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  1. /*
  2. * Copyright (c) 2016 Paul B Mahol
  3. *
  4. * This file is part of FFmpeg.
  5. *
  6. * FFmpeg is free software; you can redistribute it and/or
  7. * modify it under the terms of the GNU Lesser General Public
  8. * License as published by the Free Software Foundation; either
  9. * version 2.1 of the License, or (at your option) any later version.
  10. *
  11. * FFmpeg is distributed in the hope that it will be useful,
  12. * but WITHOUT ANY WARRANTY; without even the implied warranty of
  13. * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the GNU
  14. * Lesser General Public License for more details.
  15. *
  16. * You should have received a copy of the GNU Lesser General Public
  17. * License along with FFmpeg; if not, write to the Free Software
  18. * Foundation, Inc., 51 Franklin Street, Fifth Floor, Boston, MA 02110-1301 USA
  19. */
  20. #include "libavutil/avassert.h"
  21. #include "libavutil/intreadwrite.h"
  22. #include "libavutil/opt.h"
  23. #include "libavutil/parseutils.h"
  24. #include "libavutil/pixdesc.h"
  25. #include "libavutil/xga_font_data.h"
  26. #include "avfilter.h"
  27. #include "drawutils.h"
  28. #include "formats.h"
  29. #include "internal.h"
  30. #include "video.h"
  31. typedef struct DatascopeContext {
  32. const AVClass *class;
  33. int ow, oh;
  34. int x, y;
  35. int mode;
  36. int axis;
  37. float opacity;
  38. int nb_planes;
  39. int nb_comps;
  40. int chars;
  41. FFDrawContext draw;
  42. FFDrawColor yellow;
  43. FFDrawColor white;
  44. FFDrawColor black;
  45. FFDrawColor gray;
  46. void (*pick_color)(FFDrawContext *draw, FFDrawColor *color, AVFrame *in, int x, int y, int *value);
  47. void (*reverse_color)(FFDrawContext *draw, FFDrawColor *color, FFDrawColor *reverse);
  48. int (*filter)(AVFilterContext *ctx, void *arg, int jobnr, int nb_jobs);
  49. } DatascopeContext;
  50. #define OFFSET(x) offsetof(DatascopeContext, x)
  51. #define FLAGS AV_OPT_FLAG_FILTERING_PARAM|AV_OPT_FLAG_VIDEO_PARAM
  52. static const AVOption datascope_options[] = {
  53. { "size", "set output size", OFFSET(ow), AV_OPT_TYPE_IMAGE_SIZE, {.str="hd720"}, 0, 0, FLAGS },
  54. { "s", "set output size", OFFSET(ow), AV_OPT_TYPE_IMAGE_SIZE, {.str="hd720"}, 0, 0, FLAGS },
  55. { "x", "set x offset", OFFSET(x), AV_OPT_TYPE_INT, {.i64=0}, 0, INT_MAX, FLAGS },
  56. { "y", "set y offset", OFFSET(y), AV_OPT_TYPE_INT, {.i64=0}, 0, INT_MAX, FLAGS },
  57. { "mode", "set scope mode", OFFSET(mode), AV_OPT_TYPE_INT, {.i64=0}, 0, 2, FLAGS, "mode" },
  58. { "mono", NULL, 0, AV_OPT_TYPE_CONST, {.i64=0}, 0, 0, FLAGS, "mode" },
  59. { "color", NULL, 0, AV_OPT_TYPE_CONST, {.i64=1}, 0, 0, FLAGS, "mode" },
  60. { "color2", NULL, 0, AV_OPT_TYPE_CONST, {.i64=2}, 0, 0, FLAGS, "mode" },
  61. { "axis", "draw column/row numbers", OFFSET(axis), AV_OPT_TYPE_BOOL, {.i64=0}, 0, 1, FLAGS },
  62. { "opacity", "set background opacity", OFFSET(opacity), AV_OPT_TYPE_FLOAT, {.dbl=0.75}, 0, 1, FLAGS },
  63. { NULL }
  64. };
  65. AVFILTER_DEFINE_CLASS(datascope);
  66. static int query_formats(AVFilterContext *ctx)
  67. {
  68. return ff_set_common_formats(ctx, ff_draw_supported_pixel_formats(0));
  69. }
  70. static void draw_text(FFDrawContext *draw, AVFrame *frame, FFDrawColor *color,
  71. int x0, int y0, const uint8_t *text, int vertical)
  72. {
  73. int x = x0;
  74. for (; *text; text++) {
  75. if (*text == '\n') {
  76. x = x0;
  77. y0 += 8;
  78. continue;
  79. }
  80. ff_blend_mask(draw, color, frame->data, frame->linesize,
  81. frame->width, frame->height,
  82. avpriv_cga_font + *text * 8, 1, 8, 8, 0, 0, x, y0);
  83. if (vertical) {
  84. x = x0;
  85. y0 += 8;
  86. } else {
  87. x += 8;
  88. }
  89. }
  90. }
  91. static void pick_color8(FFDrawContext *draw, FFDrawColor *color, AVFrame *in, int x, int y, int *value)
  92. {
  93. int p, i;
  94. color->rgba[3] = 255;
  95. for (p = 0; p < draw->nb_planes; p++) {
  96. if (draw->nb_planes == 1) {
  97. for (i = 0; i < 4; i++) {
  98. value[i] = in->data[0][y * in->linesize[0] + x * draw->pixelstep[0] + i];
  99. color->comp[0].u8[i] = value[i];
  100. }
  101. } else {
  102. value[p] = in->data[p][(y >> draw->vsub[p]) * in->linesize[p] + (x >> draw->hsub[p])];
  103. color->comp[p].u8[0] = value[p];
