6, m7 ; m6 = |p0-q0| > alpha/4+1
  627. pand m6, mask0
  628. DIFF_GT2 p0, p2, m5, m4, m7 ; m4 = |p2-p0| > beta-1
  629. pand m4, m6
  630. mova mask1p, m4
  631. DIFF_GT2 q0, q2, m5, m4, m7 ; m4 = |q2-q0| > beta-1
  632. pand m4, m6
  633. mova mask1q, m4
  634. %endif
  635. LUMA_INTRA_P012 [r4+r5], [r4+2*r1], [r4+r1], [r4]
  636. LUMA_INTRA_SWAP_PQ
  637. LUMA_INTRA_P012 [r0], [r0+r1], [r0+2*r1], [r0+r5]
  638. .end:
  639. %if ARCH_X86_64 == 0
  640. add esp, 0x60
  641. %endif
  642. RET
  643. INIT_MMX cpuname
  644. %if ARCH_X86_64
  645. ;-----------------------------------------------------------------------------
  646. ; void deblock_h_luma_intra( uint8_t *pix, int stride, int alpha, int beta )
  647. ;-----------------------------------------------------------------------------
  648. cglobal deblock_h_luma_intra_8, 4,9
  649. movsxd r7, r1d
  650. lea r8, [r7*3]
  651. lea r6, [r0-4]
  652. lea r5, [r0-4+r8]
  653. sub rsp, 0x88
  654. %define pix_tmp rsp
  655. ; transpose 8x16 -> tmp space
  656. TRANSPOSE8x8_MEM PASS8ROWS(r6, r5, r7, r8), PASS8ROWS(pix_tmp, pix_tmp+0x30, 0x10, 0x30)
  657. lea r6, [r6+r7*8]
  658. lea r5, [r5+r7*8]
  659. TRANSPOSE8x8_MEM PASS8ROWS(r6, r5, r7, r8), PASS8ROWS(pix_tmp+8, pix_tmp+0x38, 0x10, 0x30)
  660. lea r0, [pix_tmp+0x40]
  661. mov r1, 0x10
  662. call deblock_v_luma_intra_8
  663. ; transpose 16x6 -> original space (but we can't write only 6 pixels, so really 16x8)
  664. lea r5, [r6+r8]
  665. TRANSPOSE8x8_MEM PASS8ROWS(pix_tmp+8, pix_tmp+0x38, 0x10, 0x30), PASS8ROWS(r6, r5, r7, r8)
  666. shl r7, 3
  667. sub r6, r7
  668. sub r5, r7
  669. shr r7, 3
  670. TRANSPOSE8x8_MEM PASS8ROWS(pix_tmp, pix_tmp+0x30, 0x10, 0x30), PASS8ROWS(r6, r5, r7, r8)
  671. add rsp, 0x88
  672. RET
  673. %else
  674. cglobal deblock_h_luma_intra_8, 2,4
  675. lea r3, [r1*3]
  676. sub r0, 4
  677. lea r2, [r0+r3]
  678. %assign pad 0x8c-(stack_offset&15)
  679. SUB rsp, pad
  680. %define pix_tmp rsp
  681. ; transpose 8x16 -> tmp space
  682. TRANSPOSE8x8_MEM PASS8ROWS(r0, r2, r1, r3), PASS8ROWS(pix_tmp, pix_tmp+0x30, 0x10, 0x30)
  683. lea r0, [r0+r1*8]
  684. lea r2, [r2+r1*8]
  685. TRANSPOSE8x8_MEM PASS8ROWS(r0, r2, r1, r3), PASS8ROWS(pix_tmp+8, pix_tmp+0x38, 0x10, 0x30)
  686. lea r0, [pix_tmp+0x40]
  687. PUSH dword r3m
  688. PUSH dword r2m
  689. PUSH dword 16
  690. PUSH r0
  691. call deblock_%1_luma_intra_8
  692. %ifidn %1, v8
  693. add dword [rsp], 8 ; pix_tmp+8
  694. call deblock_%1_luma_intra_8
  695. %endif
  696. ADD esp, 16
  697. mov r1, r1m
  698. mov r0, r0mp
  699. lea r3, [r1*3]
  700. sub r0, 4
  701. lea r2, [r0+r3]
  702. ; transpose 16x6 -> original space (but we can't write only 6 pixels, so really 16x8)
  703. TRANSPOSE8x8_MEM PASS8ROWS(pix_tmp, pix_tmp+0x30, 0x10, 0x30), PASS8ROWS(r0, r2, r1, r3)
  704. lea r0, [r0+r1*8]
  705. lea r2, [r2+r1*8]
  706. TRANSPOSE8x8_MEM PASS8ROWS(pix_tmp+8, pix_tmp+0x38, 0x10, 0x30), PASS8ROWS(r0, r2, r1, r3)
