mesh_storage.cpp 68 KB

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  1. /*************************************************************************/
  2. /* mesh_storage.cpp */
  3. /*************************************************************************/
  4. /* This file is part of: */
  5. /* GODOT ENGINE */
  6. /* https://godotengine.org */
  7. /*************************************************************************/
  8. /* Copyright (c) 2007-2022 Juan Linietsky, Ariel Manzur. */
  9. /* Copyright (c) 2014-2022 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 "mesh_storage.h"
  31. #include "../../rendering_server_globals.h"
  32. using namespace RendererRD;
  33. MeshStorage *MeshStorage::singleton = nullptr;
  34. MeshStorage *MeshStorage::get_singleton() {
  35. return singleton;
  36. }
  37. MeshStorage::MeshStorage() {
  38. singleton = this;
  39. default_rd_storage_buffer = RD::get_singleton()->storage_buffer_create(sizeof(uint32_t) * 4);
  40. //default rd buffers
  41. {
  42. Vector<uint8_t> buffer;
  43. {
  44. buffer.resize(sizeof(float) * 3);
  45. {
  46. uint8_t *w = buffer.ptrw();
  47. float *fptr = reinterpret_cast<float *>(w);
  48. fptr[0] = 0.0;
  49. fptr[1] = 0.0;
  50. fptr[2] = 0.0;
  51. }
  52. mesh_default_rd_buffers[DEFAULT_RD_BUFFER_VERTEX] = RD::get_singleton()->vertex_buffer_create(buffer.size(), buffer);
  53. }
  54. { //normal
  55. buffer.resize(sizeof(float) * 3);
  56. {
  57. uint8_t *w = buffer.ptrw();
  58. float *fptr = reinterpret_cast<float *>(w);
  59. fptr[0] = 1.0;
  60. fptr[1] = 0.0;
  61. fptr[2] = 0.0;
  62. }
  63. mesh_default_rd_buffers[DEFAULT_RD_BUFFER_NORMAL] = RD::get_singleton()->vertex_buffer_create(buffer.size(), buffer);
  64. }
  65. { //tangent
  66. buffer.resize(sizeof(float) * 4);
  67. {
  68. uint8_t *w = buffer.ptrw();
  69. float *fptr = reinterpret_cast<float *>(w);
  70. fptr[0] = 1.0;
  71. fptr[1] = 0.0;
  72. fptr[2] = 0.0;
  73. fptr[3] = 0.0;
  74. }
  75. mesh_default_rd_buffers[DEFAULT_RD_BUFFER_TANGENT] = RD::get_singleton()->vertex_buffer_create(buffer.size(), buffer);
  76. }
  77. { //color
  78. buffer.resize(sizeof(float) * 4);
  79. {
  80. uint8_t *w = buffer.ptrw();
  81. float *fptr = reinterpret_cast<float *>(w);
  82. fptr[0] = 1.0;
  83. fptr[1] = 1.0;
  84. fptr[2] = 1.0;
  85. fptr[3] = 1.0;
  86. }
  87. mesh_default_rd_buffers[DEFAULT_RD_BUFFER_COLOR] = RD::get_singleton()->vertex_buffer_create(buffer.size(), buffer);
  88. }
  89. { //tex uv 1
  90. buffer.resize(sizeof(float) * 2);
  91. {
  92. uint8_t *w = buffer.ptrw();
  93. float *fptr = reinterpret_cast<float *>(w);
  94. fptr[0] = 0.0;
  95. fptr[1] = 0.0;
  96. }
  97. mesh_default_rd_buffers[DEFAULT_RD_BUFFER_TEX_UV] = RD::get_singleton()->vertex_buffer_create(buffer.size(), buffer);
  98. }
  99. { //tex uv 2
  100. buffer.resize(sizeof(float) * 2);
  101. {
  102. uint8_t *w = buffer.ptrw();
  103. float *fptr = reinterpret_cast<float *>(w);
  104. fptr[0] = 0.0;
  105. fptr[1] = 0.0;
  106. }
  107. mesh_default_rd_buffers[DEFAULT_RD_BUFFER_TEX_UV2] = RD::get_singleton()->vertex_buffer_create(buffer.size(), buffer);
  108. }
  109. for (int i = 0; i < RS::ARRAY_CUSTOM_COUNT; i++) {
  110. buffer.resize(sizeof(float) * 4);
  111. {
  112. uint8_t *w = buffer.ptrw();
  113. float *fptr = reinterpret_cast<float *>(w);
  114. fptr[0] = 0.0;
  115. fptr[1] = 0.0;
  116. fptr[2] = 0.0;
  117. fptr[3] = 0.0;
  118. }
  119. mesh_default_rd_buffers[DEFAULT_RD_BUFFER_CUSTOM0 + i] = RD::get_singleton()->vertex_buffer_create(buffer.size(), buffer);
  120. }
  121. { //bones
  122. buffer.resize(sizeof(uint32_t) * 4);
  123. {
  124. uint8_t *w = buffer.ptrw();
  125. uint32_t *fptr = reinterpret_cast<uint32_t *>(w);
  126. fptr[0] = 0;
  127. fptr[1] = 0;
  128. fptr[2] = 0;
  129. fptr[3] = 0;
  130. }
  131. mesh_default_rd_buffers[DEFAULT_RD_BUFFER_BONES] = RD::get_singleton()->vertex_buffer_create(buffer.size(), buffer);
  132. }
  133. { //weights
  134. buffer.resize(sizeof(float) * 4);
  135. {
  136. uint8_t *w = buffer.ptrw();
  137. float *fptr = reinterpret_cast<float *>(w);
  138. fptr[0] = 0.0;
  139. fptr[1] = 0.0;
  140. fptr[2] = 0.0;
  141. fptr[3] = 0.0;
  142. }
  143. mesh_default_rd_buffers[DEFAULT_RD_BUFFER_WEIGHTS] = RD::get_singleton()->vertex_buffer_create(buffer.size(), buffer);
  144. }
  145. }
  146. {
  147. Vector<String> skeleton_modes;
  148. skeleton_modes.push_back("\n#define MODE_2D\n");
  149. skeleton_modes.push_back("");
  150. skeleton_shader.shader.initialize(skeleton_modes);
  151. skeleton_shader.version = skeleton_shader.shader.version_create();
  152. for (int i = 0; i < SkeletonShader::SHADER_MODE_MAX; i++) {
  153. skeleton_shader.version_shader[i] = skeleton_shader.shader.version_get_shader(skeleton_shader.version, i);
  154. skeleton_shader.pipeline[i] = RD::get_singleton()->compute_pipeline_create(skeleton_shader.version_shader[i]);
  155. }
  156. {
  157. Vector<RD::Uniform> uniforms;
  158. {
  159. RD::Uniform u;
  160. u.binding = 0;
  161. u.uniform_type = RD::UNIFORM_TYPE_STORAGE_BUFFER;
  162. u.append_id(default_rd_storage_buffer);
  163. uniforms.push_back(u);
  164. }
  165. skeleton_shader.default_skeleton_uniform_set = RD::get_singleton()->uniform_set_create(uniforms, skeleton_shader.version_shader[0], SkeletonShader::UNIFORM_SET_SKELETON);
  166. }
  167. }
  168. }
  169. MeshStorage::~MeshStorage() {
  170. //def buffers
  171. for (int i = 0; i < DEFAULT_RD_BUFFER_MAX; i++) {
  172. RD::get_singleton()->free(mesh_default_rd_buffers[i]);
  173. }
  174. skeleton_shader.shader.version_free(skeleton_shader.version);
  175. RD::get_singleton()->free(default_rd_storage_buffer);
  176. singleton = nullptr;
  177. }
  178. bool MeshStorage::free(RID p_rid) {
  179. if (owns_mesh(p_rid)) {
  180. mesh_free(p_rid);
  181. return true;
  182. } else if (owns_mesh_instance(p_rid)) {
  183. mesh_instance_free(p_rid);
  184. return true;
  185. } else if (owns_multimesh(p_rid)) {
  186. multimesh_free(p_rid);
  187. return true;
  188. } else if (owns_skeleton(p_rid)) {
  189. skeleton_free(p_rid);
  190. return true;
  191. }
  192. return false;
  193. }
  194. /* MESH API */
  195. RID MeshStorage::mesh_allocate() {
  196. return mesh_owner.allocate_rid();
  197. }
  198. void MeshStorage::mesh_initialize(RID p_rid) {
  199. mesh_owner.initialize_rid(p_rid, Mesh());
  200. }
  201. void MeshStorage::mesh_free(RID p_rid) {
  202. mesh_clear(p_rid);
  203. mesh_set_shadow_mesh(p_rid, RID());
  204. Mesh *mesh = mesh_owner.get_or_null(p_rid);
  205. ERR_FAIL_COND(!mesh);
  206. mesh->dependency.deleted_notify(p_rid);
  207. if (mesh->instances.size()) {
  208. ERR_PRINT("deleting mesh with active instances");
  209. }
  210. if (mesh->shadow_owners.size()) {
  211. for (Mesh *E : mesh->shadow_owners) {
  212. Mesh *shadow_owner = E;
  213. shadow_owner->shadow_mesh = RID();
  214. shadow_owner->dependency.changed_notify(Dependency::DEPENDENCY_CHANGED_MESH);
  215. }
  216. }
  217. mesh_owner.free(p_rid);
  218. }
  219. void MeshStorage::mesh_set_blend_shape_count(RID p_mesh, int p_blend_shape_count) {
  220. ERR_FAIL_COND(p_blend_shape_count < 0);
  221. Mesh *mesh = mesh_owner.get_or_null(p_mesh);
  222. ERR_FAIL_COND(!mesh);
  223. ERR_FAIL_COND(mesh->surface_count > 0); //surfaces already exist
  224. mesh->blend_shape_count = p_blend_shape_count;
  225. }
  226. /// Returns stride
  227. void MeshStorage::mesh_add_surface(RID p_mesh, const RS::SurfaceData &p_surface) {
  228. Mesh *mesh = mesh_owner.get_or_null(p_mesh);
  229. ERR_FAIL_COND(!mesh);
  230. ERR_FAIL_COND(mesh->surface_count == RS::MAX_MESH_SURFACES);
  231. #ifdef DEBUG_ENABLED
  232. //do a validation, to catch errors first
  233. {
  234. uint32_t stride = 0;
  235. uint32_t attrib_stride = 0;
  236. uint32_t skin_stride = 0;
  237. for (int i = 0; i < RS::ARRAY_WEIGHTS; i++) {
  238. if ((p_surface.format & (1 << i))) {
  239. switch (i) {
  240. case RS::ARRAY_VERTEX: {
  241. if (p_surface.format & RS::ARRAY_FLAG_USE_2D_VERTICES) {
  242. stride += sizeof(float) * 2;
  243. } else {
  244. stride += sizeof(float) * 3;
  245. }
  246. } break;
  247. case RS::ARRAY_NORMAL: {
  248. stride += sizeof(int32_t);
  249. } break;
  250. case RS::ARRAY_TANGENT: {
  251. stride += sizeof(int32_t);
  252. } break;
  253. case RS::ARRAY_COLOR: {
  254. attrib_stride += sizeof(uint32_t);
  255. } break;
  256. case RS::ARRAY_TEX_UV: {
  257. attrib_stride += sizeof(float) * 2;
  258. } break;
  259. case RS::ARRAY_TEX_UV2: {
  260. attrib_stride += sizeof(float) * 2;
  261. } break;
  262. case RS::ARRAY_CUSTOM0:
  263. case RS::ARRAY_CUSTOM1:
  264. case RS::ARRAY_CUSTOM2:
  265. case RS::ARRAY_CUSTOM3: {
  266. int idx = i - RS::ARRAY_CUSTOM0;
  267. const uint32_t fmt_shift[RS::ARRAY_CUSTOM_COUNT] = { RS::ARRAY_FORMAT_CUSTOM0_SHIFT, RS::ARRAY_FORMAT_CUSTOM1_SHIFT, RS::ARRAY_FORMAT_CUSTOM2_SHIFT, RS::ARRAY_FORMAT_CUSTOM3_SHIFT };
  268. uint32_t fmt = (p_surface.format >> fmt_shift[idx]) & RS::ARRAY_FORMAT_CUSTOM_MASK;
  269. const uint32_t fmtsize[RS::ARRAY_CUSTOM_MAX] = { 4, 4, 4, 8, 4, 8, 12, 16 };
  270. attrib_stride += fmtsize[fmt];
  271. } break;
  272. case RS::ARRAY_WEIGHTS:
  273. case RS::ARRAY_BONES: {
  274. //uses a separate array
  275. bool use_8 = p_surface.format & RS::ARRAY_FLAG_USE_8_BONE_WEIGHTS;
  276. skin_stride += sizeof(int16_t) * (use_8 ? 16 : 8);
  277. } break;
  278. }
  279. }
  280. }
  281. int expected_size = stride * p_surface.vertex_count;
  282. ERR_FAIL_COND_MSG(expected_size != p_surface.vertex_data.size(), "Size of vertex data provided (" + itos(p_surface.vertex_data.size()) + ") does not match expected (" + itos(expected_size) + ")");
