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  1. ;*****************************************************************************
  2. ;* MMX/SSE2/AVX-optimized 10-bit H.264 deblocking code
  3. ;*****************************************************************************
  4. ;* Copyright (C) 2005-2011 x264 project
  5. ;*
  6. ;* Authors: Oskar Arvidsson <oskar@irock.se>
  7. ;* Loren Merritt <lorenm@u.washington.edu>
  8. ;* Jason Garrett-Glaser <darkshikari@gmail.com>
  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. pw_pixel_max: times 8 dw ((1 << 10)-1)
  29. SECTION .text
  30. cextern pw_2
  31. cextern pw_3
  32. cextern pw_4
  33. ; out: %4 = |%1-%2|-%3
  34. ; clobbers: %5
  35. %macro ABS_SUB 5
  36. psubusw %5, %2, %1
  37. psubusw %4, %1, %2
  38. por %4, %5
  39. psubw %4, %3
  40. %endmacro
  41. ; out: %4 = |%1-%2|<%3
  42. %macro DIFF_LT 5
  43. psubusw %4, %2, %1
  44. psubusw %5, %1, %2
  45. por %5, %4 ; |%1-%2|
  46. pxor %4, %4
  47. psubw %5, %3 ; |%1-%2|-%3
  48. pcmpgtw %4, %5 ; 0 > |%1-%2|-%3
  49. %endmacro
  50. %macro LOAD_AB 4
  51. movd %1, %3
  52. movd %2, %4
  53. SPLATW %1, %1
  54. SPLATW %2, %2
  55. %endmacro
  56. ; in: %2=tc reg
  57. ; out: %1=splatted tc
  58. %macro LOAD_TC 2
  59. movd %1, [%2]
  60. punpcklbw %1, %1
  61. %if mmsize == 8
  62. pshufw %1, %1, 0
  63. %else
  64. pshuflw %1, %1, 01010000b
  65. pshufd %1, %1, 01010000b
  66. %endif
  67. psraw %1, 6
  68. %endmacro
  69. ; in: %1=p1, %2=p0, %3=q0, %4=q1
  70. ; %5=alpha, %6=beta, %7-%9=tmp
  71. ; out: %7=mask
  72. %macro LOAD_MASK 9
  73. ABS_SUB %2, %3, %5, %8, %7 ; |p0-q0| - alpha
  74. ABS_SUB %1, %2, %6, %9, %7 ; |p1-p0| - beta
  75. pand %8, %9
  76. ABS_SUB %3, %4, %6, %9, %7 ; |q1-q0| - beta
  77. pxor %7, %7
  78. pand %8, %9
  79. pcmpgtw %7, %8
  80. %endmacro
  81. ; in: %1=p0, %2=q0, %3=p1, %4=q1, %5=mask, %6=tmp, %7=tmp
  82. ; out: %1=p0', m2=q0'
  83. %macro DEBLOCK_P0_Q0 7
  84. psubw %3, %4
  85. pxor %7, %7
  86. paddw %3, [pw_4]
  87. psubw %7, %5
  88. psubw %6, %2, %1
  89. psllw %6, 2
  90. paddw %3, %6
  91. psraw %3, 3
  92. mova %6, [pw_pixel_max]
  93. CLIPW %3, %7, %5
  94. pxor %7, %7
  95. paddw %1, %3
  96. psubw %2, %3
  97. CLIPW %1, %7, %6
  98. CLIPW %2, %7, %6
  99. %endmacro
  100. ; in: %1=x2, %2=x1, %3=p0, %4=q0 %5=mask&tc, %6=tmp
  101. %macro LUMA_Q1 6
  102. pavgw %6, %3, %4 ; (p0+q0+1)>>1
  103. paddw %1, %6
  104. pxor %6, %6
  105. psraw %1, 1
  106. psubw %6, %5
  107. psubw %1, %2
  108. CLIPW %1, %6, %5
  109. paddw %1, %2
  110. %endmacro
  111. %macro LUMA_DEBLOCK_ONE 3
  112. DIFF_LT m5, %1, bm, m4, m6
  113. pxor m6, m6
  114. mova %3, m4
  115. pcmpgtw m6, tcm
  116. pand m4, tcm
  117. pandn m6, m7
  118. pand m4, m6
  119. LUMA_Q1 m5, %2, m1, m2, m4, m6
  120. %endmacro
  121. %macro LUMA_H_STORE 2
  122. %if mmsize == 8
