renderer_canvas_render_rd.cpp 104 KB

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  1. /**************************************************************************/
  2. /* renderer_canvas_render_rd.cpp */
  3. /**************************************************************************/
  4. /* This file is part of: */
  5. /* GODOT ENGINE */
  6. /* https://godotengine.org */
  7. /**************************************************************************/
  8. /* Copyright (c) 2014-present Godot Engine contributors (see AUTHORS.md). */
  9. /* Copyright (c) 2007-2014 Juan Linietsky, Ariel Manzur. */
  10. /* */
  11. /* Permission is hereby granted, free of charge, to any person obtaining */
  12. /* a copy of this software and associated documentation files (the */
  13. /* "Software"), to deal in the Software without restriction, including */
  14. /* without limitation the rights to use, copy, modify, merge, publish, */
  15. /* distribute, sublicense, and/or sell copies of the Software, and to */
  16. /* permit persons to whom the Software is furnished to do so, subject to */
  17. /* the following conditions: */
  18. /* */
  19. /* The above copyright notice and this permission notice shall be */
  20. /* included in all copies or substantial portions of the Software. */
  21. /* */
  22. /* THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND, */
  23. /* EXPRESS OR IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF */
  24. /* MERCHANTABILITY, FITNESS FOR A PARTICULAR PURPOSE AND NONINFRINGEMENT. */
  25. /* IN NO EVENT SHALL THE AUTHORS OR COPYRIGHT HOLDERS BE LIABLE FOR ANY */
  26. /* CLAIM, DAMAGES OR OTHER LIABILITY, WHETHER IN AN ACTION OF CONTRACT, */
  27. /* TORT OR OTHERWISE, ARISING FROM, OUT OF OR IN CONNECTION WITH THE */
  28. /* SOFTWARE OR THE USE OR OTHER DEALINGS IN THE SOFTWARE. */
  29. /**************************************************************************/
  30. #include "renderer_canvas_render_rd.h"
  31. #include "core/config/project_settings.h"
  32. #include "core/math/geometry_2d.h"
  33. #include "core/math/math_defs.h"
  34. #include "core/math/math_funcs.h"
  35. #include "renderer_compositor_rd.h"
  36. #include "servers/rendering/renderer_rd/storage_rd/material_storage.h"
  37. #include "servers/rendering/renderer_rd/storage_rd/particles_storage.h"
  38. #include "servers/rendering/renderer_rd/storage_rd/texture_storage.h"
  39. #include "servers/rendering/rendering_server_default.h"
  40. void RendererCanvasRenderRD::_update_transform_2d_to_mat4(const Transform2D &p_transform, float *p_mat4) {
  41. p_mat4[0] = p_transform.columns[0][0];
  42. p_mat4[1] = p_transform.columns[0][1];
  43. p_mat4[2] = 0;
  44. p_mat4[3] = 0;
  45. p_mat4[4] = p_transform.columns[1][0];
  46. p_mat4[5] = p_transform.columns[1][1];
  47. p_mat4[6] = 0;
  48. p_mat4[7] = 0;
  49. p_mat4[8] = 0;
  50. p_mat4[9] = 0;
  51. p_mat4[10] = 1;
  52. p_mat4[11] = 0;
  53. p_mat4[12] = p_transform.columns[2][0];
  54. p_mat4[13] = p_transform.columns[2][1];
  55. p_mat4[14] = 0;
  56. p_mat4[15] = 1;
  57. }
  58. void RendererCanvasRenderRD::_update_transform_2d_to_mat2x4(const Transform2D &p_transform, float *p_mat2x4) {
  59. p_mat2x4[0] = p_transform.columns[0][0];
  60. p_mat2x4[1] = p_transform.columns[1][0];
  61. p_mat2x4[2] = 0;
  62. p_mat2x4[3] = p_transform.columns[2][0];
  63. p_mat2x4[4] = p_transform.columns[0][1];
  64. p_mat2x4[5] = p_transform.columns[1][1];
  65. p_mat2x4[6] = 0;
  66. p_mat2x4[7] = p_transform.columns[2][1];
  67. }
  68. void RendererCanvasRenderRD::_update_transform_2d_to_mat2x3(const Transform2D &p_transform, float *p_mat2x3) {
  69. p_mat2x3[0] = p_transform.columns[0][0];
  70. p_mat2x3[1] = p_transform.columns[0][1];
  71. p_mat2x3[2] = p_transform.columns[1][0];
  72. p_mat2x3[3] = p_transform.columns[1][1];
  73. p_mat2x3[4] = p_transform.columns[2][0];
  74. p_mat2x3[5] = p_transform.columns[2][1];
  75. }
  76. void RendererCanvasRenderRD::_update_transform_to_mat4(const Transform3D &p_transform, float *p_mat4) {
  77. p_mat4[0] = p_transform.basis.rows[0][0];
  78. p_mat4[1] = p_transform.basis.rows[1][0];
  79. p_mat4[2] = p_transform.basis.rows[2][0];
  80. p_mat4[3] = 0;
  81. p_mat4[4] = p_transform.basis.rows[0][1];
  82. p_mat4[5] = p_transform.basis.rows[1][1];
  83. p_mat4[6] = p_transform.basis.rows[2][1];
  84. p_mat4[7] = 0;
  85. p_mat4[8] = p_transform.basis.rows[0][2];
  86. p_mat4[9] = p_transform.basis.rows[1][2];
  87. p_mat4[10] = p_transform.basis.rows[2][2];
  88. p_mat4[11] = 0;
  89. p_mat4[12] = p_transform.origin.x;
  90. p_mat4[13] = p_transform.origin.y;
  91. p_mat4[14] = p_transform.origin.z;
  92. p_mat4[15] = 1;
  93. }
  94. RendererCanvasRender::PolygonID RendererCanvasRenderRD::request_polygon(const Vector<int> &p_indices, const Vector<Point2> &p_points, const Vector<Color> &p_colors, const Vector<Point2> &p_uvs, const Vector<int> &p_bones, const Vector<float> &p_weights) {
  95. // Care must be taken to generate array formats
  96. // in ways where they could be reused, so we will
  97. // put single-occuring elements first, and repeated
  98. // elements later. This way the generated formats are
  99. // the same no matter the length of the arrays.
  100. // This dramatically reduces the amount of pipeline objects
  101. // that need to be created for these formats.
  102. RendererRD::MeshStorage *mesh_storage = RendererRD::MeshStorage::get_singleton();
  103. uint32_t vertex_count = p_points.size();
  104. uint32_t stride = 2; //vertices always repeat
  105. if ((uint32_t)p_colors.size() == vertex_count || p_colors.size() == 1) {
  106. stride += 4;
  107. }
  108. if ((uint32_t)p_uvs.size() == vertex_count) {
  109. stride += 2;
  110. }
  111. if ((uint32_t)p_bones.size() == vertex_count * 4 && (uint32_t)p_weights.size() == vertex_count * 4) {
  112. stride += 4;
  113. }
  114. uint32_t buffer_size = stride * p_points.size();
  115. Vector<uint8_t> polygon_buffer;
  116. polygon_buffer.resize(buffer_size * sizeof(float));
  117. Vector<RD::VertexAttribute> descriptions;
  118. descriptions.resize(5);
  119. Vector<RID> buffers;
  120. buffers.resize(5);
  121. {
  122. uint8_t *r = polygon_buffer.ptrw();
  123. float *fptr = reinterpret_cast<float *>(r);
  124. uint32_t *uptr = reinterpret_cast<uint32_t *>(r);
  125. uint32_t base_offset = 0;
  126. { //vertices
  127. RD::VertexAttribute vd;
  128. vd.format = RD::DATA_FORMAT_R32G32_SFLOAT;
  129. vd.offset = base_offset * sizeof(float);
  130. vd.location = RS::ARRAY_VERTEX;
  131. vd.stride = stride * sizeof(float);
  132. descriptions.write[0] = vd;
  133. const Vector2 *points_ptr = p_points.ptr();
  134. for (uint32_t i = 0; i < vertex_count; i++) {
  135. fptr[base_offset + i * stride + 0] = points_ptr[i].x;
  136. fptr[base_offset + i * stride + 1] = points_ptr[i].y;
  137. }
  138. base_offset += 2;
  139. }
  140. //colors
  141. if ((uint32_t)p_colors.size() == vertex_count || p_colors.size() == 1) {
  142. RD::VertexAttribute vd;
  143. vd.format = RD::DATA_FORMAT_R32G32B32A32_SFLOAT;
  144. vd.offset = base_offset * sizeof(float);
  145. vd.location = RS::ARRAY_COLOR;
  146. vd.stride = stride * sizeof(float);
  147. descriptions.write[1] = vd;
  148. if (p_colors.size() == 1) {
  149. Color color = p_colors[0];
  150. for (uint32_t i = 0; i < vertex_count; i++) {
  151. fptr[base_offset + i * stride + 0] = color.r;
  152. fptr[base_offset + i * stride + 1] = color.g;
  153. fptr[base_offset + i * stride + 2] = color.b;
  154. fptr[base_offset + i * stride + 3] = color.a;
  155. }
  156. } else {
  157. const Color *color_ptr = p_colors.ptr();
  158. for (uint32_t i = 0; i < vertex_count; i++) {
  159. fptr[base_offset + i * stride + 0] = color_ptr[i].r;
  160. fptr[base_offset + i * stride + 1] = color_ptr[i].g;
  161. fptr[base_offset + i * stride + 2] = color_ptr[i].b;
  162. fptr[base_offset + i * stride + 3] = color_ptr[i].a;
  163. }
  164. }
  165. base_offset += 4;
  166. } else {
  167. RD::VertexAttribute vd;
  168. vd.format = RD::DATA_FORMAT_R32G32B32A32_SFLOAT;
  169. vd.offset = 0;
  170. vd.location = RS::ARRAY_COLOR;
  171. vd.stride = 0;
  172. descriptions.write[1] = vd;
  173. buffers.write[1] = mesh_storage->mesh_get_default_rd_buffer(RendererRD::MeshStorage::DEFAULT_RD_BUFFER_COLOR);
  174. }
  175. //uvs
  176. if ((uint32_t)p_uvs.size() == vertex_count) {
  177. RD::VertexAttribute vd;
  178. vd.format = RD::DATA_FORMAT_R32G32_SFLOAT;
  179. vd.offset = base_offset * sizeof(float);
  180. vd.location = RS::ARRAY_TEX_UV;
  181. vd.stride = stride * sizeof(float);
  182. descriptions.write[2] = vd;
  183. const Vector2 *uv_ptr = p_uvs.ptr();
  184. for (uint32_t i = 0; i < vertex_count; i++) {
  185. fptr[base_offset + i * stride + 0] = uv_ptr[i].x;
  186. fptr[base_offset + i * stride + 1] = uv_ptr[i].y;
  187. }
  188. base_offset += 2;
  189. } else {
  190. RD::VertexAttribute vd;
  191. vd.format = RD::DATA_FORMAT_R32G32_SFLOAT;
  192. vd.offset = 0;
  193. vd.location = RS::ARRAY_TEX_UV;
  194. vd.stride = 0;
  195. descriptions.write[2] = vd;
  196. buffers.write[2] = mesh_storage->mesh_get_default_rd_buffer(RendererRD::MeshStorage::DEFAULT_RD_BUFFER_TEX_UV);
  197. }
  198. //bones
  199. if ((uint32_t)p_indices.size() == vertex_count * 4 && (uint32_t)p_weights.size() == vertex_count * 4) {
  200. RD::VertexAttribute vd;
  201. vd.format = RD::DATA_FORMAT_R16G16B16A16_UINT;
  202. vd.offset = base_offset * sizeof(float);
  203. vd.location = RS::ARRAY_BONES;
  204. vd.stride = stride * sizeof(float);
  205. descriptions.write[3] = vd;
  206. const int *bone_ptr = p_bones.ptr();
  207. for (uint32_t i = 0; i < vertex_count; i++) {
  208. uint16_t *bone16w = (uint16_t *)&uptr[base_offset + i * stride];
  209. bone16w[0] = bone_ptr[i * 4 + 0];
  210. bone16w[1] = bone_ptr[i * 4 + 1];
  211. bone16w[2] = bone_ptr[i * 4 + 2];
  212. bone16w[3] = bone_ptr[i * 4 + 3];
  213. }
  214. base_offset += 2;
  215. } else {
  216. RD::VertexAttribute vd;
  217. vd.format = RD::DATA_FORMAT_R32G32B32A32_UINT;
  218. vd.offset = 0;
  219. vd.location = RS::ARRAY_BONES;
  220. vd.stride = 0;
  221. descriptions.write[3] = vd;
  222. buffers.write[3] = mesh_storage->mesh_get_default_rd_buffer(RendererRD::MeshStorage::DEFAULT_RD_BUFFER_BONES);
  223. }
  224. //weights
  225. if ((uint32_t)p_weights.size() == vertex_count * 4) {
  226. RD::VertexAttribute vd;
  227. vd.format = RD::DATA_FORMAT_R16G16B16A16_UNORM;
  228. vd.offset = base_offset * sizeof(float);
  229. vd.location = RS::ARRAY_WEIGHTS;
  230. vd.stride = stride * sizeof(float);
  231. descriptions.write[4] = vd;
  232. const float *weight_ptr = p_weights.ptr();
  233. for (uint32_t i = 0; i < vertex_count; i++) {
  234. uint16_t *weight16w = (uint16_t *)&uptr[base_offset + i * stride];
  235. weight16w[0] = CLAMP(weight_ptr[i * 4 + 0] * 65535, 0, 65535);
  236. weight16w[1] = CLAMP(weight_ptr[i * 4 + 1] * 65535, 0, 65535);
  237. weight16w[2] = CLAMP(weight_ptr[i * 4 + 2] * 65535, 0, 65535);
  238. weight16w[3] = CLAMP(weight_ptr[i * 4 + 3] * 65535, 0, 65535);
  239. }
  240. base_offset += 2;
  241. } else {
  242. RD::VertexAttribute vd;
  243. vd.format = RD::DATA_FORMAT_R32G32B32A32_SFLOAT;
  244. vd.offset = 0;
  245. vd.location = RS::ARRAY_WEIGHTS;
  246. vd.stride = 0;
  247. descriptions.write[4] = vd;
  248. buffers.write[4] = mesh_storage->mesh_get_default_rd_buffer(RendererRD::MeshStorage::DEFAULT_RD_BUFFER_WEIGHTS);
  249. }
  250. //check that everything is as it should be
  251. ERR_FAIL_COND_V(base_offset != stride, 0); //bug
  252. }
  253. RD::VertexFormatID vertex_id = RD::get_singleton()->vertex_format_create(descriptions);
  254. ERR_FAIL_COND_V(vertex_id == RD::INVALID_ID, 0);
  255. PolygonBuffers pb;
  256. pb.vertex_buffer = RD::get_singleton()->vertex_buffer_create(polygon_buffer.size(), polygon_buffer);
  257. for (int i = 0; i < descriptions.size(); i++) {
  258. if (buffers[i] == RID()) { //if put in vertex, use as vertex
  259. buffers.write[i] = pb.vertex_buffer;
  260. }
  261. }
  262. pb.vertex_array = RD::get_singleton()->vertex_array_create(p_points.size(), vertex_id, buffers);
  263. if (p_indices.size()) {
  264. //create indices, as indices were requested
  265. Vector<uint8_t> index_buffer;
  266. index_buffer.resize(p_indices.size() * sizeof(int32_t));
  267. {
  268. uint8_t *w = index_buffer.ptrw();
  269. memcpy(w, p_indices.ptr(), sizeof(int32_t) * p_indices.size());
  270. }
  271. pb.index_buffer = RD::get_singleton()->index_buffer_create(p_indices.size(), RD::INDEX_BUFFER_FORMAT_UINT32, index_buffer);
  272. pb.indices = RD::get_singleton()->index_array_create(pb.index_buffer, 0, p_indices.size());
  273. }
  274. pb.vertex_format_id = vertex_id;
  275. PolygonID id = polygon_buffers.last_id++;
  276. polygon_buffers.polygons[id] = pb;
  277. return id;
  278. }
