1 /*
2 * Copyright (c) 2013-14 Mikko Mononen memon@inside.org
3 *
4 * This software is provided 'as-is', without any express or implied
5 * warranty. In no event will the authors be held liable for any damages
6 * arising from the use of this software.
7 *
8 * Permission is granted to anyone to use this software for any purpose,
9 * including commercial applications, and to alter it and redistribute it
10 * freely, subject to the following restrictions:
11 *
12 * 1. The origin of this software must not be misrepresented; you must not
13 * claim that you wrote the original software. If you use this software
14 * in a product, an acknowledgment in the product documentation would be
15 * appreciated but is not required.
16 * 2. Altered source versions must be plainly marked as such, and must not be
17 * misrepresented as being the original software.
18 * 3. This notice may not be removed or altered from any source distribution.
19 *
20 * The SVG parser is based on Anti-Grain Geometry 2.4 SVG example
21 * Copyright (C) 2002-2004 Maxim Shemanarev (McSeem) (http://www.antigrain.com/)
22 *
23 * Arc calculation code based on canvg (https://code.google.com/p/canvg/)
24 *
25 * Bounding box calculation based on http://blog.hackers-cafe.net/2009/06/how-to-calculate-bezier-curves-bounding.html
26 *
27 */
28
29 #ifndef NANOSVG_H
30 #define NANOSVG_H
31
32 #ifndef NANOSVG_CPLUSPLUS
33 #ifdef __cplusplus
34 extern "C" {
35 #endif
36 #endif
37
38 // NanoSVG is a simple stupid single-header-file SVG parse. The output of the parser is a list of cubic bezier shapes.
39 //
40 // The library suits well for anything from rendering scalable icons in your editor application to prototyping a game.
41 //
42 // NanoSVG supports a wide range of SVG features, but something may be missing, feel free to create a pull request!
43 //
44 // The shapes in the SVG images are transformed by the viewBox and converted to specified units.
45 // That is, you should get the same looking data as your designed in your favorite app.
46 //
47 // NanoSVG can return the paths in few different units. For example if you want to render an image, you may choose
48 // to get the paths in pixels, or if you are feeding the data into a CNC-cutter, you may want to use millimeters.
49 //
50 // The units passed to NanoSVG should be one of: 'px', 'pt', 'pc' 'mm', 'cm', or 'in'.
51 // DPI (dots-per-inch) controls how the unit conversion is done.
52 //
53 // If you don't know or care about the units stuff, "px" and 96 should get you going.
54
55
56 /* Example Usage:
57 // Load SVG
58 NSVGimage* image;
59 image = nsvgParseFromFile("test.svg", "px", 96);
60 printf("size: %f x %f\n", image->width, image->height);
61 // Use...
62 for (NSVGshape *shape = image->shapes; shape != NULL; shape = shape->next) {
63 for (NSVGpath *path = shape->paths; path != NULL; path = path->next) {
64 for (int i = 0; i < path->npts-1; i += 3) {
65 float* p = &path->pts[i*2];
66 drawCubicBez(p[0],p[1], p[2],p[3], p[4],p[5], p[6],p[7]);
67 }
68 }
69 }
70 // Delete
71 nsvgDelete(image);
72 */
73
74 enum NSVGpaintType {
75 NSVG_PAINT_NONE = 0,
76 NSVG_PAINT_COLOR = 1,
77 NSVG_PAINT_LINEAR_GRADIENT = 2,
78 NSVG_PAINT_RADIAL_GRADIENT = 3
79 };
80
81 enum NSVGspreadType {
82 NSVG_SPREAD_PAD = 0,
83 NSVG_SPREAD_REFLECT = 1,
84 NSVG_SPREAD_REPEAT = 2
85 };
86
87 enum NSVGlineJoin {
88 NSVG_JOIN_MITER = 0,
89 NSVG_JOIN_ROUND = 1,
90 NSVG_JOIN_BEVEL = 2
91 };
92
93 enum NSVGlineCap {
94 NSVG_CAP_BUTT = 0,
95 NSVG_CAP_ROUND = 1,
96 NSVG_CAP_SQUARE = 2
97 };
98
99 enum NSVGfillRule {
100 NSVG_FILLRULE_NONZERO = 0,
101 NSVG_FILLRULE_EVENODD = 1
102 };
103
104 enum NSVGflags {
105 NSVG_FLAGS_VISIBLE = 0x01
106 };
107
108 typedef struct NSVGgradientStop {
109 unsigned int color;
110 float offset;
111 } NSVGgradientStop;
112
113 typedef struct NSVGgradient {
114 float xform[6];
115 char spread;
116 float fx, fy;
117 int nstops;
118 NSVGgradientStop stops[1];
119 } NSVGgradient;
120
121 typedef struct NSVGpaint {
122 char type;
123 union {
124 unsigned int color;
125 NSVGgradient* gradient;
126 };
127 } NSVGpaint;
128
129 typedef struct NSVGpath
130 {
131 float* pts; // Cubic bezier points: x0,y0, [cpx1,cpx1,cpx2,cpy2,x1,y1], ...
132 int npts; // Total number of bezier points.
133 char closed; // Flag indicating if shapes should be treated as closed.
134 float bounds[4]; // Tight bounding box of the shape [minx,miny,maxx,maxy].
135 struct NSVGpath* next; // Pointer to next path, or NULL if last element.
136 } NSVGpath;
137
138 typedef struct NSVGshape
139 {
140 char id[64]; // Optional 'id' attr of the shape or its group
141 NSVGpaint fill; // Fill paint
142 NSVGpaint stroke; // Stroke paint
143 float opacity; // Opacity of the shape.
144 float strokeWidth; // Stroke width (scaled).
145 float strokeDashOffset; // Stroke dash offset (scaled).
146 float strokeDashArray[8]; // Stroke dash array (scaled).
147 char strokeDashCount; // Number of dash values in dash array.
148 char strokeLineJoin; // Stroke join type.
149 char strokeLineCap; // Stroke cap type.
150 float miterLimit; // Miter limit
151 char fillRule; // Fill rule, see NSVGfillRule.
152 unsigned char flags; // Logical or of NSVG_FLAGS_* flags
153 float bounds[4]; // Tight bounding box of the shape [minx,miny,maxx,maxy].
154 NSVGpath* paths; // Linked list of paths in the image.
155 struct NSVGshape* next; // Pointer to next shape, or NULL if last element.
156 } NSVGshape;
157
158 typedef struct NSVGimage
159 {
160 float width; // Width of the image.
161 float height; // Height of the image.
162 NSVGshape* shapes; // Linked list of shapes in the image.
163 } NSVGimage;
164
165 // Parses SVG file from a file, returns SVG image as paths.
166 NSVGimage* nsvgParseFromFile(const char* filename, const char* units, float dpi);
167
168 // Parses SVG file from a null terminated string, returns SVG image as paths.
169 // Important note: changes the string.
170 NSVGimage* nsvgParse(char* input, const char* units, float dpi);
171
172 // Duplicates a path.
173 NSVGpath* nsvgDuplicatePath(NSVGpath* p);
174
175 // Deletes an image.
176 void nsvgDelete(NSVGimage* image);
177
178 #ifndef NANOSVG_CPLUSPLUS
179 #ifdef __cplusplus
180 }
181 #endif
182 #endif
183
184 #endif // NANOSVG_H
185
186 #ifdef NANOSVG_IMPLEMENTATION
187
188 #include <string.h>
189 #include <stdlib.h>
190 #include <math.h>
191
192 #define NSVG_PI (3.14159265358979323846264338327f)
193 #define NSVG_KAPPA90 (0.5522847493f) // Length proportional to radius of a cubic bezier handle for 90deg arcs.
194
195 #define NSVG_ALIGN_MIN 0
196 #define NSVG_ALIGN_MID 1
197 #define NSVG_ALIGN_MAX 2
198 #define NSVG_ALIGN_NONE 0
199 #define NSVG_ALIGN_MEET 1
200 #define NSVG_ALIGN_SLICE 2
201
202 #define NSVG_NOTUSED(v) do { (void)(1 ? (void)0 : ( (void)(v) ) ); } while(0)
203 #define NSVG_RGB(r, g, b) (((unsigned int)r) | ((unsigned int)g << 8) | ((unsigned int)b << 16))
204
205 #ifdef _MSC_VER
206 #pragma warning (disable: 4996) // Switch off security warnings
207 #pragma warning (disable: 4100) // Switch off unreferenced formal parameter warnings
208 #ifdef __cplusplus
209 #define NSVG_INLINE inline
210 #else
211 #define NSVG_INLINE
212 #endif
213 #else
214 #define NSVG_INLINE inline
215 #endif
216
217
nsvg__isspace(char c)218 static int nsvg__isspace(char c)
219 {
220 return strchr(" \t\n\v\f\r", c) != 0;
221 }
222
nsvg__isdigit(char c)223 static int nsvg__isdigit(char c)
224 {
225 return c >= '0' && c <= '9';
226 }
227
nsvg__isnum(char c)228 static int nsvg__isnum(char c)
229 {
230 return strchr("0123456789+-.eE", c) != 0;
231 }
232
nsvg__minf(float a,float b)233 static NSVG_INLINE float nsvg__minf(float a, float b) { return a < b ? a : b; }
nsvg__maxf(float a,float b)234 static NSVG_INLINE float nsvg__maxf(float a, float b) { return a > b ? a : b; }
235
236
237 // Simple XML parser
238
239 #define NSVG_XML_TAG 1
240 #define NSVG_XML_CONTENT 2
241 #define NSVG_XML_MAX_ATTRIBS 256
242
nsvg__parseContent(char * s,void (* contentCb)(void * ud,const char * s),void * ud)243 static void nsvg__parseContent(char* s,
244 void (*contentCb)(void* ud, const char* s),
245 void* ud)
246 {
247 // Trim start white spaces
248 while (*s && nsvg__isspace(*s)) s++;
249 if (!*s) return;
250
251 if (contentCb)
252 (*contentCb)(ud, s);
253 }
254
nsvg__parseElement(char * s,void (* startelCb)(void * ud,const char * el,const char ** attr),void (* endelCb)(void * ud,const char * el),void * ud)255 static void nsvg__parseElement(char* s,
256 void (*startelCb)(void* ud, const char* el, const char** attr),
257 void (*endelCb)(void* ud, const char* el),
258 void* ud)
259 {
260 const char* attr[NSVG_XML_MAX_ATTRIBS];
261 int nattr = 0;
262 char* name;
263 int start = 0;
264 int end = 0;
265 char quote;
266
267 // Skip white space after the '<'
268 while (*s && nsvg__isspace(*s)) s++;
269
270 // Check if the tag is end tag
271 if (*s == '/') {
272 s++;
273 end = 1;
274 } else {
275 start = 1;
276 }
277
278 // Skip comments, data and preprocessor stuff.
279 if (!*s || *s == '?' || *s == '!')
280 return;
281
282 // Get tag name
283 name = s;
284 while (*s && !nsvg__isspace(*s)) s++;
285 if (*s) { *s++ = '\0'; }
286
287 // Get attribs
288 while (!end && *s && nattr < NSVG_XML_MAX_ATTRIBS-3) {
289 char* name = NULL;
290 char* value = NULL;
291
292 // Skip white space before the attrib name
293 while (*s && nsvg__isspace(*s)) s++;
294 if (!*s) break;
295 if (*s == '/') {
296 end = 1;
297 break;
298 }
299 name = s;
300 // Find end of the attrib name.
301 while (*s && !nsvg__isspace(*s) && *s != '=') s++;
302 if (*s) { *s++ = '\0'; }
303 // Skip until the beginning of the value.
304 while (*s && *s != '\"' && *s != '\'') s++;
305 if (!*s) break;
306 quote = *s;
307 s++;
308 // Store value and find the end of it.
309 value = s;
310 while (*s && *s != quote) s++;
311 if (*s) { *s++ = '\0'; }
312
313 // Store only well formed attributes
314 if (name && value) {
315 attr[nattr++] = name;
316 attr[nattr++] = value;
317 }
318 }
319
320 // List terminator
321 attr[nattr++] = 0;
322 attr[nattr++] = 0;
323
324 // Call callbacks.
325 if (start && startelCb)
326 (*startelCb)(ud, name, attr);
327 if (end && endelCb)
328 (*endelCb)(ud, name);
329 }
330
nsvg__parseXML(char * input,void (* startelCb)(void * ud,const char * el,const char ** attr),void (* endelCb)(void * ud,const char * el),void (* contentCb)(void * ud,const char * s),void * ud)331 int nsvg__parseXML(char* input,
332 void (*startelCb)(void* ud, const char* el, const char** attr),
333 void (*endelCb)(void* ud, const char* el),
334 void (*contentCb)(void* ud, const char* s),
335 void* ud)
336 {
337 char* s = input;
338 char* mark = s;
339 int state = NSVG_XML_CONTENT;
340 while (*s) {
341 if (*s == '<' && state == NSVG_XML_CONTENT) {
342 // Start of a tag
343 *s++ = '\0';
344 nsvg__parseContent(mark, contentCb, ud);
345 mark = s;
346 state = NSVG_XML_TAG;
347 } else if (*s == '>' && state == NSVG_XML_TAG) {
348 // Start of a content or new tag.