  123. movq [r0-4], m0
  124. movq [r0+r1-4], m1
  125. movq [r0+r1*2-4], m2
  126. movq [r0+%2-4], m3
  127. %else
  128. movq [r0-4], m0
  129. movhps [r0+r1-4], m0
  130. movq [r0+r1*2-4], m1
  131. movhps [%1-4], m1
  132. movq [%1+r1-4], m2
  133. movhps [%1+r1*2-4], m2
  134. movq [%1+%2-4], m3
  135. movhps [%1+r1*4-4], m3
  136. %endif
  137. %endmacro
  138. %macro DEBLOCK_LUMA 0
  139. ;-----------------------------------------------------------------------------
  140. ; void deblock_v_luma( uint16_t *pix, int stride, int alpha, int beta, int8_t *tc0 )
  141. ;-----------------------------------------------------------------------------
  142. cglobal deblock_v_luma_10, 5,5,8*(mmsize/16)
  143. %assign pad 5*mmsize+12-(stack_offset&15)
  144. %define tcm [rsp]
  145. %define ms1 [rsp+mmsize]
  146. %define ms2 [rsp+mmsize*2]
  147. %define am [rsp+mmsize*3]
  148. %define bm [rsp+mmsize*4]
  149. SUB rsp, pad
  150. shl r2d, 2
  151. shl r3d, 2
  152. LOAD_AB m4, m5, r2d, r3d
  153. mov r3, 32/mmsize
  154. mov r2, r0
  155. sub r0, r1
  156. mova am, m4
  157. sub r0, r1
  158. mova bm, m5
  159. sub r0, r1
  160. .loop:
  161. mova m0, [r0+r1]
  162. mova m1, [r0+r1*2]
  163. mova m2, [r2]
  164. mova m3, [r2+r1]
  165. LOAD_MASK m0, m1, m2, m3, am, bm, m7, m4, m6
  166. LOAD_TC m6, r4
  167. mova tcm, m6
  168. mova m5, [r0]
  169. LUMA_DEBLOCK_ONE m1, m0, ms1
  170. mova [r0+r1], m5
  171. mova m5, [r2+r1*2]
  172. LUMA_DEBLOCK_ONE m2, m3, ms2
  173. mova [r2+r1], m5
  174. pxor m5, m5
  175. mova m6, tcm
  176. pcmpgtw m5, tcm
  177. psubw m6, ms1
  178. pandn m5, m7
  179. psubw m6, ms2
  180. pand m5, m6
  181. DEBLOCK_P0_Q0 m1, m2, m0, m3, m5, m7, m6
  182. mova [r0+r1*2], m1
  183. mova [r2], m2
  184. add r0, mmsize
  185. add r2, mmsize
  186. add r4, mmsize/8
  187. dec r3
  188. jg .loop
  189. ADD rsp, pad
  190. RET
  191. cglobal deblock_h_luma_10, 5,6,8*(mmsize/16)
  192. %assign pad 7*mmsize+12-(stack_offset&15)
  193. %define tcm [rsp]
  194. %define ms1 [rsp+mmsize]
  195. %define ms2 [rsp+mmsize*2]
  196. %define p1m [rsp+mmsize*3]
  197. %define p2m [rsp+mmsize*4]
  198. %define am [rsp+mmsize*5]
  199. %define bm [rsp+mmsize*6]
  200. SUB rsp, pad
  201. shl r2d, 2
  202. shl r3d, 2
  203. LOAD_AB m4, m5, r2d, r3d
  204. mov r3, r1
  205. mova am, m4
  206. add r3, r1
  207. mov r5, 32/mmsize
  208. mova bm, m5
  209. add r3, r1
  210. %if mmsize == 16
  211. mov r2, r0
  212. add r2, r3
  213. %endif
  214. .loop:
  215. %if mmsize == 8
  216. movq m2, [r0-8] ; y q2 q1 q0
  217. movq m7, [r0+0]
  218. movq m5, [r0+r1-8]
  219. movq m3, [r0+r1+0]
  220. movq m0, [r0+r1*2-8]
  221. movq m6, [r0+r1*2+0]
  222. movq m1, [r0+r3-8]
  223. TRANSPOSE4x4W 2, 5, 0, 1, 4
  224. SWAP 2, 7
  225. movq m7, [r0+r3]
  226. TRANSPOSE4x4W 2, 3, 6, 7, 4
  227. %else