  279. void RendererCanvasRenderRD::free_polygon(PolygonID p_polygon) {
  280. PolygonBuffers *pb_ptr = polygon_buffers.polygons.getptr(p_polygon);
  281. ERR_FAIL_COND(!pb_ptr);
  282. PolygonBuffers &pb = *pb_ptr;
  283. if (pb.indices.is_valid()) {
  284. RD::get_singleton()->free(pb.indices);
  285. }
  286. if (pb.index_buffer.is_valid()) {
  287. RD::get_singleton()->free(pb.index_buffer);
  288. }
  289. RD::get_singleton()->free(pb.vertex_array);
  290. RD::get_singleton()->free(pb.vertex_buffer);
  291. polygon_buffers.polygons.erase(p_polygon);
  292. }
  293. ////////////////////
  294. void RendererCanvasRenderRD::_bind_canvas_texture(RD::DrawListID p_draw_list, RID p_texture, RS::CanvasItemTextureFilter p_base_filter, RS::CanvasItemTextureRepeat p_base_repeat, RID &r_last_texture, PushConstant &push_constant, Size2 &r_texpixel_size) {
  295. if (p_texture == RID()) {
  296. p_texture = default_canvas_texture;
  297. }
  298. if (r_last_texture == p_texture) {
  299. return; //nothing to do, its the same
  300. }
  301. RID uniform_set;
  302. Color specular_shininess;
  303. Size2i size;
  304. bool use_normal;
  305. bool use_specular;
  306. bool success = RendererRD::TextureStorage::get_singleton()->canvas_texture_get_uniform_set(p_texture, p_base_filter, p_base_repeat, shader.default_version_rd_shader, CANVAS_TEXTURE_UNIFORM_SET, uniform_set, size, specular_shininess, use_normal, use_specular);
  307. //something odd happened
  308. if (!success) {
  309. _bind_canvas_texture(p_draw_list, default_canvas_texture, p_base_filter, p_base_repeat, r_last_texture, push_constant, r_texpixel_size);
  310. return;
  311. }
  312. RD::get_singleton()->draw_list_bind_uniform_set(p_draw_list, uniform_set, CANVAS_TEXTURE_UNIFORM_SET);
  313. if (specular_shininess.a < 0.999) {
  314. push_constant.flags |= FLAGS_DEFAULT_SPECULAR_MAP_USED;
  315. } else {
  316. push_constant.flags &= ~FLAGS_DEFAULT_SPECULAR_MAP_USED;
  317. }
  318. if (use_normal) {
  319. push_constant.flags |= FLAGS_DEFAULT_NORMAL_MAP_USED;
  320. } else {
  321. push_constant.flags &= ~FLAGS_DEFAULT_NORMAL_MAP_USED;
  322. }
  323. push_constant.specular_shininess = uint32_t(CLAMP(specular_shininess.a * 255.0, 0, 255)) << 24;
  324. push_constant.specular_shininess |= uint32_t(CLAMP(specular_shininess.b * 255.0, 0, 255)) << 16;
  325. push_constant.specular_shininess |= uint32_t(CLAMP(specular_shininess.g * 255.0, 0, 255)) << 8;
  326. push_constant.specular_shininess |= uint32_t(CLAMP(specular_shininess.r * 255.0, 0, 255));
  327. r_texpixel_size.x = 1.0 / float(size.x);
  328. r_texpixel_size.y = 1.0 / float(size.y);
  329. push_constant.color_texture_pixel_size[0] = r_texpixel_size.x;
  330. push_constant.color_texture_pixel_size[1] = r_texpixel_size.y;
  331. r_last_texture = p_texture;
  332. }
  333. void RendererCanvasRenderRD::_render_item(RD::DrawListID p_draw_list, RID p_render_target, const Item *p_item, RD::FramebufferFormatID p_framebuffer_format, const Transform2D &p_canvas_transform_inverse, Item *&current_clip, Light *p_lights, PipelineVariants *p_pipeline_variants, bool &r_sdf_used) {
  334. //create an empty push constant
  335. RendererRD::TextureStorage *texture_storage = RendererRD::TextureStorage::get_singleton();
  336. RendererRD::MeshStorage *mesh_storage = RendererRD::MeshStorage::get_singleton();
  337. RendererRD::ParticlesStorage *particles_storage = RendererRD::ParticlesStorage::get_singleton();
  338. RS::CanvasItemTextureFilter current_filter = default_filter;
  339. RS::CanvasItemTextureRepeat current_repeat = default_repeat;
  340. if (p_item->texture_filter != RS::CANVAS_ITEM_TEXTURE_FILTER_DEFAULT) {
  341. current_filter = p_item->texture_filter;
  342. }
  343. if (p_item->texture_repeat != RS::CANVAS_ITEM_TEXTURE_REPEAT_DEFAULT) {
  344. current_repeat = p_item->texture_repeat;
  345. }
  346. PushConstant push_constant;
  347. Transform2D base_transform = p_canvas_transform_inverse * p_item->final_transform;
  348. Transform2D draw_transform;
  349. _update_transform_2d_to_mat2x3(base_transform, push_constant.world);
  350. Color base_color = p_item->final_modulate;
  351. for (int i = 0; i < 4; i++) {
  352. push_constant.modulation[i] = 0;
  353. push_constant.ninepatch_margins[i] = 0;
  354. push_constant.src_rect[i] = 0;
  355. push_constant.dst_rect[i] = 0;
  356. }
  357. push_constant.flags = 0;
  358. push_constant.color_texture_pixel_size[0] = 0;
  359. push_constant.color_texture_pixel_size[1] = 0;
  360. push_constant.pad[0] = 0;
  361. push_constant.pad[1] = 0;
  362. push_constant.lights[0] = 0;
  363. push_constant.lights[1] = 0;
  364. push_constant.lights[2] = 0;
  365. push_constant.lights[3] = 0;
  366. uint32_t base_flags = 0;
  367. uint16_t light_count = 0;
  368. PipelineLightMode light_mode;
  369. {
  370. Light *light = p_lights;
  371. while (light) {
  372. if (light->render_index_cache >= 0 && p_item->light_mask & light->item_mask && p_item->z_final >= light->z_min && p_item->z_final <= light->z_max && p_item->global_rect_cache.intersects_transformed(light->xform_cache, light->rect_cache)) {
  373. uint32_t light_index = light->render_index_cache;
  374. push_constant.lights[light_count >> 2] |= light_index << ((light_count & 3) * 8);
  375. light_count++;
  376. if (light_count == MAX_LIGHTS_PER_ITEM - 1) {
  377. break;
  378. }
  379. }
  380. light = light->next_ptr;
  381. }
  382. base_flags |= light_count << FLAGS_LIGHT_COUNT_SHIFT;
  383. }
  384. light_mode = (light_count > 0 || using_directional_lights) ? PIPELINE_LIGHT_MODE_ENABLED : PIPELINE_LIGHT_MODE_DISABLED;
  385. PipelineVariants *pipeline_variants = p_pipeline_variants;
  386. bool reclip = false;
  387. RID last_texture;
  388. Size2 texpixel_size;
  389. bool skipping = false;
  390. const Item::Command *c = p_item->commands;
  391. while (c) {
  392. if (skipping && c->type != Item::Command::TYPE_ANIMATION_SLICE) {
  393. c = c->next;
  394. continue;
  395. }
  396. push_constant.flags = base_flags | (push_constant.flags & (FLAGS_DEFAULT_NORMAL_MAP_USED | FLAGS_DEFAULT_SPECULAR_MAP_USED)); //reset on each command for sanity, keep canvastexture binding config
  397. switch (c->type) {
  398. case Item::Command::TYPE_RECT: {
  399. const Item::CommandRect *rect = static_cast<const Item::CommandRect *>(c);
  400. if (rect->flags & CANVAS_RECT_TILE) {
  401. current_repeat = RenderingServer::CanvasItemTextureRepeat::CANVAS_ITEM_TEXTURE_REPEAT_ENABLED;
  402. }
  403. //bind pipeline
  404. if (rect->flags & CANVAS_RECT_LCD) {
  405. RID pipeline = pipeline_variants->variants[light_mode][PIPELINE_VARIANT_QUAD_LCD_BLEND].get_render_pipeline(RD::INVALID_ID, p_framebuffer_format);
  406. RD::get_singleton()->draw_list_bind_render_pipeline(p_draw_list, pipeline);
  407. RD::get_singleton()->draw_list_set_blend_constants(p_draw_list, rect->modulate);
  408. } else {
  409. RID pipeline = pipeline_variants->variants[light_mode][PIPELINE_VARIANT_QUAD].get_render_pipeline(RD::INVALID_ID, p_framebuffer_format);
  410. RD::get_singleton()->draw_list_bind_render_pipeline(p_draw_list, pipeline);
  411. }
  412. //bind textures
  413. _bind_canvas_texture(p_draw_list, rect->texture, current_filter, current_repeat, last_texture, push_constant, texpixel_size);
  414. Rect2 src_rect;
  415. Rect2 dst_rect;
  416. if (rect->texture != RID()) {
  417. src_rect = (rect->flags & CANVAS_RECT_REGION) ? Rect2(rect->source.position * texpixel_size, rect->source.size * texpixel_size) : Rect2(0, 0, 1, 1);
  418. dst_rect = Rect2(rect->rect.position, rect->rect.size);
  419. if (dst_rect.size.width < 0) {
  420. dst_rect.position.x += dst_rect.size.width;
  421. dst_rect.size.width *= -1;
  422. }
  423. if (dst_rect.size.height < 0) {
  424. dst_rect.position.y += dst_rect.size.height;
  425. dst_rect.size.height *= -1;
  426. }
  427. if (rect->flags & CANVAS_RECT_FLIP_H) {
  428. src_rect.size.x *= -1;
  429. push_constant.flags |= FLAGS_FLIP_H;
  430. }
  431. if (rect->flags & CANVAS_RECT_FLIP_V) {
  432. src_rect.size.y *= -1;
  433. push_constant.flags |= FLAGS_FLIP_V;
  434. }
  435. if (rect->flags & CANVAS_RECT_TRANSPOSE) {
  436. push_constant.flags |= FLAGS_TRANSPOSE_RECT;
  437. }
  438. if (rect->flags & CANVAS_RECT_CLIP_UV) {
  439. push_constant.flags |= FLAGS_CLIP_RECT_UV;
  440. }
  441. } else {
  442. dst_rect = Rect2(rect->rect.position, rect->rect.size);
  443. if (dst_rect.size.width < 0) {
  444. dst_rect.position.x += dst_rect.size.width;
  445. dst_rect.size.width *= -1;
  446. }
  447. if (dst_rect.size.height < 0) {
  448. dst_rect.position.y += dst_rect.size.height;
  449. dst_rect.size.height *= -1;
  450. }
  451. src_rect = Rect2(0, 0, 1, 1);
  452. }
  453. if (rect->flags & CANVAS_RECT_MSDF) {
  454. push_constant.flags |= FLAGS_USE_MSDF;
  455. push_constant.msdf[0] = rect->px_range; // Pixel range.
  456. push_constant.msdf[1] = rect->outline; // Outline size.
  457. push_constant.msdf[2] = 0.f; // Reserved.
  458. push_constant.msdf[3] = 0.f; // Reserved.
  459. } else if (rect->flags & CANVAS_RECT_LCD) {
  460. push_constant.flags |= FLAGS_USE_LCD;
  461. }
  462. push_constant.modulation[0] = rect->modulate.r * base_color.r;
  463. push_constant.modulation[1] = rect->modulate.g * base_color.g;
  464. push_constant.modulation[2] = rect->modulate.b * base_color.b;
  465. push_constant.modulation[3] = rect->modulate.a * base_color.a;
  466. push_constant.src_rect[0] = src_rect.position.x;
  467. push_constant.src_rect[1] = src_rect.position.y;
  468. push_constant.src_rect[2] = src_rect.size.width;
  469. push_constant.src_rect[3] = src_rect.size.height;
  470. push_constant.dst_rect[0] = dst_rect.position.x;
  471. push_constant.dst_rect[1] = dst_rect.position.y;
  472. push_constant.dst_rect[2] = dst_rect.size.width;
  473. push_constant.dst_rect[3] = dst_rect.size.height;
  474. RD::get_singleton()->draw_list_set_push_constant(p_draw_list, &push_constant, sizeof(PushConstant));
  475. RD::get_singleton()->draw_list_bind_index_array(p_draw_list, shader.quad_index_array);
  476. RD::get_singleton()->draw_list_draw(p_draw_list, true);
  477. } break;
  478. case Item::Command::TYPE_NINEPATCH: {
  479. const Item::CommandNinePatch *np = static_cast<const Item::CommandNinePatch *>(c);
  480. //bind pipeline
  481. {
  482. RID pipeline = pipeline_variants->variants[light_mode][PIPELINE_VARIANT_NINEPATCH].get_render_pipeline(RD::INVALID_ID, p_framebuffer_format);
  483. RD::get_singleton()->draw_list_bind_render_pipeline(p_draw_list, pipeline);
  484. }
  485. //bind textures
  486. _bind_canvas_texture(p_draw_list, np->texture, current_filter, current_repeat, last_texture, push_constant, texpixel_size);
  487. Rect2 src_rect;
  488. Rect2 dst_rect(np->rect.position.x, np->rect.position.y, np->rect.size.x, np->rect.size.y);
  489. if (np->texture == RID()) {
  490. texpixel_size = Size2(1, 1);
  491. src_rect = Rect2(0, 0, 1, 1);
  492. } else {
  493. if (np->source != Rect2()) {
  494. src_rect = Rect2(np->source.position.x * texpixel_size.width, np->source.position.y * texpixel_size.height, np->source.size.x * texpixel_size.width, np->source.size.y * texpixel_size.height);
  495. push_constant.color_texture_pixel_size[0] = 1.0 / np->source.size.width;
  496. push_constant.color_texture_pixel_size[1] = 1.0 / np->source.size.height;
  497. } else {
  498. src_rect = Rect2(0, 0, 1, 1);
  499. }
  500. }
  501. push_constant.modulation[0] = np->color.r * base_color.r;
  502. push_constant.modulation[1] = np->color.g * base_color.g;
  503. push_constant.modulation[2] = np->color.b * base_color.b;
  504. push_constant.modulation[3] = np->color.a * base_color.a;
  505. push_constant.src_rect[0] = src_rect.position.x;
  506. push_constant.src_rect[1] = src_rect.position.y;
  507. push_constant.src_rect[2] = src_rect.size.width;
  508. push_constant.src_rect[3] = src_rect.size.height;
  509. push_constant.dst_rect[0] = dst_rect.position.x;
  510. push_constant.dst_rect[1] = dst_rect.position.y;
  511. push_constant.dst_rect[2] = dst_rect.size.width;
  512. push_constant.dst_rect[3] = dst_rect.size.height;
  513. push_constant.flags |= int(np->axis_x) << FLAGS_NINEPATCH_H_MODE_SHIFT;
  514. push_constant.flags |= int(np->axis_y) << FLAGS_NINEPATCH_V_MODE_SHIFT;
  515. if (np->draw_center) {
  516. push_constant.flags |= FLAGS_NINEPACH_DRAW_CENTER;
  517. }
  518. push_constant.ninepatch_margins[0] = np->margin[SIDE_LEFT];
  519. push_constant.ninepatch_margins[1] = np->margin[SIDE_TOP];
  520. push_constant.ninepatch_margins[2] = np->margin[SIDE_RIGHT];
  521. push_constant.ninepatch_margins[3] = np->margin[SIDE_BOTTOM];
  522. RD::get_singleton()->draw_list_set_push_constant(p_draw_list, &push_constant, sizeof(PushConstant));
  523. RD::get_singleton()->draw_list_bind_index_array(p_draw_list, shader.quad_index_array);
  524. RD::get_singleton()->draw_list_draw(p_draw_list, true);
  525. // Restore if overridden.