  104. }
  105. }
  106. }
  107. static void pick_color16(FFDrawContext *draw, FFDrawColor *color, AVFrame *in, int x, int y, int *value)
  108. {
  109. int p, i;
  110. color->rgba[3] = 255;
  111. for (p = 0; p < draw->nb_planes; p++) {
  112. if (draw->nb_planes == 1) {
  113. for (i = 0; i < 4; i++) {
  114. value[i] = AV_RL16(in->data[0] + y * in->linesize[0] + x * draw->pixelstep[0] + i * 2);
  115. color->comp[0].u16[i] = value[i];
  116. }
  117. } else {
  118. value[p] = AV_RL16(in->data[p] + (y >> draw->vsub[p]) * in->linesize[p] + (x >> draw->hsub[p]) * 2);
  119. color->comp[p].u16[0] = value[p];
  120. }
  121. }
  122. }
  123. static void reverse_color8(FFDrawContext *draw, FFDrawColor *color, FFDrawColor *reverse)
  124. {
  125. int p;
  126. reverse->rgba[3] = 255;
  127. for (p = 0; p < draw->nb_planes; p++) {
  128. reverse->comp[p].u8[0] = color->comp[p].u8[0] > 127 ? 0 : 255;
  129. reverse->comp[p].u8[1] = color->comp[p].u8[1] > 127 ? 0 : 255;
  130. reverse->comp[p].u8[2] = color->comp[p].u8[2] > 127 ? 0 : 255;
  131. }
  132. }
  133. static void reverse_color16(FFDrawContext *draw, FFDrawColor *color, FFDrawColor *reverse)
  134. {
  135. int p;
  136. reverse->rgba[3] = 255;
  137. for (p = 0; p < draw->nb_planes; p++) {
  138. const unsigned max = (1 << draw->desc->comp[p].depth) - 1;
  139. const unsigned mid = (max + 1) / 2;
  140. reverse->comp[p].u16[0] = color->comp[p].u16[0] > mid ? 0 : max;
  141. reverse->comp[p].u16[1] = color->comp[p].u16[1] > mid ? 0 : max;
  142. reverse->comp[p].u16[2] = color->comp[p].u16[2] > mid ? 0 : max;
  143. }
  144. }
  145. typedef struct ThreadData {
  146. AVFrame *in, *out;
  147. int xoff, yoff;
  148. } ThreadData;
  149. static int filter_color2(AVFilterContext *ctx, void *arg, int jobnr, int nb_jobs)
  150. {
  151. DatascopeContext *s = ctx->priv;
  152. AVFilterLink *outlink = ctx->outputs[0];
  153. AVFilterLink *inlink = ctx->inputs[0];
  154. ThreadData *td = arg;
  155. AVFrame *in = td->in;
  156. AVFrame *out = td->out;
  157. const int xoff = td->xoff;
  158. const int yoff = td->yoff;
  159. const int P = FFMAX(s->nb_planes, s->nb_comps);
  160. const int C = s->chars;
  161. const int W = (outlink->w - xoff) / (C * 10);
  162. const int H = (outlink->h - yoff) / (P * 12);
  163. const char *format[2] = {"%02X\n", "%04X\n"};
  164. const int slice_start = (W * jobnr) / nb_jobs;
  165. const int slice_end = (W * (jobnr+1)) / nb_jobs;
  166. int x, y, p;
  167. for (y = 0; y < H && (y + s->y < inlink->h); y++) {
  168. for (x = slice_start; x < slice_end && (x + s->x < inlink->w); x++) {
  169. FFDrawColor color = { { 0 } };
  170. FFDrawColor reverse = { { 0 } };
  171. int value[4] = { 0 };
  172. s->pick_color(&s->draw, &color, in, x + s->x, y + s->y, value);
  173. s->reverse_color(&s->draw, &color, &reverse);
  174. ff_fill_rectangle(&s->draw, &color, out->data, out->linesize,
  175. xoff + x * C * 10, yoff + y * P * 12, C * 10, P * 12);
  176. for (p = 0; p < P; p++) {
  177. char text[256];
  178. snprintf(text, sizeof(text), format[C>>2], value[p]);
  179. draw_text(&s->draw, out, &reverse, xoff + x * C * 10 + 2, yoff + y * P * 12 + p * 10 + 2, text, 0);
  180. }
  181. }
  182. }
  183. return 0;
  184. }
  185. static int filter_color(AVFilterContext *ctx, void *arg, int jobnr, int nb_jobs)
  186. {
  187. DatascopeContext *s = ctx->priv;
  188. AVFilterLink *outlink = ctx->outputs[0];
  189. AVFilterLink *inlink = ctx->inputs[0];
  190. ThreadData *td = arg;
  191. AVFrame *in = td->in;
  192. AVFrame *out = td->out;
  193. const int xoff = td->xoff;
  194. const int yoff = td->yoff;
  195. const int P = FFMAX(s->nb_planes, s->nb_comps);
  196. const int C = s->chars;
  197. const int W = (outlink->w - xoff) / (C * 10);
  198. const int H = (outlink->h - yoff) / (P * 12);
  199. const char *format[2] = {"%02X\n", "%04X\n"};
  200. const int slice_start = (W * jobnr) / nb_jobs;
  201. const int slice_end = (W * (jobnr+1)) / nb_jobs;
  202. int x, y, p;
  203. for (y = 0; y < H && (y + s->y < inlink->h); y++) {
  204. for (x = slice_start; x < slice_end && (x + s->x < inlink->w); x++) {
  205. FFDrawColor color = { { 0 } };
  206. int value[4] = { 0 };
  207. s->pick_color(&s->draw, &color, in, x + s->x, y + s->y, value);
  208. for (p = 0; p < P; p++) {
  209. char text[256];