349 *s++ = '\0';
350 nsvg__parseElement(mark, startelCb, endelCb, ud);
351 mark = s;
352 state = NSVG_XML_CONTENT;
353 } else {
354 s++;
355 }
356 }
357
358 return 1;
359 }
360
361
362 /* Simple SVG parser. */
363
364 #define NSVG_MAX_ATTR 128
365
366 enum NSVGgradientUnits {
367 NSVG_USER_SPACE = 0,
368 NSVG_OBJECT_SPACE = 1
369 };
370
371 #define NSVG_MAX_DASHES 8
372
373 enum NSVGunits {
374 NSVG_UNITS_USER,
375 NSVG_UNITS_PX,
376 NSVG_UNITS_PT,
377 NSVG_UNITS_PC,
378 NSVG_UNITS_MM,
379 NSVG_UNITS_CM,
380 NSVG_UNITS_IN,
381 NSVG_UNITS_PERCENT,
382 NSVG_UNITS_EM,
383 NSVG_UNITS_EX
384 };
385
386 typedef struct NSVGcoordinate {
387 float value;
388 int units;
389 } NSVGcoordinate;
390
391 typedef struct NSVGlinearData {
392 NSVGcoordinate x1, y1, x2, y2;
393 } NSVGlinearData;
394
395 typedef struct NSVGradialData {
396 NSVGcoordinate cx, cy, r, fx, fy;
397 } NSVGradialData;
398
399 typedef struct NSVGgradientData
400 {
401 char id[64];
402 char ref[64];
403 char type;
404 union {
405 NSVGlinearData linear;
406 NSVGradialData radial;
407 };
408 char spread;
409 char units;
410 float xform[6];
411 int nstops;
412 NSVGgradientStop* stops;
413 struct NSVGgradientData* next;
414 } NSVGgradientData;
415
416 typedef struct NSVGattrib
417 {
418 char id[64];
419 float xform[6];
420 unsigned int fillColor;
421 unsigned int strokeColor;
422 float opacity;
423 float fillOpacity;
424 float strokeOpacity;
425 char fillGradient[64];
426 char strokeGradient[64];
427 float strokeWidth;
428 float strokeDashOffset;
429 float strokeDashArray[NSVG_MAX_DASHES];
430 int strokeDashCount;
431 char strokeLineJoin;
432 char strokeLineCap;
433 float miterLimit;
434 char fillRule;
435 float fontSize;
436 unsigned int stopColor;
437 float stopOpacity;
438 float stopOffset;
439 char hasFill;
440 char hasStroke;
441 char visible;
442 } NSVGattrib;
443
444 typedef struct NSVGparser
445 {
446 NSVGattrib attr[NSVG_MAX_ATTR];
447 int attrHead;
448 float* pts;
449 int npts;
450 int cpts;
451 NSVGpath* plist;
452 NSVGimage* image;
453 NSVGgradientData* gradients;
454 NSVGshape* shapesTail;
455 float viewMinx, viewMiny, viewWidth, viewHeight;
456 int alignX, alignY, alignType;
457 float dpi;
458 char pathFlag;
459 char defsFlag;
460 } NSVGparser;
461
nsvg__xformIdentity(float * t)462 static void nsvg__xformIdentity(float* t)
463 {
464 t[0] = 1.0f; t[1] = 0.0f;
465 t[2] = 0.0f; t[3] = 1.0f;
466 t[4] = 0.0f; t[5] = 0.0f;
467 }
468
nsvg__xformSetTranslation(float * t,float tx,float ty)469 static void nsvg__xformSetTranslation(float* t, float tx, float ty)
470 {
471 t[0] = 1.0f; t[1] = 0.0f;
472 t[2] = 0.0f; t[3] = 1.0f;
473 t[4] = tx; t[5] = ty;
474 }
475
nsvg__xformSetScale(float * t,float sx,float sy)476 static void nsvg__xformSetScale(float* t, float sx, float sy)
477 {
478 t[0] = sx; t[1] = 0.0f;
479 t[2] = 0.0f; t[3] = sy;
480 t[4] = 0.0f; t[5] = 0.0f;
481 }
482
nsvg__xformSetSkewX(float * t,float a)483 static void nsvg__xformSetSkewX(float* t, float a)
484 {
485 t[0] = 1.0f; t[1] = 0.0f;
486 t[2] = tanf(a); t[3] = 1.0f;
487 t[4] = 0.0f; t[5] = 0.0f;
488 }
489
nsvg__xformSetSkewY(float * t,float a)490 static void nsvg__xformSetSkewY(float* t, float a)
491 {
492 t[0] = 1.0f; t[1] = tanf(a);
493 t[2] = 0.0f; t[3] = 1.0f;
494 t[4] = 0.0f; t[5] = 0.0f;
495 }
496
nsvg__xformSetRotation(float * t,float a)497 static void nsvg__xformSetRotation(float* t, float a)
498 {
499 float cs = cosf(a), sn = sinf(a);
500 t[0] = cs; t[1] = sn;
501 t[2] = -sn; t[3] = cs;
502 t[4] = 0.0f; t[5] = 0.0f;
503 }
504
nsvg__xformMultiply(float * t,float * s)505 static void nsvg__xformMultiply(float* t, float* s)
506 {
507 float t0 = t[0] * s[0] + t[1] * s[2];
508 float t2 = t[2] * s[0] + t[3] * s[2];
509 float t4 = t[4] * s[0] + t[5] * s[2] + s[4];
510 t[1] = t[0] * s[1] + t[1] * s[3];
511 t[3] = t[2] * s[1] + t[3] * s[3];
512 t[5] = t[4] * s[1] + t[5] * s[3] + s[5];
513 t[0] = t0;
514 t[2] = t2;
515 t[4] = t4;
516 }
517
nsvg__xformInverse(float * inv,float * t)518 static void nsvg__xformInverse(float* inv, float* t)
519 {
520 double invdet, det = (double)t[0] * t[3] - (double)t[2] * t[1];
521 if (det > -1e-6 && det < 1e-6) {
522 nsvg__xformIdentity(t);
523 return;
524 }
525 invdet = 1.0 / det;
526 inv[0] = (float)(t[3] * invdet);
527 inv[2] = (float)(-t[2] * invdet);
528 inv[4] = (float)(((double)t[2] * t[5] - (double)t[3] * t[4]) * invdet);
529 inv[1] = (float)(-t[1] * invdet);
530 inv[3] = (float)(t[0] * invdet);
531 inv[5] = (float)(((double)t[1] * t[4] - (double)t[0] * t[5]) * invdet);
532 }
533
nsvg__xformPremultiply(float * t,float * s)534 static void nsvg__xformPremultiply(float* t, float* s)
535 {
536 float s2[6];
537 memcpy(s2, s, sizeof(float)*6);
538 nsvg__xformMultiply(s2, t);
539 memcpy(t, s2, sizeof(float)*6);
540 }
541
nsvg__xformPoint(float * dx,float * dy,float x,float y,float * t)542 static void nsvg__xformPoint(float* dx, float* dy, float x, float y, float* t)
543 {
544 *dx = x*t[0] + y*t[2] + t[4];
545 *dy = x*t[1] + y*t[3] + t[5];
546 }
547
nsvg__xformVec(float * dx,float * dy,float x,float y,float * t)548 static void nsvg__xformVec(float* dx, float* dy, float x, float y, float* t)
549 {
550 *dx = x*t[0] + y*t[2];
551 *dy = x*t[1] + y*t[3];
552 }
553
554 #define NSVG_EPSILON (1e-12)
555
nsvg__ptInBounds(float * pt,float * bounds)556 static int nsvg__ptInBounds(float* pt, float* bounds)
557 {
558 return pt[0] >= bounds[0] && pt[0] <= bounds[2] && pt[1] >= bounds[1] && pt[1] <= bounds[3];
559 }
560
561
nsvg__evalBezier(double t,double p0,double p1,double p2,double p3)562 static double nsvg__evalBezier(double t, double p0, double p1, double p2, double p3)
563 {
564 double it = 1.0-t;
565 return it*it*it*p0 + 3.0*it*it*t*p1 + 3.0*it*t*t*p2 + t*t*t*p3;
566 }
567
nsvg__curveBounds(float * bounds,float * curve)568 static void nsvg__curveBounds(float* bounds, float* curve)
569 {
570 int i, j, count;
571 double roots[2], a, b, c, b2ac, t, v;
572 float* v0 = &curve[0];
573 float* v1 = &curve[2];
574 float* v2 = &curve[4];
575 float* v3 = &curve[6];
576
577 // Start the bounding box by end points
578 bounds[0] = nsvg__minf(v0[0], v3[0]);
579 bounds[1] = nsvg__minf(v0[1], v3[1]);
580 bounds[2] = nsvg__maxf(v0[0], v3[0]);
581 bounds[3] = nsvg__maxf(v0[1], v3[1]);
582
583 // Bezier curve fits inside the convex hull of it's control points.
584 // If control points are inside the bounds, we're done.
585 if (nsvg__ptInBounds(v1, bounds) && nsvg__ptInBounds(v2, bounds))
586 return;
587
588 // Add bezier curve inflection points in X and Y.
589 for (i = 0; i < 2; i++) {
590 a = -3.0 * v0[i] + 9.0 * v1[i] - 9.0 * v2[i] + 3.0 * v3[i];
591 b = 6.0 * v0[i] - 12.0 * v1[i] + 6.0 * v2[i];
592 c = 3.0 * v1[i] - 3.0 * v0[i];
593 count = 0;
594 if (fabs(a) < NSVG_EPSILON) {
595 if (fabs(b) > NSVG_EPSILON) {
596 t = -c / b;
597 if (t > NSVG_EPSILON && t < 1.0-NSVG_EPSILON)
598 roots[count++] = t;
599 }
600 } else {
601 b2ac = b*b - 4.0*c*a;
602 if (b2ac > NSVG_EPSILON) {
603 t = (-b + sqrt(b2ac)) / (2.0 * a);
604 if (t > NSVG_EPSILON && t < 1.0-NSVG_EPSILON)
605 roots[count++] = t;
606 t = (-b - sqrt(b2ac)) / (2.0 * a);
607 if (t > NSVG_EPSILON && t < 1.0-NSVG_EPSILON)
608 roots[count++] = t;
609 }
610 }
611 for (j = 0; j < count; j++) {
612 v = nsvg__evalBezier(roots[j], v0[i], v1[i], v2[i], v3[i]);
613 bounds[0+i] = nsvg__minf(bounds[0+i], (float)v);
614 bounds[2+i] = nsvg__maxf(bounds[2+i], (float)v);
615 }
616 }
617 }
618
nsvg__createParser()619 static NSVGparser* nsvg__createParser()
620 {
621 NSVGparser* p;
622 p = (NSVGparser*)malloc(sizeof(NSVGparser));
623 if (p == NULL) goto error;
624 memset(p, 0, sizeof(NSVGparser));
625
626 p->image = (NSVGimage*)malloc(sizeof(NSVGimage));
627 if (p->image == NULL) goto error;
628 memset(p->image, 0, sizeof(NSVGimage));
629
630 // Init style
631 nsvg__xformIdentity(p->attr[0].xform);
632 memset(p->attr[0].id, 0, sizeof p->attr[0].id);
633 p->attr[0].fillColor = NSVG_RGB(0,0,0);
634 p->attr[0].strokeColor = NSVG_RGB(0,0,0);
635 p->attr[0].opacity = 1;
636 p->attr[0].fillOpacity = 1;
637 p->attr[0].strokeOpacity = 1;
638 p->attr[0].stopOpacity = 1;
639 p->attr[0].strokeWidth = 1;
640 p->attr[0].strokeLineJoin = NSVG_JOIN_MITER;
641 p->attr[0].strokeLineCap = NSVG_CAP_BUTT;
642 p->attr[0].miterLimit = 4;
643 p->attr[0].fillRule = NSVG_FILLRULE_NONZERO;
644 p->attr[0].hasFill = 1;
645 p->attr[0].visible = 1;
646
647 return p;
648
649 error:
650 if (p) {
651 if (p->image) free(p->image);
652 free(p);
653 }
654 return NULL;
655 }
656
nsvg__deletePaths(NSVGpath * path)657 static void nsvg__deletePaths(NSVGpath* path)
658 {
659 while (path) {
660 NSVGpath *next = path->next;
661 if (path->pts != NULL)
662 free(path->pts);
663 free(path);
664 path = next;
665 }
666 }
667
nsvg__deletePaint(NSVGpaint * paint)668 static void nsvg__deletePaint(NSVGpaint* paint)
669 {
670 if (paint->type == NSVG_PAINT_LINEAR_GRADIENT || paint->type == NSVG_PAINT_RADIAL_GRADIENT)
671 free(paint->gradient);
672 }
673
nsvg__deleteGradientData(NSVGgradientData * grad)674 static void nsvg__deleteGradientData(NSVGgradientData* grad)
675 {
676 NSVGgradientData* next;
677 while (grad != NULL) {
678 next = grad->next;
679 free(grad->stops);
680 free(grad);
681 grad = next;
682 }
683 }
684
nsvg__deleteParser(NSVGparser * p)685 static void nsvg__deleteParser(NSVGparser* p)
686 {
687 if (p != NULL) {
688 nsvg__deletePaths(p->plist);
689 nsvg__deleteGradientData(p->gradients);
690 nsvgDelete(p->image);
691 free(p->pts);
692 free(p);
693 }
694 }
695
nsvg__resetPath(NSVGparser * p)696 static void nsvg__resetPath(NSVGparser* p)
697 {
698 p->npts = 0;
699 }
700
nsvg__addPoint(NSVGparser * p,float x,float y)701 static void nsvg__addPoint(NSVGparser* p, float x, float y)
702 {
703 if (p->npts+1 > p->cpts) {
704 p->cpts = p->cpts ? p->cpts*2 : 8;
705 p->pts = (float*)realloc(p->pts, p->cpts*2*sizeof(float));
706 if (!p->pts) return;
707 }
708 p->pts[p->npts*2+0] = x;
709 p->pts[p->npts*2+1] = y;
710 p->npts++;
711 }
712
nsvg__moveTo(NSVGparser * p,float x,float y)713 static void nsvg__moveTo(NSVGparser* p, float x, float y)
714 {
715 if (p->npts > 0) {
716 p->pts[(p->npts-1)*2+0] = x;
717 p->pts[(p->npts-1)*2+1] = y;
718 } else {
719 nsvg__addPoint(p, x, y);
720 }
721 }
722
nsvg__lineTo(NSVGparser * p,float x,float y)723 static void nsvg__lineTo(NSVGparser* p, float x, float y)
724 {
725 float px,py, dx,dy;
726 if (p->npts > 0) {
727 px = p->pts[(p->npts-1)*2+0];
728 py = p->pts[(p->npts-1)*2+1];
729 dx = x - px;
730 dy = y - py;
731 nsvg__addPoint(p, px + dx/3.0f, py + dy/3.0f);
732 nsvg__addPoint(p, x - dx/3.0f, y - dy/3.0f);
733 nsvg__addPoint(p, x, y);
734 }
735 }
736
nsvg__cubicBezTo(NSVGparser * p,float cpx1,float cpy1,float cpx2,float cpy2,float x,float y)737 static void nsvg__cubicBezTo(NSVGparser* p, float cpx1, float cpy1, float cpx2, float cpy2, float x, float y)
738 {
739 nsvg__addPoint(p, cpx1, cpy1);
740 nsvg__addPoint(p, cpx2, cpy2);
741 nsvg__addPoint(p, x, y);
742 }
743
nsvg__getAttr(NSVGparser * p)744 static NSVGattrib* nsvg__getAttr(NSVGparser* p)
745 {
746 return &p->attr[p->attrHead];
747 }
748
nsvg__pushAttr(NSVGparser * p)749 static void nsvg__pushAttr(NSVGparser* p)
750 {
751 if (p->attrHead < NSVG_MAX_ATTR-1) {
752 p->attrHead++;
753 memcpy(&p->attr[p->attrHead], &p->attr[p->attrHead-1], sizeof(NSVGattrib));
754 }
755 }
756
nsvg__popAttr(NSVGparser * p)757 static void nsvg__popAttr(NSVGparser* p)
758 {
759 if (p->attrHead > 0)
760 p->attrHead--;
761 }
762
nsvg__actualOrigX(NSVGparser * p)763 static float nsvg__actualOrigX(NSVGparser* p)
764 {
765 return p->viewMinx;
766 }
767
nsvg__actualOrigY(NSVGparser * p)768 static float nsvg__actualOrigY(NSVGparser* p)
769 {
770 return p->viewMiny;
771 }
772
nsvg__actualWidth(NSVGparser * p)773 static float nsvg__actualWidth(NSVGparser* p)
774 {
775 return p->viewWidth;
776 }
777
nsvg__actualHeight(NSVGparser * p)778 static float nsvg__actualHeight(NSVGparser* p)
779 {
780 return p->viewHeight;
781 }
782
nsvg__actualLength(NSVGparser * p)783 static float nsvg__actualLength(NSVGparser* p)
784 {
785 float w = nsvg__actualWidth(p), h = nsvg__actualHeight(p);
786 return sqrtf(w*w + h*h) / sqrtf(2.0f);
787 }
788
nsvg__convertToPixels(NSVGparser * p,NSVGcoordinate c,float orig,float length)789 static float nsvg__convertToPixels(NSVGparser* p, NSVGcoordinate c, float orig, float length)
790 {
791 NSVGattrib* attr = nsvg__getAttr(p);
792 switch (c.units) {
793 case NSVG_UNITS_USER: return c.value;
794 case NSVG_UNITS_PX: return c.value;
795 case NSVG_UNITS_PT: return c.value / 72.0f * p->dpi;
796 case NSVG_UNITS_PC: return c.value / 6.0f * p->dpi;
797 case NSVG_UNITS_MM: return c.value / 25.4f * p->dpi;
798 case NSVG_UNITS_CM: return c.value / 2.54f * p->dpi;
799 case NSVG_UNITS_IN: return c.value * p->dpi;
800 case NSVG_UNITS_EM: return c.value * attr->fontSize;
801 case NSVG_UNITS_EX: return c.value * attr->fontSize * 0.52f; // x-height of Helvetica.
802 case NSVG_UNITS_PERCENT: return orig + c.value / 100.0f * length;
803 default: return c.value;
804 }
805 return c.value;
806 }
807
nsvg__findGradientData(NSVGparser * p,const char * id)808 static NSVGgradientData* nsvg__findGradientData(NSVGparser* p, const char* id)
809 {
810 NSVGgradientData* grad = p->gradients;
811 while (grad) {
812 if (strcmp(grad->id, id) == 0)
813 return grad;
814 grad = grad->next;
815 }
816 return NULL;
817 }
818
nsvg__createGradient(NSVGparser * p,const char * id,const float * localBounds,char * paintType)819 static NSVGgradient* nsvg__createGradient(NSVGparser* p, const char* id, const float* localBounds, char* paintType)
820 {
821 NSVGattrib* attr = nsvg__getAttr(p);
822 NSVGgradientData* data = NULL;
823 NSVGgradientData* ref = NULL;
824 NSVGgradientStop* stops = NULL;
825 NSVGgradient* grad;
826 float ox, oy, sw, sh, sl;
827 int nstops = 0;
828
829 data = nsvg__findGradientData(p, id);
830 if (data == NULL) return NULL;
831
832 // TODO: use ref to fill in all unset values too.
833 ref = data;
834 while (ref != NULL) {
835 if (stops == NULL && ref->stops != NULL) {
836 stops = ref->stops;
837 nstops = ref->nstops;
838 break;
839 }
840 ref = nsvg__findGradientData(p, ref->ref);
841 }
842 if (stops == NULL) return NULL;
843
844 grad = (NSVGgradient*)malloc(sizeof(NSVGgradient) + sizeof(NSVGgradientStop)*(nstops-1));
845 if (grad == NULL) return NULL;
846
847 // The shape width and height.