  228. movu m5, [r0-8] ; y q2 q1 q0 p0 p1 p2 x
  229. movu m0, [r0+r1-8]
  230. movu m2, [r0+r1*2-8]
  231. movu m3, [r2-8]
  232. TRANSPOSE4x4W 5, 0, 2, 3, 6
  233. mova tcm, m3
  234. movu m4, [r2+r1-8]
  235. movu m1, [r2+r1*2-8]
  236. movu m3, [r2+r3-8]
  237. movu m7, [r2+r1*4-8]
  238. TRANSPOSE4x4W 4, 1, 3, 7, 6
  239. mova m6, tcm
  240. punpcklqdq m6, m7
  241. punpckhqdq m5, m4
  242. SBUTTERFLY qdq, 0, 1, 7
  243. SBUTTERFLY qdq, 2, 3, 7
  244. %endif
  245. mova p2m, m6
  246. LOAD_MASK m0, m1, m2, m3, am, bm, m7, m4, m6
  247. LOAD_TC m6, r4
  248. mova tcm, m6
  249. LUMA_DEBLOCK_ONE m1, m0, ms1
  250. mova p1m, m5
  251. mova m5, p2m
  252. LUMA_DEBLOCK_ONE m2, m3, ms2
  253. mova p2m, m5
  254. pxor m5, m5
  255. mova m6, tcm
  256. pcmpgtw m5, tcm
  257. psubw m6, ms1
  258. pandn m5, m7
  259. psubw m6, ms2
  260. pand m5, m6
  261. DEBLOCK_P0_Q0 m1, m2, m0, m3, m5, m7, m6
  262. mova m0, p1m
  263. mova m3, p2m
  264. TRANSPOSE4x4W 0, 1, 2, 3, 4
  265. LUMA_H_STORE r2, r3
  266. add r4, mmsize/8
  267. lea r0, [r0+r1*(mmsize/2)]
  268. lea r2, [r2+r1*(mmsize/2)]
  269. dec r5
  270. jg .loop
  271. ADD rsp, pad
  272. RET
  273. %endmacro
  274. %if ARCH_X86_64
  275. ; in: m0=p1, m1=p0, m2=q0, m3=q1, m8=p2, m9=q2
  276. ; m12=alpha, m13=beta
  277. ; out: m0=p1', m3=q1', m1=p0', m2=q0'
  278. ; clobbers: m4, m5, m6, m7, m10, m11, m14
  279. %macro DEBLOCK_LUMA_INTER_SSE2 0
  280. LOAD_MASK m0, m1, m2, m3, m12, m13, m7, m4, m6
  281. LOAD_TC m6, r4
  282. DIFF_LT m8, m1, m13, m10, m4
  283. DIFF_LT m9, m2, m13, m11, m4
  284. pand m6, m7
  285. mova m14, m6
  286. pxor m4, m4
  287. pcmpgtw m6, m4
  288. pand m6, m14
  289. mova m5, m10
  290. pand m5, m6
  291. LUMA_Q1 m8, m0, m1, m2, m5, m4
  292. mova m5, m11
  293. pand m5, m6
  294. LUMA_Q1 m9, m3, m1, m2, m5, m4
  295. pxor m4, m4
  296. psubw m6, m10
  297. pcmpgtw m4, m14
  298. pandn m4, m7
  299. psubw m6, m11
  300. pand m4, m6
  301. DEBLOCK_P0_Q0 m1, m2, m0, m3, m4, m5, m6
  302. SWAP 0, 8
  303. SWAP 3, 9
  304. %endmacro
  305. %macro DEBLOCK_LUMA_64 0
  306. cglobal deblock_v_luma_10, 5,5,15
  307. %define p2 m8
  308. %define p1 m0
  309. %define p0 m1
  310. %define q0 m2
  311. %define q1 m3
  312. %define q2 m9
  313. %define mask0 m7
  314. %define mask1 m10
  315. %define mask2 m11
  316. shl r2d, 2
  317. shl r3d, 2
  318. LOAD_AB m12, m13, r2d, r3d
  319. mov r2, r0
  320. sub r0, r1
  321. sub r0, r1
  322. sub r0, r1
  323. mov r3, 2
  324. .loop:
  325. mova p2, [r0]
  326. mova p1, [r0+r1]
  327. mova p0, [r0+r1*2]
  328. mova q0, [r2]
  329. mova q1, [r2+r1]
  330. mova q2, [r2+r1*2]
  331. DEBLOCK_LUMA_INTER_SSE2
  332. mova [r0+r1], p1
  333. mova [r0+r1*2], p0
  334. mova [r2], q0
  335. mova [r2+r1], q1
  336. add r0, mmsize
  337. add r2, mmsize
  338. add r4, 2
  339. dec r3
  340. jg .loop
  341. REP_RET