  210. snprintf(text, sizeof(text), format[C>>2], value[p]);
  211. draw_text(&s->draw, out, &color, xoff + x * C * 10 + 2, yoff + y * P * 12 + p * 10 + 2, text, 0);
  212. }
  213. }
  214. }
  215. return 0;
  216. }
  217. static int filter_mono(AVFilterContext *ctx, void *arg, int jobnr, int nb_jobs)
  218. {
  219. DatascopeContext *s = ctx->priv;
  220. AVFilterLink *outlink = ctx->outputs[0];
  221. AVFilterLink *inlink = ctx->inputs[0];
  222. ThreadData *td = arg;
  223. AVFrame *in = td->in;
  224. AVFrame *out = td->out;
  225. const int xoff = td->xoff;
  226. const int yoff = td->yoff;
  227. const int P = FFMAX(s->nb_planes, s->nb_comps);
  228. const int C = s->chars;
  229. const int W = (outlink->w - xoff) / (C * 10);
  230. const int H = (outlink->h - yoff) / (P * 12);
  231. const char *format[2] = {"%02X\n", "%04X\n"};
  232. const int slice_start = (W * jobnr) / nb_jobs;
  233. const int slice_end = (W * (jobnr+1)) / nb_jobs;
  234. int x, y, p;
  235. for (y = 0; y < H && (y + s->y < inlink->h); y++) {
  236. for (x = slice_start; x < slice_end && (x + s->x < inlink->w); x++) {
  237. FFDrawColor color = { { 0 } };
  238. int value[4] = { 0 };
  239. s->pick_color(&s->draw, &color, in, x + s->x, y + s->y, value);
  240. for (p = 0; p < P; p++) {
  241. char text[256];
  242. snprintf(text, sizeof(text), format[C>>2], value[p]);
  243. draw_text(&s->draw, out, &s->white, xoff + x * C * 10 + 2, yoff + y * P * 12 + p * 10 + 2, text, 0);
  244. }
  245. }
  246. }
  247. return 0;
  248. }
  249. static int filter_frame(AVFilterLink *inlink, AVFrame *in)
  250. {
  251. AVFilterContext *ctx = inlink->dst;
  252. DatascopeContext *s = ctx->priv;
  253. AVFilterLink *outlink = ctx->outputs[0];
  254. ThreadData td = { 0 };
  255. int ymaxlen = 0;
  256. int xmaxlen = 0;
  257. AVFrame *out;
  258. out = ff_get_video_buffer(outlink, outlink->w, outlink->h);
  259. if (!out) {
  260. av_frame_free(&in);
  261. return AVERROR(ENOMEM);
  262. }
  263. out->pts = in->pts;
  264. ff_fill_rectangle(&s->draw, &s->black, out->data, out->linesize,
  265. 0, 0, outlink->w, outlink->h);
  266. if (s->axis) {
  267. const int P = FFMAX(s->nb_planes, s->nb_comps);
  268. const int C = s->chars;
  269. int Y = outlink->h / (P * 12);
  270. int X = outlink->w / (C * 10);
  271. char text[256] = { 0 };
  272. int x, y;
  273. snprintf(text, sizeof(text), "%d", s->y + Y);
  274. ymaxlen = strlen(text);
  275. ymaxlen *= 10;
  276. snprintf(text, sizeof(text), "%d", s->x + X);
  277. xmaxlen = strlen(text);
  278. xmaxlen *= 10;
  279. Y = (outlink->h - xmaxlen) / (P * 12);
  280. X = (outlink->w - ymaxlen) / (C * 10);
  281. for (y = 0; y < Y; y++) {
  282. snprintf(text, sizeof(text), "%d", s->y + y);
  283. ff_fill_rectangle(&s->draw, &s->gray, out->data, out->linesize,
  284. 0, xmaxlen + y * P * 12 + (P + 1) * P - 2, ymaxlen, 10);
  285. draw_text(&s->draw, out, &s->yellow, 2, xmaxlen + y * P * 12 + (P + 1) * P, text, 0);
  286. }
  287. for (x = 0; x < X; x++) {
  288. snprintf(text, sizeof(text), "%d", s->x + x);
  289. ff_fill_rectangle(&s->draw, &s->gray, out->data, out->linesize,
  290. ymaxlen + x * C * 10 + 2 * C - 2, 0, 10, xmaxlen);
  291. draw_text(&s->draw, out, &s->yellow, ymaxlen + x * C * 10 + 2 * C, 2, text, 1);
  292. }
  293. }
  294. td.in = in; td.out = out, td.yoff = xmaxlen, td.xoff = ymaxlen;
  295. ctx->internal->execute(ctx, s->filter, &td, NULL, FFMIN(ff_filter_get_nb_threads(ctx), FFMAX(outlink->w / 20, 1)));
  296. av_frame_free(&in);
  297. return ff_filter_frame(outlink, out);
  298. }
  299. static int config_input(AVFilterLink *inlink)
  300. {
  301. DatascopeContext *s = inlink->dst->priv;
  302. uint8_t alpha = s->opacity * 255;
  303. s->nb_planes = av_pix_fmt_count_planes(inlink->format);
  304. ff_draw_init(&s->draw, inlink->format, 0);
  305. ff_draw_color(&s->draw, &s->white, (uint8_t[]){ 255, 255, 255, 255} );
  306. ff_draw_color(&s->draw, &s->black, (uint8_t[]){ 0, 0, 0, alpha} );
  307. ff_draw_color(&s->draw, &s->yellow, (uint8_t[]){ 255, 255, 0, 255} );
  308. ff_draw_color(&s->draw, &s->gray, (uint8_t[]){ 77, 77, 77, 255} );
  309. s->chars = (s->draw.desc->comp[0].depth + 7) / 8 * 2;
  310. s->nb_comps = s->draw.desc->nb_components;
  311. switch (s->mode) {
  312. case 0: s->filter = filter_mono; break;