  526. push_constant.color_texture_pixel_size[0] = texpixel_size.x;
  527. push_constant.color_texture_pixel_size[1] = texpixel_size.y;
  528. } break;
  529. case Item::Command::TYPE_POLYGON: {
  530. const Item::CommandPolygon *polygon = static_cast<const Item::CommandPolygon *>(c);
  531. PolygonBuffers *pb = polygon_buffers.polygons.getptr(polygon->polygon.polygon_id);
  532. ERR_CONTINUE(!pb);
  533. //bind pipeline
  534. {
  535. static const PipelineVariant variant[RS::PRIMITIVE_MAX] = { PIPELINE_VARIANT_ATTRIBUTE_POINTS, PIPELINE_VARIANT_ATTRIBUTE_LINES, PIPELINE_VARIANT_ATTRIBUTE_LINES_STRIP, PIPELINE_VARIANT_ATTRIBUTE_TRIANGLES, PIPELINE_VARIANT_ATTRIBUTE_TRIANGLE_STRIP };
  536. ERR_CONTINUE(polygon->primitive < 0 || polygon->primitive >= RS::PRIMITIVE_MAX);
  537. RID pipeline = pipeline_variants->variants[light_mode][variant[polygon->primitive]].get_render_pipeline(pb->vertex_format_id, p_framebuffer_format);
  538. RD::get_singleton()->draw_list_bind_render_pipeline(p_draw_list, pipeline);
  539. }
  540. if (polygon->primitive == RS::PRIMITIVE_LINES) {
  541. //not supported in most hardware, so pointless
  542. //RD::get_singleton()->draw_list_set_line_width(p_draw_list, polygon->line_width);
  543. }
  544. //bind textures
  545. _bind_canvas_texture(p_draw_list, polygon->texture, current_filter, current_repeat, last_texture, push_constant, texpixel_size);
  546. push_constant.modulation[0] = base_color.r;
  547. push_constant.modulation[1] = base_color.g;
  548. push_constant.modulation[2] = base_color.b;
  549. push_constant.modulation[3] = base_color.a;
  550. for (int j = 0; j < 4; j++) {
  551. push_constant.src_rect[j] = 0;
  552. push_constant.dst_rect[j] = 0;
  553. push_constant.ninepatch_margins[j] = 0;
  554. }
  555. RD::get_singleton()->draw_list_set_push_constant(p_draw_list, &push_constant, sizeof(PushConstant));
  556. RD::get_singleton()->draw_list_bind_vertex_array(p_draw_list, pb->vertex_array);
  557. if (pb->indices.is_valid()) {
  558. RD::get_singleton()->draw_list_bind_index_array(p_draw_list, pb->indices);
  559. }
  560. RD::get_singleton()->draw_list_draw(p_draw_list, pb->indices.is_valid());
  561. } break;
  562. case Item::Command::TYPE_PRIMITIVE: {
  563. const Item::CommandPrimitive *primitive = static_cast<const Item::CommandPrimitive *>(c);
  564. //bind pipeline
  565. {
  566. static const PipelineVariant variant[4] = { PIPELINE_VARIANT_PRIMITIVE_POINTS, PIPELINE_VARIANT_PRIMITIVE_LINES, PIPELINE_VARIANT_PRIMITIVE_TRIANGLES, PIPELINE_VARIANT_PRIMITIVE_TRIANGLES };
  567. ERR_CONTINUE(primitive->point_count == 0 || primitive->point_count > 4);
  568. RID pipeline = pipeline_variants->variants[light_mode][variant[primitive->point_count - 1]].get_render_pipeline(RD::INVALID_ID, p_framebuffer_format);
  569. RD::get_singleton()->draw_list_bind_render_pipeline(p_draw_list, pipeline);
  570. }
  571. //bind textures
  572. _bind_canvas_texture(p_draw_list, primitive->texture, current_filter, current_repeat, last_texture, push_constant, texpixel_size);
  573. RD::get_singleton()->draw_list_bind_index_array(p_draw_list, primitive_arrays.index_array[MIN(3u, primitive->point_count) - 1]);
  574. for (uint32_t j = 0; j < MIN(3u, primitive->point_count); j++) {
  575. push_constant.points[j * 2 + 0] = primitive->points[j].x;
  576. push_constant.points[j * 2 + 1] = primitive->points[j].y;
  577. push_constant.uvs[j * 2 + 0] = primitive->uvs[j].x;
  578. push_constant.uvs[j * 2 + 1] = primitive->uvs[j].y;
  579. Color col = primitive->colors[j] * base_color;
  580. push_constant.colors[j * 2 + 0] = (uint32_t(Math::make_half_float(col.g)) << 16) | Math::make_half_float(col.r);
  581. push_constant.colors[j * 2 + 1] = (uint32_t(Math::make_half_float(col.a)) << 16) | Math::make_half_float(col.b);
  582. }
  583. RD::get_singleton()->draw_list_set_push_constant(p_draw_list, &push_constant, sizeof(PushConstant));
  584. RD::get_singleton()->draw_list_draw(p_draw_list, true);
  585. if (primitive->point_count == 4) {
  586. for (uint32_t j = 1; j < 3; j++) {
  587. //second half of triangle
  588. push_constant.points[j * 2 + 0] = primitive->points[j + 1].x;
  589. push_constant.points[j * 2 + 1] = primitive->points[j + 1].y;
  590. push_constant.uvs[j * 2 + 0] = primitive->uvs[j + 1].x;
  591. push_constant.uvs[j * 2 + 1] = primitive->uvs[j + 1].y;
  592. Color col = primitive->colors[j + 1] * base_color;
  593. push_constant.colors[j * 2 + 0] = (uint32_t(Math::make_half_float(col.g)) << 16) | Math::make_half_float(col.r);
  594. push_constant.colors[j * 2 + 1] = (uint32_t(Math::make_half_float(col.a)) << 16) | Math::make_half_float(col.b);
  595. }
  596. RD::get_singleton()->draw_list_set_push_constant(p_draw_list, &push_constant, sizeof(PushConstant));
  597. RD::get_singleton()->draw_list_draw(p_draw_list, true);
  598. }
  599. } break;
  600. case Item::Command::TYPE_MESH:
  601. case Item::Command::TYPE_MULTIMESH:
  602. case Item::Command::TYPE_PARTICLES: {
  603. RID mesh;
  604. RID mesh_instance;
  605. RID texture;
  606. Color modulate(1, 1, 1, 1);
  607. float world_backup[6];
  608. int instance_count = 1;
  609. for (int j = 0; j < 6; j++) {
  610. world_backup[j] = push_constant.world[j];
  611. }
  612. if (c->type == Item::Command::TYPE_MESH) {
  613. const Item::CommandMesh *m = static_cast<const Item::CommandMesh *>(c);
  614. mesh = m->mesh;
  615. mesh_instance = m->mesh_instance;
  616. texture = m->texture;
  617. modulate = m->modulate;
  618. _update_transform_2d_to_mat2x3(base_transform * draw_transform * m->transform, push_constant.world);
  619. } else if (c->type == Item::Command::TYPE_MULTIMESH) {
  620. const Item::CommandMultiMesh *mm = static_cast<const Item::CommandMultiMesh *>(c);
  621. RID multimesh = mm->multimesh;
  622. mesh = mesh_storage->multimesh_get_mesh(multimesh);
  623. texture = mm->texture;
  624. if (mesh_storage->multimesh_get_transform_format(multimesh) != RS::MULTIMESH_TRANSFORM_2D) {
  625. break;
  626. }
  627. instance_count = mesh_storage->multimesh_get_instances_to_draw(multimesh);
  628. if (instance_count == 0) {
  629. break;
  630. }
  631. RID uniform_set = mesh_storage->multimesh_get_2d_uniform_set(multimesh, shader.default_version_rd_shader, TRANSFORMS_UNIFORM_SET);
  632. RD::get_singleton()->draw_list_bind_uniform_set(p_draw_list, uniform_set, TRANSFORMS_UNIFORM_SET);
  633. push_constant.flags |= 1; //multimesh, trails disabled
  634. if (mesh_storage->multimesh_uses_colors(multimesh)) {
  635. push_constant.flags |= FLAGS_INSTANCING_HAS_COLORS;
  636. }
  637. if (mesh_storage->multimesh_uses_custom_data(multimesh)) {
  638. push_constant.flags |= FLAGS_INSTANCING_HAS_CUSTOM_DATA;
  639. }
  640. } else if (c->type == Item::Command::TYPE_PARTICLES) {
  641. const Item::CommandParticles *pt = static_cast<const Item::CommandParticles *>(c);
  642. ERR_BREAK(particles_storage->particles_get_mode(pt->particles) != RS::PARTICLES_MODE_2D);
  643. particles_storage->particles_request_process(pt->particles);
  644. if (particles_storage->particles_is_inactive(pt->particles) || particles_storage->particles_get_frame_counter(pt->particles) == 0) {
  645. break;
  646. }
  647. RenderingServerDefault::redraw_request(); // active particles means redraw request
  648. int dpc = particles_storage->particles_get_draw_passes(pt->particles);
  649. if (dpc == 0) {
  650. break; //nothing to draw
  651. }
  652. uint32_t divisor = 1;
  653. instance_count = particles_storage->particles_get_amount(pt->particles, divisor);
  654. RID uniform_set = particles_storage->particles_get_instance_buffer_uniform_set(pt->particles, shader.default_version_rd_shader, TRANSFORMS_UNIFORM_SET);
  655. RD::get_singleton()->draw_list_bind_uniform_set(p_draw_list, uniform_set, TRANSFORMS_UNIFORM_SET);
  656. push_constant.flags |= divisor;
  657. instance_count /= divisor;
  658. push_constant.flags |= FLAGS_INSTANCING_HAS_COLORS;
  659. push_constant.flags |= FLAGS_INSTANCING_HAS_CUSTOM_DATA;
  660. mesh = particles_storage->particles_get_draw_pass_mesh(pt->particles, 0); //higher ones are ignored
  661. texture = pt->texture;
  662. if (particles_storage->particles_has_collision(pt->particles) && texture_storage->render_target_is_sdf_enabled(p_render_target)) {
  663. //pass collision information
  664. Transform2D xform = p_item->final_transform;
  665. RID sdf_texture = texture_storage->render_target_get_sdf_texture(p_render_target);
  666. Rect2 to_screen;
  667. {
  668. Rect2 sdf_rect = texture_storage->render_target_get_sdf_rect(p_render_target);
  669. to_screen.size = Vector2(1.0 / sdf_rect.size.width, 1.0 / sdf_rect.size.height);
  670. to_screen.position = -sdf_rect.position * to_screen.size;
  671. }
  672. particles_storage->particles_set_canvas_sdf_collision(pt->particles, true, xform, to_screen, sdf_texture);
  673. } else {
  674. particles_storage->particles_set_canvas_sdf_collision(pt->particles, false, Transform2D(), Rect2(), RID());
  675. }
  676. // Signal that SDF texture needs to be updated.
  677. r_sdf_used |= particles_storage->particles_has_collision(pt->particles);
  678. }
  679. if (mesh.is_null()) {
  680. break;
  681. }
  682. _bind_canvas_texture(p_draw_list, texture, current_filter, current_repeat, last_texture, push_constant, texpixel_size);
  683. uint32_t surf_count = mesh_storage->mesh_get_surface_count(mesh);
  684. static const PipelineVariant variant[RS::PRIMITIVE_MAX] = { PIPELINE_VARIANT_ATTRIBUTE_POINTS, PIPELINE_VARIANT_ATTRIBUTE_LINES, PIPELINE_VARIANT_ATTRIBUTE_LINES_STRIP, PIPELINE_VARIANT_ATTRIBUTE_TRIANGLES, PIPELINE_VARIANT_ATTRIBUTE_TRIANGLE_STRIP };
  685. push_constant.modulation[0] = base_color.r * modulate.r;
  686. push_constant.modulation[1] = base_color.g * modulate.g;
  687. push_constant.modulation[2] = base_color.b * modulate.b;
  688. push_constant.modulation[3] = base_color.a * modulate.a;
  689. for (int j = 0; j < 4; j++) {
  690. push_constant.src_rect[j] = 0;
  691. push_constant.dst_rect[j] = 0;
  692. push_constant.ninepatch_margins[j] = 0;
  693. }
  694. for (uint32_t j = 0; j < surf_count; j++) {
  695. void *surface = mesh_storage->mesh_get_surface(mesh, j);
  696. RS::PrimitiveType primitive = mesh_storage->mesh_surface_get_primitive(surface);
  697. ERR_CONTINUE(primitive < 0 || primitive >= RS::PRIMITIVE_MAX);
  698. uint32_t input_mask = pipeline_variants->variants[light_mode][variant[primitive]].get_vertex_input_mask();
  699. RID vertex_array;
  700. RD::VertexFormatID vertex_format = RD::INVALID_FORMAT_ID;
  701. if (mesh_instance.is_valid()) {
  702. mesh_storage->mesh_instance_surface_get_vertex_arrays_and_format(mesh_instance, j, input_mask, vertex_array, vertex_format);
  703. } else {
  704. mesh_storage->mesh_surface_get_vertex_arrays_and_format(surface, input_mask, vertex_array, vertex_format);
  705. }
  706. RID pipeline = pipeline_variants->variants[light_mode][variant[primitive]].get_render_pipeline(vertex_format, p_framebuffer_format);
  707. RD::get_singleton()->draw_list_bind_render_pipeline(p_draw_list, pipeline);
  708. RID index_array = mesh_storage->mesh_surface_get_index_array(surface, 0);
  709. if (index_array.is_valid()) {
  710. RD::get_singleton()->draw_list_bind_index_array(p_draw_list, index_array);
  711. }
  712. RD::get_singleton()->draw_list_bind_vertex_array(p_draw_list, vertex_array);
  713. RD::get_singleton()->draw_list_set_push_constant(p_draw_list, &push_constant, sizeof(PushConstant));
  714. RD::get_singleton()->draw_list_draw(p_draw_list, index_array.is_valid(), instance_count);
  715. }
  716. for (int j = 0; j < 6; j++) {
  717. push_constant.world[j] = world_backup[j];
  718. }
  719. } break;
  720. case Item::Command::TYPE_TRANSFORM: {
  721. const Item::CommandTransform *transform = static_cast<const Item::CommandTransform *>(c);
  722. draw_transform = transform->xform;
  723. _update_transform_2d_to_mat2x3(base_transform * transform->xform, push_constant.world);
  724. } break;
  725. case Item::Command::TYPE_CLIP_IGNORE: {
  726. const Item::CommandClipIgnore *ci = static_cast<const Item::CommandClipIgnore *>(c);
  727. if (current_clip) {
  728. if (ci->ignore != reclip) {
  729. if (ci->ignore) {
  730. RD::get_singleton()->draw_list_disable_scissor(p_draw_list);
  731. reclip = true;
  732. } else {
  733. RD::get_singleton()->draw_list_enable_scissor(p_draw_list, current_clip->final_clip_rect);
  734. reclip = false;
  735. }
  736. }
  737. }
  738. } break;
  739. case Item::Command::TYPE_ANIMATION_SLICE: {
  740. const Item::CommandAnimationSlice *as = static_cast<const Item::CommandAnimationSlice *>(c);
  741. double current_time = RendererCompositorRD::get_singleton()->get_total_time();
  742. double local_time = Math::fposmod(current_time - as->offset, as->animation_length);
  743. skipping = !(local_time >= as->slice_begin && local_time < as->slice_end);
  744. RenderingServerDefault::redraw_request(); // animation visible means redraw request
  745. } break;
  746. }
  747. c = c->next;
  748. }
  749. if (current_clip && reclip) {
  750. //will make it re-enable clipping if needed afterwards
  751. current_clip = nullptr;
  752. }
  753. }
  754. RID RendererCanvasRenderRD::_create_base_uniform_set(RID p_to_render_target, bool p_backbuffer) {
  755. RendererRD::TextureStorage *texture_storage = RendererRD::TextureStorage::get_singleton();
  756. RendererRD::MaterialStorage *material_storage = RendererRD::MaterialStorage::get_singleton();
  757. //re create canvas state
  758. Vector<RD::Uniform> uniforms;
  759. {
  760. RD::Uniform u;
  761. u.uniform_type = RD::UNIFORM_TYPE_UNIFORM_BUFFER;
  762. u.binding = 1;
  763. u.append_id(state.canvas_state_buffer);
  764. uniforms.push_back(u);
  765. }
  766. {
  767. RD::Uniform u;
  768. u.uniform_type = RD::UNIFORM_TYPE_UNIFORM_BUFFER;
  769. u.binding = 2;
  770. u.append_id(state.lights_uniform_buffer);
  771. uniforms.push_back(u);
  772. }
  773. {
  774. RD::Uniform u;
  775. u.uniform_type = RD::UNIFORM_TYPE_TEXTURE;
  776. u.binding = 3;
  777. u.append_id(RendererRD::TextureStorage::get_singleton()->decal_atlas_get_texture());
  778. uniforms.push_back(u);
  779. }
  780. {
  781. RD::Uniform u;
  782. u.uniform_type = RD::UNIFORM_TYPE_TEXTURE;
  783. u.binding = 4;
  784. u.append_id(state.shadow_texture);
  785. uniforms.push_back(u);
  786. }
  787. {
  788. RD::Uniform u;
  789. u.uniform_type = RD::UNIFORM_TYPE_SAMPLER;
  790. u.binding = 5;
  791. u.append_id(state.shadow_sampler);
  792. uniforms.push_back(u);
  793. }
  794. {
  795. RD::Uniform u;
  796. u.uniform_type = RD::UNIFORM_TYPE_TEXTURE;
  797. u.binding = 6;
  798. RID screen;
  799. if (p_backbuffer) {
  800. screen = texture_storage->render_target_get_rd_texture(p_to_render_target);
  801. } else {
  802. screen = texture_storage->render_target_get_rd_backbuffer(p_to_render_target);
  803. if (screen.is_null()) { //unallocated backbuffer
  804. screen = RendererRD::TextureStorage::get_singleton()->texture_rd_get_default(RendererRD::TextureStorage::DEFAULT_RD_TEXTURE_WHITE);
  805. }
  806. }
  807. u.append_id(screen);
  808. uniforms.push_back(u);
  809. }
  810. {
  811. RD::Uniform u;
  812. u.uniform_type = RD::UNIFORM_TYPE_TEXTURE;
  813. u.binding = 7;
  814. RID sdf = texture_storage->render_target_get_sdf_texture(p_to_render_target);
  815. u.append_id(sdf);
  816. uniforms.push_back(u);
  817. }
  818. {
  819. //needs samplers for the material (uses custom textures) create them
  820. Vector<RID> ids;
  821. ids.resize(12);
  822. RID *ids_ptr = ids.ptrw();
  823. ids_ptr[0] = material_storage->sampler_rd_get_default(RS::CANVAS_ITEM_TEXTURE_FILTER_NEAREST, RS::CANVAS_ITEM_TEXTURE_REPEAT_DISABLED);
  824. ids_ptr[1] = material_storage->sampler_rd_get_default(RS::CANVAS_ITEM_TEXTURE_FILTER_LINEAR, RS::CANVAS_ITEM_TEXTURE_REPEAT_DISABLED);
  825. ids_ptr[2] = material_storage->sampler_rd_get_default(RS::CANVAS_ITEM_TEXTURE_FILTER_NEAREST_WITH_MIPMAPS, RS::CANVAS_ITEM_TEXTURE_REPEAT_DISABLED);
  826. ids_ptr[3] = material_storage->sampler_rd_get_default(RS::CANVAS_ITEM_TEXTURE_FILTER_LINEAR_WITH_MIPMAPS, RS::CANVAS_ITEM_TEXTURE_REPEAT_DISABLED);
  827. ids_ptr[4] = material_storage->sampler_rd_get_default(RS::CANVAS_ITEM_TEXTURE_FILTER_NEAREST_WITH_MIPMAPS_ANISOTROPIC, RS::CANVAS_ITEM_TEXTURE_REPEAT_DISABLED);
  828. ids_ptr[5] = material_storage->sampler_rd_get_default(RS::CANVAS_ITEM_TEXTURE_FILTER_LINEAR_WITH_MIPMAPS_ANISOTROPIC, RS::CANVAS_ITEM_TEXTURE_REPEAT_DISABLED);
  829. ids_ptr[6] = material_storage->sampler_rd_get_default(RS::CANVAS_ITEM_TEXTURE_FILTER_NEAREST, RS::CANVAS_ITEM_TEXTURE_REPEAT_ENABLED);
  830. ids_ptr[7] = material_storage->sampler_rd_get_default(RS::CANVAS_ITEM_TEXTURE_FILTER_LINEAR, RS::CANVAS_ITEM_TEXTURE_REPEAT_ENABLED);
  831. ids_ptr[8] = material_storage->sampler_rd_get_default(RS::CANVAS_ITEM_TEXTURE_FILTER_NEAREST_WITH_MIPMAPS, RS::CANVAS_ITEM_TEXTURE_REPEAT_ENABLED);
  832. ids_ptr[9] = material_storage->sampler_rd_get_default(RS::CANVAS_ITEM_TEXTURE_FILTER_LINEAR_WITH_MIPMAPS, RS::CANVAS_ITEM_TEXTURE_REPEAT_ENABLED);
  833. ids_ptr[10] = material_storage->sampler_rd_get_default(RS::CANVAS_ITEM_TEXTURE_FILTER_NEAREST_WITH_MIPMAPS_ANISOTROPIC, RS::CANVAS_ITEM_TEXTURE_REPEAT_ENABLED);
  834. ids_ptr[11] = material_storage->sampler_rd_get_default(RS::CANVAS_ITEM_TEXTURE_FILTER_LINEAR_WITH_MIPMAPS_ANISOTROPIC, RS::CANVAS_ITEM_TEXTURE_REPEAT_ENABLED);
  835. RD::Uniform u(RD::UNIFORM_TYPE_SAMPLER, 8, ids);
  836. uniforms.push_back(u);
  837. }
  838. {
  839. RD::Uniform u;
  840. u.uniform_type = RD::UNIFORM_TYPE_STORAGE_BUFFER;
  841. u.binding = 9;
  842. u.append_id(RendererRD::MaterialStorage::get_singleton()->global_shader_uniforms_get_storage_buffer());
  843. uniforms.push_back(u);
  844. }
  845. RID uniform_set = RD::get_singleton()->uniform_set_create(uniforms, shader.default_version_rd_shader, BASE_UNIFORM_SET);
  846. if (p_backbuffer) {
  847. texture_storage->render_target_set_backbuffer_uniform_set(p_to_render_target, uniform_set);
  848. } else {
  849. texture_storage->render_target_set_framebuffer_uniform_set(p_to_render_target, uniform_set);
  850. }
  851. return uniform_set;
  852. }
  853. void RendererCanvasRenderRD::_render_items(RID p_to_render_target, int p_item_count, const Transform2D &p_canvas_transform_inverse, Light *p_lights, bool &r_sdf_used, bool p_to_backbuffer) {
  854. RendererRD::MaterialStorage *material_storage = RendererRD::MaterialStorage::get_singleton();
  855. RendererRD::TextureStorage *texture_storage = RendererRD::TextureStorage::get_singleton();
  856. Item *current_clip = nullptr;
  857. Transform2D canvas_transform_inverse = p_canvas_transform_inverse;
  858. RID framebuffer;
  859. RID fb_uniform_set;
  860. bool clear = false;
  861. Vector<Color> clear_colors;
  862. if (p_to_backbuffer) {
  863. framebuffer = texture_storage->render_target_get_rd_backbuffer_framebuffer(p_to_render_target);
  864. fb_uniform_set = texture_storage->render_target_get_backbuffer_uniform_set(p_to_render_target);
  865. } else {
  866. framebuffer = texture_storage->render_target_get_rd_framebuffer(p_to_render_target);
  867. if (texture_storage->render_target_is_clear_requested(p_to_render_target)) {
  868. clear = true;
  869. clear_colors.push_back(texture_storage->render_target_get_clear_request_color(p_to_render_target));
  870. texture_storage->render_target_disable_clear_request(p_to_render_target);
  871. }
  872. // TODO: Obtain from framebuffer format eventually when this is implemented.
