variance_neon.c 14 KB

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  1. /*
  2. * Copyright (c) 2014 The WebM project authors. All Rights Reserved.
  3. *
  4. * Use of this source code is governed by a BSD-style license
  5. * that can be found in the LICENSE file in the root of the source
  6. * tree. An additional intellectual property rights grant can be found
  7. * in the file PATENTS. All contributing project authors may
  8. * be found in the AUTHORS file in the root of the source tree.
  9. */
  10. #include <arm_neon.h>
  11. #include <assert.h>
  12. #include "./vpx_dsp_rtcd.h"
  13. #include "./vpx_config.h"
  14. #include "vpx/vpx_integer.h"
  15. #include "vpx_dsp/arm/mem_neon.h"
  16. #include "vpx_dsp/arm/sum_neon.h"
  17. #include "vpx_ports/mem.h"
  18. // The variance helper functions use int16_t for sum. 8 values are accumulated
  19. // and then added (at which point they expand up to int32_t). To avoid overflow,
  20. // there can be no more than 32767 / 255 ~= 128 values accumulated in each
  21. // column. For a 32x32 buffer, this results in 32 / 8 = 4 values per row * 32
  22. // rows = 128. Asserts have been added to each function to warn against reaching
  23. // this limit.
  24. // Process a block of width 4 four rows at a time.
  25. static void variance_neon_w4x4(const uint8_t *a, int a_stride, const uint8_t *b,
  26. int b_stride, int h, uint32_t *sse, int *sum) {
  27. int i;
  28. int16x8_t sum_s16 = vdupq_n_s16(0);
  29. int32x4_t sse_lo_s32 = vdupq_n_s32(0);
  30. int32x4_t sse_hi_s32 = vdupq_n_s32(0);
  31. // Since width is only 4, sum_s16 only loads a half row per loop.
  32. assert(h <= 256);
  33. for (i = 0; i < h; i += 4) {
  34. const uint8x16_t a_u8 = load_unaligned_u8q(a, a_stride);
  35. const uint8x16_t b_u8 = load_unaligned_u8q(b, b_stride);
  36. const uint16x8_t diff_lo_u16 =
  37. vsubl_u8(vget_low_u8(a_u8), vget_low_u8(b_u8));
  38. const uint16x8_t diff_hi_u16 =
  39. vsubl_u8(vget_high_u8(a_u8), vget_high_u8(b_u8));
  40. const int16x8_t diff_lo_s16 = vreinterpretq_s16_u16(diff_lo_u16);
  41. const int16x8_t diff_hi_s16 = vreinterpretq_s16_u16(diff_hi_u16);
  42. sum_s16 = vaddq_s16(sum_s16, diff_lo_s16);
  43. sum_s16 = vaddq_s16(sum_s16, diff_hi_s16);
  44. sse_lo_s32 = vmlal_s16(sse_lo_s32, vget_low_s16(diff_lo_s16),
  45. vget_low_s16(diff_lo_s16));
  46. sse_lo_s32 = vmlal_s16(sse_lo_s32, vget_high_s16(diff_lo_s16),
  47. vget_high_s16(diff_lo_s16));
  48. sse_hi_s32 = vmlal_s16(sse_hi_s32, vget_low_s16(diff_hi_s16),
  49. vget_low_s16(diff_hi_s16));
  50. sse_hi_s32 = vmlal_s16(sse_hi_s32, vget_high_s16(diff_hi_s16),
  51. vget_high_s16(diff_hi_s16));
  52. a += 4 * a_stride;
  53. b += 4 * b_stride;
  54. }
  55. *sum = vget_lane_s32(horizontal_add_int16x8(sum_s16), 0);
  56. *sse = vget_lane_u32(horizontal_add_uint32x4(vreinterpretq_u32_s32(
  57. vaddq_s32(sse_lo_s32, sse_hi_s32))),
  58. 0);
  59. }
  60. // Process a block of any size where the width is divisible by 16.
