renderer_scene_render_rd.cpp 167 KB

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  1. /*************************************************************************/
  2. /* renderer_scene_render_rd.cpp */
  3. /*************************************************************************/
  4. /* This file is part of: */
  5. /* GODOT ENGINE */
  6. /* https://godotengine.org */
  7. /*************************************************************************/
  8. /* Copyright (c) 2007-2021 Juan Linietsky, Ariel Manzur. */
  9. /* Copyright (c) 2014-2021 Godot Engine contributors (cf. AUTHORS.md). */
  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_scene_render_rd.h"
  31. #include "core/config/project_settings.h"
  32. #include "core/os/os.h"
  33. #include "renderer_compositor_rd.h"
  34. #include "servers/rendering/rendering_server_default.h"
  35. void get_vogel_disk(float *r_kernel, int p_sample_count) {
  36. const float golden_angle = 2.4;
  37. for (int i = 0; i < p_sample_count; i++) {
  38. float r = Math::sqrt(float(i) + 0.5) / Math::sqrt(float(p_sample_count));
  39. float theta = float(i) * golden_angle;
  40. r_kernel[i * 4] = Math::cos(theta) * r;
  41. r_kernel[i * 4 + 1] = Math::sin(theta) * r;
  42. }
  43. }
  44. void RendererSceneRenderRD::sdfgi_update(RID p_render_buffers, RID p_environment, const Vector3 &p_world_position) {
  45. RendererSceneEnvironmentRD *env = environment_owner.getornull(p_environment);
  46. RenderBuffers *rb = render_buffers_owner.getornull(p_render_buffers);
  47. bool needs_sdfgi = env && env->sdfgi_enabled;
  48. if (!needs_sdfgi) {
  49. if (rb->sdfgi != nullptr) {
  50. //erase it
  51. rb->sdfgi->erase();
  52. memdelete(rb->sdfgi);
  53. rb->sdfgi = nullptr;
  54. }
  55. return;
  56. }
  57. static const uint32_t history_frames_to_converge[RS::ENV_SDFGI_CONVERGE_MAX] = { 5, 10, 15, 20, 25, 30 };
  58. uint32_t requested_history_size = history_frames_to_converge[gi.sdfgi_frames_to_converge];
  59. if (rb->sdfgi && (rb->sdfgi->cascade_mode != env->sdfgi_cascades || rb->sdfgi->min_cell_size != env->sdfgi_min_cell_size || requested_history_size != rb->sdfgi->history_size || rb->sdfgi->uses_occlusion != env->sdfgi_use_occlusion || rb->sdfgi->y_scale_mode != env->sdfgi_y_scale)) {
  60. //configuration changed, erase
  61. rb->sdfgi->erase();
  62. memdelete(rb->sdfgi);
  63. rb->sdfgi = nullptr;
  64. }
  65. RendererSceneGIRD::SDFGI *sdfgi = rb->sdfgi;
  66. if (sdfgi == nullptr) {
  67. // re-create
  68. rb->sdfgi = gi.create_sdfgi(env, p_world_position, requested_history_size);
  69. } else {
  70. //check for updates
  71. rb->sdfgi->update(env, p_world_position);
  72. }
  73. }
  74. int RendererSceneRenderRD::sdfgi_get_pending_region_count(RID p_render_buffers) const {
  75. RenderBuffers *rb = render_buffers_owner.getornull(p_render_buffers);
  76. ERR_FAIL_COND_V(rb == nullptr, 0);
  77. if (rb->sdfgi == nullptr) {
  78. return 0;
  79. }
  80. int dirty_count = 0;
  81. for (uint32_t i = 0; i < rb->sdfgi->cascades.size(); i++) {
  82. const RendererSceneGIRD::SDFGI::Cascade &c = rb->sdfgi->cascades[i];
  83. if (c.dirty_regions == RendererSceneGIRD::SDFGI::Cascade::DIRTY_ALL) {
  84. dirty_count++;
  85. } else {
  86. for (int j = 0; j < 3; j++) {
  87. if (c.dirty_regions[j] != 0) {
  88. dirty_count++;
  89. }
  90. }
  91. }
  92. }
  93. return dirty_count;
  94. }
  95. AABB RendererSceneRenderRD::sdfgi_get_pending_region_bounds(RID p_render_buffers, int p_region) const {
  96. AABB bounds;
  97. Vector3i from;
  98. Vector3i size;
  99. RenderBuffers *rb = render_buffers_owner.getornull(p_render_buffers);
  100. ERR_FAIL_COND_V(rb == nullptr, AABB());
  101. ERR_FAIL_COND_V(rb->sdfgi == nullptr, AABB());
  102. int c = rb->sdfgi->get_pending_region_data(p_region, from, size, bounds);
  103. ERR_FAIL_COND_V(c == -1, AABB());
  104. return bounds;
  105. }
  106. uint32_t RendererSceneRenderRD::sdfgi_get_pending_region_cascade(RID p_render_buffers, int p_region) const {
  107. AABB bounds;
  108. Vector3i from;
  109. Vector3i size;
  110. RenderBuffers *rb = render_buffers_owner.getornull(p_render_buffers);
  111. ERR_FAIL_COND_V(rb == nullptr, -1);
  112. ERR_FAIL_COND_V(rb->sdfgi == nullptr, -1);
  113. return rb->sdfgi->get_pending_region_data(p_region, from, size, bounds);
  114. }
  115. RID RendererSceneRenderRD::sky_allocate() {
  116. return sky.allocate_sky_rid();
  117. }
  118. void RendererSceneRenderRD::sky_initialize(RID p_rid) {
  119. sky.initialize_sky_rid(p_rid);
  120. }
  121. void RendererSceneRenderRD::sky_set_radiance_size(RID p_sky, int p_radiance_size) {
  122. sky.sky_set_radiance_size(p_sky, p_radiance_size);
  123. }
  124. void RendererSceneRenderRD::sky_set_mode(RID p_sky, RS::SkyMode p_mode) {
  125. sky.sky_set_mode(p_sky, p_mode);
  126. }
  127. void RendererSceneRenderRD::sky_set_material(RID p_sky, RID p_material) {
  128. sky.sky_set_material(p_sky, p_material);
  129. }
  130. Ref<Image> RendererSceneRenderRD::sky_bake_panorama(RID p_sky, float p_energy, bool p_bake_irradiance, const Size2i &p_size) {
  131. return sky.sky_bake_panorama(p_sky, p_energy, p_bake_irradiance, p_size);
  132. }
  133. RID RendererSceneRenderRD::environment_allocate() {
  134. return environment_owner.allocate_rid();
  135. }
  136. void RendererSceneRenderRD::environment_initialize(RID p_rid) {
  137. environment_owner.initialize_rid(p_rid, RendererSceneEnvironmentRD());
  138. }
  139. void RendererSceneRenderRD::environment_set_background(RID p_env, RS::EnvironmentBG p_bg) {
  140. RendererSceneEnvironmentRD *env = environment_owner.getornull(p_env);
  141. ERR_FAIL_COND(!env);
  142. env->background = p_bg;
  143. }
  144. void RendererSceneRenderRD::environment_set_sky(RID p_env, RID p_sky) {
  145. RendererSceneEnvironmentRD *env = environment_owner.getornull(p_env);
  146. ERR_FAIL_COND(!env);
  147. env->sky = p_sky;
  148. }
  149. void RendererSceneRenderRD::environment_set_sky_custom_fov(RID p_env, float p_scale) {
  150. RendererSceneEnvironmentRD *env = environment_owner.getornull(p_env);
  151. ERR_FAIL_COND(!env);
  152. env->sky_custom_fov = p_scale;
  153. }
  154. void RendererSceneRenderRD::environment_set_sky_orientation(RID p_env, const Basis &p_orientation) {
  155. RendererSceneEnvironmentRD *env = environment_owner.getornull(p_env);
  156. ERR_FAIL_COND(!env);
  157. env->sky_orientation = p_orientation;
  158. }
  159. void RendererSceneRenderRD::environment_set_bg_color(RID p_env, const Color &p_color) {
  160. RendererSceneEnvironmentRD *env = environment_owner.getornull(p_env);
  161. ERR_FAIL_COND(!env);
  162. env->bg_color = p_color;
  163. }
  164. void RendererSceneRenderRD::environment_set_bg_energy(RID p_env, float p_energy) {
  165. RendererSceneEnvironmentRD *env = environment_owner.getornull(p_env);
  166. ERR_FAIL_COND(!env);
  167. env->bg_energy = p_energy;
  168. }
  169. void RendererSceneRenderRD::environment_set_canvas_max_layer(RID p_env, int p_max_layer) {
  170. RendererSceneEnvironmentRD *env = environment_owner.getornull(p_env);
  171. ERR_FAIL_COND(!env);
  172. env->canvas_max_layer = p_max_layer;
  173. }
  174. void RendererSceneRenderRD::environment_set_ambient_light(RID p_env, const Color &p_color, RS::EnvironmentAmbientSource p_ambient, float p_energy, float p_sky_contribution, RS::EnvironmentReflectionSource p_reflection_source, const Color &p_ao_color) {
  175. RendererSceneEnvironmentRD *env = environment_owner.getornull(p_env);
  176. ERR_FAIL_COND(!env);
  177. env->set_ambient_light(p_color, p_ambient, p_energy, p_sky_contribution, p_reflection_source, p_ao_color);
  178. }
  179. RS::EnvironmentBG RendererSceneRenderRD::environment_get_background(RID p_env) const {
  180. RendererSceneEnvironmentRD *env = environment_owner.getornull(p_env);
  181. ERR_FAIL_COND_V(!env, RS::ENV_BG_MAX);
  182. return env->background;
  183. }
  184. RID RendererSceneRenderRD::environment_get_sky(RID p_env) const {
  185. RendererSceneEnvironmentRD *env = environment_owner.getornull(p_env);
  186. ERR_FAIL_COND_V(!env, RID());
  187. return env->sky;
  188. }
  189. float RendererSceneRenderRD::environment_get_sky_custom_fov(RID p_env) const {
  190. RendererSceneEnvironmentRD *env = environment_owner.getornull(p_env);
  191. ERR_FAIL_COND_V(!env, 0);
  192. return env->sky_custom_fov;
  193. }
  194. Basis RendererSceneRenderRD::environment_get_sky_orientation(RID p_env) const {
  195. RendererSceneEnvironmentRD *env = environment_owner.getornull(p_env);
  196. ERR_FAIL_COND_V(!env, Basis());
  197. return env->sky_orientation;
  198. }
  199. Color RendererSceneRenderRD::environment_get_bg_color(RID p_env) const {
  200. RendererSceneEnvironmentRD *env = environment_owner.getornull(p_env);
  201. ERR_FAIL_COND_V(!env, Color());
  202. return env->bg_color;
  203. }
  204. float RendererSceneRenderRD::environment_get_bg_energy(RID p_env) const {
  205. RendererSceneEnvironmentRD *env = environment_owner.getornull(p_env);
  206. ERR_FAIL_COND_V(!env, 0);
  207. return env->bg_energy;
  208. }
  209. int RendererSceneRenderRD::environment_get_canvas_max_layer(RID p_env) const {
  210. RendererSceneEnvironmentRD *env = environment_owner.getornull(p_env);
  211. ERR_FAIL_COND_V(!env, 0);
  212. return env->canvas_max_layer;
  213. }
  214. Color RendererSceneRenderRD::environment_get_ambient_light_color(RID p_env) const {
  215. RendererSceneEnvironmentRD *env = environment_owner.getornull(p_env);
  216. ERR_FAIL_COND_V(!env, Color());
  217. return env->ambient_light;
  218. }
  219. RS::EnvironmentAmbientSource RendererSceneRenderRD::environment_get_ambient_source(RID p_env) const {
  220. RendererSceneEnvironmentRD *env = environment_owner.getornull(p_env);
  221. ERR_FAIL_COND_V(!env, RS::ENV_AMBIENT_SOURCE_BG);
  222. return env->ambient_source;
  223. }
  224. float RendererSceneRenderRD::environment_get_ambient_light_energy(RID p_env) const {
  225. RendererSceneEnvironmentRD *env = environment_owner.getornull(p_env);
  226. ERR_FAIL_COND_V(!env, 0);
  227. return env->ambient_light_energy;
  228. }
  229. float RendererSceneRenderRD::environment_get_ambient_sky_contribution(RID p_env) const {
  230. RendererSceneEnvironmentRD *env = environment_owner.getornull(p_env);
  231. ERR_FAIL_COND_V(!env, 0);
  232. return env->ambient_sky_contribution;
  233. }
  234. RS::EnvironmentReflectionSource RendererSceneRenderRD::environment_get_reflection_source(RID p_env) const {
  235. RendererSceneEnvironmentRD *env = environment_owner.getornull(p_env);
  236. ERR_FAIL_COND_V(!env, RS::ENV_REFLECTION_SOURCE_DISABLED);
  237. return env->reflection_source;
  238. }
  239. Color RendererSceneRenderRD::environment_get_ao_color(RID p_env) const {
  240. RendererSceneEnvironmentRD *env = environment_owner.getornull(p_env);
  241. ERR_FAIL_COND_V(!env, Color());
  242. return env->ao_color;
  243. }
  244. void RendererSceneRenderRD::environment_set_tonemap(RID p_env, RS::EnvironmentToneMapper p_tone_mapper, float p_exposure, float p_white, bool p_auto_exposure, float p_min_luminance, float p_max_luminance, float p_auto_exp_speed, float p_auto_exp_scale) {
  245. RendererSceneEnvironmentRD *env = environment_owner.getornull(p_env);
  246. ERR_FAIL_COND(!env);
  247. env->set_tonemap(p_tone_mapper, p_exposure, p_white, p_auto_exposure, p_min_luminance, p_max_luminance, p_auto_exp_speed, p_auto_exp_scale);
  248. }
  249. void RendererSceneRenderRD::environment_set_glow(RID p_env, bool p_enable, Vector<float> p_levels, float p_intensity, float p_strength, float p_mix, float p_bloom_threshold, RS::EnvironmentGlowBlendMode p_blend_mode, float p_hdr_bleed_threshold, float p_hdr_bleed_scale, float p_hdr_luminance_cap) {
  250. RendererSceneEnvironmentRD *env = environment_owner.getornull(p_env);
  251. ERR_FAIL_COND(!env);
  252. env->set_glow(p_enable, p_levels, p_intensity, p_strength, p_mix, p_bloom_threshold, p_blend_mode, p_hdr_bleed_threshold, p_hdr_bleed_scale, p_hdr_luminance_cap);
  253. }
  254. void RendererSceneRenderRD::environment_glow_set_use_bicubic_upscale(bool p_enable) {
  255. glow_bicubic_upscale = p_enable;
  256. }
  257. void RendererSceneRenderRD::environment_glow_set_use_high_quality(bool p_enable) {
  258. glow_high_quality = p_enable;
  259. }
  260. void RendererSceneRenderRD::environment_set_sdfgi(RID p_env, bool p_enable, RS::EnvironmentSDFGICascades p_cascades, float p_min_cell_size, RS::EnvironmentSDFGIYScale p_y_scale, bool p_use_occlusion, float p_bounce_feedback, bool p_read_sky, float p_energy, float p_normal_bias, float p_probe_bias) {
  261. RendererSceneEnvironmentRD *env = environment_owner.getornull(p_env);
  262. ERR_FAIL_COND(!env);
  263. if (!is_dynamic_gi_supported()) {
  264. return;
  265. }
  266. env->set_sdfgi(p_enable, p_cascades, p_min_cell_size, p_y_scale, p_use_occlusion, p_bounce_feedback, p_read_sky, p_energy, p_normal_bias, p_probe_bias);
  267. }
  268. void RendererSceneRenderRD::environment_set_fog(RID p_env, bool p_enable, const Color &p_light_color, float p_light_energy, float p_sun_scatter, float p_density, float p_height, float p_height_density, float p_fog_aerial_perspective) {
  269. RendererSceneEnvironmentRD *env = environment_owner.getornull(p_env);
  270. ERR_FAIL_COND(!env);
  271. env->set_fog(p_enable, p_light_color, p_light_energy, p_sun_scatter, p_density, p_height, p_height_density, p_fog_aerial_perspective);
  272. }
  273. bool RendererSceneRenderRD::environment_is_fog_enabled(RID p_env) const {
  274. const RendererSceneEnvironmentRD *env = environment_owner.getornull(p_env);
  275. ERR_FAIL_COND_V(!env, false);
  276. return env->fog_enabled;
  277. }
  278. Color RendererSceneRenderRD::environment_get_fog_light_color(RID p_env) const {
  279. const RendererSceneEnvironmentRD *env = environment_owner.getornull(p_env);
  280. ERR_FAIL_COND_V(!env, Color());
  281. return env->fog_light_color;
  282. }
  283. float RendererSceneRenderRD::environment_get_fog_light_energy(RID p_env) const {
  284. const RendererSceneEnvironmentRD *env = environment_owner.getornull(p_env);
  285. ERR_FAIL_COND_V(!env, 0);
  286. return env->fog_light_energy;
  287. }
  288. float RendererSceneRenderRD::environment_get_fog_sun_scatter(RID p_env) const {
  289. const RendererSceneEnvironmentRD *env = environment_owner.getornull(p_env);
  290. ERR_FAIL_COND_V(!env, 0);
  291. return env->fog_sun_scatter;
  292. }
  293. float RendererSceneRenderRD::environment_get_fog_density(RID p_env) const {
  294. const RendererSceneEnvironmentRD *env = environment_owner.getornull(p_env);
  295. ERR_FAIL_COND_V(!env, 0);
  296. return env->fog_density;
  297. }
  298. float RendererSceneRenderRD::environment_get_fog_height(RID p_env) const {
  299. const RendererSceneEnvironmentRD *env = environment_owner.getornull(p_env);
  300. ERR_FAIL_COND_V(!env, 0);
  301. return env->fog_height;
  302. }
  303. float RendererSceneRenderRD::environment_get_fog_height_density(RID p_env) const {
  304. const RendererSceneEnvironmentRD *env = environment_owner.getornull(p_env);
  305. ERR_FAIL_COND_V(!env, 0);
  306. return env->fog_height_density;
  307. }
  308. float RendererSceneRenderRD::environment_get_fog_aerial_perspective(RID p_env) const {
  309. const RendererSceneEnvironmentRD *env = environment_owner.getornull(p_env);
  310. ERR_FAIL_COND_V(!env, 0);
  311. return env->fog_aerial_perspective;
  312. }
  313. void RendererSceneRenderRD::environment_set_volumetric_fog(RID p_env, bool p_enable, float p_density, const Color &p_light, float p_light_energy, float p_length, float p_detail_spread, float p_gi_inject, bool p_temporal_reprojection, float p_temporal_reprojection_amount) {
  314. RendererSceneEnvironmentRD *env = environment_owner.getornull(p_env);
  315. ERR_FAIL_COND(!env);
  316. if (!is_volumetric_supported()) {
  317. return;
  318. }
  319. env->set_volumetric_fog(p_enable, p_density, p_light, p_light_energy, p_length, p_detail_spread, p_gi_inject, p_temporal_reprojection, p_temporal_reprojection_amount);
  320. }
  321. void RendererSceneRenderRD::environment_set_volumetric_fog_volume_size(int p_size, int p_depth) {
  322. volumetric_fog_size = p_size;
  323. volumetric_fog_depth = p_depth;
  324. }
  325. void RendererSceneRenderRD::environment_set_volumetric_fog_filter_active(bool p_enable) {
  326. volumetric_fog_filter_active = p_enable;
  327. }
  328. void RendererSceneRenderRD::environment_set_sdfgi_ray_count(RS::EnvironmentSDFGIRayCount p_ray_count) {
  329. gi.sdfgi_ray_count = p_ray_count;
  330. }
  331. void RendererSceneRenderRD::environment_set_sdfgi_frames_to_converge(RS::EnvironmentSDFGIFramesToConverge p_frames) {
  332. gi.sdfgi_frames_to_converge = p_frames;
  333. }
  334. void RendererSceneRenderRD::environment_set_sdfgi_frames_to_update_light(RS::EnvironmentSDFGIFramesToUpdateLight p_update) {
  335. gi.sdfgi_frames_to_update_light = p_update;
  336. }
  337. void RendererSceneRenderRD::environment_set_ssr(RID p_env, bool p_enable, int p_max_steps, float p_fade_int, float p_fade_out, float p_depth_tolerance) {
  338. RendererSceneEnvironmentRD *env = environment_owner.getornull(p_env);
  339. ERR_FAIL_COND(!env);
  340. env->set_ssr(p_enable, p_max_steps, p_fade_int, p_fade_out, p_depth_tolerance);
  341. }
  342. void RendererSceneRenderRD::environment_set_ssr_roughness_quality(RS::EnvironmentSSRRoughnessQuality p_quality) {
  343. ssr_roughness_quality = p_quality;
  344. }
  345. RS::EnvironmentSSRRoughnessQuality RendererSceneRenderRD::environment_get_ssr_roughness_quality() const {
  346. return ssr_roughness_quality;
  347. }
  348. void RendererSceneRenderRD::environment_set_ssao(RID p_env, bool p_enable, float p_radius, float p_intensity, float p_power, float p_detail, float p_horizon, float p_sharpness, float p_light_affect, float p_ao_channel_affect) {
  349. RendererSceneEnvironmentRD *env = environment_owner.getornull(p_env);
  350. ERR_FAIL_COND(!env);
  351. env->set_ssao(p_enable, p_radius, p_intensity, p_power, p_detail, p_horizon, p_sharpness, p_light_affect, p_ao_channel_affect);
  352. }
  353. void RendererSceneRenderRD::environment_set_ssao_quality(RS::EnvironmentSSAOQuality p_quality, bool p_half_size, float p_adaptive_target, int p_blur_passes, float p_fadeout_from, float p_fadeout_to) {
  354. ssao_quality = p_quality;
  355. ssao_half_size = p_half_size;
  356. ssao_adaptive_target = p_adaptive_target;
  357. ssao_blur_passes = p_blur_passes;
  358. ssao_fadeout_from = p_fadeout_from;
  359. ssao_fadeout_to = p_fadeout_to;
  360. }
  361. bool RendererSceneRenderRD::environment_is_ssao_enabled(RID p_env) const {
  362. RendererSceneEnvironmentRD *env = environment_owner.getornull(p_env);
  363. ERR_FAIL_COND_V(!env, false);
  364. return env->ssao_enabled;
  365. }
  366. float RendererSceneRenderRD::environment_get_ssao_ao_affect(RID p_env) const {
  367. RendererSceneEnvironmentRD *env = environment_owner.getornull(p_env);
  368. ERR_FAIL_COND_V(!env, 0.0);
  369. return env->ssao_ao_channel_affect;
  370. }
  371. float RendererSceneRenderRD::environment_get_ssao_light_affect(RID p_env) const {
  372. RendererSceneEnvironmentRD *env = environment_owner.getornull(p_env);
  373. ERR_FAIL_COND_V(!env, 0.0);
  374. return env->ssao_direct_light_affect;
  375. }
  376. bool RendererSceneRenderRD::environment_is_ssr_enabled(RID p_env) const {
  377. RendererSceneEnvironmentRD *env = environment_owner.getornull(p_env);
  378. ERR_FAIL_COND_V(!env, false);
  379. return env->ssr_enabled;
  380. }
  381. bool RendererSceneRenderRD::environment_is_sdfgi_enabled(RID p_env) const {
  382. RendererSceneEnvironmentRD *env = environment_owner.getornull(p_env);
  383. ERR_FAIL_COND_V(!env, false);
  384. return env->sdfgi_enabled;
  385. }
  386. bool RendererSceneRenderRD::is_environment(RID p_env) const {
  387. return environment_owner.owns(p_env);
  388. }
  389. Ref<Image> RendererSceneRenderRD::environment_bake_panorama(RID p_env, bool p_bake_irradiance, const Size2i &p_size) {
  390. RendererSceneEnvironmentRD *env = environment_owner.getornull(p_env);
  391. ERR_FAIL_COND_V(!env, Ref<Image>());
  392. if (env->background == RS::ENV_BG_CAMERA_FEED || env->background == RS::ENV_BG_CANVAS || env->background == RS::ENV_BG_KEEP) {
  393. return Ref<Image>(); //nothing to bake
  394. }
  395. if (env->background == RS::ENV_BG_CLEAR_COLOR || env->background == RS::ENV_BG_COLOR) {
  396. Color color;
  397. if (env->background == RS::ENV_BG_CLEAR_COLOR) {
  398. color = storage->get_default_clear_color();
  399. } else {
  400. color = env->bg_color;
  401. }
  402. color.r *= env->bg_energy;
  403. color.g *= env->bg_energy;
  404. color.b *= env->bg_energy;
  405. Ref<Image> ret;
  406. ret.instantiate();
  407. ret->create(p_size.width, p_size.height, false, Image::FORMAT_RGBAF);
  408. for (int i = 0; i < p_size.width; i++) {
  409. for (int j = 0; j < p_size.height; j++) {
  410. ret->set_pixel(i, j, color);
  411. }
  412. }
  413. return ret;
  414. }
  415. if (env->background == RS::ENV_BG_SKY && env->sky.is_valid()) {
  416. return sky_bake_panorama(env->sky, env->bg_energy, p_bake_irradiance, p_size);
  417. }
  418. return Ref<Image>();
  419. }
  420. ////////////////////////////////////////////////////////////
  421. RID RendererSceneRenderRD::reflection_atlas_create() {
  422. ReflectionAtlas ra;
  423. ra.count = GLOBAL_GET("rendering/reflections/reflection_atlas/reflection_count");
  424. ra.size = GLOBAL_GET("rendering/reflections/reflection_atlas/reflection_size");
  425. if (is_clustered_enabled()) {
  426. ra.cluster_builder = memnew(ClusterBuilderRD);
  427. ra.cluster_builder->set_shared(&cluster_builder_shared);
  428. ra.cluster_builder->setup(Size2i(ra.size, ra.size), max_cluster_elements, RID(), RID(), RID());
  429. } else {
  430. ra.cluster_builder = nullptr;
  431. }
  432. return reflection_atlas_owner.make_rid(ra);
  433. }
  434. void RendererSceneRenderRD::reflection_atlas_set_size(RID p_ref_atlas, int p_reflection_size, int p_reflection_count) {
  435. ReflectionAtlas *ra = reflection_atlas_owner.getornull(p_ref_atlas);
  436. ERR_FAIL_COND(!ra);
  437. if (ra->size == p_reflection_size && ra->count == p_reflection_count) {
  438. return; //no changes
  439. }
  440. if (ra->cluster_builder) {
  441. // only if we're using our cluster
  442. ra->cluster_builder->setup(Size2i(ra->size, ra->size), max_cluster_elements, RID(), RID(), RID());
  443. }
  444. ra->size = p_reflection_size;
  445. ra->count = p_reflection_count;
  446. if (ra->reflection.is_valid()) {
  447. //clear and invalidate everything
  448. RD::get_singleton()->free(ra->reflection);
  449. ra->reflection = RID();
  450. RD::get_singleton()->free(ra->depth_buffer);
  451. ra->depth_buffer = RID();
  452. for (int i = 0; i < ra->reflections.size(); i++) {
  453. ra->reflections.write[i].data.clear_reflection_data();
  454. if (ra->reflections[i].owner.is_null()) {
  455. continue;
  456. }
  457. reflection_probe_release_atlas_index(ra->reflections[i].owner);
  458. //rp->atlasindex clear
  459. }
  460. ra->reflections.clear();
  461. }
  462. }
  463. int RendererSceneRenderRD::reflection_atlas_get_size(RID p_ref_atlas) const {
  464. ReflectionAtlas *ra = reflection_atlas_owner.getornull(p_ref_atlas);
  465. ERR_FAIL_COND_V(!ra, 0);
  466. return ra->size;
  467. }
  468. ////////////////////////
  469. RID RendererSceneRenderRD::reflection_probe_instance_create(RID p_probe) {
  470. ReflectionProbeInstance rpi;
  471. rpi.probe = p_probe;
  472. rpi.forward_id = _allocate_forward_id(FORWARD_ID_TYPE_REFLECTION_PROBE);
  473. return reflection_probe_instance_owner.make_rid(rpi);
  474. }
  475. void RendererSceneRenderRD::reflection_probe_instance_set_transform(RID p_instance, const Transform3D &p_transform) {
  476. ReflectionProbeInstance *rpi = reflection_probe_instance_owner.getornull(p_instance);
  477. ERR_FAIL_COND(!rpi);
  478. rpi->transform = p_transform;
  479. rpi->dirty = true;
  480. }
  481. void RendererSceneRenderRD::reflection_probe_release_atlas_index(RID p_instance) {
  482. ReflectionProbeInstance *rpi = reflection_probe_instance_owner.getornull(p_instance);
  483. ERR_FAIL_COND(!rpi);
  484. if (rpi->atlas.is_null()) {
  485. return; //nothing to release
  486. }
  487. ReflectionAtlas *atlas = reflection_atlas_owner.getornull(rpi->atlas);
  488. ERR_FAIL_COND(!atlas);
  489. ERR_FAIL_INDEX(rpi->atlas_index, atlas->reflections.size());
  490. atlas->reflections.write[rpi->atlas_index].owner = RID();
  491. rpi->atlas_index = -1;
  492. rpi->atlas = RID();
  493. }
  494. bool RendererSceneRenderRD::reflection_probe_instance_needs_redraw(RID p_instance) {
  495. ReflectionProbeInstance *rpi = reflection_probe_instance_owner.getornull(p_instance);
  496. ERR_FAIL_COND_V(!rpi, false);
  497. if (rpi->rendering) {
  498. return false;
  499. }
  500. if (rpi->dirty) {
  501. return true;
  502. }
  503. if (storage->reflection_probe_get_update_mode(rpi->probe) == RS::REFLECTION_PROBE_UPDATE_ALWAYS) {
  504. return true;
  505. }
  506. return rpi->atlas_index == -1;
  507. }
  508. bool RendererSceneRenderRD::reflection_probe_instance_has_reflection(RID p_instance) {
  509. ReflectionProbeInstance *rpi = reflection_probe_instance_owner.getornull(p_instance);
  510. ERR_FAIL_COND_V(!rpi, false);
  511. return rpi->atlas.is_valid();
  512. }
  513. bool RendererSceneRenderRD::reflection_probe_instance_begin_render(RID p_instance, RID p_reflection_atlas) {
  514. ReflectionAtlas *atlas = reflection_atlas_owner.getornull(p_reflection_atlas);
  515. ERR_FAIL_COND_V(!atlas, false);
  516. ReflectionProbeInstance *rpi = reflection_probe_instance_owner.getornull(p_instance);
  517. ERR_FAIL_COND_V(!rpi, false);
  518. if (storage->reflection_probe_get_update_mode(rpi->probe) == RS::REFLECTION_PROBE_UPDATE_ALWAYS && atlas->reflection.is_valid() && atlas->size != 256) {
  519. WARN_PRINT("ReflectionProbes set to UPDATE_ALWAYS must have an atlas size of 256. Please update the atlas size in the ProjectSettings.");
  520. reflection_atlas_set_size(p_reflection_atlas, 256, atlas->count);
  521. }
  522. if (storage->reflection_probe_get_update_mode(rpi->probe) == RS::REFLECTION_PROBE_UPDATE_ALWAYS && atlas->reflection.is_valid() && atlas->reflections[0].data.layers[0].mipmaps.size() != 8) {
  523. // Invalidate reflection atlas, need to regenerate
  524. RD::get_singleton()->free(atlas->reflection);
  525. atlas->reflection = RID();
  526. for (int i = 0; i < atlas->reflections.size(); i++) {
  527. if (atlas->reflections[i].owner.is_null()) {
  528. continue;
  529. }
  530. reflection_probe_release_atlas_index(atlas->reflections[i].owner);
  531. }
  532. atlas->reflections.clear();
  533. }
  534. if (atlas->reflection.is_null()) {
  535. int mipmaps = MIN(sky.roughness_layers, Image::get_image_required_mipmaps(atlas->size, atlas->size, Image::FORMAT_RGBAH) + 1);
  536. mipmaps = storage->reflection_probe_get_update_mode(rpi->probe) == RS::REFLECTION_PROBE_UPDATE_ALWAYS ? 8 : mipmaps; // always use 8 mipmaps with real time filtering
  537. {
  538. //reflection atlas was unused, create:
  539. RD::TextureFormat tf;
  540. tf.array_layers = 6 * atlas->count;
  541. tf.format = _render_buffers_get_color_format();
  542. tf.texture_type = RD::TEXTURE_TYPE_CUBE_ARRAY;
  543. tf.mipmaps = mipmaps;
  544. tf.width = atlas->size;
  545. tf.height = atlas->size;
  546. tf.usage_bits = RD::TEXTURE_USAGE_COLOR_ATTACHMENT_BIT | RD::TEXTURE_USAGE_SAMPLING_BIT | (_render_buffers_can_be_storage() ? RD::TEXTURE_USAGE_STORAGE_BIT : 0);
  547. atlas->reflection = RD::get_singleton()->texture_create(tf, RD::TextureView());
  548. }
  549. {
  550. RD::TextureFormat tf;
  551. tf.format = RD::get_singleton()->texture_is_format_supported_for_usage(RD::DATA_FORMAT_D32_SFLOAT, RD::TEXTURE_USAGE_DEPTH_STENCIL_ATTACHMENT_BIT) ? RD::DATA_FORMAT_D32_SFLOAT : RD::DATA_FORMAT_X8_D24_UNORM_PACK32;
  552. tf.width = atlas->size;
  553. tf.height = atlas->size;
  554. tf.usage_bits = RD::TEXTURE_USAGE_DEPTH_STENCIL_ATTACHMENT_BIT | RD::TEXTURE_USAGE_SAMPLING_BIT;
  555. atlas->depth_buffer = RD::get_singleton()->texture_create(tf, RD::TextureView());
  556. }
  557. atlas->reflections.resize(atlas->count);
  558. for (int i = 0; i < atlas->count; i++) {
  559. atlas->reflections.write[i].data.update_reflection_data(atlas->size, mipmaps, false, atlas->reflection, i * 6, storage->reflection_probe_get_update_mode(rpi->probe) == RS::REFLECTION_PROBE_UPDATE_ALWAYS, sky.roughness_layers);
  560. for (int j = 0; j < 6; j++) {
  561. Vector<RID> fb;
  562. fb.push_back(atlas->reflections.write[i].data.layers[0].mipmaps[0].views[j]);
  563. fb.push_back(atlas->depth_buffer);
  564. atlas->reflections.write[i].fbs[j] = RD::get_singleton()->framebuffer_create(fb);
  565. }
  566. }
  567. Vector<RID> fb;
  568. fb.push_back(atlas->depth_buffer);
  569. atlas->depth_fb = RD::get_singleton()->framebuffer_create(fb);
  570. }
  571. if (rpi->atlas_index == -1) {
  572. for (int i = 0; i < atlas->reflections.size(); i++) {
  573. if (atlas->reflections[i].owner.is_null()) {
  574. rpi->atlas_index = i;
  575. break;
  576. }
  577. }
  578. //find the one used last
  579. if (rpi->atlas_index == -1) {
  580. //everything is in use, find the one least used via LRU
  581. uint64_t pass_min = 0;
  582. for (int i = 0; i < atlas->reflections.size(); i++) {
  583. ReflectionProbeInstance *rpi2 = reflection_probe_instance_owner.getornull(atlas->reflections[i].owner);
  584. if (rpi2->last_pass < pass_min) {
  585. pass_min = rpi2->last_pass;
  586. rpi->atlas_index = i;
  587. }
  588. }
  589. }
  590. }
  591. if (rpi->atlas_index != -1) { // should we fail if this is still -1 ?