  873. fb_uniform_set = texture_storage->render_target_get_framebuffer_uniform_set(p_to_render_target);
  874. }
  875. if (fb_uniform_set.is_null() || !RD::get_singleton()->uniform_set_is_valid(fb_uniform_set)) {
  876. fb_uniform_set = _create_base_uniform_set(p_to_render_target, p_to_backbuffer);
  877. }
  878. RD::FramebufferFormatID fb_format = RD::get_singleton()->framebuffer_get_format(framebuffer);
  879. RD::DrawListID draw_list = RD::get_singleton()->draw_list_begin(framebuffer, clear ? RD::INITIAL_ACTION_CLEAR : RD::INITIAL_ACTION_KEEP, RD::FINAL_ACTION_READ, RD::INITIAL_ACTION_KEEP, RD::FINAL_ACTION_DISCARD, clear_colors);
  880. RD::get_singleton()->draw_list_bind_uniform_set(draw_list, fb_uniform_set, BASE_UNIFORM_SET);
  881. RD::get_singleton()->draw_list_bind_uniform_set(draw_list, state.default_transforms_uniform_set, TRANSFORMS_UNIFORM_SET);
  882. RID prev_material;
  883. PipelineVariants *pipeline_variants = &shader.pipeline_variants;
  884. for (int i = 0; i < p_item_count; i++) {
  885. Item *ci = items[i];
  886. if (current_clip != ci->final_clip_owner) {
  887. current_clip = ci->final_clip_owner;
  888. //setup clip
  889. if (current_clip) {
  890. RD::get_singleton()->draw_list_enable_scissor(draw_list, current_clip->final_clip_rect);
  891. } else {
  892. RD::get_singleton()->draw_list_disable_scissor(draw_list);
  893. }
  894. }
  895. RID material = ci->material_owner == nullptr ? ci->material : ci->material_owner->material;
  896. if (ci->use_canvas_group) {
  897. if (ci->canvas_group->mode == RS::CANVAS_GROUP_MODE_CLIP_AND_DRAW) {
  898. material = default_clip_children_material;
  899. } else {
  900. if (material.is_null()) {
  901. if (ci->canvas_group->mode == RS::CANVAS_GROUP_MODE_CLIP_ONLY) {
  902. material = default_clip_children_material;
  903. } else {
  904. material = default_canvas_group_material;
  905. }
  906. }
  907. }
  908. }
  909. if (material != prev_material) {
  910. CanvasMaterialData *material_data = nullptr;
  911. if (material.is_valid()) {
  912. material_data = static_cast<CanvasMaterialData *>(material_storage->material_get_data(material, RendererRD::MaterialStorage::SHADER_TYPE_2D));
  913. }
  914. if (material_data) {
  915. if (material_data->shader_data->version.is_valid() && material_data->shader_data->valid) {
  916. pipeline_variants = &material_data->shader_data->pipeline_variants;
  917. // Update uniform set.
  918. if (material_data->uniform_set.is_valid() && RD::get_singleton()->uniform_set_is_valid(material_data->uniform_set)) { // Material may not have a uniform set.
  919. RD::get_singleton()->draw_list_bind_uniform_set(draw_list, material_data->uniform_set, MATERIAL_UNIFORM_SET);
  920. material_data->set_as_used();
  921. }
  922. } else {
  923. pipeline_variants = &shader.pipeline_variants;
  924. }
  925. } else {
  926. pipeline_variants = &shader.pipeline_variants;
  927. }
  928. }
  929. _render_item(draw_list, p_to_render_target, ci, fb_format, canvas_transform_inverse, current_clip, p_lights, pipeline_variants, r_sdf_used);
  930. prev_material = material;
  931. }
  932. RD::get_singleton()->draw_list_end();
  933. }
  934. void RendererCanvasRenderRD::canvas_render_items(RID p_to_render_target, Item *p_item_list, const Color &p_modulate, Light *p_light_list, Light *p_directional_light_list, const Transform2D &p_canvas_transform, RenderingServer::CanvasItemTextureFilter p_default_filter, RenderingServer::CanvasItemTextureRepeat p_default_repeat, bool p_snap_2d_vertices_to_pixel, bool &r_sdf_used) {
  935. RendererRD::TextureStorage *texture_storage = RendererRD::TextureStorage::get_singleton();
  936. RendererRD::MaterialStorage *material_storage = RendererRD::MaterialStorage::get_singleton();
  937. RendererRD::MeshStorage *mesh_storage = RendererRD::MeshStorage::get_singleton();
  938. r_sdf_used = false;
  939. int item_count = 0;
  940. //setup canvas state uniforms if needed
  941. Transform2D canvas_transform_inverse = p_canvas_transform.affine_inverse();
  942. //setup directional lights if exist
  943. uint32_t light_count = 0;
  944. uint32_t directional_light_count = 0;
  945. {
  946. Light *l = p_directional_light_list;
  947. uint32_t index = 0;
  948. while (l) {
  949. if (index == state.max_lights_per_render) {
  950. l->render_index_cache = -1;
  951. l = l->next_ptr;
  952. continue;
  953. }
  954. CanvasLight *clight = canvas_light_owner.get_or_null(l->light_internal);
  955. if (!clight) { //unused or invalid texture
  956. l->render_index_cache = -1;
  957. l = l->next_ptr;
  958. ERR_CONTINUE(!clight);
  959. }
  960. Vector2 canvas_light_dir = l->xform_cache.columns[1].normalized();
  961. state.light_uniforms[index].position[0] = -canvas_light_dir.x;
  962. state.light_uniforms[index].position[1] = -canvas_light_dir.y;
  963. _update_transform_2d_to_mat2x4(clight->shadow.directional_xform, state.light_uniforms[index].shadow_matrix);
  964. state.light_uniforms[index].height = l->height; //0..1 here
  965. for (int i = 0; i < 4; i++) {
  966. state.light_uniforms[index].shadow_color[i] = uint8_t(CLAMP(int32_t(l->shadow_color[i] * 255.0), 0, 255));
  967. state.light_uniforms[index].color[i] = l->color[i];
  968. }
  969. state.light_uniforms[index].color[3] = l->energy; //use alpha for energy, so base color can go separate
  970. if (state.shadow_fb.is_valid()) {
  971. state.light_uniforms[index].shadow_pixel_size = (1.0 / state.shadow_texture_size) * (1.0 + l->shadow_smooth);
  972. state.light_uniforms[index].shadow_z_far_inv = 1.0 / clight->shadow.z_far;
  973. state.light_uniforms[index].shadow_y_ofs = clight->shadow.y_offset;
  974. } else {
  975. state.light_uniforms[index].shadow_pixel_size = 1.0;
  976. state.light_uniforms[index].shadow_z_far_inv = 1.0;
  977. state.light_uniforms[index].shadow_y_ofs = 0;
  978. }
  979. state.light_uniforms[index].flags = l->blend_mode << LIGHT_FLAGS_BLEND_SHIFT;
  980. state.light_uniforms[index].flags |= l->shadow_filter << LIGHT_FLAGS_FILTER_SHIFT;
  981. if (clight->shadow.enabled) {
  982. state.light_uniforms[index].flags |= LIGHT_FLAGS_HAS_SHADOW;
  983. }
  984. l->render_index_cache = index;
  985. index++;
  986. l = l->next_ptr;
  987. }
  988. light_count = index;
  989. directional_light_count = light_count;
  990. using_directional_lights = directional_light_count > 0;
  991. }
  992. //setup lights if exist
  993. {
  994. Light *l = p_light_list;
  995. uint32_t index = light_count;
  996. while (l) {
  997. if (index == state.max_lights_per_render) {
  998. l->render_index_cache = -1;
  999. l = l->next_ptr;
  1000. continue;
  1001. }
  1002. CanvasLight *clight = canvas_light_owner.get_or_null(l->light_internal);
  1003. if (!clight) { //unused or invalid texture
  1004. l->render_index_cache = -1;
  1005. l = l->next_ptr;
  1006. ERR_CONTINUE(!clight);
  1007. }
  1008. Vector2 canvas_light_pos = p_canvas_transform.xform(l->xform.get_origin()); //convert light position to canvas coordinates, as all computation is done in canvas coords to avoid precision loss
  1009. state.light_uniforms[index].position[0] = canvas_light_pos.x;
  1010. state.light_uniforms[index].position[1] = canvas_light_pos.y;
  1011. _update_transform_2d_to_mat2x4(l->light_shader_xform.affine_inverse(), state.light_uniforms[index].matrix);
  1012. _update_transform_2d_to_mat2x4(l->xform_cache.affine_inverse(), state.light_uniforms[index].shadow_matrix);
  1013. state.light_uniforms[index].height = l->height * (p_canvas_transform.columns[0].length() + p_canvas_transform.columns[1].length()) * 0.5; //approximate height conversion to the canvas size, since all calculations are done in canvas coords to avoid precision loss
  1014. for (int i = 0; i < 4; i++) {
  1015. state.light_uniforms[index].shadow_color[i] = uint8_t(CLAMP(int32_t(l->shadow_color[i] * 255.0), 0, 255));
  1016. state.light_uniforms[index].color[i] = l->color[i];
  1017. }
  1018. state.light_uniforms[index].color[3] = l->energy; //use alpha for energy, so base color can go separate
  1019. if (state.shadow_fb.is_valid()) {
  1020. state.light_uniforms[index].shadow_pixel_size = (1.0 / state.shadow_texture_size) * (1.0 + l->shadow_smooth);
  1021. state.light_uniforms[index].shadow_z_far_inv = 1.0 / clight->shadow.z_far;
  1022. state.light_uniforms[index].shadow_y_ofs = clight->shadow.y_offset;
  1023. } else {
  1024. state.light_uniforms[index].shadow_pixel_size = 1.0;
  1025. state.light_uniforms[index].shadow_z_far_inv = 1.0;
  1026. state.light_uniforms[index].shadow_y_ofs = 0;
  1027. }
  1028. state.light_uniforms[index].flags = l->blend_mode << LIGHT_FLAGS_BLEND_SHIFT;
  1029. state.light_uniforms[index].flags |= l->shadow_filter << LIGHT_FLAGS_FILTER_SHIFT;
  1030. if (clight->shadow.enabled) {
  1031. state.light_uniforms[index].flags |= LIGHT_FLAGS_HAS_SHADOW;
  1032. }
  1033. if (clight->texture.is_valid()) {
  1034. Rect2 atlas_rect = RendererRD::TextureStorage::get_singleton()->decal_atlas_get_texture_rect(clight->texture);
  1035. state.light_uniforms[index].atlas_rect[0] = atlas_rect.position.x;
  1036. state.light_uniforms[index].atlas_rect[1] = atlas_rect.position.y;
  1037. state.light_uniforms[index].atlas_rect[2] = atlas_rect.size.width;
  1038. state.light_uniforms[index].atlas_rect[3] = atlas_rect.size.height;
  1039. } else {
  1040. state.light_uniforms[index].atlas_rect[0] = 0;
  1041. state.light_uniforms[index].atlas_rect[1] = 0;
  1042. state.light_uniforms[index].atlas_rect[2] = 0;
  1043. state.light_uniforms[index].atlas_rect[3] = 0;
  1044. }
  1045. l->render_index_cache = index;
  1046. index++;
  1047. l = l->next_ptr;
  1048. }
  1049. light_count = index;
  1050. }
  1051. if (light_count > 0) {
  1052. RD::get_singleton()->buffer_update(state.lights_uniform_buffer, 0, sizeof(LightUniform) * light_count, &state.light_uniforms[0]);
  1053. }
  1054. {
  1055. //update canvas state uniform buffer
  1056. State::Buffer state_buffer;
  1057. Size2i ssize = texture_storage->render_target_get_size(p_to_render_target);
  1058. Transform3D screen_transform;
  1059. screen_transform.translate_local(-(ssize.width / 2.0f), -(ssize.height / 2.0f), 0.0f);
  1060. screen_transform.scale(Vector3(2.0f / ssize.width, 2.0f / ssize.height, 1.0f));
  1061. _update_transform_to_mat4(screen_transform, state_buffer.screen_transform);
  1062. _update_transform_2d_to_mat4(p_canvas_transform, state_buffer.canvas_transform);
  1063. Transform2D normal_transform = p_canvas_transform;
  1064. normal_transform.columns[0].normalize();
  1065. normal_transform.columns[1].normalize();
  1066. normal_transform.columns[2] = Vector2();
  1067. _update_transform_2d_to_mat4(normal_transform, state_buffer.canvas_normal_transform);
  1068. state_buffer.canvas_modulate[0] = p_modulate.r;
  1069. state_buffer.canvas_modulate[1] = p_modulate.g;
  1070. state_buffer.canvas_modulate[2] = p_modulate.b;
  1071. state_buffer.canvas_modulate[3] = p_modulate.a;
  1072. Size2 render_target_size = texture_storage->render_target_get_size(p_to_render_target);
  1073. state_buffer.screen_pixel_size[0] = 1.0 / render_target_size.x;
  1074. state_buffer.screen_pixel_size[1] = 1.0 / render_target_size.y;
  1075. state_buffer.time = state.time;
  1076. state_buffer.use_pixel_snap = p_snap_2d_vertices_to_pixel;
  1077. state_buffer.directional_light_count = directional_light_count;
  1078. Vector2 canvas_scale = p_canvas_transform.get_scale();
  1079. state_buffer.sdf_to_screen[0] = render_target_size.width / canvas_scale.x;
  1080. state_buffer.sdf_to_screen[1] = render_target_size.height / canvas_scale.y;
  1081. state_buffer.screen_to_sdf[0] = 1.0 / state_buffer.sdf_to_screen[0];
  1082. state_buffer.screen_to_sdf[1] = 1.0 / state_buffer.sdf_to_screen[1];
  1083. Rect2 sdf_rect = texture_storage->render_target_get_sdf_rect(p_to_render_target);
  1084. Rect2 sdf_tex_rect(sdf_rect.position / canvas_scale, sdf_rect.size / canvas_scale);
  1085. state_buffer.sdf_to_tex[0] = 1.0 / sdf_tex_rect.size.width;
  1086. state_buffer.sdf_to_tex[1] = 1.0 / sdf_tex_rect.size.height;
  1087. state_buffer.sdf_to_tex[2] = -sdf_tex_rect.position.x / sdf_tex_rect.size.width;
  1088. state_buffer.sdf_to_tex[3] = -sdf_tex_rect.position.y / sdf_tex_rect.size.height;
  1089. //print_line("w: " + itos(ssize.width) + " s: " + rtos(canvas_scale));
  1090. state_buffer.tex_to_sdf = 1.0 / ((canvas_scale.x + canvas_scale.y) * 0.5);
  1091. RD::get_singleton()->buffer_update(state.canvas_state_buffer, 0, sizeof(State::Buffer), &state_buffer);
  1092. }
  1093. { //default filter/repeat
  1094. default_filter = p_default_filter;
  1095. default_repeat = p_default_repeat;
  1096. }
  1097. Item *ci = p_item_list;
  1098. //fill the list until rendering is possible.