  707. ADD rsp, pad
  708. RET
  709. %endif ; ARCH_X86_64
  710. %endmacro ; DEBLOCK_LUMA_INTRA
  711. INIT_XMM sse2
  712. DEBLOCK_LUMA_INTRA v
  713. INIT_XMM avx
  714. DEBLOCK_LUMA_INTRA v
  715. %if ARCH_X86_64 == 0
  716. INIT_MMX mmxext
  717. DEBLOCK_LUMA_INTRA v8
  718. %endif
  719. INIT_MMX mmxext
  720. %macro CHROMA_V_START 0
  721. dec r2d ; alpha-1
  722. dec r3d ; beta-1
  723. mov t5, r0
  724. sub t5, r1
  725. sub t5, r1
  726. %endmacro
  727. %macro CHROMA_H_START 0
  728. dec r2d
  729. dec r3d
  730. sub r0, 2
  731. lea t6, [r1*3]
  732. mov t5, r0
  733. add r0, t6
  734. %endmacro
  735. %define t5 r5
  736. %define t6 r6
  737. ;-----------------------------------------------------------------------------
  738. ; void ff_deblock_v_chroma( uint8_t *pix, int stride, int alpha, int beta, int8_t *tc0 )
  739. ;-----------------------------------------------------------------------------
  740. cglobal deblock_v_chroma_8, 5,6
  741. CHROMA_V_START
  742. movq m0, [t5]
  743. movq m1, [t5+r1]
  744. movq m2, [r0]
  745. movq m3, [r0+r1]
  746. call ff_chroma_inter_body_mmxext
  747. movq [t5+r1], m1
  748. movq [r0], m2
  749. RET
  750. ;-----------------------------------------------------------------------------
  751. ; void ff_deblock_h_chroma( uint8_t *pix, int stride, int alpha, int beta, int8_t *tc0 )
  752. ;-----------------------------------------------------------------------------
  753. cglobal deblock_h_chroma_8, 5,7
  754. %if UNIX64
  755. %define buf0 [rsp-24]
  756. %define buf1 [rsp-16]
  757. %elif WIN64
  758. sub rsp, 16
  759. %define buf0 [rsp]
  760. %define buf1 [rsp+8]
  761. %else
  762. %define buf0 r0m
  763. %define buf1 r2m
  764. %endif
  765. CHROMA_H_START
  766. TRANSPOSE4x8_LOAD bw, wd, dq, PASS8ROWS(t5, r0, r1, t6)
  767. movq buf0, m0
  768. movq buf1, m3
  769. call ff_chroma_inter_body_mmxext
  770. movq m0, buf0
  771. movq m3, buf1
  772. TRANSPOSE8x4B_STORE PASS8ROWS(t5, r0, r1, t6)
  773. %if WIN64
  774. add rsp, 16
  775. %endif
  776. RET
  777. ALIGN 16
  778. ff_chroma_inter_body_mmxext:
  779. LOAD_MASK r2d, r3d
  780. movd m6, [r4] ; tc0
  781. punpcklbw m6, m6
  782. pand m7, m6
  783. DEBLOCK_P0_Q0
  784. ret
  785. ; in: %1=p0 %2=p1 %3=q1
  786. ; out: p0 = (p0 + q1 + 2*p1 + 2) >> 2
  787. %macro CHROMA_INTRA_P0 3
  788. movq m4, %1
  789. pxor m4, %3
  790. pand m4, [pb_1] ; m4 = (p0^q1)&1
  791. pavgb %1, %3
  792. psubusb %1, m4
  793. pavgb %1, %2 ; dst = avg(p1, avg(p0,q1) - ((p0^q1)&1))
  794. %endmacro
  795. %define t5 r4
  796. %define t6 r5
  797. ;-----------------------------------------------------------------------------
  798. ; void ff_deblock_v_chroma_intra( uint8_t *pix, int stride, int alpha, int beta )
  799. ;-----------------------------------------------------------------------------
  800. cglobal deblock_v_chroma_intra_8, 4,5
  801. CHROMA_V_START
  802. movq m0, [t5]
  803. movq m1, [t5+r1]
  804. movq m2, [r0]
