pattern.js 27 KB

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  1. /**
  2. * @licstart The following is the entire license notice for the
  3. * Javascript code in this page
  4. *
  5. * Copyright 2019 Mozilla Foundation
  6. *
  7. * Licensed under the Apache License, Version 2.0 (the "License");
  8. * you may not use this file except in compliance with the License.
  9. * You may obtain a copy of the License at
  10. *
  11. * http://www.apache.org/licenses/LICENSE-2.0
  12. *
  13. * Unless required by applicable law or agreed to in writing, software
  14. * distributed under the License is distributed on an "AS IS" BASIS,
  15. * WITHOUT WARRANTIES OR CONDITIONS OF ANY KIND, either express or implied.
  16. * See the License for the specific language governing permissions and
  17. * limitations under the License.
  18. *
  19. * @licend The above is the entire license notice for the
  20. * Javascript code in this page
  21. */
  22. "use strict";
  23. Object.defineProperty(exports, "__esModule", {
  24. value: true
  25. });
  26. exports.getTilingPatternIR = getTilingPatternIR;
  27. exports.Pattern = void 0;
  28. var _util = require("../shared/util");
  29. var _colorspace = require("./colorspace");
  30. var _primitives = require("./primitives");
  31. var _core_utils = require("./core_utils");
  32. var ShadingType = {
  33. FUNCTION_BASED: 1,
  34. AXIAL: 2,
  35. RADIAL: 3,
  36. FREE_FORM_MESH: 4,
  37. LATTICE_FORM_MESH: 5,
  38. COONS_PATCH_MESH: 6,
  39. TENSOR_PATCH_MESH: 7
  40. };
  41. var Pattern = function PatternClosure() {
  42. function Pattern() {
  43. (0, _util.unreachable)('should not call Pattern constructor');
  44. }
  45. Pattern.prototype = {
  46. getPattern: function Pattern_getPattern(ctx) {
  47. (0, _util.unreachable)("Should not call Pattern.getStyle: ".concat(ctx));
  48. }
  49. };
  50. Pattern.parseShading = function (shading, matrix, xref, res, handler, pdfFunctionFactory) {
  51. var dict = (0, _primitives.isStream)(shading) ? shading.dict : shading;
  52. var type = dict.get('ShadingType');
  53. try {
  54. switch (type) {
  55. case ShadingType.AXIAL:
  56. case ShadingType.RADIAL:
  57. return new Shadings.RadialAxial(dict, matrix, xref, res, pdfFunctionFactory);
  58. case ShadingType.FREE_FORM_MESH:
  59. case ShadingType.LATTICE_FORM_MESH:
  60. case ShadingType.COONS_PATCH_MESH:
  61. case ShadingType.TENSOR_PATCH_MESH:
  62. return new Shadings.Mesh(shading, matrix, xref, res, pdfFunctionFactory);
  63. default:
  64. throw new _util.FormatError('Unsupported ShadingType: ' + type);
  65. }
  66. } catch (ex) {
  67. if (ex instanceof _core_utils.MissingDataException) {
  68. throw ex;
  69. }
  70. handler.send('UnsupportedFeature', {
  71. featureId: _util.UNSUPPORTED_FEATURES.shadingPattern
  72. });
  73. (0, _util.warn)(ex);
  74. return new Shadings.Dummy();
  75. }
  76. };
  77. return Pattern;
  78. }();
  79. exports.Pattern = Pattern;
  80. var Shadings = {};
  81. Shadings.SMALL_NUMBER = 1e-6;
  82. Shadings.RadialAxial = function RadialAxialClosure() {
  83. function RadialAxial(dict, matrix, xref, res, pdfFunctionFactory) {
  84. this.matrix = matrix;
  85. this.coordsArr = dict.getArray('Coords');
  86. this.shadingType = dict.get('ShadingType');
  87. this.type = 'Pattern';
  88. var cs = dict.get('ColorSpace', 'CS');
  89. cs = _colorspace.ColorSpace.parse(cs, xref, res, pdfFunctionFactory);
  90. this.cs = cs;
  91. var t0 = 0.0,
  92. t1 = 1.0;
  93. if (dict.has('Domain')) {