  1099. bool material_screen_texture_cached = false;
  1100. bool material_screen_texture_mipmaps_cached = false;
  1101. Rect2 back_buffer_rect;
  1102. bool backbuffer_copy = false;
  1103. bool backbuffer_gen_mipmaps = false;
  1104. Item *canvas_group_owner = nullptr;
  1105. bool skip_item = false;
  1106. bool update_skeletons = false;
  1107. bool time_used = false;
  1108. bool backbuffer_cleared = false;
  1109. while (ci) {
  1110. if (ci->copy_back_buffer && canvas_group_owner == nullptr) {
  1111. backbuffer_copy = true;
  1112. if (ci->copy_back_buffer->full) {
  1113. back_buffer_rect = Rect2();
  1114. } else {
  1115. back_buffer_rect = ci->copy_back_buffer->rect;
  1116. }
  1117. }
  1118. RID material = ci->material_owner == nullptr ? ci->material : ci->material_owner->material;
  1119. if (material.is_valid()) {
  1120. CanvasMaterialData *md = static_cast<CanvasMaterialData *>(material_storage->material_get_data(material, RendererRD::MaterialStorage::SHADER_TYPE_2D));
  1121. if (md && md->shader_data->valid) {
  1122. if (md->shader_data->uses_screen_texture && canvas_group_owner == nullptr) {
  1123. if (!material_screen_texture_cached) {
  1124. backbuffer_copy = true;
  1125. back_buffer_rect = Rect2();
  1126. backbuffer_gen_mipmaps = md->shader_data->uses_screen_texture_mipmaps;
  1127. } else if (!material_screen_texture_mipmaps_cached) {
  1128. backbuffer_gen_mipmaps = md->shader_data->uses_screen_texture_mipmaps;
  1129. }
  1130. }
  1131. if (md->shader_data->uses_sdf) {
  1132. r_sdf_used = true;
  1133. }
  1134. if (md->shader_data->uses_time) {
  1135. time_used = true;
  1136. }
  1137. }
  1138. }
  1139. if (ci->skeleton.is_valid()) {
  1140. const Item::Command *c = ci->commands;
  1141. while (c) {
  1142. if (c->type == Item::Command::TYPE_MESH) {
  1143. const Item::CommandMesh *cm = static_cast<const Item::CommandMesh *>(c);
  1144. if (cm->mesh_instance.is_valid()) {
  1145. mesh_storage->mesh_instance_check_for_update(cm->mesh_instance);
  1146. mesh_storage->mesh_instance_set_canvas_item_transform(cm->mesh_instance, canvas_transform_inverse * ci->final_transform);
  1147. update_skeletons = true;
  1148. }
  1149. }
  1150. c = c->next;
  1151. }
  1152. }
  1153. if (ci->canvas_group_owner != nullptr) {
  1154. if (canvas_group_owner == nullptr) {
  1155. // Canvas group begins here, render until before this item
  1156. if (update_skeletons) {
  1157. mesh_storage->update_mesh_instances();
  1158. update_skeletons = false;
  1159. }
  1160. _render_items(p_to_render_target, item_count, canvas_transform_inverse, p_light_list, r_sdf_used);
  1161. item_count = 0;
  1162. if (ci->canvas_group_owner->canvas_group->mode != RS::CANVAS_GROUP_MODE_TRANSPARENT) {
  1163. Rect2i group_rect = ci->canvas_group_owner->global_rect_cache;
  1164. texture_storage->render_target_copy_to_back_buffer(p_to_render_target, group_rect, false);
  1165. if (ci->canvas_group_owner->canvas_group->mode == RS::CANVAS_GROUP_MODE_CLIP_AND_DRAW) {
  1166. ci->canvas_group_owner->use_canvas_group = false;
  1167. items[item_count++] = ci->canvas_group_owner;
  1168. }
  1169. } else if (!backbuffer_cleared) {
  1170. texture_storage->render_target_clear_back_buffer(p_to_render_target, Rect2i(), Color(0, 0, 0, 0));
  1171. backbuffer_cleared = true;
  1172. }
  1173. backbuffer_copy = false;
  1174. canvas_group_owner = ci->canvas_group_owner; //continue until owner found
  1175. }
  1176. ci->canvas_group_owner = nullptr; //must be cleared
  1177. }
  1178. if (canvas_group_owner == nullptr && ci->canvas_group != nullptr && ci->canvas_group->mode != RS::CANVAS_GROUP_MODE_CLIP_AND_DRAW) {
  1179. skip_item = true;
  1180. }
  1181. if (ci == canvas_group_owner) {
  1182. if (update_skeletons) {
  1183. mesh_storage->update_mesh_instances();
  1184. update_skeletons = false;
  1185. }
  1186. _render_items(p_to_render_target, item_count, canvas_transform_inverse, p_light_list, r_sdf_used, true);
  1187. item_count = 0;
  1188. if (ci->canvas_group->blur_mipmaps) {
  1189. texture_storage->render_target_gen_back_buffer_mipmaps(p_to_render_target, ci->global_rect_cache);
  1190. }
  1191. canvas_group_owner = nullptr;
  1192. // Backbuffer is dirty now and needs to be re-cleared if another CanvasGroup needs it.
  1193. backbuffer_cleared = false;
  1194. // Tell the renderer to paint this as a canvas group
  1195. ci->use_canvas_group = true;
  1196. } else {
  1197. ci->use_canvas_group = false;
  1198. }
  1199. if (backbuffer_copy) {
  1200. //render anything pending, including clearing if no items
  1201. if (update_skeletons) {
  1202. mesh_storage->update_mesh_instances();
  1203. update_skeletons = false;
  1204. }
  1205. _render_items(p_to_render_target, item_count, canvas_transform_inverse, p_light_list, r_sdf_used);
  1206. item_count = 0;
  1207. texture_storage->render_target_copy_to_back_buffer(p_to_render_target, back_buffer_rect, backbuffer_gen_mipmaps);
  1208. backbuffer_copy = false;
  1209. material_screen_texture_cached = true; // After a backbuffer copy, screen texture makes no further copies.
  1210. material_screen_texture_mipmaps_cached = backbuffer_gen_mipmaps;
  1211. backbuffer_gen_mipmaps = false;
  1212. }
  1213. if (backbuffer_gen_mipmaps) {
  1214. texture_storage->render_target_gen_back_buffer_mipmaps(p_to_render_target, back_buffer_rect);
  1215. backbuffer_gen_mipmaps = false;
  1216. material_screen_texture_mipmaps_cached = true;
  1217. }
  1218. if (skip_item) {
  1219. skip_item = false;
  1220. } else {
  1221. items[item_count++] = ci;
  1222. }
  1223. if (!ci->next || item_count == MAX_RENDER_ITEMS - 1) {
  1224. if (update_skeletons) {
  1225. mesh_storage->update_mesh_instances();
  1226. update_skeletons = false;
  1227. }
  1228. _render_items(p_to_render_target, item_count, canvas_transform_inverse, p_light_list, r_sdf_used, canvas_group_owner != nullptr);
  1229. //then reset
  1230. item_count = 0;
  1231. }
  1232. ci = ci->next;
  1233. }
  1234. if (time_used) {
  1235. RenderingServerDefault::redraw_request();
  1236. }
  1237. }
  1238. RID RendererCanvasRenderRD::light_create() {
  1239. CanvasLight canvas_light;
  1240. return canvas_light_owner.make_rid(canvas_light);
  1241. }
  1242. void RendererCanvasRenderRD::light_set_texture(RID p_rid, RID p_texture) {
  1243. RendererRD::TextureStorage *texture_storage = RendererRD::TextureStorage::get_singleton();
  1244. CanvasLight *cl = canvas_light_owner.get_or_null(p_rid);
  1245. ERR_FAIL_COND(!cl);
  1246. if (cl->texture == p_texture) {
  1247. return;
  1248. }
  1249. ERR_FAIL_COND(p_texture.is_valid() && !texture_storage->owns_texture(p_texture));
  1250. if (cl->texture.is_valid()) {
  1251. texture_storage->texture_remove_from_decal_atlas(cl->texture);
  1252. }
  1253. cl->texture = p_texture;
  1254. if (cl->texture.is_valid()) {
  1255. texture_storage->texture_add_to_decal_atlas(cl->texture);
  1256. }
  1257. }
  1258. void RendererCanvasRenderRD::light_set_use_shadow(RID p_rid, bool p_enable) {
  1259. CanvasLight *cl = canvas_light_owner.get_or_null(p_rid);
  1260. ERR_FAIL_COND(!cl);
  1261. cl->shadow.enabled = p_enable;
  1262. }
  1263. void RendererCanvasRenderRD::_update_shadow_atlas() {
  1264. if (state.shadow_fb == RID()) {
  1265. //ah, we lack the shadow texture..
  1266. RD::get_singleton()->free(state.shadow_texture); //erase placeholder
  1267. Vector<RID> fb_textures;
  1268. { //texture
  1269. RD::TextureFormat tf;
  1270. tf.texture_type = RD::TEXTURE_TYPE_2D;
  1271. tf.width = state.shadow_texture_size;
  1272. tf.height = state.max_lights_per_render * 2;
  1273. tf.usage_bits = RD::TEXTURE_USAGE_COLOR_ATTACHMENT_BIT | RD::TEXTURE_USAGE_SAMPLING_BIT;
  1274. tf.format = RD::DATA_FORMAT_R32_SFLOAT;
  1275. state.shadow_texture = RD::get_singleton()->texture_create(tf, RD::TextureView());
  1276. fb_textures.push_back(state.shadow_texture);
  1277. }
  1278. {
  1279. RD::TextureFormat tf;
  1280. tf.texture_type = RD::TEXTURE_TYPE_2D;
  1281. tf.width = state.shadow_texture_size;
  1282. tf.height = state.max_lights_per_render * 2;
  1283. tf.usage_bits = RD::TEXTURE_USAGE_DEPTH_STENCIL_ATTACHMENT_BIT;
  1284. tf.format = RD::DATA_FORMAT_D32_SFLOAT;
  1285. //chunks to write
  1286. state.shadow_depth_texture = RD::get_singleton()->texture_create(tf, RD::TextureView());
  1287. fb_textures.push_back(state.shadow_depth_texture);
  1288. }
  1289. state.shadow_fb = RD::get_singleton()->framebuffer_create(fb_textures);
  1290. }
  1291. }
  1292. void RendererCanvasRenderRD::light_update_shadow(RID p_rid, int p_shadow_index, const Transform2D &p_light_xform, int p_light_mask, float p_near, float p_far, LightOccluderInstance *p_occluders) {
  1293. CanvasLight *cl = canvas_light_owner.get_or_null(p_rid);
  1294. ERR_FAIL_COND(!cl->shadow.enabled);
  1295. _update_shadow_atlas();
  1296. cl->shadow.z_far = p_far;
  1297. cl->shadow.y_offset = float(p_shadow_index * 2 + 1) / float(state.max_lights_per_render * 2);
  1298. Vector<Color> cc;
  1299. cc.push_back(Color(p_far, p_far, p_far, 1.0));
  1300. for (int i = 0; i < 4; i++) {
  1301. //make sure it remains orthogonal, makes easy to read angle later
  1302. //light.basis.scale(Vector3(to_light.elements[0].length(),to_light.elements[1].length(),1));
  1303. Rect2i rect((state.shadow_texture_size / 4) * i, p_shadow_index * 2, (state.shadow_texture_size / 4), 2);
  1304. RD::InitialAction initial_action = i == 0 ? RD::INITIAL_ACTION_CLEAR_REGION : RD::INITIAL_ACTION_CLEAR_REGION_CONTINUE;
  1305. RD::DrawListID draw_list = RD::get_singleton()->draw_list_begin(state.shadow_fb, initial_action, i != 3 ? RD::FINAL_ACTION_CONTINUE : RD::FINAL_ACTION_READ, initial_action, RD::FINAL_ACTION_DISCARD, cc, 1.0, 0, rect);
  1306. Projection projection;
  1307. {
  1308. real_t fov = 90;
  1309. real_t nearp = p_near;
  1310. real_t farp = p_far;
  1311. real_t aspect = 1.0;
  1312. real_t ymax = nearp * Math::tan(Math::deg_to_rad(fov * 0.5));
  1313. real_t ymin = -ymax;
  1314. real_t xmin = ymin * aspect;
  1315. real_t xmax = ymax * aspect;
  1316. projection.set_frustum(xmin, xmax, ymin, ymax, nearp, farp);
  1317. }
  1318. Vector3 cam_target = Basis::from_euler(Vector3(0, 0, Math_TAU * ((i + 3) / 4.0))).xform(Vector3(0, 1, 0));
  1319. projection = projection * Projection(Transform3D().looking_at(cam_target, Vector3(0, 0, -1)).affine_inverse());
  1320. ShadowRenderPushConstant push_constant;
  1321. for (int y = 0; y < 4; y++) {
  1322. for (int x = 0; x < 4; x++) {
  1323. push_constant.projection[y * 4 + x] = projection.columns[y][x];
  1324. }
  1325. }
  1326. static const Vector2 directions[4] = { Vector2(1, 0), Vector2(0, 1), Vector2(-1, 0), Vector2(0, -1) };
  1327. push_constant.direction[0] = directions[i].x;
  1328. push_constant.direction[1] = directions[i].y;
  1329. push_constant.z_far = p_far;
  1330. push_constant.pad = 0;
  1331. LightOccluderInstance *instance = p_occluders;
  1332. while (instance) {
  1333. OccluderPolygon *co = occluder_polygon_owner.get_or_null(instance->occluder);
  1334. if (!co || co->index_array.is_null() || !(p_light_mask & instance->light_mask)) {
  1335. instance = instance->next;
  1336. continue;
  1337. }
  1338. _update_transform_2d_to_mat2x4(p_light_xform * instance->xform_cache, push_constant.modelview);
  1339. RD::get_singleton()->draw_list_bind_render_pipeline(draw_list, shadow_render.render_pipelines[co->cull_mode]);
  1340. RD::get_singleton()->draw_list_bind_vertex_array(draw_list, co->vertex_array);
  1341. RD::get_singleton()->draw_list_bind_index_array(draw_list, co->index_array);
  1342. RD::get_singleton()->draw_list_set_push_constant(draw_list, &push_constant, sizeof(ShadowRenderPushConstant));
  1343. RD::get_singleton()->draw_list_draw(draw_list, true);
  1344. instance = instance->next;
  1345. }
  1346. RD::get_singleton()->draw_list_end();
  1347. }
  1348. }
  1349. void RendererCanvasRenderRD::light_update_directional_shadow(RID p_rid, int p_shadow_index, const Transform2D &p_light_xform, int p_light_mask, float p_cull_distance, const Rect2 &p_clip_rect, LightOccluderInstance *p_occluders) {
  1350. CanvasLight *cl = canvas_light_owner.get_or_null(p_rid);
  1351. ERR_FAIL_COND(!cl->shadow.enabled);
  1352. _update_shadow_atlas();
  1353. Vector2 light_dir = p_light_xform.columns[1].normalized();
  1354. Vector2 center = p_clip_rect.get_center();
  1355. float to_edge_distance = ABS(light_dir.dot(p_clip_rect.get_support(light_dir)) - light_dir.dot(center));
  1356. Vector2 from_pos = center - light_dir * (to_edge_distance + p_cull_distance);
  1357. float distance = to_edge_distance * 2.0 + p_cull_distance;
  1358. float half_size = p_clip_rect.size.length() * 0.5; //shadow length, must keep this no matter the angle
  1359. cl->shadow.z_far = distance;
  1360. cl->shadow.y_offset = float(p_shadow_index * 2 + 1) / float(state.max_lights_per_render * 2);
  1361. Transform2D to_light_xform;
  1362. to_light_xform[2] = from_pos;
  1363. to_light_xform[1] = light_dir;
  1364. to_light_xform[0] = -light_dir.orthogonal();
  1365. to_light_xform.invert();
  1366. Vector<Color> cc;
  1367. cc.push_back(Color(1, 1, 1, 1));
  1368. Rect2i rect(0, p_shadow_index * 2, state.shadow_texture_size, 2);
  1369. RD::DrawListID draw_list = RD::get_singleton()->draw_list_begin(state.shadow_fb, RD::INITIAL_ACTION_CLEAR_REGION, RD::FINAL_ACTION_READ, RD::INITIAL_ACTION_CLEAR_REGION, RD::FINAL_ACTION_DISCARD, cc, 1.0, 0, rect);
  1370. Projection projection;
  1371. projection.set_orthogonal(-half_size, half_size, -0.5, 0.5, 0.0, distance);
  1372. projection = projection * Projection(Transform3D().looking_at(Vector3(0, 1, 0), Vector3(0, 0, -1)).affine_inverse());
  1373. ShadowRenderPushConstant push_constant;
  1374. for (int y = 0; y < 4; y++) {
  1375. for (int x = 0; x < 4; x++) {
  1376. push_constant.projection[y * 4 + x] = projection.columns[y][x];
  1377. }
  1378. }
  1379. push_constant.direction[0] = 0.0;
  1380. push_constant.direction[1] = 1.0;
  1381. push_constant.z_far = distance;
  1382. push_constant.pad = 0;
  1383. LightOccluderInstance *instance = p_occluders;
  1384. while (instance) {
  1385. OccluderPolygon *co = occluder_polygon_owner.get_or_null(instance->occluder);
  1386. if (!co || co->index_array.is_null() || !(p_light_mask & instance->light_mask)) {
  1387. instance = instance->next;
  1388. continue;
  1389. }