  592. atlas->reflections.write[rpi->atlas_index].owner = p_instance;
  593. }
  594. rpi->atlas = p_reflection_atlas;
  595. rpi->rendering = true;
  596. rpi->dirty = false;
  597. rpi->processing_layer = 1;
  598. rpi->processing_side = 0;
  599. return true;
  600. }
  601. bool RendererSceneRenderRD::reflection_probe_instance_postprocess_step(RID p_instance) {
  602. ReflectionProbeInstance *rpi = reflection_probe_instance_owner.getornull(p_instance);
  603. ERR_FAIL_COND_V(!rpi, false);
  604. ERR_FAIL_COND_V(!rpi->rendering, false);
  605. ERR_FAIL_COND_V(rpi->atlas.is_null(), false);
  606. ReflectionAtlas *atlas = reflection_atlas_owner.getornull(rpi->atlas);
  607. if (!atlas || rpi->atlas_index == -1) {
  608. //does not belong to an atlas anymore, cancel (was removed from atlas or atlas changed while rendering)
  609. rpi->rendering = false;
  610. return false;
  611. }
  612. if (storage->reflection_probe_get_update_mode(rpi->probe) == RS::REFLECTION_PROBE_UPDATE_ALWAYS) {
  613. // Using real time reflections, all roughness is done in one step
  614. atlas->reflections.write[rpi->atlas_index].data.create_reflection_fast_filter(storage, false);
  615. rpi->rendering = false;
  616. rpi->processing_side = 0;
  617. rpi->processing_layer = 1;
  618. return true;
  619. }
  620. if (rpi->processing_layer > 1) {
  621. atlas->reflections.write[rpi->atlas_index].data.create_reflection_importance_sample(storage, false, 10, rpi->processing_layer, sky.sky_ggx_samples_quality);
  622. rpi->processing_layer++;
  623. if (rpi->processing_layer == atlas->reflections[rpi->atlas_index].data.layers[0].mipmaps.size()) {
  624. rpi->rendering = false;
  625. rpi->processing_side = 0;
  626. rpi->processing_layer = 1;
  627. return true;
  628. }
  629. return false;
  630. } else {
  631. atlas->reflections.write[rpi->atlas_index].data.create_reflection_importance_sample(storage, false, rpi->processing_side, rpi->processing_layer, sky.sky_ggx_samples_quality);
  632. }
  633. rpi->processing_side++;
  634. if (rpi->processing_side == 6) {
  635. rpi->processing_side = 0;
  636. rpi->processing_layer++;
  637. }
  638. return false;
  639. }
  640. uint32_t RendererSceneRenderRD::reflection_probe_instance_get_resolution(RID p_instance) {
  641. ReflectionProbeInstance *rpi = reflection_probe_instance_owner.getornull(p_instance);
  642. ERR_FAIL_COND_V(!rpi, 0);
  643. ReflectionAtlas *atlas = reflection_atlas_owner.getornull(rpi->atlas);
  644. ERR_FAIL_COND_V(!atlas, 0);
  645. return atlas->size;
  646. }
  647. RID RendererSceneRenderRD::reflection_probe_instance_get_framebuffer(RID p_instance, int p_index) {
  648. ReflectionProbeInstance *rpi = reflection_probe_instance_owner.getornull(p_instance);
  649. ERR_FAIL_COND_V(!rpi, RID());
  650. ERR_FAIL_INDEX_V(p_index, 6, RID());
  651. ReflectionAtlas *atlas = reflection_atlas_owner.getornull(rpi->atlas);
  652. ERR_FAIL_COND_V(!atlas, RID());
  653. return atlas->reflections[rpi->atlas_index].fbs[p_index];
  654. }
  655. RID RendererSceneRenderRD::reflection_probe_instance_get_depth_framebuffer(RID p_instance, int p_index) {
  656. ReflectionProbeInstance *rpi = reflection_probe_instance_owner.getornull(p_instance);
  657. ERR_FAIL_COND_V(!rpi, RID());
  658. ERR_FAIL_INDEX_V(p_index, 6, RID());
  659. ReflectionAtlas *atlas = reflection_atlas_owner.getornull(rpi->atlas);
  660. ERR_FAIL_COND_V(!atlas, RID());
  661. return atlas->depth_fb;
  662. }
  663. ///////////////////////////////////////////////////////////
  664. RID RendererSceneRenderRD::shadow_atlas_create() {
  665. return shadow_atlas_owner.make_rid(ShadowAtlas());
  666. }
  667. void RendererSceneRenderRD::_update_shadow_atlas(ShadowAtlas *shadow_atlas) {
  668. if (shadow_atlas->size > 0 && shadow_atlas->depth.is_null()) {
  669. RD::TextureFormat tf;
  670. tf.format = shadow_atlas->use_16_bits ? RD::DATA_FORMAT_D16_UNORM : RD::DATA_FORMAT_D32_SFLOAT;
  671. tf.width = shadow_atlas->size;
  672. tf.height = shadow_atlas->size;
  673. tf.usage_bits = RD::TEXTURE_USAGE_SAMPLING_BIT | RD::TEXTURE_USAGE_DEPTH_STENCIL_ATTACHMENT_BIT;
  674. shadow_atlas->depth = RD::get_singleton()->texture_create(tf, RD::TextureView());
  675. Vector<RID> fb_tex;
  676. fb_tex.push_back(shadow_atlas->depth);
  677. shadow_atlas->fb = RD::get_singleton()->framebuffer_create(fb_tex);
  678. }
  679. }
  680. void RendererSceneRenderRD::shadow_atlas_set_size(RID p_atlas, int p_size, bool p_16_bits) {
  681. ShadowAtlas *shadow_atlas = shadow_atlas_owner.getornull(p_atlas);
  682. ERR_FAIL_COND(!shadow_atlas);
  683. ERR_FAIL_COND(p_size < 0);
  684. p_size = next_power_of_2(p_size);
  685. if (p_size == shadow_atlas->size && p_16_bits == shadow_atlas->use_16_bits) {
  686. return;
  687. }
  688. // erasing atlas
  689. if (shadow_atlas->depth.is_valid()) {
  690. RD::get_singleton()->free(shadow_atlas->depth);
  691. shadow_atlas->depth = RID();
  692. }
  693. for (int i = 0; i < 4; i++) {
  694. //clear subdivisions
  695. shadow_atlas->quadrants[i].shadows.resize(0);
  696. shadow_atlas->quadrants[i].shadows.resize(1 << shadow_atlas->quadrants[i].subdivision);
  697. }
  698. //erase shadow atlas reference from lights
  699. for (Map<RID, uint32_t>::Element *E = shadow_atlas->shadow_owners.front(); E; E = E->next()) {
  700. LightInstance *li = light_instance_owner.getornull(E->key());
  701. ERR_CONTINUE(!li);
  702. li->shadow_atlases.erase(p_atlas);
  703. }
  704. //clear owners
  705. shadow_atlas->shadow_owners.clear();
  706. shadow_atlas->size = p_size;
  707. shadow_atlas->use_16_bits = p_size;
  708. }
  709. void RendererSceneRenderRD::shadow_atlas_set_quadrant_subdivision(RID p_atlas, int p_quadrant, int p_subdivision) {
  710. ShadowAtlas *shadow_atlas = shadow_atlas_owner.getornull(p_atlas);
  711. ERR_FAIL_COND(!shadow_atlas);
  712. ERR_FAIL_INDEX(p_quadrant, 4);
  713. ERR_FAIL_INDEX(p_subdivision, 16384);
  714. uint32_t subdiv = next_power_of_2(p_subdivision);
  715. if (subdiv & 0xaaaaaaaa) { //sqrt(subdiv) must be integer
  716. subdiv <<= 1;
  717. }
  718. subdiv = int(Math::sqrt((float)subdiv));
  719. //obtain the number that will be x*x
  720. if (shadow_atlas->quadrants[p_quadrant].subdivision == subdiv) {
  721. return;
  722. }
  723. //erase all data from quadrant
  724. for (int i = 0; i < shadow_atlas->quadrants[p_quadrant].shadows.size(); i++) {
  725. if (shadow_atlas->quadrants[p_quadrant].shadows[i].owner.is_valid()) {
  726. shadow_atlas->shadow_owners.erase(shadow_atlas->quadrants[p_quadrant].shadows[i].owner);
  727. LightInstance *li = light_instance_owner.getornull(shadow_atlas->quadrants[p_quadrant].shadows[i].owner);
  728. ERR_CONTINUE(!li);
  729. li->shadow_atlases.erase(p_atlas);
  730. }
  731. }
  732. shadow_atlas->quadrants[p_quadrant].shadows.resize(0);
  733. shadow_atlas->quadrants[p_quadrant].shadows.resize(subdiv * subdiv);
  734. shadow_atlas->quadrants[p_quadrant].subdivision = subdiv;
  735. //cache the smallest subdiv (for faster allocation in light update)
  736. shadow_atlas->smallest_subdiv = 1 << 30;
  737. for (int i = 0; i < 4; i++) {
  738. if (shadow_atlas->quadrants[i].subdivision) {
  739. shadow_atlas->smallest_subdiv = MIN(shadow_atlas->smallest_subdiv, shadow_atlas->quadrants[i].subdivision);
  740. }
  741. }
  742. if (shadow_atlas->smallest_subdiv == 1 << 30) {
  743. shadow_atlas->smallest_subdiv = 0;
  744. }
  745. //resort the size orders, simple bublesort for 4 elements..
  746. int swaps = 0;
  747. do {
  748. swaps = 0;
  749. for (int i = 0; i < 3; i++) {
  750. if (shadow_atlas->quadrants[shadow_atlas->size_order[i]].subdivision < shadow_atlas->quadrants[shadow_atlas->size_order[i + 1]].subdivision) {
  751. SWAP(shadow_atlas->size_order[i], shadow_atlas->size_order[i + 1]);
  752. swaps++;
  753. }
  754. }
  755. } while (swaps > 0);
  756. }
  757. bool RendererSceneRenderRD::_shadow_atlas_find_shadow(ShadowAtlas *shadow_atlas, int *p_in_quadrants, int p_quadrant_count, int p_current_subdiv, uint64_t p_tick, int &r_quadrant, int &r_shadow) {
  758. for (int i = p_quadrant_count - 1; i >= 0; i--) {
  759. int qidx = p_in_quadrants[i];
  760. if (shadow_atlas->quadrants[qidx].subdivision == (uint32_t)p_current_subdiv) {
  761. return false;
  762. }
  763. //look for an empty space
  764. int sc = shadow_atlas->quadrants[qidx].shadows.size();
  765. ShadowAtlas::Quadrant::Shadow *sarr = shadow_atlas->quadrants[qidx].shadows.ptrw();
  766. int found_free_idx = -1; //found a free one
  767. int found_used_idx = -1; //found existing one, must steal it
  768. uint64_t min_pass = 0; // pass of the existing one, try to use the least recently used one (LRU fashion)
  769. for (int j = 0; j < sc; j++) {
  770. if (!sarr[j].owner.is_valid()) {
  771. found_free_idx = j;
  772. break;
  773. }
  774. LightInstance *sli = light_instance_owner.getornull(sarr[j].owner);
  775. ERR_CONTINUE(!sli);
  776. if (sli->last_scene_pass != scene_pass) {
  777. //was just allocated, don't kill it so soon, wait a bit..
  778. if (p_tick - sarr[j].alloc_tick < shadow_atlas_realloc_tolerance_msec) {
  779. continue;
  780. }
  781. if (found_used_idx == -1 || sli->last_scene_pass < min_pass) {
  782. found_used_idx = j;
  783. min_pass = sli->last_scene_pass;
  784. }
  785. }
  786. }
  787. if (found_free_idx == -1 && found_used_idx == -1) {
  788. continue; //nothing found
  789. }
  790. if (found_free_idx == -1 && found_used_idx != -1) {
  791. found_free_idx = found_used_idx;
  792. }
  793. r_quadrant = qidx;
  794. r_shadow = found_free_idx;
  795. return true;
  796. }
  797. return false;
  798. }
  799. bool RendererSceneRenderRD::shadow_atlas_update_light(RID p_atlas, RID p_light_intance, float p_coverage, uint64_t p_light_version) {
  800. ShadowAtlas *shadow_atlas = shadow_atlas_owner.getornull(p_atlas);
  801. ERR_FAIL_COND_V(!shadow_atlas, false);
  802. LightInstance *li = light_instance_owner.getornull(p_light_intance);
  803. ERR_FAIL_COND_V(!li, false);
  804. if (shadow_atlas->size == 0 || shadow_atlas->smallest_subdiv == 0) {
  805. return false;
  806. }
  807. uint32_t quad_size = shadow_atlas->size >> 1;
  808. int desired_fit = MIN(quad_size / shadow_atlas->smallest_subdiv, next_power_of_2(quad_size * p_coverage));
  809. int valid_quadrants[4];
  810. int valid_quadrant_count = 0;
  811. int best_size = -1; //best size found
  812. int best_subdiv = -1; //subdiv for the best size
  813. //find the quadrants this fits into, and the best possible size it can fit into
  814. for (int i = 0; i < 4; i++) {
  815. int q = shadow_atlas->size_order[i];
  816. int sd = shadow_atlas->quadrants[q].subdivision;
  817. if (sd == 0) {
  818. continue; //unused
  819. }
  820. int max_fit = quad_size / sd;
  821. if (best_size != -1 && max_fit > best_size) {
  822. break; //too large
  823. }
  824. valid_quadrants[valid_quadrant_count++] = q;
  825. best_subdiv = sd;
  826. if (max_fit >= desired_fit) {
  827. best_size = max_fit;
  828. }
  829. }
  830. ERR_FAIL_COND_V(valid_quadrant_count == 0, false);
  831. uint64_t tick = OS::get_singleton()->get_ticks_msec();
  832. //see if it already exists
  833. if (shadow_atlas->shadow_owners.has(p_light_intance)) {
  834. //it does!
  835. uint32_t key = shadow_atlas->shadow_owners[p_light_intance];
  836. uint32_t q = (key >> ShadowAtlas::QUADRANT_SHIFT) & 0x3;
  837. uint32_t s = key & ShadowAtlas::SHADOW_INDEX_MASK;
  838. bool should_realloc = shadow_atlas->quadrants[q].subdivision != (uint32_t)best_subdiv && (shadow_atlas->quadrants[q].shadows[s].alloc_tick - tick > shadow_atlas_realloc_tolerance_msec);
  839. bool should_redraw = shadow_atlas->quadrants[q].shadows[s].version != p_light_version;
  840. if (!should_realloc) {
  841. shadow_atlas->quadrants[q].shadows.write[s].version = p_light_version;
  842. //already existing, see if it should redraw or it's just OK
  843. return should_redraw;
  844. }
  845. int new_quadrant, new_shadow;
  846. //find a better place
  847. if (_shadow_atlas_find_shadow(shadow_atlas, valid_quadrants, valid_quadrant_count, shadow_atlas->quadrants[q].subdivision, tick, new_quadrant, new_shadow)) {
  848. //found a better place!
  849. ShadowAtlas::Quadrant::Shadow *sh = &shadow_atlas->quadrants[new_quadrant].shadows.write[new_shadow];
  850. if (sh->owner.is_valid()) {
  851. //is taken, but is invalid, erasing it
  852. shadow_atlas->shadow_owners.erase(sh->owner);
  853. LightInstance *sli = light_instance_owner.getornull(sh->owner);
  854. sli->shadow_atlases.erase(p_atlas);
  855. }
  856. //erase previous
  857. shadow_atlas->quadrants[q].shadows.write[s].version = 0;
  858. shadow_atlas->quadrants[q].shadows.write[s].owner = RID();
  859. sh->owner = p_light_intance;
  860. sh->alloc_tick = tick;
  861. sh->version = p_light_version;
  862. li->shadow_atlases.insert(p_atlas);
  863. //make new key
  864. key = new_quadrant << ShadowAtlas::QUADRANT_SHIFT;
  865. key |= new_shadow;
  866. //update it in map
  867. shadow_atlas->shadow_owners[p_light_intance] = key;
  868. //make it dirty, as it should redraw anyway
  869. return true;
  870. }
  871. //no better place for this shadow found, keep current
  872. //already existing, see if it should redraw or it's just OK
  873. shadow_atlas->quadrants[q].shadows.write[s].version = p_light_version;
  874. return should_redraw;
  875. }
  876. int new_quadrant, new_shadow;
  877. //find a better place
  878. if (_shadow_atlas_find_shadow(shadow_atlas, valid_quadrants, valid_quadrant_count, -1, tick, new_quadrant, new_shadow)) {
  879. //found a better place!
