You can not select more than 25 topics Topics must start with a letter or number, can include dashes ('-') and can be up to 35 characters long.

414 lines
11KB

  1. ;******************************************************************************
  2. ;* x86-optimized vertical line scaling functions
  3. ;* Copyright (c) 2011 Ronald S. Bultje <rsbultje@gmail.com>
  4. ;* Kieran Kunhya <kieran@kunhya.com>
  5. ;*
  6. ;* This file is part of FFmpeg.
  7. ;*
  8. ;* FFmpeg is free software; you can redistribute it and/or
  9. ;* modify it under the terms of the GNU Lesser General Public
  10. ;* License as published by the Free Software Foundation; either
  11. ;* version 2.1 of the License, or (at your option) any later version.
  12. ;*
  13. ;* FFmpeg is distributed in the hope that it will be useful,
  14. ;* but WITHOUT ANY WARRANTY; without even the implied warranty of
  15. ;* MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the GNU
  16. ;* Lesser General Public License for more details.
  17. ;*
  18. ;* You should have received a copy of the GNU Lesser General Public
  19. ;* License along with FFmpeg; if not, write to the Free Software
  20. ;* Foundation, Inc., 51 Franklin Street, Fifth Floor, Boston, MA 02110-1301 USA
  21. ;******************************************************************************
  22. %include "libavutil/x86/x86util.asm"
  23. SECTION_RODATA
  24. minshort: times 8 dw 0x8000
  25. yuv2yuvX_16_start: times 4 dd 0x4000 - 0x40000000
  26. yuv2yuvX_10_start: times 4 dd 0x10000
  27. yuv2yuvX_9_start: times 4 dd 0x20000
  28. yuv2yuvX_10_upper: times 8 dw 0x3ff
  29. yuv2yuvX_9_upper: times 8 dw 0x1ff
  30. pd_4: times 4 dd 4
  31. pd_4min0x40000:times 4 dd 4 - (0x40000)
  32. pw_16: times 8 dw 16
  33. pw_32: times 8 dw 32
  34. pw_512: times 8 dw 512
  35. pw_1024: times 8 dw 1024
  36. SECTION .text
  37. ;-----------------------------------------------------------------------------
  38. ; vertical line scaling
  39. ;
  40. ; void yuv2plane1_<output_size>_<opt>(const int16_t *src, uint8_t *dst, int dstW,
  41. ; const uint8_t *dither, int offset)
  42. ; and
  43. ; void yuv2planeX_<output_size>_<opt>(const int16_t *filter, int filterSize,
  44. ; const int16_t **src, uint8_t *dst, int dstW,
  45. ; const uint8_t *dither, int offset)
  46. ;
  47. ; Scale one or $filterSize lines of source data to generate one line of output
  48. ; data. The input is 15-bit in int16_t if $output_size is [8,10] and 19-bit in
  49. ; int32_t if $output_size is 16. $filter is 12-bits. $filterSize is a multiple
  50. ; of 2. $offset is either 0 or 3. $dither holds 8 values.