  94. var domainArr = dict.getArray('Domain');
  95. t0 = domainArr[0];
  96. t1 = domainArr[1];
  97. }
  98. var extendStart = false,
  99. extendEnd = false;
  100. if (dict.has('Extend')) {
  101. var extendArr = dict.getArray('Extend');
  102. extendStart = extendArr[0];
  103. extendEnd = extendArr[1];
  104. }
  105. if (this.shadingType === ShadingType.RADIAL && (!extendStart || !extendEnd)) {
  106. var x1 = this.coordsArr[0];
  107. var y1 = this.coordsArr[1];
  108. var r1 = this.coordsArr[2];
  109. var x2 = this.coordsArr[3];
  110. var y2 = this.coordsArr[4];
  111. var r2 = this.coordsArr[5];
  112. var distance = Math.sqrt((x1 - x2) * (x1 - x2) + (y1 - y2) * (y1 - y2));
  113. if (r1 <= r2 + distance && r2 <= r1 + distance) {
  114. (0, _util.warn)('Unsupported radial gradient.');
  115. }
  116. }
  117. this.extendStart = extendStart;
  118. this.extendEnd = extendEnd;
  119. var fnObj = dict.get('Function');
  120. var fn = pdfFunctionFactory.createFromArray(fnObj);
  121. var diff = t1 - t0;
  122. var step = diff / 10;
  123. var colorStops = this.colorStops = [];
  124. if (t0 >= t1 || step <= 0) {
  125. (0, _util.info)('Bad shading domain.');
  126. return;
  127. }
  128. var color = new Float32Array(cs.numComps),
  129. ratio = new Float32Array(1);
  130. var rgbColor;
  131. for (var i = t0; i <= t1; i += step) {
  132. ratio[0] = i;
  133. fn(ratio, 0, color, 0);
  134. rgbColor = cs.getRgb(color, 0);
  135. var cssColor = _util.Util.makeCssRgb(rgbColor[0], rgbColor[1], rgbColor[2]);
  136. colorStops.push([(i - t0) / diff, cssColor]);
  137. }
  138. var background = 'transparent';
  139. if (dict.has('Background')) {
  140. rgbColor = cs.getRgb(dict.get('Background'), 0);
  141. background = _util.Util.makeCssRgb(rgbColor[0], rgbColor[1], rgbColor[2]);
  142. }
  143. if (!extendStart) {
  144. colorStops.unshift([0, background]);
  145. colorStops[1][0] += Shadings.SMALL_NUMBER;
  146. }
  147. if (!extendEnd) {
  148. colorStops[colorStops.length - 1][0] -= Shadings.SMALL_NUMBER;
  149. colorStops.push([1, background]);
  150. }
  151. this.colorStops = colorStops;
  152. }
  153. RadialAxial.prototype = {
  154. getIR: function RadialAxial_getIR() {
  155. var coordsArr = this.coordsArr;
  156. var shadingType = this.shadingType;
  157. var type, p0, p1, r0, r1;
  158. if (shadingType === ShadingType.AXIAL) {
  159. p0 = [coordsArr[0], coordsArr[1]];
  160. p1 = [coordsArr[2], coordsArr[3]];
  161. r0 = null;
  162. r1 = null;
  163. type = 'axial';
  164. } else if (shadingType === ShadingType.RADIAL) {
  165. p0 = [coordsArr[0], coordsArr[1]];
  166. p1 = [coordsArr[3], coordsArr[4]];
  167. r0 = coordsArr[2];
  168. r1 = coordsArr[5];
  169. type = 'radial';
  170. } else {
  171. (0, _util.unreachable)("getPattern type unknown: ".concat(shadingType));
  172. }
  173. var matrix = this.matrix;
  174. if (matrix) {
  175. p0 = _util.Util.applyTransform(p0, matrix);
  176. p1 = _util.Util.applyTransform(p1, matrix);
  177. if (shadingType === ShadingType.RADIAL) {
  178. var scale = _util.Util.singularValueDecompose2dScale(matrix);
  179. r0 *= scale[0];
  180. r1 *= scale[1];
  181. }
  182. }
  183. return ['RadialAxial', type, this.colorStops, p0, p1, r0, r1];
  184. }
  185. };
  186. return RadialAxial;
  187. }();
  188. Shadings.Mesh = function MeshClosure() {
  189. function MeshStreamReader(stream, context) {
  190. this.stream = stream;
  191. this.context = context;
  192. this.buffer = 0;