  313. case 1: s->filter = filter_color; break;
  314. case 2: s->filter = filter_color2; break;
  315. }
  316. if (s->draw.desc->comp[0].depth <= 8) {
  317. s->pick_color = pick_color8;
  318. s->reverse_color = reverse_color8;
  319. } else {
  320. s->pick_color = pick_color16;
  321. s->reverse_color = reverse_color16;
  322. }
  323. return 0;
  324. }
  325. static int config_output(AVFilterLink *outlink)
  326. {
  327. DatascopeContext *s = outlink->src->priv;
  328. outlink->h = s->oh;
  329. outlink->w = s->ow;
  330. outlink->sample_aspect_ratio = (AVRational){1,1};
  331. return 0;
  332. }
  333. static const AVFilterPad inputs[] = {
  334. {
  335. .name = "default",
  336. .type = AVMEDIA_TYPE_VIDEO,
  337. .filter_frame = filter_frame,
  338. .config_props = config_input,
  339. },
  340. { NULL }
  341. };
  342. static const AVFilterPad outputs[] = {
  343. {
  344. .name = "default",
  345. .type = AVMEDIA_TYPE_VIDEO,
  346. .config_props = config_output,
  347. },
  348. { NULL }
  349. };
  350. AVFilter ff_vf_datascope = {
  351. .name = "datascope",
  352. .description = NULL_IF_CONFIG_SMALL("Video data analysis."),
  353. .priv_size = sizeof(DatascopeContext),
  354. .priv_class = &datascope_class,
  355. .query_formats = query_formats,
  356. .inputs = inputs,
  357. .outputs = outputs,
  358. .flags = AVFILTER_FLAG_SLICE_THREADS,
  359. };
  360. typedef struct PixscopeContext {
  361. const AVClass *class;
  362. float xpos, ypos;
  363. float wx, wy;
  364. int w, h;
  365. float o;
  366. int x, y;
  367. int ww, wh;
  368. int nb_planes;
  369. int nb_comps;
  370. int is_rgb;
  371. uint8_t rgba_map[4];
  372. FFDrawContext draw;
  373. FFDrawColor dark;
  374. FFDrawColor black;
  375. FFDrawColor white;
  376. FFDrawColor green;
  377. FFDrawColor blue;
  378. FFDrawColor red;
  379. FFDrawColor *colors[4];
  380. void (*pick_color)(FFDrawContext *draw, FFDrawColor *color, AVFrame *in, int x, int y, int *value);
  381. } PixscopeContext;
  382. #define POFFSET(x) offsetof(PixscopeContext, x)
  383. static const AVOption pixscope_options[] = {
  384. { "x", "set scope x offset", POFFSET(xpos), AV_OPT_TYPE_FLOAT, {.dbl=0.5}, 0, 1, FLAGS },
  385. { "y", "set scope y offset", POFFSET(ypos), AV_OPT_TYPE_FLOAT, {.dbl=0.5}, 0, 1, FLAGS },
  386. { "w", "set scope width", POFFSET(w), AV_OPT_TYPE_INT, {.i64=7}, 1, 80, FLAGS },
  387. { "h", "set scope height", POFFSET(h), AV_OPT_TYPE_INT, {.i64=7}, 1, 80, FLAGS },
  388. { "o", "set window opacity", POFFSET(o), AV_OPT_TYPE_FLOAT, {.dbl=0.5}, 0, 1, FLAGS },
  389. { "wx", "set window x offset", POFFSET(wx), AV_OPT_TYPE_FLOAT, {.dbl=1}, 0, 1, FLAGS },
  390. { "wy", "set window y offset", POFFSET(wy), AV_OPT_TYPE_FLOAT, {.dbl=0}, 0, 1, FLAGS },
  391. { NULL }
  392. };
  393. AVFILTER_DEFINE_CLASS(pixscope);
  394. static int pixscope_config_input(AVFilterLink *inlink)
  395. {
  396. PixscopeContext *s = inlink->dst->priv;
  397. s->nb_planes = av_pix_fmt_count_planes(inlink->format);
  398. ff_draw_init(&s->draw, inlink->format, 0);
  399. ff_draw_color(&s->draw, &s->dark, (uint8_t[]){ 0, 0, 0, s->o * 255} );
  400. ff_draw_color(&s->draw, &s->black, (uint8_t[]){ 0, 0, 0, 255} );
  401. ff_draw_color(&s->draw, &s->white, (uint8_t[]){ 255, 255, 255, 255} );
  402. ff_draw_color(&s->draw, &s->green, (uint8_t[]){ 0, 255, 0, 255} );
  403. ff_draw_color(&s->draw, &s->blue, (uint8_t[]){ 0, 0, 255, 255} );
  404. ff_draw_color(&s->draw, &s->red, (uint8_t[]){ 255, 0, 0, 255} );
  405. s->nb_comps = s->draw.desc->nb_components;
  406. s->is_rgb = s->draw.desc->flags & AV_PIX_FMT_FLAG_RGB;
  407. if (s->is_rgb) {
  408. s->colors[0] = &s->red;
  409. s->colors[1] = &s->green;
  410. s->colors[2] = &s->blue;
  411. s->colors[3] = &s->white;
  412. ff_fill_rgba_map(s->rgba_map, inlink->format);
  413. } else {
  414. s->colors[0] = &s->white;
  415. s->colors[1] = &s->blue;
  416. s->colors[2] = &s->red;
  417. s->colors[3] = &s->white;
  418. s->rgba_map[0] = 0;
  419. s->rgba_map[1] = 1;
  420. s->rgba_map[2] = 2;
  421. s->rgba_map[3] = 3;
  422. }
  423. if (s->draw.desc->comp[0].depth <= 8) {
  424. s->pick_color = pick_color8;
  425. } else {
  426. s->pick_color = pick_color16;
  427. }
  428. if (inlink->w < 640 || inlink->h < 480) {
  429. av_log(inlink->dst, AV_LOG_ERROR, "min supported resolution is 640x480\n");