  880. ShadowAtlas::Quadrant::Shadow *sh = &shadow_atlas->quadrants[new_quadrant].shadows.write[new_shadow];
  881. if (sh->owner.is_valid()) {
  882. //is taken, but is invalid, erasing it
  883. shadow_atlas->shadow_owners.erase(sh->owner);
  884. LightInstance *sli = light_instance_owner.getornull(sh->owner);
  885. sli->shadow_atlases.erase(p_atlas);
  886. }
  887. sh->owner = p_light_intance;
  888. sh->alloc_tick = tick;
  889. sh->version = p_light_version;
  890. li->shadow_atlases.insert(p_atlas);
  891. //make new key
  892. uint32_t key = new_quadrant << ShadowAtlas::QUADRANT_SHIFT;
  893. key |= new_shadow;
  894. //update it in map
  895. shadow_atlas->shadow_owners[p_light_intance] = key;
  896. //make it dirty, as it should redraw anyway
  897. return true;
  898. }
  899. //no place to allocate this light, apologies
  900. return false;
  901. }
  902. void RendererSceneRenderRD::_update_directional_shadow_atlas() {
  903. if (directional_shadow.depth.is_null() && directional_shadow.size > 0) {
  904. RD::TextureFormat tf;
  905. tf.format = directional_shadow.use_16_bits ? RD::DATA_FORMAT_D16_UNORM : RD::DATA_FORMAT_D32_SFLOAT;
  906. tf.width = directional_shadow.size;
  907. tf.height = directional_shadow.size;
  908. tf.usage_bits = RD::TEXTURE_USAGE_SAMPLING_BIT | RD::TEXTURE_USAGE_DEPTH_STENCIL_ATTACHMENT_BIT;
  909. directional_shadow.depth = RD::get_singleton()->texture_create(tf, RD::TextureView());
  910. Vector<RID> fb_tex;
  911. fb_tex.push_back(directional_shadow.depth);
  912. directional_shadow.fb = RD::get_singleton()->framebuffer_create(fb_tex);
  913. }
  914. }
  915. void RendererSceneRenderRD::directional_shadow_atlas_set_size(int p_size, bool p_16_bits) {
  916. p_size = nearest_power_of_2_templated(p_size);
  917. if (directional_shadow.size == p_size && directional_shadow.use_16_bits == p_16_bits) {
  918. return;
  919. }
  920. directional_shadow.size = p_size;
  921. if (directional_shadow.depth.is_valid()) {
  922. RD::get_singleton()->free(directional_shadow.depth);
  923. directional_shadow.depth = RID();
  924. _base_uniforms_changed();
  925. }
  926. }
  927. void RendererSceneRenderRD::set_directional_shadow_count(int p_count) {
  928. directional_shadow.light_count = p_count;
  929. directional_shadow.current_light = 0;
  930. }
  931. static Rect2i _get_directional_shadow_rect(int p_size, int p_shadow_count, int p_shadow_index) {
  932. int split_h = 1;
  933. int split_v = 1;
  934. while (split_h * split_v < p_shadow_count) {
  935. if (split_h == split_v) {
  936. split_h <<= 1;
  937. } else {
  938. split_v <<= 1;
  939. }
  940. }
  941. Rect2i rect(0, 0, p_size, p_size);
  942. rect.size.width /= split_h;
  943. rect.size.height /= split_v;
  944. rect.position.x = rect.size.width * (p_shadow_index % split_h);
  945. rect.position.y = rect.size.height * (p_shadow_index / split_h);
  946. return rect;
  947. }
  948. int RendererSceneRenderRD::get_directional_light_shadow_size(RID p_light_intance) {
  949. ERR_FAIL_COND_V(directional_shadow.light_count == 0, 0);
  950. Rect2i r = _get_directional_shadow_rect(directional_shadow.size, directional_shadow.light_count, 0);
  951. LightInstance *light_instance = light_instance_owner.getornull(p_light_intance);
  952. ERR_FAIL_COND_V(!light_instance, 0);
  953. switch (storage->light_directional_get_shadow_mode(light_instance->light)) {
  954. case RS::LIGHT_DIRECTIONAL_SHADOW_ORTHOGONAL:
  955. break; //none
  956. case RS::LIGHT_DIRECTIONAL_SHADOW_PARALLEL_2_SPLITS:
  957. r.size.height /= 2;
  958. break;
  959. case RS::LIGHT_DIRECTIONAL_SHADOW_PARALLEL_4_SPLITS:
  960. r.size /= 2;
  961. break;
  962. }
  963. return MAX(r.size.width, r.size.height);
  964. }
  965. //////////////////////////////////////////////////
  966. RID RendererSceneRenderRD::camera_effects_allocate() {
  967. return camera_effects_owner.allocate_rid();
  968. }
  969. void RendererSceneRenderRD::camera_effects_initialize(RID p_rid) {
  970. camera_effects_owner.initialize_rid(p_rid, CameraEffects());
  971. }
  972. void RendererSceneRenderRD::camera_effects_set_dof_blur_quality(RS::DOFBlurQuality p_quality, bool p_use_jitter) {
  973. dof_blur_quality = p_quality;
  974. dof_blur_use_jitter = p_use_jitter;
  975. }
  976. void RendererSceneRenderRD::camera_effects_set_dof_blur_bokeh_shape(RS::DOFBokehShape p_shape) {
  977. dof_blur_bokeh_shape = p_shape;
  978. }
  979. void RendererSceneRenderRD::camera_effects_set_dof_blur(RID p_camera_effects, bool p_far_enable, float p_far_distance, float p_far_transition, bool p_near_enable, float p_near_distance, float p_near_transition, float p_amount) {
  980. CameraEffects *camfx = camera_effects_owner.getornull(p_camera_effects);
  981. ERR_FAIL_COND(!camfx);
  982. camfx->dof_blur_far_enabled = p_far_enable;
  983. camfx->dof_blur_far_distance = p_far_distance;
  984. camfx->dof_blur_far_transition = p_far_transition;
  985. camfx->dof_blur_near_enabled = p_near_enable;
  986. camfx->dof_blur_near_distance = p_near_distance;
  987. camfx->dof_blur_near_transition = p_near_transition;
  988. camfx->dof_blur_amount = p_amount;
  989. }
  990. void RendererSceneRenderRD::camera_effects_set_custom_exposure(RID p_camera_effects, bool p_enable, float p_exposure) {
  991. CameraEffects *camfx = camera_effects_owner.getornull(p_camera_effects);
  992. ERR_FAIL_COND(!camfx);
  993. camfx->override_exposure_enabled = p_enable;
  994. camfx->override_exposure = p_exposure;
  995. }
  996. RID RendererSceneRenderRD::light_instance_create(RID p_light) {
  997. RID li = light_instance_owner.make_rid(LightInstance());
  998. LightInstance *light_instance = light_instance_owner.getornull(li);
  999. light_instance->self = li;
  1000. light_instance->light = p_light;
  1001. light_instance->light_type = storage->light_get_type(p_light);
  1002. if (light_instance->light_type != RS::LIGHT_DIRECTIONAL) {
  1003. light_instance->forward_id = _allocate_forward_id(light_instance->light_type == RS::LIGHT_OMNI ? FORWARD_ID_TYPE_OMNI_LIGHT : FORWARD_ID_TYPE_SPOT_LIGHT);
  1004. }
  1005. return li;
  1006. }
  1007. void RendererSceneRenderRD::light_instance_set_transform(RID p_light_instance, const Transform3D &p_transform) {
  1008. LightInstance *light_instance = light_instance_owner.getornull(p_light_instance);
  1009. ERR_FAIL_COND(!light_instance);
  1010. light_instance->transform = p_transform;
  1011. }
  1012. void RendererSceneRenderRD::light_instance_set_aabb(RID p_light_instance, const AABB &p_aabb) {
  1013. LightInstance *light_instance = light_instance_owner.getornull(p_light_instance);
  1014. ERR_FAIL_COND(!light_instance);
  1015. light_instance->aabb = p_aabb;
  1016. }
  1017. void RendererSceneRenderRD::light_instance_set_shadow_transform(RID p_light_instance, const CameraMatrix &p_projection, const Transform3D &p_transform, float p_far, float p_split, int p_pass, float p_shadow_texel_size, float p_bias_scale, float p_range_begin, const Vector2 &p_uv_scale) {
  1018. LightInstance *light_instance = light_instance_owner.getornull(p_light_instance);
  1019. ERR_FAIL_COND(!light_instance);
  1020. ERR_FAIL_INDEX(p_pass, 6);
  1021. light_instance->shadow_transform[p_pass].camera = p_projection;
  1022. light_instance->shadow_transform[p_pass].transform = p_transform;
  1023. light_instance->shadow_transform[p_pass].farplane = p_far;
  1024. light_instance->shadow_transform[p_pass].split = p_split;
  1025. light_instance->shadow_transform[p_pass].bias_scale = p_bias_scale;
  1026. light_instance->shadow_transform[p_pass].range_begin = p_range_begin;
  1027. light_instance->shadow_transform[p_pass].shadow_texel_size = p_shadow_texel_size;
  1028. light_instance->shadow_transform[p_pass].uv_scale = p_uv_scale;
  1029. }
  1030. void RendererSceneRenderRD::light_instance_mark_visible(RID p_light_instance) {
  1031. LightInstance *light_instance = light_instance_owner.getornull(p_light_instance);
  1032. ERR_FAIL_COND(!light_instance);
  1033. light_instance->last_scene_pass = scene_pass;
  1034. }
  1035. RendererSceneRenderRD::ShadowCubemap *RendererSceneRenderRD::_get_shadow_cubemap(int p_size) {
  1036. if (!shadow_cubemaps.has(p_size)) {
  1037. ShadowCubemap sc;
  1038. {
  1039. RD::TextureFormat tf;
  1040. tf.format = RD::get_singleton()->texture_is_format_supported_for_usage(RD::DATA_FORMAT_D32_SFLOAT, RD::TEXTURE_USAGE_DEPTH_STENCIL_ATTACHMENT_BIT) ? RD::DATA_FORMAT_D32_SFLOAT : RD::DATA_FORMAT_X8_D24_UNORM_PACK32;
  1041. tf.width = p_size;
  1042. tf.height = p_size;
  1043. tf.texture_type = RD::TEXTURE_TYPE_CUBE;
  1044. tf.array_layers = 6;
  1045. tf.usage_bits = RD::TEXTURE_USAGE_DEPTH_STENCIL_ATTACHMENT_BIT | RD::TEXTURE_USAGE_SAMPLING_BIT;
  1046. sc.cubemap = RD::get_singleton()->texture_create(tf, RD::TextureView());
  1047. }
  1048. for (int i = 0; i < 6; i++) {
  1049. RID side_texture = RD::get_singleton()->texture_create_shared_from_slice(RD::TextureView(), sc.cubemap, i, 0);
  1050. Vector<RID> fbtex;
  1051. fbtex.push_back(side_texture);
  1052. sc.side_fb[i] = RD::get_singleton()->framebuffer_create(fbtex);
  1053. }
  1054. shadow_cubemaps[p_size] = sc;
  1055. }
  1056. return &shadow_cubemaps[p_size];
  1057. }
  1058. //////////////////////////
  1059. RID RendererSceneRenderRD::decal_instance_create(RID p_decal) {
  1060. DecalInstance di;
  1061. di.decal = p_decal;
  1062. di.forward_id = _allocate_forward_id(FORWARD_ID_TYPE_DECAL);
  1063. return decal_instance_owner.make_rid(di);
  1064. }
  1065. void RendererSceneRenderRD::decal_instance_set_transform(RID p_decal, const Transform3D &p_transform) {
  1066. DecalInstance *di = decal_instance_owner.getornull(p_decal);
  1067. ERR_FAIL_COND(!di);
  1068. di->transform = p_transform;
  1069. }
  1070. /////////////////////////////////
  1071. RID RendererSceneRenderRD::lightmap_instance_create(RID p_lightmap) {
  1072. LightmapInstance li;
  1073. li.lightmap = p_lightmap;
  1074. return lightmap_instance_owner.make_rid(li);
  1075. }
  1076. void RendererSceneRenderRD::lightmap_instance_set_transform(RID p_lightmap, const Transform3D &p_transform) {
  1077. LightmapInstance *li = lightmap_instance_owner.getornull(p_lightmap);
  1078. ERR_FAIL_COND(!li);
  1079. li->transform = p_transform;
  1080. }
  1081. /////////////////////////////////
  1082. RID RendererSceneRenderRD::voxel_gi_instance_create(RID p_base) {
  1083. return gi.voxel_gi_instance_create(p_base);
  1084. }
  1085. void RendererSceneRenderRD::voxel_gi_instance_set_transform_to_data(RID p_probe, const Transform3D &p_xform) {
  1086. gi.voxel_gi_instance_set_transform_to_data(p_probe, p_xform);
  1087. }
  1088. bool RendererSceneRenderRD::voxel_gi_needs_update(RID p_probe) const {
  1089. if (!is_dynamic_gi_supported()) {
  1090. return false;
  1091. }
  1092. return gi.voxel_gi_needs_update(p_probe);
  1093. }
  1094. void RendererSceneRenderRD::voxel_gi_update(RID p_probe, bool p_update_light_instances, const Vector<RID> &p_light_instances, const PagedArray<GeometryInstance *> &p_dynamic_objects) {
  1095. if (!is_dynamic_gi_supported()) {
  1096. return;
  1097. }
  1098. gi.voxel_gi_update(p_probe, p_update_light_instances, p_light_instances, p_dynamic_objects, this);
  1099. }
  1100. void RendererSceneRenderRD::_debug_sdfgi_probes(RID p_render_buffers, RD::DrawListID p_draw_list, RID p_framebuffer, const CameraMatrix &p_camera_with_transform) {
  1101. RenderBuffers *rb = render_buffers_owner.getornull(p_render_buffers);
  1102. ERR_FAIL_COND(!rb);
  1103. if (!rb->sdfgi) {
  1104. return; //nothing to debug
  1105. }
  1106. rb->sdfgi->debug_probes(p_draw_list, p_framebuffer, p_camera_with_transform);
  1107. }
  1108. ////////////////////////////////
  1109. RID RendererSceneRenderRD::render_buffers_create() {
  1110. RenderBuffers rb;
  1111. rb.data = _create_render_buffer_data();
  1112. return render_buffers_owner.make_rid(rb);
  1113. }
  1114. void RendererSceneRenderRD::_allocate_blur_textures(RenderBuffers *rb) {
  1115. ERR_FAIL_COND(!rb->blur[0].texture.is_null());
  1116. uint32_t mipmaps_required = Image::get_image_required_mipmaps(rb->width, rb->height, Image::FORMAT_RGBAH);
  1117. RD::TextureFormat tf;
  1118. tf.format = RD::DATA_FORMAT_R16G16B16A16_SFLOAT;
  1119. tf.width = rb->width;
  1120. tf.height = rb->height;
  1121. tf.texture_type = RD::TEXTURE_TYPE_2D;
  1122. tf.usage_bits = RD::TEXTURE_USAGE_STORAGE_BIT | RD::TEXTURE_USAGE_SAMPLING_BIT | RD::TEXTURE_USAGE_CAN_COPY_TO_BIT;
  1123. tf.mipmaps = mipmaps_required;
  1124. rb->blur[0].texture = RD::get_singleton()->texture_create(tf, RD::TextureView());
  1125. //the second one is smaller (only used for separatable part of blur)
  1126. tf.width >>= 1;
  1127. tf.height >>= 1;
  1128. tf.mipmaps--;
  1129. rb->blur[1].texture = RD::get_singleton()->texture_create(tf, RD::TextureView());
  1130. int base_width = rb->width;
  1131. int base_height = rb->height;
  1132. for (uint32_t i = 0; i < mipmaps_required; i++) {
  1133. RenderBuffers::Blur::Mipmap mm;
  1134. mm.texture = RD::get_singleton()->texture_create_shared_from_slice(RD::TextureView(), rb->blur[0].texture, 0, i);
  1135. mm.width = base_width;
  1136. mm.height = base_height;
  1137. rb->blur[0].mipmaps.push_back(mm);
  1138. if (i > 0) {
  1139. mm.texture = RD::get_singleton()->texture_create_shared_from_slice(RD::TextureView(), rb->blur[1].texture, 0, i - 1);
  1140. rb->blur[1].mipmaps.push_back(mm);
  1141. }
  1142. base_width = MAX(1, base_width >> 1);
  1143. base_height = MAX(1, base_height >> 1);
  1144. }
  1145. }
  1146. void RendererSceneRenderRD::_allocate_luminance_textures(RenderBuffers *rb) {
  1147. ERR_FAIL_COND(!rb->luminance.current.is_null());
  1148. int w = rb->width;
  1149. int h = rb->height;
  1150. while (true) {
  1151. w = MAX(w / 8, 1);
  1152. h = MAX(h / 8, 1);
  1153. RD::TextureFormat tf;
  1154. tf.format = RD::DATA_FORMAT_R32_SFLOAT;
  1155. tf.width = w;
  1156. tf.height = h;
  1157. tf.usage_bits = RD::TEXTURE_USAGE_STORAGE_BIT;
  1158. bool final = w == 1 && h == 1;
  1159. if (final) {
  1160. tf.usage_bits |= RD::TEXTURE_USAGE_SAMPLING_BIT;
  1161. }
  1162. RID texture = RD::get_singleton()->texture_create(tf, RD::TextureView());
  1163. rb->luminance.reduce.push_back(texture);
  1164. if (final) {
  1165. rb->luminance.current = RD::get_singleton()->texture_create(tf, RD::TextureView());
  1166. break;
  1167. }
  1168. }
  1169. }
  1170. void RendererSceneRenderRD::_free_render_buffer_data(RenderBuffers *rb) {
  1171. if (rb->texture.is_valid()) {
  1172. RD::get_singleton()->free(rb->texture);
  1173. rb->texture = RID();
  1174. }
  1175. if (rb->depth_texture.is_valid()) {
  1176. RD::get_singleton()->free(rb->depth_texture);
  1177. rb->depth_texture = RID();
  1178. }
  1179. for (int i = 0; i < 2; i++) {
  1180. if (rb->blur[i].texture.is_valid()) {
  1181. RD::get_singleton()->free(rb->blur[i].texture);
  1182. rb->blur[i].texture = RID();
  1183. rb->blur[i].mipmaps.clear();
  1184. }
  1185. }
  1186. for (int i = 0; i < rb->luminance.reduce.size(); i++) {
  1187. RD::get_singleton()->free(rb->luminance.reduce[i]);
  1188. }
  1189. rb->luminance.reduce.clear();
  1190. if (rb->luminance.current.is_valid()) {
  1191. RD::get_singleton()->free(rb->luminance.current);
  1192. rb->luminance.current = RID();
  1193. }
  1194. if (rb->ssao.depth.is_valid()) {
  1195. RD::get_singleton()->free(rb->ssao.depth);
  1196. RD::get_singleton()->free(rb->ssao.ao_deinterleaved);
  1197. RD::get_singleton()->free(rb->ssao.ao_pong);
  1198. RD::get_singleton()->free(rb->ssao.ao_final);
  1199. RD::get_singleton()->free(rb->ssao.importance_map[0]);
  1200. RD::get_singleton()->free(rb->ssao.importance_map[1]);
  1201. rb->ssao.depth = RID();
  1202. rb->ssao.ao_deinterleaved = RID();
  1203. rb->ssao.ao_pong = RID();
  1204. rb->ssao.ao_final = RID();
  1205. rb->ssao.importance_map[0] = RID();
  1206. rb->ssao.importance_map[1] = RID();
  1207. rb->ssao.depth_slices.clear();
  1208. rb->ssao.ao_deinterleaved_slices.clear();
  1209. rb->ssao.ao_pong_slices.clear();
  1210. }
  1211. if (rb->ssr.blur_radius[0].is_valid()) {
  1212. RD::get_singleton()->free(rb->ssr.blur_radius[0]);
  1213. RD::get_singleton()->free(rb->ssr.blur_radius[1]);
  1214. rb->ssr.blur_radius[0] = RID();
  1215. rb->ssr.blur_radius[1] = RID();
  1216. }
  1217. if (rb->ssr.depth_scaled.is_valid()) {
  1218. RD::get_singleton()->free(rb->ssr.depth_scaled);
  1219. rb->ssr.depth_scaled = RID();
  1220. RD::get_singleton()->free(rb->ssr.normal_scaled);
  1221. rb->ssr.normal_scaled = RID();
  1222. }
  1223. if (rb->ambient_buffer.is_valid()) {
  1224. RD::get_singleton()->free(rb->ambient_buffer);
  1225. RD::get_singleton()->free(rb->reflection_buffer);
  1226. rb->ambient_buffer = RID();
  1227. rb->reflection_buffer = RID();
  1228. }
  1229. }
  1230. void RendererSceneRenderRD::_process_sss(RID p_render_buffers, const CameraMatrix &p_camera) {
  1231. RenderBuffers *rb = render_buffers_owner.getornull(p_render_buffers);
  1232. ERR_FAIL_COND(!rb);
  1233. bool can_use_effects = rb->width >= 8 && rb->height >= 8;
  1234. if (!can_use_effects) {
  1235. //just copy
  1236. return;
  1237. }
  1238. if (rb->blur[0].texture.is_null()) {
  1239. _allocate_blur_textures(rb);
  1240. }
  1241. storage->get_effects()->sub_surface_scattering(rb->texture, rb->blur[0].mipmaps[0].texture, rb->depth_texture, p_camera, Size2i(rb->width, rb->height), sss_scale, sss_depth_scale, sss_quality);
  1242. }
  1243. void RendererSceneRenderRD::_process_ssr(RID p_render_buffers, RID p_dest_framebuffer, RID p_normal_buffer, RID p_specular_buffer, RID p_metallic, const Color &p_metallic_mask, RID p_environment, const CameraMatrix &p_projection, bool p_use_additive) {
  1244. RenderBuffers *rb = render_buffers_owner.getornull(p_render_buffers);
  1245. ERR_FAIL_COND(!rb);
  1246. bool can_use_effects = rb->width >= 8 && rb->height >= 8;
  1247. if (!can_use_effects) {
  1248. //just copy
  1249. storage->get_effects()->merge_specular(p_dest_framebuffer, p_specular_buffer, p_use_additive ? RID() : rb->texture, RID());
  1250. return;
  1251. }
  1252. RendererSceneEnvironmentRD *env = environment_owner.getornull(p_environment);
  1253. ERR_FAIL_COND(!env);
  1254. ERR_FAIL_COND(!env->ssr_enabled);
  1255. if (rb->ssr.depth_scaled.is_null()) {
  1256. RD::TextureFormat tf;
  1257. tf.format = RD::DATA_FORMAT_R32_SFLOAT;
  1258. tf.width = rb->width / 2;
  1259. tf.height = rb->height / 2;
  1260. tf.texture_type = RD::TEXTURE_TYPE_2D;
  1261. tf.usage_bits = RD::TEXTURE_USAGE_STORAGE_BIT;
  1262. rb->ssr.depth_scaled = RD::get_singleton()->texture_create(tf, RD::TextureView());
  1263. tf.format = RD::DATA_FORMAT_R8G8B8A8_UNORM;
  1264. rb->ssr.normal_scaled = RD::get_singleton()->texture_create(tf, RD::TextureView());
  1265. }
  1266. if (ssr_roughness_quality != RS::ENV_SSR_ROUGNESS_QUALITY_DISABLED && !rb->ssr.blur_radius[0].is_valid()) {
  1267. RD::TextureFormat tf;
  1268. tf.format = RD::DATA_FORMAT_R8_UNORM;
  1269. tf.width = rb->width / 2;
  1270. tf.height = rb->height / 2;
  1271. tf.texture_type = RD::TEXTURE_TYPE_2D;
  1272. tf.usage_bits = RD::TEXTURE_USAGE_STORAGE_BIT | RD::TEXTURE_USAGE_SAMPLING_BIT;
  1273. rb->ssr.blur_radius[0] = RD::get_singleton()->texture_create(tf, RD::TextureView());
  1274. rb->ssr.blur_radius[1] = RD::get_singleton()->texture_create(tf, RD::TextureView());
  1275. }
  1276. if (rb->blur[0].texture.is_null()) {
  1277. _allocate_blur_textures(rb);
  1278. }
  1279. storage->get_effects()->screen_space_reflection(rb->texture, p_normal_buffer, ssr_roughness_quality, rb->ssr.blur_radius[0], rb->ssr.blur_radius[1], p_metallic, p_metallic_mask, rb->depth_texture, rb->ssr.depth_scaled, rb->ssr.normal_scaled, rb->blur[0].mipmaps[1].texture, rb->blur[1].mipmaps[0].texture, Size2i(rb->width / 2, rb->height / 2), env->ssr_max_steps, env->ssr_fade_in, env->ssr_fade_out, env->ssr_depth_tolerance, p_projection);
  1280. storage->get_effects()->merge_specular(p_dest_framebuffer, p_specular_buffer, p_use_additive ? RID() : rb->texture, rb->blur[0].mipmaps[1].texture);
  1281. }
  1282. void RendererSceneRenderRD::_process_ssao(RID p_render_buffers, RID p_environment, RID p_normal_buffer, const CameraMatrix &p_projection) {
  1283. RenderBuffers *rb = render_buffers_owner.getornull(p_render_buffers);
  1284. ERR_FAIL_COND(!rb);
  1285. RendererSceneEnvironmentRD *env = environment_owner.getornull(p_environment);
  1286. ERR_FAIL_COND(!env);
  1287. RENDER_TIMESTAMP("Process SSAO");
  1288. if (rb->ssao.ao_final.is_valid() && ssao_using_half_size != ssao_half_size) {
  1289. RD::get_singleton()->free(rb->ssao.depth);
  1290. RD::get_singleton()->free(rb->ssao.ao_deinterleaved);
  1291. RD::get_singleton()->free(rb->ssao.ao_pong);
  1292. RD::get_singleton()->free(rb->ssao.ao_final);
  1293. RD::get_singleton()->free(rb->ssao.importance_map[0]);
  1294. RD::get_singleton()->free(rb->ssao.importance_map[1]);
  1295. rb->ssao.depth = RID();
  1296. rb->ssao.ao_deinterleaved = RID();
  1297. rb->ssao.ao_pong = RID();
  1298. rb->ssao.ao_final = RID();
  1299. rb->ssao.importance_map[0] = RID();
  1300. rb->ssao.importance_map[1] = RID();
  1301. rb->ssao.depth_slices.clear();
  1302. rb->ssao.ao_deinterleaved_slices.clear();
  1303. rb->ssao.ao_pong_slices.clear();
  1304. }
  1305. int buffer_width;
  1306. int buffer_height;
  1307. int half_width;
  1308. int half_height;
  1309. if (ssao_half_size) {
  1310. buffer_width = (rb->width + 3) / 4;
  1311. buffer_height = (rb->height + 3) / 4;
  1312. half_width = (rb->width + 7) / 8;
  1313. half_height = (rb->height + 7) / 8;
  1314. } else {
  1315. buffer_width = (rb->width + 1) / 2;
  1316. buffer_height = (rb->height + 1) / 2;
  1317. half_width = (rb->width + 3) / 4;
  1318. half_height = (rb->height + 3) / 4;
  1319. }
  1320. bool uniform_sets_are_invalid = false;
  1321. if (rb->ssao.depth.is_null()) {
  1322. //allocate depth slices
  1323. {
  1324. RD::TextureFormat tf;
  1325. tf.format = RD::DATA_FORMAT_R16_SFLOAT;
  1326. tf.texture_type = RD::TEXTURE_TYPE_2D_ARRAY;
  1327. tf.width = buffer_width;
  1328. tf.height = buffer_height;
  1329. tf.mipmaps = 4;
  1330. tf.array_layers = 4;
  1331. tf.usage_bits = RD::TEXTURE_USAGE_SAMPLING_BIT | RD::TEXTURE_USAGE_STORAGE_BIT;
  1332. rb->ssao.depth = RD::get_singleton()->texture_create(tf, RD::TextureView());
  1333. RD::get_singleton()->set_resource_name(rb->ssao.depth, "SSAO Depth");
  1334. for (uint32_t i = 0; i < tf.mipmaps; i++) {
  1335. RID slice = RD::get_singleton()->texture_create_shared_from_slice(RD::TextureView(), rb->ssao.depth, 0, i, RD::TEXTURE_SLICE_2D_ARRAY);
  1336. rb->ssao.depth_slices.push_back(slice);
  1337. RD::get_singleton()->set_resource_name(rb->ssao.depth_slices[i], "SSAO Depth Mip " + itos(i) + " ");
  1338. }
  1339. }
  1340. {
  1341. RD::TextureFormat tf;
  1342. tf.format = RD::DATA_FORMAT_R8G8_UNORM;
  1343. tf.texture_type = RD::TEXTURE_TYPE_2D_ARRAY;
  1344. tf.width = buffer_width;
  1345. tf.height = buffer_height;
  1346. tf.array_layers = 4;
  1347. tf.usage_bits = RD::TEXTURE_USAGE_SAMPLING_BIT | RD::TEXTURE_USAGE_STORAGE_BIT;
  1348. rb->ssao.ao_deinterleaved = RD::get_singleton()->texture_create(tf, RD::TextureView());
  1349. RD::get_singleton()->set_resource_name(rb->ssao.ao_deinterleaved, "SSAO De-interleaved Array");
  1350. for (uint32_t i = 0; i < 4; i++) {
  1351. RID slice = RD::get_singleton()->texture_create_shared_from_slice(RD::TextureView(), rb->ssao.ao_deinterleaved, i, 0);
  1352. rb->ssao.ao_deinterleaved_slices.push_back(slice);
  1353. RD::get_singleton()->set_resource_name(rb->ssao.ao_deinterleaved_slices[i], "SSAO De-interleaved Array Layer " + itos(i) + " ");
  1354. }
  1355. }
  1356. {
  1357. RD::TextureFormat tf;
  1358. tf.format = RD::DATA_FORMAT_R8G8_UNORM;
  1359. tf.texture_type = RD::TEXTURE_TYPE_2D_ARRAY;
  1360. tf.width = buffer_width;
  1361. tf.height = buffer_height;
  1362. tf.array_layers = 4;
  1363. tf.usage_bits = RD::TEXTURE_USAGE_SAMPLING_BIT | RD::TEXTURE_USAGE_STORAGE_BIT;
  1364. rb->ssao.ao_pong = RD::get_singleton()->texture_create(tf, RD::TextureView());
  1365. RD::get_singleton()->set_resource_name(rb->ssao.ao_pong, "SSAO De-interleaved Array Pong");
  1366. for (uint32_t i = 0; i < 4; i++) {
  1367. RID slice = RD::get_singleton()->texture_create_shared_from_slice(RD::TextureView(), rb->ssao.ao_pong, i, 0);
  1368. rb->ssao.ao_pong_slices.push_back(slice);
  1369. RD::get_singleton()->set_resource_name(rb->ssao.ao_deinterleaved_slices[i], "SSAO De-interleaved Array Layer " + itos(i) + " Pong");
  1370. }
  1371. }
  1372. {
  1373. RD::TextureFormat tf;
  1374. tf.format = RD::DATA_FORMAT_R8_UNORM;
  1375. tf.width = half_width;
  1376. tf.height = half_height;
  1377. tf.usage_bits = RD::TEXTURE_USAGE_SAMPLING_BIT | RD::TEXTURE_USAGE_STORAGE_BIT;
  1378. rb->ssao.importance_map[0] = RD::get_singleton()->texture_create(tf, RD::TextureView());
  1379. RD::get_singleton()->set_resource_name(rb->ssao.importance_map[0], "SSAO Importance Map");
  1380. rb->ssao.importance_map[1] = RD::get_singleton()->texture_create(tf, RD::TextureView());
  1381. RD::get_singleton()->set_resource_name(rb->ssao.importance_map[1], "SSAO Importance Map Pong");
  1382. }
  1383. {
  1384. RD::TextureFormat tf;
  1385. tf.format = RD::DATA_FORMAT_R8_UNORM;
  1386. tf.width = rb->width;
  1387. tf.height = rb->height;
  1388. tf.usage_bits = RD::TEXTURE_USAGE_SAMPLING_BIT | RD::TEXTURE_USAGE_STORAGE_BIT;
  1389. rb->ssao.ao_final = RD::get_singleton()->texture_create(tf, RD::TextureView());
  1390. RD::get_singleton()->set_resource_name(rb->ssao.ao_final, "SSAO Final");
  1391. }
  1392. ssao_using_half_size = ssao_half_size;
  1393. uniform_sets_are_invalid = true;
  1394. }
  1395. EffectsRD::SSAOSettings settings;
  1396. settings.radius = env->ssao_radius;
  1397. settings.intensity = env->ssao_intensity;
  1398. settings.power = env->ssao_power;
  1399. settings.detail = env->ssao_detail;
  1400. settings.horizon = env->ssao_horizon;
  1401. settings.sharpness = env->ssao_sharpness;
  1402. settings.quality = ssao_quality;
  1403. settings.half_size = ssao_half_size;
  1404. settings.adaptive_target = ssao_adaptive_target;
  1405. settings.blur_passes = ssao_blur_passes;
  1406. settings.fadeout_from = ssao_fadeout_from;
  1407. settings.fadeout_to = ssao_fadeout_to;
  1408. settings.full_screen_size = Size2i(rb->width, rb->height);