  61. static void variance_neon_w16(const uint8_t *a, int a_stride, const uint8_t *b,
  62. int b_stride, int w, int h, uint32_t *sse,
  63. int *sum) {
  64. int i, j;
  65. int16x8_t sum_s16 = vdupq_n_s16(0);
  66. int32x4_t sse_lo_s32 = vdupq_n_s32(0);
  67. int32x4_t sse_hi_s32 = vdupq_n_s32(0);
  68. // The loop loads 16 values at a time but doubles them up when accumulating
  69. // into sum_s16.
  70. assert(w / 8 * h <= 128);
  71. for (i = 0; i < h; ++i) {
  72. for (j = 0; j < w; j += 16) {
  73. const uint8x16_t a_u8 = vld1q_u8(a + j);
  74. const uint8x16_t b_u8 = vld1q_u8(b + j);
  75. const uint16x8_t diff_lo_u16 =
  76. vsubl_u8(vget_low_u8(a_u8), vget_low_u8(b_u8));
  77. const uint16x8_t diff_hi_u16 =
  78. vsubl_u8(vget_high_u8(a_u8), vget_high_u8(b_u8));
  79. const int16x8_t diff_lo_s16 = vreinterpretq_s16_u16(diff_lo_u16);
  80. const int16x8_t diff_hi_s16 = vreinterpretq_s16_u16(diff_hi_u16);
  81. sum_s16 = vaddq_s16(sum_s16, diff_lo_s16);
  82. sum_s16 = vaddq_s16(sum_s16, diff_hi_s16);
  83. sse_lo_s32 = vmlal_s16(sse_lo_s32, vget_low_s16(diff_lo_s16),
  84. vget_low_s16(diff_lo_s16));
  85. sse_lo_s32 = vmlal_s16(sse_lo_s32, vget_high_s16(diff_lo_s16),
  86. vget_high_s16(diff_lo_s16));
  87. sse_hi_s32 = vmlal_s16(sse_hi_s32, vget_low_s16(diff_hi_s16),
  88. vget_low_s16(diff_hi_s16));
  89. sse_hi_s32 = vmlal_s16(sse_hi_s32, vget_high_s16(diff_hi_s16),
  90. vget_high_s16(diff_hi_s16));
  91. }
  92. a += a_stride;
  93. b += b_stride;
  94. }
  95. *sum = vget_lane_s32(horizontal_add_int16x8(sum_s16), 0);
  96. *sse = vget_lane_u32(horizontal_add_uint32x4(vreinterpretq_u32_s32(
  97. vaddq_s32(sse_lo_s32, sse_hi_s32))),
  98. 0);
  99. }
  100. // Process a block of width 8 two rows at a time.
  101. static void variance_neon_w8x2(const uint8_t *a, int a_stride, const uint8_t *b,
  102. int b_stride, int h, uint32_t *sse, int *sum) {
  103. int i = 0;
  104. int16x8_t sum_s16 = vdupq_n_s16(0);
  105. int32x4_t sse_lo_s32 = vdupq_n_s32(0);
  106. int32x4_t sse_hi_s32 = vdupq_n_s32(0);
  107. // Each column has it's own accumulator entry in sum_s16.