  283. int bs_expected_size = expected_size * mesh->blend_shape_count;
  284. ERR_FAIL_COND_MSG(bs_expected_size != p_surface.blend_shape_data.size(), "Size of blend shape data provided (" + itos(p_surface.blend_shape_data.size()) + ") does not match expected (" + itos(bs_expected_size) + ")");
  285. int expected_attrib_size = attrib_stride * p_surface.vertex_count;
  286. ERR_FAIL_COND_MSG(expected_attrib_size != p_surface.attribute_data.size(), "Size of attribute data provided (" + itos(p_surface.attribute_data.size()) + ") does not match expected (" + itos(expected_attrib_size) + ")");
  287. if ((p_surface.format & RS::ARRAY_FORMAT_WEIGHTS) && (p_surface.format & RS::ARRAY_FORMAT_BONES)) {
  288. expected_size = skin_stride * p_surface.vertex_count;
  289. ERR_FAIL_COND_MSG(expected_size != p_surface.skin_data.size(), "Size of skin data provided (" + itos(p_surface.skin_data.size()) + ") does not match expected (" + itos(expected_size) + ")");
  290. }
  291. }
  292. #endif
  293. Mesh::Surface *s = memnew(Mesh::Surface);
  294. s->format = p_surface.format;
  295. s->primitive = p_surface.primitive;
  296. bool use_as_storage = (p_surface.skin_data.size() || mesh->blend_shape_count > 0);
  297. if (p_surface.vertex_data.size()) {
  298. s->vertex_buffer = RD::get_singleton()->vertex_buffer_create(p_surface.vertex_data.size(), p_surface.vertex_data, use_as_storage);
  299. s->vertex_buffer_size = p_surface.vertex_data.size();
  300. }
  301. if (p_surface.attribute_data.size()) {
  302. s->attribute_buffer = RD::get_singleton()->vertex_buffer_create(p_surface.attribute_data.size(), p_surface.attribute_data);
  303. }
  304. if (p_surface.skin_data.size()) {
  305. s->skin_buffer = RD::get_singleton()->vertex_buffer_create(p_surface.skin_data.size(), p_surface.skin_data, use_as_storage);
  306. s->skin_buffer_size = p_surface.skin_data.size();
  307. }
  308. s->vertex_count = p_surface.vertex_count;
  309. if (p_surface.format & RS::ARRAY_FORMAT_BONES) {
  310. mesh->has_bone_weights = true;
  311. }
  312. if (p_surface.index_count) {
  313. bool is_index_16 = p_surface.vertex_count <= 65536 && p_surface.vertex_count > 0;
  314. s->index_buffer = RD::get_singleton()->index_buffer_create(p_surface.index_count, is_index_16 ? RD::INDEX_BUFFER_FORMAT_UINT16 : RD::INDEX_BUFFER_FORMAT_UINT32, p_surface.index_data, false);
  315. s->index_count = p_surface.index_count;
  316. s->index_array = RD::get_singleton()->index_array_create(s->index_buffer, 0, s->index_count);
  317. if (p_surface.lods.size()) {
  318. s->lods = memnew_arr(Mesh::Surface::LOD, p_surface.lods.size());
  319. s->lod_count = p_surface.lods.size();
  320. for (int i = 0; i < p_surface.lods.size(); i++) {
  321. uint32_t indices = p_surface.lods[i].index_data.size() / (is_index_16 ? 2 : 4);
  322. s->lods[i].index_buffer = RD::get_singleton()->index_buffer_create(indices, is_index_16 ? RD::INDEX_BUFFER_FORMAT_UINT16 : RD::INDEX_BUFFER_FORMAT_UINT32, p_surface.lods[i].index_data);
  323. s->lods[i].index_array = RD::get_singleton()->index_array_create(s->lods[i].index_buffer, 0, indices);
  324. s->lods[i].edge_length = p_surface.lods[i].edge_length;
  325. s->lods[i].index_count = indices;
  326. }
  327. }
  328. }
  329. ERR_FAIL_COND_MSG(!p_surface.index_count && !p_surface.vertex_count, "Meshes must contain a vertex array, an index array, or both");
  330. s->aabb = p_surface.aabb;
  331. s->bone_aabbs = p_surface.bone_aabbs; //only really useful for returning them.
  332. if (mesh->blend_shape_count > 0) {
  333. s->blend_shape_buffer = RD::get_singleton()->storage_buffer_create(p_surface.blend_shape_data.size(), p_surface.blend_shape_data);
  334. }
  335. if (use_as_storage) {
  336. Vector<RD::Uniform> uniforms;
  337. {
  338. RD::Uniform u;
  339. u.binding = 0;
  340. u.uniform_type = RD::UNIFORM_TYPE_STORAGE_BUFFER;
  341. if (s->vertex_buffer.is_valid()) {
  342. u.append_id(s->vertex_buffer);
  343. } else {
  344. u.append_id(default_rd_storage_buffer);
  345. }
  346. uniforms.push_back(u);
  347. }
  348. {
  349. RD::Uniform u;
  350. u.binding = 1;
  351. u.uniform_type = RD::UNIFORM_TYPE_STORAGE_BUFFER;
  352. if (s->skin_buffer.is_valid()) {
  353. u.append_id(s->skin_buffer);
  354. } else {
  355. u.append_id(default_rd_storage_buffer);
  356. }
  357. uniforms.push_back(u);
  358. }
  359. {
  360. RD::Uniform u;
  361. u.binding = 2;
  362. u.uniform_type = RD::UNIFORM_TYPE_STORAGE_BUFFER;
  363. if (s->blend_shape_buffer.is_valid()) {
  364. u.append_id(s->blend_shape_buffer);
  365. } else {
  366. u.append_id(default_rd_storage_buffer);
  367. }
  368. uniforms.push_back(u);
  369. }
  370. s->uniform_set = RD::get_singleton()->uniform_set_create(uniforms, skeleton_shader.version_shader[0], SkeletonShader::UNIFORM_SET_SURFACE);
  371. }
  372. if (mesh->surface_count == 0) {
  373. mesh->bone_aabbs = p_surface.bone_aabbs;
  374. mesh->aabb = p_surface.aabb;
  375. } else {
  376. if (mesh->bone_aabbs.size() < p_surface.bone_aabbs.size()) {
  377. // ArrayMesh::_surface_set_data only allocates bone_aabbs up to max_bone
  378. // Each surface may affect different numbers of bones.
  379. mesh->bone_aabbs.resize(p_surface.bone_aabbs.size());
  380. }
  381. for (int i = 0; i < p_surface.bone_aabbs.size(); i++) {
  382. const AABB &bone = p_surface.bone_aabbs[i];
  383. if (bone.has_volume()) {
  384. mesh->bone_aabbs.write[i].merge_with(bone);
  385. }
  386. }
  387. mesh->aabb.merge_with(p_surface.aabb);
  388. }
  389. s->material = p_surface.material;
  390. mesh->surfaces = (Mesh::Surface **)memrealloc(mesh->surfaces, sizeof(Mesh::Surface *) * (mesh->surface_count + 1));
  391. mesh->surfaces[mesh->surface_count] = s;
  392. mesh->surface_count++;
  393. for (MeshInstance *mi : mesh->instances) {
  394. _mesh_instance_add_surface(mi, mesh, mesh->surface_count - 1);
  395. }
  396. mesh->dependency.changed_notify(Dependency::DEPENDENCY_CHANGED_MESH);
  397. for (Mesh *E : mesh->shadow_owners) {
  398. Mesh *shadow_owner = E;
  399. shadow_owner->shadow_mesh = RID();
  400. shadow_owner->dependency.changed_notify(Dependency::DEPENDENCY_CHANGED_MESH);
  401. }
  402. mesh->material_cache.clear();
  403. }
  404. int MeshStorage::mesh_get_blend_shape_count(RID p_mesh) const {
  405. const Mesh *mesh = mesh_owner.get_or_null(p_mesh);
  406. ERR_FAIL_COND_V(!mesh, -1);
  407. return mesh->blend_shape_count;
  408. }
  409. void MeshStorage::mesh_set_blend_shape_mode(RID p_mesh, RS::BlendShapeMode p_mode) {
  410. Mesh *mesh = mesh_owner.get_or_null(p_mesh);
  411. ERR_FAIL_COND(!mesh);
  412. ERR_FAIL_INDEX((int)p_mode, 2);
  413. mesh->blend_shape_mode = p_mode;
  414. }
  415. RS::BlendShapeMode MeshStorage::mesh_get_blend_shape_mode(RID p_mesh) const {
  416. Mesh *mesh = mesh_owner.get_or_null(p_mesh);
  417. ERR_FAIL_COND_V(!mesh, RS::BLEND_SHAPE_MODE_NORMALIZED);
  418. return mesh->blend_shape_mode;
  419. }
  420. void MeshStorage::mesh_surface_update_vertex_region(RID p_mesh, int p_surface, int p_offset, const Vector<uint8_t> &p_data) {
  421. Mesh *mesh = mesh_owner.get_or_null(p_mesh);
  422. ERR_FAIL_COND(!mesh);
  423. ERR_FAIL_UNSIGNED_INDEX((uint32_t)p_surface, mesh->surface_count);
  424. ERR_FAIL_COND(p_data.size() == 0);
  425. ERR_FAIL_COND(mesh->surfaces[p_surface]->vertex_buffer.is_null());
  426. uint64_t data_size = p_data.size();
  427. const uint8_t *r = p_data.ptr();
  428. RD::get_singleton()->buffer_update(mesh->surfaces[p_surface]->vertex_buffer, p_offset, data_size, r);
  429. }
  430. void MeshStorage::mesh_surface_update_attribute_region(RID p_mesh, int p_surface, int p_offset, const Vector<uint8_t> &p_data) {
  431. Mesh *mesh = mesh_owner.get_or_null(p_mesh);
  432. ERR_FAIL_COND(!mesh);
  433. ERR_FAIL_UNSIGNED_INDEX((uint32_t)p_surface, mesh->surface_count);
  434. ERR_FAIL_COND(p_data.size() == 0);
  435. ERR_FAIL_COND(mesh->surfaces[p_surface]->attribute_buffer.is_null());
  436. uint64_t data_size = p_data.size();
  437. const uint8_t *r = p_data.ptr();
  438. RD::get_singleton()->buffer_update(mesh->surfaces[p_surface]->attribute_buffer, p_offset, data_size, r);
  439. }
  440. void MeshStorage::mesh_surface_update_skin_region(RID p_mesh, int p_surface, int p_offset, const Vector<uint8_t> &p_data) {
  441. Mesh *mesh = mesh_owner.get_or_null(p_mesh);
  442. ERR_FAIL_COND(!mesh);
  443. ERR_FAIL_UNSIGNED_INDEX((uint32_t)p_surface, mesh->surface_count);
  444. ERR_FAIL_COND(p_data.size() == 0);
  445. ERR_FAIL_COND(mesh->surfaces[p_surface]->skin_buffer.is_null());
  446. uint64_t data_size = p_data.size();
  447. const uint8_t *r = p_data.ptr();
  448. RD::get_singleton()->buffer_update(mesh->surfaces[p_surface]->skin_buffer, p_offset, data_size, r);
  449. }
  450. void MeshStorage::mesh_surface_set_material(RID p_mesh, int p_surface, RID p_material) {
  451. Mesh *mesh = mesh_owner.get_or_null(p_mesh);
  452. ERR_FAIL_COND(!mesh);
  453. ERR_FAIL_UNSIGNED_INDEX((uint32_t)p_surface, mesh->surface_count);
  454. mesh->surfaces[p_surface]->material = p_material;
  455. mesh->dependency.changed_notify(Dependency::DEPENDENCY_CHANGED_MATERIAL);
  456. mesh->material_cache.clear();
  457. }
  458. RID MeshStorage::mesh_surface_get_material(RID p_mesh, int p_surface) const {
  459. Mesh *mesh = mesh_owner.get_or_null(p_mesh);
  460. ERR_FAIL_COND_V(!mesh, RID());
  461. ERR_FAIL_UNSIGNED_INDEX_V((uint32_t)p_surface, mesh->surface_count, RID());
  462. return mesh->surfaces[p_surface]->material;
  463. }
  464. RS::SurfaceData MeshStorage::mesh_get_surface(RID p_mesh, int p_surface) const {
  465. Mesh *mesh = mesh_owner.get_or_null(p_mesh);
  466. ERR_FAIL_COND_V(!mesh, RS::SurfaceData());