848 if (data->units == NSVG_OBJECT_SPACE) {
849 ox = localBounds[0];
850 oy = localBounds[1];
851 sw = localBounds[2] - localBounds[0];
852 sh = localBounds[3] - localBounds[1];
853 } else {
854 ox = nsvg__actualOrigX(p);
855 oy = nsvg__actualOrigY(p);
856 sw = nsvg__actualWidth(p);
857 sh = nsvg__actualHeight(p);
858 }
859 sl = sqrtf(sw*sw + sh*sh) / sqrtf(2.0f);
860
861 if (data->type == NSVG_PAINT_LINEAR_GRADIENT) {
862 float x1, y1, x2, y2, dx, dy;
863 x1 = nsvg__convertToPixels(p, data->linear.x1, ox, sw);
864 y1 = nsvg__convertToPixels(p, data->linear.y1, oy, sh);
865 x2 = nsvg__convertToPixels(p, data->linear.x2, ox, sw);
866 y2 = nsvg__convertToPixels(p, data->linear.y2, oy, sh);
867 // Calculate transform aligned to the line
868 dx = x2 - x1;
869 dy = y2 - y1;
870 grad->xform[0] = dy; grad->xform[1] = -dx;
871 grad->xform[2] = dx; grad->xform[3] = dy;
872 grad->xform[4] = x1; grad->xform[5] = y1;
873 } else {
874 float cx, cy, fx, fy, r;
875 cx = nsvg__convertToPixels(p, data->radial.cx, ox, sw);
876 cy = nsvg__convertToPixels(p, data->radial.cy, oy, sh);
877 fx = nsvg__convertToPixels(p, data->radial.fx, ox, sw);
878 fy = nsvg__convertToPixels(p, data->radial.fy, oy, sh);
879 r = nsvg__convertToPixels(p, data->radial.r, 0, sl);
880 // Calculate transform aligned to the circle
881 grad->xform[0] = r; grad->xform[1] = 0;
882 grad->xform[2] = 0; grad->xform[3] = r;
883 grad->xform[4] = cx; grad->xform[5] = cy;
884 grad->fx = fx / r;
885 grad->fy = fy / r;
886 }
887
888 nsvg__xformMultiply(grad->xform, data->xform);
889 nsvg__xformMultiply(grad->xform, attr->xform);
890
891 grad->spread = data->spread;
892 memcpy(grad->stops, stops, nstops*sizeof(NSVGgradientStop));
893 grad->nstops = nstops;
894
895 *paintType = data->type;
896
897 return grad;
898 }
899
nsvg__getAverageScale(float * t)900 static float nsvg__getAverageScale(float* t)
901 {
902 float sx = sqrtf(t[0]*t[0] + t[2]*t[2]);
903 float sy = sqrtf(t[1]*t[1] + t[3]*t[3]);
904 return (sx + sy) * 0.5f;
905 }
906
nsvg__getLocalBounds(float * bounds,NSVGshape * shape,float * xform)907 static void nsvg__getLocalBounds(float* bounds, NSVGshape *shape, float* xform)
908 {
909 NSVGpath* path;
910 float curve[4*2], curveBounds[4];
911 int i, first = 1;
912 for (path = shape->paths; path != NULL; path = path->next) {
913 nsvg__xformPoint(&curve[0], &curve[1], path->pts[0], path->pts[1], xform);
914 for (i = 0; i < path->npts-1; i += 3) {
915 nsvg__xformPoint(&curve[2], &curve[3], path->pts[(i+1)*2], path->pts[(i+1)*2+1], xform);
916 nsvg__xformPoint(&curve[4], &curve[5], path->pts[(i+2)*2], path->pts[(i+2)*2+1], xform);
917 nsvg__xformPoint(&curve[6], &curve[7], path->pts[(i+3)*2], path->pts[(i+3)*2+1], xform);
918 nsvg__curveBounds(curveBounds, curve);
919 if (first) {
920 bounds[0] = curveBounds[0];
921 bounds[1] = curveBounds[1];
922 bounds[2] = curveBounds[2];
923 bounds[3] = curveBounds[3];
924 first = 0;
925 } else {
926 bounds[0] = nsvg__minf(bounds[0], curveBounds[0]);
927 bounds[1] = nsvg__minf(bounds[1], curveBounds[1]);
928 bounds[2] = nsvg__maxf(bounds[2], curveBounds[2]);
929 bounds[3] = nsvg__maxf(bounds[3], curveBounds[3]);
930 }
931 curve[0] = curve[6];
932 curve[1] = curve[7];
933 }
934 }
935 }
936
nsvg__addShape(NSVGparser * p)937 static void nsvg__addShape(NSVGparser* p)
938 {
939 NSVGattrib* attr = nsvg__getAttr(p);
940 float scale = 1.0f;
941 NSVGshape* shape;
942 NSVGpath* path;
943 int i;
944
945 if (p->plist == NULL)
946 return;
947
948 shape = (NSVGshape*)malloc(sizeof(NSVGshape));
949 if (shape == NULL) goto error;
950 memset(shape, 0, sizeof(NSVGshape));
951
952 memcpy(shape->id, attr->id, sizeof shape->id);
953 scale = nsvg__getAverageScale(attr->xform);
954 shape->strokeWidth = attr->strokeWidth * scale;
955 shape->strokeDashOffset = attr->strokeDashOffset * scale;
956 shape->strokeDashCount = (char)attr->strokeDashCount;
957 for (i = 0; i < attr->strokeDashCount; i++)
958 shape->strokeDashArray[i] = attr->strokeDashArray[i] * scale;
959 shape->strokeLineJoin = attr->strokeLineJoin;
960 shape->strokeLineCap = attr->strokeLineCap;
961 shape->miterLimit = attr->miterLimit;
962 shape->fillRule = attr->fillRule;
963 shape->opacity = attr->opacity;
964
965 shape->paths = p->plist;
966 p->plist = NULL;
967
968 // Calculate shape bounds
969 shape->bounds[0] = shape->paths->bounds[0];
970 shape->bounds[1] = shape->paths->bounds[1];
971 shape->bounds[2] = shape->paths->bounds[2];
972 shape->bounds[3] = shape->paths->bounds[3];
973 for (path = shape->paths->next; path != NULL; path = path->next) {
974 shape->bounds[0] = nsvg__minf(shape->bounds[0], path->bounds[0]);
975 shape->bounds[1] = nsvg__minf(shape->bounds[1], path->bounds[1]);
976 shape->bounds[2] = nsvg__maxf(shape->bounds[2], path->bounds[2]);
977 shape->bounds[3] = nsvg__maxf(shape->bounds[3], path->bounds[3]);
978 }
979
980 // Set fill
981 if (attr->hasFill == 0) {
982 shape->fill.type = NSVG_PAINT_NONE;
983 } else if (attr->hasFill == 1) {
984 shape->fill.type = NSVG_PAINT_COLOR;
985 shape->fill.color = attr->fillColor;
986 shape->fill.color |= (unsigned int)(attr->fillOpacity*255) << 24;
987 } else if (attr->hasFill == 2) {
988 float inv[6], localBounds[4];
989 nsvg__xformInverse(inv, attr->xform);
990 nsvg__getLocalBounds(localBounds, shape, inv);
991 shape->fill.gradient = nsvg__createGradient(p, attr->fillGradient, localBounds, &shape->fill.type);
992 if (shape->fill.gradient == NULL) {
993 shape->fill.type = NSVG_PAINT_NONE;
994 }
995 }
996
997 // Set stroke
998 if (attr->hasStroke == 0) {
999 shape->stroke.type = NSVG_PAINT_NONE;
1000 } else if (attr->hasStroke == 1) {
1001 shape->stroke.type = NSVG_PAINT_COLOR;
1002 shape->stroke.color = attr->strokeColor;
1003 shape->stroke.color |= (unsigned int)(attr->strokeOpacity*255) << 24;
1004 } else if (attr->hasStroke == 2) {
1005 float inv[6], localBounds[4];
1006 nsvg__xformInverse(inv, attr->xform);
1007 nsvg__getLocalBounds(localBounds, shape, inv);
1008 shape->stroke.gradient = nsvg__createGradient(p, attr->strokeGradient, localBounds, &shape->stroke.type);
1009 if (shape->stroke.gradient == NULL)
1010 shape->stroke.type = NSVG_PAINT_NONE;
1011 }
1012
1013 // Set flags
1014 shape->flags = (attr->visible ? NSVG_FLAGS_VISIBLE : 0x00);
1015
1016 // Add to tail
1017 if (p->image->shapes == NULL)
1018 p->image->shapes = shape;
1019 else
1020 p->shapesTail->next = shape;
1021 p->shapesTail = shape;
1022
1023 return;
1024
1025 error:
1026 if (shape) free(shape);
1027 }
1028
nsvg__addPath(NSVGparser * p,char closed)1029 static void nsvg__addPath(NSVGparser* p, char closed)
1030 {
1031 NSVGattrib* attr = nsvg__getAttr(p);
1032 NSVGpath* path = NULL;
1033 float bounds[4];
1034 float* curve;
1035 int i;
1036
1037 if (p->npts < 4)
1038 return;
1039
1040 if (closed)
1041 nsvg__lineTo(p, p->pts[0], p->pts[1]);
1042
1043 path = (NSVGpath*)malloc(sizeof(NSVGpath));
1044 if (path == NULL) goto error;
1045 memset(path, 0, sizeof(NSVGpath));
1046
1047 path->pts = (float*)malloc(p->npts*2*sizeof(float));
1048 if (path->pts == NULL) goto error;
1049 path->closed = closed;
1050 path->npts = p->npts;
1051
1052 // Transform path.
1053 for (i = 0; i < p->npts; ++i)
1054 nsvg__xformPoint(&path->pts[i*2], &path->pts[i*2+1], p->pts[i*2], p->pts[i*2+1], attr->xform);
1055
1056 // Find bounds
1057 for (i = 0; i < path->npts-1; i += 3) {
1058 curve = &path->pts[i*2];
1059 nsvg__curveBounds(bounds, curve);
1060 if (i == 0) {
1061 path->bounds[0] = bounds[0];
1062 path->bounds[1] = bounds[1];
1063 path->bounds[2] = bounds[2];
1064 path->bounds[3] = bounds[3];
1065 } else {
1066 path->bounds[0] = nsvg__minf(path->bounds[0], bounds[0]);
1067 path->bounds[1] = nsvg__minf(path->bounds[1], bounds[1]);
1068 path->bounds[2] = nsvg__maxf(path->bounds[2], bounds[2]);
1069 path->bounds[3] = nsvg__maxf(path->bounds[3], bounds[3]);
1070 }
1071 }
1072
1073 path->next = p->plist;
1074 p->plist = path;
1075
1076 return;
1077
1078 error:
1079 if (path != NULL) {
1080 if (path->pts != NULL) free(path->pts);
1081 free(path);
1082 }
1083 }
1084
1085 // We roll our own string to float because the std library one uses locale and messes things up.
nsvg__atof(const char * s)1086 static double nsvg__atof(const char* s)
1087 {
1088 char* cur = (char*)s;
1089 char* end = NULL;
1090 double res = 0.0, sign = 1.0;
1091 long long intPart = 0, fracPart = 0;
1092 char hasIntPart = 0, hasFracPart = 0;
1093
1094 // Parse optional sign
1095 if (*cur == '+') {
1096 cur++;
1097 } else if (*cur == '-') {
1098 sign = -1;
1099 cur++;
1100 }
1101
1102 // Parse integer part
1103 if (nsvg__isdigit(*cur)) {
1104 // Parse digit sequence
1105 intPart = (double)strtoll(cur, &end, 10);
1106 if (cur != end) {
1107 res = (double)intPart;
1108 hasIntPart = 1;
1109 cur = end;
1110 }
1111 }
1112
1113 // Parse fractional part.
1114 if (*cur == '.') {
1115 cur++; // Skip '.'
1116 if (nsvg__isdigit(*cur)) {
1117 // Parse digit sequence
1118 fracPart = strtoll(cur, &end, 10);
1119 if (cur != end) {
1120 res += (double)fracPart / pow(10.0, (double)(end - cur));
1121 hasFracPart = 1;
1122 cur = end;
1123 }
1124 }
1125 }
1126
1127 // A valid number should have integer or fractional part.
1128 if (!hasIntPart && !hasFracPart)
1129 return 0.0;
1130
1131 // Parse optional exponent
1132 if (*cur == 'e' || *cur == 'E') {
1133 int expPart = 0;
1134 cur++; // skip 'E'
1135 expPart = strtol(cur, &end, 10); // Parse digit sequence with sign
1136 if (cur != end) {
1137 res *= pow(10.0, (double)expPart);
1138 }
1139 }
1140
1141 return res * sign;
1142 }
1143
1144
nsvg__parseNumber(const char * s,char * it,const int size)1145 static const char* nsvg__parseNumber(const char* s, char* it, const int size)
1146 {
1147 const int last = size-1;
1148 int i = 0;
1149
1150 // sign
1151 if (*s == '-' || *s == '+') {
1152 if (i < last) it[i++] = *s;
1153 s++;
1154 }
1155 // integer part
1156 while (*s && nsvg__isdigit(*s)) {
1157 if (i < last) it[i++] = *s;
1158 s++;
1159 }
1160 if (*s == '.') {
1161 // decimal point
1162 if (i < last) it[i++] = *s;
1163 s++;
1164 // fraction part
1165 while (*s && nsvg__isdigit(*s)) {
1166 if (i < last) it[i++] = *s;
1167 s++;
1168 }
1169 }
1170 // exponent
1171 if (*s == 'e' || *s == 'E') {
1172 if (i < last) it[i++] = *s;
1173 s++;
1174 if (*s == '-' || *s == '+') {
1175 if (i < last) it[i++] = *s;
1176 s++;
1177 }
1178 while (*s && nsvg__isdigit(*s)) {
1179 if (i < last) it[i++] = *s;
1180 s++;
1181 }
1182 }
1183 it[i] = '\0';
1184
1185 return s;
1186 }
1187
nsvg__getNextPathItem(const char * s,char * it)1188 static const char* nsvg__getNextPathItem(const char* s, char* it)
1189 {
1190 it[0] = '\0';
1191 // Skip white spaces and commas
1192 while (*s && (nsvg__isspace(*s) || *s == ',')) s++;
1193 if (!*s) return s;
1194 if (*s == '-' || *s == '+' || *s == '.' || nsvg__isdigit(*s)) {
1195 s = nsvg__parseNumber(s, it, 64);
1196 } else {
1197 // Parse command
1198 it[0] = *s++;
1199 it[1] = '\0';
1200 return s;
1201 }
1202
1203 return s;
1204 }
1205
nsvg__parseColorHex(const char * str)1206 static unsigned int nsvg__parseColorHex(const char* str)
1207 {
1208 unsigned int c = 0, r = 0, g = 0, b = 0;
1209 int n = 0;
1210 str++; // skip #
1211 // Calculate number of characters.