  1409. settings.half_screen_size = Size2i(buffer_width, buffer_height);
  1410. settings.quarter_screen_size = Size2i(half_width, half_height);
  1411. storage->get_effects()->generate_ssao(rb->depth_texture, p_normal_buffer, rb->ssao.depth, rb->ssao.depth_slices, rb->ssao.ao_deinterleaved, rb->ssao.ao_deinterleaved_slices, rb->ssao.ao_pong, rb->ssao.ao_pong_slices, rb->ssao.ao_final, rb->ssao.importance_map[0], rb->ssao.importance_map[1], p_projection, settings, uniform_sets_are_invalid, rb->ssao.downsample_uniform_set, rb->ssao.gather_uniform_set, rb->ssao.importance_map_uniform_set);
  1412. }
  1413. void RendererSceneRenderRD::_render_buffers_post_process_and_tonemap(const RenderDataRD *p_render_data) {
  1414. RenderBuffers *rb = render_buffers_owner.getornull(p_render_data->render_buffers);
  1415. ERR_FAIL_COND(!rb);
  1416. RendererSceneEnvironmentRD *env = environment_owner.getornull(p_render_data->environment);
  1417. //glow (if enabled)
  1418. CameraEffects *camfx = camera_effects_owner.getornull(p_render_data->camera_effects);
  1419. bool can_use_effects = rb->width >= 8 && rb->height >= 8;
  1420. if (can_use_effects && camfx && (camfx->dof_blur_near_enabled || camfx->dof_blur_far_enabled) && camfx->dof_blur_amount > 0.0) {
  1421. if (rb->blur[0].texture.is_null()) {
  1422. _allocate_blur_textures(rb);
  1423. }
  1424. float bokeh_size = camfx->dof_blur_amount * 64.0;
  1425. storage->get_effects()->bokeh_dof(rb->texture, rb->depth_texture, Size2i(rb->width, rb->height), rb->blur[0].mipmaps[0].texture, rb->blur[1].mipmaps[0].texture, rb->blur[0].mipmaps[1].texture, camfx->dof_blur_far_enabled, camfx->dof_blur_far_distance, camfx->dof_blur_far_transition, camfx->dof_blur_near_enabled, camfx->dof_blur_near_distance, camfx->dof_blur_near_transition, bokeh_size, dof_blur_bokeh_shape, dof_blur_quality, dof_blur_use_jitter, p_render_data->z_near, p_render_data->z_far, p_render_data->cam_ortogonal);
  1426. }
  1427. if (can_use_effects && env && env->auto_exposure) {
  1428. if (rb->luminance.current.is_null()) {
  1429. _allocate_luminance_textures(rb);
  1430. }
  1431. bool set_immediate = env->auto_exposure_version != rb->auto_exposure_version;
  1432. rb->auto_exposure_version = env->auto_exposure_version;
  1433. double step = env->auto_exp_speed * time_step;
  1434. storage->get_effects()->luminance_reduction(rb->texture, Size2i(rb->width, rb->height), rb->luminance.reduce, rb->luminance.current, env->min_luminance, env->max_luminance, step, set_immediate);
  1435. //swap final reduce with prev luminance
  1436. SWAP(rb->luminance.current, rb->luminance.reduce.write[rb->luminance.reduce.size() - 1]);
  1437. RenderingServerDefault::redraw_request(); //redraw all the time if auto exposure rendering is on
  1438. }
  1439. int max_glow_level = -1;
  1440. if (can_use_effects && env && env->glow_enabled) {
  1441. /* see that blur textures are allocated */
  1442. if (rb->blur[1].texture.is_null()) {
  1443. _allocate_blur_textures(rb);
  1444. }
  1445. for (int i = 0; i < RS::MAX_GLOW_LEVELS; i++) {
  1446. if (env->glow_levels[i] > 0.0) {
  1447. if (i >= rb->blur[1].mipmaps.size()) {
  1448. max_glow_level = rb->blur[1].mipmaps.size() - 1;
  1449. } else {
  1450. max_glow_level = i;
  1451. }
  1452. }
  1453. }
  1454. for (int i = 0; i < (max_glow_level + 1); i++) {
  1455. int vp_w = rb->blur[1].mipmaps[i].width;
  1456. int vp_h = rb->blur[1].mipmaps[i].height;
  1457. if (i == 0) {
  1458. RID luminance_texture;
  1459. if (env->auto_exposure && rb->luminance.current.is_valid()) {
  1460. luminance_texture = rb->luminance.current;
  1461. }
  1462. storage->get_effects()->gaussian_glow(rb->texture, rb->blur[1].mipmaps[i].texture, Size2i(vp_w, vp_h), env->glow_strength, glow_high_quality, true, env->glow_hdr_luminance_cap, env->exposure, env->glow_bloom, env->glow_hdr_bleed_threshold, env->glow_hdr_bleed_scale, luminance_texture, env->auto_exp_scale);
  1463. } else {
  1464. storage->get_effects()->gaussian_glow(rb->blur[1].mipmaps[i - 1].texture, rb->blur[1].mipmaps[i].texture, Size2i(vp_w, vp_h), env->glow_strength, glow_high_quality);
  1465. }
  1466. }
  1467. }
  1468. {
  1469. //tonemap
  1470. EffectsRD::TonemapSettings tonemap;
  1471. if (can_use_effects && env && env->auto_exposure && rb->luminance.current.is_valid()) {
  1472. tonemap.use_auto_exposure = true;
  1473. tonemap.exposure_texture = rb->luminance.current;
  1474. tonemap.auto_exposure_grey = env->auto_exp_scale;
  1475. } else {
  1476. tonemap.exposure_texture = storage->texture_rd_get_default(RendererStorageRD::DEFAULT_RD_TEXTURE_WHITE);
  1477. }
  1478. if (can_use_effects && env && env->glow_enabled) {
  1479. tonemap.use_glow = true;
  1480. tonemap.glow_mode = EffectsRD::TonemapSettings::GlowMode(env->glow_blend_mode);
  1481. tonemap.glow_intensity = env->glow_blend_mode == RS::ENV_GLOW_BLEND_MODE_MIX ? env->glow_mix : env->glow_intensity;
  1482. for (int i = 0; i < RS::MAX_GLOW_LEVELS; i++) {
  1483. tonemap.glow_levels[i] = env->glow_levels[i];
  1484. }
  1485. tonemap.glow_texture_size.x = rb->blur[1].mipmaps[0].width;
  1486. tonemap.glow_texture_size.y = rb->blur[1].mipmaps[0].height;
  1487. tonemap.glow_use_bicubic_upscale = glow_bicubic_upscale;
  1488. tonemap.glow_texture = rb->blur[1].texture;
  1489. } else {
  1490. tonemap.glow_texture = storage->texture_rd_get_default(RendererStorageRD::DEFAULT_RD_TEXTURE_BLACK);
  1491. }
  1492. if (rb->screen_space_aa == RS::VIEWPORT_SCREEN_SPACE_AA_FXAA) {
  1493. tonemap.use_fxaa = true;
  1494. }
  1495. tonemap.use_debanding = rb->use_debanding;
  1496. tonemap.texture_size = Vector2i(rb->width, rb->height);
  1497. if (env) {
  1498. tonemap.tonemap_mode = env->tone_mapper;
  1499. tonemap.white = env->white;
  1500. tonemap.exposure = env->exposure;
  1501. }
  1502. tonemap.use_color_correction = false;
  1503. tonemap.use_1d_color_correction = false;
  1504. tonemap.color_correction_texture = storage->texture_rd_get_default(RendererStorageRD::DEFAULT_RD_TEXTURE_3D_WHITE);
  1505. if (can_use_effects && env) {
  1506. tonemap.use_bcs = env->adjustments_enabled;
  1507. tonemap.brightness = env->adjustments_brightness;
  1508. tonemap.contrast = env->adjustments_contrast;
  1509. tonemap.saturation = env->adjustments_saturation;
  1510. if (env->adjustments_enabled && env->color_correction.is_valid()) {
  1511. tonemap.use_color_correction = true;
  1512. tonemap.use_1d_color_correction = env->use_1d_color_correction;
  1513. tonemap.color_correction_texture = storage->texture_get_rd_texture(env->color_correction);
  1514. }
  1515. }
  1516. tonemap.view_count = p_render_data->view_count;
  1517. storage->get_effects()->tonemapper(rb->texture, storage->render_target_get_rd_framebuffer(rb->render_target), tonemap);
  1518. }
  1519. storage->render_target_disable_clear_request(rb->render_target);
  1520. }
  1521. void RendererSceneRenderRD::_render_buffers_debug_draw(RID p_render_buffers, RID p_shadow_atlas, RID p_occlusion_buffer) {
  1522. EffectsRD *effects = storage->get_effects();
  1523. RenderBuffers *rb = render_buffers_owner.getornull(p_render_buffers);
  1524. ERR_FAIL_COND(!rb);
  1525. if (debug_draw == RS::VIEWPORT_DEBUG_DRAW_SHADOW_ATLAS) {
  1526. if (p_shadow_atlas.is_valid()) {
  1527. RID shadow_atlas_texture = shadow_atlas_get_texture(p_shadow_atlas);
  1528. Size2 rtsize = storage->render_target_get_size(rb->render_target);
  1529. effects->copy_to_fb_rect(shadow_atlas_texture, storage->render_target_get_rd_framebuffer(rb->render_target), Rect2i(Vector2(), rtsize / 2), false, true);
  1530. }
  1531. }
  1532. if (debug_draw == RS::VIEWPORT_DEBUG_DRAW_DIRECTIONAL_SHADOW_ATLAS) {
  1533. if (directional_shadow_get_texture().is_valid()) {
  1534. RID shadow_atlas_texture = directional_shadow_get_texture();
  1535. Size2 rtsize = storage->render_target_get_size(rb->render_target);
  1536. effects->copy_to_fb_rect(shadow_atlas_texture, storage->render_target_get_rd_framebuffer(rb->render_target), Rect2i(Vector2(), rtsize / 2), false, true);
  1537. }
  1538. }
  1539. if (debug_draw == RS::VIEWPORT_DEBUG_DRAW_DECAL_ATLAS) {
  1540. RID decal_atlas = storage->decal_atlas_get_texture();
  1541. if (decal_atlas.is_valid()) {
  1542. Size2 rtsize = storage->render_target_get_size(rb->render_target);
  1543. effects->copy_to_fb_rect(decal_atlas, storage->render_target_get_rd_framebuffer(rb->render_target), Rect2i(Vector2(), rtsize / 2), false, false, true);
  1544. }
  1545. }
  1546. if (debug_draw == RS::VIEWPORT_DEBUG_DRAW_SCENE_LUMINANCE) {
  1547. if (rb->luminance.current.is_valid()) {
  1548. Size2 rtsize = storage->render_target_get_size(rb->render_target);
  1549. effects->copy_to_fb_rect(rb->luminance.current, storage->render_target_get_rd_framebuffer(rb->render_target), Rect2(Vector2(), rtsize / 8), false, true);
  1550. }
  1551. }
  1552. if (debug_draw == RS::VIEWPORT_DEBUG_DRAW_SSAO && rb->ssao.ao_final.is_valid()) {
  1553. Size2 rtsize = storage->render_target_get_size(rb->render_target);
  1554. RID ao_buf = rb->ssao.ao_final;
  1555. effects->copy_to_fb_rect(ao_buf, storage->render_target_get_rd_framebuffer(rb->render_target), Rect2(Vector2(), rtsize), false, true);
  1556. }
  1557. if (debug_draw == RS::VIEWPORT_DEBUG_DRAW_NORMAL_BUFFER && _render_buffers_get_normal_texture(p_render_buffers).is_valid()) {
  1558. Size2 rtsize = storage->render_target_get_size(rb->render_target);
  1559. effects->copy_to_fb_rect(_render_buffers_get_normal_texture(p_render_buffers), storage->render_target_get_rd_framebuffer(rb->render_target), Rect2(Vector2(), rtsize), false, false);
  1560. }
  1561. if (debug_draw == RS::VIEWPORT_DEBUG_DRAW_GI_BUFFER && rb->ambient_buffer.is_valid()) {
  1562. Size2 rtsize = storage->render_target_get_size(rb->render_target);
  1563. RID ambient_texture = rb->ambient_buffer;
  1564. RID reflection_texture = rb->reflection_buffer;
  1565. effects->copy_to_fb_rect(ambient_texture, storage->render_target_get_rd_framebuffer(rb->render_target), Rect2(Vector2(), rtsize), false, false, false, true, reflection_texture);
  1566. }
  1567. if (debug_draw == RS::VIEWPORT_DEBUG_DRAW_OCCLUDERS) {
  1568. if (p_occlusion_buffer.is_valid()) {
  1569. Size2 rtsize = storage->render_target_get_size(rb->render_target);
  1570. effects->copy_to_fb_rect(storage->texture_get_rd_texture(p_occlusion_buffer), storage->render_target_get_rd_framebuffer(rb->render_target), Rect2i(Vector2(), rtsize), true, false);
  1571. }
  1572. }
  1573. }
  1574. void RendererSceneRenderRD::environment_set_adjustment(RID p_env, bool p_enable, float p_brightness, float p_contrast, float p_saturation, bool p_use_1d_color_correction, RID p_color_correction) {
  1575. RendererSceneEnvironmentRD *env = environment_owner.getornull(p_env);
  1576. ERR_FAIL_COND(!env);
  1577. env->adjustments_enabled = p_enable;
  1578. env->adjustments_brightness = p_brightness;
  1579. env->adjustments_contrast = p_contrast;
  1580. env->adjustments_saturation = p_saturation;
  1581. env->use_1d_color_correction = p_use_1d_color_correction;
  1582. env->color_correction = p_color_correction;
  1583. }
  1584. RID RendererSceneRenderRD::render_buffers_get_back_buffer_texture(RID p_render_buffers) {
  1585. RenderBuffers *rb = render_buffers_owner.getornull(p_render_buffers);
  1586. ERR_FAIL_COND_V(!rb, RID());
  1587. if (!rb->blur[0].texture.is_valid()) {
  1588. return RID(); //not valid at the moment
  1589. }
  1590. return rb->blur[0].texture;
  1591. }
  1592. RID RendererSceneRenderRD::render_buffers_get_ao_texture(RID p_render_buffers) {
  1593. RenderBuffers *rb = render_buffers_owner.getornull(p_render_buffers);
  1594. ERR_FAIL_COND_V(!rb, RID());
  1595. return rb->ssao.ao_final;
  1596. }
  1597. RID RendererSceneRenderRD::render_buffers_get_voxel_gi_buffer(RID p_render_buffers) {
  1598. RenderBuffers *rb = render_buffers_owner.getornull(p_render_buffers);
  1599. ERR_FAIL_COND_V(!rb, RID());
  1600. if (rb->gi.voxel_gi_buffer.is_null()) {
  1601. rb->gi.voxel_gi_buffer = RD::get_singleton()->uniform_buffer_create(sizeof(RendererSceneGIRD::VoxelGIData) * RendererSceneGIRD::MAX_VOXEL_GI_INSTANCES);
  1602. }
  1603. return rb->gi.voxel_gi_buffer;
  1604. }
  1605. RID RendererSceneRenderRD::render_buffers_get_default_voxel_gi_buffer() {
  1606. return gi.default_voxel_gi_buffer;
  1607. }
  1608. RID RendererSceneRenderRD::render_buffers_get_gi_ambient_texture(RID p_render_buffers) {
  1609. RenderBuffers *rb = render_buffers_owner.getornull(p_render_buffers);
  1610. ERR_FAIL_COND_V(!rb, RID());
  1611. return rb->ambient_buffer;
  1612. }
  1613. RID RendererSceneRenderRD::render_buffers_get_gi_reflection_texture(RID p_render_buffers) {
  1614. RenderBuffers *rb = render_buffers_owner.getornull(p_render_buffers);
  1615. ERR_FAIL_COND_V(!rb, RID());
  1616. return rb->reflection_buffer;
  1617. }
  1618. uint32_t RendererSceneRenderRD::render_buffers_get_sdfgi_cascade_count(RID p_render_buffers) const {
  1619. const RenderBuffers *rb = render_buffers_owner.getornull(p_render_buffers);
  1620. ERR_FAIL_COND_V(!rb, 0);
  1621. ERR_FAIL_COND_V(!rb->sdfgi, 0);
  1622. return rb->sdfgi->cascades.size();
  1623. }
  1624. bool RendererSceneRenderRD::render_buffers_is_sdfgi_enabled(RID p_render_buffers) const {
  1625. const RenderBuffers *rb = render_buffers_owner.getornull(p_render_buffers);
  1626. ERR_FAIL_COND_V(!rb, false);
  1627. return rb->sdfgi != nullptr;
  1628. }
  1629. RID RendererSceneRenderRD::render_buffers_get_sdfgi_irradiance_probes(RID p_render_buffers) const {
  1630. const RenderBuffers *rb = render_buffers_owner.getornull(p_render_buffers);
  1631. ERR_FAIL_COND_V(!rb, RID());
  1632. ERR_FAIL_COND_V(!rb->sdfgi, RID());
  1633. return rb->sdfgi->lightprobe_texture;
  1634. }
  1635. Vector3 RendererSceneRenderRD::render_buffers_get_sdfgi_cascade_offset(RID p_render_buffers, uint32_t p_cascade) const {
  1636. const RenderBuffers *rb = render_buffers_owner.getornull(p_render_buffers);
  1637. ERR_FAIL_COND_V(!rb, Vector3());
  1638. ERR_FAIL_COND_V(!rb->sdfgi, Vector3());
  1639. ERR_FAIL_UNSIGNED_INDEX_V(p_cascade, rb->sdfgi->cascades.size(), Vector3());
  1640. return Vector3((Vector3i(1, 1, 1) * -int32_t(rb->sdfgi->cascade_size >> 1) + rb->sdfgi->cascades[p_cascade].position)) * rb->sdfgi->cascades[p_cascade].cell_size;
  1641. }
  1642. Vector3i RendererSceneRenderRD::render_buffers_get_sdfgi_cascade_probe_offset(RID p_render_buffers, uint32_t p_cascade) const {
  1643. const RenderBuffers *rb = render_buffers_owner.getornull(p_render_buffers);
  1644. ERR_FAIL_COND_V(!rb, Vector3i());
  1645. ERR_FAIL_COND_V(!rb->sdfgi, Vector3i());
  1646. ERR_FAIL_UNSIGNED_INDEX_V(p_cascade, rb->sdfgi->cascades.size(), Vector3i());
  1647. int32_t probe_divisor = rb->sdfgi->cascade_size / RendererSceneGIRD::SDFGI::PROBE_DIVISOR;
  1648. return rb->sdfgi->cascades[p_cascade].position / probe_divisor;
  1649. }
  1650. float RendererSceneRenderRD::render_buffers_get_sdfgi_normal_bias(RID p_render_buffers) const {
  1651. const RenderBuffers *rb = render_buffers_owner.getornull(p_render_buffers);
  1652. ERR_FAIL_COND_V(!rb, 0);
  1653. ERR_FAIL_COND_V(!rb->sdfgi, 0);
  1654. return rb->sdfgi->normal_bias;
  1655. }
  1656. float RendererSceneRenderRD::render_buffers_get_sdfgi_cascade_probe_size(RID p_render_buffers, uint32_t p_cascade) const {
  1657. const RenderBuffers *rb = render_buffers_owner.getornull(p_render_buffers);
  1658. ERR_FAIL_COND_V(!rb, 0);
  1659. ERR_FAIL_COND_V(!rb->sdfgi, 0);
  1660. ERR_FAIL_UNSIGNED_INDEX_V(p_cascade, rb->sdfgi->cascades.size(), 0);
  1661. return float(rb->sdfgi->cascade_size) * rb->sdfgi->cascades[p_cascade].cell_size / float(rb->sdfgi->probe_axis_count - 1);
  1662. }
  1663. uint32_t RendererSceneRenderRD::render_buffers_get_sdfgi_cascade_probe_count(RID p_render_buffers) const {
  1664. const RenderBuffers *rb = render_buffers_owner.getornull(p_render_buffers);
  1665. ERR_FAIL_COND_V(!rb, 0);
  1666. ERR_FAIL_COND_V(!rb->sdfgi, 0);
  1667. return rb->sdfgi->probe_axis_count;
  1668. }
  1669. uint32_t RendererSceneRenderRD::render_buffers_get_sdfgi_cascade_size(RID p_render_buffers) const {
  1670. const RenderBuffers *rb = render_buffers_owner.getornull(p_render_buffers);
  1671. ERR_FAIL_COND_V(!rb, 0);
  1672. ERR_FAIL_COND_V(!rb->sdfgi, 0);
  1673. return rb->sdfgi->cascade_size;
  1674. }
  1675. bool RendererSceneRenderRD::render_buffers_is_sdfgi_using_occlusion(RID p_render_buffers) const {
  1676. const RenderBuffers *rb = render_buffers_owner.getornull(p_render_buffers);
  1677. ERR_FAIL_COND_V(!rb, false);
  1678. ERR_FAIL_COND_V(!rb->sdfgi, false);
  1679. return rb->sdfgi->uses_occlusion;
  1680. }
  1681. float RendererSceneRenderRD::render_buffers_get_sdfgi_energy(RID p_render_buffers) const {
  1682. const RenderBuffers *rb = render_buffers_owner.getornull(p_render_buffers);
  1683. ERR_FAIL_COND_V(!rb, 0.0);
  1684. ERR_FAIL_COND_V(!rb->sdfgi, 0.0);
  1685. return rb->sdfgi->energy;
  1686. }
  1687. RID RendererSceneRenderRD::render_buffers_get_sdfgi_occlusion_texture(RID p_render_buffers) const {
  1688. const RenderBuffers *rb = render_buffers_owner.getornull(p_render_buffers);
  1689. ERR_FAIL_COND_V(!rb, RID());
  1690. ERR_FAIL_COND_V(!rb->sdfgi, RID());
  1691. return rb->sdfgi->occlusion_texture;
  1692. }
  1693. bool RendererSceneRenderRD::render_buffers_has_volumetric_fog(RID p_render_buffers) const {
  1694. const RenderBuffers *rb = render_buffers_owner.getornull(p_render_buffers);
  1695. ERR_FAIL_COND_V(!rb, false);
  1696. return rb->volumetric_fog != nullptr;
  1697. }
  1698. RID RendererSceneRenderRD::render_buffers_get_volumetric_fog_texture(RID p_render_buffers) {
  1699. const RenderBuffers *rb = render_buffers_owner.getornull(p_render_buffers);
  1700. ERR_FAIL_COND_V(!rb || !rb->volumetric_fog, RID());
  1701. return rb->volumetric_fog->fog_map;
  1702. }
  1703. RID RendererSceneRenderRD::render_buffers_get_volumetric_fog_sky_uniform_set(RID p_render_buffers) {
  1704. const RenderBuffers *rb = render_buffers_owner.getornull(p_render_buffers);
  1705. ERR_FAIL_COND_V(!rb, RID());
  1706. if (!rb->volumetric_fog) {
  1707. return RID();
  1708. }
  1709. return rb->volumetric_fog->sky_uniform_set;
  1710. }
  1711. float RendererSceneRenderRD::render_buffers_get_volumetric_fog_end(RID p_render_buffers) {
  1712. const RenderBuffers *rb = render_buffers_owner.getornull(p_render_buffers);
  1713. ERR_FAIL_COND_V(!rb || !rb->volumetric_fog, 0);
  1714. return rb->volumetric_fog->length;
  1715. }
  1716. float RendererSceneRenderRD::render_buffers_get_volumetric_fog_detail_spread(RID p_render_buffers) {
  1717. const RenderBuffers *rb = render_buffers_owner.getornull(p_render_buffers);
  1718. ERR_FAIL_COND_V(!rb || !rb->volumetric_fog, 0);
  1719. return rb->volumetric_fog->spread;
  1720. }
  1721. RD::DataFormat RendererSceneRenderRD::_render_buffers_get_color_format() {
  1722. return RD::DATA_FORMAT_R16G16B16A16_SFLOAT;
  1723. }
  1724. bool RendererSceneRenderRD::_render_buffers_can_be_storage() {
  1725. return true;
  1726. }
  1727. void RendererSceneRenderRD::render_buffers_configure(RID p_render_buffers, RID p_render_target, int p_width, int p_height, RS::ViewportMSAA p_msaa, RenderingServer::ViewportScreenSpaceAA p_screen_space_aa, bool p_use_debanding, uint32_t p_view_count) {
  1728. ERR_FAIL_COND_MSG(p_view_count == 0, "Must have atleast 1 view");
  1729. RenderBuffers *rb = render_buffers_owner.getornull(p_render_buffers);
  1730. rb->width = p_width;
  1731. rb->height = p_height;
  1732. rb->render_target = p_render_target;
  1733. rb->msaa = p_msaa;
  1734. rb->screen_space_aa = p_screen_space_aa;
  1735. rb->use_debanding = p_use_debanding;
  1736. rb->view_count = p_view_count;
  1737. if (is_clustered_enabled()) {
  1738. if (rb->cluster_builder == nullptr) {
  1739. rb->cluster_builder = memnew(ClusterBuilderRD);
  1740. }
  1741. rb->cluster_builder->set_shared(&cluster_builder_shared);
  1742. }
  1743. _free_render_buffer_data(rb);
  1744. {
  1745. RD::TextureFormat tf;
  1746. if (rb->view_count > 1) {
  1747. tf.texture_type = RD::TEXTURE_TYPE_2D_ARRAY;
  1748. }
  1749. tf.format = _render_buffers_get_color_format();
  1750. tf.width = rb->width;
  1751. tf.height = rb->height;
  1752. tf.array_layers = rb->view_count; // create a layer for every view
  1753. tf.usage_bits = RD::TEXTURE_USAGE_SAMPLING_BIT | (_render_buffers_can_be_storage() ? RD::TEXTURE_USAGE_STORAGE_BIT : 0);
  1754. if (rb->msaa != RS::VIEWPORT_MSAA_DISABLED) {
  1755. tf.usage_bits |= RD::TEXTURE_USAGE_CAN_COPY_TO_BIT | (_render_buffers_can_be_storage() ? RD::TEXTURE_USAGE_STORAGE_BIT : 0);
  1756. } else {
  1757. tf.usage_bits |= RD::TEXTURE_USAGE_COLOR_ATTACHMENT_BIT;
  1758. }
  1759. rb->texture = RD::get_singleton()->texture_create(tf, RD::TextureView());
  1760. }
  1761. {
  1762. RD::TextureFormat tf;
  1763. if (rb->view_count > 1) {
  1764. tf.texture_type = RD::TEXTURE_TYPE_2D_ARRAY;
  1765. }
  1766. if (rb->msaa == RS::VIEWPORT_MSAA_DISABLED) {
  1767. tf.format = RD::get_singleton()->texture_is_format_supported_for_usage(RD::DATA_FORMAT_D24_UNORM_S8_UINT, RD::TEXTURE_USAGE_DEPTH_STENCIL_ATTACHMENT_BIT) ? RD::DATA_FORMAT_D24_UNORM_S8_UINT : RD::DATA_FORMAT_D32_SFLOAT_S8_UINT;
  1768. } else {
  1769. tf.format = RD::DATA_FORMAT_R32_SFLOAT;
  1770. }
  1771. tf.width = p_width;
  1772. tf.height = p_height;
  1773. tf.usage_bits = RD::TEXTURE_USAGE_SAMPLING_BIT;
  1774. tf.array_layers = rb->view_count; // create a layer for every view
  1775. if (rb->msaa != RS::VIEWPORT_MSAA_DISABLED) {
  1776. tf.usage_bits |= RD::TEXTURE_USAGE_CAN_COPY_TO_BIT | RD::TEXTURE_USAGE_STORAGE_BIT;
  1777. } else {
  1778. tf.usage_bits |= RD::TEXTURE_USAGE_DEPTH_STENCIL_ATTACHMENT_BIT;
  1779. }
  1780. rb->depth_texture = RD::get_singleton()->texture_create(tf, RD::TextureView());
  1781. }
  1782. rb->data->configure(rb->texture, rb->depth_texture, p_width, p_height, p_msaa, p_view_count);
  1783. if (is_clustered_enabled()) {
  1784. rb->cluster_builder->setup(Size2i(p_width, p_height), max_cluster_elements, rb->depth_texture, storage->sampler_rd_get_default(RS::CANVAS_ITEM_TEXTURE_FILTER_NEAREST, RS::CANVAS_ITEM_TEXTURE_REPEAT_DISABLED), rb->texture);
  1785. }
  1786. }
  1787. void RendererSceneRenderRD::gi_set_use_half_resolution(bool p_enable) {
  1788. gi.half_resolution = p_enable;
  1789. }
  1790. void RendererSceneRenderRD::sub_surface_scattering_set_quality(RS::SubSurfaceScatteringQuality p_quality) {
  1791. sss_quality = p_quality;
  1792. }
  1793. RS::SubSurfaceScatteringQuality RendererSceneRenderRD::sub_surface_scattering_get_quality() const {
  1794. return sss_quality;
  1795. }
  1796. void RendererSceneRenderRD::sub_surface_scattering_set_scale(float p_scale, float p_depth_scale) {
  1797. sss_scale = p_scale;
  1798. sss_depth_scale = p_depth_scale;
  1799. }
  1800. void RendererSceneRenderRD::shadows_quality_set(RS::ShadowQuality p_quality) {
  1801. ERR_FAIL_INDEX_MSG(p_quality, RS::SHADOW_QUALITY_MAX, "Shadow quality too high, please see RenderingServer's ShadowQuality enum");
  1802. if (shadows_quality != p_quality) {
  1803. shadows_quality = p_quality;
  1804. switch (shadows_quality) {
  1805. case RS::SHADOW_QUALITY_HARD: {
  1806. penumbra_shadow_samples = 4;
  1807. soft_shadow_samples = 1;
  1808. shadows_quality_radius = 1.0;
  1809. } break;
  1810. case RS::SHADOW_QUALITY_SOFT_LOW: {
  1811. penumbra_shadow_samples = 8;
  1812. soft_shadow_samples = 4;
  1813. shadows_quality_radius = 2.0;
  1814. } break;
  1815. case RS::SHADOW_QUALITY_SOFT_MEDIUM: {
  1816. penumbra_shadow_samples = 12;
  1817. soft_shadow_samples = 8;
  1818. shadows_quality_radius = 2.0;
  1819. } break;
  1820. case RS::SHADOW_QUALITY_SOFT_HIGH: {
  1821. penumbra_shadow_samples = 24;
  1822. soft_shadow_samples = 16;
  1823. shadows_quality_radius = 3.0;
  1824. } break;
  1825. case RS::SHADOW_QUALITY_SOFT_ULTRA: {
  1826. penumbra_shadow_samples = 32;
  1827. soft_shadow_samples = 32;
  1828. shadows_quality_radius = 4.0;
  1829. } break;
  1830. case RS::SHADOW_QUALITY_MAX:
  1831. break;
  1832. }
  1833. get_vogel_disk(penumbra_shadow_kernel, penumbra_shadow_samples);
  1834. get_vogel_disk(soft_shadow_kernel, soft_shadow_samples);
  1835. }
  1836. _update_shader_quality_settings();
  1837. }
  1838. void RendererSceneRenderRD::directional_shadow_quality_set(RS::ShadowQuality p_quality) {
  1839. ERR_FAIL_INDEX_MSG(p_quality, RS::SHADOW_QUALITY_MAX, "Shadow quality too high, please see RenderingServer's ShadowQuality enum");
  1840. if (directional_shadow_quality != p_quality) {
  1841. directional_shadow_quality = p_quality;
  1842. switch (directional_shadow_quality) {
  1843. case RS::SHADOW_QUALITY_HARD: {
  1844. directional_penumbra_shadow_samples = 4;
  1845. directional_soft_shadow_samples = 1;
  1846. directional_shadow_quality_radius = 1.0;
  1847. } break;
  1848. case RS::SHADOW_QUALITY_SOFT_LOW: {
  1849. directional_penumbra_shadow_samples = 8;
  1850. directional_soft_shadow_samples = 4;
  1851. directional_shadow_quality_radius = 2.0;
  1852. } break;
  1853. case RS::SHADOW_QUALITY_SOFT_MEDIUM: {
  1854. directional_penumbra_shadow_samples = 12;
  1855. directional_soft_shadow_samples = 8;
  1856. directional_shadow_quality_radius = 2.0;
  1857. } break;
  1858. case RS::SHADOW_QUALITY_SOFT_HIGH: {
  1859. directional_penumbra_shadow_samples = 24;
  1860. directional_soft_shadow_samples = 16;
  1861. directional_shadow_quality_radius = 3.0;
  1862. } break;
  1863. case RS::SHADOW_QUALITY_SOFT_ULTRA: {
  1864. directional_penumbra_shadow_samples = 32;
  1865. directional_soft_shadow_samples = 32;
  1866. directional_shadow_quality_radius = 4.0;
  1867. } break;
  1868. case RS::SHADOW_QUALITY_MAX:
  1869. break;
  1870. }
  1871. get_vogel_disk(directional_penumbra_shadow_kernel, directional_penumbra_shadow_samples);
  1872. get_vogel_disk(directional_soft_shadow_kernel, directional_soft_shadow_samples);
  1873. }
  1874. _update_shader_quality_settings();
  1875. }
  1876. void RendererSceneRenderRD::decals_set_filter(RenderingServer::DecalFilter p_filter) {
  1877. if (decals_filter == p_filter) {
  1878. return;
  1879. }
  1880. decals_filter = p_filter;
  1881. _update_shader_quality_settings();
  1882. }
  1883. void RendererSceneRenderRD::light_projectors_set_filter(RenderingServer::LightProjectorFilter p_filter) {
  1884. if (light_projectors_filter == p_filter) {
  1885. return;
  1886. }
  1887. light_projectors_filter = p_filter;