  1390. _update_transform_2d_to_mat2x4(to_light_xform * instance->xform_cache, push_constant.modelview);
  1391. RD::get_singleton()->draw_list_bind_render_pipeline(draw_list, shadow_render.render_pipelines[co->cull_mode]);
  1392. RD::get_singleton()->draw_list_bind_vertex_array(draw_list, co->vertex_array);
  1393. RD::get_singleton()->draw_list_bind_index_array(draw_list, co->index_array);
  1394. RD::get_singleton()->draw_list_set_push_constant(draw_list, &push_constant, sizeof(ShadowRenderPushConstant));
  1395. RD::get_singleton()->draw_list_draw(draw_list, true);
  1396. instance = instance->next;
  1397. }
  1398. RD::get_singleton()->draw_list_end();
  1399. Transform2D to_shadow;
  1400. to_shadow.columns[0].x = 1.0 / -(half_size * 2.0);
  1401. to_shadow.columns[2].x = 0.5;
  1402. cl->shadow.directional_xform = to_shadow * to_light_xform;
  1403. }
  1404. void RendererCanvasRenderRD::render_sdf(RID p_render_target, LightOccluderInstance *p_occluders) {
  1405. RendererRD::TextureStorage *texture_storage = RendererRD::TextureStorage::get_singleton();
  1406. RID fb = texture_storage->render_target_get_sdf_framebuffer(p_render_target);
  1407. Rect2i rect = texture_storage->render_target_get_sdf_rect(p_render_target);
  1408. Transform2D to_sdf;
  1409. to_sdf.columns[0] *= rect.size.width;
  1410. to_sdf.columns[1] *= rect.size.height;
  1411. to_sdf.columns[2] = rect.position;
  1412. Transform2D to_clip;
  1413. to_clip.columns[0] *= 2.0;
  1414. to_clip.columns[1] *= 2.0;
  1415. to_clip.columns[2] = -Vector2(1.0, 1.0);
  1416. to_clip = to_clip * to_sdf.affine_inverse();
  1417. Vector<Color> cc;
  1418. cc.push_back(Color(0, 0, 0, 0));
  1419. RD::DrawListID draw_list = RD::get_singleton()->draw_list_begin(fb, RD::INITIAL_ACTION_CLEAR, RD::FINAL_ACTION_READ, RD::INITIAL_ACTION_CLEAR, RD::FINAL_ACTION_DISCARD, cc);
  1420. Projection projection;
  1421. ShadowRenderPushConstant push_constant;
  1422. for (int y = 0; y < 4; y++) {
  1423. for (int x = 0; x < 4; x++) {
  1424. push_constant.projection[y * 4 + x] = projection.columns[y][x];
  1425. }
  1426. }
  1427. push_constant.direction[0] = 0.0;
  1428. push_constant.direction[1] = 0.0;
  1429. push_constant.z_far = 0;
  1430. push_constant.pad = 0;
  1431. LightOccluderInstance *instance = p_occluders;
  1432. while (instance) {
  1433. OccluderPolygon *co = occluder_polygon_owner.get_or_null(instance->occluder);
  1434. if (!co || co->sdf_index_array.is_null()) {
  1435. instance = instance->next;
  1436. continue;
  1437. }
  1438. _update_transform_2d_to_mat2x4(to_clip * instance->xform_cache, push_constant.modelview);
  1439. RD::get_singleton()->draw_list_bind_render_pipeline(draw_list, shadow_render.sdf_render_pipelines[co->sdf_is_lines ? SHADOW_RENDER_SDF_LINES : SHADOW_RENDER_SDF_TRIANGLES]);
  1440. RD::get_singleton()->draw_list_bind_vertex_array(draw_list, co->sdf_vertex_array);
  1441. RD::get_singleton()->draw_list_bind_index_array(draw_list, co->sdf_index_array);
  1442. RD::get_singleton()->draw_list_set_push_constant(draw_list, &push_constant, sizeof(ShadowRenderPushConstant));
  1443. RD::get_singleton()->draw_list_draw(draw_list, true);
  1444. instance = instance->next;
  1445. }
  1446. RD::get_singleton()->draw_list_end();
  1447. texture_storage->render_target_sdf_process(p_render_target); //done rendering, process it
  1448. }
  1449. RID RendererCanvasRenderRD::occluder_polygon_create() {
  1450. OccluderPolygon occluder;
  1451. occluder.line_point_count = 0;
  1452. occluder.sdf_point_count = 0;
  1453. occluder.sdf_index_count = 0;
  1454. occluder.cull_mode = RS::CANVAS_OCCLUDER_POLYGON_CULL_DISABLED;
  1455. return occluder_polygon_owner.make_rid(occluder);
  1456. }
  1457. void RendererCanvasRenderRD::occluder_polygon_set_shape(RID p_occluder, const Vector<Vector2> &p_points, bool p_closed) {
  1458. OccluderPolygon *oc = occluder_polygon_owner.get_or_null(p_occluder);
  1459. ERR_FAIL_COND(!oc);
  1460. Vector<Vector2> lines;
  1461. if (p_points.size()) {
  1462. int lc = p_points.size() * 2;
  1463. lines.resize(lc - (p_closed ? 0 : 2));
  1464. {
  1465. Vector2 *w = lines.ptrw();
  1466. const Vector2 *r = p_points.ptr();
  1467. int max = lc / 2;
  1468. if (!p_closed) {
  1469. max--;
  1470. }
  1471. for (int i = 0; i < max; i++) {
  1472. Vector2 a = r[i];
  1473. Vector2 b = r[(i + 1) % (lc / 2)];
  1474. w[i * 2 + 0] = a;
  1475. w[i * 2 + 1] = b;
  1476. }
  1477. }
  1478. }
  1479. if ((oc->line_point_count != lines.size() || lines.size() == 0) && oc->vertex_array.is_valid()) {
  1480. RD::get_singleton()->free(oc->vertex_array);
  1481. RD::get_singleton()->free(oc->vertex_buffer);
  1482. RD::get_singleton()->free(oc->index_array);
  1483. RD::get_singleton()->free(oc->index_buffer);
  1484. oc->vertex_array = RID();
  1485. oc->vertex_buffer = RID();
  1486. oc->index_array = RID();
  1487. oc->index_buffer = RID();
  1488. oc->line_point_count = lines.size();
  1489. }
  1490. if (lines.size()) {
  1491. oc->line_point_count = lines.size();
  1492. Vector<uint8_t> geometry;
  1493. Vector<uint8_t> indices;
  1494. int lc = lines.size();
  1495. geometry.resize(lc * 6 * sizeof(float));
  1496. indices.resize(lc * 3 * sizeof(uint16_t));
  1497. {
  1498. uint8_t *vw = geometry.ptrw();
  1499. float *vwptr = reinterpret_cast<float *>(vw);
  1500. uint8_t *iw = indices.ptrw();
  1501. uint16_t *iwptr = (uint16_t *)iw;
  1502. const Vector2 *lr = lines.ptr();
  1503. const int POLY_HEIGHT = 16384;
  1504. for (int i = 0; i < lc / 2; i++) {
  1505. vwptr[i * 12 + 0] = lr[i * 2 + 0].x;
  1506. vwptr[i * 12 + 1] = lr[i * 2 + 0].y;
  1507. vwptr[i * 12 + 2] = POLY_HEIGHT;
  1508. vwptr[i * 12 + 3] = lr[i * 2 + 1].x;
  1509. vwptr[i * 12 + 4] = lr[i * 2 + 1].y;
  1510. vwptr[i * 12 + 5] = POLY_HEIGHT;
  1511. vwptr[i * 12 + 6] = lr[i * 2 + 1].x;
  1512. vwptr[i * 12 + 7] = lr[i * 2 + 1].y;
  1513. vwptr[i * 12 + 8] = -POLY_HEIGHT;
  1514. vwptr[i * 12 + 9] = lr[i * 2 + 0].x;
  1515. vwptr[i * 12 + 10] = lr[i * 2 + 0].y;
  1516. vwptr[i * 12 + 11] = -POLY_HEIGHT;
  1517. iwptr[i * 6 + 0] = i * 4 + 0;
  1518. iwptr[i * 6 + 1] = i * 4 + 1;
  1519. iwptr[i * 6 + 2] = i * 4 + 2;
  1520. iwptr[i * 6 + 3] = i * 4 + 2;
  1521. iwptr[i * 6 + 4] = i * 4 + 3;
  1522. iwptr[i * 6 + 5] = i * 4 + 0;
  1523. }
  1524. }
  1525. //if same buffer len is being set, just use buffer_update to avoid a pipeline flush
  1526. if (oc->vertex_array.is_null()) {
  1527. //create from scratch
  1528. //vertices
  1529. // TODO: geometry is always of length lc * 6 * sizeof(float), so in doubles builds this will receive half the data it needs
  1530. oc->vertex_buffer = RD::get_singleton()->vertex_buffer_create(lc * 6 * sizeof(real_t), geometry);
  1531. Vector<RID> buffer;
  1532. buffer.push_back(oc->vertex_buffer);
  1533. oc->vertex_array = RD::get_singleton()->vertex_array_create(4 * lc / 2, shadow_render.vertex_format, buffer);
  1534. //indices
  1535. oc->index_buffer = RD::get_singleton()->index_buffer_create(3 * lc, RD::INDEX_BUFFER_FORMAT_UINT16, indices);
  1536. oc->index_array = RD::get_singleton()->index_array_create(oc->index_buffer, 0, 3 * lc);
  1537. } else {
  1538. //update existing
  1539. const uint8_t *vr = geometry.ptr();
  1540. RD::get_singleton()->buffer_update(oc->vertex_buffer, 0, geometry.size(), vr);
  1541. const uint8_t *ir = indices.ptr();
  1542. RD::get_singleton()->buffer_update(oc->index_buffer, 0, indices.size(), ir);
  1543. }
  1544. }
  1545. // sdf
  1546. Vector<int> sdf_indices;
  1547. if (p_points.size()) {
  1548. if (p_closed) {
  1549. sdf_indices = Geometry2D::triangulate_polygon(p_points);
  1550. oc->sdf_is_lines = false;
  1551. } else {
  1552. int max = p_points.size();
  1553. sdf_indices.resize(max * 2);
  1554. int *iw = sdf_indices.ptrw();
  1555. for (int i = 0; i < max; i++) {
  1556. iw[i * 2 + 0] = i;
  1557. iw[i * 2 + 1] = (i + 1) % max;
  1558. }
  1559. oc->sdf_is_lines = true;
  1560. }
  1561. }
  1562. if (((oc->sdf_index_count != sdf_indices.size() && oc->sdf_point_count != p_points.size()) || p_points.size() == 0) && oc->sdf_vertex_array.is_valid()) {
  1563. RD::get_singleton()->free(oc->sdf_vertex_array);
  1564. RD::get_singleton()->free(oc->sdf_vertex_buffer);
  1565. RD::get_singleton()->free(oc->sdf_index_array);
  1566. RD::get_singleton()->free(oc->sdf_index_buffer);
  1567. oc->sdf_vertex_array = RID();
  1568. oc->sdf_vertex_buffer = RID();
  1569. oc->sdf_index_array = RID();
  1570. oc->sdf_index_buffer = RID();
  1571. oc->sdf_index_count = sdf_indices.size();
  1572. oc->sdf_point_count = p_points.size();
  1573. oc->sdf_is_lines = false;
  1574. }
  1575. if (sdf_indices.size()) {
  1576. if (oc->sdf_vertex_array.is_null()) {
  1577. //create from scratch
  1578. //vertices
  1579. oc->sdf_vertex_buffer = RD::get_singleton()->vertex_buffer_create(p_points.size() * 2 * sizeof(real_t), p_points.to_byte_array());
  1580. oc->sdf_index_buffer = RD::get_singleton()->index_buffer_create(sdf_indices.size(), RD::INDEX_BUFFER_FORMAT_UINT32, sdf_indices.to_byte_array());
  1581. oc->sdf_index_array = RD::get_singleton()->index_array_create(oc->sdf_index_buffer, 0, sdf_indices.size());
  1582. Vector<RID> buffer;
  1583. buffer.push_back(oc->sdf_vertex_buffer);
  1584. oc->sdf_vertex_array = RD::get_singleton()->vertex_array_create(p_points.size(), shadow_render.sdf_vertex_format, buffer);
  1585. //indices
  1586. } else {
  1587. //update existing
  1588. RD::get_singleton()->buffer_update(oc->sdf_vertex_buffer, 0, sizeof(real_t) * 2 * p_points.size(), p_points.ptr());
  1589. RD::get_singleton()->buffer_update(oc->sdf_index_buffer, 0, sdf_indices.size() * sizeof(int32_t), sdf_indices.ptr());
  1590. }
  1591. }
  1592. }
  1593. void RendererCanvasRenderRD::occluder_polygon_set_cull_mode(RID p_occluder, RS::CanvasOccluderPolygonCullMode p_mode) {
  1594. OccluderPolygon *oc = occluder_polygon_owner.get_or_null(p_occluder);
  1595. ERR_FAIL_COND(!oc);
  1596. oc->cull_mode = p_mode;
  1597. }
  1598. void RendererCanvasRenderRD::CanvasShaderData::set_code(const String &p_code) {
  1599. //compile
  1600. code = p_code;
  1601. valid = false;
  1602. ubo_size = 0;
  1603. uniforms.clear();
  1604. uses_screen_texture = false;
  1605. uses_screen_texture_mipmaps = false;
  1606. uses_sdf = false;
  1607. uses_time = false;
  1608. if (code.is_empty()) {
  1609. return; //just invalid, but no error
  1610. }
  1611. ShaderCompiler::GeneratedCode gen_code;
  1612. int blend_mode = BLEND_MODE_MIX;
  1613. ShaderCompiler::IdentifierActions actions;
  1614. actions.entry_point_stages["vertex"] = ShaderCompiler::STAGE_VERTEX;
  1615. actions.entry_point_stages["fragment"] = ShaderCompiler::STAGE_FRAGMENT;
  1616. actions.entry_point_stages["light"] = ShaderCompiler::STAGE_FRAGMENT;
  1617. actions.render_mode_values["blend_add"] = Pair<int *, int>(&blend_mode, BLEND_MODE_ADD);
  1618. actions.render_mode_values["blend_mix"] = Pair<int *, int>(&blend_mode, BLEND_MODE_MIX);
  1619. actions.render_mode_values["blend_sub"] = Pair<int *, int>(&blend_mode, BLEND_MODE_SUB);
  1620. actions.render_mode_values["blend_mul"] = Pair<int *, int>(&blend_mode, BLEND_MODE_MUL);
  1621. actions.render_mode_values["blend_premul_alpha"] = Pair<int *, int>(&blend_mode, BLEND_MODE_PMALPHA);
  1622. actions.render_mode_values["blend_disabled"] = Pair<int *, int>(&blend_mode, BLEND_MODE_DISABLED);
  1623. actions.usage_flag_pointers["texture_sdf"] = &uses_sdf;
  1624. actions.usage_flag_pointers["TIME"] = &uses_time;
  1625. actions.uniforms = &uniforms;
  1626. RendererCanvasRenderRD *canvas_singleton = static_cast<RendererCanvasRenderRD *>(RendererCanvasRender::singleton);
  1627. Error err = canvas_singleton->shader.compiler.compile(RS::SHADER_CANVAS_ITEM, code, &actions, path, gen_code);
  1628. ERR_FAIL_COND_MSG(err != OK, "Shader compilation failed.");
  1629. uses_screen_texture_mipmaps = gen_code.uses_screen_texture_mipmaps;
  1630. uses_screen_texture = gen_code.uses_screen_texture;
  1631. if (version.is_null()) {
  1632. version = canvas_singleton->shader.canvas_shader.version_create();
  1633. }
  1634. #if 0
  1635. print_line("**compiling shader:");
  1636. print_line("**defines:\n");
  1637. for (int i = 0; i < gen_code.defines.size(); i++) {
  1638. print_line(gen_code.defines[i]);
  1639. }
  1640. HashMap<String, String>::Iterator el = gen_code.code.begin();
  1641. while (el) {
  1642. print_line("\n**code " + el->key + ":\n" + el->value);
  1643. ++el;
  1644. }
  1645. print_line("\n**uniforms:\n" + gen_code.uniforms);
  1646. print_line("\n**vertex_globals:\n" + gen_code.stage_globals[ShaderCompiler::STAGE_VERTEX]);
  1647. print_line("\n**fragment_globals:\n" + gen_code.stage_globals[ShaderCompiler::STAGE_FRAGMENT]);
  1648. #endif
  1649. canvas_singleton->shader.canvas_shader.version_set_code(version, gen_code.code, gen_code.uniforms, gen_code.stage_globals[ShaderCompiler::STAGE_VERTEX], gen_code.stage_globals[ShaderCompiler::STAGE_FRAGMENT], gen_code.defines);
  1650. ERR_FAIL_COND(!canvas_singleton->shader.canvas_shader.version_is_valid(version));
  1651. ubo_size = gen_code.uniform_total_size;
  1652. ubo_offsets = gen_code.uniform_offsets;
  1653. texture_uniforms = gen_code.texture_uniforms;
  1654. //update them pipelines
  1655. RD::PipelineColorBlendState::Attachment attachment;
  1656. switch (blend_mode) {
  1657. case BLEND_MODE_DISABLED: {
  1658. // nothing to do here, disabled by default
  1659. } break;
  1660. case BLEND_MODE_MIX: {
  1661. attachment.enable_blend = true;
  1662. attachment.color_blend_op = RD::BLEND_OP_ADD;
  1663. attachment.src_color_blend_factor = RD::BLEND_FACTOR_SRC_ALPHA;
  1664. attachment.dst_color_blend_factor = RD::BLEND_FACTOR_ONE_MINUS_SRC_ALPHA;
  1665. attachment.alpha_blend_op = RD::BLEND_OP_ADD;
  1666. attachment.src_alpha_blend_factor = RD::BLEND_FACTOR_ONE;
  1667. attachment.dst_alpha_blend_factor = RD::BLEND_FACTOR_ONE_MINUS_SRC_ALPHA;
  1668. } break;
  1669. case BLEND_MODE_ADD: {
  1670. attachment.enable_blend = true;
  1671. attachment.alpha_blend_op = RD::BLEND_OP_ADD;
  1672. attachment.color_blend_op = RD::BLEND_OP_ADD;
  1673. attachment.src_color_blend_factor = RD::BLEND_FACTOR_SRC_ALPHA;
  1674. attachment.dst_color_blend_factor = RD::BLEND_FACTOR_ONE;
  1675. attachment.src_alpha_blend_factor = RD::BLEND_FACTOR_SRC_ALPHA;
  1676. attachment.dst_alpha_blend_factor = RD::BLEND_FACTOR_ONE;
  1677. } break;