1212 while(str[n] && !nsvg__isspace(str[n]))
1213 n++;
1214 if (n == 6) {
1215 sscanf(str, "%x", &c);
1216 } else if (n == 3) {
1217 sscanf(str, "%x", &c);
1218 c = (c&0xf) | ((c&0xf0) << 4) | ((c&0xf00) << 8);
1219 c |= c<<4;
1220 }
1221 r = (c >> 16) & 0xff;
1222 g = (c >> 8) & 0xff;
1223 b = c & 0xff;
1224 return NSVG_RGB(r,g,b);
1225 }
1226
nsvg__parseColorRGB(const char * str)1227 static unsigned int nsvg__parseColorRGB(const char* str)
1228 {
1229 int r = -1, g = -1, b = -1;
1230 char s1[32]="", s2[32]="";
1231 sscanf(str + 4, "%d%[%%, \t]%d%[%%, \t]%d", &r, s1, &g, s2, &b);
1232 if (strchr(s1, '%')) {
1233 return NSVG_RGB((r*255)/100,(g*255)/100,(b*255)/100);
1234 } else {
1235 return NSVG_RGB(r,g,b);
1236 }
1237 }
1238
1239 typedef struct NSVGNamedColor {
1240 const char* name;
1241 unsigned int color;
1242 } NSVGNamedColor;
1243
1244 NSVGNamedColor nsvg__colors[] = {
1245
1246 { "red", NSVG_RGB(255, 0, 0) },
1247 { "green", NSVG_RGB( 0, 128, 0) },
1248 { "blue", NSVG_RGB( 0, 0, 255) },
1249 { "yellow", NSVG_RGB(255, 255, 0) },
1250 { "cyan", NSVG_RGB( 0, 255, 255) },
1251 { "magenta", NSVG_RGB(255, 0, 255) },
1252 { "black", NSVG_RGB( 0, 0, 0) },
1253 { "grey", NSVG_RGB(128, 128, 128) },
1254 { "gray", NSVG_RGB(128, 128, 128) },
1255 { "white", NSVG_RGB(255, 255, 255) },
1256
1257 #ifdef NANOSVG_ALL_COLOR_KEYWORDS
1258 { "aliceblue", NSVG_RGB(240, 248, 255) },
1259 { "antiquewhite", NSVG_RGB(250, 235, 215) },
1260 { "aqua", NSVG_RGB( 0, 255, 255) },
1261 { "aquamarine", NSVG_RGB(127, 255, 212) },
1262 { "azure", NSVG_RGB(240, 255, 255) },
1263 { "beige", NSVG_RGB(245, 245, 220) },
1264 { "bisque", NSVG_RGB(255, 228, 196) },
1265 { "blanchedalmond", NSVG_RGB(255, 235, 205) },
1266 { "blueviolet", NSVG_RGB(138, 43, 226) },
1267 { "brown", NSVG_RGB(165, 42, 42) },
1268 { "burlywood", NSVG_RGB(222, 184, 135) },
1269 { "cadetblue", NSVG_RGB( 95, 158, 160) },
1270 { "chartreuse", NSVG_RGB(127, 255, 0) },
1271 { "chocolate", NSVG_RGB(210, 105, 30) },
1272 { "coral", NSVG_RGB(255, 127, 80) },
1273 { "cornflowerblue", NSVG_RGB(100, 149, 237) },
1274 { "cornsilk", NSVG_RGB(255, 248, 220) },
1275 { "crimson", NSVG_RGB(220, 20, 60) },
1276 { "darkblue", NSVG_RGB( 0, 0, 139) },
1277 { "darkcyan", NSVG_RGB( 0, 139, 139) },
1278 { "darkgoldenrod", NSVG_RGB(184, 134, 11) },
1279 { "darkgray", NSVG_RGB(169, 169, 169) },
1280 { "darkgreen", NSVG_RGB( 0, 100, 0) },
1281 { "darkgrey", NSVG_RGB(169, 169, 169) },
1282 { "darkkhaki", NSVG_RGB(189, 183, 107) },
1283 { "darkmagenta", NSVG_RGB(139, 0, 139) },
1284 { "darkolivegreen", NSVG_RGB( 85, 107, 47) },
1285 { "darkorange", NSVG_RGB(255, 140, 0) },
1286 { "darkorchid", NSVG_RGB(153, 50, 204) },
1287 { "darkred", NSVG_RGB(139, 0, 0) },
1288 { "darksalmon", NSVG_RGB(233, 150, 122) },
1289 { "darkseagreen", NSVG_RGB(143, 188, 143) },
1290 { "darkslateblue", NSVG_RGB( 72, 61, 139) },
1291 { "darkslategray", NSVG_RGB( 47, 79, 79) },
1292 { "darkslategrey", NSVG_RGB( 47, 79, 79) },
1293 { "darkturquoise", NSVG_RGB( 0, 206, 209) },
1294 { "darkviolet", NSVG_RGB(148, 0, 211) },
1295 { "deeppink", NSVG_RGB(255, 20, 147) },
1296 { "deepskyblue", NSVG_RGB( 0, 191, 255) },
1297 { "dimgray", NSVG_RGB(105, 105, 105) },
1298 { "dimgrey", NSVG_RGB(105, 105, 105) },
1299 { "dodgerblue", NSVG_RGB( 30, 144, 255) },
1300 { "firebrick", NSVG_RGB(178, 34, 34) },
1301 { "floralwhite", NSVG_RGB(255, 250, 240) },
1302 { "forestgreen", NSVG_RGB( 34, 139, 34) },
1303 { "fuchsia", NSVG_RGB(255, 0, 255) },
1304 { "gainsboro", NSVG_RGB(220, 220, 220) },
1305 { "ghostwhite", NSVG_RGB(248, 248, 255) },
1306 { "gold", NSVG_RGB(255, 215, 0) },
1307 { "goldenrod", NSVG_RGB(218, 165, 32) },
1308 { "greenyellow", NSVG_RGB(173, 255, 47) },
1309 { "honeydew", NSVG_RGB(240, 255, 240) },
1310 { "hotpink", NSVG_RGB(255, 105, 180) },
1311 { "indianred", NSVG_RGB(205, 92, 92) },
1312 { "indigo", NSVG_RGB( 75, 0, 130) },
1313 { "ivory", NSVG_RGB(255, 255, 240) },
1314 { "khaki", NSVG_RGB(240, 230, 140) },
1315 { "lavender", NSVG_RGB(230, 230, 250) },
1316 { "lavenderblush", NSVG_RGB(255, 240, 245) },
1317 { "lawngreen", NSVG_RGB(124, 252, 0) },
1318 { "lemonchiffon", NSVG_RGB(255, 250, 205) },
1319 { "lightblue", NSVG_RGB(173, 216, 230) },
1320 { "lightcoral", NSVG_RGB(240, 128, 128) },
1321 { "lightcyan", NSVG_RGB(224, 255, 255) },
1322 { "lightgoldenrodyellow", NSVG_RGB(250, 250, 210) },
1323 { "lightgray", NSVG_RGB(211, 211, 211) },
1324 { "lightgreen", NSVG_RGB(144, 238, 144) },
1325 { "lightgrey", NSVG_RGB(211, 211, 211) },
1326 { "lightpink", NSVG_RGB(255, 182, 193) },
1327 { "lightsalmon", NSVG_RGB(255, 160, 122) },
1328 { "lightseagreen", NSVG_RGB( 32, 178, 170) },
1329 { "lightskyblue", NSVG_RGB(135, 206, 250) },
1330 { "lightslategray", NSVG_RGB(119, 136, 153) },
1331 { "lightslategrey", NSVG_RGB(119, 136, 153) },
1332 { "lightsteelblue", NSVG_RGB(176, 196, 222) },
1333 { "lightyellow", NSVG_RGB(255, 255, 224) },
1334 { "lime", NSVG_RGB( 0, 255, 0) },
1335 { "limegreen", NSVG_RGB( 50, 205, 50) },
1336 { "linen", NSVG_RGB(250, 240, 230) },
1337 { "maroon", NSVG_RGB(128, 0, 0) },
1338 { "mediumaquamarine", NSVG_RGB(102, 205, 170) },
1339 { "mediumblue", NSVG_RGB( 0, 0, 205) },
1340 { "mediumorchid", NSVG_RGB(186, 85, 211) },
1341 { "mediumpurple", NSVG_RGB(147, 112, 219) },
1342 { "mediumseagreen", NSVG_RGB( 60, 179, 113) },
1343 { "mediumslateblue", NSVG_RGB(123, 104, 238) },
1344 { "mediumspringgreen", NSVG_RGB( 0, 250, 154) },
1345 { "mediumturquoise", NSVG_RGB( 72, 209, 204) },
1346 { "mediumvioletred", NSVG_RGB(199, 21, 133) },
1347 { "midnightblue", NSVG_RGB( 25, 25, 112) },
1348 { "mintcream", NSVG_RGB(245, 255, 250) },
1349 { "mistyrose", NSVG_RGB(255, 228, 225) },
1350 { "moccasin", NSVG_RGB(255, 228, 181) },
1351 { "navajowhite", NSVG_RGB(255, 222, 173) },
1352 { "navy", NSVG_RGB( 0, 0, 128) },
1353 { "oldlace", NSVG_RGB(253, 245, 230) },
1354 { "olive", NSVG_RGB(128, 128, 0) },
1355 { "olivedrab", NSVG_RGB(107, 142, 35) },
1356 { "orange", NSVG_RGB(255, 165, 0) },
1357 { "orangered", NSVG_RGB(255, 69, 0) },
1358 { "orchid", NSVG_RGB(218, 112, 214) },
1359 { "palegoldenrod", NSVG_RGB(238, 232, 170) },
1360 { "palegreen", NSVG_RGB(152, 251, 152) },
1361 { "paleturquoise", NSVG_RGB(175, 238, 238) },
1362 { "palevioletred", NSVG_RGB(219, 112, 147) },
1363 { "papayawhip", NSVG_RGB(255, 239, 213) },
1364 { "peachpuff", NSVG_RGB(255, 218, 185) },
1365 { "peru", NSVG_RGB(205, 133, 63) },
1366 { "pink", NSVG_RGB(255, 192, 203) },
1367 { "plum", NSVG_RGB(221, 160, 221) },
1368 { "powderblue", NSVG_RGB(176, 224, 230) },
1369 { "purple", NSVG_RGB(128, 0, 128) },
1370 { "rosybrown", NSVG_RGB(188, 143, 143) },
1371 { "royalblue", NSVG_RGB( 65, 105, 225) },
1372 { "saddlebrown", NSVG_RGB(139, 69, 19) },
1373 { "salmon", NSVG_RGB(250, 128, 114) },
1374 { "sandybrown", NSVG_RGB(244, 164, 96) },
1375 { "seagreen", NSVG_RGB( 46, 139, 87) },
1376 { "seashell", NSVG_RGB(255, 245, 238) },
1377 { "sienna", NSVG_RGB(160, 82, 45) },
1378 { "silver", NSVG_RGB(192, 192, 192) },
1379 { "skyblue", NSVG_RGB(135, 206, 235) },
1380 { "slateblue", NSVG_RGB(106, 90, 205) },
1381 { "slategray", NSVG_RGB(112, 128, 144) },
1382 { "slategrey", NSVG_RGB(112, 128, 144) },
1383 { "snow", NSVG_RGB(255, 250, 250) },
1384 { "springgreen", NSVG_RGB( 0, 255, 127) },
1385 { "steelblue", NSVG_RGB( 70, 130, 180) },
1386 { "tan", NSVG_RGB(210, 180, 140) },
1387 { "teal", NSVG_RGB( 0, 128, 128) },
1388 { "thistle", NSVG_RGB(216, 191, 216) },
1389 { "tomato", NSVG_RGB(255, 99, 71) },
1390 { "turquoise", NSVG_RGB( 64, 224, 208) },
1391 { "violet", NSVG_RGB(238, 130, 238) },
1392 { "wheat", NSVG_RGB(245, 222, 179) },
1393 { "whitesmoke", NSVG_RGB(245, 245, 245) },
1394 { "yellowgreen", NSVG_RGB(154, 205, 50) },
1395 #endif
1396 };
1397
nsvg__parseColorName(const char * str)1398 static unsigned int nsvg__parseColorName(const char* str)
1399 {
1400 int i, ncolors = sizeof(nsvg__colors) / sizeof(NSVGNamedColor);
1401
1402 for (i = 0; i < ncolors; i++) {
1403 if (strcmp(nsvg__colors[i].name, str) == 0) {
1404 return nsvg__colors[i].color;
1405 }
1406 }
1407
1408 return NSVG_RGB(128, 128, 128);
1409 }
1410
nsvg__parseColor(const char * str)1411 static unsigned int nsvg__parseColor(const char* str)
1412 {
1413 size_t len = 0;
1414 while(*str == ' ') ++str;
1415 len = strlen(str);
1416 if (len >= 1 && *str == '#')
1417 return nsvg__parseColorHex(str);
1418 else if (len >= 4 && str[0] == 'r' && str[1] == 'g' && str[2] == 'b' && str[3] == '(')
1419 return nsvg__parseColorRGB(str);
1420 return nsvg__parseColorName(str);
1421 }
1422
nsvg__parseOpacity(const char * str)1423 static float nsvg__parseOpacity(const char* str)
1424 {
1425 float val = nsvg__atof(str);
1426 if (val < 0.0f) val = 0.0f;
1427 if (val > 1.0f) val = 1.0f;
1428 return val;
1429 }
1430
nsvg__parseMiterLimit(const char * str)1431 static float nsvg__parseMiterLimit(const char* str)
1432 {
1433 float val = nsvg__atof(str);
1434 if (val < 0.0f) val = 0.0f;
1435 return val;
1436 }
1437
nsvg__parseUnits(const char * units)1438 static int nsvg__parseUnits(const char* units)
1439 {
1440 if (units[0] == 'p' && units[1] == 'x')
1441 return NSVG_UNITS_PX;
1442 else if (units[0] == 'p' && units[1] == 't')
1443 return NSVG_UNITS_PT;
1444 else if (units[0] == 'p' && units[1] == 'c')
1445 return NSVG_UNITS_PC;
1446 else if (units[0] == 'm' && units[1] == 'm')
1447 return NSVG_UNITS_MM;
1448 else if (units[0] == 'c' && units[1] == 'm')
1449 return NSVG_UNITS_CM;
1450 else if (units[0] == 'i' && units[1] == 'n')
1451 return NSVG_UNITS_IN;
1452 else if (units[0] == '%')
1453 return NSVG_UNITS_PERCENT;
1454 else if (units[0] == 'e' && units[1] == 'm')
1455 return NSVG_UNITS_EM;
1456 else if (units[0] == 'e' && units[1] == 'x')
1457 return NSVG_UNITS_EX;
1458 return NSVG_UNITS_USER;
1459 }
1460
nsvg__parseCoordinateRaw(const char * str)1461 static NSVGcoordinate nsvg__parseCoordinateRaw(const char* str)
1462 {
1463 NSVGcoordinate coord = {0, NSVG_UNITS_USER};
1464 char buf[64];
1465 coord.units = nsvg__parseUnits(nsvg__parseNumber(str, buf, 64));
1466 coord.value = nsvg__atof(buf);
1467 return coord;
1468 }
1469
nsvg__coord(float v,int units)1470 static NSVGcoordinate nsvg__coord(float v, int units)
1471 {
1472 NSVGcoordinate coord = {v, units};
1473 return coord;
1474 }
1475
nsvg__parseCoordinate(NSVGparser * p,const char * str,float orig,float length)1476 static float nsvg__parseCoordinate(NSVGparser* p, const char* str, float orig, float length)
1477 {
1478 NSVGcoordinate coord = nsvg__parseCoordinateRaw(str);
1479 return nsvg__convertToPixels(p, coord, orig, length);
1480 }
1481
nsvg__parseTransformArgs(const char * str,float * args,int maxNa,int * na)1482 static int nsvg__parseTransformArgs(const char* str, float* args, int maxNa, int* na)
1483 {
1484 const char* end;
1485 const char* ptr;
1486 char it[64];
1487
1488 *na = 0;
1489 ptr = str;
1490 while (*ptr && *ptr != '(') ++ptr;
1491 if (*ptr == 0)
1492 return 1;
1493 end = ptr;
1494 while (*end && *end != ')') ++end;
1495 if (*end == 0)
1496 return 1;
1497
1498 while (ptr < end) {
1499 if (*ptr == '-' || *ptr == '+' || *ptr == '.' || nsvg__isdigit(*ptr)) {
1500 if (*na >= maxNa) return 0;
1501 ptr = nsvg__parseNumber(ptr, it, 64);
1502 args[(*na)++] = (float)nsvg__atof(it);
1503 } else {
1504 ++ptr;
1505 }
1506 }
1507 return (int)(end - str);
1508 }
1509
1510
nsvg__parseMatrix(float * xform,const char * str)1511 static int nsvg__parseMatrix(float* xform, const char* str)
1512 {
1513 float t[6];
1514 int na = 0;
1515 int len = nsvg__parseTransformArgs(str, t, 6, &na);
1516 if (na != 6) return len;
1517 memcpy(xform, t, sizeof(float)*6);
1518 return len;
1519 }
1520
nsvg__parseTranslate(float * xform,const char * str)1521 static int nsvg__parseTranslate(float* xform, const char* str)
1522 {
1523 float args[2];
1524 float t[6];
1525 int na = 0;
1526 int len = nsvg__parseTransformArgs(str, args, 2, &na);
1527 if (na == 1) args[1] = 0.0;
1528
1529 nsvg__xformSetTranslation(t, args[0], args[1]);
1530 memcpy(xform, t, sizeof(float)*6);
1531 return len;
1532 }
1533
nsvg__parseScale(float * xform,const char * str)1534 static int nsvg__parseScale(float* xform, const char* str)
1535 {
1536 float args[2];
1537 int na = 0;
1538 float t[6];
1539 int len = nsvg__parseTransformArgs(str, args, 2, &na);
1540 if (na == 1) args[1] = args[0];
1541 nsvg__xformSetScale(t, args[0], args[1]);
1542 memcpy(xform, t, sizeof(float)*6);
1543 return len;
1544 }
1545
nsvg__parseSkewX(float * xform,const char * str)1546 static int nsvg__parseSkewX(float* xform, const char* str)
1547 {
1548 float args[1];
1549 int na = 0;
1550 float t[6];
1551 int len = nsvg__parseTransformArgs(str, args, 1, &na);
1552 nsvg__xformSetSkewX(t, args[0]/180.0f*NSVG_PI);
1553 memcpy(xform, t, sizeof(float)*6);
1554 return len;
1555 }
1556
nsvg__parseSkewY(float * xform,const char * str)1557 static int nsvg__parseSkewY(float* xform, const char* str)
1558 {
1559 float args[1];
1560 int na = 0;
1561 float t[6];
1562 int len = nsvg__parseTransformArgs(str, args, 1, &na);
1563 nsvg__xformSetSkewY(t, args[0]/180.0f*NSVG_PI);
1564 memcpy(xform, t, sizeof(float)*6);
1565 return len;
1566 }
1567
nsvg__parseRotate(float * xform,const char * str)1568 static int nsvg__parseRotate(float* xform, const char* str)
1569 {
1570 float args[3];
1571 int na = 0;
1572 float m[6];
1573 float t[6];
1574 int len = nsvg__parseTransformArgs(str, args, 3, &na);
1575 if (na == 1)
1576 args[1] = args[2] = 0.0f;
1577 nsvg__xformIdentity(m);
1578
1579 if (na > 1) {
1580 nsvg__xformSetTranslation(t, -args[1], -args[2]);
1581 nsvg__xformMultiply(m, t);
1582 }
1583
1584 nsvg__xformSetRotation(t, args[0]/180.0f*NSVG_PI);
1585 nsvg__xformMultiply(m, t);
1586
1587 if (na > 1) {
1588 nsvg__xformSetTranslation(t, args[1], args[2]);
1589 nsvg__xformMultiply(m, t);
1590 }
1591
1592 memcpy(xform, m, sizeof(float)*6);
1593
1594 return len;
1595 }
1596
nsvg__parseTransform(float * xform,const char * str)1597 static void nsvg__parseTransform(float* xform, const char* str)
1598 {
1599 float t[6];
1600 nsvg__xformIdentity(xform);
1601 while (*str)
1602 {
1603 if (strncmp(str, "matrix", 6) == 0)
1604 str += nsvg__parseMatrix(t, str);
1605 else if (strncmp(str, "translate", 9) == 0)
1606 str += nsvg__parseTranslate(t, str);
1607 else if (strncmp(str, "scale", 5) == 0)
1608 str += nsvg__parseScale(t, str);
1609 else if (strncmp(str, "rotate", 6) == 0)
1610 str += nsvg__parseRotate(t, str);
1611 else if (strncmp(str, "skewX", 5) == 0)
1612 str += nsvg__parseSkewX(t, str);
1613 else if (strncmp(str, "skewY", 5) == 0)
1614 str += nsvg__parseSkewY(t, str);
1615 else{
1616 ++str;
1617 continue;
1618 }
1619
1620 nsvg__xformPremultiply(xform, t);
1621 }
1622 }
1623
nsvg__parseUrl(char * id,const char * str)1624 static void nsvg__parseUrl(char* id, const char* str)
1625 {
1626 int i = 0;
1627 str += 4; // "url(";
1628 if (*str == '#')
1629 str++;
1630 while (i < 63 && *str != ')') {
1631 id[i] = *str++;
1632 i++;
1633 }
1634 id[i] = '\0';
1635 }
1636
nsvg__parseLineCap(const char * str)1637 static char nsvg__parseLineCap(const char* str)
1638 {
1639 if (strcmp(str, "butt") == 0)
1640 return NSVG_CAP_BUTT;
1641 else if (strcmp(str, "round") == 0)
1642 return NSVG_CAP_ROUND;
1643 else if (strcmp(str, "square") == 0)
1644 return NSVG_CAP_SQUARE;
1645 // TODO: handle inherit.