  1888. _update_shader_quality_settings();
  1889. }
  1890. int RendererSceneRenderRD::get_roughness_layers() const {
  1891. return sky.roughness_layers;
  1892. }
  1893. bool RendererSceneRenderRD::is_using_radiance_cubemap_array() const {
  1894. return sky.sky_use_cubemap_array;
  1895. }
  1896. RendererSceneRenderRD::RenderBufferData *RendererSceneRenderRD::render_buffers_get_data(RID p_render_buffers) {
  1897. RenderBuffers *rb = render_buffers_owner.getornull(p_render_buffers);
  1898. ERR_FAIL_COND_V(!rb, nullptr);
  1899. return rb->data;
  1900. }
  1901. void RendererSceneRenderRD::_setup_reflections(const PagedArray<RID> &p_reflections, const Transform3D &p_camera_inverse_transform, RID p_environment) {
  1902. cluster.reflection_count = 0;
  1903. for (uint32_t i = 0; i < (uint32_t)p_reflections.size(); i++) {
  1904. if (cluster.reflection_count == cluster.max_reflections) {
  1905. break;
  1906. }
  1907. ReflectionProbeInstance *rpi = reflection_probe_instance_owner.getornull(p_reflections[i]);
  1908. if (!rpi) {
  1909. continue;
  1910. }
  1911. cluster.reflection_sort[cluster.reflection_count].instance = rpi;
  1912. cluster.reflection_sort[cluster.reflection_count].depth = -p_camera_inverse_transform.xform(rpi->transform.origin).z;
  1913. cluster.reflection_count++;
  1914. }
  1915. if (cluster.reflection_count > 0) {
  1916. SortArray<Cluster::InstanceSort<ReflectionProbeInstance>> sort_array;
  1917. sort_array.sort(cluster.reflection_sort, cluster.reflection_count);
  1918. }
  1919. bool using_forward_ids = _uses_forward_ids();
  1920. for (uint32_t i = 0; i < cluster.reflection_count; i++) {
  1921. ReflectionProbeInstance *rpi = cluster.reflection_sort[i].instance;
  1922. if (using_forward_ids) {
  1923. _map_forward_id(FORWARD_ID_TYPE_REFLECTION_PROBE, rpi->forward_id, i);
  1924. }
  1925. RID base_probe = rpi->probe;
  1926. Cluster::ReflectionData &reflection_ubo = cluster.reflections[i];
  1927. Vector3 extents = storage->reflection_probe_get_extents(base_probe);
  1928. rpi->cull_mask = storage->reflection_probe_get_cull_mask(base_probe);
  1929. reflection_ubo.box_extents[0] = extents.x;
  1930. reflection_ubo.box_extents[1] = extents.y;
  1931. reflection_ubo.box_extents[2] = extents.z;
  1932. reflection_ubo.index = rpi->atlas_index;
  1933. Vector3 origin_offset = storage->reflection_probe_get_origin_offset(base_probe);
  1934. reflection_ubo.box_offset[0] = origin_offset.x;
  1935. reflection_ubo.box_offset[1] = origin_offset.y;
  1936. reflection_ubo.box_offset[2] = origin_offset.z;
  1937. reflection_ubo.mask = storage->reflection_probe_get_cull_mask(base_probe);
  1938. reflection_ubo.intensity = storage->reflection_probe_get_intensity(base_probe);
  1939. reflection_ubo.ambient_mode = storage->reflection_probe_get_ambient_mode(base_probe);
  1940. reflection_ubo.exterior = !storage->reflection_probe_is_interior(base_probe);
  1941. reflection_ubo.box_project = storage->reflection_probe_is_box_projection(base_probe);
  1942. Color ambient_linear = storage->reflection_probe_get_ambient_color(base_probe).to_linear();
  1943. float interior_ambient_energy = storage->reflection_probe_get_ambient_color_energy(base_probe);
  1944. reflection_ubo.ambient[0] = ambient_linear.r * interior_ambient_energy;
  1945. reflection_ubo.ambient[1] = ambient_linear.g * interior_ambient_energy;
  1946. reflection_ubo.ambient[2] = ambient_linear.b * interior_ambient_energy;
  1947. Transform3D transform = rpi->transform;
  1948. Transform3D proj = (p_camera_inverse_transform * transform).inverse();
  1949. RendererStorageRD::store_transform(proj, reflection_ubo.local_matrix);
  1950. if (current_cluster_builder != nullptr) {
  1951. current_cluster_builder->add_box(ClusterBuilderRD::BOX_TYPE_REFLECTION_PROBE, transform, extents);
  1952. }
  1953. rpi->last_pass = RSG::rasterizer->get_frame_number();
  1954. }
  1955. if (cluster.reflection_count) {
  1956. RD::get_singleton()->buffer_update(cluster.reflection_buffer, 0, cluster.reflection_count * sizeof(Cluster::ReflectionData), cluster.reflections, RD::BARRIER_MASK_RASTER | RD::BARRIER_MASK_COMPUTE);
  1957. }
  1958. }
  1959. void RendererSceneRenderRD::_setup_lights(const PagedArray<RID> &p_lights, const Transform3D &p_camera_transform, RID p_shadow_atlas, bool p_using_shadows, uint32_t &r_directional_light_count, uint32_t &r_positional_light_count, bool &r_directional_light_soft_shadows) {
  1960. Transform3D inverse_transform = p_camera_transform.affine_inverse();
  1961. r_directional_light_count = 0;
  1962. r_positional_light_count = 0;
  1963. sky.sky_scene_state.ubo.directional_light_count = 0;
  1964. Plane camera_plane(p_camera_transform.origin, -p_camera_transform.basis.get_axis(Vector3::AXIS_Z).normalized());
  1965. cluster.omni_light_count = 0;
  1966. cluster.spot_light_count = 0;
  1967. r_directional_light_soft_shadows = false;
  1968. for (int i = 0; i < (int)p_lights.size(); i++) {
  1969. LightInstance *li = light_instance_owner.getornull(p_lights[i]);
  1970. if (!li) {
  1971. continue;
  1972. }
  1973. RID base = li->light;
  1974. ERR_CONTINUE(base.is_null());
  1975. RS::LightType type = storage->light_get_type(base);
  1976. switch (type) {
  1977. case RS::LIGHT_DIRECTIONAL: {
  1978. // Copy to SkyDirectionalLightData
  1979. if (r_directional_light_count < sky.sky_scene_state.max_directional_lights) {
  1980. RendererSceneSkyRD::SkyDirectionalLightData &sky_light_data = sky.sky_scene_state.directional_lights[r_directional_light_count];
  1981. Transform3D light_transform = li->transform;
  1982. Vector3 world_direction = light_transform.basis.xform(Vector3(0, 0, 1)).normalized();
  1983. sky_light_data.direction[0] = world_direction.x;
  1984. sky_light_data.direction[1] = world_direction.y;
  1985. sky_light_data.direction[2] = -world_direction.z;
  1986. float sign = storage->light_is_negative(base) ? -1 : 1;
  1987. sky_light_data.energy = sign * storage->light_get_param(base, RS::LIGHT_PARAM_ENERGY);
  1988. Color linear_col = storage->light_get_color(base).to_linear();
  1989. sky_light_data.color[0] = linear_col.r;
  1990. sky_light_data.color[1] = linear_col.g;
  1991. sky_light_data.color[2] = linear_col.b;
  1992. sky_light_data.enabled = true;
  1993. float angular_diameter = storage->light_get_param(base, RS::LIGHT_PARAM_SIZE);
  1994. if (angular_diameter > 0.0) {
  1995. // I know tan(0) is 0, but let's not risk it with numerical precision.
  1996. // technically this will keep expanding until reaching the sun, but all we care
  1997. // is expand until we reach the radius of the near plane (there can't be more occluders than that)
  1998. angular_diameter = Math::tan(Math::deg2rad(angular_diameter));
  1999. if (storage->light_has_shadow(base)) {
  2000. r_directional_light_soft_shadows = true;
  2001. }
  2002. } else {
  2003. angular_diameter = 0.0;
  2004. }
  2005. sky_light_data.size = angular_diameter;
  2006. sky.sky_scene_state.ubo.directional_light_count++;
  2007. }
  2008. if (r_directional_light_count >= cluster.max_directional_lights || storage->light_directional_is_sky_only(base)) {
  2009. continue;
  2010. }
  2011. Cluster::DirectionalLightData &light_data = cluster.directional_lights[r_directional_light_count];
  2012. Transform3D light_transform = li->transform;
  2013. Vector3 direction = inverse_transform.basis.xform(light_transform.basis.xform(Vector3(0, 0, 1))).normalized();
  2014. light_data.direction[0] = direction.x;
  2015. light_data.direction[1] = direction.y;
  2016. light_data.direction[2] = direction.z;
  2017. float sign = storage->light_is_negative(base) ? -1 : 1;
  2018. light_data.energy = sign * storage->light_get_param(base, RS::LIGHT_PARAM_ENERGY) * Math_PI;
  2019. Color linear_col = storage->light_get_color(base).to_linear();
  2020. light_data.color[0] = linear_col.r;
  2021. light_data.color[1] = linear_col.g;
  2022. light_data.color[2] = linear_col.b;
  2023. light_data.specular = storage->light_get_param(base, RS::LIGHT_PARAM_SPECULAR);
  2024. light_data.mask = storage->light_get_cull_mask(base);
  2025. float size = storage->light_get_param(base, RS::LIGHT_PARAM_SIZE);
  2026. light_data.size = 1.0 - Math::cos(Math::deg2rad(size)); //angle to cosine offset
  2027. Color shadow_col = storage->light_get_shadow_color(base).to_linear();
  2028. if (get_debug_draw_mode() == RS::VIEWPORT_DEBUG_DRAW_PSSM_SPLITS) {
  2029. light_data.shadow_color1[0] = 1.0;
  2030. light_data.shadow_color1[1] = 0.0;
  2031. light_data.shadow_color1[2] = 0.0;
  2032. light_data.shadow_color1[3] = 1.0;
  2033. light_data.shadow_color2[0] = 0.0;
  2034. light_data.shadow_color2[1] = 1.0;
  2035. light_data.shadow_color2[2] = 0.0;
  2036. light_data.shadow_color2[3] = 1.0;
  2037. light_data.shadow_color3[0] = 0.0;
  2038. light_data.shadow_color3[1] = 0.0;
  2039. light_data.shadow_color3[2] = 1.0;
  2040. light_data.shadow_color3[3] = 1.0;
  2041. light_data.shadow_color4[0] = 1.0;
  2042. light_data.shadow_color4[1] = 1.0;
  2043. light_data.shadow_color4[2] = 0.0;
  2044. light_data.shadow_color4[3] = 1.0;
  2045. } else {
  2046. light_data.shadow_color1[0] = shadow_col.r;
  2047. light_data.shadow_color1[1] = shadow_col.g;
  2048. light_data.shadow_color1[2] = shadow_col.b;
  2049. light_data.shadow_color1[3] = 1.0;
  2050. light_data.shadow_color2[0] = shadow_col.r;
  2051. light_data.shadow_color2[1] = shadow_col.g;
  2052. light_data.shadow_color2[2] = shadow_col.b;
  2053. light_data.shadow_color2[3] = 1.0;
  2054. light_data.shadow_color3[0] = shadow_col.r;
  2055. light_data.shadow_color3[1] = shadow_col.g;
  2056. light_data.shadow_color3[2] = shadow_col.b;
  2057. light_data.shadow_color3[3] = 1.0;
  2058. light_data.shadow_color4[0] = shadow_col.r;
  2059. light_data.shadow_color4[1] = shadow_col.g;
  2060. light_data.shadow_color4[2] = shadow_col.b;
  2061. light_data.shadow_color4[3] = 1.0;
  2062. }
  2063. light_data.shadow_enabled = p_using_shadows && storage->light_has_shadow(base);
  2064. float angular_diameter = storage->light_get_param(base, RS::LIGHT_PARAM_SIZE);
  2065. if (angular_diameter > 0.0) {
  2066. // I know tan(0) is 0, but let's not risk it with numerical precision.
  2067. // technically this will keep expanding until reaching the sun, but all we care
  2068. // is expand until we reach the radius of the near plane (there can't be more occluders than that)
  2069. angular_diameter = Math::tan(Math::deg2rad(angular_diameter));
  2070. } else {
  2071. angular_diameter = 0.0;
  2072. }
  2073. if (light_data.shadow_enabled) {
  2074. RS::LightDirectionalShadowMode smode = storage->light_directional_get_shadow_mode(base);
  2075. int limit = smode == RS::LIGHT_DIRECTIONAL_SHADOW_ORTHOGONAL ? 0 : (smode == RS::LIGHT_DIRECTIONAL_SHADOW_PARALLEL_2_SPLITS ? 1 : 3);
  2076. light_data.blend_splits = storage->light_directional_get_blend_splits(base);
  2077. for (int j = 0; j < 4; j++) {
  2078. Rect2 atlas_rect = li->shadow_transform[j].atlas_rect;
  2079. CameraMatrix matrix = li->shadow_transform[j].camera;
  2080. float split = li->shadow_transform[MIN(limit, j)].split;
  2081. CameraMatrix bias;
  2082. bias.set_light_bias();
  2083. CameraMatrix rectm;
  2084. rectm.set_light_atlas_rect(atlas_rect);
  2085. Transform3D modelview = (inverse_transform * li->shadow_transform[j].transform).inverse();
  2086. CameraMatrix shadow_mtx = rectm * bias * matrix * modelview;
  2087. light_data.shadow_split_offsets[j] = split;
  2088. float bias_scale = li->shadow_transform[j].bias_scale;
  2089. light_data.shadow_bias[j] = storage->light_get_param(base, RS::LIGHT_PARAM_SHADOW_BIAS) * bias_scale;
  2090. light_data.shadow_normal_bias[j] = storage->light_get_param(base, RS::LIGHT_PARAM_SHADOW_NORMAL_BIAS) * li->shadow_transform[j].shadow_texel_size;
  2091. light_data.shadow_transmittance_bias[j] = storage->light_get_transmittance_bias(base) * bias_scale;
  2092. light_data.shadow_z_range[j] = li->shadow_transform[j].farplane;
  2093. light_data.shadow_range_begin[j] = li->shadow_transform[j].range_begin;
  2094. RendererStorageRD::store_camera(shadow_mtx, light_data.shadow_matrices[j]);
  2095. Vector2 uv_scale = li->shadow_transform[j].uv_scale;
  2096. uv_scale *= atlas_rect.size; //adapt to atlas size
  2097. switch (j) {
  2098. case 0: {
  2099. light_data.uv_scale1[0] = uv_scale.x;
  2100. light_data.uv_scale1[1] = uv_scale.y;
  2101. } break;
  2102. case 1: {
  2103. light_data.uv_scale2[0] = uv_scale.x;
  2104. light_data.uv_scale2[1] = uv_scale.y;
  2105. } break;
  2106. case 2: {
  2107. light_data.uv_scale3[0] = uv_scale.x;
  2108. light_data.uv_scale3[1] = uv_scale.y;
  2109. } break;
  2110. case 3: {
  2111. light_data.uv_scale4[0] = uv_scale.x;
  2112. light_data.uv_scale4[1] = uv_scale.y;
  2113. } break;
  2114. }
  2115. }
  2116. float fade_start = storage->light_get_param(base, RS::LIGHT_PARAM_SHADOW_FADE_START);
  2117. light_data.fade_from = -light_data.shadow_split_offsets[3] * MIN(fade_start, 0.999); //using 1.0 would break smoothstep
  2118. light_data.fade_to = -light_data.shadow_split_offsets[3];
  2119. light_data.shadow_volumetric_fog_fade = 1.0 / storage->light_get_shadow_volumetric_fog_fade(base);
  2120. light_data.soft_shadow_scale = storage->light_get_param(base, RS::LIGHT_PARAM_SHADOW_BLUR);
  2121. light_data.softshadow_angle = angular_diameter;
  2122. light_data.bake_mode = storage->light_get_bake_mode(base);
  2123. if (angular_diameter <= 0.0) {
  2124. light_data.soft_shadow_scale *= directional_shadow_quality_radius_get(); // Only use quality radius for PCF
  2125. }
  2126. }
  2127. r_directional_light_count++;
  2128. } break;
  2129. case RS::LIGHT_OMNI: {
  2130. if (cluster.omni_light_count >= cluster.max_lights) {
  2131. continue;
  2132. }
  2133. cluster.omni_light_sort[cluster.omni_light_count].instance = li;
  2134. cluster.omni_light_sort[cluster.omni_light_count].depth = camera_plane.distance_to(li->transform.origin);
  2135. cluster.omni_light_count++;
  2136. } break;
  2137. case RS::LIGHT_SPOT: {
  2138. if (cluster.spot_light_count >= cluster.max_lights) {
  2139. continue;
  2140. }
  2141. cluster.spot_light_sort[cluster.spot_light_count].instance = li;
  2142. cluster.spot_light_sort[cluster.spot_light_count].depth = camera_plane.distance_to(li->transform.origin);
  2143. cluster.spot_light_count++;
  2144. } break;
  2145. }
  2146. li->last_pass = RSG::rasterizer->get_frame_number();
  2147. }
  2148. if (cluster.omni_light_count) {
  2149. SortArray<Cluster::InstanceSort<LightInstance>> sorter;
  2150. sorter.sort(cluster.omni_light_sort, cluster.omni_light_count);
  2151. }
  2152. if (cluster.spot_light_count) {
  2153. SortArray<Cluster::InstanceSort<LightInstance>> sorter;
  2154. sorter.sort(cluster.spot_light_sort, cluster.spot_light_count);
  2155. }
  2156. ShadowAtlas *shadow_atlas = nullptr;
  2157. if (p_shadow_atlas.is_valid() && p_using_shadows) {
  2158. shadow_atlas = shadow_atlas_owner.getornull(p_shadow_atlas);
  2159. }
  2160. bool using_forward_ids = _uses_forward_ids();
  2161. for (uint32_t i = 0; i < (cluster.omni_light_count + cluster.spot_light_count); i++) {
  2162. uint32_t index = (i < cluster.omni_light_count) ? i : i - (cluster.omni_light_count);
  2163. Cluster::LightData &light_data = (i < cluster.omni_light_count) ? cluster.omni_lights[index] : cluster.spot_lights[index];
  2164. RS::LightType type = (i < cluster.omni_light_count) ? RS::LIGHT_OMNI : RS::LIGHT_SPOT;
  2165. LightInstance *li = (i < cluster.omni_light_count) ? cluster.omni_light_sort[index].instance : cluster.spot_light_sort[index].instance;
  2166. RID base = li->light;
  2167. if (using_forward_ids) {
  2168. _map_forward_id(type == RS::LIGHT_OMNI ? FORWARD_ID_TYPE_OMNI_LIGHT : FORWARD_ID_TYPE_SPOT_LIGHT, li->forward_id, index);
  2169. }
  2170. Transform3D light_transform = li->transform;
  2171. float sign = storage->light_is_negative(base) ? -1 : 1;
  2172. Color linear_col = storage->light_get_color(base).to_linear();
  2173. light_data.attenuation = storage->light_get_param(base, RS::LIGHT_PARAM_ATTENUATION);
  2174. float energy = sign * storage->light_get_param(base, RS::LIGHT_PARAM_ENERGY) * Math_PI;
  2175. light_data.color[0] = linear_col.r * energy;
  2176. light_data.color[1] = linear_col.g * energy;
  2177. light_data.color[2] = linear_col.b * energy;
  2178. light_data.specular_amount = storage->light_get_param(base, RS::LIGHT_PARAM_SPECULAR) * 2.0;
  2179. light_data.bake_mode = storage->light_get_bake_mode(base);
  2180. float radius = MAX(0.001, storage->light_get_param(base, RS::LIGHT_PARAM_RANGE));
  2181. light_data.inv_radius = 1.0 / radius;
  2182. Vector3 pos = inverse_transform.xform(light_transform.origin);
  2183. light_data.position[0] = pos.x;
  2184. light_data.position[1] = pos.y;
  2185. light_data.position[2] = pos.z;
  2186. Vector3 direction = inverse_transform.basis.xform(light_transform.basis.xform(Vector3(0, 0, -1))).normalized();
  2187. light_data.direction[0] = direction.x;
  2188. light_data.direction[1] = direction.y;
  2189. light_data.direction[2] = direction.z;
  2190. float size = storage->light_get_param(base, RS::LIGHT_PARAM_SIZE);
  2191. light_data.size = size;
  2192. light_data.inv_spot_attenuation = 1.0f / storage->light_get_param(base, RS::LIGHT_PARAM_SPOT_ATTENUATION);
  2193. float spot_angle = storage->light_get_param(base, RS::LIGHT_PARAM_SPOT_ANGLE);
  2194. light_data.cos_spot_angle = Math::cos(Math::deg2rad(spot_angle));
  2195. light_data.mask = storage->light_get_cull_mask(base);
  2196. light_data.atlas_rect[0] = 0;
  2197. light_data.atlas_rect[1] = 0;
  2198. light_data.atlas_rect[2] = 0;
  2199. light_data.atlas_rect[3] = 0;
  2200. RID projector = storage->light_get_projector(base);
  2201. if (projector.is_valid()) {
  2202. Rect2 rect = storage->decal_atlas_get_texture_rect(projector);
  2203. if (type == RS::LIGHT_SPOT) {
  2204. light_data.projector_rect[0] = rect.position.x;
  2205. light_data.projector_rect[1] = rect.position.y + rect.size.height; //flip because shadow is flipped
  2206. light_data.projector_rect[2] = rect.size.width;
  2207. light_data.projector_rect[3] = -rect.size.height;
  2208. } else {
  2209. light_data.projector_rect[0] = rect.position.x;
  2210. light_data.projector_rect[1] = rect.position.y;
  2211. light_data.projector_rect[2] = rect.size.width;
  2212. light_data.projector_rect[3] = rect.size.height * 0.5; //used by dp, so needs to be half
  2213. }
  2214. } else {
  2215. light_data.projector_rect[0] = 0;
  2216. light_data.projector_rect[1] = 0;
  2217. light_data.projector_rect[2] = 0;
  2218. light_data.projector_rect[3] = 0;
  2219. }
  2220. if (shadow_atlas && shadow_atlas->shadow_owners.has(li->self)) {
  2221. // fill in the shadow information
  2222. light_data.shadow_enabled = true;
  2223. if (type == RS::LIGHT_SPOT) {
  2224. light_data.shadow_bias = (storage->light_get_param(base, RS::LIGHT_PARAM_SHADOW_BIAS) * radius / 10.0);
  2225. float shadow_texel_size = Math::tan(Math::deg2rad(spot_angle)) * radius * 2.0;
  2226. shadow_texel_size *= light_instance_get_shadow_texel_size(li->self, p_shadow_atlas);
  2227. light_data.shadow_normal_bias = storage->light_get_param(base, RS::LIGHT_PARAM_SHADOW_NORMAL_BIAS) * shadow_texel_size;
  2228. } else { //omni
  2229. light_data.shadow_bias = storage->light_get_param(base, RS::LIGHT_PARAM_SHADOW_BIAS) * radius / 10.0;
  2230. float shadow_texel_size = light_instance_get_shadow_texel_size(li->self, p_shadow_atlas);
  2231. light_data.shadow_normal_bias = storage->light_get_param(base, RS::LIGHT_PARAM_SHADOW_NORMAL_BIAS) * shadow_texel_size * 2.0; // applied in -1 .. 1 space
  2232. }
  2233. light_data.transmittance_bias = storage->light_get_transmittance_bias(base);
  2234. Rect2 rect = light_instance_get_shadow_atlas_rect(li->self, p_shadow_atlas);
  2235. light_data.atlas_rect[0] = rect.position.x;
  2236. light_data.atlas_rect[1] = rect.position.y;
  2237. light_data.atlas_rect[2] = rect.size.width;
  2238. light_data.atlas_rect[3] = rect.size.height;
  2239. light_data.soft_shadow_scale = storage->light_get_param(base, RS::LIGHT_PARAM_SHADOW_BLUR);
  2240. light_data.shadow_volumetric_fog_fade = 1.0 / storage->light_get_shadow_volumetric_fog_fade(base);
  2241. if (type == RS::LIGHT_OMNI) {
  2242. light_data.atlas_rect[3] *= 0.5; //one paraboloid on top of another
  2243. Transform3D proj = (inverse_transform * light_transform).inverse();
  2244. RendererStorageRD::store_transform(proj, light_data.shadow_matrix);
  2245. if (size > 0.0) {
  2246. light_data.soft_shadow_size = size;
  2247. } else {
  2248. light_data.soft_shadow_size = 0.0;
  2249. light_data.soft_shadow_scale *= shadows_quality_radius_get(); // Only use quality radius for PCF
  2250. }
  2251. } else if (type == RS::LIGHT_SPOT) {
  2252. Transform3D modelview = (inverse_transform * light_transform).inverse();
  2253. CameraMatrix bias;
  2254. bias.set_light_bias();
  2255. CameraMatrix shadow_mtx = bias * li->shadow_transform[0].camera * modelview;
  2256. RendererStorageRD::store_camera(shadow_mtx, light_data.shadow_matrix);
  2257. if (size > 0.0) {
  2258. CameraMatrix cm = li->shadow_transform[0].camera;
  2259. float half_np = cm.get_z_near() * Math::tan(Math::deg2rad(spot_angle));
  2260. light_data.soft_shadow_size = (size * 0.5 / radius) / (half_np / cm.get_z_near()) * rect.size.width;
  2261. } else {
  2262. light_data.soft_shadow_size = 0.0;
  2263. light_data.soft_shadow_scale *= shadows_quality_radius_get(); // Only use quality radius for PCF
  2264. }
  2265. }
  2266. } else {
  2267. light_data.shadow_enabled = false;
  2268. }
  2269. li->cull_mask = storage->light_get_cull_mask(base);
  2270. if (current_cluster_builder != nullptr) {
  2271. current_cluster_builder->add_light(type == RS::LIGHT_SPOT ? ClusterBuilderRD::LIGHT_TYPE_SPOT : ClusterBuilderRD::LIGHT_TYPE_OMNI, light_transform, radius, spot_angle);
  2272. }
  2273. r_positional_light_count++;
  2274. }
  2275. //update without barriers
  2276. if (cluster.omni_light_count) {
  2277. RD::get_singleton()->buffer_update(cluster.omni_light_buffer, 0, sizeof(Cluster::LightData) * cluster.omni_light_count, cluster.omni_lights, RD::BARRIER_MASK_RASTER | RD::BARRIER_MASK_COMPUTE);
  2278. }
  2279. if (cluster.spot_light_count) {
  2280. RD::get_singleton()->buffer_update(cluster.spot_light_buffer, 0, sizeof(Cluster::LightData) * cluster.spot_light_count, cluster.spot_lights, RD::BARRIER_MASK_RASTER | RD::BARRIER_MASK_COMPUTE);
  2281. }
  2282. if (r_directional_light_count) {
  2283. RD::get_singleton()->buffer_update(cluster.directional_light_buffer, 0, sizeof(Cluster::DirectionalLightData) * r_directional_light_count, cluster.directional_lights, RD::BARRIER_MASK_RASTER | RD::BARRIER_MASK_COMPUTE);
  2284. }
  2285. }
  2286. void RendererSceneRenderRD::_setup_decals(const PagedArray<RID> &p_decals, const Transform3D &p_camera_inverse_xform) {
  2287. Transform3D uv_xform;
  2288. uv_xform.basis.scale(Vector3(2.0, 1.0, 2.0));
  2289. uv_xform.origin = Vector3(-1.0, 0.0, -1.0);
  2290. uint32_t decal_count = p_decals.size();
  2291. cluster.decal_count = 0;
  2292. for (uint32_t i = 0; i < decal_count; i++) {
  2293. if (cluster.decal_count == cluster.max_decals) {
  2294. break;
  2295. }
  2296. DecalInstance *di = decal_instance_owner.getornull(p_decals[i]);
  2297. if (!di) {
  2298. continue;
  2299. }
  2300. RID decal = di->decal;
  2301. Transform3D xform = di->transform;
  2302. real_t distance = -p_camera_inverse_xform.xform(xform.origin).z;
  2303. if (storage->decal_is_distance_fade_enabled(decal)) {
  2304. float fade_begin = storage->decal_get_distance_fade_begin(decal);
  2305. float fade_length = storage->decal_get_distance_fade_length(decal);
  2306. if (distance > fade_begin) {
  2307. if (distance > fade_begin + fade_length) {
  2308. continue; // do not use this decal, its invisible
  2309. }
  2310. }
  2311. }
  2312. cluster.decal_sort[cluster.decal_count].instance = di;
  2313. cluster.decal_sort[cluster.decal_count].depth = distance;
  2314. cluster.decal_count++;
  2315. }
  2316. if (cluster.decal_count > 0) {
  2317. SortArray<Cluster::InstanceSort<DecalInstance>> sort_array;
  2318. sort_array.sort(cluster.decal_sort, cluster.decal_count);
  2319. }
  2320. bool using_forward_ids = _uses_forward_ids();
  2321. for (uint32_t i = 0; i < cluster.decal_count; i++) {
  2322. DecalInstance *di = cluster.decal_sort[i].instance;
  2323. RID decal = di->decal;
  2324. if (using_forward_ids) {
  2325. _map_forward_id(FORWARD_ID_TYPE_DECAL, di->forward_id, i);
  2326. }
  2327. di->cull_mask = storage->decal_get_cull_mask(decal);
  2328. Transform3D xform = di->transform;
  2329. float fade = 1.0;
  2330. if (storage->decal_is_distance_fade_enabled(decal)) {
  2331. real_t distance = -p_camera_inverse_xform.xform(xform.origin).z;
  2332. float fade_begin = storage->decal_get_distance_fade_begin(decal);
  2333. float fade_length = storage->decal_get_distance_fade_length(decal);
  2334. if (distance > fade_begin) {
  2335. fade = 1.0 - (distance - fade_begin) / fade_length;
  2336. }
  2337. }
  2338. Cluster::DecalData &dd = cluster.decals[i];
  2339. Vector3 decal_extents = storage->decal_get_extents(decal);
  2340. Transform3D scale_xform;
  2341. scale_xform.basis.scale(Vector3(decal_extents.x, decal_extents.y, decal_extents.z));
  2342. Transform3D to_decal_xform = (p_camera_inverse_xform * di->transform * scale_xform * uv_xform).affine_inverse();
  2343. RendererStorageRD::store_transform(to_decal_xform, dd.xform);
  2344. Vector3 normal = xform.basis.get_axis(Vector3::AXIS_Y).normalized();
  2345. normal = p_camera_inverse_xform.basis.xform(normal); //camera is normalized, so fine
  2346. dd.normal[0] = normal.x;
  2347. dd.normal[1] = normal.y;
  2348. dd.normal[2] = normal.z;
  2349. dd.normal_fade = storage->decal_get_normal_fade(decal);
  2350. RID albedo_tex = storage->decal_get_texture(decal, RS::DECAL_TEXTURE_ALBEDO);
  2351. RID emission_tex = storage->decal_get_texture(decal, RS::DECAL_TEXTURE_EMISSION);
  2352. if (albedo_tex.is_valid()) {
  2353. Rect2 rect = storage->decal_atlas_get_texture_rect(albedo_tex);
  2354. dd.albedo_rect[0] = rect.position.x;
  2355. dd.albedo_rect[1] = rect.position.y;
  2356. dd.albedo_rect[2] = rect.size.x;
  2357. dd.albedo_rect[3] = rect.size.y;
  2358. } else {
  2359. if (!emission_tex.is_valid()) {
  2360. continue; //no albedo, no emission, no decal.