  1678. case BLEND_MODE_SUB: {
  1679. attachment.enable_blend = true;
  1680. attachment.alpha_blend_op = RD::BLEND_OP_SUBTRACT;
  1681. attachment.color_blend_op = RD::BLEND_OP_SUBTRACT;
  1682. attachment.src_color_blend_factor = RD::BLEND_FACTOR_SRC_ALPHA;
  1683. attachment.dst_color_blend_factor = RD::BLEND_FACTOR_ONE;
  1684. attachment.src_alpha_blend_factor = RD::BLEND_FACTOR_SRC_ALPHA;
  1685. attachment.dst_alpha_blend_factor = RD::BLEND_FACTOR_ONE;
  1686. } break;
  1687. case BLEND_MODE_MUL: {
  1688. attachment.enable_blend = true;
  1689. attachment.alpha_blend_op = RD::BLEND_OP_ADD;
  1690. attachment.color_blend_op = RD::BLEND_OP_ADD;
  1691. attachment.src_color_blend_factor = RD::BLEND_FACTOR_DST_COLOR;
  1692. attachment.dst_color_blend_factor = RD::BLEND_FACTOR_ZERO;
  1693. attachment.src_alpha_blend_factor = RD::BLEND_FACTOR_DST_ALPHA;
  1694. attachment.dst_alpha_blend_factor = RD::BLEND_FACTOR_ZERO;
  1695. } break;
  1696. case BLEND_MODE_PMALPHA: {
  1697. attachment.enable_blend = true;
  1698. attachment.alpha_blend_op = RD::BLEND_OP_ADD;
  1699. attachment.color_blend_op = RD::BLEND_OP_ADD;
  1700. attachment.src_color_blend_factor = RD::BLEND_FACTOR_ONE;
  1701. attachment.dst_color_blend_factor = RD::BLEND_FACTOR_ONE_MINUS_SRC_ALPHA;
  1702. attachment.src_alpha_blend_factor = RD::BLEND_FACTOR_ONE;
  1703. attachment.dst_alpha_blend_factor = RD::BLEND_FACTOR_ONE_MINUS_SRC_ALPHA;
  1704. } break;
  1705. }
  1706. RD::PipelineColorBlendState blend_state;
  1707. blend_state.attachments.push_back(attachment);
  1708. RD::PipelineColorBlendState::Attachment attachment_lcd;
  1709. attachment_lcd.enable_blend = true;
  1710. attachment_lcd.alpha_blend_op = RD::BLEND_OP_ADD;
  1711. attachment_lcd.color_blend_op = RD::BLEND_OP_ADD;
  1712. attachment_lcd.src_color_blend_factor = RD::BLEND_FACTOR_CONSTANT_COLOR;
  1713. attachment_lcd.dst_color_blend_factor = RD::BLEND_FACTOR_ONE_MINUS_SRC_COLOR;
  1714. attachment_lcd.src_alpha_blend_factor = RD::BLEND_FACTOR_ONE;
  1715. attachment_lcd.dst_alpha_blend_factor = RD::BLEND_FACTOR_ONE_MINUS_SRC_ALPHA;
  1716. RD::PipelineColorBlendState blend_state_lcd;
  1717. blend_state_lcd.attachments.push_back(attachment_lcd);
  1718. //update pipelines
  1719. for (int i = 0; i < PIPELINE_LIGHT_MODE_MAX; i++) {
  1720. for (int j = 0; j < PIPELINE_VARIANT_MAX; j++) {
  1721. RD::RenderPrimitive primitive[PIPELINE_VARIANT_MAX] = {
  1722. RD::RENDER_PRIMITIVE_TRIANGLES,
  1723. RD::RENDER_PRIMITIVE_TRIANGLES,
  1724. RD::RENDER_PRIMITIVE_TRIANGLES,
  1725. RD::RENDER_PRIMITIVE_LINES,
  1726. RD::RENDER_PRIMITIVE_POINTS,
  1727. RD::RENDER_PRIMITIVE_TRIANGLES,
  1728. RD::RENDER_PRIMITIVE_TRIANGLE_STRIPS,
  1729. RD::RENDER_PRIMITIVE_LINES,
  1730. RD::RENDER_PRIMITIVE_LINESTRIPS,
  1731. RD::RENDER_PRIMITIVE_POINTS,
  1732. RD::RENDER_PRIMITIVE_TRIANGLES,
  1733. };
  1734. ShaderVariant shader_variants[PIPELINE_LIGHT_MODE_MAX][PIPELINE_VARIANT_MAX] = {
  1735. {
  1736. //non lit
  1737. SHADER_VARIANT_QUAD,
  1738. SHADER_VARIANT_NINEPATCH,
  1739. SHADER_VARIANT_PRIMITIVE,
  1740. SHADER_VARIANT_PRIMITIVE,
  1741. SHADER_VARIANT_PRIMITIVE_POINTS,
  1742. SHADER_VARIANT_ATTRIBUTES,
  1743. SHADER_VARIANT_ATTRIBUTES,
  1744. SHADER_VARIANT_ATTRIBUTES,
  1745. SHADER_VARIANT_ATTRIBUTES,
  1746. SHADER_VARIANT_ATTRIBUTES_POINTS,
  1747. SHADER_VARIANT_QUAD,
  1748. },
  1749. {
  1750. //lit
  1751. SHADER_VARIANT_QUAD_LIGHT,
  1752. SHADER_VARIANT_NINEPATCH_LIGHT,
  1753. SHADER_VARIANT_PRIMITIVE_LIGHT,
  1754. SHADER_VARIANT_PRIMITIVE_LIGHT,
  1755. SHADER_VARIANT_PRIMITIVE_POINTS_LIGHT,
  1756. SHADER_VARIANT_ATTRIBUTES_LIGHT,
  1757. SHADER_VARIANT_ATTRIBUTES_LIGHT,
  1758. SHADER_VARIANT_ATTRIBUTES_LIGHT,
  1759. SHADER_VARIANT_ATTRIBUTES_LIGHT,
  1760. SHADER_VARIANT_ATTRIBUTES_POINTS_LIGHT,
  1761. SHADER_VARIANT_QUAD_LIGHT,
  1762. },
  1763. };
  1764. RID shader_variant = canvas_singleton->shader.canvas_shader.version_get_shader(version, shader_variants[i][j]);
  1765. if (j == PIPELINE_VARIANT_QUAD_LCD_BLEND) {
  1766. pipeline_variants.variants[i][j].setup(shader_variant, primitive[j], RD::PipelineRasterizationState(), RD::PipelineMultisampleState(), RD::PipelineDepthStencilState(), blend_state_lcd, RD::DYNAMIC_STATE_BLEND_CONSTANTS);
  1767. } else {
  1768. pipeline_variants.variants[i][j].setup(shader_variant, primitive[j], RD::PipelineRasterizationState(), RD::PipelineMultisampleState(), RD::PipelineDepthStencilState(), blend_state, 0);
  1769. }
  1770. }
  1771. }
  1772. valid = true;
  1773. }
  1774. bool RendererCanvasRenderRD::CanvasShaderData::is_animated() const {
  1775. return false;
  1776. }
  1777. bool RendererCanvasRenderRD::CanvasShaderData::casts_shadows() const {
  1778. return false;
  1779. }
  1780. RS::ShaderNativeSourceCode RendererCanvasRenderRD::CanvasShaderData::get_native_source_code() const {
  1781. RendererCanvasRenderRD *canvas_singleton = static_cast<RendererCanvasRenderRD *>(RendererCanvasRender::singleton);
  1782. return canvas_singleton->shader.canvas_shader.version_get_native_source_code(version);
  1783. }
  1784. RendererCanvasRenderRD::CanvasShaderData::~CanvasShaderData() {
  1785. RendererCanvasRenderRD *canvas_singleton = static_cast<RendererCanvasRenderRD *>(RendererCanvasRender::singleton);
  1786. ERR_FAIL_COND(!canvas_singleton);
  1787. //pipeline variants will clear themselves if shader is gone
  1788. if (version.is_valid()) {
  1789. canvas_singleton->shader.canvas_shader.version_free(version);
  1790. }
  1791. }
  1792. RendererRD::MaterialStorage::ShaderData *RendererCanvasRenderRD::_create_shader_func() {
  1793. CanvasShaderData *shader_data = memnew(CanvasShaderData);
  1794. return shader_data;
  1795. }
  1796. bool RendererCanvasRenderRD::CanvasMaterialData::update_parameters(const HashMap<StringName, Variant> &p_parameters, bool p_uniform_dirty, bool p_textures_dirty) {
  1797. RendererCanvasRenderRD *canvas_singleton = static_cast<RendererCanvasRenderRD *>(RendererCanvasRender::singleton);
  1798. return update_parameters_uniform_set(p_parameters, p_uniform_dirty, p_textures_dirty, shader_data->uniforms, shader_data->ubo_offsets.ptr(), shader_data->texture_uniforms, shader_data->default_texture_params, shader_data->ubo_size, uniform_set, canvas_singleton->shader.canvas_shader.version_get_shader(shader_data->version, 0), MATERIAL_UNIFORM_SET, false);
  1799. }
  1800. RendererCanvasRenderRD::CanvasMaterialData::~CanvasMaterialData() {
  1801. free_parameters_uniform_set(uniform_set);
  1802. }
  1803. RendererRD::MaterialStorage::MaterialData *RendererCanvasRenderRD::_create_material_func(CanvasShaderData *p_shader) {
  1804. CanvasMaterialData *material_data = memnew(CanvasMaterialData);
  1805. material_data->shader_data = p_shader;
  1806. //update will happen later anyway so do nothing.
  1807. return material_data;
  1808. }
  1809. void RendererCanvasRenderRD::set_time(double p_time) {
  1810. state.time = p_time;
  1811. }
  1812. void RendererCanvasRenderRD::update() {
  1813. }
  1814. RendererCanvasRenderRD::RendererCanvasRenderRD() {
  1815. RendererRD::TextureStorage *texture_storage = RendererRD::TextureStorage::get_singleton();
  1816. RendererRD::MaterialStorage *material_storage = RendererRD::MaterialStorage::get_singleton();
  1817. { //create default samplers
  1818. default_samplers.default_filter = RS::CANVAS_ITEM_TEXTURE_FILTER_LINEAR;
  1819. default_samplers.default_repeat = RS::CANVAS_ITEM_TEXTURE_REPEAT_DISABLED;
  1820. }
  1821. { //shader variants
  1822. String global_defines;
  1823. uint64_t uniform_max_size = RD::get_singleton()->limit_get(RD::LIMIT_MAX_UNIFORM_BUFFER_SIZE);
  1824. if (uniform_max_size < 65536) {
  1825. //Yes, you guessed right, ARM again
  1826. state.max_lights_per_render = 64;
  1827. global_defines += "#define MAX_LIGHTS 64\n";
  1828. } else {
  1829. state.max_lights_per_render = DEFAULT_MAX_LIGHTS_PER_RENDER;
  1830. global_defines += "#define MAX_LIGHTS " + itos(DEFAULT_MAX_LIGHTS_PER_RENDER) + "\n";
  1831. }
  1832. state.light_uniforms = memnew_arr(LightUniform, state.max_lights_per_render);
  1833. Vector<String> variants;
  1834. //non light variants
  1835. variants.push_back(""); //none by default is first variant
  1836. variants.push_back("#define USE_NINEPATCH\n"); //ninepatch is the second variant
  1837. variants.push_back("#define USE_PRIMITIVE\n"); //primitive is the third
  1838. variants.push_back("#define USE_PRIMITIVE\n#define USE_POINT_SIZE\n"); //points need point size
  1839. variants.push_back("#define USE_ATTRIBUTES\n"); // attributes for vertex arrays
  1840. variants.push_back("#define USE_ATTRIBUTES\n#define USE_POINT_SIZE\n"); //attributes with point size
  1841. //light variants
  1842. variants.push_back("#define USE_LIGHTING\n"); //none by default is first variant
  1843. variants.push_back("#define USE_LIGHTING\n#define USE_NINEPATCH\n"); //ninepatch is the second variant
  1844. variants.push_back("#define USE_LIGHTING\n#define USE_PRIMITIVE\n"); //primitive is the third
  1845. variants.push_back("#define USE_LIGHTING\n#define USE_PRIMITIVE\n#define USE_POINT_SIZE\n"); //points need point size
  1846. variants.push_back("#define USE_LIGHTING\n#define USE_ATTRIBUTES\n"); // attributes for vertex arrays
  1847. variants.push_back("#define USE_LIGHTING\n#define USE_ATTRIBUTES\n#define USE_POINT_SIZE\n"); //attributes with point size
  1848. shader.canvas_shader.initialize(variants, global_defines);
  1849. shader.default_version = shader.canvas_shader.version_create();
  1850. shader.default_version_rd_shader = shader.canvas_shader.version_get_shader(shader.default_version, SHADER_VARIANT_QUAD);
  1851. RD::PipelineColorBlendState blend_state;
  1852. RD::PipelineColorBlendState::Attachment blend_attachment;
  1853. blend_attachment.enable_blend = true;
  1854. blend_attachment.color_blend_op = RD::BLEND_OP_ADD;
  1855. blend_attachment.src_color_blend_factor = RD::BLEND_FACTOR_SRC_ALPHA;
  1856. blend_attachment.dst_color_blend_factor = RD::BLEND_FACTOR_ONE_MINUS_SRC_ALPHA;
  1857. blend_attachment.alpha_blend_op = RD::BLEND_OP_ADD;
  1858. blend_attachment.src_alpha_blend_factor = RD::BLEND_FACTOR_ONE;
  1859. blend_attachment.dst_alpha_blend_factor = RD::BLEND_FACTOR_ONE_MINUS_SRC_ALPHA;
  1860. blend_state.attachments.push_back(blend_attachment);
  1861. RD::PipelineColorBlendState::Attachment attachment_lcd;
  1862. attachment_lcd.enable_blend = true;
  1863. attachment_lcd.alpha_blend_op = RD::BLEND_OP_ADD;
  1864. attachment_lcd.color_blend_op = RD::BLEND_OP_ADD;
  1865. attachment_lcd.src_color_blend_factor = RD::BLEND_FACTOR_CONSTANT_COLOR;
  1866. attachment_lcd.dst_color_blend_factor = RD::BLEND_FACTOR_ONE_MINUS_SRC_COLOR;
  1867. attachment_lcd.src_alpha_blend_factor = RD::BLEND_FACTOR_ONE;
  1868. attachment_lcd.dst_alpha_blend_factor = RD::BLEND_FACTOR_ONE_MINUS_SRC_ALPHA;
  1869. RD::PipelineColorBlendState blend_state_lcd;
  1870. blend_state_lcd.attachments.push_back(attachment_lcd);
  1871. for (int i = 0; i < PIPELINE_LIGHT_MODE_MAX; i++) {
  1872. for (int j = 0; j < PIPELINE_VARIANT_MAX; j++) {
  1873. RD::RenderPrimitive primitive[PIPELINE_VARIANT_MAX] = {
  1874. RD::RENDER_PRIMITIVE_TRIANGLES,
  1875. RD::RENDER_PRIMITIVE_TRIANGLES,
  1876. RD::RENDER_PRIMITIVE_TRIANGLES,
  1877. RD::RENDER_PRIMITIVE_LINES,
  1878. RD::RENDER_PRIMITIVE_POINTS,
  1879. RD::RENDER_PRIMITIVE_TRIANGLES,
  1880. RD::RENDER_PRIMITIVE_TRIANGLE_STRIPS,
  1881. RD::RENDER_PRIMITIVE_LINES,
  1882. RD::RENDER_PRIMITIVE_LINESTRIPS,
  1883. RD::RENDER_PRIMITIVE_POINTS,
  1884. RD::RENDER_PRIMITIVE_TRIANGLES,
  1885. };
  1886. ShaderVariant shader_variants[PIPELINE_LIGHT_MODE_MAX][PIPELINE_VARIANT_MAX] = {
  1887. {
  1888. //non lit
  1889. SHADER_VARIANT_QUAD,
  1890. SHADER_VARIANT_NINEPATCH,
  1891. SHADER_VARIANT_PRIMITIVE,
  1892. SHADER_VARIANT_PRIMITIVE,
  1893. SHADER_VARIANT_PRIMITIVE_POINTS,
  1894. SHADER_VARIANT_ATTRIBUTES,
  1895. SHADER_VARIANT_ATTRIBUTES,
  1896. SHADER_VARIANT_ATTRIBUTES,
  1897. SHADER_VARIANT_ATTRIBUTES,
  1898. SHADER_VARIANT_ATTRIBUTES_POINTS,
  1899. SHADER_VARIANT_QUAD,
  1900. },
  1901. {
  1902. //lit
  1903. SHADER_VARIANT_QUAD_LIGHT,
  1904. SHADER_VARIANT_NINEPATCH_LIGHT,
  1905. SHADER_VARIANT_PRIMITIVE_LIGHT,
  1906. SHADER_VARIANT_PRIMITIVE_LIGHT,
  1907. SHADER_VARIANT_PRIMITIVE_POINTS_LIGHT,
  1908. SHADER_VARIANT_ATTRIBUTES_LIGHT,
  1909. SHADER_VARIANT_ATTRIBUTES_LIGHT,
  1910. SHADER_VARIANT_ATTRIBUTES_LIGHT,
  1911. SHADER_VARIANT_ATTRIBUTES_LIGHT,
  1912. SHADER_VARIANT_ATTRIBUTES_POINTS_LIGHT,
  1913. SHADER_VARIANT_QUAD_LIGHT,
  1914. },
  1915. };
  1916. RID shader_variant = shader.canvas_shader.version_get_shader(shader.default_version, shader_variants[i][j]);
  1917. if (j == PIPELINE_VARIANT_QUAD_LCD_BLEND) {
  1918. shader.pipeline_variants.variants[i][j].setup(shader_variant, primitive[j], RD::PipelineRasterizationState(), RD::PipelineMultisampleState(), RD::PipelineDepthStencilState(), blend_state_lcd, RD::DYNAMIC_STATE_BLEND_CONSTANTS);
  1919. } else {
  1920. shader.pipeline_variants.variants[i][j].setup(shader_variant, primitive[j], RD::PipelineRasterizationState(), RD::PipelineMultisampleState(), RD::PipelineDepthStencilState(), blend_state, 0);
  1921. }
  1922. }
  1923. }
  1924. }
  1925. {
  1926. //shader compiler
  1927. ShaderCompiler::DefaultIdentifierActions actions;
  1928. actions.renames["VERTEX"] = "vertex";
  1929. actions.renames["LIGHT_VERTEX"] = "light_vertex";
  1930. actions.renames["SHADOW_VERTEX"] = "shadow_vertex";
  1931. actions.renames["UV"] = "uv";
  1932. actions.renames["POINT_SIZE"] = "gl_PointSize";
  1933. actions.renames["MODEL_MATRIX"] = "model_matrix";
  1934. actions.renames["CANVAS_MATRIX"] = "canvas_data.canvas_transform";
  1935. actions.renames["SCREEN_MATRIX"] = "canvas_data.screen_transform";
  1936. actions.renames["TIME"] = "canvas_data.time";
  1937. actions.renames["PI"] = _MKSTR(Math_PI);
  1938. actions.renames["TAU"] = _MKSTR(Math_TAU);
  1939. actions.renames["E"] = _MKSTR(Math_E);
  1940. actions.renames["AT_LIGHT_PASS"] = "false";
  1941. actions.renames["INSTANCE_CUSTOM"] = "instance_custom";
  1942. actions.renames["COLOR"] = "color";
  1943. actions.renames["NORMAL"] = "normal";
  1944. actions.renames["NORMAL_MAP"] = "normal_map";
  1945. actions.renames["NORMAL_MAP_DEPTH"] = "normal_map_depth";
  1946. actions.renames["TEXTURE"] = "color_texture";