  193. this.bufferLength = 0;
  194. var numComps = context.numComps;
  195. this.tmpCompsBuf = new Float32Array(numComps);
  196. var csNumComps = context.colorSpace.numComps;
  197. this.tmpCsCompsBuf = context.colorFn ? new Float32Array(csNumComps) : this.tmpCompsBuf;
  198. }
  199. MeshStreamReader.prototype = {
  200. get hasData() {
  201. if (this.stream.end) {
  202. return this.stream.pos < this.stream.end;
  203. }
  204. if (this.bufferLength > 0) {
  205. return true;
  206. }
  207. var nextByte = this.stream.getByte();
  208. if (nextByte < 0) {
  209. return false;
  210. }
  211. this.buffer = nextByte;
  212. this.bufferLength = 8;
  213. return true;
  214. },
  215. readBits: function MeshStreamReader_readBits(n) {
  216. var buffer = this.buffer;
  217. var bufferLength = this.bufferLength;
  218. if (n === 32) {
  219. if (bufferLength === 0) {
  220. return (this.stream.getByte() << 24 | this.stream.getByte() << 16 | this.stream.getByte() << 8 | this.stream.getByte()) >>> 0;
  221. }
  222. buffer = buffer << 24 | this.stream.getByte() << 16 | this.stream.getByte() << 8 | this.stream.getByte();
  223. var nextByte = this.stream.getByte();
  224. this.buffer = nextByte & (1 << bufferLength) - 1;
  225. return (buffer << 8 - bufferLength | (nextByte & 0xFF) >> bufferLength) >>> 0;
  226. }
  227. if (n === 8 && bufferLength === 0) {
  228. return this.stream.getByte();
  229. }
  230. while (bufferLength < n) {
  231. buffer = buffer << 8 | this.stream.getByte();
  232. bufferLength += 8;
  233. }
  234. bufferLength -= n;
  235. this.bufferLength = bufferLength;
  236. this.buffer = buffer & (1 << bufferLength) - 1;
  237. return buffer >> bufferLength;
  238. },
  239. align: function MeshStreamReader_align() {
  240. this.buffer = 0;
  241. this.bufferLength = 0;
  242. },
  243. readFlag: function MeshStreamReader_readFlag() {
  244. return this.readBits(this.context.bitsPerFlag);
  245. },
  246. readCoordinate: function MeshStreamReader_readCoordinate() {
  247. var bitsPerCoordinate = this.context.bitsPerCoordinate;
  248. var xi = this.readBits(bitsPerCoordinate);
  249. var yi = this.readBits(bitsPerCoordinate);
  250. var decode = this.context.decode;
  251. var scale = bitsPerCoordinate < 32 ? 1 / ((1 << bitsPerCoordinate) - 1) : 2.3283064365386963e-10;
  252. return [xi * scale * (decode[1] - decode[0]) + decode[0], yi * scale * (decode[3] - decode[2]) + decode[2]];
  253. },
  254. readComponents: function MeshStreamReader_readComponents() {
  255. var numComps = this.context.numComps;
  256. var bitsPerComponent = this.context.bitsPerComponent;
  257. var scale = bitsPerComponent < 32 ? 1 / ((1 << bitsPerComponent) - 1) : 2.3283064365386963e-10;
  258. var decode = this.context.decode;
  259. var components = this.tmpCompsBuf;
  260. for (var i = 0, j = 4; i < numComps; i++, j += 2) {
  261. var ci = this.readBits(bitsPerComponent);
  262. components[i] = ci * scale * (decode[j + 1] - decode[j]) + decode[j];
  263. }
  264. var color = this.tmpCsCompsBuf;
  265. if (this.context.colorFn) {
  266. this.context.colorFn(components, 0, color, 0);
  267. }
  268. return this.context.colorSpace.getRgb(color, 0);
  269. }
  270. };
  271. function decodeType4Shading(mesh, reader) {
  272. var coords = mesh.coords;
  273. var colors = mesh.colors;
  274. var operators = [];
  275. var ps = [];
  276. var verticesLeft = 0;
  277. while (reader.hasData) {
  278. var f = reader.readFlag();
  279. var coord = reader.readCoordinate();