1646 return NSVG_CAP_BUTT;
1647 }
1648
nsvg__parseLineJoin(const char * str)1649 static char nsvg__parseLineJoin(const char* str)
1650 {
1651 if (strcmp(str, "miter") == 0)
1652 return NSVG_JOIN_MITER;
1653 else if (strcmp(str, "round") == 0)
1654 return NSVG_JOIN_ROUND;
1655 else if (strcmp(str, "bevel") == 0)
1656 return NSVG_JOIN_BEVEL;
1657 // TODO: handle inherit.
1658 return NSVG_JOIN_MITER;
1659 }
1660
nsvg__parseFillRule(const char * str)1661 static char nsvg__parseFillRule(const char* str)
1662 {
1663 if (strcmp(str, "nonzero") == 0)
1664 return NSVG_FILLRULE_NONZERO;
1665 else if (strcmp(str, "evenodd") == 0)
1666 return NSVG_FILLRULE_EVENODD;
1667 // TODO: handle inherit.
1668 return NSVG_FILLRULE_NONZERO;
1669 }
1670
nsvg__getNextDashItem(const char * s,char * it)1671 static const char* nsvg__getNextDashItem(const char* s, char* it)
1672 {
1673 int n = 0;
1674 it[0] = '\0';
1675 // Skip white spaces and commas
1676 while (*s && (nsvg__isspace(*s) || *s == ',')) s++;
1677 // Advance until whitespace, comma or end.
1678 while (*s && (!nsvg__isspace(*s) && *s != ',')) {
1679 if (n < 63)
1680 it[n++] = *s;
1681 s++;
1682 }
1683 it[n++] = '\0';
1684 return s;
1685 }
1686
nsvg__parseStrokeDashArray(NSVGparser * p,const char * str,float * strokeDashArray)1687 static int nsvg__parseStrokeDashArray(NSVGparser* p, const char* str, float* strokeDashArray)
1688 {
1689 char item[64];
1690 int count = 0, i;
1691 float sum = 0.0f;
1692
1693 // Handle "none"
1694 if (str[0] == 'n')
1695 return 0;
1696
1697 // Parse dashes
1698 while (*str) {
1699 str = nsvg__getNextDashItem(str, item);
1700 if (!*item) break;
1701 if (count < NSVG_MAX_DASHES)
1702 strokeDashArray[count++] = fabsf(nsvg__parseCoordinate(p, item, 0.0f, nsvg__actualLength(p)));
1703 }
1704
1705 for (i = 0; i < count; i++)
1706 sum += strokeDashArray[i];
1707 if (sum <= 1e-6f)
1708 count = 0;
1709
1710 return count;
1711 }
1712
1713 static void nsvg__parseStyle(NSVGparser* p, const char* str);
1714
nsvg__parseAttr(NSVGparser * p,const char * name,const char * value)1715 static int nsvg__parseAttr(NSVGparser* p, const char* name, const char* value)
1716 {
1717 float xform[6];
1718 NSVGattrib* attr = nsvg__getAttr(p);
1719 if (!attr) return 0;
1720
1721 if (strcmp(name, "style") == 0) {
1722 nsvg__parseStyle(p, value);
1723 } else if (strcmp(name, "display") == 0) {
1724 if (strcmp(value, "none") == 0)
1725 attr->visible = 0;
1726 // Don't reset ->visible on display:inline, one display:none hides the whole subtree
1727
1728 } else if (strcmp(name, "fill") == 0) {
1729 if (strcmp(value, "none") == 0) {
1730 attr->hasFill = 0;
1731 } else if (strncmp(value, "url(", 4) == 0) {
1732 attr->hasFill = 2;
1733 nsvg__parseUrl(attr->fillGradient, value);
1734 } else {
1735 attr->hasFill = 1;
1736 attr->fillColor = nsvg__parseColor(value);
1737 }
1738 } else if (strcmp(name, "opacity") == 0) {
1739 attr->opacity = nsvg__parseOpacity(value);
1740 } else if (strcmp(name, "fill-opacity") == 0) {
1741 attr->fillOpacity = nsvg__parseOpacity(value);
1742 } else if (strcmp(name, "stroke") == 0) {
1743 if (strcmp(value, "none") == 0) {
1744 attr->hasStroke = 0;
1745 } else if (strncmp(value, "url(", 4) == 0) {
1746 attr->hasStroke = 2;
1747 nsvg__parseUrl(attr->strokeGradient, value);
1748 } else {
1749 attr->hasStroke = 1;
1750 attr->strokeColor = nsvg__parseColor(value);
1751 }
1752 } else if (strcmp(name, "stroke-width") == 0) {
1753 attr->strokeWidth = nsvg__parseCoordinate(p, value, 0.0f, nsvg__actualLength(p));
1754 } else if (strcmp(name, "stroke-dasharray") == 0) {
1755 attr->strokeDashCount = nsvg__parseStrokeDashArray(p, value, attr->strokeDashArray);
1756 } else if (strcmp(name, "stroke-dashoffset") == 0) {
1757 attr->strokeDashOffset = nsvg__parseCoordinate(p, value, 0.0f, nsvg__actualLength(p));
1758 } else if (strcmp(name, "stroke-opacity") == 0) {
1759 attr->strokeOpacity = nsvg__parseOpacity(value);
1760 } else if (strcmp(name, "stroke-linecap") == 0) {
1761 attr->strokeLineCap = nsvg__parseLineCap(value);
1762 } else if (strcmp(name, "stroke-linejoin") == 0) {
1763 attr->strokeLineJoin = nsvg__parseLineJoin(value);
1764 } else if (strcmp(name, "stroke-miterlimit") == 0) {
1765 attr->miterLimit = nsvg__parseMiterLimit(value);
1766 } else if (strcmp(name, "fill-rule") == 0) {
1767 attr->fillRule = nsvg__parseFillRule(value);
1768 } else if (strcmp(name, "font-size") == 0) {
1769 attr->fontSize = nsvg__parseCoordinate(p, value, 0.0f, nsvg__actualLength(p));
1770 } else if (strcmp(name, "transform") == 0) {
1771 nsvg__parseTransform(xform, value);
1772 nsvg__xformPremultiply(attr->xform, xform);
1773 } else if (strcmp(name, "stop-color") == 0) {
1774 attr->stopColor = nsvg__parseColor(value);
1775 } else if (strcmp(name, "stop-opacity") == 0) {
1776 attr->stopOpacity = nsvg__parseOpacity(value);
1777 } else if (strcmp(name, "offset") == 0) {
1778 attr->stopOffset = nsvg__parseCoordinate(p, value, 0.0f, 1.0f);
1779 } else if (strcmp(name, "id") == 0) {
1780 strncpy(attr->id, value, 63);
1781 attr->id[63] = '\0';
1782 } else {
1783 return 0;
1784 }
1785 return 1;
1786 }
1787
nsvg__parseNameValue(NSVGparser * p,const char * start,const char * end)1788 static int nsvg__parseNameValue(NSVGparser* p, const char* start, const char* end)
1789 {
1790 const char* str;
1791 const char* val;
1792 char name[512];
1793 char value[512];
1794 int n;
1795
1796 str = start;
1797 while (str < end && *str != ':') ++str;
1798
1799 val = str;
1800
1801 // Right Trim
1802 while (str > start && (*str == ':' || nsvg__isspace(*str))) --str;
1803 ++str;
1804
1805 n = (int)(str - start);
1806 if (n > 511) n = 511;
1807 if (n) memcpy(name, start, n);
1808 name[n] = 0;
1809
1810 while (val < end && (*val == ':' || nsvg__isspace(*val))) ++val;
1811
1812 n = (int)(end - val);
1813 if (n > 511) n = 511;
1814 if (n) memcpy(value, val, n);
1815 value[n] = 0;
1816
1817 return nsvg__parseAttr(p, name, value);
1818 }
1819
nsvg__parseStyle(NSVGparser * p,const char * str)1820 static void nsvg__parseStyle(NSVGparser* p, const char* str)
1821 {
1822 const char* start;
1823 const char* end;
1824
1825 while (*str) {
1826 // Left Trim
1827 while(*str && nsvg__isspace(*str)) ++str;
1828 start = str;
1829 while(*str && *str != ';') ++str;
1830 end = str;
1831
1832 // Right Trim
1833 while (end > start && (*end == ';' || nsvg__isspace(*end))) --end;
1834 ++end;
1835
1836 nsvg__parseNameValue(p, start, end);
1837 if (*str) ++str;
1838 }
1839 }
1840
nsvg__parseAttribs(NSVGparser * p,const char ** attr)1841 static void nsvg__parseAttribs(NSVGparser* p, const char** attr)
1842 {
1843 int i;
1844 for (i = 0; attr[i]; i += 2)
1845 {
1846 if (strcmp(attr[i], "style") == 0)
1847 nsvg__parseStyle(p, attr[i + 1]);
1848 else
1849 nsvg__parseAttr(p, attr[i], attr[i + 1]);
1850 }
1851 }
1852
nsvg__getArgsPerElement(char cmd)1853 static int nsvg__getArgsPerElement(char cmd)
1854 {
1855 switch (cmd) {
1856 case 'v':
1857 case 'V':
1858 case 'h':
1859 case 'H':
1860 return 1;
1861 case 'm':
1862 case 'M':
1863 case 'l':
1864 case 'L':
1865 case 't':
1866 case 'T':
1867 return 2;
1868 case 'q':
1869 case 'Q':
1870 case 's':
1871 case 'S':
1872 return 4;
1873 case 'c':
1874 case 'C':
1875 return 6;
1876 case 'a':
1877 case 'A':
1878 return 7;
1879 }
1880 return 0;
1881 }
1882
nsvg__pathMoveTo(NSVGparser * p,float * cpx,float * cpy,float * args,int rel)1883 static void nsvg__pathMoveTo(NSVGparser* p, float* cpx, float* cpy, float* args, int rel)
1884 {
1885 if (rel) {
1886 *cpx += args[0];
1887 *cpy += args[1];
1888 } else {
1889 *cpx = args[0];
1890 *cpy = args[1];
1891 }
1892 nsvg__moveTo(p, *cpx, *cpy);
1893 }
1894
nsvg__pathLineTo(NSVGparser * p,float * cpx,float * cpy,float * args,int rel)1895 static void nsvg__pathLineTo(NSVGparser* p, float* cpx, float* cpy, float* args, int rel)
1896 {
1897 if (rel) {
1898 *cpx += args[0];
1899 *cpy += args[1];
1900 } else {
1901 *cpx = args[0];
1902 *cpy = args[1];
1903 }
1904 nsvg__lineTo(p, *cpx, *cpy);
1905 }
1906
nsvg__pathHLineTo(NSVGparser * p,float * cpx,float * cpy,float * args,int rel)1907 static void nsvg__pathHLineTo(NSVGparser* p, float* cpx, float* cpy, float* args, int rel)
1908 {
1909 if (rel)
1910 *cpx += args[0];
1911 else
1912 *cpx = args[0];
1913 nsvg__lineTo(p, *cpx, *cpy);
1914 }
1915
nsvg__pathVLineTo(NSVGparser * p,float * cpx,float * cpy,float * args,int rel)1916 static void nsvg__pathVLineTo(NSVGparser* p, float* cpx, float* cpy, float* args, int rel)
1917 {
1918 if (rel)
1919 *cpy += args[0];
1920 else
1921 *cpy = args[0];
1922 nsvg__lineTo(p, *cpx, *cpy);
1923 }
1924
nsvg__pathCubicBezTo(NSVGparser * p,float * cpx,float * cpy,float * cpx2,float * cpy2,float * args,int rel)1925 static void nsvg__pathCubicBezTo(NSVGparser* p, float* cpx, float* cpy,
1926 float* cpx2, float* cpy2, float* args, int rel)
1927 {
1928 float x2, y2, cx1, cy1, cx2, cy2;
1929
1930 if (rel) {
1931 cx1 = *cpx + args[0];
1932 cy1 = *cpy + args[1];
1933 cx2 = *cpx + args[2];
1934 cy2 = *cpy + args[3];
1935 x2 = *cpx + args[4];
1936 y2 = *cpy + args[5];
1937 } else {
1938 cx1 = args[0];
1939 cy1 = args[1];
1940 cx2 = args[2];
1941 cy2 = args[3];
1942 x2 = args[4];
1943 y2 = args[5];
1944 }
1945
1946 nsvg__cubicBezTo(p, cx1,cy1, cx2,cy2, x2,y2);
1947
1948 *cpx2 = cx2;
1949 *cpy2 = cy2;
1950 *cpx = x2;
1951 *cpy = y2;
1952 }
1953
nsvg__pathCubicBezShortTo(NSVGparser * p,float * cpx,float * cpy,float * cpx2,float * cpy2,float * args,int rel)1954 static void nsvg__pathCubicBezShortTo(NSVGparser* p, float* cpx, float* cpy,
1955 float* cpx2, float* cpy2, float* args, int rel)
1956 {
1957 float x1, y1, x2, y2, cx1, cy1, cx2, cy2;
1958
1959 x1 = *cpx;
1960 y1 = *cpy;
1961 if (rel) {