  2361. }
  2362. dd.albedo_rect[0] = 0;
  2363. dd.albedo_rect[1] = 0;
  2364. dd.albedo_rect[2] = 0;
  2365. dd.albedo_rect[3] = 0;
  2366. }
  2367. RID normal_tex = storage->decal_get_texture(decal, RS::DECAL_TEXTURE_NORMAL);
  2368. if (normal_tex.is_valid()) {
  2369. Rect2 rect = storage->decal_atlas_get_texture_rect(normal_tex);
  2370. dd.normal_rect[0] = rect.position.x;
  2371. dd.normal_rect[1] = rect.position.y;
  2372. dd.normal_rect[2] = rect.size.x;
  2373. dd.normal_rect[3] = rect.size.y;
  2374. Basis normal_xform = p_camera_inverse_xform.basis * xform.basis.orthonormalized();
  2375. RendererStorageRD::store_basis_3x4(normal_xform, dd.normal_xform);
  2376. } else {
  2377. dd.normal_rect[0] = 0;
  2378. dd.normal_rect[1] = 0;
  2379. dd.normal_rect[2] = 0;
  2380. dd.normal_rect[3] = 0;
  2381. }
  2382. RID orm_tex = storage->decal_get_texture(decal, RS::DECAL_TEXTURE_ORM);
  2383. if (orm_tex.is_valid()) {
  2384. Rect2 rect = storage->decal_atlas_get_texture_rect(orm_tex);
  2385. dd.orm_rect[0] = rect.position.x;
  2386. dd.orm_rect[1] = rect.position.y;
  2387. dd.orm_rect[2] = rect.size.x;
  2388. dd.orm_rect[3] = rect.size.y;
  2389. } else {
  2390. dd.orm_rect[0] = 0;
  2391. dd.orm_rect[1] = 0;
  2392. dd.orm_rect[2] = 0;
  2393. dd.orm_rect[3] = 0;
  2394. }
  2395. if (emission_tex.is_valid()) {
  2396. Rect2 rect = storage->decal_atlas_get_texture_rect(emission_tex);
  2397. dd.emission_rect[0] = rect.position.x;
  2398. dd.emission_rect[1] = rect.position.y;
  2399. dd.emission_rect[2] = rect.size.x;
  2400. dd.emission_rect[3] = rect.size.y;
  2401. } else {
  2402. dd.emission_rect[0] = 0;
  2403. dd.emission_rect[1] = 0;
  2404. dd.emission_rect[2] = 0;
  2405. dd.emission_rect[3] = 0;
  2406. }
  2407. Color modulate = storage->decal_get_modulate(decal);
  2408. dd.modulate[0] = modulate.r;
  2409. dd.modulate[1] = modulate.g;
  2410. dd.modulate[2] = modulate.b;
  2411. dd.modulate[3] = modulate.a * fade;
  2412. dd.emission_energy = storage->decal_get_emission_energy(decal) * fade;
  2413. dd.albedo_mix = storage->decal_get_albedo_mix(decal);
  2414. dd.mask = storage->decal_get_cull_mask(decal);
  2415. dd.upper_fade = storage->decal_get_upper_fade(decal);
  2416. dd.lower_fade = storage->decal_get_lower_fade(decal);
  2417. if (current_cluster_builder != nullptr) {
  2418. current_cluster_builder->add_box(ClusterBuilderRD::BOX_TYPE_DECAL, xform, decal_extents);
  2419. }
  2420. }
  2421. if (cluster.decal_count > 0) {
  2422. RD::get_singleton()->buffer_update(cluster.decal_buffer, 0, sizeof(Cluster::DecalData) * cluster.decal_count, cluster.decals, RD::BARRIER_MASK_RASTER | RD::BARRIER_MASK_COMPUTE);
  2423. }
  2424. }
  2425. void RendererSceneRenderRD::_volumetric_fog_erase(RenderBuffers *rb) {
  2426. ERR_FAIL_COND(!rb->volumetric_fog);
  2427. RD::get_singleton()->free(rb->volumetric_fog->prev_light_density_map);
  2428. RD::get_singleton()->free(rb->volumetric_fog->light_density_map);
  2429. RD::get_singleton()->free(rb->volumetric_fog->fog_map);
  2430. if (rb->volumetric_fog->uniform_set.is_valid() && RD::get_singleton()->uniform_set_is_valid(rb->volumetric_fog->uniform_set)) {
  2431. RD::get_singleton()->free(rb->volumetric_fog->uniform_set);
  2432. }
  2433. if (rb->volumetric_fog->uniform_set2.is_valid() && RD::get_singleton()->uniform_set_is_valid(rb->volumetric_fog->uniform_set2)) {
  2434. RD::get_singleton()->free(rb->volumetric_fog->uniform_set2);
  2435. }
  2436. if (rb->volumetric_fog->sdfgi_uniform_set.is_valid() && RD::get_singleton()->uniform_set_is_valid(rb->volumetric_fog->sdfgi_uniform_set)) {
  2437. RD::get_singleton()->free(rb->volumetric_fog->sdfgi_uniform_set);
  2438. }
  2439. if (rb->volumetric_fog->sky_uniform_set.is_valid() && RD::get_singleton()->uniform_set_is_valid(rb->volumetric_fog->sky_uniform_set)) {
  2440. RD::get_singleton()->free(rb->volumetric_fog->sky_uniform_set);
  2441. }
  2442. memdelete(rb->volumetric_fog);
  2443. rb->volumetric_fog = nullptr;
  2444. }
  2445. void RendererSceneRenderRD::_update_volumetric_fog(RID p_render_buffers, RID p_environment, const CameraMatrix &p_cam_projection, const Transform3D &p_cam_transform, RID p_shadow_atlas, int p_directional_light_count, bool p_use_directional_shadows, int p_positional_light_count, int p_voxel_gi_count) {
  2446. ERR_FAIL_COND(!is_clustered_enabled()); // can't use volumetric fog without clustered
  2447. RenderBuffers *rb = render_buffers_owner.getornull(p_render_buffers);
  2448. ERR_FAIL_COND(!rb);
  2449. RendererSceneEnvironmentRD *env = environment_owner.getornull(p_environment);
  2450. float ratio = float(rb->width) / float((rb->width + rb->height) / 2);
  2451. uint32_t target_width = uint32_t(float(volumetric_fog_size) * ratio);
  2452. uint32_t target_height = uint32_t(float(volumetric_fog_size) / ratio);
  2453. if (rb->volumetric_fog) {
  2454. //validate
  2455. if (!env || !env->volumetric_fog_enabled || rb->volumetric_fog->width != target_width || rb->volumetric_fog->height != target_height || rb->volumetric_fog->depth != volumetric_fog_depth) {
  2456. _volumetric_fog_erase(rb);
  2457. }
  2458. }
  2459. if (!env || !env->volumetric_fog_enabled) {
  2460. //no reason to enable or update, bye
  2461. return;
  2462. }
  2463. RENDER_TIMESTAMP(">Volumetric Fog");
  2464. if (env && env->volumetric_fog_enabled && !rb->volumetric_fog) {
  2465. //required volumetric fog but not existing, create
  2466. rb->volumetric_fog = memnew(VolumetricFog);
  2467. rb->volumetric_fog->width = target_width;
  2468. rb->volumetric_fog->height = target_height;
  2469. rb->volumetric_fog->depth = volumetric_fog_depth;
  2470. RD::TextureFormat tf;
  2471. tf.format = RD::DATA_FORMAT_R16G16B16A16_SFLOAT;
  2472. tf.width = target_width;
  2473. tf.height = target_height;
  2474. tf.depth = volumetric_fog_depth;
  2475. tf.texture_type = RD::TEXTURE_TYPE_3D;
  2476. tf.usage_bits = RD::TEXTURE_USAGE_STORAGE_BIT | RD::TEXTURE_USAGE_CAN_COPY_FROM_BIT;
  2477. rb->volumetric_fog->light_density_map = RD::get_singleton()->texture_create(tf, RD::TextureView());
  2478. tf.usage_bits = RD::TEXTURE_USAGE_STORAGE_BIT | RD::TEXTURE_USAGE_SAMPLING_BIT | RD::TEXTURE_USAGE_CAN_COPY_TO_BIT;
  2479. rb->volumetric_fog->prev_light_density_map = RD::get_singleton()->texture_create(tf, RD::TextureView());
  2480. RD::get_singleton()->texture_clear(rb->volumetric_fog->prev_light_density_map, Color(0, 0, 0, 0), 0, 1, 0, 1);
  2481. tf.usage_bits = RD::TEXTURE_USAGE_STORAGE_BIT | RD::TEXTURE_USAGE_SAMPLING_BIT;
  2482. rb->volumetric_fog->fog_map = RD::get_singleton()->texture_create(tf, RD::TextureView());
  2483. Vector<RD::Uniform> uniforms;
  2484. {
  2485. RD::Uniform u;
  2486. u.binding = 0;
  2487. u.uniform_type = RD::UNIFORM_TYPE_TEXTURE;
  2488. u.ids.push_back(rb->volumetric_fog->fog_map);
  2489. uniforms.push_back(u);
  2490. }
  2491. rb->volumetric_fog->sky_uniform_set = RD::get_singleton()->uniform_set_create(uniforms, sky.sky_shader.default_shader_rd, RendererSceneSkyRD::SKY_SET_FOG);
  2492. }
  2493. //update volumetric fog
  2494. if (rb->volumetric_fog->uniform_set.is_null() || !RD::get_singleton()->uniform_set_is_valid(rb->volumetric_fog->uniform_set)) {
  2495. //re create uniform set if needed
  2496. Vector<RD::Uniform> uniforms;
  2497. {
  2498. RD::Uniform u;
  2499. u.uniform_type = RD::UNIFORM_TYPE_TEXTURE;
  2500. u.binding = 1;
  2501. ShadowAtlas *shadow_atlas = shadow_atlas_owner.getornull(p_shadow_atlas);
  2502. if (shadow_atlas == nullptr || shadow_atlas->depth.is_null()) {
  2503. u.ids.push_back(storage->texture_rd_get_default(RendererStorageRD::DEFAULT_RD_TEXTURE_BLACK));
  2504. } else {
  2505. u.ids.push_back(shadow_atlas->depth);
  2506. }
  2507. uniforms.push_back(u);
  2508. }
  2509. {
  2510. RD::Uniform u;
  2511. u.uniform_type = RD::UNIFORM_TYPE_TEXTURE;
  2512. u.binding = 2;
  2513. if (directional_shadow.depth.is_valid()) {
  2514. u.ids.push_back(directional_shadow.depth);
  2515. } else {
  2516. u.ids.push_back(storage->texture_rd_get_default(RendererStorageRD::DEFAULT_RD_TEXTURE_BLACK));
  2517. }
  2518. uniforms.push_back(u);
  2519. }
  2520. {
  2521. RD::Uniform u;
  2522. u.uniform_type = RD::UNIFORM_TYPE_STORAGE_BUFFER;
  2523. u.binding = 3;
  2524. u.ids.push_back(get_omni_light_buffer());
  2525. uniforms.push_back(u);
  2526. }
  2527. {
  2528. RD::Uniform u;
  2529. u.uniform_type = RD::UNIFORM_TYPE_STORAGE_BUFFER;
  2530. u.binding = 4;
  2531. u.ids.push_back(get_spot_light_buffer());
  2532. uniforms.push_back(u);
  2533. }
  2534. {
  2535. RD::Uniform u;
  2536. u.uniform_type = RD::UNIFORM_TYPE_UNIFORM_BUFFER;
  2537. u.binding = 5;
  2538. u.ids.push_back(get_directional_light_buffer());
  2539. uniforms.push_back(u);
  2540. }
  2541. {
  2542. RD::Uniform u;
  2543. u.uniform_type = RD::UNIFORM_TYPE_STORAGE_BUFFER;
  2544. u.binding = 6;
  2545. u.ids.push_back(rb->cluster_builder->get_cluster_buffer());
  2546. uniforms.push_back(u);
  2547. }
  2548. {
  2549. RD::Uniform u;
  2550. u.uniform_type = RD::UNIFORM_TYPE_SAMPLER;
  2551. u.binding = 7;
  2552. u.ids.push_back(storage->sampler_rd_get_default(RS::CANVAS_ITEM_TEXTURE_FILTER_LINEAR, RS::CANVAS_ITEM_TEXTURE_REPEAT_DISABLED));
  2553. uniforms.push_back(u);
  2554. }
  2555. {
  2556. RD::Uniform u;
  2557. u.uniform_type = RD::UNIFORM_TYPE_IMAGE;
  2558. u.binding = 8;
  2559. u.ids.push_back(rb->volumetric_fog->light_density_map);
  2560. uniforms.push_back(u);
  2561. }
  2562. {
  2563. RD::Uniform u;
  2564. u.uniform_type = RD::UNIFORM_TYPE_IMAGE;
  2565. u.binding = 9;
  2566. u.ids.push_back(rb->volumetric_fog->fog_map);
  2567. uniforms.push_back(u);
  2568. }
  2569. {
  2570. RD::Uniform u;
  2571. u.uniform_type = RD::UNIFORM_TYPE_SAMPLER;
  2572. u.binding = 10;
  2573. u.ids.push_back(shadow_sampler);
  2574. uniforms.push_back(u);
  2575. }
  2576. {
  2577. RD::Uniform u;
  2578. u.uniform_type = RD::UNIFORM_TYPE_UNIFORM_BUFFER;
  2579. u.binding = 11;
  2580. u.ids.push_back(render_buffers_get_voxel_gi_buffer(p_render_buffers));
  2581. uniforms.push_back(u);
  2582. }
  2583. {
  2584. RD::Uniform u;
  2585. u.uniform_type = RD::UNIFORM_TYPE_TEXTURE;
  2586. u.binding = 12;
  2587. for (int i = 0; i < RendererSceneGIRD::MAX_VOXEL_GI_INSTANCES; i++) {
  2588. u.ids.push_back(rb->gi.voxel_gi_textures[i]);
  2589. }
  2590. uniforms.push_back(u);
  2591. }
  2592. {
  2593. RD::Uniform u;
  2594. u.uniform_type = RD::UNIFORM_TYPE_SAMPLER;
  2595. u.binding = 13;
  2596. u.ids.push_back(storage->sampler_rd_get_default(RS::CANVAS_ITEM_TEXTURE_FILTER_LINEAR_WITH_MIPMAPS, RS::CANVAS_ITEM_TEXTURE_REPEAT_DISABLED));
  2597. uniforms.push_back(u);
  2598. }
  2599. {
  2600. RD::Uniform u;
  2601. u.uniform_type = RD::UNIFORM_TYPE_UNIFORM_BUFFER;
  2602. u.binding = 14;
  2603. u.ids.push_back(volumetric_fog.params_ubo);
  2604. uniforms.push_back(u);
  2605. }
  2606. {
  2607. RD::Uniform u;
  2608. u.uniform_type = RD::UNIFORM_TYPE_TEXTURE;
  2609. u.binding = 15;
  2610. u.ids.push_back(rb->volumetric_fog->prev_light_density_map);
  2611. uniforms.push_back(u);
  2612. }
  2613. rb->volumetric_fog->uniform_set = RD::get_singleton()->uniform_set_create(uniforms, volumetric_fog.shader.version_get_shader(volumetric_fog.shader_version, 0), 0);
  2614. SWAP(uniforms.write[7].ids.write[0], uniforms.write[8].ids.write[0]);
  2615. rb->volumetric_fog->uniform_set2 = RD::get_singleton()->uniform_set_create(uniforms, volumetric_fog.shader.version_get_shader(volumetric_fog.shader_version, 0), 0);
  2616. }
  2617. bool using_sdfgi = env->volumetric_fog_gi_inject > 0.0001 && env->sdfgi_enabled && (rb->sdfgi != nullptr);
  2618. if (using_sdfgi) {
  2619. if (rb->volumetric_fog->sdfgi_uniform_set.is_null() || !RD::get_singleton()->uniform_set_is_valid(rb->volumetric_fog->sdfgi_uniform_set)) {
  2620. Vector<RD::Uniform> uniforms;
  2621. {
  2622. RD::Uniform u;
  2623. u.uniform_type = RD::UNIFORM_TYPE_UNIFORM_BUFFER;
  2624. u.binding = 0;
  2625. u.ids.push_back(gi.sdfgi_ubo);
  2626. uniforms.push_back(u);
  2627. }
  2628. {
  2629. RD::Uniform u;
  2630. u.uniform_type = RD::UNIFORM_TYPE_TEXTURE;
  2631. u.binding = 1;
  2632. u.ids.push_back(rb->sdfgi->ambient_texture);
  2633. uniforms.push_back(u);
  2634. }
  2635. {
  2636. RD::Uniform u;
  2637. u.uniform_type = RD::UNIFORM_TYPE_TEXTURE;
  2638. u.binding = 2;
  2639. u.ids.push_back(rb->sdfgi->occlusion_texture);
  2640. uniforms.push_back(u);
  2641. }
  2642. rb->volumetric_fog->sdfgi_uniform_set = RD::get_singleton()->uniform_set_create(uniforms, volumetric_fog.shader.version_get_shader(volumetric_fog.shader_version, VOLUMETRIC_FOG_SHADER_DENSITY_WITH_SDFGI), 1);
  2643. }
  2644. }
  2645. rb->volumetric_fog->length = env->volumetric_fog_length;
  2646. rb->volumetric_fog->spread = env->volumetric_fog_detail_spread;
  2647. VolumetricFogShader::ParamsUBO params;
  2648. Vector2 frustum_near_size = p_cam_projection.get_viewport_half_extents();
  2649. Vector2 frustum_far_size = p_cam_projection.get_far_plane_half_extents();
  2650. float z_near = p_cam_projection.get_z_near();
  2651. float z_far = p_cam_projection.get_z_far();
  2652. float fog_end = env->volumetric_fog_length;
  2653. Vector2 fog_far_size = frustum_near_size.lerp(frustum_far_size, (fog_end - z_near) / (z_far - z_near));
  2654. Vector2 fog_near_size;
  2655. if (p_cam_projection.is_orthogonal()) {
  2656. fog_near_size = fog_far_size;
  2657. } else {
  2658. fog_near_size = Vector2();
  2659. }
  2660. params.fog_frustum_size_begin[0] = fog_near_size.x;
  2661. params.fog_frustum_size_begin[1] = fog_near_size.y;
  2662. params.fog_frustum_size_end[0] = fog_far_size.x;
  2663. params.fog_frustum_size_end[1] = fog_far_size.y;
  2664. params.z_near = z_near;
  2665. params.z_far = z_far;
  2666. params.fog_frustum_end = fog_end;
  2667. params.fog_volume_size[0] = rb->volumetric_fog->width;
  2668. params.fog_volume_size[1] = rb->volumetric_fog->height;
  2669. params.fog_volume_size[2] = rb->volumetric_fog->depth;
  2670. params.directional_light_count = p_directional_light_count;
  2671. Color light = env->volumetric_fog_light.to_linear();
  2672. params.light_energy[0] = light.r * env->volumetric_fog_light_energy;
  2673. params.light_energy[1] = light.g * env->volumetric_fog_light_energy;
  2674. params.light_energy[2] = light.b * env->volumetric_fog_light_energy;
  2675. params.base_density = env->volumetric_fog_density;
  2676. params.detail_spread = env->volumetric_fog_detail_spread;
  2677. params.gi_inject = env->volumetric_fog_gi_inject;
  2678. params.cam_rotation[0] = p_cam_transform.basis[0][0];
  2679. params.cam_rotation[1] = p_cam_transform.basis[1][0];
  2680. params.cam_rotation[2] = p_cam_transform.basis[2][0];
  2681. params.cam_rotation[3] = 0;
  2682. params.cam_rotation[4] = p_cam_transform.basis[0][1];
  2683. params.cam_rotation[5] = p_cam_transform.basis[1][1];
  2684. params.cam_rotation[6] = p_cam_transform.basis[2][1];
  2685. params.cam_rotation[7] = 0;
  2686. params.cam_rotation[8] = p_cam_transform.basis[0][2];
  2687. params.cam_rotation[9] = p_cam_transform.basis[1][2];
  2688. params.cam_rotation[10] = p_cam_transform.basis[2][2];
  2689. params.cam_rotation[11] = 0;
  2690. params.filter_axis = 0;
  2691. params.max_voxel_gi_instances = env->volumetric_fog_gi_inject > 0.001 ? p_voxel_gi_count : 0;
  2692. params.temporal_frame = RSG::rasterizer->get_frame_number() % VolumetricFog::MAX_TEMPORAL_FRAMES;
  2693. Transform3D to_prev_cam_view = rb->volumetric_fog->prev_cam_transform.affine_inverse() * p_cam_transform;
  2694. storage->store_transform(to_prev_cam_view, params.to_prev_view);
  2695. params.use_temporal_reprojection = env->volumetric_fog_temporal_reprojection;
  2696. params.temporal_blend = env->volumetric_fog_temporal_reprojection_amount;
  2697. {
  2698. uint32_t cluster_size = rb->cluster_builder->get_cluster_size();
  2699. params.cluster_shift = get_shift_from_power_of_2(cluster_size);
  2700. uint32_t cluster_screen_width = (rb->width - 1) / cluster_size + 1;
  2701. uint32_t cluster_screen_height = (rb->height - 1) / cluster_size + 1;
  2702. params.cluster_type_size = cluster_screen_width * cluster_screen_height * (32 + 32);
  2703. params.cluster_width = cluster_screen_width;
  2704. params.max_cluster_element_count_div_32 = max_cluster_elements / 32;
  2705. params.screen_size[0] = rb->width;
  2706. params.screen_size[1] = rb->height;
  2707. }
  2708. /* Vector2 dssize = directional_shadow_get_size();
  2709. push_constant.directional_shadow_pixel_size[0] = 1.0 / dssize.x;
  2710. push_constant.directional_shadow_pixel_size[1] = 1.0 / dssize.y;
  2711. */
  2712. RD::get_singleton()->draw_command_begin_label("Render Volumetric Fog");
  2713. RENDER_TIMESTAMP("Render Fog");
  2714. RD::get_singleton()->buffer_update(volumetric_fog.params_ubo, 0, sizeof(VolumetricFogShader::ParamsUBO), &params, RD::BARRIER_MASK_COMPUTE);
  2715. RD::ComputeListID compute_list = RD::get_singleton()->compute_list_begin();
  2716. bool use_filter = volumetric_fog_filter_active;
  2717. RD::get_singleton()->compute_list_bind_compute_pipeline(compute_list, volumetric_fog.pipelines[using_sdfgi ? VOLUMETRIC_FOG_SHADER_DENSITY_WITH_SDFGI : VOLUMETRIC_FOG_SHADER_DENSITY]);
  2718. RD::get_singleton()->compute_list_bind_uniform_set(compute_list, rb->volumetric_fog->uniform_set, 0);
  2719. if (using_sdfgi) {
  2720. RD::get_singleton()->compute_list_bind_uniform_set(compute_list, rb->volumetric_fog->sdfgi_uniform_set, 1);
  2721. }
  2722. RD::get_singleton()->compute_list_dispatch_threads(compute_list, rb->volumetric_fog->width, rb->volumetric_fog->height, rb->volumetric_fog->depth);
  2723. RD::get_singleton()->draw_command_end_label();
  2724. RD::get_singleton()->compute_list_end();
  2725. RD::get_singleton()->texture_copy(rb->volumetric_fog->light_density_map, rb->volumetric_fog->prev_light_density_map, Vector3(0, 0, 0), Vector3(0, 0, 0), Vector3(rb->volumetric_fog->width, rb->volumetric_fog->height, rb->volumetric_fog->depth), 0, 0, 0, 0);
  2726. compute_list = RD::get_singleton()->compute_list_begin();
  2727. if (use_filter) {
  2728. RD::get_singleton()->draw_command_begin_label("Filter Fog");
  2729. RENDER_TIMESTAMP("Filter Fog");
  2730. RD::get_singleton()->compute_list_bind_compute_pipeline(compute_list, volumetric_fog.pipelines[VOLUMETRIC_FOG_SHADER_FILTER]);
  2731. RD::get_singleton()->compute_list_bind_uniform_set(compute_list, rb->volumetric_fog->uniform_set, 0);
  2732. RD::get_singleton()->compute_list_dispatch_threads(compute_list, rb->volumetric_fog->width, rb->volumetric_fog->height, rb->volumetric_fog->depth);
  2733. RD::get_singleton()->compute_list_end();
  2734. //need restart for buffer update
  2735. params.filter_axis = 1;
  2736. RD::get_singleton()->buffer_update(volumetric_fog.params_ubo, 0, sizeof(VolumetricFogShader::ParamsUBO), &params);
  2737. compute_list = RD::get_singleton()->compute_list_begin();
  2738. RD::get_singleton()->compute_list_bind_compute_pipeline(compute_list, volumetric_fog.pipelines[VOLUMETRIC_FOG_SHADER_FILTER]);
  2739. RD::get_singleton()->compute_list_bind_uniform_set(compute_list, rb->volumetric_fog->uniform_set2, 0);
  2740. if (using_sdfgi) {
  2741. RD::get_singleton()->compute_list_bind_uniform_set(compute_list, rb->volumetric_fog->sdfgi_uniform_set, 1);
  2742. }
  2743. RD::get_singleton()->compute_list_dispatch_threads(compute_list, rb->volumetric_fog->width, rb->volumetric_fog->height, rb->volumetric_fog->depth);
  2744. RD::get_singleton()->compute_list_add_barrier(compute_list);
  2745. RD::get_singleton()->draw_command_end_label();
  2746. }
  2747. RENDER_TIMESTAMP("Integrate Fog");
  2748. RD::get_singleton()->draw_command_begin_label("Integrate Fog");
  2749. RD::get_singleton()->compute_list_bind_compute_pipeline(compute_list, volumetric_fog.pipelines[VOLUMETRIC_FOG_SHADER_FOG]);
  2750. RD::get_singleton()->compute_list_bind_uniform_set(compute_list, rb->volumetric_fog->uniform_set, 0);
  2751. RD::get_singleton()->compute_list_dispatch_threads(compute_list, rb->volumetric_fog->width, rb->volumetric_fog->height, 1);
  2752. RD::get_singleton()->compute_list_end(RD::BARRIER_MASK_RASTER);
  2753. RENDER_TIMESTAMP("<Volumetric Fog");
  2754. RD::get_singleton()->draw_command_end_label();
  2755. rb->volumetric_fog->prev_cam_transform = p_cam_transform;
  2756. }
  2757. bool RendererSceneRenderRD::_needs_post_prepass_render(RenderDataRD *p_render_data, bool p_use_gi) {
  2758. if (p_render_data->render_buffers.is_valid()) {
  2759. RenderBuffers *rb = render_buffers_owner.getornull(p_render_data->render_buffers);
  2760. if (rb->sdfgi != nullptr) {
  2761. return true;
  2762. }
  2763. }
  2764. return false;
  2765. }
  2766. void RendererSceneRenderRD::_post_prepass_render(RenderDataRD *p_render_data, bool p_use_gi) {
  2767. if (p_render_data->render_buffers.is_valid()) {
  2768. if (p_use_gi) {
  2769. RenderBuffers *rb = render_buffers_owner.getornull(p_render_data->render_buffers);
  2770. ERR_FAIL_COND(rb == nullptr);
  2771. if (rb->sdfgi == nullptr) {
  2772. return;
  2773. }
  2774. RendererSceneEnvironmentRD *env = environment_owner.getornull(p_render_data->environment);
  2775. rb->sdfgi->update_probes(env, sky.sky_owner.getornull(env->sky));
  2776. }
  2777. }
  2778. }
  2779. void RendererSceneRenderRD::_pre_resolve_render(RenderDataRD *p_render_data, bool p_use_gi) {
  2780. if (p_render_data->render_buffers.is_valid()) {
  2781. if (p_use_gi) {
  2782. RD::get_singleton()->compute_list_end();
  2783. }
  2784. }
  2785. }
  2786. void RendererSceneRenderRD::_pre_opaque_render(RenderDataRD *p_render_data, bool p_use_ssao, bool p_use_gi, RID p_normal_roughness_buffer, RID p_voxel_gi_buffer) {
  2787. // Render shadows while GI is rendering, due to how barriers are handled, this should happen at the same time
  2788. if (p_render_data->render_buffers.is_valid() && p_use_gi) {
  2789. RenderBuffers *rb = render_buffers_owner.getornull(p_render_data->render_buffers);
  2790. ERR_FAIL_COND(rb == nullptr);
  2791. if (rb->sdfgi != nullptr) {
  2792. rb->sdfgi->store_probes();
  2793. }
  2794. }
  2795. render_state.cube_shadows.clear();
  2796. render_state.shadows.clear();
  2797. render_state.directional_shadows.clear();
  2798. Plane camera_plane(p_render_data->cam_transform.origin, -p_render_data->cam_transform.basis.get_axis(Vector3::AXIS_Z));
  2799. float lod_distance_multiplier = p_render_data->cam_projection.get_lod_multiplier();
  2800. {
  2801. for (int i = 0; i < render_state.render_shadow_count; i++) {
  2802. LightInstance *li = light_instance_owner.getornull(render_state.render_shadows[i].light);
  2803. if (storage->light_get_type(li->light) == RS::LIGHT_DIRECTIONAL) {
  2804. render_state.directional_shadows.push_back(i);
  2805. } else if (storage->light_get_type(li->light) == RS::LIGHT_OMNI && storage->light_omni_get_shadow_mode(li->light) == RS::LIGHT_OMNI_SHADOW_CUBE) {
  2806. render_state.cube_shadows.push_back(i);
  2807. } else {
  2808. render_state.shadows.push_back(i);
  2809. }
  2810. }
  2811. //cube shadows are rendered in their own way
  2812. for (uint32_t i = 0; i < render_state.cube_shadows.size(); i++) {
  2813. _render_shadow_pass(render_state.render_shadows[render_state.cube_shadows[i]].light, p_render_data->shadow_atlas, render_state.render_shadows[render_state.cube_shadows[i]].pass, render_state.render_shadows[render_state.cube_shadows[i]].instances, camera_plane, lod_distance_multiplier, p_render_data->screen_lod_threshold, true, true, true, p_render_data->render_info);
  2814. }
  2815. if (render_state.directional_shadows.size()) {
  2816. //open the pass for directional shadows
  2817. _update_directional_shadow_atlas();
  2818. RD::get_singleton()->draw_list_begin(directional_shadow.fb, RD::INITIAL_ACTION_DROP, RD::FINAL_ACTION_DISCARD, RD::INITIAL_ACTION_CLEAR, RD::FINAL_ACTION_CONTINUE);
  2819. RD::get_singleton()->draw_list_end();
  2820. }
  2821. }
  2822. // Render GI
  2823. bool render_shadows = render_state.directional_shadows.size() || render_state.shadows.size();
  2824. bool render_gi = p_render_data->render_buffers.is_valid() && p_use_gi;