  280. var color = reader.readComponents();
  281. if (verticesLeft === 0) {
  282. if (!(0 <= f && f <= 2)) {
  283. throw new _util.FormatError('Unknown type4 flag');
  284. }
  285. switch (f) {
  286. case 0:
  287. verticesLeft = 3;
  288. break;
  289. case 1:
  290. ps.push(ps[ps.length - 2], ps[ps.length - 1]);
  291. verticesLeft = 1;
  292. break;
  293. case 2:
  294. ps.push(ps[ps.length - 3], ps[ps.length - 1]);
  295. verticesLeft = 1;
  296. break;
  297. }
  298. operators.push(f);
  299. }
  300. ps.push(coords.length);
  301. coords.push(coord);
  302. colors.push(color);
  303. verticesLeft--;
  304. reader.align();
  305. }
  306. mesh.figures.push({
  307. type: 'triangles',
  308. coords: new Int32Array(ps),
  309. colors: new Int32Array(ps)
  310. });
  311. }
  312. function decodeType5Shading(mesh, reader, verticesPerRow) {
  313. var coords = mesh.coords;
  314. var colors = mesh.colors;
  315. var ps = [];
  316. while (reader.hasData) {
  317. var coord = reader.readCoordinate();
  318. var color = reader.readComponents();
  319. ps.push(coords.length);
  320. coords.push(coord);
  321. colors.push(color);
  322. }
  323. mesh.figures.push({
  324. type: 'lattice',
  325. coords: new Int32Array(ps),
  326. colors: new Int32Array(ps),
  327. verticesPerRow: verticesPerRow
  328. });
  329. }
  330. var MIN_SPLIT_PATCH_CHUNKS_AMOUNT = 3;
  331. var MAX_SPLIT_PATCH_CHUNKS_AMOUNT = 20;
  332. var TRIANGLE_DENSITY = 20;
  333. var getB = function getBClosure() {
  334. function buildB(count) {
  335. var lut = [];
  336. for (var i = 0; i <= count; i++) {
  337. var t = i / count,
  338. t_ = 1 - t;
  339. lut.push(new Float32Array([t_ * t_ * t_, 3 * t * t_ * t_, 3 * t * t * t_, t * t * t]));
  340. }
  341. return lut;
  342. }
  343. var cache = [];
  344. return function getB(count) {
  345. if (!cache[count]) {
  346. cache[count] = buildB(count);
  347. }
  348. return cache[count];
  349. };
  350. }();
  351. function buildFigureFromPatch(mesh, index) {
  352. var figure = mesh.figures[index];
  353. (0, _util.assert)(figure.type === 'patch', 'Unexpected patch mesh figure');
  354. var coords = mesh.coords,
  355. colors = mesh.colors;
  356. var pi = figure.coords;
  357. var ci = figure.colors;
  358. var figureMinX = Math.min(coords[pi[0]][0], coords[pi[3]][0], coords[pi[12]][0], coords[pi[15]][0]);
  359. var figureMinY = Math.min(coords[pi[0]][1], coords[pi[3]][1], coords[pi[12]][1], coords[pi[15]][1]);
  360. var figureMaxX = Math.max(coords[pi[0]][0], coords[pi[3]][0], coords[pi[12]][0], coords[pi[15]][0]);
  361. var figureMaxY = Math.max(coords[pi[0]][1], coords[pi[3]][1], coords[pi[12]][1], coords[pi[15]][1]);
  362. var splitXBy = Math.ceil((figureMaxX - figureMinX) * TRIANGLE_DENSITY / (mesh.bounds[2] - mesh.bounds[0]));
  363. splitXBy = Math.max(MIN_SPLIT_PATCH_CHUNKS_AMOUNT, Math.min(MAX_SPLIT_PATCH_CHUNKS_AMOUNT, splitXBy));
  364. var splitYBy = Math.ceil((figureMaxY - figureMinY) * TRIANGLE_DENSITY / (mesh.bounds[3] - mesh.bounds[1]));
  365. splitYBy = Math.max(MIN_SPLIT_PATCH_CHUNKS_AMOUNT, Math.min(MAX_SPLIT_PATCH_CHUNKS_AMOUNT, splitYBy));
  366. var verticesPerRow = splitXBy + 1;
  367. var figureCoords = new Int32Array((splitYBy + 1) * verticesPerRow);
  368. var figureColors = new Int32Array((splitYBy + 1) * verticesPerRow);
  369. var k = 0;
  370. var cl = new Uint8Array(3),
  371. cr = new Uint8Array(3);
  372. var c0 = colors[ci[0]],
  373. c1 = colors[ci[1]],
  374. c2 = colors[ci[2]],
  375. c3 = colors[ci[3]];