1962 cx2 = *cpx + args[0];
1963 cy2 = *cpy + args[1];
1964 x2 = *cpx + args[2];
1965 y2 = *cpy + args[3];
1966 } else {
1967 cx2 = args[0];
1968 cy2 = args[1];
1969 x2 = args[2];
1970 y2 = args[3];
1971 }
1972
1973 cx1 = 2*x1 - *cpx2;
1974 cy1 = 2*y1 - *cpy2;
1975
1976 nsvg__cubicBezTo(p, cx1,cy1, cx2,cy2, x2,y2);
1977
1978 *cpx2 = cx2;
1979 *cpy2 = cy2;
1980 *cpx = x2;
1981 *cpy = y2;
1982 }
1983
nsvg__pathQuadBezTo(NSVGparser * p,float * cpx,float * cpy,float * cpx2,float * cpy2,float * args,int rel)1984 static void nsvg__pathQuadBezTo(NSVGparser* p, float* cpx, float* cpy,
1985 float* cpx2, float* cpy2, float* args, int rel)
1986 {
1987 float x1, y1, x2, y2, cx, cy;
1988 float cx1, cy1, cx2, cy2;
1989
1990 x1 = *cpx;
1991 y1 = *cpy;
1992 if (rel) {
1993 cx = *cpx + args[0];
1994 cy = *cpy + args[1];
1995 x2 = *cpx + args[2];
1996 y2 = *cpy + args[3];
1997 } else {
1998 cx = args[0];
1999 cy = args[1];
2000 x2 = args[2];
2001 y2 = args[3];
2002 }
2003
2004 // Convert to cubic bezier
2005 cx1 = x1 + 2.0f/3.0f*(cx - x1);
2006 cy1 = y1 + 2.0f/3.0f*(cy - y1);
2007 cx2 = x2 + 2.0f/3.0f*(cx - x2);
2008 cy2 = y2 + 2.0f/3.0f*(cy - y2);
2009
2010 nsvg__cubicBezTo(p, cx1,cy1, cx2,cy2, x2,y2);
2011
2012 *cpx2 = cx;
2013 *cpy2 = cy;
2014 *cpx = x2;
2015 *cpy = y2;
2016 }
2017
nsvg__pathQuadBezShortTo(NSVGparser * p,float * cpx,float * cpy,float * cpx2,float * cpy2,float * args,int rel)2018 static void nsvg__pathQuadBezShortTo(NSVGparser* p, float* cpx, float* cpy,
2019 float* cpx2, float* cpy2, float* args, int rel)
2020 {
2021 float x1, y1, x2, y2, cx, cy;
2022 float cx1, cy1, cx2, cy2;
2023
2024 x1 = *cpx;
2025 y1 = *cpy;
2026 if (rel) {
2027 x2 = *cpx + args[0];
2028 y2 = *cpy + args[1];
2029 } else {
2030 x2 = args[0];
2031 y2 = args[1];
2032 }
2033
2034 cx = 2*x1 - *cpx2;
2035 cy = 2*y1 - *cpy2;
2036
2037 // Convert to cubix bezier
2038 cx1 = x1 + 2.0f/3.0f*(cx - x1);
2039 cy1 = y1 + 2.0f/3.0f*(cy - y1);
2040 cx2 = x2 + 2.0f/3.0f*(cx - x2);
2041 cy2 = y2 + 2.0f/3.0f*(cy - y2);
2042
2043 nsvg__cubicBezTo(p, cx1,cy1, cx2,cy2, x2,y2);
2044
2045 *cpx2 = cx;
2046 *cpy2 = cy;
2047 *cpx = x2;
2048 *cpy = y2;
2049 }
2050
nsvg__sqr(float x)2051 static float nsvg__sqr(float x) { return x*x; }
nsvg__vmag(float x,float y)2052 static float nsvg__vmag(float x, float y) { return sqrtf(x*x + y*y); }
2053
nsvg__vecrat(float ux,float uy,float vx,float vy)2054 static float nsvg__vecrat(float ux, float uy, float vx, float vy)
2055 {
2056 return (ux*vx + uy*vy) / (nsvg__vmag(ux,uy) * nsvg__vmag(vx,vy));
2057 }
2058
nsvg__vecang(float ux,float uy,float vx,float vy)2059 static float nsvg__vecang(float ux, float uy, float vx, float vy)
2060 {
2061 float r = nsvg__vecrat(ux,uy, vx,vy);
2062 if (r < -1.0f) r = -1.0f;
2063 if (r > 1.0f) r = 1.0f;
2064 return ((ux*vy < uy*vx) ? -1.0f : 1.0f) * acosf(r);
2065 }
2066
nsvg__pathArcTo(NSVGparser * p,float * cpx,float * cpy,float * args,int rel)2067 static void nsvg__pathArcTo(NSVGparser* p, float* cpx, float* cpy, float* args, int rel)
2068 {
2069 // Ported from canvg (https://code.google.com/p/canvg/)
2070 float rx, ry, rotx;
2071 float x1, y1, x2, y2, cx, cy, dx, dy, d;
2072 float x1p, y1p, cxp, cyp, s, sa, sb;
2073 float ux, uy, vx, vy, a1, da;
2074 float x, y, tanx, tany, a, px = 0, py = 0, ptanx = 0, ptany = 0, t[6];
2075 float sinrx, cosrx;
2076 int fa, fs;
2077 int i, ndivs;
2078 float hda, kappa;
2079
2080 rx = fabsf(args[0]); // y radius
2081 ry = fabsf(args[1]); // x radius
2082 rotx = args[2] / 180.0f * NSVG_PI; // x rotation angle
2083 fa = fabsf(args[3]) > 1e-6 ? 1 : 0; // Large arc
2084 fs = fabsf(args[4]) > 1e-6 ? 1 : 0; // Sweep direction
2085 x1 = *cpx; // start point
2086 y1 = *cpy;
2087 if (rel) { // end point
2088 x2 = *cpx + args[5];
2089 y2 = *cpy + args[6];
2090 } else {
2091 x2 = args[5];
2092 y2 = args[6];
2093 }
2094
2095 dx = x1 - x2;
2096 dy = y1 - y2;
2097 d = sqrtf(dx*dx + dy*dy);
2098 if (d < 1e-6f || rx < 1e-6f || ry < 1e-6f) {
2099 // The arc degenerates to a line
2100 nsvg__lineTo(p, x2, y2);
2101 *cpx = x2;
2102 *cpy = y2;
2103 return;
2104 }
2105
2106 sinrx = sinf(rotx);
2107 cosrx = cosf(rotx);
2108
2109 // Convert to center point parameterization.
2110 // http://www.w3.org/TR/SVG11/implnote.html#ArcImplementationNotes
2111 // 1) Compute x1', y1'
2112 x1p = cosrx * dx / 2.0f + sinrx * dy / 2.0f;
2113 y1p = -sinrx * dx / 2.0f + cosrx * dy / 2.0f;
2114 d = nsvg__sqr(x1p)/nsvg__sqr(rx) + nsvg__sqr(y1p)/nsvg__sqr(ry);
2115 if (d > 1) {
2116 d = sqrtf(d);
2117 rx *= d;
2118 ry *= d;
2119 }
2120 // 2) Compute cx', cy'
2121 s = 0.0f;
2122 sa = nsvg__sqr(rx)*nsvg__sqr(ry) - nsvg__sqr(rx)*nsvg__sqr(y1p) - nsvg__sqr(ry)*nsvg__sqr(x1p);
2123 sb = nsvg__sqr(rx)*nsvg__sqr(y1p) + nsvg__sqr(ry)*nsvg__sqr(x1p);
2124 if (sa < 0.0f) sa = 0.0f;
2125 if (sb > 0.0f)
2126 s = sqrtf(sa / sb);
2127 if (fa == fs)
2128 s = -s;
2129 cxp = s * rx * y1p / ry;
2130 cyp = s * -ry * x1p / rx;
2131
2132 // 3) Compute cx,cy from cx',cy'
2133 cx = (x1 + x2)/2.0f + cosrx*cxp - sinrx*cyp;
2134 cy = (y1 + y2)/2.0f + sinrx*cxp + cosrx*cyp;
2135
2136 // 4) Calculate theta1, and delta theta.
2137 ux = (x1p - cxp) / rx;
2138 uy = (y1p - cyp) / ry;
2139 vx = (-x1p - cxp) / rx;
2140 vy = (-y1p - cyp) / ry;
2141 a1 = nsvg__vecang(1.0f,0.0f, ux,uy); // Initial angle
2142 da = nsvg__vecang(ux,uy, vx,vy); // Delta angle
2143
2144 // if (vecrat(ux,uy,vx,vy) <= -1.0f) da = NSVG_PI;
2145 // if (vecrat(ux,uy,vx,vy) >= 1.0f) da = 0;
2146
2147 if (fs == 0 && da > 0)
2148 da -= 2 * NSVG_PI;
2149 else if (fs == 1 && da < 0)
2150 da += 2 * NSVG_PI;
2151
2152 // Approximate the arc using cubic spline segments.
2153 t[0] = cosrx; t[1] = sinrx;
2154 t[2] = -sinrx; t[3] = cosrx;
2155 t[4] = cx; t[5] = cy;
2156
2157 // Split arc into max 90 degree segments.
2158 // The loop assumes an iteration per end point (including start and end), this +1.
2159 ndivs = (int)(fabsf(da) / (NSVG_PI*0.5f) + 1.0f);
2160 hda = (da / (float)ndivs) / 2.0f;
2161 kappa = fabsf(4.0f / 3.0f * (1.0f - cosf(hda)) / sinf(hda));
2162 if (da < 0.0f)
2163 kappa = -kappa;
2164
2165 for (i = 0; i <= ndivs; i++) {
2166 a = a1 + da * ((float)i/(float)ndivs);
2167 dx = cosf(a);
2168 dy = sinf(a);
2169 nsvg__xformPoint(&x, &y, dx*rx, dy*ry, t); // position
2170 nsvg__xformVec(&tanx, &tany, -dy*rx * kappa, dx*ry * kappa, t); // tangent
2171 if (i > 0)
2172 nsvg__cubicBezTo(p, px+ptanx,py+ptany, x-tanx, y-tany, x, y);
2173 px = x;
2174 py = y;
2175 ptanx = tanx;
2176 ptany = tany;
2177 }
2178
2179 *cpx = x2;
2180 *cpy = y2;
2181 }
2182
nsvg__parsePath(NSVGparser * p,const char ** attr)2183 static void nsvg__parsePath(NSVGparser* p, const char** attr)
2184 {
2185 const char* s = NULL;
2186 char cmd = '\0';
2187 float args[10];
2188 int nargs;
2189 int rargs = 0;
2190 float cpx, cpy, cpx2, cpy2;
2191 const char* tmp[4];
2192 char closedFlag;
2193 int i;
2194 char item[64];
2195
2196 for (i = 0; attr[i]; i += 2) {
2197 if (strcmp(attr[i], "d") == 0) {
2198 s = attr[i + 1];
2199 } else {
2200 tmp[0] = attr[i];
2201 tmp[1] = attr[i + 1];
2202 tmp[2] = 0;
2203 tmp[3] = 0;
2204 nsvg__parseAttribs(p, tmp);
2205 }
2206 }
2207
2208 if (s) {
2209 nsvg__resetPath(p);
2210 cpx = 0; cpy = 0;
2211 cpx2 = 0; cpy2 = 0;
2212 closedFlag = 0;
2213 nargs = 0;
2214
2215 while (*s) {
2216 s = nsvg__getNextPathItem(s, item);
2217 if (!*item) break;
2218 if (nsvg__isnum(item[0])) {
2219 if (nargs < 10)
2220 args[nargs++] = (float)nsvg__atof(item);
2221 if (nargs >= rargs) {
2222 switch (cmd) {
2223 case 'm':
2224 case 'M':
2225 nsvg__pathMoveTo(p, &cpx, &cpy, args, cmd == 'm' ? 1 : 0);
2226 // Moveto can be followed by multiple coordinate pairs,
2227 // which should be treated as linetos.
2228 cmd = (cmd == 'm') ? 'l' : 'L';
2229 rargs = nsvg__getArgsPerElement(cmd);
2230 cpx2 = cpx; cpy2 = cpy;
2231 break;
2232 case 'l':
2233 case 'L':
2234 nsvg__pathLineTo(p, &cpx, &cpy, args, cmd == 'l' ? 1 : 0);
2235 cpx2 = cpx; cpy2 = cpy;
2236 break;
2237 case 'H':
2238 case 'h':
2239 nsvg__pathHLineTo(p, &cpx, &cpy, args, cmd == 'h' ? 1 : 0);
2240 cpx2 = cpx; cpy2 = cpy;
2241 break;
2242 case 'V':
2243 case 'v':
2244 nsvg__pathVLineTo(p, &cpx, &cpy, args, cmd == 'v' ? 1 : 0);
2245 cpx2 = cpx; cpy2 = cpy;
2246 break;
2247 case 'C':
2248 case 'c':
2249 nsvg__pathCubicBezTo(p, &cpx, &cpy, &cpx2, &cpy2, args, cmd == 'c' ? 1 : 0);
2250 break;
2251 case 'S':
2252 case 's':
2253 nsvg__pathCubicBezShortTo(p, &cpx, &cpy, &cpx2, &cpy2, args, cmd == 's' ? 1 : 0);
2254 break;
2255 case 'Q':
2256 case 'q':
2257 nsvg__pathQuadBezTo(p, &cpx, &cpy, &cpx2, &cpy2, args, cmd == 'q' ? 1 : 0);
2258 break;
2259 case 'T':
2260 case 't':
2261 nsvg__pathQuadBezShortTo(p, &cpx, &cpy, &cpx2, &cpy2, args, cmd == 't' ? 1 : 0);
2262 break;
2263 case 'A':
2264 case 'a':
2265 nsvg__pathArcTo(p, &cpx, &cpy, args, cmd == 'a' ? 1 : 0);
2266 cpx2 = cpx; cpy2 = cpy;
2267 break;
2268 default:
2269 if (nargs >= 2) {
2270 cpx = args[nargs-2];
2271 cpy = args[nargs-1];
2272 cpx2 = cpx; cpy2 = cpy;
2273 }
2274 break;
2275 }
2276 nargs = 0;
2277 }
2278 } else {
2279 cmd = item[0];
2280 rargs = nsvg__getArgsPerElement(cmd);
2281 if (cmd == 'M' || cmd == 'm') {
2282 // Commit path.
2283 if (p->npts > 0)
2284 nsvg__addPath(p, closedFlag);
2285 // Start new subpath.
2286 nsvg__resetPath(p);
2287 closedFlag = 0;
2288 nargs = 0;
2289 } else if (cmd == 'Z' || cmd == 'z') {
2290 closedFlag = 1;
2291 // Commit path.
2292 if (p->npts > 0) {
2293 // Move current point to first point
2294 cpx = p->pts[0];
2295 cpy = p->pts[1];
2296 cpx2 = cpx; cpy2 = cpy;
2297 nsvg__addPath(p, closedFlag);
2298 }
2299 // Start new subpath.
2300 nsvg__resetPath(p);
2301 nsvg__moveTo(p, cpx, cpy);
2302 closedFlag = 0;
2303 nargs = 0;
2304 }
2305 }
2306 }
2307 // Commit path.