  467. ERR_FAIL_UNSIGNED_INDEX_V((uint32_t)p_surface, mesh->surface_count, RS::SurfaceData());
  468. Mesh::Surface &s = *mesh->surfaces[p_surface];
  469. RS::SurfaceData sd;
  470. sd.format = s.format;
  471. if (s.vertex_buffer.is_valid()) {
  472. sd.vertex_data = RD::get_singleton()->buffer_get_data(s.vertex_buffer);
  473. }
  474. if (s.attribute_buffer.is_valid()) {
  475. sd.attribute_data = RD::get_singleton()->buffer_get_data(s.attribute_buffer);
  476. }
  477. if (s.skin_buffer.is_valid()) {
  478. sd.skin_data = RD::get_singleton()->buffer_get_data(s.skin_buffer);
  479. }
  480. sd.vertex_count = s.vertex_count;
  481. sd.index_count = s.index_count;
  482. sd.primitive = s.primitive;
  483. if (sd.index_count) {
  484. sd.index_data = RD::get_singleton()->buffer_get_data(s.index_buffer);
  485. }
  486. sd.aabb = s.aabb;
  487. for (uint32_t i = 0; i < s.lod_count; i++) {
  488. RS::SurfaceData::LOD lod;
  489. lod.edge_length = s.lods[i].edge_length;
  490. lod.index_data = RD::get_singleton()->buffer_get_data(s.lods[i].index_buffer);
  491. sd.lods.push_back(lod);
  492. }
  493. sd.bone_aabbs = s.bone_aabbs;
  494. if (s.blend_shape_buffer.is_valid()) {
  495. sd.blend_shape_data = RD::get_singleton()->buffer_get_data(s.blend_shape_buffer);
  496. }
  497. return sd;
  498. }
  499. int MeshStorage::mesh_get_surface_count(RID p_mesh) const {
  500. Mesh *mesh = mesh_owner.get_or_null(p_mesh);
  501. ERR_FAIL_COND_V(!mesh, 0);
  502. return mesh->surface_count;
  503. }
  504. void MeshStorage::mesh_set_custom_aabb(RID p_mesh, const AABB &p_aabb) {
  505. Mesh *mesh = mesh_owner.get_or_null(p_mesh);
  506. ERR_FAIL_COND(!mesh);
  507. mesh->custom_aabb = p_aabb;
  508. }
  509. AABB MeshStorage::mesh_get_custom_aabb(RID p_mesh) const {
  510. Mesh *mesh = mesh_owner.get_or_null(p_mesh);
  511. ERR_FAIL_COND_V(!mesh, AABB());
  512. return mesh->custom_aabb;
  513. }
  514. AABB MeshStorage::mesh_get_aabb(RID p_mesh, RID p_skeleton) {
  515. Mesh *mesh = mesh_owner.get_or_null(p_mesh);
  516. ERR_FAIL_COND_V(!mesh, AABB());
  517. if (mesh->custom_aabb != AABB()) {
  518. return mesh->custom_aabb;
  519. }
  520. Skeleton *skeleton = skeleton_owner.get_or_null(p_skeleton);
  521. if (!skeleton || skeleton->size == 0) {
  522. return mesh->aabb;
  523. }
  524. AABB aabb;
  525. for (uint32_t i = 0; i < mesh->surface_count; i++) {
  526. AABB laabb;
  527. if ((mesh->surfaces[i]->format & RS::ARRAY_FORMAT_BONES) && mesh->surfaces[i]->bone_aabbs.size()) {
  528. int bs = mesh->surfaces[i]->bone_aabbs.size();
  529. const AABB *skbones = mesh->surfaces[i]->bone_aabbs.ptr();
  530. int sbs = skeleton->size;
  531. ERR_CONTINUE(bs > sbs);
  532. const float *baseptr = skeleton->data.ptr();
  533. bool first = true;
  534. if (skeleton->use_2d) {
  535. for (int j = 0; j < bs; j++) {
  536. if (skbones[0].size == Vector3()) {
  537. continue; //bone is unused
  538. }
  539. const float *dataptr = baseptr + j * 8;
  540. Transform3D mtx;
  541. mtx.basis.rows[0].x = dataptr[0];
  542. mtx.basis.rows[1].x = dataptr[1];
  543. mtx.origin.x = dataptr[3];
  544. mtx.basis.rows[0].y = dataptr[4];
  545. mtx.basis.rows[1].y = dataptr[5];
  546. mtx.origin.y = dataptr[7];
  547. AABB baabb = mtx.xform(skbones[j]);
  548. if (first) {
  549. laabb = baabb;
  550. first = false;
  551. } else {
  552. laabb.merge_with(baabb);
  553. }
  554. }
  555. } else {
  556. for (int j = 0; j < bs; j++) {
  557. if (skbones[0].size == Vector3()) {
  558. continue; //bone is unused
  559. }
  560. const float *dataptr = baseptr + j * 12;
  561. Transform3D mtx;
  562. mtx.basis.rows[0][0] = dataptr[0];
  563. mtx.basis.rows[0][1] = dataptr[1];
  564. mtx.basis.rows[0][2] = dataptr[2];
  565. mtx.origin.x = dataptr[3];
  566. mtx.basis.rows[1][0] = dataptr[4];
  567. mtx.basis.rows[1][1] = dataptr[5];
  568. mtx.basis.rows[1][2] = dataptr[6];
  569. mtx.origin.y = dataptr[7];
  570. mtx.basis.rows[2][0] = dataptr[8];
  571. mtx.basis.rows[2][1] = dataptr[9];
  572. mtx.basis.rows[2][2] = dataptr[10];
  573. mtx.origin.z = dataptr[11];
  574. AABB baabb = mtx.xform(skbones[j]);
  575. if (first) {
  576. laabb = baabb;
  577. first = false;
  578. } else {
  579. laabb.merge_with(baabb);
  580. }
  581. }
  582. }
  583. if (laabb.size == Vector3()) {
  584. laabb = mesh->surfaces[i]->aabb;
  585. }
  586. } else {
  587. laabb = mesh->surfaces[i]->aabb;
  588. }
  589. if (i == 0) {
  590. aabb = laabb;
  591. } else {
  592. aabb.merge_with(laabb);
  593. }
  594. }
  595. return aabb;
  596. }
  597. void MeshStorage::mesh_set_shadow_mesh(RID p_mesh, RID p_shadow_mesh) {
  598. Mesh *mesh = mesh_owner.get_or_null(p_mesh);
  599. ERR_FAIL_COND(!mesh);
  600. Mesh *shadow_mesh = mesh_owner.get_or_null(mesh->shadow_mesh);
  601. if (shadow_mesh) {
  602. shadow_mesh->shadow_owners.erase(mesh);
  603. }
  604. mesh->shadow_mesh = p_shadow_mesh;
  605. shadow_mesh = mesh_owner.get_or_null(mesh->shadow_mesh);
  606. if (shadow_mesh) {
  607. shadow_mesh->shadow_owners.insert(mesh);
  608. }
  609. mesh->dependency.changed_notify(Dependency::DEPENDENCY_CHANGED_MESH);
  610. }
  611. void MeshStorage::mesh_clear(RID p_mesh) {
  612. Mesh *mesh = mesh_owner.get_or_null(p_mesh);
  613. ERR_FAIL_COND(!mesh);
  614. for (uint32_t i = 0; i < mesh->surface_count; i++) {
  615. Mesh::Surface &s = *mesh->surfaces[i];
  616. if (s.vertex_buffer.is_valid()) {
  617. RD::get_singleton()->free(s.vertex_buffer); //clears arrays as dependency automatically, including all versions
  618. }
  619. if (s.attribute_buffer.is_valid()) {
  620. RD::get_singleton()->free(s.attribute_buffer);
  621. }
  622. if (s.skin_buffer.is_valid()) {
  623. RD::get_singleton()->free(s.skin_buffer);
  624. }
  625. if (s.versions) {
  626. memfree(s.versions); //reallocs, so free with memfree.
  627. }
  628. if (s.index_buffer.is_valid()) {
  629. RD::get_singleton()->free(s.index_buffer);
  630. }
  631. if (s.lod_count) {
  632. for (uint32_t j = 0; j < s.lod_count; j++) {
  633. RD::get_singleton()->free(s.lods[j].index_buffer);
  634. }
  635. memdelete_arr(s.lods);
  636. }
  637. if (s.blend_shape_buffer.is_valid()) {
  638. RD::get_singleton()->free(s.blend_shape_buffer);
  639. }
  640. memdelete(mesh->surfaces[i]);
  641. }
  642. if (mesh->surfaces) {
  643. memfree(mesh->surfaces);
  644. }
  645. mesh->surfaces = nullptr;
  646. mesh->surface_count = 0;
  647. mesh->material_cache.clear();
  648. //clear instance data
  649. for (MeshInstance *mi : mesh->instances) {
  650. _mesh_instance_clear(mi);
  651. }
  652. mesh->has_bone_weights = false;
  653. mesh->dependency.changed_notify(Dependency::DEPENDENCY_CHANGED_MESH);
  654. for (Mesh *E : mesh->shadow_owners) {
  655. Mesh *shadow_owner = E;
  656. shadow_owner->shadow_mesh = RID();
  657. shadow_owner->dependency.changed_notify(Dependency::DEPENDENCY_CHANGED_MESH);
  658. }
  659. }
  660. bool MeshStorage::mesh_needs_instance(RID p_mesh, bool p_has_skeleton) {
  661. Mesh *mesh = mesh_owner.get_or_null(p_mesh);
  662. ERR_FAIL_COND_V(!mesh, false);
  663. return mesh->blend_shape_count > 0 || (mesh->has_bone_weights && p_has_skeleton);
  664. }
  665. Dependency *MeshStorage::mesh_get_dependency(RID p_mesh) const {
  666. Mesh *mesh = mesh_owner.get_or_null(p_mesh);
  667. ERR_FAIL_COND_V(!mesh, nullptr);
  668. return &mesh->dependency;
  669. }
  670. /* MESH INSTANCE */
  671. RID MeshStorage::mesh_instance_create(RID p_base) {
  672. Mesh *mesh = mesh_owner.get_or_null(p_base);
  673. ERR_FAIL_COND_V(!mesh, RID());
  674. RID rid = mesh_instance_owner.make_rid();
  675. MeshInstance *mi = mesh_instance_owner.get_or_null(rid);
  676. mi->mesh = mesh;
  677. for (uint32_t i = 0; i < mesh->surface_count; i++) {
  678. _mesh_instance_add_surface(mi, mesh, i);
  679. }
  680. mi->I = mesh->instances.push_back(mi);
  681. mi->dirty = true;
  682. return rid;
  683. }
  684. void MeshStorage::mesh_instance_free(RID p_rid) {
  685. MeshInstance *mi = mesh_instance_owner.get_or_null(p_rid);
  686. _mesh_instance_clear(mi);
  687. mi->mesh->instances.erase(mi->I);
  688. mi->I = nullptr;
  689. mesh_instance_owner.free(p_rid);
  690. }
  691. void MeshStorage::mesh_instance_set_skeleton(RID p_mesh_instance, RID p_skeleton) {
  692. MeshInstance *mi = mesh_instance_owner.get_or_null(p_mesh_instance);
  693. if (mi->skeleton == p_skeleton) {
  694. return;
  695. }
  696. mi->skeleton = p_skeleton;
  697. mi->skeleton_version = 0;
  698. mi->dirty = true;
  699. }
  700. void MeshStorage::mesh_instance_set_blend_shape_weight(RID p_mesh_instance, int p_shape, float p_weight) {
  701. MeshInstance *mi = mesh_instance_owner.get_or_null(p_mesh_instance);
  702. ERR_FAIL_COND(!mi);
  703. ERR_FAIL_INDEX(p_shape, (int)mi->blend_weights.size());
  704. mi->blend_weights[p_shape] = p_weight;
  705. mi->weights_dirty = true;
  706. //will be eventually updated
  707. }
  708. void MeshStorage::_mesh_instance_clear(MeshInstance *mi) {
  709. for (uint32_t i = 0; i < mi->surfaces.size(); i++) {
  710. if (mi->surfaces[i].versions) {
  711. for (uint32_t j = 0; j < mi->surfaces[i].version_count; j++) {
  712. RD::get_singleton()->free(mi->surfaces[i].versions[j].vertex_array);
  713. }
  714. memfree(mi->surfaces[i].versions);
  715. }
  716. if (mi->surfaces[i].vertex_buffer.is_valid()) {
  717. RD::get_singleton()->free(mi->surfaces[i].vertex_buffer);
  718. }
  719. }
  720. mi->surfaces.clear();
  721. if (mi->blend_weights_buffer.is_valid()) {
  722. RD::get_singleton()->free(mi->blend_weights_buffer);
  723. }
  724. mi->blend_weights.clear();
  725. mi->weights_dirty = false;
  726. mi->skeleton_version = 0;
  727. }