  1947. actions.renames["TEXTURE_PIXEL_SIZE"] = "draw_data.color_texture_pixel_size";
  1948. actions.renames["NORMAL_TEXTURE"] = "normal_texture";
  1949. actions.renames["SPECULAR_SHININESS_TEXTURE"] = "specular_texture";
  1950. actions.renames["SPECULAR_SHININESS"] = "specular_shininess";
  1951. actions.renames["SCREEN_UV"] = "screen_uv";
  1952. actions.renames["SCREEN_PIXEL_SIZE"] = "canvas_data.screen_pixel_size";
  1953. actions.renames["FRAGCOORD"] = "gl_FragCoord";
  1954. actions.renames["POINT_COORD"] = "gl_PointCoord";
  1955. actions.renames["INSTANCE_ID"] = "gl_InstanceIndex";
  1956. actions.renames["VERTEX_ID"] = "gl_VertexIndex";
  1957. actions.renames["LIGHT_POSITION"] = "light_position";
  1958. actions.renames["LIGHT_DIRECTION"] = "light_direction";
  1959. actions.renames["LIGHT_IS_DIRECTIONAL"] = "is_directional";
  1960. actions.renames["LIGHT_COLOR"] = "light_color";
  1961. actions.renames["LIGHT_ENERGY"] = "light_energy";
  1962. actions.renames["LIGHT"] = "light";
  1963. actions.renames["SHADOW_MODULATE"] = "shadow_modulate";
  1964. actions.renames["texture_sdf"] = "texture_sdf";
  1965. actions.renames["texture_sdf_normal"] = "texture_sdf_normal";
  1966. actions.renames["sdf_to_screen_uv"] = "sdf_to_screen_uv";
  1967. actions.renames["screen_uv_to_sdf"] = "screen_uv_to_sdf";
  1968. actions.usage_defines["COLOR"] = "#define COLOR_USED\n";
  1969. actions.usage_defines["SCREEN_UV"] = "#define SCREEN_UV_USED\n";
  1970. actions.usage_defines["SCREEN_PIXEL_SIZE"] = "@SCREEN_UV";
  1971. actions.usage_defines["NORMAL"] = "#define NORMAL_USED\n";
  1972. actions.usage_defines["NORMAL_MAP"] = "#define NORMAL_MAP_USED\n";
  1973. actions.usage_defines["LIGHT"] = "#define LIGHT_SHADER_CODE_USED\n";
  1974. actions.usage_defines["SPECULAR_SHININESS"] = "#define SPECULAR_SHININESS_USED\n";
  1975. actions.render_mode_defines["skip_vertex_transform"] = "#define SKIP_TRANSFORM_USED\n";
  1976. actions.render_mode_defines["unshaded"] = "#define MODE_UNSHADED\n";
  1977. actions.render_mode_defines["light_only"] = "#define MODE_LIGHT_ONLY\n";
  1978. actions.custom_samplers["TEXTURE"] = "texture_sampler";
  1979. actions.custom_samplers["NORMAL_TEXTURE"] = "texture_sampler";
  1980. actions.custom_samplers["SPECULAR_SHININESS_TEXTURE"] = "texture_sampler";
  1981. actions.sampler_array_name = "material_samplers";
  1982. actions.base_texture_binding_index = 1;
  1983. actions.texture_layout_set = MATERIAL_UNIFORM_SET;
  1984. actions.base_uniform_string = "material.";
  1985. actions.default_filter = ShaderLanguage::FILTER_LINEAR;
  1986. actions.default_repeat = ShaderLanguage::REPEAT_DISABLE;
  1987. actions.base_varying_index = 4;
  1988. actions.global_buffer_array_variable = "global_shader_uniforms.data";
  1989. shader.compiler.initialize(actions);
  1990. }
  1991. { //shadow rendering
  1992. Vector<String> versions;
  1993. versions.push_back("\n#define MODE_SHADOW\n"); //shadow
  1994. versions.push_back("\n#define MODE_SDF\n"); //sdf
  1995. shadow_render.shader.initialize(versions);
  1996. {
  1997. Vector<RD::AttachmentFormat> attachments;
  1998. RD::AttachmentFormat af_color;
  1999. af_color.format = RD::DATA_FORMAT_R32_SFLOAT;
  2000. af_color.usage_flags = RD::TEXTURE_USAGE_SAMPLING_BIT | RD::TEXTURE_USAGE_COLOR_ATTACHMENT_BIT;
  2001. attachments.push_back(af_color);
  2002. RD::AttachmentFormat af_depth;
  2003. af_depth.format = RD::DATA_FORMAT_D32_SFLOAT;
  2004. af_depth.usage_flags = RD::TEXTURE_USAGE_DEPTH_STENCIL_ATTACHMENT_BIT;
  2005. attachments.push_back(af_depth);
  2006. shadow_render.framebuffer_format = RD::get_singleton()->framebuffer_format_create(attachments);
  2007. }
  2008. {
  2009. Vector<RD::AttachmentFormat> attachments;
  2010. RD::AttachmentFormat af_color;
  2011. af_color.format = RD::DATA_FORMAT_R8_UNORM;
  2012. af_color.usage_flags = RD::TEXTURE_USAGE_SAMPLING_BIT | RD::TEXTURE_USAGE_STORAGE_BIT | RD::TEXTURE_USAGE_COLOR_ATTACHMENT_BIT;
  2013. attachments.push_back(af_color);
  2014. shadow_render.sdf_framebuffer_format = RD::get_singleton()->framebuffer_format_create(attachments);
  2015. }
  2016. //pipelines
  2017. Vector<RD::VertexAttribute> vf;
  2018. RD::VertexAttribute vd;
  2019. vd.format = sizeof(real_t) == sizeof(float) ? RD::DATA_FORMAT_R32G32B32_SFLOAT : RD::DATA_FORMAT_R64G64B64_SFLOAT;
  2020. vd.location = 0;
  2021. vd.offset = 0;
  2022. vd.stride = sizeof(real_t) * 3;
  2023. vf.push_back(vd);
  2024. shadow_render.vertex_format = RD::get_singleton()->vertex_format_create(vf);
  2025. vd.format = sizeof(real_t) == sizeof(float) ? RD::DATA_FORMAT_R32G32_SFLOAT : RD::DATA_FORMAT_R64G64_SFLOAT;
  2026. vd.stride = sizeof(real_t) * 2;
  2027. vf.write[0] = vd;
  2028. shadow_render.sdf_vertex_format = RD::get_singleton()->vertex_format_create(vf);
  2029. shadow_render.shader_version = shadow_render.shader.version_create();
  2030. for (int i = 0; i < 3; i++) {
  2031. RD::PipelineRasterizationState rs;
  2032. rs.cull_mode = i == 0 ? RD::POLYGON_CULL_DISABLED : (i == 1 ? RD::POLYGON_CULL_FRONT : RD::POLYGON_CULL_BACK);
  2033. RD::PipelineDepthStencilState ds;
  2034. ds.enable_depth_write = true;
  2035. ds.enable_depth_test = true;
  2036. ds.depth_compare_operator = RD::COMPARE_OP_LESS;
  2037. shadow_render.render_pipelines[i] = RD::get_singleton()->render_pipeline_create(shadow_render.shader.version_get_shader(shadow_render.shader_version, SHADOW_RENDER_MODE_SHADOW), shadow_render.framebuffer_format, shadow_render.vertex_format, RD::RENDER_PRIMITIVE_TRIANGLES, rs, RD::PipelineMultisampleState(), ds, RD::PipelineColorBlendState::create_disabled(), 0);
  2038. }
  2039. for (int i = 0; i < 2; i++) {
  2040. shadow_render.sdf_render_pipelines[i] = RD::get_singleton()->render_pipeline_create(shadow_render.shader.version_get_shader(shadow_render.shader_version, SHADOW_RENDER_MODE_SDF), shadow_render.sdf_framebuffer_format, shadow_render.sdf_vertex_format, i == 0 ? RD::RENDER_PRIMITIVE_TRIANGLES : RD::RENDER_PRIMITIVE_LINES, RD::PipelineRasterizationState(), RD::PipelineMultisampleState(), RD::PipelineDepthStencilState(), RD::PipelineColorBlendState::create_disabled(), 0);
  2041. }
  2042. }
  2043. { //bindings
  2044. state.canvas_state_buffer = RD::get_singleton()->uniform_buffer_create(sizeof(State::Buffer));
  2045. state.lights_uniform_buffer = RD::get_singleton()->uniform_buffer_create(sizeof(LightUniform) * state.max_lights_per_render);
  2046. RD::SamplerState shadow_sampler_state;
  2047. shadow_sampler_state.mag_filter = RD::SAMPLER_FILTER_LINEAR;
  2048. shadow_sampler_state.min_filter = RD::SAMPLER_FILTER_LINEAR;
  2049. shadow_sampler_state.repeat_u = RD::SAMPLER_REPEAT_MODE_REPEAT; //shadow wrap around
  2050. shadow_sampler_state.compare_op = RD::COMPARE_OP_GREATER;
  2051. shadow_sampler_state.enable_compare = true;
  2052. state.shadow_sampler = RD::get_singleton()->sampler_create(shadow_sampler_state);
  2053. }
  2054. {
  2055. //polygon buffers
  2056. polygon_buffers.last_id = 1;
  2057. }
  2058. { // default index buffer
  2059. Vector<uint8_t> pv;
  2060. pv.resize(6 * 4);
  2061. {
  2062. uint8_t *w = pv.ptrw();
  2063. int *p32 = (int *)w;
  2064. p32[0] = 0;
  2065. p32[1] = 1;
  2066. p32[2] = 2;
  2067. p32[3] = 0;
  2068. p32[4] = 2;
  2069. p32[5] = 3;
  2070. }
  2071. shader.quad_index_buffer = RD::get_singleton()->index_buffer_create(6, RenderingDevice::INDEX_BUFFER_FORMAT_UINT32, pv);
  2072. shader.quad_index_array = RD::get_singleton()->index_array_create(shader.quad_index_buffer, 0, 6);
  2073. }
  2074. { //primitive
  2075. primitive_arrays.index_array[0] = shader.quad_index_array = RD::get_singleton()->index_array_create(shader.quad_index_buffer, 0, 1);
  2076. primitive_arrays.index_array[1] = shader.quad_index_array = RD::get_singleton()->index_array_create(shader.quad_index_buffer, 0, 2);
  2077. primitive_arrays.index_array[2] = shader.quad_index_array = RD::get_singleton()->index_array_create(shader.quad_index_buffer, 0, 3);
  2078. primitive_arrays.index_array[3] = shader.quad_index_array = RD::get_singleton()->index_array_create(shader.quad_index_buffer, 0, 6);
  2079. }
  2080. {
  2081. //default shadow texture to keep uniform set happy
  2082. RD::TextureFormat tf;
  2083. tf.texture_type = RD::TEXTURE_TYPE_2D;
  2084. tf.width = 4;
  2085. tf.height = 4;
  2086. tf.usage_bits = RD::TEXTURE_USAGE_SAMPLING_BIT;
  2087. tf.format = RD::DATA_FORMAT_R32_SFLOAT;
  2088. state.shadow_texture = RD::get_singleton()->texture_create(tf, RD::TextureView());
  2089. }
  2090. {
  2091. Vector<RD::Uniform> uniforms;
  2092. {
  2093. RD::Uniform u;
  2094. u.uniform_type = RD::UNIFORM_TYPE_STORAGE_BUFFER;
  2095. u.binding = 0;
  2096. u.append_id(RendererRD::MeshStorage::get_singleton()->get_default_rd_storage_buffer());
  2097. uniforms.push_back(u);
  2098. }
  2099. state.default_transforms_uniform_set = RD::get_singleton()->uniform_set_create(uniforms, shader.default_version_rd_shader, TRANSFORMS_UNIFORM_SET);
  2100. }
  2101. default_canvas_texture = texture_storage->canvas_texture_allocate();
  2102. texture_storage->canvas_texture_initialize(default_canvas_texture);
  2103. state.shadow_texture_size = GLOBAL_GET("rendering/2d/shadow_atlas/size");
  2104. //create functions for shader and material
  2105. material_storage->shader_set_data_request_function(RendererRD::MaterialStorage::SHADER_TYPE_2D, _create_shader_funcs);
  2106. material_storage->material_set_data_request_function(RendererRD::MaterialStorage::SHADER_TYPE_2D, _create_material_funcs);
  2107. state.time = 0;
  2108. {
  2109. default_canvas_group_shader = material_storage->shader_allocate();
  2110. material_storage->shader_initialize(default_canvas_group_shader);
  2111. material_storage->shader_set_code(default_canvas_group_shader, R"(
  2112. // Default CanvasGroup shader.
  2113. shader_type canvas_item;
  2114. render_mode unshaded;
  2115. uniform sampler2D screen_texture : hint_screen_texture, repeat_disable, filter_nearest;
  2116. void fragment() {
  2117. vec4 c = textureLod(screen_texture, SCREEN_UV, 0.0);
  2118. if (c.a > 0.0001) {
  2119. c.rgb /= c.a;
  2120. }
  2121. COLOR *= c;
  2122. }
  2123. )");
  2124. default_canvas_group_material = material_storage->material_allocate();
  2125. material_storage->material_initialize(default_canvas_group_material);
  2126. material_storage->material_set_shader(default_canvas_group_material, default_canvas_group_shader);
  2127. }
  2128. {
  2129. default_clip_children_shader = material_storage->shader_allocate();
  2130. material_storage->shader_initialize(default_clip_children_shader);
  2131. material_storage->shader_set_code(default_clip_children_shader, R"(
  2132. // Default clip children shader.
  2133. shader_type canvas_item;
  2134. render_mode unshaded;
  2135. uniform sampler2D screen_texture : hint_screen_texture, repeat_disable, filter_nearest;
  2136. void fragment() {
  2137. vec4 c = textureLod(screen_texture, SCREEN_UV, 0.0);
  2138. COLOR.rgb = c.rgb;
  2139. }
  2140. )");
  2141. default_clip_children_material = material_storage->material_allocate();
  2142. material_storage->material_initialize(default_clip_children_material);
  2143. material_storage->material_set_shader(default_clip_children_material, default_clip_children_shader);
  2144. }
  2145. static_assert(sizeof(PushConstant) == 128);
  2146. }
  2147. bool RendererCanvasRenderRD::free(RID p_rid) {
  2148. if (canvas_light_owner.owns(p_rid)) {
  2149. CanvasLight *cl = canvas_light_owner.get_or_null(p_rid);
  2150. ERR_FAIL_COND_V(!cl, false);
  2151. light_set_use_shadow(p_rid, false);
  2152. canvas_light_owner.free(p_rid);
  2153. } else if (occluder_polygon_owner.owns(p_rid)) {
  2154. occluder_polygon_set_shape(p_rid, Vector<Vector2>(), false);
  2155. occluder_polygon_owner.free(p_rid);
  2156. } else {
  2157. return false;
  2158. }
  2159. return true;
  2160. }
  2161. void RendererCanvasRenderRD::set_shadow_texture_size(int p_size) {
  2162. p_size = nearest_power_of_2_templated(p_size);
  2163. if (p_size == state.shadow_texture_size) {
  2164. return;
  2165. }
  2166. state.shadow_texture_size = p_size;
  2167. if (state.shadow_fb.is_valid()) {
  2168. RD::get_singleton()->free(state.shadow_texture);
  2169. RD::get_singleton()->free(state.shadow_depth_texture);
  2170. state.shadow_fb = RID();
  2171. {
  2172. //create a default shadow texture to keep uniform set happy (and that it gets erased when a new one is created)
  2173. RD::TextureFormat tf;
  2174. tf.texture_type = RD::TEXTURE_TYPE_2D;
  2175. tf.width = 4;
  2176. tf.height = 4;
  2177. tf.usage_bits = RD::TEXTURE_USAGE_SAMPLING_BIT;
  2178. tf.format = RD::DATA_FORMAT_R32_SFLOAT;
  2179. state.shadow_texture = RD::get_singleton()->texture_create(tf, RD::TextureView());
  2180. }
  2181. }
  2182. }
  2183. RendererCanvasRenderRD::~RendererCanvasRenderRD() {
  2184. RendererRD::MaterialStorage *material_storage = RendererRD::MaterialStorage::get_singleton();
  2185. //canvas state
  2186. material_storage->material_free(default_canvas_group_material);
  2187. material_storage->shader_free(default_canvas_group_shader);
  2188. material_storage->material_free(default_clip_children_material);
  2189. material_storage->shader_free(default_clip_children_shader);
  2190. {
  2191. if (state.canvas_state_buffer.is_valid()) {
  2192. RD::get_singleton()->free(state.canvas_state_buffer);
  2193. }
  2194. memdelete_arr(state.light_uniforms);
  2195. RD::get_singleton()->free(state.lights_uniform_buffer);
  2196. }
  2197. //shadow rendering
  2198. {
  2199. shadow_render.shader.version_free(shadow_render.shader_version);
  2200. //this will also automatically clear all pipelines
  2201. RD::get_singleton()->free(state.shadow_sampler);
  2202. }
  2203. //bindings
  2204. //shaders
  2205. shader.canvas_shader.version_free(shader.default_version);
  2206. //buffers
  2207. {
  2208. RD::get_singleton()->free(shader.quad_index_array);
  2209. RD::get_singleton()->free(shader.quad_index_buffer);
  2210. //primitives are erase by dependency
  2211. }
  2212. if (state.shadow_fb.is_valid()) {
  2213. RD::get_singleton()->free(state.shadow_depth_texture);
  2214. }
  2215. RD::get_singleton()->free(state.shadow_texture);
  2216. RendererRD::TextureStorage::get_singleton()->canvas_texture_free(default_canvas_texture);
  2217. //pipelines don't need freeing, they are all gone after shaders are gone
  2218. }