  108. assert(h <= 128);
  109. do {
  110. const uint8x8_t a_0_u8 = vld1_u8(a);
  111. const uint8x8_t a_1_u8 = vld1_u8(a + a_stride);
  112. const uint8x8_t b_0_u8 = vld1_u8(b);
  113. const uint8x8_t b_1_u8 = vld1_u8(b + b_stride);
  114. const uint16x8_t diff_0_u16 = vsubl_u8(a_0_u8, b_0_u8);
  115. const uint16x8_t diff_1_u16 = vsubl_u8(a_1_u8, b_1_u8);
  116. const int16x8_t diff_0_s16 = vreinterpretq_s16_u16(diff_0_u16);
  117. const int16x8_t diff_1_s16 = vreinterpretq_s16_u16(diff_1_u16);
  118. sum_s16 = vaddq_s16(sum_s16, diff_0_s16);
  119. sum_s16 = vaddq_s16(sum_s16, diff_1_s16);
  120. sse_lo_s32 = vmlal_s16(sse_lo_s32, vget_low_s16(diff_0_s16),
  121. vget_low_s16(diff_0_s16));
  122. sse_lo_s32 = vmlal_s16(sse_lo_s32, vget_low_s16(diff_1_s16),
  123. vget_low_s16(diff_1_s16));
  124. sse_hi_s32 = vmlal_s16(sse_hi_s32, vget_high_s16(diff_0_s16),
  125. vget_high_s16(diff_0_s16));
  126. sse_hi_s32 = vmlal_s16(sse_hi_s32, vget_high_s16(diff_1_s16),
  127. vget_high_s16(diff_1_s16));
  128. a += a_stride + a_stride;
  129. b += b_stride + b_stride;
  130. i += 2;
  131. } while (i < h);
  132. *sum = vget_lane_s32(horizontal_add_int16x8(sum_s16), 0);
  133. *sse = vget_lane_u32(horizontal_add_uint32x4(vreinterpretq_u32_s32(
  134. vaddq_s32(sse_lo_s32, sse_hi_s32))),
  135. 0);
  136. }
  137. void vpx_get8x8var_neon(const uint8_t *a, int a_stride, const uint8_t *b,
  138. int b_stride, unsigned int *sse, int *sum) {
  139. variance_neon_w8x2(a, a_stride, b, b_stride, 8, sse, sum);
  140. }
  141. void vpx_get16x16var_neon(const uint8_t *a, int a_stride, const uint8_t *b,
  142. int b_stride, unsigned int *sse, int *sum) {
  143. variance_neon_w16(a, a_stride, b, b_stride, 16, 16, sse, sum);
  144. }
  145. #define varianceNxM(n, m, shift) \
  146. unsigned int vpx_variance##n##x##m##_neon(const uint8_t *a, int a_stride, \
  147. const uint8_t *b, int b_stride, \
  148. unsigned int *sse) { \
  149. int sum; \
  150. if (n == 4) \
  151. variance_neon_w4x4(a, a_stride, b, b_stride, m, sse, &sum); \
  152. else if (n == 8) \
  153. variance_neon_w8x2(a, a_stride, b, b_stride, m, sse, &sum); \
  154. else \
  155. variance_neon_w16(a, a_stride, b, b_stride, n, m, sse, &sum); \
  156. if (n * m < 16 * 16) \
  157. return *sse - ((sum * sum) >> shift); \
  158. else \
  159. return *sse - (uint32_t)(((int64_t)sum * sum) >> shift); \
  160. }
  161. varianceNxM(4, 4, 4);
  162. varianceNxM(4, 8, 5);
  163. varianceNxM(8, 4, 5);
  164. varianceNxM(8, 8, 6);
  165. varianceNxM(8, 16, 7);
  166. varianceNxM(16, 8, 7);
  167. varianceNxM(16, 16, 8);
  168. varianceNxM(16, 32, 9);
  169. varianceNxM(32, 16, 9);
  170. varianceNxM(32, 32, 10);
  171. unsigned int vpx_variance32x64_neon(const uint8_t *a, int a_stride,
  172. const uint8_t *b, int b_stride,
  173. unsigned int *sse) {
  174. int sum1, sum2;
  175. uint32_t sse1, sse2;