  376. var bRow = getB(splitYBy),
  377. bCol = getB(splitXBy);
  378. for (var row = 0; row <= splitYBy; row++) {
  379. cl[0] = (c0[0] * (splitYBy - row) + c2[0] * row) / splitYBy | 0;
  380. cl[1] = (c0[1] * (splitYBy - row) + c2[1] * row) / splitYBy | 0;
  381. cl[2] = (c0[2] * (splitYBy - row) + c2[2] * row) / splitYBy | 0;
  382. cr[0] = (c1[0] * (splitYBy - row) + c3[0] * row) / splitYBy | 0;
  383. cr[1] = (c1[1] * (splitYBy - row) + c3[1] * row) / splitYBy | 0;
  384. cr[2] = (c1[2] * (splitYBy - row) + c3[2] * row) / splitYBy | 0;
  385. for (var col = 0; col <= splitXBy; col++, k++) {
  386. if ((row === 0 || row === splitYBy) && (col === 0 || col === splitXBy)) {
  387. continue;
  388. }
  389. var x = 0,
  390. y = 0;
  391. var q = 0;
  392. for (var i = 0; i <= 3; i++) {
  393. for (var j = 0; j <= 3; j++, q++) {
  394. var m = bRow[row][i] * bCol[col][j];
  395. x += coords[pi[q]][0] * m;
  396. y += coords[pi[q]][1] * m;
  397. }
  398. }
  399. figureCoords[k] = coords.length;
  400. coords.push([x, y]);
  401. figureColors[k] = colors.length;
  402. var newColor = new Uint8Array(3);
  403. newColor[0] = (cl[0] * (splitXBy - col) + cr[0] * col) / splitXBy | 0;
  404. newColor[1] = (cl[1] * (splitXBy - col) + cr[1] * col) / splitXBy | 0;
  405. newColor[2] = (cl[2] * (splitXBy - col) + cr[2] * col) / splitXBy | 0;
  406. colors.push(newColor);
  407. }
  408. }
  409. figureCoords[0] = pi[0];
  410. figureColors[0] = ci[0];
  411. figureCoords[splitXBy] = pi[3];
  412. figureColors[splitXBy] = ci[1];
  413. figureCoords[verticesPerRow * splitYBy] = pi[12];
  414. figureColors[verticesPerRow * splitYBy] = ci[2];
  415. figureCoords[verticesPerRow * splitYBy + splitXBy] = pi[15];
  416. figureColors[verticesPerRow * splitYBy + splitXBy] = ci[3];
  417. mesh.figures[index] = {
  418. type: 'lattice',
  419. coords: figureCoords,
  420. colors: figureColors,
  421. verticesPerRow: verticesPerRow
  422. };
  423. }
  424. function decodeType6Shading(mesh, reader) {
  425. var coords = mesh.coords;
  426. var colors = mesh.colors;
  427. var ps = new Int32Array(16);
  428. var cs = new Int32Array(4);
  429. while (reader.hasData) {
  430. var f = reader.readFlag();
  431. if (!(0 <= f && f <= 3)) {
  432. throw new _util.FormatError('Unknown type6 flag');
  433. }
  434. var i, ii;
  435. var pi = coords.length;
  436. for (i = 0, ii = f !== 0 ? 8 : 12; i < ii; i++) {
  437. coords.push(reader.readCoordinate());
  438. }
  439. var ci = colors.length;
  440. for (i = 0, ii = f !== 0 ? 2 : 4; i < ii; i++) {
  441. colors.push(reader.readComponents());
  442. }
  443. var tmp1, tmp2, tmp3, tmp4;
  444. switch (f) {
  445. case 0:
  446. ps[12] = pi + 3;
  447. ps[13] = pi + 4;
  448. ps[14] = pi + 5;
  449. ps[15] = pi + 6;
  450. ps[8] = pi + 2;
  451. ps[11] = pi + 7;
  452. ps[4] = pi + 1;
  453. ps[7] = pi + 8;
  454. ps[0] = pi;
  455. ps[1] = pi + 11;
  456. ps[2] = pi + 10;
  457. ps[3] = pi + 9;
  458. cs[2] = ci + 1;
  459. cs[3] = ci + 2;
  460. cs[0] = ci;
  461. cs[1] = ci + 3;
  462. break;
  463. case 1:
  464. tmp1 = ps[12];
  465. tmp2 = ps[13];
  466. tmp3 = ps[14];
  467. tmp4 = ps[15];
  468. ps[12] = tmp4;
  469. ps[13] = pi + 0;
  470. ps[14] = pi + 1;
  471. ps[15] = pi + 2;
  472. ps[8] = tmp3;
  473. ps[11] = pi + 3;
  474. ps[4] = tmp2;
  475. ps[7] = pi + 4;
  476. ps[0] = tmp1;
  477. ps[1] = pi + 7;
  478. ps[2] = pi + 6;
  479. ps[3] = pi + 5;
  480. tmp1 = cs[2];
  481. tmp2 = cs[3];
  482. cs[2] = tmp2;