  342. cglobal deblock_h_luma_10, 5,7,15
  343. shl r2d, 2
  344. shl r3d, 2
  345. LOAD_AB m12, m13, r2d, r3d
  346. mov r2, r1
  347. add r2, r1
  348. add r2, r1
  349. mov r5, r0
  350. add r5, r2
  351. mov r6, 2
  352. .loop:
  353. movu m8, [r0-8] ; y q2 q1 q0 p0 p1 p2 x
  354. movu m0, [r0+r1-8]
  355. movu m2, [r0+r1*2-8]
  356. movu m9, [r5-8]
  357. movu m5, [r5+r1-8]
  358. movu m1, [r5+r1*2-8]
  359. movu m3, [r5+r2-8]
  360. movu m7, [r5+r1*4-8]
  361. TRANSPOSE4x4W 8, 0, 2, 9, 10
  362. TRANSPOSE4x4W 5, 1, 3, 7, 10
  363. punpckhqdq m8, m5
  364. SBUTTERFLY qdq, 0, 1, 10
  365. SBUTTERFLY qdq, 2, 3, 10
  366. punpcklqdq m9, m7
  367. DEBLOCK_LUMA_INTER_SSE2
  368. TRANSPOSE4x4W 0, 1, 2, 3, 4
  369. LUMA_H_STORE r5, r2
  370. add r4, 2
  371. lea r0, [r0+r1*8]
  372. lea r5, [r5+r1*8]
  373. dec r6
  374. jg .loop
  375. REP_RET
  376. %endmacro
  377. INIT_XMM sse2
  378. DEBLOCK_LUMA_64
  379. %if HAVE_AVX_EXTERNAL
  380. INIT_XMM avx
  381. DEBLOCK_LUMA_64
  382. %endif
  383. %endif
  384. %macro SWAPMOVA 2
  385. %ifid %1
  386. SWAP %1, %2
  387. %else
  388. mova %1, %2
  389. %endif
  390. %endmacro
  391. ; in: t0-t2: tmp registers
  392. ; %1=p0 %2=p1 %3=p2 %4=p3 %5=q0 %6=q1 %7=mask0
  393. ; %8=mask1p %9=2 %10=p0' %11=p1' %12=p2'
  394. %macro LUMA_INTRA_P012 12 ; p0..p3 in memory
  395. %if ARCH_X86_64
  396. paddw t0, %3, %2
  397. mova t2, %4
  398. paddw t2, %3
  399. %else
  400. mova t0, %3
  401. mova t2, %4
  402. paddw t0, %2
  403. paddw t2, %3
  404. %endif
  405. paddw t0, %1
  406. paddw t2, t2
  407. paddw t0, %5
  408. paddw t2, %9
  409. paddw t0, %9 ; (p2 + p1 + p0 + q0 + 2)
  410. paddw t2, t0 ; (2*p3 + 3*p2 + p1 + p0 + q0 + 4)
  411. psrlw t2, 3
  412. psrlw t1, t0, 2
  413. psubw t2, %3
  414. psubw t1, %2
  415. pand t2, %8
  416. pand t1, %8
  417. paddw t2, %3
  418. paddw t1, %2
  419. SWAPMOVA %11, t1
  420. psubw t1, t0, %3
  421. paddw t0, t0
  422. psubw t1, %5
  423. psubw t0, %3
  424. paddw t1, %6
  425. paddw t1, %2
  426. paddw t0, %6
  427. psrlw t1, 2 ; (2*p1 + p0 + q1 + 2)/4
  428. psrlw t0, 3 ; (p2 + 2*p1 + 2*p0 + 2*q0 + q1 + 4)>>3
  429. pxor t0, t1
  430. pxor t1, %1
  431. pand t0, %8
  432. pand t1, %7
  433. pxor t0, t1
  434. pxor t0, %1
  435. SWAPMOVA %10, t0
  436. SWAPMOVA %12, t2
  437. %endmacro
  438. %macro LUMA_INTRA_INIT 1
  439. %xdefine pad %1*mmsize+((gprsize*3) % mmsize)-(stack_offset&15)
  440. %define t0 m4
  441. %define t1 m5
  442. %define t2 m6
  443. %define t3 m7
  444. %assign i 4
  445. %rep %1
  446. CAT_XDEFINE t, i, [rsp+mmsize*(i-4)]
  447. %assign i i+1
  448. %endrep
  449. SUB rsp, pad
  450. %endmacro
  451. ; in: %1-%3=tmp, %4=p2, %5=q2
  452. %macro LUMA_INTRA_INTER 5
  453. LOAD_AB t0, t1, r2d, r3d
  454. mova %1, t0
  455. LOAD_MASK m0, m1, m2, m3, %1, t1, t0, t2, t3
  456. %if ARCH_X86_64