  51. ;-----------------------------------------------------------------------------
  52. %macro yuv2planeX_fn 3
  53. %if ARCH_X86_32
  54. %define cntr_reg fltsizeq
  55. %define movsx mov
  56. %else
  57. %define cntr_reg r7
  58. %define movsx movsxd
  59. %endif
  60. cglobal yuv2planeX_%1, %3, 8, %2, filter, fltsize, src, dst, w, dither, offset
  61. %if %1 == 8 || %1 == 9 || %1 == 10
  62. pxor m6, m6
  63. %endif ; %1 == 8/9/10
  64. %if %1 == 8
  65. %if ARCH_X86_32
  66. %assign pad 0x2c - (stack_offset & 15)
  67. SUB rsp, pad
  68. %define m_dith m7
  69. %else ; x86-64
  70. %define m_dith m9
  71. %endif ; x86-32
  72. ; create registers holding dither
  73. movq m_dith, [ditherq] ; dither
  74. test offsetd, offsetd
  75. jz .no_rot
  76. %if mmsize == 16
  77. punpcklqdq m_dith, m_dith
  78. %endif ; mmsize == 16
  79. PALIGNR m_dith, m_dith, 3, m0
  80. .no_rot:
  81. %if mmsize == 16
  82. punpcklbw m_dith, m6
  83. %if ARCH_X86_64
  84. punpcklwd m8, m_dith, m6
  85. pslld m8, 12
  86. %else ; x86-32
  87. punpcklwd m5, m_dith, m6
  88. pslld m5, 12
  89. %endif ; x86-32/64
  90. punpckhwd m_dith, m6
  91. pslld m_dith, 12
  92. %if ARCH_X86_32
  93. mova [rsp+ 0], m5
  94. mova [rsp+16], m_dith
  95. %endif
  96. %else ; mmsize == 8
  97. punpcklbw m5, m_dith, m6
  98. punpckhbw m_dith, m6
  99. punpcklwd m4, m5, m6
  100. punpckhwd m5, m6
  101. punpcklwd m3, m_dith, m6
  102. punpckhwd m_dith, m6
  103. pslld m4, 12
  104. pslld m5, 12
  105. pslld m3, 12
  106. pslld m_dith, 12
  107. mova [rsp+ 0], m4
  108. mova [rsp+ 8], m5
  109. mova [rsp+16], m3
  110. mova [rsp+24], m_dith
  111. %endif ; mmsize == 8/16
  112. %endif ; %1 == 8
  113. xor r5, r5
  114. .pixelloop:
  115. %assign %%i 0
  116. ; the rep here is for the 8bit output mmx case, where dither covers
  117. ; 8 pixels but we can only handle 2 pixels per register, and thus 4
  118. ; pixels per iteration. In order to not have to keep track of where
  119. ; we are w.r.t. dithering, we unroll the mmx/8bit loop x2.
  120. %if %1 == 8
  121. %assign %%repcnt 16/mmsize
  122. %else
  123. %assign %%repcnt 1
  124. %endif
  125. %rep %%repcnt
  126. %if %1 == 8
  127. %if ARCH_X86_32
  128. mova m2, [rsp+mmsize*(0+%%i)]
  129. mova m1, [rsp+mmsize*(1+%%i)]
  130. %else ; x86-64
  131. mova m2, m8
  132. mova m1, m_dith
  133. %endif ; x86-32/64
  134. %else ; %1 == 9/10/16
  135. mova m1, [yuv2yuvX_%1_start]
  136. mova m2, m1
  137. %endif ; %1 == 8/9/10/16
  138. movsx cntr_reg, fltsizem
  139. .filterloop_ %+ %%i:
  140. ; input pixels
  141. mov r6, [srcq+gprsize*cntr_reg-2*gprsize]
  142. %if %1 == 16
  143. mova m3, [r6+r5*4]
  144. mova m5, [r6+r5*4+mmsize]
  145. %else ; %1 == 8/9/10
  146. mova m3, [r6+r5*2]
  147. %endif ; %1 == 8/9/10/16
  148. mov r6, [srcq+gprsize*cntr_reg-gprsize]
  149. %if %1 == 16
  150. mova m4, [r6+r5*4]
  151. mova m6, [r6+r5*4+mmsize]