  430. return AVERROR(EINVAL);
  431. }
  432. s->ww = 300;
  433. s->wh = 300 * 1.6180;
  434. s->x = s->xpos * (inlink->w - 1);
  435. s->y = s->ypos * (inlink->h - 1);
  436. if (s->x + s->w >= inlink->w || s->y + s->h >= inlink->h) {
  437. av_log(inlink->dst, AV_LOG_WARNING, "scope position is out of range, clipping\n");
  438. s->x = FFMIN(s->x, inlink->w - s->w);
  439. s->y = FFMIN(s->y, inlink->h - s->h);
  440. }
  441. return 0;
  442. }
  443. static int pixscope_filter_frame(AVFilterLink *inlink, AVFrame *in)
  444. {
  445. AVFilterContext *ctx = inlink->dst;
  446. PixscopeContext *s = ctx->priv;
  447. AVFilterLink *outlink = ctx->outputs[0];
  448. AVFrame *out = ff_get_video_buffer(outlink, in->width, in->height);
  449. int max[4] = { 0 }, min[4] = { INT_MAX, INT_MAX, INT_MAX, INT_MAX };
  450. float average[4] = { 0 };
  451. double rms[4] = { 0 };
  452. const char rgba[4] = { 'R', 'G', 'B', 'A' };
  453. const char yuva[4] = { 'Y', 'U', 'V', 'A' };
  454. int x, y, X, Y, i, w, h;
  455. char text[128];
  456. if (!out) {
  457. av_frame_free(&in);
  458. return AVERROR(ENOMEM);
  459. }
  460. av_frame_copy_props(out, in);
  461. av_frame_copy(out, in);
  462. w = s->ww / s->w;
  463. h = s->ww / s->h;
  464. X = (in->width - s->ww) * s->wx;
  465. Y = (in->height - s->wh) * s->wy;
  466. ff_blend_rectangle(&s->draw, &s->dark, out->data, out->linesize,
  467. out->width, out->height,
  468. X,
  469. Y,
  470. s->ww,
  471. s->wh);
  472. for (y = 0; y < s->h; y++) {
  473. for (x = 0; x < s->w; x++) {
  474. FFDrawColor color = { { 0 } };
  475. int value[4] = { 0 };
  476. s->pick_color(&s->draw, &color, in, x + s->x, y + s->y, value);
  477. ff_fill_rectangle(&s->draw, &color, out->data, out->linesize,
  478. x * w + (s->ww - 4 - (s->w * w)) / 2 + X, y * h + 2 + Y, w, h);
  479. for (i = 0; i < 4; i++) {
  480. rms[i] += (double)value[i] * (double)value[i];
  481. average[i] += value[i];
  482. min[i] = FFMIN(min[i], value[i]);
  483. max[i] = FFMAX(max[i], value[i]);
  484. }
  485. }
  486. }
  487. ff_blend_rectangle(&s->draw, &s->black, out->data, out->linesize,
  488. out->width, out->height,
  489. s->x - 2, s->y - 2, s->w + 4, 1);
  490. ff_blend_rectangle(&s->draw, &s->white, out->data, out->linesize,
  491. out->width, out->height,
  492. s->x - 1, s->y - 1, s->w + 2, 1);
  493. ff_blend_rectangle(&s->draw, &s->white, out->data, out->linesize,
  494. out->width, out->height,
  495. s->x - 1, s->y - 1, 1, s->h + 2);
  496. ff_blend_rectangle(&s->draw, &s->black, out->data, out->linesize,
  497. out->width, out->height,
  498. s->x - 2, s->y - 2, 1, s->h + 4);
  499. ff_blend_rectangle(&s->draw, &s->white, out->data, out->linesize,
  500. out->width, out->height,
  501. s->x - 1, s->y + 1 + s->h, s->w + 3, 1);
  502. ff_blend_rectangle(&s->draw, &s->black, out->data, out->linesize,
  503. out->width, out->height,
  504. s->x - 2, s->y + 2 + s->h, s->w + 4, 1);
  505. ff_blend_rectangle(&s->draw, &s->white, out->data, out->linesize,
  506. out->width, out->height,
  507. s->x + 1 + s->w, s->y - 1, 1, s->h + 2);
  508. ff_blend_rectangle(&s->draw, &s->black, out->data, out->linesize,
  509. out->width, out->height,
  510. s->x + 2 + s->w, s->y - 2, 1, s->h + 5);
  511. for (i = 0; i < 4; i++) {
  512. rms[i] /= s->w * s->h;
  513. rms[i] = sqrt(rms[i]);
  514. average[i] /= s->w * s->h;
  515. }
  516. snprintf(text, sizeof(text), "CH AVG MIN MAX RMS\n");
  517. draw_text(&s->draw, out, &s->white, X + 28, Y + s->ww + 20, text, 0);
  518. for (i = 0; i < s->nb_comps; i++) {
  519. int c = s->rgba_map[i];
  520. snprintf(text, sizeof(text), "%c %07.1f %05d %05d %07.1f\n", s->is_rgb ? rgba[i] : yuva[i], average[c], min[c], max[c], rms[c]);
  521. draw_text(&s->draw, out, s->colors[i], X + 28, Y + s->ww + 20 * (i + 2), text, 0);
  522. }
  523. av_frame_free(&in);
  524. return ff_filter_frame(outlink, out);
  525. }
  526. static const AVFilterPad pixscope_inputs[] = {
  527. {
  528. .name = "default",
  529. .type = AVMEDIA_TYPE_VIDEO,
  530. .filter_frame = pixscope_filter_frame,
  531. .config_props = pixscope_config_input,
  532. },
  533. { NULL }
  534. };
  535. static const AVFilterPad pixscope_outputs[] = {
  536. {
  537. .name = "default",
  538. .type = AVMEDIA_TYPE_VIDEO,
  539. },
  540. { NULL }