  457. mova %2, t0 ; mask0
  458. psrlw t3, %1, 2
  459. %else
  460. mova t3, %1
  461. mova %2, t0 ; mask0
  462. psrlw t3, 2
  463. %endif
  464. paddw t3, [pw_2] ; alpha/4+2
  465. DIFF_LT m1, m2, t3, t2, t0 ; t2 = |p0-q0| < alpha/4+2
  466. pand t2, %2
  467. mova t3, %5 ; q2
  468. mova %1, t2 ; mask1
  469. DIFF_LT t3, m2, t1, t2, t0 ; t2 = |q2-q0| < beta
  470. pand t2, %1
  471. mova t3, %4 ; p2
  472. mova %3, t2 ; mask1q
  473. DIFF_LT t3, m1, t1, t2, t0 ; t2 = |p2-p0| < beta
  474. pand t2, %1
  475. mova %1, t2 ; mask1p
  476. %endmacro
  477. %macro LUMA_H_INTRA_LOAD 0
  478. %if mmsize == 8
  479. movu t0, [r0-8]
  480. movu t1, [r0+r1-8]
  481. movu m0, [r0+r1*2-8]
  482. movu m1, [r0+r4-8]
  483. TRANSPOSE4x4W 4, 5, 0, 1, 2
  484. mova t4, t0 ; p3
  485. mova t5, t1 ; p2
  486. movu m2, [r0]
  487. movu m3, [r0+r1]
  488. movu t0, [r0+r1*2]
  489. movu t1, [r0+r4]
  490. TRANSPOSE4x4W 2, 3, 4, 5, 6
  491. mova t6, t0 ; q2
  492. mova t7, t1 ; q3
  493. %else
  494. movu t0, [r0-8]
  495. movu t1, [r0+r1-8]
  496. movu m0, [r0+r1*2-8]
  497. movu m1, [r0+r5-8]
  498. movu m2, [r4-8]
  499. movu m3, [r4+r1-8]
  500. movu t2, [r4+r1*2-8]
  501. movu t3, [r4+r5-8]
  502. TRANSPOSE8x8W 4, 5, 0, 1, 2, 3, 6, 7, t4, t5
  503. mova t4, t0 ; p3
  504. mova t5, t1 ; p2
  505. mova t6, t2 ; q2
  506. mova t7, t3 ; q3
  507. %endif
  508. %endmacro
  509. ; in: %1=q3 %2=q2' %3=q1' %4=q0' %5=p0' %6=p1' %7=p2' %8=p3 %9=tmp
  510. %macro LUMA_H_INTRA_STORE 9
  511. %if mmsize == 8
  512. TRANSPOSE4x4W %1, %2, %3, %4, %9
  513. movq [r0-8], m%1
  514. movq [r0+r1-8], m%2
  515. movq [r0+r1*2-8], m%3
  516. movq [r0+r4-8], m%4
  517. movq m%1, %8
  518. TRANSPOSE4x4W %5, %6, %7, %1, %9
  519. movq [r0], m%5
  520. movq [r0+r1], m%6
  521. movq [r0+r1*2], m%7
  522. movq [r0+r4], m%1
  523. %else
  524. TRANSPOSE2x4x4W %1, %2, %3, %4, %9
  525. movq [r0-8], m%1
  526. movq [r0+r1-8], m%2
  527. movq [r0+r1*2-8], m%3
  528. movq [r0+r5-8], m%4
  529. movhps [r4-8], m%1
  530. movhps [r4+r1-8], m%2
  531. movhps [r4+r1*2-8], m%3
  532. movhps [r4+r5-8], m%4
  533. %ifnum %8
  534. SWAP %1, %8
  535. %else
  536. mova m%1, %8
  537. %endif
  538. TRANSPOSE2x4x4W %5, %6, %7, %1, %9
  539. movq [r0], m%5
  540. movq [r0+r1], m%6
  541. movq [r0+r1*2], m%7
  542. movq [r0+r5], m%1
  543. movhps [r4], m%5
  544. movhps [r4+r1], m%6
  545. movhps [r4+r1*2], m%7
  546. movhps [r4+r5], m%1
  547. %endif
  548. %endmacro
  549. %if ARCH_X86_64
  550. ;-----------------------------------------------------------------------------
  551. ; void deblock_v_luma_intra( uint16_t *pix, int stride, int alpha, int beta )
  552. ;-----------------------------------------------------------------------------
  553. %macro DEBLOCK_LUMA_INTRA_64 0
  554. cglobal deblock_v_luma_intra_10, 4,7,16
  555. %define t0 m1
  556. %define t1 m2