  176. variance_neon_w16(a, a_stride, b, b_stride, 32, 32, &sse1, &sum1);
  177. variance_neon_w16(a + (32 * a_stride), a_stride, b + (32 * b_stride),
  178. b_stride, 32, 32, &sse2, &sum2);
  179. *sse = sse1 + sse2;
  180. sum1 += sum2;
  181. return *sse - (unsigned int)(((int64_t)sum1 * sum1) >> 11);
  182. }
  183. unsigned int vpx_variance64x32_neon(const uint8_t *a, int a_stride,
  184. const uint8_t *b, int b_stride,
  185. unsigned int *sse) {
  186. int sum1, sum2;
  187. uint32_t sse1, sse2;
  188. variance_neon_w16(a, a_stride, b, b_stride, 64, 16, &sse1, &sum1);
  189. variance_neon_w16(a + (16 * a_stride), a_stride, b + (16 * b_stride),
  190. b_stride, 64, 16, &sse2, &sum2);
  191. *sse = sse1 + sse2;
  192. sum1 += sum2;
  193. return *sse - (unsigned int)(((int64_t)sum1 * sum1) >> 11);
  194. }
  195. unsigned int vpx_variance64x64_neon(const uint8_t *a, int a_stride,
  196. const uint8_t *b, int b_stride,
  197. unsigned int *sse) {
  198. int sum1, sum2;
  199. uint32_t sse1, sse2;
  200. variance_neon_w16(a, a_stride, b, b_stride, 64, 16, &sse1, &sum1);
  201. variance_neon_w16(a + (16 * a_stride), a_stride, b + (16 * b_stride),
  202. b_stride, 64, 16, &sse2, &sum2);
  203. sse1 += sse2;
  204. sum1 += sum2;
  205. variance_neon_w16(a + (16 * 2 * a_stride), a_stride, b + (16 * 2 * b_stride),
  206. b_stride, 64, 16, &sse2, &sum2);
  207. sse1 += sse2;
  208. sum1 += sum2;
  209. variance_neon_w16(a + (16 * 3 * a_stride), a_stride, b + (16 * 3 * b_stride),
  210. b_stride, 64, 16, &sse2, &sum2);
  211. *sse = sse1 + sse2;
  212. sum1 += sum2;
  213. return *sse - (unsigned int)(((int64_t)sum1 * sum1) >> 12);
  214. }
  215. unsigned int vpx_mse16x16_neon(const unsigned char *src_ptr, int source_stride,
  216. const unsigned char *ref_ptr, int recon_stride,
  217. unsigned int *sse) {
  218. int i;
  219. int16x4_t d22s16, d23s16, d24s16, d25s16, d26s16, d27s16, d28s16, d29s16;
  220. int64x1_t d0s64;
  221. uint8x16_t q0u8, q1u8, q2u8, q3u8;
  222. int32x4_t q7s32, q8s32, q9s32, q10s32;
  223. uint16x8_t q11u16, q12u16, q13u16, q14u16;
  224. int64x2_t q1s64;
  225. q7s32 = vdupq_n_s32(0);
  226. q8s32 = vdupq_n_s32(0);
  227. q9s32 = vdupq_n_s32(0);
  228. q10s32 = vdupq_n_s32(0);
  229. for (i = 0; i < 8; i++) { // mse16x16_neon_loop
  230. q0u8 = vld1q_u8(src_ptr);
  231. src_ptr += source_stride;
  232. q1u8 = vld1q_u8(src_ptr);
  233. src_ptr += source_stride;
  234. q2u8 = vld1q_u8(ref_ptr);
  235. ref_ptr += recon_stride;
  236. q3u8 = vld1q_u8(ref_ptr);
  237. ref_ptr += recon_stride;
  238. q11u16 = vsubl_u8(vget_low_u8(q0u8), vget_low_u8(q2u8));
  239. q12u16 = vsubl_u8(vget_high_u8(q0u8), vget_high_u8(q2u8));
  240. q13u16 = vsubl_u8(vget_low_u8(q1u8), vget_low_u8(q3u8));
  241. q14u16 = vsubl_u8(vget_high_u8(q1u8), vget_high_u8(q3u8));
  242. d22s16 = vreinterpret_s16_u16(vget_low_u16(q11u16));
  243. d23s16 = vreinterpret_s16_u16(vget_high_u16(q11u16));