  541. };
  542. AVFilter ff_vf_pixscope = {
  543. .name = "pixscope",
  544. .description = NULL_IF_CONFIG_SMALL("Pixel data analysis."),
  545. .priv_size = sizeof(PixscopeContext),
  546. .priv_class = &pixscope_class,
  547. .query_formats = query_formats,
  548. .inputs = pixscope_inputs,
  549. .outputs = pixscope_outputs,
  550. };
  551. typedef struct PixelValues {
  552. uint16_t p[4];
  553. } PixelValues;
  554. typedef struct OscilloscopeContext {
  555. const AVClass *class;
  556. float xpos, ypos;
  557. float tx, ty;
  558. float size;
  559. float tilt;
  560. float theight, twidth;
  561. float o;
  562. int components;
  563. int grid;
  564. int statistics;
  565. int scope;
  566. int x1, y1, x2, y2;
  567. int ox, oy;
  568. int height, width;
  569. int max;
  570. int nb_planes;
  571. int nb_comps;
  572. int is_rgb;
  573. uint8_t rgba_map[4];
  574. FFDrawContext draw;
  575. FFDrawColor dark;
  576. FFDrawColor black;
  577. FFDrawColor white;
  578. FFDrawColor green;
  579. FFDrawColor blue;
  580. FFDrawColor red;
  581. FFDrawColor cyan;
  582. FFDrawColor magenta;
  583. FFDrawColor gray;
  584. FFDrawColor *colors[4];
  585. int nb_values;
  586. PixelValues *values;
  587. void (*pick_color)(FFDrawContext *draw, FFDrawColor *color, AVFrame *in, int x, int y, int *value);
  588. void (*draw_trace)(struct OscilloscopeContext *s, AVFrame *frame);
  589. } OscilloscopeContext;
  590. #define OOFFSET(x) offsetof(OscilloscopeContext, x)
  591. static const AVOption oscilloscope_options[] = {
  592. { "x", "set scope x position", OOFFSET(xpos), AV_OPT_TYPE_FLOAT, {.dbl=0.5}, 0, 1, FLAGS },
  593. { "y", "set scope y position", OOFFSET(ypos), AV_OPT_TYPE_FLOAT, {.dbl=0.5}, 0, 1, FLAGS },
  594. { "s", "set scope size", OOFFSET(size), AV_OPT_TYPE_FLOAT, {.dbl=0.8}, 0, 1, FLAGS },
  595. { "t", "set scope tilt", OOFFSET(tilt), AV_OPT_TYPE_FLOAT, {.dbl=0.5}, 0, 1, FLAGS },
  596. { "o", "set trace opacity", OOFFSET(o), AV_OPT_TYPE_FLOAT, {.dbl=0.8}, 0, 1, FLAGS },
  597. { "tx", "set trace x position", OOFFSET(tx), AV_OPT_TYPE_FLOAT, {.dbl=0.5}, 0, 1, FLAGS },
  598. { "ty", "set trace y position", OOFFSET(ty), AV_OPT_TYPE_FLOAT, {.dbl=0.9}, 0, 1, FLAGS },
  599. { "tw", "set trace width", OOFFSET(twidth), AV_OPT_TYPE_FLOAT, {.dbl=0.8},.1, 1, FLAGS },
  600. { "th", "set trace height", OOFFSET(theight), AV_OPT_TYPE_FLOAT, {.dbl=0.3},.1, 1, FLAGS },
  601. { "c", "set components to trace", OOFFSET(components), AV_OPT_TYPE_INT, {.i64=7}, 0, 15, FLAGS },
  602. { "g", "draw trace grid", OOFFSET(grid), AV_OPT_TYPE_BOOL, {.i64=1}, 0, 1, FLAGS },
  603. { "st", "draw statistics", OOFFSET(statistics), AV_OPT_TYPE_BOOL, {.i64=1}, 0, 1, FLAGS },
  604. { "sc", "draw scope", OOFFSET(scope), AV_OPT_TYPE_BOOL, {.i64=1}, 0, 1, FLAGS },
  605. { NULL }
  606. };
  607. AVFILTER_DEFINE_CLASS(oscilloscope);
  608. static void oscilloscope_uninit(AVFilterContext *ctx)
  609. {
  610. OscilloscopeContext *s = ctx->priv;
  611. av_freep(&s->values);
  612. }
  613. static void draw_line(FFDrawContext *draw, int x0, int y0, int x1, int y1,
  614. AVFrame *out, FFDrawColor *color)
  615. {
  616. int dx = FFABS(x1 - x0), sx = x0 < x1 ? 1 : -1;
  617. int dy = FFABS(y1 - y0), sy = y0 < y1 ? 1 : -1;
  618. int err = (dx > dy ? dx : -dy) / 2, e2;
  619. int p, i;
  620. for (;;) {
  621. if (x0 >= 0 && y0 >= 0 && x0 < out->width && y0 < out->height) {
  622. for (p = 0; p < draw->nb_planes; p++) {
  623. if (draw->desc->comp[p].depth == 8) {
  624. if (draw->nb_planes == 1) {
  625. for (i = 0; i < 4; i++) {
  626. out->data[0][y0 * out->linesize[0] + x0 * draw->pixelstep[0] + i] = color->comp[0].u8[i];
  627. }
  628. } else {
  629. out->data[p][out->linesize[p] * (y0 >> draw->vsub[p]) + (x0 >> draw->hsub[p])] = color->comp[p].u8[0];
  630. }
  631. } else {
  632. if (draw->nb_planes == 1) {
  633. for (i = 0; i < 4; i++) {
  634. AV_WN16(out->data[0] + y0 * out->linesize[0] + 2 * (x0 * draw->pixelstep[0] + i), color->comp[0].u16[i]);
  635. }
  636. } else {
  637. AV_WN16(out->data[p] + out->linesize[p] * (y0 >> draw->vsub[p]) + (x0 >> draw->hsub[p]) * 2, color->comp[p].u16[0]);
  638. }
  639. }
  640. }
  641. }
  642. if (x0 == x1 && y0 == y1)
  643. break;
  644. e2 = err;
  645. if (e2 >-dx) {
  646. err -= dy;
  647. x0 += sx;
  648. }
  649. if (e2 < dy) {