  557. %define t2 m4
  558. %define p2 m8
  559. %define p1 m9
  560. %define p0 m10
  561. %define q0 m11
  562. %define q1 m12
  563. %define q2 m13
  564. %define aa m5
  565. %define bb m14
  566. lea r4, [r1*4]
  567. lea r5, [r1*3] ; 3*stride
  568. neg r4
  569. add r4, r0 ; pix-4*stride
  570. mov r6, 2
  571. mova m0, [pw_2]
  572. shl r2d, 2
  573. shl r3d, 2
  574. LOAD_AB aa, bb, r2d, r3d
  575. .loop:
  576. mova p2, [r4+r1]
  577. mova p1, [r4+2*r1]
  578. mova p0, [r4+r5]
  579. mova q0, [r0]
  580. mova q1, [r0+r1]
  581. mova q2, [r0+2*r1]
  582. LOAD_MASK p1, p0, q0, q1, aa, bb, m3, t0, t1
  583. mova t2, aa
  584. psrlw t2, 2
  585. paddw t2, m0 ; alpha/4+2
  586. DIFF_LT p0, q0, t2, m6, t0 ; m6 = |p0-q0| < alpha/4+2
  587. DIFF_LT p2, p0, bb, t1, t0 ; m7 = |p2-p0| < beta
  588. DIFF_LT q2, q0, bb, m7, t0 ; t1 = |q2-q0| < beta
  589. pand m6, m3
  590. pand m7, m6
  591. pand m6, t1
  592. LUMA_INTRA_P012 p0, p1, p2, [r4], q0, q1, m3, m6, m0, [r4+r5], [r4+2*r1], [r4+r1]
  593. LUMA_INTRA_P012 q0, q1, q2, [r0+r5], p0, p1, m3, m7, m0, [r0], [r0+r1], [r0+2*r1]
  594. add r0, mmsize
  595. add r4, mmsize
  596. dec r6
  597. jg .loop
  598. REP_RET
  599. ;-----------------------------------------------------------------------------
  600. ; void deblock_h_luma_intra( uint16_t *pix, int stride, int alpha, int beta )
  601. ;-----------------------------------------------------------------------------
  602. cglobal deblock_h_luma_intra_10, 4,7,16
  603. %define t0 m15
  604. %define t1 m14
  605. %define t2 m2
  606. %define q3 m5
  607. %define q2 m8
  608. %define q1 m9
  609. %define q0 m10
  610. %define p0 m11
  611. %define p1 m12
  612. %define p2 m13
  613. %define p3 m4
  614. %define spill [rsp]
  615. %assign pad 24-(stack_offset&15)
  616. SUB rsp, pad
  617. lea r4, [r1*4]
  618. lea r5, [r1*3] ; 3*stride
  619. add r4, r0 ; pix+4*stride
  620. mov r6, 2
  621. mova m0, [pw_2]
  622. shl r2d, 2
  623. shl r3d, 2
  624. .loop:
  625. movu q3, [r0-8]
  626. movu q2, [r0+r1-8]
  627. movu q1, [r0+r1*2-8]
  628. movu q0, [r0+r5-8]
  629. movu p0, [r4-8]
  630. movu p1, [r4+r1-8]
  631. movu p2, [r4+r1*2-8]
  632. movu p3, [r4+r5-8]
  633. TRANSPOSE8x8W 5, 8, 9, 10, 11, 12, 13, 4, 1
  634. LOAD_AB m1, m2, r2d, r3d
  635. LOAD_MASK q1, q0, p0, p1, m1, m2, m3, t0, t1
  636. psrlw m1, 2
  637. paddw m1, m0 ; alpha/4+2
  638. DIFF_LT p0, q0, m1, m6, t0 ; m6 = |p0-q0| < alpha/4+2
  639. DIFF_LT q2, q0, m2, t1, t0 ; t1 = |q2-q0| < beta
  640. DIFF_LT p0, p2, m2, m7, t0 ; m7 = |p2-p0| < beta
  641. pand m6, m3
  642. pand m7, m6
  643. pand m6, t1
  644. mova spill, q3
  645. LUMA_INTRA_P012 q0, q1, q2, q3, p0, p1, m3, m6, m0, m5, m1, q2
  646. LUMA_INTRA_P012 p0, p1, p2, p3, q0, q1, m3, m7, m0, p0, m6, p2
  647. mova m7, spill
  648. LUMA_H_INTRA_STORE 7, 8, 1, 5, 11, 6, 13, 4, 14