2308 if (p->npts)
2309 nsvg__addPath(p, closedFlag);
2310 }
2311
2312 nsvg__addShape(p);
2313 }
2314
nsvg__parseRect(NSVGparser * p,const char ** attr)2315 static void nsvg__parseRect(NSVGparser* p, const char** attr)
2316 {
2317 float x = 0.0f;
2318 float y = 0.0f;
2319 float w = 0.0f;
2320 float h = 0.0f;
2321 float rx = -1.0f; // marks not set
2322 float ry = -1.0f;
2323 int i;
2324
2325 for (i = 0; attr[i]; i += 2) {
2326 if (!nsvg__parseAttr(p, attr[i], attr[i + 1])) {
2327 if (strcmp(attr[i], "x") == 0) x = nsvg__parseCoordinate(p, attr[i+1], nsvg__actualOrigX(p), nsvg__actualWidth(p));
2328 if (strcmp(attr[i], "y") == 0) y = nsvg__parseCoordinate(p, attr[i+1], nsvg__actualOrigY(p), nsvg__actualHeight(p));
2329 if (strcmp(attr[i], "width") == 0) w = nsvg__parseCoordinate(p, attr[i+1], 0.0f, nsvg__actualWidth(p));
2330 if (strcmp(attr[i], "height") == 0) h = nsvg__parseCoordinate(p, attr[i+1], 0.0f, nsvg__actualHeight(p));
2331 if (strcmp(attr[i], "rx") == 0) rx = fabsf(nsvg__parseCoordinate(p, attr[i+1], 0.0f, nsvg__actualWidth(p)));
2332 if (strcmp(attr[i], "ry") == 0) ry = fabsf(nsvg__parseCoordinate(p, attr[i+1], 0.0f, nsvg__actualHeight(p)));
2333 }
2334 }
2335
2336 if (rx < 0.0f && ry > 0.0f) rx = ry;
2337 if (ry < 0.0f && rx > 0.0f) ry = rx;
2338 if (rx < 0.0f) rx = 0.0f;
2339 if (ry < 0.0f) ry = 0.0f;
2340 if (rx > w/2.0f) rx = w/2.0f;
2341 if (ry > h/2.0f) ry = h/2.0f;
2342
2343 if (w != 0.0f && h != 0.0f) {
2344 nsvg__resetPath(p);
2345
2346 if (rx < 0.00001f || ry < 0.0001f) {
2347 nsvg__moveTo(p, x, y);
2348 nsvg__lineTo(p, x+w, y);
2349 nsvg__lineTo(p, x+w, y+h);
2350 nsvg__lineTo(p, x, y+h);
2351 } else {
2352 // Rounded rectangle
2353 nsvg__moveTo(p, x+rx, y);
2354 nsvg__lineTo(p, x+w-rx, y);
2355 nsvg__cubicBezTo(p, x+w-rx*(1-NSVG_KAPPA90), y, x+w, y+ry*(1-NSVG_KAPPA90), x+w, y+ry);
2356 nsvg__lineTo(p, x+w, y+h-ry);
2357 nsvg__cubicBezTo(p, x+w, y+h-ry*(1-NSVG_KAPPA90), x+w-rx*(1-NSVG_KAPPA90), y+h, x+w-rx, y+h);
2358 nsvg__lineTo(p, x+rx, y+h);
2359 nsvg__cubicBezTo(p, x+rx*(1-NSVG_KAPPA90), y+h, x, y+h-ry*(1-NSVG_KAPPA90), x, y+h-ry);
2360 nsvg__lineTo(p, x, y+ry);
2361 nsvg__cubicBezTo(p, x, y+ry*(1-NSVG_KAPPA90), x+rx*(1-NSVG_KAPPA90), y, x+rx, y);
2362 }
2363
2364 nsvg__addPath(p, 1);
2365
2366 nsvg__addShape(p);
2367 }
2368 }
2369
nsvg__parseCircle(NSVGparser * p,const char ** attr)2370 static void nsvg__parseCircle(NSVGparser* p, const char** attr)
2371 {
2372 float cx = 0.0f;
2373 float cy = 0.0f;
2374 float r = 0.0f;
2375 int i;
2376
2377 for (i = 0; attr[i]; i += 2) {
2378 if (!nsvg__parseAttr(p, attr[i], attr[i + 1])) {
2379 if (strcmp(attr[i], "cx") == 0) cx = nsvg__parseCoordinate(p, attr[i+1], nsvg__actualOrigX(p), nsvg__actualWidth(p));
2380 if (strcmp(attr[i], "cy") == 0) cy = nsvg__parseCoordinate(p, attr[i+1], nsvg__actualOrigY(p), nsvg__actualHeight(p));
2381 if (strcmp(attr[i], "r") == 0) r = fabsf(nsvg__parseCoordinate(p, attr[i+1], 0.0f, nsvg__actualLength(p)));
2382 }
2383 }
2384
2385 if (r > 0.0f) {
2386 nsvg__resetPath(p);
2387
2388 nsvg__moveTo(p, cx+r, cy);
2389 nsvg__cubicBezTo(p, cx+r, cy+r*NSVG_KAPPA90, cx+r*NSVG_KAPPA90, cy+r, cx, cy+r);
2390 nsvg__cubicBezTo(p, cx-r*NSVG_KAPPA90, cy+r, cx-r, cy+r*NSVG_KAPPA90, cx-r, cy);
2391 nsvg__cubicBezTo(p, cx-r, cy-r*NSVG_KAPPA90, cx-r*NSVG_KAPPA90, cy-r, cx, cy-r);
2392 nsvg__cubicBezTo(p, cx+r*NSVG_KAPPA90, cy-r, cx+r, cy-r*NSVG_KAPPA90, cx+r, cy);
2393
2394 nsvg__addPath(p, 1);
2395
2396 nsvg__addShape(p);
2397 }
2398 }
2399
nsvg__parseEllipse(NSVGparser * p,const char ** attr)2400 static void nsvg__parseEllipse(NSVGparser* p, const char** attr)
2401 {
2402 float cx = 0.0f;
2403 float cy = 0.0f;
2404 float rx = 0.0f;
2405 float ry = 0.0f;
2406 int i;
2407
2408 for (i = 0; attr[i]; i += 2) {
2409 if (!nsvg__parseAttr(p, attr[i], attr[i + 1])) {
2410 if (strcmp(attr[i], "cx") == 0) cx = nsvg__parseCoordinate(p, attr[i+1], nsvg__actualOrigX(p), nsvg__actualWidth(p));
2411 if (strcmp(attr[i], "cy") == 0) cy = nsvg__parseCoordinate(p, attr[i+1], nsvg__actualOrigY(p), nsvg__actualHeight(p));
2412 if (strcmp(attr[i], "rx") == 0) rx = fabsf(nsvg__parseCoordinate(p, attr[i+1], 0.0f, nsvg__actualWidth(p)));
2413 if (strcmp(attr[i], "ry") == 0) ry = fabsf(nsvg__parseCoordinate(p, attr[i+1], 0.0f, nsvg__actualHeight(p)));
2414 }
2415 }
2416
2417 if (rx > 0.0f && ry > 0.0f) {
2418
2419 nsvg__resetPath(p);
2420
2421 nsvg__moveTo(p, cx+rx, cy);
2422 nsvg__cubicBezTo(p, cx+rx, cy+ry*NSVG_KAPPA90, cx+rx*NSVG_KAPPA90, cy+ry, cx, cy+ry);
2423 nsvg__cubicBezTo(p, cx-rx*NSVG_KAPPA90, cy+ry, cx-rx, cy+ry*NSVG_KAPPA90, cx-rx, cy);
2424 nsvg__cubicBezTo(p, cx-rx, cy-ry*NSVG_KAPPA90, cx-rx*NSVG_KAPPA90, cy-ry, cx, cy-ry);
2425 nsvg__cubicBezTo(p, cx+rx*NSVG_KAPPA90, cy-ry, cx+rx, cy-ry*NSVG_KAPPA90, cx+rx, cy);
2426
2427 nsvg__addPath(p, 1);
2428
2429 nsvg__addShape(p);
2430 }
2431 }
2432
nsvg__parseLine(NSVGparser * p,const char ** attr)2433 static void nsvg__parseLine(NSVGparser* p, const char** attr)
2434 {
2435 float x1 = 0.0;
2436 float y1 = 0.0;
2437 float x2 = 0.0;
2438 float y2 = 0.0;
2439 int i;
2440
2441 for (i = 0; attr[i]; i += 2) {
2442 if (!nsvg__parseAttr(p, attr[i], attr[i + 1])) {
2443 if (strcmp(attr[i], "x1") == 0) x1 = nsvg__parseCoordinate(p, attr[i + 1], nsvg__actualOrigX(p), nsvg__actualWidth(p));
2444 if (strcmp(attr[i], "y1") == 0) y1 = nsvg__parseCoordinate(p, attr[i + 1], nsvg__actualOrigY(p), nsvg__actualHeight(p));
2445 if (strcmp(attr[i], "x2") == 0) x2 = nsvg__parseCoordinate(p, attr[i + 1], nsvg__actualOrigX(p), nsvg__actualWidth(p));
2446 if (strcmp(attr[i], "y2") == 0) y2 = nsvg__parseCoordinate(p, attr[i + 1], nsvg__actualOrigY(p), nsvg__actualHeight(p));
2447 }
2448 }
2449
2450 nsvg__resetPath(p);
2451
2452 nsvg__moveTo(p, x1, y1);
2453 nsvg__lineTo(p, x2, y2);
2454
2455 nsvg__addPath(p, 0);
2456
2457 nsvg__addShape(p);
2458 }
2459
nsvg__parsePoly(NSVGparser * p,const char ** attr,int closeFlag)2460 static void nsvg__parsePoly(NSVGparser* p, const char** attr, int closeFlag)
2461 {
2462 int i;
2463 const char* s;
2464 float args[2];
2465 int nargs, npts = 0;
2466 char item[64];
2467
2468 nsvg__resetPath(p);
2469
2470 for (i = 0; attr[i]; i += 2) {
2471 if (!nsvg__parseAttr(p, attr[i], attr[i + 1])) {
2472 if (strcmp(attr[i], "points") == 0) {
2473 s = attr[i + 1];
2474 nargs = 0;
2475 while (*s) {
2476 s = nsvg__getNextPathItem(s, item);
2477 args[nargs++] = (float)nsvg__atof(item);
2478 if (nargs >= 2) {
2479 if (npts == 0)
2480 nsvg__moveTo(p, args[0], args[1]);
2481 else
2482 nsvg__lineTo(p, args[0], args[1]);
2483 nargs = 0;
2484 npts++;
2485 }
2486 }
2487 }
2488 }
2489 }
2490
2491 nsvg__addPath(p, (char)closeFlag);
2492
2493 nsvg__addShape(p);
2494 }
2495
nsvg__parseSVG(NSVGparser * p,const char ** attr)2496 static void nsvg__parseSVG(NSVGparser* p, const char** attr)
2497 {
2498 int i;
2499 for (i = 0; attr[i]; i += 2) {
2500 if (!nsvg__parseAttr(p, attr[i], attr[i + 1])) {
2501 if (strcmp(attr[i], "width") == 0) {
2502 p->image->width = nsvg__parseCoordinate(p, attr[i + 1], 0.0f, 0.0f);
2503 } else if (strcmp(attr[i], "height") == 0) {
2504 p->image->height = nsvg__parseCoordinate(p, attr[i + 1], 0.0f, 0.0f);
2505 } else if (strcmp(attr[i], "viewBox") == 0) {
2506 const char *s = attr[i + 1];
2507 char buf[64];
2508 s = nsvg__parseNumber(s, buf, 64);
2509 p->viewMinx = nsvg__atof(buf);
2510 while (*s && (nsvg__isspace(*s) || *s == '%' || *s == ',')) s++;
2511 if (!*s) return;
2512 s = nsvg__parseNumber(s, buf, 64);
2513 p->viewMiny = nsvg__atof(buf);
2514 while (*s && (nsvg__isspace(*s) || *s == '%' || *s == ',')) s++;
2515 if (!*s) return;
2516 s = nsvg__parseNumber(s, buf, 64);
2517 p->viewWidth = nsvg__atof(buf);
2518 while (*s && (nsvg__isspace(*s) || *s == '%' || *s == ',')) s++;
2519 if (!*s) return;
2520 s = nsvg__parseNumber(s, buf, 64);
2521 p->viewHeight = nsvg__atof(buf);
2522 } else if (strcmp(attr[i], "preserveAspectRatio") == 0) {
2523 if (strstr(attr[i + 1], "none") != 0) {
2524 // No uniform scaling
2525 p->alignType = NSVG_ALIGN_NONE;
2526 } else {
2527 // Parse X align
2528 if (strstr(attr[i + 1], "xMin") != 0)
2529 p->alignX = NSVG_ALIGN_MIN;
2530 else if (strstr(attr[i + 1], "xMid") != 0)
2531 p->alignX = NSVG_ALIGN_MID;
2532 else if (strstr(attr[i + 1], "xMax") != 0)
2533 p->alignX = NSVG_ALIGN_MAX;
2534 // Parse X align
2535 if (strstr(attr[i + 1], "yMin") != 0)
2536 p->alignY = NSVG_ALIGN_MIN;
2537 else if (strstr(attr[i + 1], "yMid") != 0)
2538 p->alignY = NSVG_ALIGN_MID;
2539 else if (strstr(attr[i + 1], "yMax") != 0)
2540 p->alignY = NSVG_ALIGN_MAX;
2541 // Parse meet/slice
2542 p->alignType = NSVG_ALIGN_MEET;
2543 if (strstr(attr[i + 1], "slice") != 0)
2544 p->alignType = NSVG_ALIGN_SLICE;
2545 }
2546 }
2547 }
2548 }
2549 }
2550
nsvg__parseGradient(NSVGparser * p,const char ** attr,char type)2551 static void nsvg__parseGradient(NSVGparser* p, const char** attr, char type)
2552 {
2553 int i;
2554 NSVGgradientData* grad = (NSVGgradientData*)malloc(sizeof(NSVGgradientData));
2555 if (grad == NULL) return;
2556 memset(grad, 0, sizeof(NSVGgradientData));
2557 grad->units = NSVG_OBJECT_SPACE;
2558 grad->type = type;
2559 if (grad->type == NSVG_PAINT_LINEAR_GRADIENT) {
2560 grad->linear.x1 = nsvg__coord(0.0f, NSVG_UNITS_PERCENT);
2561 grad->linear.y1 = nsvg__coord(0.0f, NSVG_UNITS_PERCENT);
2562 grad->linear.x2 = nsvg__coord(100.0f, NSVG_UNITS_PERCENT);
2563 grad->linear.y2 = nsvg__coord(0.0f, NSVG_UNITS_PERCENT);
2564 } else if (grad->type == NSVG_PAINT_RADIAL_GRADIENT) {
2565 grad->radial.cx = nsvg__coord(50.0f, NSVG_UNITS_PERCENT);
2566 grad->radial.cy = nsvg__coord(50.0f, NSVG_UNITS_PERCENT);
2567 grad->radial.r = nsvg__coord(50.0f, NSVG_UNITS_PERCENT);
2568 }
2569
2570 nsvg__xformIdentity(grad->xform);
2571
2572 for (i = 0; attr[i]; i += 2) {
2573 if (strcmp(attr[i], "id") == 0) {
2574 strncpy(grad->id, attr[i+1], 63);
2575 grad->id[63] = '\0';
2576 } else if (!nsvg__parseAttr(p, attr[i], attr[i + 1])) {
2577 if (strcmp(attr[i], "gradientUnits") == 0) {
2578 if (strcmp(attr[i+1], "objectBoundingBox") == 0)
2579 grad->units = NSVG_OBJECT_SPACE;
2580 else
2581 grad->units = NSVG_USER_SPACE;
2582 } else if (strcmp(attr[i], "gradientTransform") == 0) {
2583 nsvg__parseTransform(grad->xform, attr[i + 1]);
2584 } else if (strcmp(attr[i], "cx") == 0) {
2585 grad->radial.cx = nsvg__parseCoordinateRaw(attr[i + 1]);
2586 } else if (strcmp(attr[i], "cy") == 0) {
2587 grad->radial.cy = nsvg__parseCoordinateRaw(attr[i + 1]);
2588 } else if (strcmp(attr[i], "r") == 0) {
2589 grad->radial.r = nsvg__parseCoordinateRaw(attr[i + 1]);
2590 } else if (strcmp(attr[i], "fx") == 0) {
2591 grad->radial.fx = nsvg__parseCoordinateRaw(attr[i + 1]);
2592 } else if (strcmp(attr[i], "fy") == 0) {
2593 grad->radial.fy = nsvg__parseCoordinateRaw(attr[i + 1]);
2594 } else if (strcmp(attr[i], "x1") == 0) {
2595 grad->linear.x1 = nsvg__parseCoordinateRaw(attr[i + 1]);
2596 } else if (strcmp(attr[i], "y1") == 0) {
2597 grad->linear.y1 = nsvg__parseCoordinateRaw(attr[i + 1]);
2598 } else if (strcmp(attr[i], "x2") == 0) {
2599 grad->linear.x2 = nsvg__parseCoordinateRaw(attr[i + 1]);
2600 } else if (strcmp(attr[i], "y2") == 0) {
2601 grad->linear.y2 = nsvg__parseCoordinateRaw(attr[i + 1]);
2602 } else if (strcmp(attr[i], "spreadMethod") == 0) {
2603 if (strcmp(attr[i+1], "pad") == 0)
2604 grad->spread = NSVG_SPREAD_PAD;
2605 else if (strcmp(attr[i+1], "reflect") == 0)
2606 grad->spread = NSVG_SPREAD_REFLECT;
2607 else if (strcmp(attr[i+1], "repeat") == 0)
2608 grad->spread = NSVG_SPREAD_REPEAT;
2609 } else if (strcmp(attr[i], "xlink:href") == 0) {
2610 const char *href = attr[i+1];
2611 strncpy(grad->ref, href+1, 62);
2612 grad->ref[62] = '\0';
2613 }
2614 }
2615 }
2616
2617 grad->next = p->gradients;
2618 p->gradients = grad;
2619 }
2620
nsvg__parseGradientStop(NSVGparser * p,const char ** attr)2621 static void nsvg__parseGradientStop(NSVGparser* p, const char** attr)
2622 {
2623 NSVGattrib* curAttr = nsvg__getAttr(p);
2624 NSVGgradientData* grad;
2625 NSVGgradientStop* stop;
2626 int i, idx;
2627
2628 curAttr->stopOffset = 0;
2629 curAttr->stopColor = 0;
2630 curAttr->stopOpacity = 1.0f;
2631
2632 for (i = 0; attr[i]; i += 2) {
2633 nsvg__parseAttr(p, attr[i], attr[i + 1]);
2634 }
2635
2636 // Add stop to the last gradient.