  152. %else ; %1 == 8/9/10
  153. mova m4, [r6+r5*2]
  154. %endif ; %1 == 8/9/10/16
  155. ; coefficients
  156. movd m0, [filterq+2*cntr_reg-4] ; coeff[0], coeff[1]
  157. %if %1 == 16
  158. pshuflw m7, m0, 0 ; coeff[0]
  159. pshuflw m0, m0, 0x55 ; coeff[1]
  160. pmovsxwd m7, m7 ; word -> dword
  161. pmovsxwd m0, m0 ; word -> dword
  162. pmulld m3, m7
  163. pmulld m5, m7
  164. pmulld m4, m0
  165. pmulld m6, m0
  166. paddd m2, m3
  167. paddd m1, m5
  168. paddd m2, m4
  169. paddd m1, m6
  170. %else ; %1 == 10/9/8
  171. punpcklwd m5, m3, m4
  172. punpckhwd m3, m4
  173. SPLATD m0
  174. pmaddwd m5, m0
  175. pmaddwd m3, m0
  176. paddd m2, m5
  177. paddd m1, m3
  178. %endif ; %1 == 8/9/10/16
  179. sub cntr_reg, 2
  180. jg .filterloop_ %+ %%i
  181. %if %1 == 16
  182. psrad m2, 31 - %1
  183. psrad m1, 31 - %1
  184. %else ; %1 == 10/9/8
  185. psrad m2, 27 - %1
  186. psrad m1, 27 - %1
  187. %endif ; %1 == 8/9/10/16
  188. %if %1 == 8
  189. packssdw m2, m1
  190. packuswb m2, m2
  191. movh [dstq+r5*1], m2
  192. %else ; %1 == 9/10/16
  193. %if %1 == 16
  194. packssdw m2, m1
  195. paddw m2, [minshort]
  196. %else ; %1 == 9/10
  197. %if cpuflag(sse4)
  198. packusdw m2, m1
  199. %else ; mmxext/sse2
  200. packssdw m2, m1
  201. pmaxsw m2, m6
  202. %endif ; mmxext/sse2/sse4/avx
  203. pminsw m2, [yuv2yuvX_%1_upper]
  204. %endif ; %1 == 9/10/16
  205. mova [dstq+r5*2], m2
  206. %endif ; %1 == 8/9/10/16
  207. add r5, mmsize/2
  208. sub wd, mmsize/2
  209. %assign %%i %%i+2
  210. %endrep
  211. jg .pixelloop
  212. %if %1 == 8
  213. %if ARCH_X86_32
  214. ADD rsp, pad
  215. RET
  216. %else ; x86-64
  217. REP_RET
  218. %endif ; x86-32/64
  219. %else ; %1 == 9/10/16
  220. REP_RET
  221. %endif ; %1 == 8/9/10/16
  222. %endmacro
  223. %if ARCH_X86_32
  224. INIT_MMX mmxext
  225. yuv2planeX_fn 8, 0, 7
  226. yuv2planeX_fn 9, 0, 5
  227. yuv2planeX_fn 10, 0, 5
  228. %endif
  229. INIT_XMM sse2
  230. yuv2planeX_fn 8, 10, 7
  231. yuv2planeX_fn 9, 7, 5
  232. yuv2planeX_fn 10, 7, 5
  233. INIT_XMM sse4
  234. yuv2planeX_fn 8, 10, 7
  235. yuv2planeX_fn 9, 7, 5
  236. yuv2planeX_fn 10, 7, 5
  237. yuv2planeX_fn 16, 8, 5
  238. %if HAVE_AVX_EXTERNAL
  239. INIT_XMM avx
  240. yuv2planeX_fn 8, 10, 7
  241. yuv2planeX_fn 9, 7, 5
  242. yuv2planeX_fn 10, 7, 5
  243. %endif
  244. ; %1=outout-bpc, %2=alignment (u/a)
  245. %macro yuv2plane1_mainloop 2
  246. .loop_%2:
  247. %if %1 == 8
  248. paddsw m0, m2, [srcq+wq*2+mmsize*0]
  249. paddsw m1, m3, [srcq+wq*2+mmsize*1]
  250. psraw m0, 7
  251. psraw m1, 7
  252. packuswb m0, m1
  253. mov%2 [dstq+wq], m0
  254. %elif %1 == 16
  255. paddd m0, m4, [srcq+wq*4+mmsize*0]
  256. paddd m1, m4, [srcq+wq*4+mmsize*1]
  257. paddd m2, m4, [srcq+wq*4+mmsize*2]
  258. paddd m3, m4, [srcq+wq*4+mmsize*3]
  259. psrad m0, 3
  260. psrad m1, 3
  261. psrad m2, 3
  262. psrad m3, 3