  805. movq m3, [r0+r1]
  806. call ff_chroma_intra_body_mmxext
  807. movq [t5+r1], m1
  808. movq [r0], m2
  809. RET
  810. ;-----------------------------------------------------------------------------
  811. ; void ff_deblock_h_chroma_intra( uint8_t *pix, int stride, int alpha, int beta )
  812. ;-----------------------------------------------------------------------------
  813. cglobal deblock_h_chroma_intra_8, 4,6
  814. CHROMA_H_START
  815. TRANSPOSE4x8_LOAD bw, wd, dq, PASS8ROWS(t5, r0, r1, t6)
  816. call ff_chroma_intra_body_mmxext
  817. TRANSPOSE8x4B_STORE PASS8ROWS(t5, r0, r1, t6)
  818. RET
  819. ALIGN 16
  820. ff_chroma_intra_body_mmxext:
  821. LOAD_MASK r2d, r3d
  822. movq m5, m1
  823. movq m6, m2
  824. CHROMA_INTRA_P0 m1, m0, m3
  825. CHROMA_INTRA_P0 m2, m3, m0
  826. psubb m1, m5
  827. psubb m2, m6
  828. pand m1, m7
  829. pand m2, m7
  830. paddb m1, m5
  831. paddb m2, m6
  832. ret
  833. ;-----------------------------------------------------------------------------
  834. ; void h264_loop_filter_strength(int16_t bs[2][4][4], uint8_t nnz[40],
  835. ; int8_t ref[2][40], int16_t mv[2][40][2],
  836. ; int bidir, int edges, int step,
  837. ; int mask_mv0, int mask_mv1, int field);
  838. ;
  839. ; bidir is 0 or 1
  840. ; edges is 1 or 4
  841. ; step is 1 or 2
  842. ; mask_mv0 is 0 or 3
  843. ; mask_mv1 is 0 or 1
  844. ; field is 0 or 1
  845. ;-----------------------------------------------------------------------------
  846. %macro loop_filter_strength_iteration 7 ; edges, step, mask_mv,
  847. ; dir, d_idx, mask_dir, bidir
  848. %define edgesd %1
  849. %define stepd %2
  850. %define mask_mvd %3
  851. %define dir %4
  852. %define d_idx %5
  853. %define mask_dir %6
  854. %define bidir %7
  855. xor b_idxd, b_idxd ; for (b_idx = 0; b_idx < edges; b_idx += step)
  856. %%.b_idx_loop:
  857. %if mask_dir == 0
  858. pxor m0, m0
  859. %endif
  860. test b_idxd, dword mask_mvd
  861. jnz %%.skip_loop_iter ; if (!(b_idx & mask_mv))
  862. %if bidir == 1
  863. movd m2, [refq+b_idxq+d_idx+12] ; { ref0[bn] }
  864. punpckldq m2, [refq+b_idxq+d_idx+52] ; { ref0[bn], ref1[bn] }
  865. pshufw m0, [refq+b_idxq+12], 0x44 ; { ref0[b], ref0[b] }
  866. pshufw m1, [refq+b_idxq+52], 0x44 ; { ref1[b], ref1[b] }
  867. pshufw m3, m2, 0x4E ; { ref1[bn], ref0[bn] }
  868. psubb m0, m2 ; { ref0[b] != ref0[bn],
  869. ; ref0[b] != ref1[bn] }
  870. psubb m1, m3 ; { ref1[b] != ref1[bn],
  871. ; ref1[b] != ref0[bn] }
  872. por m0, m1
  873. mova m1, [mvq+b_idxq*4+(d_idx+12)*4]
  874. mova m2, [mvq+b_idxq*4+(d_idx+12)*4+mmsize]
  875. mova m3, m1
  876. mova m4, m2
  877. psubw m1, [mvq+b_idxq*4+12*4]
  878. psubw m2, [mvq+b_idxq*4+12*4+mmsize]
  879. psubw m3, [mvq+b_idxq*4+52*4]
  880. psubw m4, [mvq+b_idxq*4+52*4+mmsize]
  881. packsswb m1, m2
  882. packsswb m3, m4
  883. paddb m1, m6
  884. paddb m3, m6
  885. psubusb m1, m5 ; abs(mv[b] - mv[bn]) >= limit
  886. psubusb m3, m5
  887. packsswb m1, m3