  650. err += dx;
  651. y0 += sy;
  652. }
  653. }
  654. }
  655. static void draw_trace8(OscilloscopeContext *s, AVFrame *frame)
  656. {
  657. int i, c;
  658. for (i = 1; i < s->nb_values; i++) {
  659. for (c = 0; c < s->nb_comps; c++) {
  660. if ((1 << c) & s->components) {
  661. int x = i * s->width / s->nb_values;
  662. int px = (i - 1) * s->width / s->nb_values;
  663. int py = s->height - s->values[i-1].p[c] * s->height / 256;
  664. int y = s->height - s->values[i].p[c] * s->height / 256;
  665. draw_line(&s->draw, s->ox + x, s->oy + y, s->ox + px, s->oy + py, frame, s->colors[c]);
  666. }
  667. }
  668. }
  669. }
  670. static void draw_trace16(OscilloscopeContext *s, AVFrame *frame)
  671. {
  672. int i, c;
  673. for (i = 1; i < s->nb_values; i++) {
  674. for (c = 0; c < s->nb_comps; c++) {
  675. if ((1 << c) & s->components) {
  676. int x = i * s->width / s->nb_values;
  677. int px = (i - 1) * s->width / s->nb_values;
  678. int py = s->height - s->values[i-1].p[c] * s->height / s->max;
  679. int y = s->height - s->values[i].p[c] * s->height / s->max;
  680. draw_line(&s->draw, s->ox + x, s->oy + y, s->ox + px, s->oy + py, frame, s->colors[c]);
  681. }
  682. }
  683. }
  684. }
  685. static int oscilloscope_config_input(AVFilterLink *inlink)
  686. {
  687. OscilloscopeContext *s = inlink->dst->priv;
  688. int cx, cy, size;
  689. double tilt;
  690. s->nb_planes = av_pix_fmt_count_planes(inlink->format);
  691. ff_draw_init(&s->draw, inlink->format, 0);
  692. ff_draw_color(&s->draw, &s->dark, (uint8_t[]){ 0, 0, 0, s->o * 255} );
  693. ff_draw_color(&s->draw, &s->black, (uint8_t[]){ 0, 0, 0, 255} );
  694. ff_draw_color(&s->draw, &s->white, (uint8_t[]){ 255, 255, 255, 255} );
  695. ff_draw_color(&s->draw, &s->green, (uint8_t[]){ 0, 255, 0, 255} );
  696. ff_draw_color(&s->draw, &s->blue, (uint8_t[]){ 0, 0, 255, 255} );
  697. ff_draw_color(&s->draw, &s->red, (uint8_t[]){ 255, 0, 0, 255} );
  698. ff_draw_color(&s->draw, &s->cyan, (uint8_t[]){ 0, 255, 255, 255} );
  699. ff_draw_color(&s->draw, &s->magenta, (uint8_t[]){ 255, 0, 255, 255} );
  700. ff_draw_color(&s->draw, &s->gray, (uint8_t[]){ 128, 128, 128, 255} );
  701. s->nb_comps = s->draw.desc->nb_components;
  702. s->is_rgb = s->draw.desc->flags & AV_PIX_FMT_FLAG_RGB;
  703. if (s->is_rgb) {
  704. s->colors[0] = &s->red;
  705. s->colors[1] = &s->green;
  706. s->colors[2] = &s->blue;
  707. s->colors[3] = &s->white;
  708. ff_fill_rgba_map(s->rgba_map, inlink->format);
  709. } else {
  710. s->colors[0] = &s->white;
  711. s->colors[1] = &s->cyan;
  712. s->colors[2] = &s->magenta;
  713. s->colors[3] = &s->white;
  714. s->rgba_map[0] = 0;
  715. s->rgba_map[1] = 1;
  716. s->rgba_map[2] = 2;
  717. s->rgba_map[3] = 3;
  718. }
  719. if (s->draw.desc->comp[0].depth <= 8) {
  720. s->pick_color = pick_color8;
  721. s->draw_trace = draw_trace8;
  722. } else {
  723. s->pick_color = pick_color16;
  724. s->draw_trace = draw_trace16;
  725. }
  726. s->max = (1 << s->draw.desc->comp[0].depth);
  727. cx = s->xpos * (inlink->w - 1);
  728. cy = s->ypos * (inlink->h - 1);
  729. s->height = s->theight * inlink->h;
  730. s->width = s->twidth * inlink->w;
  731. size = hypot(inlink->w, inlink->h);
  732. s->values = av_calloc(size, sizeof(*s->values));
  733. if (!s->values)
  734. return AVERROR(ENOMEM);
  735. size *= s->size;
  736. tilt = (s->tilt - 0.5) * M_PI;
  737. s->x1 = cx - size / 2.0 * cos(tilt);
  738. s->x2 = cx + size / 2.0 * cos(tilt);
  739. s->y1 = cy - size / 2.0 * sin(tilt);
  740. s->y2 = cy + size / 2.0 * sin(tilt);
  741. s->ox = (inlink->w - s->width) * s->tx;
  742. s->oy = (inlink->h - s->height) * s->ty;
  743. return 0;
  744. }
  745. static void draw_scope(OscilloscopeContext *s, int x0, int y0, int x1, int y1,
  746. AVFrame *out, PixelValues *p, int state)
  747. {
  748. int dx = FFABS(x1 - x0), sx = x0 < x1 ? 1 : -1;
  749. int dy = FFABS(y1 - y0), sy = y0 < y1 ? 1 : -1;
  750. int err = (dx > dy ? dx : -dy) / 2, e2;
  751. for (;;) {
  752. if (x0 >= 0 && y0 >= 0 && x0 < out->width && y0 < out->height) {
  753. FFDrawColor color = { { 0 } };
  754. int value[4] = { 0 };
  755. s->pick_color(&s->draw, &color, out, x0, y0, value);
  756. s->values[s->nb_values].p[0] = value[0];
  757. s->values[s->nb_values].p[1] = value[1];