  263. %if cpuflag(sse4) ; avx/sse4
  264. packusdw m0, m1
  265. packusdw m2, m3
  266. %else ; mmx/sse2
  267. packssdw m0, m1
  268. packssdw m2, m3
  269. paddw m0, m5
  270. paddw m2, m5
  271. %endif ; mmx/sse2/sse4/avx
  272. mov%2 [dstq+wq*2+mmsize*0], m0
  273. mov%2 [dstq+wq*2+mmsize*1], m2
  274. %else ; %1 == 9/10
  275. paddsw m0, m2, [srcq+wq*2+mmsize*0]
  276. paddsw m1, m2, [srcq+wq*2+mmsize*1]
  277. psraw m0, 15 - %1
  278. psraw m1, 15 - %1
  279. pmaxsw m0, m4
  280. pmaxsw m1, m4
  281. pminsw m0, m3
  282. pminsw m1, m3
  283. mov%2 [dstq+wq*2+mmsize*0], m0
  284. mov%2 [dstq+wq*2+mmsize*1], m1
  285. %endif
  286. add wq, mmsize
  287. jl .loop_%2
  288. %endmacro
  289. %macro yuv2plane1_fn 3
  290. cglobal yuv2plane1_%1, %3, %3, %2, src, dst, w, dither, offset
  291. movsxdifnidn wq, wd
  292. add wq, mmsize - 1
  293. and wq, ~(mmsize - 1)
  294. %if %1 == 8
  295. add dstq, wq
  296. %else ; %1 != 8
  297. lea dstq, [dstq+wq*2]
  298. %endif ; %1 == 8
  299. %if %1 == 16
  300. lea srcq, [srcq+wq*4]
  301. %else ; %1 != 16
  302. lea srcq, [srcq+wq*2]
  303. %endif ; %1 == 16
  304. neg wq
  305. %if %1 == 8
  306. pxor m4, m4 ; zero
  307. ; create registers holding dither
  308. movq m3, [ditherq] ; dither
  309. test offsetd, offsetd
  310. jz .no_rot
  311. %if mmsize == 16
  312. punpcklqdq m3, m3
  313. %endif ; mmsize == 16
  314. PALIGNR m3, m3, 3, m2
  315. .no_rot:
  316. %if mmsize == 8
  317. mova m2, m3
  318. punpckhbw m3, m4 ; byte->word
  319. punpcklbw m2, m4 ; byte->word
  320. %else
  321. punpcklbw m3, m4
  322. mova m2, m3
  323. %endif
  324. %elif %1 == 9
  325. pxor m4, m4
  326. mova m3, [pw_512]
  327. mova m2, [pw_32]
  328. %elif %1 == 10
  329. pxor m4, m4
  330. mova m3, [pw_1024]
  331. mova m2, [pw_16]
  332. %else ; %1 == 16
  333. %if cpuflag(sse4) ; sse4/avx
  334. mova m4, [pd_4]
  335. %else ; mmx/sse2
  336. mova m4, [pd_4min0x40000]
  337. mova m5, [minshort]
  338. %endif ; mmx/sse2/sse4/avx
  339. %endif ; %1 == ..
  340. ; actual pixel scaling
  341. %if mmsize == 8
  342. yuv2plane1_mainloop %1, a
  343. %else ; mmsize == 16
  344. test dstq, 15
  345. jnz .unaligned
  346. yuv2plane1_mainloop %1, a
  347. REP_RET
  348. .unaligned:
  349. yuv2plane1_mainloop %1, u
  350. %endif ; mmsize == 8/16
  351. REP_RET
  352. %endmacro
  353. %if ARCH_X86_32
  354. INIT_MMX mmx
  355. yuv2plane1_fn 8, 0, 5
  356. yuv2plane1_fn 16, 0, 3
  357. INIT_MMX mmxext
  358. yuv2plane1_fn 9, 0, 3
  359. yuv2plane1_fn 10, 0, 3
  360. %endif
  361. INIT_XMM sse2
  362. yuv2plane1_fn 8, 5, 5
  363. yuv2plane1_fn 9, 5, 3
  364. yuv2plane1_fn 10, 5, 3
  365. yuv2plane1_fn 16, 6, 3
  366. INIT_XMM sse4
  367. yuv2plane1_fn 16, 5, 3
  368. %if HAVE_AVX_EXTERNAL
  369. INIT_XMM avx
  370. yuv2plane1_fn 8, 5, 5
  371. yuv2plane1_fn 9, 5, 3
  372. yuv2plane1_fn 10, 5, 3
  373. yuv2plane1_fn 16, 5, 3
  374. %endif