  483. cs[3] = ci;
  484. cs[0] = tmp1;
  485. cs[1] = ci + 1;
  486. break;
  487. case 2:
  488. tmp1 = ps[15];
  489. tmp2 = ps[11];
  490. ps[12] = ps[3];
  491. ps[13] = pi + 0;
  492. ps[14] = pi + 1;
  493. ps[15] = pi + 2;
  494. ps[8] = ps[7];
  495. ps[11] = pi + 3;
  496. ps[4] = tmp2;
  497. ps[7] = pi + 4;
  498. ps[0] = tmp1;
  499. ps[1] = pi + 7;
  500. ps[2] = pi + 6;
  501. ps[3] = pi + 5;
  502. tmp1 = cs[3];
  503. cs[2] = cs[1];
  504. cs[3] = ci;
  505. cs[0] = tmp1;
  506. cs[1] = ci + 1;
  507. break;
  508. case 3:
  509. ps[12] = ps[0];
  510. ps[13] = pi + 0;
  511. ps[14] = pi + 1;
  512. ps[15] = pi + 2;
  513. ps[8] = ps[1];
  514. ps[11] = pi + 3;
  515. ps[4] = ps[2];
  516. ps[7] = pi + 4;
  517. ps[0] = ps[3];
  518. ps[1] = pi + 7;
  519. ps[2] = pi + 6;
  520. ps[3] = pi + 5;
  521. cs[2] = cs[0];
  522. cs[3] = ci;
  523. cs[0] = cs[1];
  524. cs[1] = ci + 1;
  525. break;
  526. }
  527. ps[5] = coords.length;
  528. coords.push([(-4 * coords[ps[0]][0] - coords[ps[15]][0] + 6 * (coords[ps[4]][0] + coords[ps[1]][0]) - 2 * (coords[ps[12]][0] + coords[ps[3]][0]) + 3 * (coords[ps[13]][0] + coords[ps[7]][0])) / 9, (-4 * coords[ps[0]][1] - coords[ps[15]][1] + 6 * (coords[ps[4]][1] + coords[ps[1]][1]) - 2 * (coords[ps[12]][1] + coords[ps[3]][1]) + 3 * (coords[ps[13]][1] + coords[ps[7]][1])) / 9]);
  529. ps[6] = coords.length;
  530. coords.push([(-4 * coords[ps[3]][0] - coords[ps[12]][0] + 6 * (coords[ps[2]][0] + coords[ps[7]][0]) - 2 * (coords[ps[0]][0] + coords[ps[15]][0]) + 3 * (coords[ps[4]][0] + coords[ps[14]][0])) / 9, (-4 * coords[ps[3]][1] - coords[ps[12]][1] + 6 * (coords[ps[2]][1] + coords[ps[7]][1]) - 2 * (coords[ps[0]][1] + coords[ps[15]][1]) + 3 * (coords[ps[4]][1] + coords[ps[14]][1])) / 9]);
  531. ps[9] = coords.length;
  532. coords.push([(-4 * coords[ps[12]][0] - coords[ps[3]][0] + 6 * (coords[ps[8]][0] + coords[ps[13]][0]) - 2 * (coords[ps[0]][0] + coords[ps[15]][0]) + 3 * (coords[ps[11]][0] + coords[ps[1]][0])) / 9, (-4 * coords[ps[12]][1] - coords[ps[3]][1] + 6 * (coords[ps[8]][1] + coords[ps[13]][1]) - 2 * (coords[ps[0]][1] + coords[ps[15]][1]) + 3 * (coords[ps[11]][1] + coords[ps[1]][1])) / 9]);
  533. ps[10] = coords.length;
  534. coords.push([(-4 * coords[ps[15]][0] - coords[ps[0]][0] + 6 * (coords[ps[11]][0] + coords[ps[14]][0]) - 2 * (coords[ps[12]][0] + coords[ps[3]][0]) + 3 * (coords[ps[2]][0] + coords[ps[8]][0])) / 9, (-4 * coords[ps[15]][1] - coords[ps[0]][1] + 6 * (coords[ps[11]][1] + coords[ps[14]][1]) - 2 * (coords[ps[12]][1] + coords[ps[3]][1]) + 3 * (coords[ps[2]][1] + coords[ps[8]][1])) / 9]);
  535. mesh.figures.push({
  536. type: 'patch',
  537. coords: new Int32Array(ps),
  538. colors: new Int32Array(cs)
  539. });
  540. }
  541. }
  542. function decodeType7Shading(mesh, reader) {
  543. var coords = mesh.coords;
  544. var colors = mesh.colors;
  545. var ps = new Int32Array(16);
  546. var cs = new Int32Array(4);
  547. while (reader.hasData) {
  548. var f = reader.readFlag();
  549. if (!(0 <= f && f <= 3)) {
  550. throw new _util.FormatError('Unknown type7 flag');
  551. }
  552. var i, ii;
  553. var pi = coords.length;
  554. for (i = 0, ii = f !== 0 ? 12 : 16; i < ii; i++) {
  555. coords.push(reader.readCoordinate());
  556. }
  557. var ci = colors.length;
  558. for (i = 0, ii = f !== 0 ? 2 : 4; i < ii; i++) {
  559. colors.push(reader.readComponents());
  560. }
  561. var tmp1, tmp2, tmp3, tmp4;
  562. switch (f) {
  563. case 0:
  564. ps[12] = pi + 3;