  649. lea r0, [r0+r1*8]
  650. lea r4, [r4+r1*8]
  651. dec r6
  652. jg .loop
  653. ADD rsp, pad
  654. RET
  655. %endmacro
  656. INIT_XMM sse2
  657. DEBLOCK_LUMA_INTRA_64
  658. %if HAVE_AVX_EXTERNAL
  659. INIT_XMM avx
  660. DEBLOCK_LUMA_INTRA_64
  661. %endif
  662. %endif
  663. %macro DEBLOCK_LUMA_INTRA 0
  664. ;-----------------------------------------------------------------------------
  665. ; void deblock_v_luma_intra( uint16_t *pix, int stride, int alpha, int beta )
  666. ;-----------------------------------------------------------------------------
  667. cglobal deblock_v_luma_intra_10, 4,7,8*(mmsize/16)
  668. LUMA_INTRA_INIT 3
  669. lea r4, [r1*4]
  670. lea r5, [r1*3]
  671. neg r4
  672. add r4, r0
  673. mov r6, 32/mmsize
  674. shl r2d, 2
  675. shl r3d, 2
  676. .loop:
  677. mova m0, [r4+r1*2] ; p1
  678. mova m1, [r4+r5] ; p0
  679. mova m2, [r0] ; q0
  680. mova m3, [r0+r1] ; q1
  681. LUMA_INTRA_INTER t4, t5, t6, [r4+r1], [r0+r1*2]
  682. LUMA_INTRA_P012 m1, m0, t3, [r4], m2, m3, t5, t4, [pw_2], [r4+r5], [r4+2*r1], [r4+r1]
  683. mova t3, [r0+r1*2] ; q2
  684. LUMA_INTRA_P012 m2, m3, t3, [r0+r5], m1, m0, t5, t6, [pw_2], [r0], [r0+r1], [r0+2*r1]
  685. add r0, mmsize
  686. add r4, mmsize
  687. dec r6
  688. jg .loop
  689. ADD rsp, pad
  690. RET
  691. ;-----------------------------------------------------------------------------
  692. ; void deblock_h_luma_intra( uint16_t *pix, int stride, int alpha, int beta )
  693. ;-----------------------------------------------------------------------------
  694. cglobal deblock_h_luma_intra_10, 4,7,8*(mmsize/16)
  695. LUMA_INTRA_INIT 8
  696. %if mmsize == 8
  697. lea r4, [r1*3]
  698. mov r5, 32/mmsize
  699. %else
  700. lea r4, [r1*4]
  701. lea r5, [r1*3] ; 3*stride
  702. add r4, r0 ; pix+4*stride
  703. mov r6, 32/mmsize
  704. %endif
  705. shl r2d, 2
  706. shl r3d, 2
  707. .loop:
  708. LUMA_H_INTRA_LOAD
  709. LUMA_INTRA_INTER t8, t9, t10, t5, t6
  710. LUMA_INTRA_P012 m1, m0, t3, t4, m2, m3, t9, t8, [pw_2], t8, t5, t11
  711. mova t3, t6 ; q2
  712. LUMA_INTRA_P012 m2, m3, t3, t7, m1, m0, t9, t10, [pw_2], m4, t6, m5
  713. mova m2, t4
  714. mova m0, t11
  715. mova m1, t5
  716. mova m3, t8
  717. mova m6, t6
  718. LUMA_H_INTRA_STORE 2, 0, 1, 3, 4, 6, 5, t7, 7
  719. lea r0, [r0+r1*(mmsize/2)]
  720. %if mmsize == 8
  721. dec r5
  722. %else
  723. lea r4, [r4+r1*(mmsize/2)]
  724. dec r6
  725. %endif
  726. jg .loop
  727. ADD rsp, pad
  728. RET
  729. %endmacro
  730. %if ARCH_X86_64 == 0
  731. INIT_MMX mmxext
  732. DEBLOCK_LUMA
  733. DEBLOCK_LUMA_INTRA
  734. INIT_XMM sse2
  735. DEBLOCK_LUMA
  736. DEBLOCK_LUMA_INTRA
  737. %if HAVE_AVX_EXTERNAL
  738. INIT_XMM avx
  739. DEBLOCK_LUMA
  740. DEBLOCK_LUMA_INTRA
  741. %endif
  742. %endif
  743. ; in: %1=p0, %2=q0, %3=p1, %4=q1, %5=mask, %6=tmp, %7=tmp