  728. void MeshStorage::_mesh_instance_add_surface(MeshInstance *mi, Mesh *mesh, uint32_t p_surface) {
  729. if (mesh->blend_shape_count > 0 && mi->blend_weights_buffer.is_null()) {
  730. mi->blend_weights.resize(mesh->blend_shape_count);
  731. for (uint32_t i = 0; i < mi->blend_weights.size(); i++) {
  732. mi->blend_weights[i] = 0;
  733. }
  734. mi->blend_weights_buffer = RD::get_singleton()->storage_buffer_create(sizeof(float) * mi->blend_weights.size(), mi->blend_weights.to_byte_array());
  735. mi->weights_dirty = true;
  736. }
  737. MeshInstance::Surface s;
  738. if ((mesh->blend_shape_count > 0 || (mesh->surfaces[p_surface]->format & RS::ARRAY_FORMAT_BONES)) && mesh->surfaces[p_surface]->vertex_buffer_size > 0) {
  739. //surface warrants transform
  740. s.vertex_buffer = RD::get_singleton()->vertex_buffer_create(mesh->surfaces[p_surface]->vertex_buffer_size, Vector<uint8_t>(), true);
  741. Vector<RD::Uniform> uniforms;
  742. {
  743. RD::Uniform u;
  744. u.binding = 1;
  745. u.uniform_type = RD::UNIFORM_TYPE_STORAGE_BUFFER;
  746. u.append_id(s.vertex_buffer);
  747. uniforms.push_back(u);
  748. }
  749. {
  750. RD::Uniform u;
  751. u.binding = 2;
  752. u.uniform_type = RD::UNIFORM_TYPE_STORAGE_BUFFER;
  753. if (mi->blend_weights_buffer.is_valid()) {
  754. u.append_id(mi->blend_weights_buffer);
  755. } else {
  756. u.append_id(default_rd_storage_buffer);
  757. }
  758. uniforms.push_back(u);
  759. }
  760. s.uniform_set = RD::get_singleton()->uniform_set_create(uniforms, skeleton_shader.version_shader[0], SkeletonShader::UNIFORM_SET_INSTANCE);
  761. }
  762. mi->surfaces.push_back(s);
  763. mi->dirty = true;
  764. }
  765. void MeshStorage::mesh_instance_check_for_update(RID p_mesh_instance) {
  766. MeshInstance *mi = mesh_instance_owner.get_or_null(p_mesh_instance);
  767. bool needs_update = mi->dirty;
  768. if (mi->weights_dirty && !mi->weight_update_list.in_list()) {
  769. dirty_mesh_instance_weights.add(&mi->weight_update_list);
  770. needs_update = true;
  771. }
  772. if (mi->array_update_list.in_list()) {
  773. return;
  774. }
  775. if (!needs_update && mi->skeleton.is_valid()) {
  776. Skeleton *sk = skeleton_owner.get_or_null(mi->skeleton);
  777. if (sk && sk->version != mi->skeleton_version) {
  778. needs_update = true;
  779. }
  780. }
  781. if (needs_update) {
  782. dirty_mesh_instance_arrays.add(&mi->array_update_list);
  783. }
  784. }
  785. void MeshStorage::update_mesh_instances() {
  786. while (dirty_mesh_instance_weights.first()) {
  787. MeshInstance *mi = dirty_mesh_instance_weights.first()->self();
  788. if (mi->blend_weights_buffer.is_valid()) {
  789. RD::get_singleton()->buffer_update(mi->blend_weights_buffer, 0, mi->blend_weights.size() * sizeof(float), mi->blend_weights.ptr());
  790. }
  791. dirty_mesh_instance_weights.remove(&mi->weight_update_list);
  792. mi->weights_dirty = false;
  793. }
  794. if (dirty_mesh_instance_arrays.first() == nullptr) {
  795. return; //nothing to do
  796. }
  797. //process skeletons and blend shapes
  798. RD::ComputeListID compute_list = RD::get_singleton()->compute_list_begin();
  799. while (dirty_mesh_instance_arrays.first()) {
  800. MeshInstance *mi = dirty_mesh_instance_arrays.first()->self();
  801. Skeleton *sk = skeleton_owner.get_or_null(mi->skeleton);
  802. for (uint32_t i = 0; i < mi->surfaces.size(); i++) {
  803. if (mi->surfaces[i].uniform_set == RID() || mi->mesh->surfaces[i]->uniform_set == RID()) {
  804. continue;
  805. }
  806. bool array_is_2d = mi->mesh->surfaces[i]->format & RS::ARRAY_FLAG_USE_2D_VERTICES;
  807. RD::get_singleton()->compute_list_bind_compute_pipeline(compute_list, skeleton_shader.pipeline[array_is_2d ? SkeletonShader::SHADER_MODE_2D : SkeletonShader::SHADER_MODE_3D]);
  808. RD::get_singleton()->compute_list_bind_uniform_set(compute_list, mi->surfaces[i].uniform_set, SkeletonShader::UNIFORM_SET_INSTANCE);
  809. RD::get_singleton()->compute_list_bind_uniform_set(compute_list, mi->mesh->surfaces[i]->uniform_set, SkeletonShader::UNIFORM_SET_SURFACE);
  810. if (sk && sk->uniform_set_mi.is_valid()) {
  811. RD::get_singleton()->compute_list_bind_uniform_set(compute_list, sk->uniform_set_mi, SkeletonShader::UNIFORM_SET_SKELETON);
  812. } else {
  813. RD::get_singleton()->compute_list_bind_uniform_set(compute_list, skeleton_shader.default_skeleton_uniform_set, SkeletonShader::UNIFORM_SET_SKELETON);
  814. }
  815. SkeletonShader::PushConstant push_constant;
  816. push_constant.has_normal = mi->mesh->surfaces[i]->format & RS::ARRAY_FORMAT_NORMAL;
  817. push_constant.has_tangent = mi->mesh->surfaces[i]->format & RS::ARRAY_FORMAT_TANGENT;
  818. push_constant.has_skeleton = sk != nullptr && sk->use_2d == array_is_2d && (mi->mesh->surfaces[i]->format & RS::ARRAY_FORMAT_BONES);
  819. push_constant.has_blend_shape = mi->mesh->blend_shape_count > 0;
  820. push_constant.vertex_count = mi->mesh->surfaces[i]->vertex_count;
  821. push_constant.vertex_stride = (mi->mesh->surfaces[i]->vertex_buffer_size / mi->mesh->surfaces[i]->vertex_count) / 4;
  822. push_constant.skin_stride = (mi->mesh->surfaces[i]->skin_buffer_size / mi->mesh->surfaces[i]->vertex_count) / 4;
  823. push_constant.skin_weight_offset = (mi->mesh->surfaces[i]->format & RS::ARRAY_FLAG_USE_8_BONE_WEIGHTS) ? 4 : 2;
  824. push_constant.blend_shape_count = mi->mesh->blend_shape_count;
  825. push_constant.normalized_blend_shapes = mi->mesh->blend_shape_mode == RS::BLEND_SHAPE_MODE_NORMALIZED;
  826. push_constant.pad0 = 0;
  827. push_constant.pad1 = 0;
  828. RD::get_singleton()->compute_list_set_push_constant(compute_list, &push_constant, sizeof(SkeletonShader::PushConstant));
  829. //dispatch without barrier, so all is done at the same time
  830. RD::get_singleton()->compute_list_dispatch_threads(compute_list, push_constant.vertex_count, 1, 1);
  831. }
  832. mi->dirty = false;
  833. if (sk) {
  834. mi->skeleton_version = sk->version;
  835. }
  836. dirty_mesh_instance_arrays.remove(&mi->array_update_list);
  837. }
  838. RD::get_singleton()->compute_list_end();
  839. }
  840. void MeshStorage::_mesh_surface_generate_version_for_input_mask(Mesh::Surface::Version &v, Mesh::Surface *s, uint32_t p_input_mask, MeshInstance::Surface *mis) {
  841. Vector<RD::VertexAttribute> attributes;
  842. Vector<RID> buffers;
  843. uint32_t stride = 0;
  844. uint32_t attribute_stride = 0;
  845. uint32_t skin_stride = 0;
  846. for (int i = 0; i < RS::ARRAY_INDEX; i++) {
  847. RD::VertexAttribute vd;
  848. RID buffer;
  849. vd.location = i;
  850. if (!(s->format & (1 << i))) {
  851. // Not supplied by surface, use default value
  852. buffer = mesh_default_rd_buffers[i];
  853. vd.stride = 0;
  854. switch (i) {
  855. case RS::ARRAY_VERTEX: {
  856. vd.format = RD::DATA_FORMAT_R32G32B32_SFLOAT;
  857. } break;
  858. case RS::ARRAY_NORMAL: {
  859. vd.format = RD::DATA_FORMAT_R32G32B32_SFLOAT;
  860. } break;
  861. case RS::ARRAY_TANGENT: {
  862. vd.format = RD::DATA_FORMAT_R32G32B32A32_SFLOAT;
  863. } break;
  864. case RS::ARRAY_COLOR: {
  865. vd.format = RD::DATA_FORMAT_R32G32B32A32_SFLOAT;
  866. } break;
  867. case RS::ARRAY_TEX_UV: {
  868. vd.format = RD::DATA_FORMAT_R32G32_SFLOAT;
  869. } break;
  870. case RS::ARRAY_TEX_UV2: {
  871. vd.format = RD::DATA_FORMAT_R32G32_SFLOAT;
  872. } break;
  873. case RS::ARRAY_CUSTOM0:
  874. case RS::ARRAY_CUSTOM1:
  875. case RS::ARRAY_CUSTOM2:
  876. case RS::ARRAY_CUSTOM3: {
  877. //assumed weights too
  878. vd.format = RD::DATA_FORMAT_R32G32B32A32_SFLOAT;
  879. } break;
  880. case RS::ARRAY_BONES: {
  881. //assumed weights too
  882. vd.format = RD::DATA_FORMAT_R32G32B32A32_UINT;
  883. } break;
  884. case RS::ARRAY_WEIGHTS: {
  885. //assumed weights too
  886. vd.format = RD::DATA_FORMAT_R32G32B32A32_SFLOAT;
  887. } break;
  888. }
  889. } else {
  890. //Supplied, use it
  891. vd.stride = 1; //mark that it needs a stride set (default uses 0)
  892. switch (i) {
  893. case RS::ARRAY_VERTEX: {
  894. vd.offset = stride;
  895. if (s->format & RS::ARRAY_FLAG_USE_2D_VERTICES) {
  896. vd.format = RD::DATA_FORMAT_R32G32_SFLOAT;
  897. stride += sizeof(float) * 2;
  898. } else {
  899. vd.format = RD::DATA_FORMAT_R32G32B32_SFLOAT;
  900. stride += sizeof(float) * 3;
  901. }
  902. if (mis) {
  903. buffer = mis->vertex_buffer;
  904. } else {
  905. buffer = s->vertex_buffer;
  906. }
  907. } break;
  908. case RS::ARRAY_NORMAL: {
  909. vd.offset = stride;
  910. vd.format = RD::DATA_FORMAT_R16G16_UNORM;
  911. stride += sizeof(uint16_t) * 2;
  912. if (mis) {
  913. buffer = mis->vertex_buffer;
  914. } else {
  915. buffer = s->vertex_buffer;
  916. }
  917. } break;
  918. case RS::ARRAY_TANGENT: {
  919. vd.offset = stride;
  920. vd.format = RD::DATA_FORMAT_R16G16_UNORM;
  921. stride += sizeof(uint16_t) * 2;
  922. if (mis) {
  923. buffer = mis->vertex_buffer;
  924. } else {
  925. buffer = s->vertex_buffer;
  926. }
  927. } break;
  928. case RS::ARRAY_COLOR: {
  929. vd.offset = attribute_stride;
  930. vd.format = RD::DATA_FORMAT_R8G8B8A8_UNORM;
  931. attribute_stride += sizeof(int8_t) * 4;
  932. buffer = s->attribute_buffer;
  933. } break;
  934. case RS::ARRAY_TEX_UV: {
  935. vd.offset = attribute_stride;
  936. vd.format = RD::DATA_FORMAT_R32G32_SFLOAT;
  937. attribute_stride += sizeof(float) * 2;
  938. buffer = s->attribute_buffer;
  939. } break;
  940. case RS::ARRAY_TEX_UV2: {
  941. vd.offset = attribute_stride;
  942. vd.format = RD::DATA_FORMAT_R32G32_SFLOAT;
  943. attribute_stride += sizeof(float) * 2;
  944. buffer = s->attribute_buffer;
  945. } break;
  946. case RS::ARRAY_CUSTOM0:
  947. case RS::ARRAY_CUSTOM1:
  948. case RS::ARRAY_CUSTOM2:
  949. case RS::ARRAY_CUSTOM3: {