  565. ps[13] = pi + 4;
  566. ps[14] = pi + 5;
  567. ps[15] = pi + 6;
  568. ps[8] = pi + 2;
  569. ps[9] = pi + 13;
  570. ps[10] = pi + 14;
  571. ps[11] = pi + 7;
  572. ps[4] = pi + 1;
  573. ps[5] = pi + 12;
  574. ps[6] = pi + 15;
  575. ps[7] = pi + 8;
  576. ps[0] = pi;
  577. ps[1] = pi + 11;
  578. ps[2] = pi + 10;
  579. ps[3] = pi + 9;
  580. cs[2] = ci + 1;
  581. cs[3] = ci + 2;
  582. cs[0] = ci;
  583. cs[1] = ci + 3;
  584. break;
  585. case 1:
  586. tmp1 = ps[12];
  587. tmp2 = ps[13];
  588. tmp3 = ps[14];
  589. tmp4 = ps[15];
  590. ps[12] = tmp4;
  591. ps[13] = pi + 0;
  592. ps[14] = pi + 1;
  593. ps[15] = pi + 2;
  594. ps[8] = tmp3;
  595. ps[9] = pi + 9;
  596. ps[10] = pi + 10;
  597. ps[11] = pi + 3;
  598. ps[4] = tmp2;
  599. ps[5] = pi + 8;
  600. ps[6] = pi + 11;
  601. ps[7] = pi + 4;
  602. ps[0] = tmp1;
  603. ps[1] = pi + 7;
  604. ps[2] = pi + 6;
  605. ps[3] = pi + 5;
  606. tmp1 = cs[2];
  607. tmp2 = cs[3];
  608. cs[2] = tmp2;
  609. cs[3] = ci;
  610. cs[0] = tmp1;
  611. cs[1] = ci + 1;
  612. break;
  613. case 2:
  614. tmp1 = ps[15];
  615. tmp2 = ps[11];
  616. ps[12] = ps[3];
  617. ps[13] = pi + 0;
  618. ps[14] = pi + 1;
  619. ps[15] = pi + 2;
  620. ps[8] = ps[7];
  621. ps[9] = pi + 9;
  622. ps[10] = pi + 10;
  623. ps[11] = pi + 3;
  624. ps[4] = tmp2;
  625. ps[5] = pi + 8;
  626. ps[6] = pi + 11;
  627. ps[7] = pi + 4;
  628. ps[0] = tmp1;
  629. ps[1] = pi + 7;
  630. ps[2] = pi + 6;
  631. ps[3] = pi + 5;
  632. tmp1 = cs[3];
  633. cs[2] = cs[1];
  634. cs[3] = ci;
  635. cs[0] = tmp1;
  636. cs[1] = ci + 1;
  637. break;
  638. case 3:
  639. ps[12] = ps[0];
  640. ps[13] = pi + 0;
  641. ps[14] = pi + 1;
  642. ps[15] = pi + 2;
  643. ps[8] = ps[1];
  644. ps[9] = pi + 9;
  645. ps[10] = pi + 10;
  646. ps[11] = pi + 3;
  647. ps[4] = ps[2];
  648. ps[5] = pi + 8;
  649. ps[6] = pi + 11;
  650. ps[7] = pi + 4;
  651. ps[0] = ps[3];
  652. ps[1] = pi + 7;
  653. ps[2] = pi + 6;
  654. ps[3] = pi + 5;
  655. cs[2] = cs[0];
  656. cs[3] = ci;
  657. cs[0] = cs[1];
  658. cs[1] = ci + 1;
  659. break;
  660. }
  661. mesh.figures.push({
  662. type: 'patch',
  663. coords: new Int32Array(ps),
  664. colors: new Int32Array(cs)
  665. });
  666. }
  667. }
  668. function updateBounds(mesh) {
  669. var minX = mesh.coords[0][0],
  670. minY = mesh.coords[0][1],
  671. maxX = minX,
  672. maxY = minY;
  673. for (var i = 1, ii = mesh.coords.length; i < ii; i++) {
  674. var x = mesh.coords[i][0],
  675. y = mesh.coords[i][1];
  676. minX = minX > x ? x : minX;
  677. minY = minY > y ? y : minY;
  678. maxX = maxX < x ? x : maxX;
  679. maxY = maxY < y ? y : maxY;
  680. }
  681. mesh.bounds = [minX, minY, maxX, maxY];
  682. }
  683. function packData(mesh) {
  684. var i, ii, j, jj;
  685. var coords = mesh.coords;
  686. var coordsPacked = new Float32Array(coords.length * 2);
  687. for (i = 0, j = 0, ii = coords.length; i < ii; i++) {
  688. var xy = coords[i];
  689. coordsPacked[j++] = xy[0];
  690. coordsPacked[j++] = xy[1];
  691. }
  692. mesh.coords = coordsPacked;
  693. var colors = mesh.colors;
  694. var colorsPacked = new Uint8Array(colors.length * 3);
  695. for (i = 0, j = 0, ii = colors.length; i < ii; i++) {
  696. var c = colors[i];
  697. colorsPacked[j++] = c[0];
  698. colorsPacked[j++] = c[1];
  699. colorsPacked[j++] = c[2];
  700. }
  701. mesh.colors = colorsPacked;
  702. var figures = mesh.figures;
  703. for (i = 0, ii = figures.length; i < ii; i++) {
  704. var figure = figures[i],