  2825. if (render_shadows && render_gi) {
  2826. RENDER_TIMESTAMP("Render GI + Render Shadows (parallel)");
  2827. } else if (render_shadows) {
  2828. RENDER_TIMESTAMP("Render Shadows");
  2829. } else if (render_gi) {
  2830. RENDER_TIMESTAMP("Render GI");
  2831. }
  2832. //prepare shadow rendering
  2833. if (render_shadows) {
  2834. _render_shadow_begin();
  2835. //render directional shadows
  2836. for (uint32_t i = 0; i < render_state.directional_shadows.size(); i++) {
  2837. _render_shadow_pass(render_state.render_shadows[render_state.directional_shadows[i]].light, p_render_data->shadow_atlas, render_state.render_shadows[render_state.directional_shadows[i]].pass, render_state.render_shadows[render_state.directional_shadows[i]].instances, camera_plane, lod_distance_multiplier, p_render_data->screen_lod_threshold, false, i == render_state.directional_shadows.size() - 1, false, p_render_data->render_info);
  2838. }
  2839. //render positional shadows
  2840. for (uint32_t i = 0; i < render_state.shadows.size(); i++) {
  2841. _render_shadow_pass(render_state.render_shadows[render_state.shadows[i]].light, p_render_data->shadow_atlas, render_state.render_shadows[render_state.shadows[i]].pass, render_state.render_shadows[render_state.shadows[i]].instances, camera_plane, lod_distance_multiplier, p_render_data->screen_lod_threshold, i == 0, i == render_state.shadows.size() - 1, true, p_render_data->render_info);
  2842. }
  2843. _render_shadow_process();
  2844. }
  2845. //start GI
  2846. if (render_gi) {
  2847. gi.process_gi(p_render_data->render_buffers, p_normal_roughness_buffer, p_voxel_gi_buffer, p_render_data->environment, p_render_data->cam_projection, p_render_data->cam_transform, *p_render_data->voxel_gi_instances, this);
  2848. }
  2849. //Do shadow rendering (in parallel with GI)
  2850. if (render_shadows) {
  2851. _render_shadow_end(RD::BARRIER_MASK_NO_BARRIER);
  2852. }
  2853. if (render_gi) {
  2854. RD::get_singleton()->compute_list_end(RD::BARRIER_MASK_NO_BARRIER); //use a later barrier
  2855. }
  2856. if (p_render_data->render_buffers.is_valid()) {
  2857. if (p_use_ssao) {
  2858. _process_ssao(p_render_data->render_buffers, p_render_data->environment, p_normal_roughness_buffer, p_render_data->cam_projection);
  2859. }
  2860. }
  2861. //full barrier here, we need raster, transfer and compute and it depends from the previous work
  2862. RD::get_singleton()->barrier(RD::BARRIER_MASK_ALL, RD::BARRIER_MASK_ALL);
  2863. if (current_cluster_builder) {
  2864. current_cluster_builder->begin(p_render_data->cam_transform, p_render_data->cam_projection, !p_render_data->reflection_probe.is_valid());
  2865. }
  2866. bool using_shadows = true;
  2867. if (p_render_data->reflection_probe.is_valid()) {
  2868. if (!storage->reflection_probe_renders_shadows(reflection_probe_instance_get_probe(p_render_data->reflection_probe))) {
  2869. using_shadows = false;
  2870. }
  2871. } else {
  2872. //do not render reflections when rendering a reflection probe
  2873. _setup_reflections(*p_render_data->reflection_probes, p_render_data->cam_transform.affine_inverse(), p_render_data->environment);
  2874. }
  2875. uint32_t directional_light_count = 0;
  2876. uint32_t positional_light_count = 0;
  2877. _setup_lights(*p_render_data->lights, p_render_data->cam_transform, p_render_data->shadow_atlas, using_shadows, directional_light_count, positional_light_count, p_render_data->directional_light_soft_shadows);
  2878. _setup_decals(*p_render_data->decals, p_render_data->cam_transform.affine_inverse());
  2879. p_render_data->directional_light_count = directional_light_count;
  2880. if (current_cluster_builder) {
  2881. current_cluster_builder->bake_cluster();
  2882. }
  2883. if (p_render_data->render_buffers.is_valid()) {
  2884. bool directional_shadows = false;
  2885. for (uint32_t i = 0; i < directional_light_count; i++) {
  2886. if (cluster.directional_lights[i].shadow_enabled) {
  2887. directional_shadows = true;
  2888. break;
  2889. }
  2890. }
  2891. if (is_volumetric_supported()) {
  2892. _update_volumetric_fog(p_render_data->render_buffers, p_render_data->environment, p_render_data->cam_projection, p_render_data->cam_transform, p_render_data->shadow_atlas, directional_light_count, directional_shadows, positional_light_count, render_state.voxel_gi_count);
  2893. }
  2894. }
  2895. }
  2896. void RendererSceneRenderRD::render_scene(RID p_render_buffers, const CameraData *p_camera_data, const PagedArray<GeometryInstance *> &p_instances, const PagedArray<RID> &p_lights, const PagedArray<RID> &p_reflection_probes, const PagedArray<RID> &p_voxel_gi_instances, const PagedArray<RID> &p_decals, const PagedArray<RID> &p_lightmaps, RID p_environment, RID p_camera_effects, RID p_shadow_atlas, RID p_occluder_debug_tex, RID p_reflection_atlas, RID p_reflection_probe, int p_reflection_probe_pass, float p_screen_lod_threshold, const RenderShadowData *p_render_shadows, int p_render_shadow_count, const RenderSDFGIData *p_render_sdfgi_regions, int p_render_sdfgi_region_count, const RenderSDFGIUpdateData *p_sdfgi_update_data, RendererScene::RenderInfo *r_render_info) {
  2897. // getting this here now so we can direct call a bunch of things more easily
  2898. RenderBuffers *rb = nullptr;
  2899. if (p_render_buffers.is_valid()) {
  2900. rb = render_buffers_owner.getornull(p_render_buffers);
  2901. ERR_FAIL_COND(!rb);
  2902. }
  2903. //assign render data
  2904. RenderDataRD render_data;
  2905. {
  2906. render_data.render_buffers = p_render_buffers;
  2907. // Our first camera is used by default
  2908. render_data.cam_transform = p_camera_data->main_transform;
  2909. render_data.cam_projection = p_camera_data->main_projection;
  2910. render_data.view_projection[0] = p_camera_data->main_projection;
  2911. render_data.cam_ortogonal = p_camera_data->is_ortogonal;
  2912. render_data.view_count = p_camera_data->view_count;
  2913. for (uint32_t v = 0; v < p_camera_data->view_count; v++) {
  2914. render_data.view_projection[v] = p_camera_data->view_projection[v];
  2915. }
  2916. render_data.z_near = p_camera_data->main_projection.get_z_near();
  2917. render_data.z_far = p_camera_data->main_projection.get_z_far();
  2918. render_data.instances = &p_instances;
  2919. render_data.lights = &p_lights;
  2920. render_data.reflection_probes = &p_reflection_probes;
  2921. render_data.voxel_gi_instances = &p_voxel_gi_instances;
  2922. render_data.decals = &p_decals;
  2923. render_data.lightmaps = &p_lightmaps;
  2924. render_data.environment = p_environment;
  2925. render_data.camera_effects = p_camera_effects;
  2926. render_data.shadow_atlas = p_shadow_atlas;
  2927. render_data.reflection_atlas = p_reflection_atlas;
  2928. render_data.reflection_probe = p_reflection_probe;
  2929. render_data.reflection_probe_pass = p_reflection_probe_pass;
  2930. // this should be the same for all cameras..
  2931. render_data.lod_distance_multiplier = p_camera_data->main_projection.get_lod_multiplier();
  2932. render_data.lod_camera_plane = Plane(p_camera_data->main_transform.get_origin(), -p_camera_data->main_transform.basis.get_axis(Vector3::AXIS_Z));
  2933. if (get_debug_draw_mode() == RS::VIEWPORT_DEBUG_DRAW_DISABLE_LOD) {
  2934. render_data.screen_lod_threshold = 0.0;
  2935. } else {
  2936. render_data.screen_lod_threshold = p_screen_lod_threshold;
  2937. }
  2938. render_state.render_shadows = p_render_shadows;
  2939. render_state.render_shadow_count = p_render_shadow_count;
  2940. render_state.render_sdfgi_regions = p_render_sdfgi_regions;
  2941. render_state.render_sdfgi_region_count = p_render_sdfgi_region_count;
  2942. render_state.sdfgi_update_data = p_sdfgi_update_data;
  2943. render_data.render_info = r_render_info;
  2944. }
  2945. PagedArray<RID> empty;
  2946. if (get_debug_draw_mode() == RS::VIEWPORT_DEBUG_DRAW_UNSHADED) {
  2947. render_data.lights = &empty;
  2948. render_data.reflection_probes = &empty;
  2949. render_data.voxel_gi_instances = &empty;
  2950. }
  2951. //sdfgi first
  2952. if (rb != nullptr && rb->sdfgi != nullptr) {
  2953. for (int i = 0; i < render_state.render_sdfgi_region_count; i++) {
  2954. rb->sdfgi->render_region(p_render_buffers, render_state.render_sdfgi_regions[i].region, render_state.render_sdfgi_regions[i].instances, this);
  2955. }
  2956. if (render_state.sdfgi_update_data->update_static) {
  2957. rb->sdfgi->render_static_lights(p_render_buffers, render_state.sdfgi_update_data->static_cascade_count, p_sdfgi_update_data->static_cascade_indices, render_state.sdfgi_update_data->static_positional_lights, this);
  2958. }
  2959. }
  2960. Color clear_color;
  2961. if (p_render_buffers.is_valid()) {
  2962. clear_color = storage->render_target_get_clear_request_color(rb->render_target);
  2963. } else {
  2964. clear_color = storage->get_default_clear_color();
  2965. }
  2966. //assign render indices to voxel_gi_instances
  2967. if (is_dynamic_gi_supported()) {
  2968. for (uint32_t i = 0; i < (uint32_t)p_voxel_gi_instances.size(); i++) {
  2969. RendererSceneGIRD::VoxelGIInstance *voxel_gi_inst = gi.voxel_gi_instance_owner.getornull(p_voxel_gi_instances[i]);
  2970. if (voxel_gi_inst) {
  2971. voxel_gi_inst->render_index = i;
  2972. }
  2973. }
  2974. }
  2975. if (render_buffers_owner.owns(render_data.render_buffers)) {
  2976. // render_data.render_buffers == p_render_buffers so we can use our already retrieved rb
  2977. current_cluster_builder = rb->cluster_builder;
  2978. } else if (reflection_probe_instance_owner.owns(render_data.reflection_probe)) {
  2979. ReflectionProbeInstance *rpi = reflection_probe_instance_owner.getornull(render_data.reflection_probe);
  2980. ReflectionAtlas *ra = reflection_atlas_owner.getornull(rpi->atlas);
  2981. if (!ra) {
  2982. ERR_PRINT("reflection probe has no reflection atlas! Bug?");
  2983. current_cluster_builder = nullptr;
  2984. } else {
  2985. current_cluster_builder = ra->cluster_builder;
  2986. }
  2987. } else {
  2988. ERR_PRINT("No render buffer nor reflection atlas, bug"); //should never happen, will crash
  2989. current_cluster_builder = nullptr;
  2990. }
  2991. render_state.voxel_gi_count = 0;
  2992. if (rb != nullptr) {
  2993. if (rb->sdfgi) {
  2994. rb->sdfgi->update_cascades();
  2995. rb->sdfgi->pre_process_gi(render_data.cam_transform, &render_data, this);
  2996. rb->sdfgi->update_light();
  2997. }
  2998. gi.setup_voxel_gi_instances(render_data.render_buffers, render_data.cam_transform, *render_data.voxel_gi_instances, render_state.voxel_gi_count, this);
  2999. }
  3000. render_state.depth_prepass_used = false;
  3001. //calls _pre_opaque_render between depth pre-pass and opaque pass
  3002. if (current_cluster_builder != nullptr) {
  3003. render_data.cluster_buffer = current_cluster_builder->get_cluster_buffer();
  3004. render_data.cluster_size = current_cluster_builder->get_cluster_size();
  3005. render_data.cluster_max_elements = current_cluster_builder->get_max_cluster_elements();
  3006. }
  3007. _render_scene(&render_data, clear_color);
  3008. if (p_render_buffers.is_valid()) {
  3009. if (debug_draw == RS::VIEWPORT_DEBUG_DRAW_CLUSTER_OMNI_LIGHTS || debug_draw == RS::VIEWPORT_DEBUG_DRAW_CLUSTER_SPOT_LIGHTS || debug_draw == RS::VIEWPORT_DEBUG_DRAW_CLUSTER_DECALS || debug_draw == RS::VIEWPORT_DEBUG_DRAW_CLUSTER_REFLECTION_PROBES) {
  3010. ClusterBuilderRD::ElementType elem_type = ClusterBuilderRD::ELEMENT_TYPE_MAX;
  3011. switch (debug_draw) {
  3012. case RS::VIEWPORT_DEBUG_DRAW_CLUSTER_OMNI_LIGHTS:
  3013. elem_type = ClusterBuilderRD::ELEMENT_TYPE_OMNI_LIGHT;
  3014. break;
  3015. case RS::VIEWPORT_DEBUG_DRAW_CLUSTER_SPOT_LIGHTS:
  3016. elem_type = ClusterBuilderRD::ELEMENT_TYPE_SPOT_LIGHT;
  3017. break;
  3018. case RS::VIEWPORT_DEBUG_DRAW_CLUSTER_DECALS:
  3019. elem_type = ClusterBuilderRD::ELEMENT_TYPE_DECAL;
  3020. break;
  3021. case RS::VIEWPORT_DEBUG_DRAW_CLUSTER_REFLECTION_PROBES:
  3022. elem_type = ClusterBuilderRD::ELEMENT_TYPE_REFLECTION_PROBE;
  3023. break;
  3024. default: {
  3025. }
  3026. }
  3027. if (current_cluster_builder != nullptr) {
  3028. current_cluster_builder->debug(elem_type);
  3029. }
  3030. }
  3031. RENDER_TIMESTAMP("Tonemap");
  3032. _render_buffers_post_process_and_tonemap(&render_data);
  3033. _render_buffers_debug_draw(p_render_buffers, p_shadow_atlas, p_occluder_debug_tex);
  3034. if (debug_draw == RS::VIEWPORT_DEBUG_DRAW_SDFGI && rb != nullptr && rb->sdfgi != nullptr) {
  3035. rb->sdfgi->debug_draw(render_data.cam_projection, render_data.cam_transform, rb->width, rb->height, rb->render_target, rb->texture);
  3036. }
  3037. }
  3038. }
  3039. void RendererSceneRenderRD::_render_shadow_pass(RID p_light, RID p_shadow_atlas, int p_pass, const PagedArray<GeometryInstance *> &p_instances, const Plane &p_camera_plane, float p_lod_distance_multiplier, float p_screen_lod_threshold, bool p_open_pass, bool p_close_pass, bool p_clear_region, RendererScene::RenderInfo *p_render_info) {
  3040. LightInstance *light_instance = light_instance_owner.getornull(p_light);
  3041. ERR_FAIL_COND(!light_instance);
  3042. Rect2i atlas_rect;
  3043. uint32_t atlas_size;
  3044. RID atlas_fb;
  3045. bool using_dual_paraboloid = false;
  3046. bool using_dual_paraboloid_flip = false;
  3047. RID render_fb;
  3048. RID render_texture;
  3049. float zfar;
  3050. bool use_pancake = false;
  3051. bool render_cubemap = false;
  3052. bool finalize_cubemap = false;
  3053. bool flip_y = false;
  3054. CameraMatrix light_projection;
  3055. Transform3D light_transform;
  3056. if (storage->light_get_type(light_instance->light) == RS::LIGHT_DIRECTIONAL) {
  3057. //set pssm stuff
  3058. if (light_instance->last_scene_shadow_pass != scene_pass) {
  3059. light_instance->directional_rect = _get_directional_shadow_rect(directional_shadow.size, directional_shadow.light_count, directional_shadow.current_light);
  3060. directional_shadow.current_light++;
  3061. light_instance->last_scene_shadow_pass = scene_pass;
  3062. }
  3063. use_pancake = storage->light_get_param(light_instance->light, RS::LIGHT_PARAM_SHADOW_PANCAKE_SIZE) > 0;
  3064. light_projection = light_instance->shadow_transform[p_pass].camera;
  3065. light_transform = light_instance->shadow_transform[p_pass].transform;
  3066. atlas_rect.position.x = light_instance->directional_rect.position.x;
  3067. atlas_rect.position.y = light_instance->directional_rect.position.y;
  3068. atlas_rect.size.width = light_instance->directional_rect.size.x;
  3069. atlas_rect.size.height = light_instance->directional_rect.size.y;
  3070. if (storage->light_directional_get_shadow_mode(light_instance->light) == RS::LIGHT_DIRECTIONAL_SHADOW_PARALLEL_4_SPLITS) {
  3071. atlas_rect.size.width /= 2;
  3072. atlas_rect.size.height /= 2;
  3073. if (p_pass == 1) {
  3074. atlas_rect.position.x += atlas_rect.size.width;
  3075. } else if (p_pass == 2) {
  3076. atlas_rect.position.y += atlas_rect.size.height;
  3077. } else if (p_pass == 3) {
  3078. atlas_rect.position.x += atlas_rect.size.width;
  3079. atlas_rect.position.y += atlas_rect.size.height;
  3080. }
  3081. } else if (storage->light_directional_get_shadow_mode(light_instance->light) == RS::LIGHT_DIRECTIONAL_SHADOW_PARALLEL_2_SPLITS) {
  3082. atlas_rect.size.height /= 2;
  3083. if (p_pass == 0) {
  3084. } else {
  3085. atlas_rect.position.y += atlas_rect.size.height;
  3086. }
  3087. }
  3088. light_instance->shadow_transform[p_pass].atlas_rect = atlas_rect;
  3089. light_instance->shadow_transform[p_pass].atlas_rect.position /= directional_shadow.size;
  3090. light_instance->shadow_transform[p_pass].atlas_rect.size /= directional_shadow.size;
  3091. zfar = storage->light_get_param(light_instance->light, RS::LIGHT_PARAM_RANGE);
  3092. render_fb = directional_shadow.fb;
  3093. render_texture = RID();
  3094. flip_y = true;
  3095. } else {
  3096. //set from shadow atlas
  3097. ShadowAtlas *shadow_atlas = shadow_atlas_owner.getornull(p_shadow_atlas);
  3098. ERR_FAIL_COND(!shadow_atlas);
  3099. ERR_FAIL_COND(!shadow_atlas->shadow_owners.has(p_light));
  3100. _update_shadow_atlas(shadow_atlas);
  3101. uint32_t key = shadow_atlas->shadow_owners[p_light];
  3102. uint32_t quadrant = (key >> ShadowAtlas::QUADRANT_SHIFT) & 0x3;
  3103. uint32_t shadow = key & ShadowAtlas::SHADOW_INDEX_MASK;
  3104. ERR_FAIL_INDEX((int)shadow, shadow_atlas->quadrants[quadrant].shadows.size());
  3105. uint32_t quadrant_size = shadow_atlas->size >> 1;
  3106. atlas_rect.position.x = (quadrant & 1) * quadrant_size;
  3107. atlas_rect.position.y = (quadrant >> 1) * quadrant_size;
  3108. uint32_t shadow_size = (quadrant_size / shadow_atlas->quadrants[quadrant].subdivision);
  3109. atlas_rect.position.x += (shadow % shadow_atlas->quadrants[quadrant].subdivision) * shadow_size;
  3110. atlas_rect.position.y += (shadow / shadow_atlas->quadrants[quadrant].subdivision) * shadow_size;
  3111. atlas_rect.size.width = shadow_size;
  3112. atlas_rect.size.height = shadow_size;
  3113. zfar = storage->light_get_param(light_instance->light, RS::LIGHT_PARAM_RANGE);
  3114. if (storage->light_get_type(light_instance->light) == RS::LIGHT_OMNI) {
  3115. if (storage->light_omni_get_shadow_mode(light_instance->light) == RS::LIGHT_OMNI_SHADOW_CUBE) {
  3116. ShadowCubemap *cubemap = _get_shadow_cubemap(shadow_size / 2);
  3117. render_fb = cubemap->side_fb[p_pass];
  3118. render_texture = cubemap->cubemap;
  3119. light_projection = light_instance->shadow_transform[p_pass].camera;
  3120. light_transform = light_instance->shadow_transform[p_pass].transform;
  3121. render_cubemap = true;
  3122. finalize_cubemap = p_pass == 5;
  3123. atlas_fb = shadow_atlas->fb;
  3124. atlas_size = shadow_atlas->size;
  3125. if (p_pass == 0) {
  3126. _render_shadow_begin();
  3127. }
  3128. } else {
  3129. light_projection = light_instance->shadow_transform[0].camera;
  3130. light_transform = light_instance->shadow_transform[0].transform;
  3131. atlas_rect.size.height /= 2;
  3132. atlas_rect.position.y += p_pass * atlas_rect.size.height;
  3133. using_dual_paraboloid = true;
  3134. using_dual_paraboloid_flip = p_pass == 1;
  3135. render_fb = shadow_atlas->fb;
  3136. flip_y = true;
  3137. }
  3138. } else if (storage->light_get_type(light_instance->light) == RS::LIGHT_SPOT) {
  3139. light_projection = light_instance->shadow_transform[0].camera;
  3140. light_transform = light_instance->shadow_transform[0].transform;
  3141. render_fb = shadow_atlas->fb;
  3142. flip_y = true;
  3143. }
  3144. }
  3145. if (render_cubemap) {
  3146. //rendering to cubemap
  3147. _render_shadow_append(render_fb, p_instances, light_projection, light_transform, zfar, 0, 0, false, false, use_pancake, p_camera_plane, p_lod_distance_multiplier, p_screen_lod_threshold, Rect2(), false, true, true, true, p_render_info);
  3148. if (finalize_cubemap) {
  3149. _render_shadow_process();
  3150. _render_shadow_end();
  3151. //reblit
  3152. Rect2 atlas_rect_norm = atlas_rect;
  3153. atlas_rect_norm.position.x /= float(atlas_size);
  3154. atlas_rect_norm.position.y /= float(atlas_size);
  3155. atlas_rect_norm.size.x /= float(atlas_size);
  3156. atlas_rect_norm.size.y /= float(atlas_size);
  3157. atlas_rect_norm.size.height /= 2;
  3158. storage->get_effects()->copy_cubemap_to_dp(render_texture, atlas_fb, atlas_rect_norm, light_projection.get_z_near(), light_projection.get_z_far(), false);
  3159. atlas_rect_norm.position.y += atlas_rect_norm.size.height;
  3160. storage->get_effects()->copy_cubemap_to_dp(render_texture, atlas_fb, atlas_rect_norm, light_projection.get_z_near(), light_projection.get_z_far(), true);
  3161. //restore transform so it can be properly used
  3162. light_instance_set_shadow_transform(p_light, CameraMatrix(), light_instance->transform, zfar, 0, 0, 0);
  3163. }
  3164. } else {
  3165. //render shadow
  3166. _render_shadow_append(render_fb, p_instances, light_projection, light_transform, zfar, 0, 0, using_dual_paraboloid, using_dual_paraboloid_flip, use_pancake, p_camera_plane, p_lod_distance_multiplier, p_screen_lod_threshold, atlas_rect, flip_y, p_clear_region, p_open_pass, p_close_pass, p_render_info);
  3167. }
  3168. }
  3169. void RendererSceneRenderRD::render_material(const Transform3D &p_cam_transform, const CameraMatrix &p_cam_projection, bool p_cam_ortogonal, const PagedArray<GeometryInstance *> &p_instances, RID p_framebuffer, const Rect2i &p_region) {
  3170. _render_material(p_cam_transform, p_cam_projection, p_cam_ortogonal, p_instances, p_framebuffer, p_region);
  3171. }
  3172. void RendererSceneRenderRD::render_particle_collider_heightfield(RID p_collider, const Transform3D &p_transform, const PagedArray<GeometryInstance *> &p_instances) {
  3173. ERR_FAIL_COND(!storage->particles_collision_is_heightfield(p_collider));
  3174. Vector3 extents = storage->particles_collision_get_extents(p_collider) * p_transform.basis.get_scale();
  3175. CameraMatrix cm;
  3176. cm.set_orthogonal(-extents.x, extents.x, -extents.z, extents.z, 0, extents.y * 2.0);
  3177. Vector3 cam_pos = p_transform.origin;
  3178. cam_pos.y += extents.y;
  3179. Transform3D cam_xform;
  3180. cam_xform.set_look_at(cam_pos, cam_pos - p_transform.basis.get_axis(Vector3::AXIS_Y), -p_transform.basis.get_axis(Vector3::AXIS_Z).normalized());
  3181. RID fb = storage->particles_collision_get_heightfield_framebuffer(p_collider);
  3182. _render_particle_collider_heightfield(fb, cam_xform, cm, p_instances);
  3183. }
  3184. bool RendererSceneRenderRD::free(RID p_rid) {
  3185. if (render_buffers_owner.owns(p_rid)) {
  3186. RenderBuffers *rb = render_buffers_owner.getornull(p_rid);
  3187. _free_render_buffer_data(rb);
  3188. memdelete(rb->data);
  3189. if (rb->sdfgi) {
  3190. rb->sdfgi->erase();
  3191. memdelete(rb->sdfgi);
  3192. rb->sdfgi = nullptr;
  3193. }
  3194. if (rb->volumetric_fog) {
  3195. _volumetric_fog_erase(rb);
  3196. }
  3197. if (rb->cluster_builder) {
  3198. memdelete(rb->cluster_builder);
  3199. }
  3200. render_buffers_owner.free(p_rid);
  3201. } else if (environment_owner.owns(p_rid)) {
  3202. //not much to delete, just free it
  3203. environment_owner.free(p_rid);
  3204. } else if (camera_effects_owner.owns(p_rid)) {
  3205. //not much to delete, just free it
  3206. camera_effects_owner.free(p_rid);
  3207. } else if (reflection_atlas_owner.owns(p_rid)) {
  3208. reflection_atlas_set_size(p_rid, 0, 0);
  3209. ReflectionAtlas *ra = reflection_atlas_owner.getornull(p_rid);
  3210. if (ra->cluster_builder) {
  3211. memdelete(ra->cluster_builder);
  3212. }
  3213. reflection_atlas_owner.free(p_rid);
  3214. } else if (reflection_probe_instance_owner.owns(p_rid)) {
  3215. ReflectionProbeInstance *rpi = reflection_probe_instance_owner.getornull(p_rid);
  3216. _free_forward_id(FORWARD_ID_TYPE_REFLECTION_PROBE, rpi->forward_id);
  3217. reflection_probe_release_atlas_index(p_rid);
  3218. reflection_probe_instance_owner.free(p_rid);
  3219. } else if (decal_instance_owner.owns(p_rid)) {
  3220. DecalInstance *di = decal_instance_owner.getornull(p_rid);
  3221. _free_forward_id(FORWARD_ID_TYPE_DECAL, di->forward_id);
  3222. decal_instance_owner.free(p_rid);
  3223. } else if (lightmap_instance_owner.owns(p_rid)) {
  3224. lightmap_instance_owner.free(p_rid);
  3225. } else if (gi.voxel_gi_instance_owner.owns(p_rid)) {
  3226. RendererSceneGIRD::VoxelGIInstance *voxel_gi = gi.voxel_gi_instance_owner.getornull(p_rid);
  3227. if (voxel_gi->texture.is_valid()) {
  3228. RD::get_singleton()->free(voxel_gi->texture);
  3229. RD::get_singleton()->free(voxel_gi->write_buffer);
  3230. }
  3231. for (int i = 0; i < voxel_gi->dynamic_maps.size(); i++) {
  3232. RD::get_singleton()->free(voxel_gi->dynamic_maps[i].texture);
  3233. RD::get_singleton()->free(voxel_gi->dynamic_maps[i].depth);
  3234. }
  3235. gi.voxel_gi_instance_owner.free(p_rid);
  3236. } else if (sky.sky_owner.owns(p_rid)) {
  3237. sky.update_dirty_skys();
  3238. sky.free_sky(p_rid);
  3239. } else if (light_instance_owner.owns(p_rid)) {
  3240. LightInstance *light_instance = light_instance_owner.getornull(p_rid);
  3241. //remove from shadow atlases..