  244. q7s32 = vmlal_s16(q7s32, d22s16, d22s16);
  245. q8s32 = vmlal_s16(q8s32, d23s16, d23s16);
  246. d24s16 = vreinterpret_s16_u16(vget_low_u16(q12u16));
  247. d25s16 = vreinterpret_s16_u16(vget_high_u16(q12u16));
  248. q9s32 = vmlal_s16(q9s32, d24s16, d24s16);
  249. q10s32 = vmlal_s16(q10s32, d25s16, d25s16);
  250. d26s16 = vreinterpret_s16_u16(vget_low_u16(q13u16));
  251. d27s16 = vreinterpret_s16_u16(vget_high_u16(q13u16));
  252. q7s32 = vmlal_s16(q7s32, d26s16, d26s16);
  253. q8s32 = vmlal_s16(q8s32, d27s16, d27s16);
  254. d28s16 = vreinterpret_s16_u16(vget_low_u16(q14u16));
  255. d29s16 = vreinterpret_s16_u16(vget_high_u16(q14u16));
  256. q9s32 = vmlal_s16(q9s32, d28s16, d28s16);
  257. q10s32 = vmlal_s16(q10s32, d29s16, d29s16);
  258. }
  259. q7s32 = vaddq_s32(q7s32, q8s32);
  260. q9s32 = vaddq_s32(q9s32, q10s32);
  261. q10s32 = vaddq_s32(q7s32, q9s32);
  262. q1s64 = vpaddlq_s32(q10s32);
  263. d0s64 = vadd_s64(vget_low_s64(q1s64), vget_high_s64(q1s64));
  264. vst1_lane_u32((uint32_t *)sse, vreinterpret_u32_s64(d0s64), 0);
  265. return vget_lane_u32(vreinterpret_u32_s64(d0s64), 0);
  266. }
  267. unsigned int vpx_get4x4sse_cs_neon(const unsigned char *src_ptr,
  268. int source_stride,
  269. const unsigned char *ref_ptr,
  270. int recon_stride) {
  271. int16x4_t d22s16, d24s16, d26s16, d28s16;
  272. int64x1_t d0s64;
  273. uint8x8_t d0u8, d1u8, d2u8, d3u8, d4u8, d5u8, d6u8, d7u8;
  274. int32x4_t q7s32, q8s32, q9s32, q10s32;
  275. uint16x8_t q11u16, q12u16, q13u16, q14u16;
  276. int64x2_t q1s64;
  277. d0u8 = vld1_u8(src_ptr);
  278. src_ptr += source_stride;
  279. d4u8 = vld1_u8(ref_ptr);
  280. ref_ptr += recon_stride;
  281. d1u8 = vld1_u8(src_ptr);
  282. src_ptr += source_stride;
  283. d5u8 = vld1_u8(ref_ptr);
  284. ref_ptr += recon_stride;
  285. d2u8 = vld1_u8(src_ptr);
  286. src_ptr += source_stride;
  287. d6u8 = vld1_u8(ref_ptr);
  288. ref_ptr += recon_stride;
  289. d3u8 = vld1_u8(src_ptr);
  290. src_ptr += source_stride;
  291. d7u8 = vld1_u8(ref_ptr);
  292. ref_ptr += recon_stride;
  293. q11u16 = vsubl_u8(d0u8, d4u8);
  294. q12u16 = vsubl_u8(d1u8, d5u8);
  295. q13u16 = vsubl_u8(d2u8, d6u8);
  296. q14u16 = vsubl_u8(d3u8, d7u8);
  297. d22s16 = vget_low_s16(vreinterpretq_s16_u16(q11u16));
  298. d24s16 = vget_low_s16(vreinterpretq_s16_u16(q12u16));
  299. d26s16 = vget_low_s16(vreinterpretq_s16_u16(q13u16));
  300. d28s16 = vget_low_s16(vreinterpretq_s16_u16(q14u16));
  301. q7s32 = vmull_s16(d22s16, d22s16);
  302. q8s32 = vmull_s16(d24s16, d24s16);
  303. q9s32 = vmull_s16(d26s16, d26s16);
  304. q10s32 = vmull_s16(d28s16, d28s16);
  305. q7s32 = vaddq_s32(q7s32, q8s32);
  306. q9s32 = vaddq_s32(q9s32, q10s32);
  307. q9s32 = vaddq_s32(q7s32, q9s32);
  308. q1s64 = vpaddlq_s32(q9s32);
  309. d0s64 = vadd_s64(vget_low_s64(q1s64), vget_high_s64(q1s64));
  310. return vget_lane_u32(vreinterpret_u32_s64(d0s64), 0);
  311. }