  950. vd.offset = attribute_stride;
  951. int idx = i - RS::ARRAY_CUSTOM0;
  952. const uint32_t fmt_shift[RS::ARRAY_CUSTOM_COUNT] = { RS::ARRAY_FORMAT_CUSTOM0_SHIFT, RS::ARRAY_FORMAT_CUSTOM1_SHIFT, RS::ARRAY_FORMAT_CUSTOM2_SHIFT, RS::ARRAY_FORMAT_CUSTOM3_SHIFT };
  953. uint32_t fmt = (s->format >> fmt_shift[idx]) & RS::ARRAY_FORMAT_CUSTOM_MASK;
  954. const uint32_t fmtsize[RS::ARRAY_CUSTOM_MAX] = { 4, 4, 4, 8, 4, 8, 12, 16 };
  955. const RD::DataFormat fmtrd[RS::ARRAY_CUSTOM_MAX] = { RD::DATA_FORMAT_R8G8B8A8_UNORM, RD::DATA_FORMAT_R8G8B8A8_SNORM, RD::DATA_FORMAT_R16G16_SFLOAT, RD::DATA_FORMAT_R16G16B16A16_SFLOAT, RD::DATA_FORMAT_R32_SFLOAT, RD::DATA_FORMAT_R32G32_SFLOAT, RD::DATA_FORMAT_R32G32B32_SFLOAT, RD::DATA_FORMAT_R32G32B32A32_SFLOAT };
  956. vd.format = fmtrd[fmt];
  957. attribute_stride += fmtsize[fmt];
  958. buffer = s->attribute_buffer;
  959. } break;
  960. case RS::ARRAY_BONES: {
  961. vd.offset = skin_stride;
  962. vd.format = RD::DATA_FORMAT_R16G16B16A16_UINT;
  963. skin_stride += sizeof(int16_t) * 4;
  964. buffer = s->skin_buffer;
  965. } break;
  966. case RS::ARRAY_WEIGHTS: {
  967. vd.offset = skin_stride;
  968. vd.format = RD::DATA_FORMAT_R16G16B16A16_UNORM;
  969. skin_stride += sizeof(int16_t) * 4;
  970. buffer = s->skin_buffer;
  971. } break;
  972. }
  973. }
  974. if (!(p_input_mask & (1 << i))) {
  975. continue; // Shader does not need this, skip it (but computing stride was important anyway)
  976. }
  977. attributes.push_back(vd);
  978. buffers.push_back(buffer);
  979. }
  980. //update final stride
  981. for (int i = 0; i < attributes.size(); i++) {
  982. if (attributes[i].stride == 0) {
  983. continue; //default location
  984. }
  985. int loc = attributes[i].location;
  986. if (loc < RS::ARRAY_COLOR) {
  987. attributes.write[i].stride = stride;
  988. } else if (loc < RS::ARRAY_BONES) {
  989. attributes.write[i].stride = attribute_stride;
  990. } else {
  991. attributes.write[i].stride = skin_stride;
  992. }
  993. }
  994. v.input_mask = p_input_mask;
  995. v.vertex_format = RD::get_singleton()->vertex_format_create(attributes);
  996. v.vertex_array = RD::get_singleton()->vertex_array_create(s->vertex_count, v.vertex_format, buffers);
  997. }
  998. ////////////////// MULTIMESH
  999. RID MeshStorage::multimesh_allocate() {
  1000. return multimesh_owner.allocate_rid();
  1001. }
  1002. void MeshStorage::multimesh_initialize(RID p_rid) {
  1003. multimesh_owner.initialize_rid(p_rid, MultiMesh());
  1004. }
  1005. void MeshStorage::multimesh_free(RID p_rid) {
  1006. _update_dirty_multimeshes();
  1007. multimesh_allocate_data(p_rid, 0, RS::MULTIMESH_TRANSFORM_2D);
  1008. MultiMesh *multimesh = multimesh_owner.get_or_null(p_rid);
  1009. multimesh->dependency.deleted_notify(p_rid);
  1010. multimesh_owner.free(p_rid);
  1011. }
  1012. void MeshStorage::multimesh_allocate_data(RID p_multimesh, int p_instances, RS::MultimeshTransformFormat p_transform_format, bool p_use_colors, bool p_use_custom_data) {
  1013. MultiMesh *multimesh = multimesh_owner.get_or_null(p_multimesh);
  1014. ERR_FAIL_COND(!multimesh);
  1015. if (multimesh->instances == p_instances && multimesh->xform_format == p_transform_format && multimesh->uses_colors == p_use_colors && multimesh->uses_custom_data == p_use_custom_data) {
  1016. return;
  1017. }
  1018. if (multimesh->buffer.is_valid()) {
  1019. RD::get_singleton()->free(multimesh->buffer);
  1020. multimesh->buffer = RID();
  1021. multimesh->uniform_set_2d = RID(); //cleared by dependency
  1022. multimesh->uniform_set_3d = RID(); //cleared by dependency
  1023. }
  1024. if (multimesh->data_cache_dirty_regions) {
  1025. memdelete_arr(multimesh->data_cache_dirty_regions);
  1026. multimesh->data_cache_dirty_regions = nullptr;
  1027. multimesh->data_cache_dirty_region_count = 0;
  1028. }
  1029. if (multimesh->previous_data_cache_dirty_regions) {
  1030. memdelete_arr(multimesh->previous_data_cache_dirty_regions);
  1031. multimesh->previous_data_cache_dirty_regions = nullptr;
  1032. multimesh->previous_data_cache_dirty_region_count = 0;
  1033. }
  1034. multimesh->instances = p_instances;
  1035. multimesh->xform_format = p_transform_format;
  1036. multimesh->uses_colors = p_use_colors;
  1037. multimesh->color_offset_cache = p_transform_format == RS::MULTIMESH_TRANSFORM_2D ? 8 : 12;
  1038. multimesh->uses_custom_data = p_use_custom_data;
  1039. multimesh->custom_data_offset_cache = multimesh->color_offset_cache + (p_use_colors ? 4 : 0);
  1040. multimesh->stride_cache = multimesh->custom_data_offset_cache + (p_use_custom_data ? 4 : 0);
  1041. multimesh->buffer_set = false;
  1042. //print_line("allocate, elements: " + itos(p_instances) + " 2D: " + itos(p_transform_format == RS::MULTIMESH_TRANSFORM_2D) + " colors " + itos(multimesh->uses_colors) + " data " + itos(multimesh->uses_custom_data) + " stride " + itos(multimesh->stride_cache) + " total size " + itos(multimesh->stride_cache * multimesh->instances));
  1043. multimesh->data_cache = Vector<float>();
  1044. multimesh->aabb = AABB();
  1045. multimesh->aabb_dirty = false;
  1046. multimesh->visible_instances = MIN(multimesh->visible_instances, multimesh->instances);
  1047. multimesh->motion_vectors_current_offset = 0;
  1048. multimesh->motion_vectors_previous_offset = 0;
  1049. multimesh->motion_vectors_last_change = -1;
  1050. if (multimesh->instances) {
  1051. uint32_t buffer_size = multimesh->instances * multimesh->stride_cache * sizeof(float);
  1052. if (multimesh->motion_vectors_enabled) {
  1053. buffer_size *= 2;
  1054. }
  1055. multimesh->buffer = RD::get_singleton()->storage_buffer_create(buffer_size);
  1056. }
  1057. multimesh->dependency.changed_notify(Dependency::DEPENDENCY_CHANGED_MULTIMESH);
  1058. }
  1059. bool MeshStorage::_multimesh_enable_motion_vectors(RID p_multimesh) {
  1060. MultiMesh *multimesh = multimesh_owner.get_or_null(p_multimesh);
  1061. ERR_FAIL_COND_V(!multimesh, false);
  1062. if (multimesh->motion_vectors_enabled) {
  1063. return false;
  1064. }
  1065. multimesh->motion_vectors_enabled = true;
  1066. multimesh->motion_vectors_current_offset = 0;
  1067. multimesh->motion_vectors_previous_offset = 0;
  1068. multimesh->motion_vectors_last_change = -1;
  1069. if (!multimesh->data_cache.is_empty()) {
  1070. multimesh->data_cache.append_array(multimesh->data_cache);
  1071. }
  1072. if (multimesh->buffer_set) {
  1073. RD::get_singleton()->barrier();
  1074. Vector<uint8_t> buffer_data = RD::get_singleton()->buffer_get_data(multimesh->buffer);
  1075. if (!multimesh->data_cache.is_empty()) {
  1076. memcpy(buffer_data.ptrw(), multimesh->data_cache.ptr(), buffer_data.size());
  1077. }
  1078. RD::get_singleton()->free(multimesh->buffer);
  1079. uint32_t buffer_size = multimesh->instances * multimesh->stride_cache * sizeof(float) * 2;
  1080. multimesh->buffer = RD::get_singleton()->storage_buffer_create(buffer_size);
  1081. RD::get_singleton()->buffer_update(multimesh->buffer, 0, buffer_data.size(), buffer_data.ptr(), RD::BARRIER_MASK_NO_BARRIER);
  1082. RD::get_singleton()->buffer_update(multimesh->buffer, buffer_data.size(), buffer_data.size(), buffer_data.ptr());
  1083. multimesh->uniform_set_3d = RID(); // Cleared by dependency
  1084. return true;
  1085. }
  1086. return false; // Update the transforms uniform set cache
  1087. }
  1088. void MeshStorage::_multimesh_get_motion_vectors_offsets(RID p_multimesh, uint32_t &r_current_offset, uint32_t &r_prev_offset) {
  1089. MultiMesh *multimesh = multimesh_owner.get_or_null(p_multimesh);
  1090. ERR_FAIL_COND(!multimesh);
  1091. r_current_offset = multimesh->motion_vectors_current_offset;
  1092. if (RSG::rasterizer->get_frame_number() - multimesh->motion_vectors_last_change >= 2) {
  1093. multimesh->motion_vectors_previous_offset = multimesh->motion_vectors_current_offset;
  1094. }
  1095. r_prev_offset = multimesh->motion_vectors_previous_offset;
  1096. }
  1097. int MeshStorage::multimesh_get_instance_count(RID p_multimesh) const {
  1098. MultiMesh *multimesh = multimesh_owner.get_or_null(p_multimesh);
  1099. ERR_FAIL_COND_V(!multimesh, 0);
  1100. return multimesh->instances;
  1101. }
  1102. void MeshStorage::multimesh_set_mesh(RID p_multimesh, RID p_mesh) {
  1103. MultiMesh *multimesh = multimesh_owner.get_or_null(p_multimesh);
  1104. ERR_FAIL_COND(!multimesh);
  1105. if (multimesh->mesh == p_mesh) {
  1106. return;
  1107. }
  1108. multimesh->mesh = p_mesh;
  1109. if (multimesh->instances == 0) {
  1110. return;
  1111. }
  1112. if (multimesh->data_cache.size()) {
  1113. //we have a data cache, just mark it dirt
  1114. _multimesh_mark_all_dirty(multimesh, false, true);
  1115. } else if (multimesh->instances) {
  1116. //need to re-create AABB unfortunately, calling this has a penalty
  1117. if (multimesh->buffer_set) {
  1118. Vector<uint8_t> buffer = RD::get_singleton()->buffer_get_data(multimesh->buffer);
  1119. const uint8_t *r = buffer.ptr() + multimesh->motion_vectors_current_offset * multimesh->stride_cache * sizeof(float);
  1120. const float *data = reinterpret_cast<const float *>(r);
  1121. _multimesh_re_create_aabb(multimesh, data, multimesh->instances);
  1122. }
  1123. }
  1124. multimesh->dependency.changed_notify(Dependency::DEPENDENCY_CHANGED_MESH);
  1125. }
  1126. #define MULTIMESH_DIRTY_REGION_SIZE 512
  1127. void MeshStorage::_multimesh_make_local(MultiMesh *multimesh) const {
  1128. if (multimesh->data_cache.size() > 0) {
  1129. return; //already local
  1130. }
  1131. // this means that the user wants to load/save individual elements,
  1132. // for this, the data must reside on CPU, so just copy it there.