  758. s->values[s->nb_values].p[2] = value[2];
  759. s->values[s->nb_values].p[3] = value[3];
  760. s->nb_values++;
  761. if (s->scope) {
  762. if (s->draw.desc->comp[0].depth == 8) {
  763. if (s->draw.nb_planes == 1) {
  764. int i;
  765. for (i = 0; i < s->draw.pixelstep[0]; i++)
  766. out->data[0][out->linesize[0] * y0 + x0 * s->draw.pixelstep[0] + i] = 255 * ((s->nb_values + state) & 1);
  767. } else {
  768. out->data[0][out->linesize[0] * y0 + x0] = 255 * ((s->nb_values + state) & 1);
  769. }
  770. } else {
  771. if (s->draw.nb_planes == 1) {
  772. int i;
  773. for (i = 0; i < s->draw.pixelstep[0]; i++)
  774. AV_WN16(out->data[0] + out->linesize[0] * y0 + 2 * x0 * (s->draw.pixelstep[0] + i), (s->max - 1) * ((s->nb_values + state) & 1));
  775. } else {
  776. AV_WN16(out->data[0] + out->linesize[0] * y0 + 2 * x0, (s->max - 1) * ((s->nb_values + state) & 1));
  777. }
  778. }
  779. }
  780. }
  781. if (x0 == x1 && y0 == y1)
  782. break;
  783. e2 = err;
  784. if (e2 >-dx) {
  785. err -= dy;
  786. x0 += sx;
  787. }
  788. if (e2 < dy) {
  789. err += dx;
  790. y0 += sy;
  791. }
  792. }
  793. }
  794. static int oscilloscope_filter_frame(AVFilterLink *inlink, AVFrame *frame)
  795. {
  796. AVFilterContext *ctx = inlink->dst;
  797. OscilloscopeContext *s = ctx->priv;
  798. AVFilterLink *outlink = ctx->outputs[0];
  799. float average[4] = { 0 };
  800. int max[4] = { 0 };
  801. int min[4] = { INT_MAX, INT_MAX, INT_MAX, INT_MAX };
  802. int i, c;
  803. s->nb_values = 0;
  804. draw_scope(s, s->x1, s->y1, s->x2, s->y2, frame, s->values, inlink->frame_count_in & 1);
  805. ff_blend_rectangle(&s->draw, &s->dark, frame->data, frame->linesize,
  806. frame->width, frame->height,
  807. s->ox, s->oy, s->width, s->height + 20 * s->statistics);
  808. if (s->grid) {
  809. ff_fill_rectangle(&s->draw, &s->gray, frame->data, frame->linesize,
  810. s->ox, s->oy, s->width - 1, 1);
  811. for (i = 1; i < 5; i++) {
  812. ff_fill_rectangle(&s->draw, &s->gray, frame->data, frame->linesize,
  813. s->ox, s->oy + i * (s->height - 1) / 4, s->width, 1);
  814. }
  815. for (i = 0; i < 10; i++) {
  816. ff_fill_rectangle(&s->draw, &s->gray, frame->data, frame->linesize,
  817. s->ox + i * (s->width - 1) / 10, s->oy, 1, s->height);
  818. }
  819. ff_fill_rectangle(&s->draw, &s->gray, frame->data, frame->linesize,
  820. s->ox + s->width - 1, s->oy, 1, s->height);
  821. }
  822. s->draw_trace(s, frame);
  823. for (i = 0; i < s->nb_values; i++) {
  824. for (c = 0; c < s->nb_comps; c++) {
  825. if ((1 << c) & s->components) {
  826. max[c] = FFMAX(max[c], s->values[i].p[c]);
  827. min[c] = FFMIN(min[c], s->values[i].p[c]);
  828. average[c] += s->values[i].p[c];
  829. }
  830. }
  831. }
  832. for (c = 0; c < s->nb_comps; c++) {
  833. average[c] /= s->nb_values;
  834. }
  835. if (s->statistics && s->height > 10 && s->width > 280 * av_popcount(s->components)) {
  836. for (c = 0, i = 0; c < s->nb_comps; c++) {
  837. if ((1 << c) & s->components) {
  838. const char rgba[4] = { 'R', 'G', 'B', 'A' };
  839. const char yuva[4] = { 'Y', 'U', 'V', 'A' };
  840. char text[128];
  841. snprintf(text, sizeof(text), "%c avg:%.1f min:%d max:%d\n", s->is_rgb ? rgba[c] : yuva[c], average[s->rgba_map[c]], min[s->rgba_map[c]], max[s->rgba_map[c]]);
  842. draw_text(&s->draw, frame, &s->white, s->ox + 2 + 280 * i++, s->oy + s->height + 4, text, 0);
  843. }
  844. }
  845. }
  846. return ff_filter_frame(outlink, frame);
  847. }
  848. static const AVFilterPad oscilloscope_inputs[] = {
  849. {
  850. .name = "default",
  851. .type = AVMEDIA_TYPE_VIDEO,
  852. .filter_frame = oscilloscope_filter_frame,
  853. .config_props = oscilloscope_config_input,
  854. .needs_writable = 1,
  855. },
  856. { NULL }
  857. };
  858. static const AVFilterPad oscilloscope_outputs[] = {
  859. {
  860. .name = "default",
  861. .type = AVMEDIA_TYPE_VIDEO,
  862. },
  863. { NULL }
  864. };
  865. AVFilter ff_vf_oscilloscope = {
  866. .name = "oscilloscope",
  867. .description = NULL_IF_CONFIG_SMALL("2D Video Oscilloscope."),
  868. .priv_size = sizeof(OscilloscopeContext),
  869. .priv_class = &oscilloscope_class,
  870. .query_formats = query_formats,
  871. .uninit = oscilloscope_uninit,
  872. .inputs = oscilloscope_inputs,
  873. .outputs = oscilloscope_outputs,
  874. };