2637 grad = p->gradients;
2638 if (grad == NULL) return;
2639
2640 grad->nstops++;
2641 grad->stops = (NSVGgradientStop*)realloc(grad->stops, sizeof(NSVGgradientStop)*grad->nstops);
2642 if (grad->stops == NULL) return;
2643
2644 // Insert
2645 idx = grad->nstops-1;
2646 for (i = 0; i < grad->nstops-1; i++) {
2647 if (curAttr->stopOffset < grad->stops[i].offset) {
2648 idx = i;
2649 break;
2650 }
2651 }
2652 if (idx != grad->nstops-1) {
2653 for (i = grad->nstops-1; i > idx; i--)
2654 grad->stops[i] = grad->stops[i-1];
2655 }
2656
2657 stop = &grad->stops[idx];
2658 stop->color = curAttr->stopColor;
2659 stop->color |= (unsigned int)(curAttr->stopOpacity*255) << 24;
2660 stop->offset = curAttr->stopOffset;
2661 }
2662
nsvg__startElement(void * ud,const char * el,const char ** attr)2663 static void nsvg__startElement(void* ud, const char* el, const char** attr)
2664 {
2665 NSVGparser* p = (NSVGparser*)ud;
2666
2667 if (p->defsFlag) {
2668 // Skip everything but gradients in defs
2669 if (strcmp(el, "linearGradient") == 0) {
2670 nsvg__parseGradient(p, attr, NSVG_PAINT_LINEAR_GRADIENT);
2671 } else if (strcmp(el, "radialGradient") == 0) {
2672 nsvg__parseGradient(p, attr, NSVG_PAINT_RADIAL_GRADIENT);
2673 } else if (strcmp(el, "stop") == 0) {
2674 nsvg__parseGradientStop(p, attr);
2675 }
2676 return;
2677 }
2678
2679 if (strcmp(el, "g") == 0) {
2680 nsvg__pushAttr(p);
2681 nsvg__parseAttribs(p, attr);
2682 } else if (strcmp(el, "path") == 0) {
2683 if (p->pathFlag) // Do not allow nested paths.
2684 return;
2685 nsvg__pushAttr(p);
2686 nsvg__parsePath(p, attr);
2687 nsvg__popAttr(p);
2688 } else if (strcmp(el, "rect") == 0) {
2689 nsvg__pushAttr(p);
2690 nsvg__parseRect(p, attr);
2691 nsvg__popAttr(p);
2692 } else if (strcmp(el, "circle") == 0) {
2693 nsvg__pushAttr(p);
2694 nsvg__parseCircle(p, attr);
2695 nsvg__popAttr(p);
2696 } else if (strcmp(el, "ellipse") == 0) {
2697 nsvg__pushAttr(p);
2698 nsvg__parseEllipse(p, attr);
2699 nsvg__popAttr(p);
2700 } else if (strcmp(el, "line") == 0) {
2701 nsvg__pushAttr(p);
2702 nsvg__parseLine(p, attr);
2703 nsvg__popAttr(p);
2704 } else if (strcmp(el, "polyline") == 0) {
2705 nsvg__pushAttr(p);
2706 nsvg__parsePoly(p, attr, 0);
2707 nsvg__popAttr(p);
2708 } else if (strcmp(el, "polygon") == 0) {
2709 nsvg__pushAttr(p);
2710 nsvg__parsePoly(p, attr, 1);
2711 nsvg__popAttr(p);
2712 } else if (strcmp(el, "linearGradient") == 0) {
2713 nsvg__parseGradient(p, attr, NSVG_PAINT_LINEAR_GRADIENT);
2714 } else if (strcmp(el, "radialGradient") == 0) {
2715 nsvg__parseGradient(p, attr, NSVG_PAINT_RADIAL_GRADIENT);
2716 } else if (strcmp(el, "stop") == 0) {
2717 nsvg__parseGradientStop(p, attr);
2718 } else if (strcmp(el, "defs") == 0) {
2719 p->defsFlag = 1;
2720 } else if (strcmp(el, "svg") == 0) {
2721 nsvg__parseSVG(p, attr);
2722 }
2723 }
2724
nsvg__endElement(void * ud,const char * el)2725 static void nsvg__endElement(void* ud, const char* el)
2726 {
2727 NSVGparser* p = (NSVGparser*)ud;
2728
2729 if (strcmp(el, "g") == 0) {
2730 nsvg__popAttr(p);
2731 } else if (strcmp(el, "path") == 0) {
2732 p->pathFlag = 0;
2733 } else if (strcmp(el, "defs") == 0) {
2734 p->defsFlag = 0;
2735 }
2736 }
2737
nsvg__content(void * ud,const char * s)2738 static void nsvg__content(void* ud, const char* s)
2739 {
2740 NSVG_NOTUSED(ud);
2741 NSVG_NOTUSED(s);
2742 // empty
2743 }
2744
nsvg__imageBounds(NSVGparser * p,float * bounds)2745 static void nsvg__imageBounds(NSVGparser* p, float* bounds)
2746 {
2747 NSVGshape* shape;
2748 shape = p->image->shapes;
2749 if (shape == NULL) {
2750 bounds[0] = bounds[1] = bounds[2] = bounds[3] = 0.0;
2751 return;
2752 }
2753 bounds[0] = shape->bounds[0];
2754 bounds[1] = shape->bounds[1];
2755 bounds[2] = shape->bounds[2];
2756 bounds[3] = shape->bounds[3];
2757 for (shape = shape->next; shape != NULL; shape = shape->next) {
2758 bounds[0] = nsvg__minf(bounds[0], shape->bounds[0]);
2759 bounds[1] = nsvg__minf(bounds[1], shape->bounds[1]);
2760 bounds[2] = nsvg__maxf(bounds[2], shape->bounds[2]);
2761 bounds[3] = nsvg__maxf(bounds[3], shape->bounds[3]);
2762 }
2763 }
2764
nsvg__viewAlign(float content,float container,int type)2765 static float nsvg__viewAlign(float content, float container, int type)
2766 {
2767 if (type == NSVG_ALIGN_MIN)
2768 return 0;
2769 else if (type == NSVG_ALIGN_MAX)
2770 return container - content;
2771 // mid
2772 return (container - content) * 0.5f;
2773 }
2774
nsvg__scaleGradient(NSVGgradient * grad,float tx,float ty,float sx,float sy)2775 static void nsvg__scaleGradient(NSVGgradient* grad, float tx, float ty, float sx, float sy)
2776 {
2777 float t[6];
2778 nsvg__xformSetTranslation(t, tx, ty);
2779 nsvg__xformMultiply (grad->xform, t);
2780
2781 nsvg__xformSetScale(t, sx, sy);
2782 nsvg__xformMultiply (grad->xform, t);
2783 }
2784
nsvg__scaleToViewbox(NSVGparser * p,const char * units)2785 static void nsvg__scaleToViewbox(NSVGparser* p, const char* units)
2786 {
2787 NSVGshape* shape;
2788 NSVGpath* path;
2789 float tx, ty, sx, sy, us, bounds[4], t[6], avgs;
2790 int i;
2791 float* pt;
2792
2793 // Guess image size if not set completely.
2794 nsvg__imageBounds(p, bounds);
2795
2796 if (p->viewWidth == 0) {
2797 if (p->image->width > 0) {
2798 p->viewWidth = p->image->width;
2799 } else {
2800 p->viewMinx = bounds[0];
2801 p->viewWidth = bounds[2] - bounds[0];
2802 }
2803 }
2804 if (p->viewHeight == 0) {
2805 if (p->image->height > 0) {
2806 p->viewHeight = p->image->height;
2807 } else {
2808 p->viewMiny = bounds[1];
2809 p->viewHeight = bounds[3] - bounds[1];
2810 }
2811 }
2812 if (p->image->width == 0)
2813 p->image->width = p->viewWidth;
2814 if (p->image->height == 0)
2815 p->image->height = p->viewHeight;
2816
2817 tx = -p->viewMinx;
2818 ty = -p->viewMiny;
2819 sx = p->viewWidth > 0 ? p->image->width / p->viewWidth : 0;
2820 sy = p->viewHeight > 0 ? p->image->height / p->viewHeight : 0;
2821 // Unit scaling
2822 us = 1.0f / nsvg__convertToPixels(p, nsvg__coord(1.0f, nsvg__parseUnits(units)), 0.0f, 1.0f);
2823
2824 // Fix aspect ratio
2825 if (p->alignType == NSVG_ALIGN_MEET) {
2826 // fit whole image into viewbox
2827 sx = sy = nsvg__minf(sx, sy);
2828 tx += nsvg__viewAlign(p->viewWidth*sx, p->image->width, p->alignX) / sx;
2829 ty += nsvg__viewAlign(p->viewHeight*sy, p->image->height, p->alignY) / sy;
2830 } else if (p->alignType == NSVG_ALIGN_SLICE) {
2831 // fill whole viewbox with image
2832 sx = sy = nsvg__maxf(sx, sy);
2833 tx += nsvg__viewAlign(p->viewWidth*sx, p->image->width, p->alignX) / sx;
2834 ty += nsvg__viewAlign(p->viewHeight*sy, p->image->height, p->alignY) / sy;
2835 }
2836
2837 // Transform
2838 sx *= us;
2839 sy *= us;
2840 avgs = (sx+sy) / 2.0f;
2841 for (shape = p->image->shapes; shape != NULL; shape = shape->next) {
2842 shape->bounds[0] = (shape->bounds[0] + tx) * sx;
2843 shape->bounds[1] = (shape->bounds[1] + ty) * sy;
2844 shape->bounds[2] = (shape->bounds[2] + tx) * sx;
2845 shape->bounds[3] = (shape->bounds[3] + ty) * sy;
2846 for (path = shape->paths; path != NULL; path = path->next) {
2847 path->bounds[0] = (path->bounds[0] + tx) * sx;
2848 path->bounds[1] = (path->bounds[1] + ty) * sy;
2849 path->bounds[2] = (path->bounds[2] + tx) * sx;
2850 path->bounds[3] = (path->bounds[3] + ty) * sy;
2851 for (i =0; i < path->npts; i++) {
2852 pt = &path->pts[i*2];
2853 pt[0] = (pt[0] + tx) * sx;
2854 pt[1] = (pt[1] + ty) * sy;
2855 }
2856 }
2857
2858 if (shape->fill.type == NSVG_PAINT_LINEAR_GRADIENT || shape->fill.type == NSVG_PAINT_RADIAL_GRADIENT) {
2859 nsvg__scaleGradient(shape->fill.gradient, tx,ty, sx,sy);
2860 memcpy(t, shape->fill.gradient->xform, sizeof(float)*6);
2861 nsvg__xformInverse(shape->fill.gradient->xform, t);
2862 }
2863 if (shape->stroke.type == NSVG_PAINT_LINEAR_GRADIENT || shape->stroke.type == NSVG_PAINT_RADIAL_GRADIENT) {
2864 nsvg__scaleGradient(shape->stroke.gradient, tx,ty, sx,sy);
2865 memcpy(t, shape->stroke.gradient->xform, sizeof(float)*6);
2866 nsvg__xformInverse(shape->stroke.gradient->xform, t);
2867 }
2868
2869 shape->strokeWidth *= avgs;
2870 shape->strokeDashOffset *= avgs;
2871 for (i = 0; i < shape->strokeDashCount; i++)
2872 shape->strokeDashArray[i] *= avgs;
2873 }
2874 }
2875
nsvgParse(char * input,const char * units,float dpi)2876 NSVGimage* nsvgParse(char* input, const char* units, float dpi)
2877 {
2878 NSVGparser* p;
2879 NSVGimage* ret = 0;
2880
2881 p = nsvg__createParser();
2882 if (p == NULL) {
2883 return NULL;
2884 }
2885 p->dpi = dpi;
2886
2887 nsvg__parseXML(input, nsvg__startElement, nsvg__endElement, nsvg__content, p);
2888
2889 // Scale to viewBox
2890 nsvg__scaleToViewbox(p, units);
2891
2892 ret = p->image;
2893 p->image = NULL;
2894
2895 nsvg__deleteParser(p);
2896
2897 return ret;
2898 }
2899
nsvgParseFromFile(const char * filename,const char * units,float dpi)2900 NSVGimage* nsvgParseFromFile(const char* filename, const char* units, float dpi)
2901 {
2902 FILE* fp = NULL;
2903 size_t size;
2904 char* data = NULL;
2905 NSVGimage* image = NULL;
2906
2907 fp = fopen(filename, "rb");
2908 if (!fp) goto error;
2909 fseek(fp, 0, SEEK_END);
2910 size = ftell(fp);
2911 fseek(fp, 0, SEEK_SET);
2912 data = (char*)malloc(size+1);
2913 if (data == NULL) goto error;
2914 if (fread(data, 1, size, fp) != size) goto error;
2915 data[size] = '\0'; // Must be null terminated.
2916 fclose(fp);
2917 image = nsvgParse(data, units, dpi);
2918 free(data);
2919
2920 return image;
2921
2922 error:
2923 if (fp) fclose(fp);
2924 if (data) free(data);
2925 if (image) nsvgDelete(image);
2926 return NULL;
2927 }
2928
nsvgDuplicatePath(NSVGpath * p)2929 NSVGpath* nsvgDuplicatePath(NSVGpath* p)
2930 {
2931 NSVGpath* res = NULL;
2932
2933 if (p == NULL)
2934 return NULL;
2935
2936 res = (NSVGpath*)malloc(sizeof(NSVGpath));
2937 if (res == NULL) goto error;
2938 memset(res, 0, sizeof(NSVGpath));
2939
2940 res->pts = (float*)malloc(p->npts*2*sizeof(float));
2941 if (res->pts == NULL) goto error;
2942 memcpy(res->pts, p->pts, p->npts * sizeof(float) * 2);
2943 res->npts = p->npts;
2944
2945 memcpy(res->bounds, p->bounds, sizeof(p->bounds));
2946
2947 res->closed = p->closed;
2948
2949 return res;
2950
2951 error:
2952 if (res != NULL) {
2953 free(res->pts);
2954 free(res);
2955 }
2956 return NULL;
2957 }
2958
nsvgDelete(NSVGimage * image)2959 void nsvgDelete(NSVGimage* image)
2960 {
2961 NSVGshape *snext, *shape;
2962 if (image == NULL) return;
2963 shape = image->shapes;
2964 while (shape != NULL) {
2965 snext = shape->next;
2966 nsvg__deletePaths(shape->paths);
2967 nsvg__deletePaint(&shape->fill);
2968 nsvg__deletePaint(&shape->stroke);
2969 free(shape);
2970 shape = snext;
2971 }
2972 free(image);
2973 }
2974
2975 #endif
2976