  1133. uint32_t buffer_size = multimesh->instances * multimesh->stride_cache;
  1134. if (multimesh->motion_vectors_enabled) {
  1135. buffer_size *= 2;
  1136. }
  1137. multimesh->data_cache.resize(buffer_size);
  1138. {
  1139. float *w = multimesh->data_cache.ptrw();
  1140. if (multimesh->buffer_set) {
  1141. Vector<uint8_t> buffer = RD::get_singleton()->buffer_get_data(multimesh->buffer);
  1142. {
  1143. const uint8_t *r = buffer.ptr();
  1144. memcpy(w, r, buffer.size());
  1145. }
  1146. } else {
  1147. memset(w, 0, buffer_size * sizeof(float));
  1148. }
  1149. }
  1150. uint32_t data_cache_dirty_region_count = (multimesh->instances - 1) / MULTIMESH_DIRTY_REGION_SIZE + 1;
  1151. multimesh->data_cache_dirty_regions = memnew_arr(bool, data_cache_dirty_region_count);
  1152. memset(multimesh->data_cache_dirty_regions, 0, data_cache_dirty_region_count * sizeof(bool));
  1153. multimesh->data_cache_dirty_region_count = 0;
  1154. multimesh->previous_data_cache_dirty_regions = memnew_arr(bool, data_cache_dirty_region_count);
  1155. memset(multimesh->previous_data_cache_dirty_regions, 0, data_cache_dirty_region_count * sizeof(bool));
  1156. multimesh->previous_data_cache_dirty_region_count = 0;
  1157. }
  1158. void MeshStorage::_multimesh_update_motion_vectors_data_cache(MultiMesh *multimesh) {
  1159. ERR_FAIL_COND(multimesh->data_cache.is_empty());
  1160. if (!multimesh->motion_vectors_enabled) {
  1161. return;
  1162. }
  1163. uint32_t frame = RSG::rasterizer->get_frame_number();
  1164. if (multimesh->motion_vectors_last_change != frame) {
  1165. multimesh->motion_vectors_previous_offset = multimesh->motion_vectors_current_offset;
  1166. multimesh->motion_vectors_current_offset = multimesh->instances - multimesh->motion_vectors_current_offset;
  1167. multimesh->motion_vectors_last_change = frame;
  1168. if (multimesh->previous_data_cache_dirty_region_count > 0) {
  1169. uint8_t *data = (uint8_t *)multimesh->data_cache.ptrw();
  1170. uint32_t current_ofs = multimesh->motion_vectors_current_offset * multimesh->stride_cache * sizeof(float);
  1171. uint32_t previous_ofs = multimesh->motion_vectors_previous_offset * multimesh->stride_cache * sizeof(float);
  1172. uint32_t visible_instances = multimesh->visible_instances >= 0 ? multimesh->visible_instances : multimesh->instances;
  1173. uint32_t visible_region_count = visible_instances == 0 ? 0 : (visible_instances - 1) / MULTIMESH_DIRTY_REGION_SIZE + 1;
  1174. uint32_t region_size = multimesh->stride_cache * MULTIMESH_DIRTY_REGION_SIZE * sizeof(float);
  1175. uint32_t size = multimesh->stride_cache * (uint32_t)multimesh->instances * (uint32_t)sizeof(float);
  1176. for (uint32_t i = 0; i < visible_region_count; i++) {
  1177. if (multimesh->previous_data_cache_dirty_regions[i]) {
  1178. uint32_t offset = i * region_size;
  1179. memcpy(data + current_ofs + offset, data + previous_ofs + offset, MIN(region_size, size - offset));
  1180. }
  1181. }
  1182. }
  1183. }
  1184. }
  1185. void MeshStorage::_multimesh_mark_dirty(MultiMesh *multimesh, int p_index, bool p_aabb) {
  1186. uint32_t region_index = p_index / MULTIMESH_DIRTY_REGION_SIZE;
  1187. #ifdef DEBUG_ENABLED
  1188. uint32_t data_cache_dirty_region_count = (multimesh->instances - 1) / MULTIMESH_DIRTY_REGION_SIZE + 1;
  1189. ERR_FAIL_UNSIGNED_INDEX(region_index, data_cache_dirty_region_count); //bug
  1190. #endif
  1191. if (!multimesh->data_cache_dirty_regions[region_index]) {
  1192. multimesh->data_cache_dirty_regions[region_index] = true;
  1193. multimesh->data_cache_dirty_region_count++;
  1194. }
  1195. if (p_aabb) {
  1196. multimesh->aabb_dirty = true;
  1197. }
  1198. if (!multimesh->dirty) {
  1199. multimesh->dirty_list = multimesh_dirty_list;
  1200. multimesh_dirty_list = multimesh;
  1201. multimesh->dirty = true;
  1202. }
  1203. }
  1204. void MeshStorage::_multimesh_mark_all_dirty(MultiMesh *multimesh, bool p_data, bool p_aabb) {
  1205. if (p_data) {
  1206. uint32_t data_cache_dirty_region_count = (multimesh->instances - 1) / MULTIMESH_DIRTY_REGION_SIZE + 1;
  1207. for (uint32_t i = 0; i < data_cache_dirty_region_count; i++) {
  1208. if (!multimesh->data_cache_dirty_regions[i]) {
  1209. multimesh->data_cache_dirty_regions[i] = true;
  1210. multimesh->data_cache_dirty_region_count++;
  1211. }
  1212. }
  1213. }
  1214. if (p_aabb) {
  1215. multimesh->aabb_dirty = true;
  1216. }
  1217. if (!multimesh->dirty) {
  1218. multimesh->dirty_list = multimesh_dirty_list;
  1219. multimesh_dirty_list = multimesh;
  1220. multimesh->dirty = true;
  1221. }
  1222. }
  1223. void MeshStorage::_multimesh_re_create_aabb(MultiMesh *multimesh, const float *p_data, int p_instances) {
  1224. ERR_FAIL_COND(multimesh->mesh.is_null());
  1225. AABB aabb;
  1226. AABB mesh_aabb = mesh_get_aabb(multimesh->mesh);
  1227. for (int i = 0; i < p_instances; i++) {
  1228. const float *data = p_data + multimesh->stride_cache * i;
  1229. Transform3D t;
  1230. if (multimesh->xform_format == RS::MULTIMESH_TRANSFORM_3D) {
  1231. t.basis.rows[0][0] = data[0];
  1232. t.basis.rows[0][1] = data[1];
  1233. t.basis.rows[0][2] = data[2];
  1234. t.origin.x = data[3];
  1235. t.basis.rows[1][0] = data[4];
  1236. t.basis.rows[1][1] = data[5];
  1237. t.basis.rows[1][2] = data[6];
  1238. t.origin.y = data[7];
  1239. t.basis.rows[2][0] = data[8];
  1240. t.basis.rows[2][1] = data[9];
  1241. t.basis.rows[2][2] = data[10];
  1242. t.origin.z = data[11];
  1243. } else {
  1244. t.basis.rows[0].x = data[0];
  1245. t.basis.rows[1].x = data[1];
  1246. t.origin.x = data[3];
  1247. t.basis.rows[0].y = data[4];
  1248. t.basis.rows[1].y = data[5];
  1249. t.origin.y = data[7];
  1250. }
  1251. if (i == 0) {
  1252. aabb = t.xform(mesh_aabb);
  1253. } else {
  1254. aabb.merge_with(t.xform(mesh_aabb));
  1255. }
  1256. }
  1257. multimesh->aabb = aabb;
  1258. }
  1259. void MeshStorage::multimesh_instance_set_transform(RID p_multimesh, int p_index, const Transform3D &p_transform) {
  1260. MultiMesh *multimesh = multimesh_owner.get_or_null(p_multimesh);
  1261. ERR_FAIL_COND(!multimesh);
  1262. ERR_FAIL_INDEX(p_index, multimesh->instances);
  1263. ERR_FAIL_COND(multimesh->xform_format != RS::MULTIMESH_TRANSFORM_3D);
  1264. _multimesh_make_local(multimesh);
  1265. _multimesh_update_motion_vectors_data_cache(multimesh);
  1266. {
  1267. float *w = multimesh->data_cache.ptrw();
  1268. float *dataptr = w + (multimesh->motion_vectors_current_offset + p_index) * multimesh->stride_cache;
  1269. dataptr[0] = p_transform.basis.rows[0][0];
  1270. dataptr[1] = p_transform.basis.rows[0][1];
  1271. dataptr[2] = p_transform.basis.rows[0][2];
  1272. dataptr[3] = p_transform.origin.x;
  1273. dataptr[4] = p_transform.basis.rows[1][0];
  1274. dataptr[5] = p_transform.basis.rows[1][1];
  1275. dataptr[6] = p_transform.basis.rows[1][2];
  1276. dataptr[7] = p_transform.origin.y;
  1277. dataptr[8] = p_transform.basis.rows[2][0];
  1278. dataptr[9] = p_transform.basis.rows[2][1];
  1279. dataptr[10] = p_transform.basis.rows[2][2];
  1280. dataptr[11] = p_transform.origin.z;
  1281. }
  1282. _multimesh_mark_dirty(multimesh, p_index, true);
  1283. }
  1284. void MeshStorage::multimesh_instance_set_transform_2d(RID p_multimesh, int p_index, const Transform2D &p_transform) {
  1285. MultiMesh *multimesh = multimesh_owner.get_or_null(p_multimesh);
  1286. ERR_FAIL_COND(!multimesh);
  1287. ERR_FAIL_INDEX(p_index, multimesh->instances);
  1288. ERR_FAIL_COND(multimesh->xform_format != RS::MULTIMESH_TRANSFORM_2D);
  1289. _multimesh_make_local(multimesh);
  1290. _multimesh_update_motion_vectors_data_cache(multimesh);
  1291. {
  1292. float *w = multimesh->data_cache.ptrw();
  1293. float *dataptr = w + (multimesh->motion_vectors_current_offset + p_index) * multimesh->stride_cache;
  1294. dataptr[0] = p_transform.columns[0][0];
  1295. dataptr[1] = p_transform.columns[1][0];
  1296. dataptr[2] = 0;
  1297. dataptr[3] = p_transform.columns[2][0];
  1298. dataptr[4] = p_transform.columns[0][1];
  1299. dataptr[5] = p_transform.columns[1][1];
  1300. dataptr[6] = 0;
  1301. dataptr[7] = p_transform.columns[2][1];
  1302. }
  1303. _multimesh_mark_dirty(multimesh, p_index, true);
  1304. }
  1305. void MeshStorage::multimesh_instance_set_color(RID p_multimesh, int p_index, const Color &p_color) {
  1306. MultiMesh *multimesh = multimesh_owner.get_or_null(p_multimesh);
  1307. ERR_FAIL_COND(!multimesh);
  1308. ERR_FAIL_INDEX(p_index, multimesh->instances);
  1309. ERR_FAIL_COND(!multimesh->uses_colors);