  705. ps = figure.coords,
  706. cs = figure.colors;
  707. for (j = 0, jj = ps.length; j < jj; j++) {
  708. ps[j] *= 2;
  709. cs[j] *= 3;
  710. }
  711. }
  712. }
  713. function Mesh(stream, matrix, xref, res, pdfFunctionFactory) {
  714. if (!(0, _primitives.isStream)(stream)) {
  715. throw new _util.FormatError('Mesh data is not a stream');
  716. }
  717. var dict = stream.dict;
  718. this.matrix = matrix;
  719. this.shadingType = dict.get('ShadingType');
  720. this.type = 'Pattern';
  721. this.bbox = dict.getArray('BBox');
  722. var cs = dict.get('ColorSpace', 'CS');
  723. cs = _colorspace.ColorSpace.parse(cs, xref, res, pdfFunctionFactory);
  724. this.cs = cs;
  725. this.background = dict.has('Background') ? cs.getRgb(dict.get('Background'), 0) : null;
  726. var fnObj = dict.get('Function');
  727. var fn = fnObj ? pdfFunctionFactory.createFromArray(fnObj) : null;
  728. this.coords = [];
  729. this.colors = [];
  730. this.figures = [];
  731. var decodeContext = {
  732. bitsPerCoordinate: dict.get('BitsPerCoordinate'),
  733. bitsPerComponent: dict.get('BitsPerComponent'),
  734. bitsPerFlag: dict.get('BitsPerFlag'),
  735. decode: dict.getArray('Decode'),
  736. colorFn: fn,
  737. colorSpace: cs,
  738. numComps: fn ? 1 : cs.numComps
  739. };
  740. var reader = new MeshStreamReader(stream, decodeContext);
  741. var patchMesh = false;
  742. switch (this.shadingType) {
  743. case ShadingType.FREE_FORM_MESH:
  744. decodeType4Shading(this, reader);
  745. break;
  746. case ShadingType.LATTICE_FORM_MESH:
  747. var verticesPerRow = dict.get('VerticesPerRow') | 0;
  748. if (verticesPerRow < 2) {
  749. throw new _util.FormatError('Invalid VerticesPerRow');
  750. }
  751. decodeType5Shading(this, reader, verticesPerRow);
  752. break;
  753. case ShadingType.COONS_PATCH_MESH:
  754. decodeType6Shading(this, reader);
  755. patchMesh = true;
  756. break;
  757. case ShadingType.TENSOR_PATCH_MESH:
  758. decodeType7Shading(this, reader);
  759. patchMesh = true;
  760. break;
  761. default:
  762. (0, _util.unreachable)('Unsupported mesh type.');
  763. break;
  764. }
  765. if (patchMesh) {
  766. updateBounds(this);
  767. for (var i = 0, ii = this.figures.length; i < ii; i++) {
  768. buildFigureFromPatch(this, i);
  769. }
  770. }
  771. updateBounds(this);
  772. packData(this);
  773. }
  774. Mesh.prototype = {
  775. getIR: function Mesh_getIR() {
  776. return ['Mesh', this.shadingType, this.coords, this.colors, this.figures, this.bounds, this.matrix, this.bbox, this.background];
  777. }
  778. };
  779. return Mesh;
  780. }();
  781. Shadings.Dummy = function DummyClosure() {
  782. function Dummy() {
  783. this.type = 'Pattern';
  784. }
  785. Dummy.prototype = {
  786. getIR: function Dummy_getIR() {
  787. return ['Dummy'];
  788. }
  789. };
  790. return Dummy;
  791. }();
  792. function getTilingPatternIR(operatorList, dict, args) {
  793. var matrix = dict.getArray('Matrix');
  794. var bbox = _util.Util.normalizeRect(dict.getArray('BBox'));
  795. var xstep = dict.get('XStep');
  796. var ystep = dict.get('YStep');
  797. var paintType = dict.get('PaintType');
  798. var tilingType = dict.get('TilingType');
  799. if (bbox[2] - bbox[0] === 0 || bbox[3] - bbox[1] === 0) {
  800. throw new _util.FormatError("Invalid getTilingPatternIR /BBox array: [".concat(bbox, "]."));
  801. }
  802. return ['TilingPattern', args, operatorList, matrix, bbox, xstep, ystep, paintType, tilingType];
  803. }