  888. por m0, m1
  889. mova m1, [mvq+b_idxq*4+(d_idx+52)*4]
  890. mova m2, [mvq+b_idxq*4+(d_idx+52)*4+mmsize]
  891. mova m3, m1
  892. mova m4, m2
  893. psubw m1, [mvq+b_idxq*4+12*4]
  894. psubw m2, [mvq+b_idxq*4+12*4+mmsize]
  895. psubw m3, [mvq+b_idxq*4+52*4]
  896. psubw m4, [mvq+b_idxq*4+52*4+mmsize]
  897. packsswb m1, m2
  898. packsswb m3, m4
  899. paddb m1, m6
  900. paddb m3, m6
  901. psubusb m1, m5 ; abs(mv[b] - mv[bn]) >= limit
  902. psubusb m3, m5
  903. packsswb m1, m3
  904. pshufw m1, m1, 0x4E
  905. por m0, m1
  906. pshufw m1, m0, 0x4E
  907. pminub m0, m1
  908. %else ; bidir == 0
  909. movd m0, [refq+b_idxq+12]
  910. psubb m0, [refq+b_idxq+d_idx+12] ; ref[b] != ref[bn]
  911. mova m1, [mvq+b_idxq*4+12*4]
  912. mova m2, [mvq+b_idxq*4+12*4+mmsize]
  913. psubw m1, [mvq+b_idxq*4+(d_idx+12)*4]
  914. psubw m2, [mvq+b_idxq*4+(d_idx+12)*4+mmsize]
  915. packsswb m1, m2
  916. paddb m1, m6
  917. psubusb m1, m5 ; abs(mv[b] - mv[bn]) >= limit
  918. packsswb m1, m1
  919. por m0, m1
  920. %endif ; bidir == 1/0
  921. %%.skip_loop_iter:
  922. movd m1, [nnzq+b_idxq+12]
  923. por m1, [nnzq+b_idxq+d_idx+12] ; nnz[b] || nnz[bn]
  924. pminub m1, m7
  925. pminub m0, m7
  926. psllw m1, 1
  927. pxor m2, m2
  928. pmaxub m1, m0
  929. punpcklbw m1, m2
  930. movq [bsq+b_idxq+32*dir], m1
  931. add b_idxd, dword stepd
  932. cmp b_idxd, dword edgesd
  933. jl %%.b_idx_loop
  934. %endmacro
  935. INIT_MMX mmxext
  936. cglobal h264_loop_filter_strength, 9, 9, 0, bs, nnz, ref, mv, bidir, edges, \
  937. step, mask_mv0, mask_mv1, field
  938. %define b_idxq bidirq
  939. %define b_idxd bidird
  940. cmp dword fieldm, 0
  941. mova m7, [pb_1]
  942. mova m5, [pb_3]
  943. je .nofield
  944. mova m5, [pb_3_1]
  945. .nofield:
  946. mova m6, m5
  947. paddb m5, m5
  948. shl dword stepd, 3
  949. shl dword edgesd, 3
  950. %if ARCH_X86_32
  951. %define mask_mv0d mask_mv0m
  952. %define mask_mv1d mask_mv1m
  953. %endif
  954. shl dword mask_mv1d, 3
  955. shl dword mask_mv0d, 3
  956. cmp dword bidird, 0
  957. jne .bidir
  958. loop_filter_strength_iteration edgesd, stepd, mask_mv1d, 1, -8, 0, 0
  959. loop_filter_strength_iteration 32, 8, mask_mv0d, 0, -1, -1, 0
  960. mova m0, [bsq+mmsize*0]
  961. mova m1, [bsq+mmsize*1]
  962. mova m2, [bsq+mmsize*2]
  963. mova m3, [bsq+mmsize*3]
  964. TRANSPOSE4x4W 0, 1, 2, 3, 4
  965. mova [bsq+mmsize*0], m0
  966. mova [bsq+mmsize*1], m1
  967. mova [bsq+mmsize*2], m2
  968. mova [bsq+mmsize*3], m3
  969. RET
  970. .bidir:
  971. loop_filter_strength_iteration edgesd, stepd, mask_mv1d, 1, -8, 0, 1
  972. loop_filter_strength_iteration 32, 8, mask_mv0d, 0, -1, -1, 1
  973. mova m0, [bsq+mmsize*0]
  974. mova m1, [bsq+mmsize*1]
  975. mova m2, [bsq+mmsize*2]
  976. mova m3, [bsq+mmsize*3]
  977. TRANSPOSE4x4W 0, 1, 2, 3, 4
  978. mova [bsq+mmsize*0], m0
  979. mova [bsq+mmsize*1], m1
  980. mova [bsq+mmsize*2], m2
  981. mova [bsq+mmsize*3], m3
  982. RET