  1310. _multimesh_make_local(multimesh);
  1311. _multimesh_update_motion_vectors_data_cache(multimesh);
  1312. {
  1313. float *w = multimesh->data_cache.ptrw();
  1314. float *dataptr = w + (multimesh->motion_vectors_current_offset + p_index) * multimesh->stride_cache + multimesh->color_offset_cache;
  1315. dataptr[0] = p_color.r;
  1316. dataptr[1] = p_color.g;
  1317. dataptr[2] = p_color.b;
  1318. dataptr[3] = p_color.a;
  1319. }
  1320. _multimesh_mark_dirty(multimesh, p_index, false);
  1321. }
  1322. void MeshStorage::multimesh_instance_set_custom_data(RID p_multimesh, int p_index, const Color &p_color) {
  1323. MultiMesh *multimesh = multimesh_owner.get_or_null(p_multimesh);
  1324. ERR_FAIL_COND(!multimesh);
  1325. ERR_FAIL_INDEX(p_index, multimesh->instances);
  1326. ERR_FAIL_COND(!multimesh->uses_custom_data);
  1327. _multimesh_make_local(multimesh);
  1328. _multimesh_update_motion_vectors_data_cache(multimesh);
  1329. {
  1330. float *w = multimesh->data_cache.ptrw();
  1331. float *dataptr = w + (multimesh->motion_vectors_current_offset + p_index) * multimesh->stride_cache + multimesh->custom_data_offset_cache;
  1332. dataptr[0] = p_color.r;
  1333. dataptr[1] = p_color.g;
  1334. dataptr[2] = p_color.b;
  1335. dataptr[3] = p_color.a;
  1336. }
  1337. _multimesh_mark_dirty(multimesh, p_index, false);
  1338. }
  1339. RID MeshStorage::multimesh_get_mesh(RID p_multimesh) const {
  1340. MultiMesh *multimesh = multimesh_owner.get_or_null(p_multimesh);
  1341. ERR_FAIL_COND_V(!multimesh, RID());
  1342. return multimesh->mesh;
  1343. }
  1344. Dependency *MeshStorage::multimesh_get_dependency(RID p_multimesh) const {
  1345. MultiMesh *multimesh = multimesh_owner.get_or_null(p_multimesh);
  1346. ERR_FAIL_COND_V(!multimesh, nullptr);
  1347. return &multimesh->dependency;
  1348. }
  1349. Transform3D MeshStorage::multimesh_instance_get_transform(RID p_multimesh, int p_index) const {
  1350. MultiMesh *multimesh = multimesh_owner.get_or_null(p_multimesh);
  1351. ERR_FAIL_COND_V(!multimesh, Transform3D());
  1352. ERR_FAIL_INDEX_V(p_index, multimesh->instances, Transform3D());
  1353. ERR_FAIL_COND_V(multimesh->xform_format != RS::MULTIMESH_TRANSFORM_3D, Transform3D());
  1354. _multimesh_make_local(multimesh);
  1355. Transform3D t;
  1356. {
  1357. const float *r = multimesh->data_cache.ptr();
  1358. const float *dataptr = r + (multimesh->motion_vectors_current_offset + p_index) * multimesh->stride_cache;
  1359. t.basis.rows[0][0] = dataptr[0];
  1360. t.basis.rows[0][1] = dataptr[1];
  1361. t.basis.rows[0][2] = dataptr[2];
  1362. t.origin.x = dataptr[3];
  1363. t.basis.rows[1][0] = dataptr[4];
  1364. t.basis.rows[1][1] = dataptr[5];
  1365. t.basis.rows[1][2] = dataptr[6];
  1366. t.origin.y = dataptr[7];
  1367. t.basis.rows[2][0] = dataptr[8];
  1368. t.basis.rows[2][1] = dataptr[9];
  1369. t.basis.rows[2][2] = dataptr[10];
  1370. t.origin.z = dataptr[11];
  1371. }
  1372. return t;
  1373. }
  1374. Transform2D MeshStorage::multimesh_instance_get_transform_2d(RID p_multimesh, int p_index) const {
  1375. MultiMesh *multimesh = multimesh_owner.get_or_null(p_multimesh);
  1376. ERR_FAIL_COND_V(!multimesh, Transform2D());
  1377. ERR_FAIL_INDEX_V(p_index, multimesh->instances, Transform2D());
  1378. ERR_FAIL_COND_V(multimesh->xform_format != RS::MULTIMESH_TRANSFORM_2D, Transform2D());
  1379. _multimesh_make_local(multimesh);
  1380. Transform2D t;
  1381. {
  1382. const float *r = multimesh->data_cache.ptr();
  1383. const float *dataptr = r + (multimesh->motion_vectors_current_offset + p_index) * multimesh->stride_cache;
  1384. t.columns[0][0] = dataptr[0];
  1385. t.columns[1][0] = dataptr[1];
  1386. t.columns[2][0] = dataptr[3];
  1387. t.columns[0][1] = dataptr[4];
  1388. t.columns[1][1] = dataptr[5];
  1389. t.columns[2][1] = dataptr[7];
  1390. }
  1391. return t;
  1392. }
  1393. Color MeshStorage::multimesh_instance_get_color(RID p_multimesh, int p_index) const {
  1394. MultiMesh *multimesh = multimesh_owner.get_or_null(p_multimesh);
  1395. ERR_FAIL_COND_V(!multimesh, Color());
  1396. ERR_FAIL_INDEX_V(p_index, multimesh->instances, Color());
  1397. ERR_FAIL_COND_V(!multimesh->uses_colors, Color());
  1398. _multimesh_make_local(multimesh);
  1399. Color c;
  1400. {
  1401. const float *r = multimesh->data_cache.ptr();
  1402. const float *dataptr = r + (multimesh->motion_vectors_current_offset + p_index) * multimesh->stride_cache + multimesh->color_offset_cache;
  1403. c.r = dataptr[0];
  1404. c.g = dataptr[1];
  1405. c.b = dataptr[2];
  1406. c.a = dataptr[3];
  1407. }
  1408. return c;
  1409. }
  1410. Color MeshStorage::multimesh_instance_get_custom_data(RID p_multimesh, int p_index) const {
  1411. MultiMesh *multimesh = multimesh_owner.get_or_null(p_multimesh);
  1412. ERR_FAIL_COND_V(!multimesh, Color());
  1413. ERR_FAIL_INDEX_V(p_index, multimesh->instances, Color());
  1414. ERR_FAIL_COND_V(!multimesh->uses_custom_data, Color());
  1415. _multimesh_make_local(multimesh);
  1416. Color c;
  1417. {
  1418. const float *r = multimesh->data_cache.ptr();
  1419. const float *dataptr = r + (multimesh->motion_vectors_current_offset + p_index) * multimesh->stride_cache + multimesh->custom_data_offset_cache;
  1420. c.r = dataptr[0];
  1421. c.g = dataptr[1];
  1422. c.b = dataptr[2];
  1423. c.a = dataptr[3];
  1424. }
  1425. return c;
  1426. }
  1427. void MeshStorage::multimesh_set_buffer(RID p_multimesh, const Vector<float> &p_buffer) {
  1428. MultiMesh *multimesh = multimesh_owner.get_or_null(p_multimesh);
  1429. ERR_FAIL_COND(!multimesh);
  1430. ERR_FAIL_COND(p_buffer.size() != (multimesh->instances * (int)multimesh->stride_cache));
  1431. if (multimesh->motion_vectors_enabled) {
  1432. uint32_t frame = RSG::rasterizer->get_frame_number();
  1433. if (multimesh->motion_vectors_last_change != frame) {
  1434. multimesh->motion_vectors_previous_offset = multimesh->motion_vectors_current_offset;
  1435. multimesh->motion_vectors_current_offset = multimesh->instances - multimesh->motion_vectors_current_offset;
  1436. multimesh->motion_vectors_last_change = frame;
  1437. }
  1438. }
  1439. {
  1440. const float *r = p_buffer.ptr();
  1441. RD::get_singleton()->buffer_update(multimesh->buffer, multimesh->motion_vectors_current_offset * multimesh->stride_cache * sizeof(float), p_buffer.size() * sizeof(float), r);
  1442. multimesh->buffer_set = true;
  1443. }
  1444. if (multimesh->data_cache.size()) {
  1445. float *cache_data = multimesh->data_cache.ptrw();
  1446. memcpy(cache_data + (multimesh->motion_vectors_current_offset * multimesh->stride_cache), p_buffer.ptr(), p_buffer.size() * sizeof(float));
  1447. _multimesh_mark_all_dirty(multimesh, true, true); //update AABB
  1448. } else if (multimesh->mesh.is_valid()) {
  1449. //if we have a mesh set, we need to re-generate the AABB from the new data
  1450. const float *data = p_buffer.ptr();
  1451. _multimesh_re_create_aabb(multimesh, data, multimesh->instances);
  1452. multimesh->dependency.changed_notify(Dependency::DEPENDENCY_CHANGED_AABB);
  1453. }
  1454. }
  1455. Vector<float> MeshStorage::multimesh_get_buffer(RID p_multimesh) const {
  1456. MultiMesh *multimesh = multimesh_owner.get_or_null(p_multimesh);
  1457. ERR_FAIL_COND_V(!multimesh, Vector<float>());
  1458. if (multimesh->buffer.is_null()) {
  1459. return Vector<float>();
  1460. } else {
  1461. Vector<float> ret;
  1462. ret.resize(multimesh->instances * multimesh->stride_cache);
  1463. float *w = ret.ptrw();
  1464. if (multimesh->data_cache.size()) {
  1465. const uint8_t *r = (uint8_t *)multimesh->data_cache.ptr() + multimesh->motion_vectors_current_offset * multimesh->stride_cache * sizeof(float);
  1466. memcpy(w, r, ret.size() * sizeof(float));
  1467. } else {
  1468. Vector<uint8_t> buffer = RD::get_singleton()->buffer_get_data(multimesh->buffer);
  1469. const uint8_t *r = buffer.ptr() + multimesh->motion_vectors_current_offset * multimesh->stride_cache * sizeof(float);
  1470. memcpy(w, r, ret.size() * sizeof(float));
  1471. }
  1472. return ret;
  1473. }
  1474. }
  1475. void MeshStorage::multimesh_set_visible_instances(RID p_multimesh, int p_visible) {
  1476. MultiMesh *multimesh = multimesh_owner.get_or_null(p_multimesh);
  1477. ERR_FAIL_COND(!multimesh);
  1478. ERR_FAIL_COND(p_visible < -1 || p_visible > multimesh->instances);
  1479. if (multimesh->visible_instances == p_visible) {
  1480. return;
  1481. }
  1482. if (multimesh->data_cache.size()) {
  1483. //there is a data cache..