  3242. for (Set<RID>::Element *E = light_instance->shadow_atlases.front(); E; E = E->next()) {
  3243. ShadowAtlas *shadow_atlas = shadow_atlas_owner.getornull(E->get());
  3244. ERR_CONTINUE(!shadow_atlas->shadow_owners.has(p_rid));
  3245. uint32_t key = shadow_atlas->shadow_owners[p_rid];
  3246. uint32_t q = (key >> ShadowAtlas::QUADRANT_SHIFT) & 0x3;
  3247. uint32_t s = key & ShadowAtlas::SHADOW_INDEX_MASK;
  3248. shadow_atlas->quadrants[q].shadows.write[s].owner = RID();
  3249. shadow_atlas->shadow_owners.erase(p_rid);
  3250. }
  3251. if (light_instance->light_type != RS::LIGHT_DIRECTIONAL) {
  3252. _free_forward_id(light_instance->light_type == RS::LIGHT_OMNI ? FORWARD_ID_TYPE_OMNI_LIGHT : FORWARD_ID_TYPE_SPOT_LIGHT, light_instance->forward_id);
  3253. }
  3254. light_instance_owner.free(p_rid);
  3255. } else if (shadow_atlas_owner.owns(p_rid)) {
  3256. shadow_atlas_set_size(p_rid, 0);
  3257. shadow_atlas_owner.free(p_rid);
  3258. } else {
  3259. return false;
  3260. }
  3261. return true;
  3262. }
  3263. void RendererSceneRenderRD::set_debug_draw_mode(RS::ViewportDebugDraw p_debug_draw) {
  3264. debug_draw = p_debug_draw;
  3265. }
  3266. void RendererSceneRenderRD::update() {
  3267. sky.update_dirty_skys();
  3268. }
  3269. void RendererSceneRenderRD::set_time(double p_time, double p_step) {
  3270. time = p_time;
  3271. time_step = p_step;
  3272. }
  3273. void RendererSceneRenderRD::screen_space_roughness_limiter_set_active(bool p_enable, float p_amount, float p_limit) {
  3274. screen_space_roughness_limiter = p_enable;
  3275. screen_space_roughness_limiter_amount = p_amount;
  3276. screen_space_roughness_limiter_limit = p_limit;
  3277. }
  3278. bool RendererSceneRenderRD::screen_space_roughness_limiter_is_active() const {
  3279. return screen_space_roughness_limiter;
  3280. }
  3281. float RendererSceneRenderRD::screen_space_roughness_limiter_get_amount() const {
  3282. return screen_space_roughness_limiter_amount;
  3283. }
  3284. float RendererSceneRenderRD::screen_space_roughness_limiter_get_limit() const {
  3285. return screen_space_roughness_limiter_limit;
  3286. }
  3287. TypedArray<Image> RendererSceneRenderRD::bake_render_uv2(RID p_base, const Vector<RID> &p_material_overrides, const Size2i &p_image_size) {
  3288. RD::TextureFormat tf;
  3289. tf.format = RD::DATA_FORMAT_R8G8B8A8_UNORM;
  3290. tf.width = p_image_size.width; // Always 64x64
  3291. tf.height = p_image_size.height;
  3292. tf.usage_bits = RD::TEXTURE_USAGE_COLOR_ATTACHMENT_BIT | RD::TEXTURE_USAGE_CAN_COPY_FROM_BIT;
  3293. RID albedo_alpha_tex = RD::get_singleton()->texture_create(tf, RD::TextureView());
  3294. RID normal_tex = RD::get_singleton()->texture_create(tf, RD::TextureView());
  3295. RID orm_tex = RD::get_singleton()->texture_create(tf, RD::TextureView());
  3296. tf.format = RD::DATA_FORMAT_R16G16B16A16_SFLOAT;
  3297. RID emission_tex = RD::get_singleton()->texture_create(tf, RD::TextureView());
  3298. tf.format = RD::DATA_FORMAT_R32_SFLOAT;
  3299. RID depth_write_tex = RD::get_singleton()->texture_create(tf, RD::TextureView());
  3300. tf.usage_bits = RD::TEXTURE_USAGE_DEPTH_STENCIL_ATTACHMENT_BIT | RD::TEXTURE_USAGE_CAN_COPY_FROM_BIT;
  3301. tf.format = RD::get_singleton()->texture_is_format_supported_for_usage(RD::DATA_FORMAT_D32_SFLOAT, RD::TEXTURE_USAGE_DEPTH_STENCIL_ATTACHMENT_BIT) ? RD::DATA_FORMAT_D32_SFLOAT : RD::DATA_FORMAT_X8_D24_UNORM_PACK32;
  3302. RID depth_tex = RD::get_singleton()->texture_create(tf, RD::TextureView());
  3303. Vector<RID> fb_tex;
  3304. fb_tex.push_back(albedo_alpha_tex);
  3305. fb_tex.push_back(normal_tex);
  3306. fb_tex.push_back(orm_tex);
  3307. fb_tex.push_back(emission_tex);
  3308. fb_tex.push_back(depth_write_tex);
  3309. fb_tex.push_back(depth_tex);
  3310. RID fb = RD::get_singleton()->framebuffer_create(fb_tex);
  3311. //RID sampled_light;
  3312. GeometryInstance *gi = geometry_instance_create(p_base);
  3313. uint32_t sc = RSG::storage->mesh_get_surface_count(p_base);
  3314. Vector<RID> materials;
  3315. materials.resize(sc);
  3316. for (uint32_t i = 0; i < sc; i++) {
  3317. if (i < (uint32_t)p_material_overrides.size()) {
  3318. materials.write[i] = p_material_overrides[i];
  3319. }
  3320. }
  3321. geometry_instance_set_surface_materials(gi, materials);
  3322. if (cull_argument.size() == 0) {
  3323. cull_argument.push_back(nullptr);
  3324. }
  3325. cull_argument[0] = gi;
  3326. _render_uv2(cull_argument, fb, Rect2i(0, 0, p_image_size.width, p_image_size.height));
  3327. geometry_instance_free(gi);
  3328. TypedArray<Image> ret;
  3329. {
  3330. PackedByteArray data = RD::get_singleton()->texture_get_data(albedo_alpha_tex, 0);
  3331. Ref<Image> img;
  3332. img.instantiate();
  3333. img->create(p_image_size.width, p_image_size.height, false, Image::FORMAT_RGBA8, data);
  3334. RD::get_singleton()->free(albedo_alpha_tex);
  3335. ret.push_back(img);
  3336. }
  3337. {
  3338. PackedByteArray data = RD::get_singleton()->texture_get_data(normal_tex, 0);
  3339. Ref<Image> img;
  3340. img.instantiate();
  3341. img->create(p_image_size.width, p_image_size.height, false, Image::FORMAT_RGBA8, data);
  3342. RD::get_singleton()->free(normal_tex);
  3343. ret.push_back(img);
  3344. }
  3345. {
  3346. PackedByteArray data = RD::get_singleton()->texture_get_data(orm_tex, 0);
  3347. Ref<Image> img;
  3348. img.instantiate();
  3349. img->create(p_image_size.width, p_image_size.height, false, Image::FORMAT_RGBA8, data);
  3350. RD::get_singleton()->free(orm_tex);
  3351. ret.push_back(img);
  3352. }
  3353. {
  3354. PackedByteArray data = RD::get_singleton()->texture_get_data(emission_tex, 0);
  3355. Ref<Image> img;
  3356. img.instantiate();
  3357. img->create(p_image_size.width, p_image_size.height, false, Image::FORMAT_RGBAH, data);
  3358. RD::get_singleton()->free(emission_tex);
  3359. ret.push_back(img);
  3360. }
  3361. RD::get_singleton()->free(depth_write_tex);
  3362. RD::get_singleton()->free(depth_tex);
  3363. return ret;
  3364. }
  3365. void RendererSceneRenderRD::sdfgi_set_debug_probe_select(const Vector3 &p_position, const Vector3 &p_dir) {
  3366. gi.sdfgi_debug_probe_pos = p_position;
  3367. gi.sdfgi_debug_probe_dir = p_dir;
  3368. }
  3369. RendererSceneRenderRD *RendererSceneRenderRD::singleton = nullptr;
  3370. RID RendererSceneRenderRD::get_reflection_probe_buffer() {
  3371. return cluster.reflection_buffer;
  3372. }
  3373. RID RendererSceneRenderRD::get_omni_light_buffer() {
  3374. return cluster.omni_light_buffer;
  3375. }
  3376. RID RendererSceneRenderRD::get_spot_light_buffer() {
  3377. return cluster.spot_light_buffer;
  3378. }
  3379. RID RendererSceneRenderRD::get_directional_light_buffer() {
  3380. return cluster.directional_light_buffer;
  3381. }
  3382. RID RendererSceneRenderRD::get_decal_buffer() {
  3383. return cluster.decal_buffer;
  3384. }
  3385. int RendererSceneRenderRD::get_max_directional_lights() const {
  3386. return cluster.max_directional_lights;
  3387. }
  3388. bool RendererSceneRenderRD::is_dynamic_gi_supported() const {
  3389. // usable by default (unless low end = true)
  3390. return true;
  3391. }
  3392. bool RendererSceneRenderRD::is_clustered_enabled() const {
  3393. // used by default.
  3394. return true;
  3395. }
  3396. bool RendererSceneRenderRD::is_volumetric_supported() const {
  3397. // usable by default (unless low end = true)
  3398. return true;
  3399. }
  3400. uint32_t RendererSceneRenderRD::get_max_elements() const {
  3401. return GLOBAL_GET("rendering/limits/cluster_builder/max_clustered_elements");
  3402. }
  3403. RendererSceneRenderRD::RendererSceneRenderRD(RendererStorageRD *p_storage) {
  3404. max_cluster_elements = get_max_elements();
  3405. storage = p_storage;
  3406. singleton = this;
  3407. directional_shadow.size = GLOBAL_GET("rendering/shadows/directional_shadow/size");
  3408. directional_shadow.use_16_bits = GLOBAL_GET("rendering/shadows/directional_shadow/16_bits");
  3409. /* SKY SHADER */
  3410. sky.init(storage);
  3411. /* GI */
  3412. if (is_dynamic_gi_supported()) {
  3413. gi.init(storage, &sky);
  3414. }
  3415. { //decals
  3416. cluster.max_decals = max_cluster_elements;
  3417. uint32_t decal_buffer_size = cluster.max_decals * sizeof(Cluster::DecalData);
  3418. cluster.decals = memnew_arr(Cluster::DecalData, cluster.max_decals);
  3419. cluster.decal_sort = memnew_arr(Cluster::InstanceSort<DecalInstance>, cluster.max_decals);
  3420. cluster.decal_buffer = RD::get_singleton()->storage_buffer_create(decal_buffer_size);
  3421. }
  3422. { //reflections
  3423. cluster.max_reflections = max_cluster_elements;
  3424. cluster.reflections = memnew_arr(Cluster::ReflectionData, cluster.max_reflections);
  3425. cluster.reflection_sort = memnew_arr(Cluster::InstanceSort<ReflectionProbeInstance>, cluster.max_reflections);
  3426. cluster.reflection_buffer = RD::get_singleton()->storage_buffer_create(sizeof(Cluster::ReflectionData) * cluster.max_reflections);
  3427. }
  3428. { //lights
  3429. cluster.max_lights = max_cluster_elements;
  3430. uint32_t light_buffer_size = cluster.max_lights * sizeof(Cluster::LightData);
  3431. cluster.omni_lights = memnew_arr(Cluster::LightData, cluster.max_lights);
  3432. cluster.omni_light_buffer = RD::get_singleton()->storage_buffer_create(light_buffer_size);
  3433. cluster.omni_light_sort = memnew_arr(Cluster::InstanceSort<LightInstance>, cluster.max_lights);
  3434. cluster.spot_lights = memnew_arr(Cluster::LightData, cluster.max_lights);
  3435. cluster.spot_light_buffer = RD::get_singleton()->storage_buffer_create(light_buffer_size);
  3436. cluster.spot_light_sort = memnew_arr(Cluster::InstanceSort<LightInstance>, cluster.max_lights);
  3437. //defines += "\n#define MAX_LIGHT_DATA_STRUCTS " + itos(cluster.max_lights) + "\n";
  3438. cluster.max_directional_lights = MAX_DIRECTIONAL_LIGHTS;
  3439. uint32_t directional_light_buffer_size = cluster.max_directional_lights * sizeof(Cluster::DirectionalLightData);
  3440. cluster.directional_lights = memnew_arr(Cluster::DirectionalLightData, cluster.max_directional_lights);
  3441. cluster.directional_light_buffer = RD::get_singleton()->uniform_buffer_create(directional_light_buffer_size);
  3442. }
  3443. if (is_volumetric_supported()) {
  3444. String defines = "\n#define MAX_DIRECTIONAL_LIGHT_DATA_STRUCTS " + itos(cluster.max_directional_lights) + "\n";
  3445. Vector<String> volumetric_fog_modes;
  3446. volumetric_fog_modes.push_back("\n#define MODE_DENSITY\n");
  3447. volumetric_fog_modes.push_back("\n#define MODE_DENSITY\n#define ENABLE_SDFGI\n");
  3448. volumetric_fog_modes.push_back("\n#define MODE_FILTER\n");
  3449. volumetric_fog_modes.push_back("\n#define MODE_FOG\n");
  3450. volumetric_fog.shader.initialize(volumetric_fog_modes, defines);
  3451. volumetric_fog.shader_version = volumetric_fog.shader.version_create();
  3452. for (int i = 0; i < VOLUMETRIC_FOG_SHADER_MAX; i++) {
  3453. volumetric_fog.pipelines[i] = RD::get_singleton()->compute_pipeline_create(volumetric_fog.shader.version_get_shader(volumetric_fog.shader_version, i));
  3454. }
  3455. volumetric_fog.params_ubo = RD::get_singleton()->uniform_buffer_create(sizeof(VolumetricFogShader::ParamsUBO));
  3456. }
  3457. {
  3458. RD::SamplerState sampler;
  3459. sampler.mag_filter = RD::SAMPLER_FILTER_NEAREST;
  3460. sampler.min_filter = RD::SAMPLER_FILTER_NEAREST;
  3461. sampler.enable_compare = true;
  3462. sampler.compare_op = RD::COMPARE_OP_LESS;
  3463. shadow_sampler = RD::get_singleton()->sampler_create(sampler);
  3464. }
  3465. camera_effects_set_dof_blur_bokeh_shape(RS::DOFBokehShape(int(GLOBAL_GET("rendering/camera/depth_of_field/depth_of_field_bokeh_shape"))));
  3466. camera_effects_set_dof_blur_quality(RS::DOFBlurQuality(int(GLOBAL_GET("rendering/camera/depth_of_field/depth_of_field_bokeh_quality"))), GLOBAL_GET("rendering/camera/depth_of_field/depth_of_field_use_jitter"));
  3467. environment_set_ssao_quality(RS::EnvironmentSSAOQuality(int(GLOBAL_GET("rendering/environment/ssao/quality"))), GLOBAL_GET("rendering/environment/ssao/half_size"), GLOBAL_GET("rendering/environment/ssao/adaptive_target"), GLOBAL_GET("rendering/environment/ssao/blur_passes"), GLOBAL_GET("rendering/environment/ssao/fadeout_from"), GLOBAL_GET("rendering/environment/ssao/fadeout_to"));
  3468. screen_space_roughness_limiter = GLOBAL_GET("rendering/anti_aliasing/screen_space_roughness_limiter/enabled");
  3469. screen_space_roughness_limiter_amount = GLOBAL_GET("rendering/anti_aliasing/screen_space_roughness_limiter/amount");
  3470. screen_space_roughness_limiter_limit = GLOBAL_GET("rendering/anti_aliasing/screen_space_roughness_limiter/limit");
  3471. glow_bicubic_upscale = int(GLOBAL_GET("rendering/environment/glow/upscale_mode")) > 0;
  3472. glow_high_quality = GLOBAL_GET("rendering/environment/glow/use_high_quality");
  3473. ssr_roughness_quality = RS::EnvironmentSSRRoughnessQuality(int(GLOBAL_GET("rendering/environment/screen_space_reflection/roughness_quality")));
  3474. sss_quality = RS::SubSurfaceScatteringQuality(int(GLOBAL_GET("rendering/environment/subsurface_scattering/subsurface_scattering_quality")));
  3475. sss_scale = GLOBAL_GET("rendering/environment/subsurface_scattering/subsurface_scattering_scale");
  3476. sss_depth_scale = GLOBAL_GET("rendering/environment/subsurface_scattering/subsurface_scattering_depth_scale");
  3477. directional_penumbra_shadow_kernel = memnew_arr(float, 128);
  3478. directional_soft_shadow_kernel = memnew_arr(float, 128);
  3479. penumbra_shadow_kernel = memnew_arr(float, 128);
  3480. soft_shadow_kernel = memnew_arr(float, 128);
  3481. shadows_quality_set(RS::ShadowQuality(int(GLOBAL_GET("rendering/shadows/shadows/soft_shadow_quality"))));
  3482. directional_shadow_quality_set(RS::ShadowQuality(int(GLOBAL_GET("rendering/shadows/directional_shadow/soft_shadow_quality"))));
  3483. environment_set_volumetric_fog_volume_size(GLOBAL_GET("rendering/environment/volumetric_fog/volume_size"), GLOBAL_GET("rendering/environment/volumetric_fog/volume_depth"));
  3484. environment_set_volumetric_fog_filter_active(GLOBAL_GET("rendering/environment/volumetric_fog/use_filter"));
  3485. decals_set_filter(RS::DecalFilter(int(GLOBAL_GET("rendering/textures/decals/filter"))));
  3486. light_projectors_set_filter(RS::LightProjectorFilter(int(GLOBAL_GET("rendering/textures/light_projectors/filter"))));
  3487. cull_argument.set_page_pool(&cull_argument_pool);
  3488. }
  3489. RendererSceneRenderRD::~RendererSceneRenderRD() {
  3490. for (Map<int, ShadowCubemap>::Element *E = shadow_cubemaps.front(); E; E = E->next()) {
  3491. RD::get_singleton()->free(E->get().cubemap);
  3492. }
  3493. if (sky.sky_scene_state.uniform_set.is_valid() && RD::get_singleton()->uniform_set_is_valid(sky.sky_scene_state.uniform_set)) {
  3494. RD::get_singleton()->free(sky.sky_scene_state.uniform_set);
  3495. }
  3496. if (is_dynamic_gi_supported()) {
  3497. gi.free();
  3498. volumetric_fog.shader.version_free(volumetric_fog.shader_version);
  3499. RD::get_singleton()->free(volumetric_fog.params_ubo);
  3500. }
  3501. RendererSceneSkyRD::SkyMaterialData *md = (RendererSceneSkyRD::SkyMaterialData *)storage->material_get_data(sky.sky_shader.default_material, RendererStorageRD::SHADER_TYPE_SKY);
  3502. sky.sky_shader.shader.version_free(md->shader_data->version);
  3503. RD::get_singleton()->free(sky.sky_scene_state.directional_light_buffer);
  3504. RD::get_singleton()->free(sky.sky_scene_state.uniform_buffer);
  3505. memdelete_arr(sky.sky_scene_state.directional_lights);
  3506. memdelete_arr(sky.sky_scene_state.last_frame_directional_lights);
  3507. storage->free(sky.sky_shader.default_shader);
  3508. storage->free(sky.sky_shader.default_material);
  3509. storage->free(sky.sky_scene_state.fog_shader);
  3510. storage->free(sky.sky_scene_state.fog_material);
  3511. memdelete_arr(directional_penumbra_shadow_kernel);
  3512. memdelete_arr(directional_soft_shadow_kernel);
  3513. memdelete_arr(penumbra_shadow_kernel);
  3514. memdelete_arr(soft_shadow_kernel);
  3515. {
  3516. RD::get_singleton()->free(cluster.directional_light_buffer);
  3517. RD::get_singleton()->free(cluster.omni_light_buffer);
  3518. RD::get_singleton()->free(cluster.spot_light_buffer);
  3519. RD::get_singleton()->free(cluster.reflection_buffer);
  3520. RD::get_singleton()->free(cluster.decal_buffer);
  3521. memdelete_arr(cluster.directional_lights);
  3522. memdelete_arr(cluster.omni_lights);
  3523. memdelete_arr(cluster.spot_lights);
  3524. memdelete_arr(cluster.omni_light_sort);
  3525. memdelete_arr(cluster.spot_light_sort);
  3526. memdelete_arr(cluster.reflections);
  3527. memdelete_arr(cluster.reflection_sort);
  3528. memdelete_arr(cluster.decals);
  3529. memdelete_arr(cluster.decal_sort);
  3530. }
  3531. RD::get_singleton()->free(shadow_sampler);
  3532. directional_shadow_atlas_set_size(0);
  3533. cull_argument.reset(); //avoid exit error
  3534. }