  744. ; out: %1=p0', %2=q0'
  745. %macro CHROMA_DEBLOCK_P0_Q0_INTRA 7
  746. mova %6, [pw_2]
  747. paddw %6, %3
  748. paddw %6, %4
  749. paddw %7, %6, %2
  750. paddw %6, %1
  751. paddw %6, %3
  752. paddw %7, %4
  753. psraw %6, 2
  754. psraw %7, 2
  755. psubw %6, %1
  756. psubw %7, %2
  757. pand %6, %5
  758. pand %7, %5
  759. paddw %1, %6
  760. paddw %2, %7
  761. %endmacro
  762. %macro CHROMA_V_LOAD 1
  763. mova m0, [r0] ; p1
  764. mova m1, [r0+r1] ; p0
  765. mova m2, [%1] ; q0
  766. mova m3, [%1+r1] ; q1
  767. %endmacro
  768. %macro CHROMA_V_STORE 0
  769. mova [r0+1*r1], m1
  770. mova [r0+2*r1], m2
  771. %endmacro
  772. %macro CHROMA_V_LOAD_TC 2
  773. movd %1, [%2]
  774. punpcklbw %1, %1
  775. punpcklwd %1, %1
  776. psraw %1, 6
  777. %endmacro
  778. %macro DEBLOCK_CHROMA 0
  779. ;-----------------------------------------------------------------------------
  780. ; void deblock_v_chroma( uint16_t *pix, int stride, int alpha, int beta, int8_t *tc0 )
  781. ;-----------------------------------------------------------------------------
  782. cglobal deblock_v_chroma_10, 5,7-(mmsize/16),8*(mmsize/16)
  783. mov r5, r0
  784. sub r0, r1
  785. sub r0, r1
  786. shl r2d, 2
  787. shl r3d, 2
  788. %if mmsize < 16
  789. mov r6, 16/mmsize
  790. .loop:
  791. %endif
  792. CHROMA_V_LOAD r5
  793. LOAD_AB m4, m5, r2d, r3d
  794. LOAD_MASK m0, m1, m2, m3, m4, m5, m7, m6, m4
  795. pxor m4, m4
  796. CHROMA_V_LOAD_TC m6, r4
  797. psubw m6, [pw_3]
  798. pmaxsw m6, m4
  799. pand m7, m6
  800. DEBLOCK_P0_Q0 m1, m2, m0, m3, m7, m5, m6
  801. CHROMA_V_STORE
  802. %if mmsize < 16
  803. add r0, mmsize
  804. add r5, mmsize
  805. add r4, mmsize/4
  806. dec r6
  807. jg .loop
  808. REP_RET
  809. %else
  810. RET
  811. %endif
  812. ;-----------------------------------------------------------------------------
  813. ; void deblock_v_chroma_intra( uint16_t *pix, int stride, int alpha, int beta )
  814. ;-----------------------------------------------------------------------------
  815. cglobal deblock_v_chroma_intra_10, 4,6-(mmsize/16),8*(mmsize/16)
  816. mov r4, r0
  817. sub r0, r1
  818. sub r0, r1
  819. shl r2d, 2
  820. shl r3d, 2
  821. %if mmsize < 16
  822. mov r5, 16/mmsize
  823. .loop:
  824. %endif
  825. CHROMA_V_LOAD r4
  826. LOAD_AB m4, m5, r2d, r3d
  827. LOAD_MASK m0, m1, m2, m3, m4, m5, m7, m6, m4
  828. CHROMA_DEBLOCK_P0_Q0_INTRA m1, m2, m0, m3, m7, m5, m6
  829. CHROMA_V_STORE
  830. %if mmsize < 16
  831. add r0, mmsize
  832. add r4, mmsize
  833. dec r5
  834. jg .loop
  835. REP_RET
  836. %else
  837. RET
  838. %endif
  839. %endmacro
  840. %if ARCH_X86_64 == 0
  841. INIT_MMX mmxext
  842. DEBLOCK_CHROMA
  843. %endif
  844. INIT_XMM sse2
  845. DEBLOCK_CHROMA
  846. %if HAVE_AVX_EXTERNAL
  847. INIT_XMM avx
  848. DEBLOCK_CHROMA
  849. %endif