  1484. _multimesh_mark_all_dirty(multimesh, false, true);
  1485. }
  1486. multimesh->visible_instances = p_visible;
  1487. multimesh->dependency.changed_notify(Dependency::DEPENDENCY_CHANGED_MULTIMESH_VISIBLE_INSTANCES);
  1488. }
  1489. int MeshStorage::multimesh_get_visible_instances(RID p_multimesh) const {
  1490. MultiMesh *multimesh = multimesh_owner.get_or_null(p_multimesh);
  1491. ERR_FAIL_COND_V(!multimesh, 0);
  1492. return multimesh->visible_instances;
  1493. }
  1494. AABB MeshStorage::multimesh_get_aabb(RID p_multimesh) const {
  1495. MultiMesh *multimesh = multimesh_owner.get_or_null(p_multimesh);
  1496. ERR_FAIL_COND_V(!multimesh, AABB());
  1497. if (multimesh->aabb_dirty) {
  1498. const_cast<MeshStorage *>(this)->_update_dirty_multimeshes();
  1499. }
  1500. return multimesh->aabb;
  1501. }
  1502. void MeshStorage::_update_dirty_multimeshes() {
  1503. while (multimesh_dirty_list) {
  1504. MultiMesh *multimesh = multimesh_dirty_list;
  1505. if (multimesh->data_cache.size()) { //may have been cleared, so only process if it exists
  1506. uint32_t visible_instances = multimesh->visible_instances >= 0 ? multimesh->visible_instances : multimesh->instances;
  1507. uint32_t buffer_offset = multimesh->motion_vectors_current_offset * multimesh->stride_cache;
  1508. const float *data = multimesh->data_cache.ptr() + buffer_offset;
  1509. uint32_t total_dirty_regions = multimesh->data_cache_dirty_region_count + multimesh->previous_data_cache_dirty_region_count;
  1510. if (total_dirty_regions != 0) {
  1511. uint32_t data_cache_dirty_region_count = (multimesh->instances - 1) / MULTIMESH_DIRTY_REGION_SIZE + 1;
  1512. uint32_t visible_region_count = visible_instances == 0 ? 0 : (visible_instances - 1) / MULTIMESH_DIRTY_REGION_SIZE + 1;
  1513. uint32_t region_size = multimesh->stride_cache * MULTIMESH_DIRTY_REGION_SIZE * sizeof(float);
  1514. if (total_dirty_regions > 32 || total_dirty_regions > visible_region_count / 2) {
  1515. //if there too many dirty regions, or represent the majority of regions, just copy all, else transfer cost piles up too much
  1516. RD::get_singleton()->buffer_update(multimesh->buffer, buffer_offset * sizeof(float), MIN(visible_region_count * region_size, multimesh->instances * (uint32_t)multimesh->stride_cache * (uint32_t)sizeof(float)), data);
  1517. } else {
  1518. //not that many regions? update them all
  1519. for (uint32_t i = 0; i < visible_region_count; i++) {
  1520. if (multimesh->data_cache_dirty_regions[i] || multimesh->previous_data_cache_dirty_regions[i]) {
  1521. uint32_t offset = i * region_size;
  1522. uint32_t size = multimesh->stride_cache * (uint32_t)multimesh->instances * (uint32_t)sizeof(float);
  1523. uint32_t region_start_index = multimesh->stride_cache * MULTIMESH_DIRTY_REGION_SIZE * i;
  1524. RD::get_singleton()->buffer_update(multimesh->buffer, buffer_offset * sizeof(float) + offset, MIN(region_size, size - offset), &data[region_start_index], RD::BARRIER_MASK_NO_BARRIER);
  1525. }
  1526. }
  1527. RD::get_singleton()->barrier(RD::BARRIER_MASK_NO_BARRIER, RD::BARRIER_MASK_ALL);
  1528. }
  1529. memcpy(multimesh->previous_data_cache_dirty_regions, multimesh->data_cache_dirty_regions, data_cache_dirty_region_count * sizeof(bool));
  1530. memset(multimesh->data_cache_dirty_regions, 0, data_cache_dirty_region_count * sizeof(bool));
  1531. multimesh->previous_data_cache_dirty_region_count = multimesh->data_cache_dirty_region_count;
  1532. multimesh->data_cache_dirty_region_count = 0;
  1533. }
  1534. if (multimesh->aabb_dirty) {
  1535. //aabb is dirty..
  1536. _multimesh_re_create_aabb(multimesh, data, visible_instances);
  1537. multimesh->aabb_dirty = false;
  1538. multimesh->dependency.changed_notify(Dependency::DEPENDENCY_CHANGED_AABB);
  1539. }
  1540. }
  1541. multimesh_dirty_list = multimesh->dirty_list;
  1542. multimesh->dirty_list = nullptr;
  1543. multimesh->dirty = false;
  1544. }
  1545. multimesh_dirty_list = nullptr;
  1546. }
  1547. /* SKELETON API */
  1548. RID MeshStorage::skeleton_allocate() {
  1549. return skeleton_owner.allocate_rid();
  1550. }
  1551. void MeshStorage::skeleton_initialize(RID p_rid) {
  1552. skeleton_owner.initialize_rid(p_rid, Skeleton());
  1553. }
  1554. void MeshStorage::skeleton_free(RID p_rid) {
  1555. _update_dirty_skeletons();
  1556. skeleton_allocate_data(p_rid, 0);
  1557. Skeleton *skeleton = skeleton_owner.get_or_null(p_rid);
  1558. skeleton->dependency.deleted_notify(p_rid);
  1559. skeleton_owner.free(p_rid);
  1560. }
  1561. void MeshStorage::_skeleton_make_dirty(Skeleton *skeleton) {
  1562. if (!skeleton->dirty) {
  1563. skeleton->dirty = true;
  1564. skeleton->dirty_list = skeleton_dirty_list;
  1565. skeleton_dirty_list = skeleton;
  1566. }
  1567. }
  1568. void MeshStorage::skeleton_allocate_data(RID p_skeleton, int p_bones, bool p_2d_skeleton) {
  1569. Skeleton *skeleton = skeleton_owner.get_or_null(p_skeleton);
  1570. ERR_FAIL_COND(!skeleton);
  1571. ERR_FAIL_COND(p_bones < 0);
  1572. if (skeleton->size == p_bones && skeleton->use_2d == p_2d_skeleton) {
  1573. return;
  1574. }
  1575. skeleton->size = p_bones;
  1576. skeleton->use_2d = p_2d_skeleton;
  1577. skeleton->uniform_set_3d = RID();
  1578. if (skeleton->buffer.is_valid()) {
  1579. RD::get_singleton()->free(skeleton->buffer);
  1580. skeleton->buffer = RID();
  1581. skeleton->data.clear();
  1582. skeleton->uniform_set_mi = RID();
  1583. }
  1584. if (skeleton->size) {
  1585. skeleton->data.resize(skeleton->size * (skeleton->use_2d ? 8 : 12));
  1586. skeleton->buffer = RD::get_singleton()->storage_buffer_create(skeleton->data.size() * sizeof(float));
  1587. memset(skeleton->data.ptrw(), 0, skeleton->data.size() * sizeof(float));
  1588. _skeleton_make_dirty(skeleton);
  1589. {
  1590. Vector<RD::Uniform> uniforms;
  1591. {
  1592. RD::Uniform u;
  1593. u.binding = 0;
  1594. u.uniform_type = RD::UNIFORM_TYPE_STORAGE_BUFFER;
  1595. u.append_id(skeleton->buffer);
  1596. uniforms.push_back(u);
  1597. }
  1598. skeleton->uniform_set_mi = RD::get_singleton()->uniform_set_create(uniforms, skeleton_shader.version_shader[0], SkeletonShader::UNIFORM_SET_SKELETON);
  1599. }
  1600. }
  1601. skeleton->dependency.changed_notify(Dependency::DEPENDENCY_CHANGED_SKELETON_DATA);
  1602. }
  1603. int MeshStorage::skeleton_get_bone_count(RID p_skeleton) const {
  1604. Skeleton *skeleton = skeleton_owner.get_or_null(p_skeleton);
  1605. ERR_FAIL_COND_V(!skeleton, 0);
  1606. return skeleton->size;
  1607. }
  1608. void MeshStorage::skeleton_bone_set_transform(RID p_skeleton, int p_bone, const Transform3D &p_transform) {
  1609. Skeleton *skeleton = skeleton_owner.get_or_null(p_skeleton);
  1610. ERR_FAIL_COND(!skeleton);
  1611. ERR_FAIL_INDEX(p_bone, skeleton->size);
  1612. ERR_FAIL_COND(skeleton->use_2d);
  1613. float *dataptr = skeleton->data.ptrw() + p_bone * 12;
  1614. dataptr[0] = p_transform.basis.rows[0][0];
  1615. dataptr[1] = p_transform.basis.rows[0][1];
  1616. dataptr[2] = p_transform.basis.rows[0][2];
  1617. dataptr[3] = p_transform.origin.x;
  1618. dataptr[4] = p_transform.basis.rows[1][0];
  1619. dataptr[5] = p_transform.basis.rows[1][1];
  1620. dataptr[6] = p_transform.basis.rows[1][2];
  1621. dataptr[7] = p_transform.origin.y;
  1622. dataptr[8] = p_transform.basis.rows[2][0];
  1623. dataptr[9] = p_transform.basis.rows[2][1];
  1624. dataptr[10] = p_transform.basis.rows[2][2];
  1625. dataptr[11] = p_transform.origin.z;
  1626. _skeleton_make_dirty(skeleton);
  1627. }
  1628. Transform3D MeshStorage::skeleton_bone_get_transform(RID p_skeleton, int p_bone) const {
  1629. Skeleton *skeleton = skeleton_owner.get_or_null(p_skeleton);
  1630. ERR_FAIL_COND_V(!skeleton, Transform3D());
  1631. ERR_FAIL_INDEX_V(p_bone, skeleton->size, Transform3D());
  1632. ERR_FAIL_COND_V(skeleton->use_2d, Transform3D());
  1633. const float *dataptr = skeleton->data.ptr() + p_bone * 12;
  1634. Transform3D t;
  1635. t.basis.rows[0][0] = dataptr[0];
  1636. t.basis.rows[0][1] = dataptr[1];
  1637. t.basis.rows[0][2] = dataptr[2];
  1638. t.origin.x = dataptr[3];
  1639. t.basis.rows[1][0] = dataptr[4];
  1640. t.basis.rows[1][1] = dataptr[5];
  1641. t.basis.rows[1][2] = dataptr[6];
  1642. t.origin.y = dataptr[7];
  1643. t.basis.rows[2][0] = dataptr[8];
  1644. t.basis.rows[2][1] = dataptr[9];
  1645. t.basis.rows[2][2] = dataptr[10];
  1646. t.origin.z = dataptr[11];
  1647. return t;
  1648. }
  1649. void MeshStorage::skeleton_bone_set_transform_2d(RID p_skeleton, int p_bone, const Transform2D &p_transform) {
  1650. Skeleton *skeleton = skeleton_owner.get_or_null(p_skeleton);
  1651. ERR_FAIL_COND(!skeleton);
  1652. ERR_FAIL_INDEX(p_bone, skeleton->size);
  1653. ERR_FAIL_COND(!skeleton->use_2d);
  1654. float *dataptr = skeleton->data.ptrw() + p_bone * 8;
  1655. dataptr[0] = p_transform.columns[0][0];
  1656. dataptr[1] = p_transform.columns[1][0];
  1657. dataptr[2] = 0;
  1658. dataptr[3] = p_transform.columns[2][0];
  1659. dataptr[4] = p_transform.columns[0][1];
  1660. dataptr[5] = p_transform.columns[1][1];
  1661. dataptr[6] = 0;
  1662. dataptr[7] = p_transform.columns[2][1];
  1663. _skeleton_make_dirty(skeleton);
  1664. }
  1665. Transform2D MeshStorage::skeleton_bone_get_transform_2d(RID p_skeleton, int p_bone) const {
  1666. Skeleton *skeleton = skeleton_owner.get_or_null(p_skeleton);
  1667. ERR_FAIL_COND_V(!skeleton, Transform2D());
  1668. ERR_FAIL_INDEX_V(p_bone, skeleton->size, Transform2D());
  1669. ERR_FAIL_COND_V(!skeleton->use_2d, Transform2D());
  1670. const float *dataptr = skeleton->data.ptr() + p_bone * 8;
  1671. Transform2D t;
  1672. t.columns[0][0] = dataptr[0];
  1673. t.columns[1][0] = dataptr[1];
  1674. t.columns[2][0] = dataptr[3];
  1675. t.columns[0][1] = dataptr[4];
  1676. t.columns[1][1] = dataptr[5];
  1677. t.columns[2][1] = dataptr[7];
  1678. return t;
  1679. }
  1680. void MeshStorage::skeleton_set_base_transform_2d(RID p_skeleton, const Transform2D &p_base_transform) {
  1681. Skeleton *skeleton = skeleton_owner.get_or_null(p_skeleton);
  1682. ERR_FAIL_NULL(skeleton);
  1683. ERR_FAIL_COND(!skeleton->use_2d);
  1684. skeleton->base_transform_2d = p_base_transform;
  1685. }
  1686. void MeshStorage::_update_dirty_skeletons() {
  1687. while (skeleton_dirty_list) {
  1688. Skeleton *skeleton = skeleton_dirty_list;
  1689. if (skeleton->size) {
  1690. RD::get_singleton()->buffer_update(skeleton->buffer, 0, skeleton->data.size() * sizeof(float), skeleton->data.ptr());
  1691. }
  1692. skeleton_dirty_list = skeleton->dirty_list;
  1693. skeleton->dependency.changed_notify(Dependency::DEPENDENCY_CHANGED_SKELETON_BONES);
  1694. skeleton->version++;
  1695. skeleton->dirty = false;
  1696. skeleton->dirty_list = nullptr;
  1697. }
  1698. skeleton_dirty_list = nullptr;
  1699. }
  1700. void MeshStorage::skeleton_update_dependency(RID p_skeleton, DependencyTracker *p_instance) {
  1701. Skeleton *skeleton = skeleton_owner.get_or_null(p_skeleton);
  1702. ERR_FAIL_COND(!skeleton);
  1703. p_instance->update_dependency(&skeleton->dependency);
  1704. }