variant.cpp 84 KB

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  1. /*************************************************************************/
  2. /* variant.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 "variant.h"
  31. #include "core/core_string_names.h"
  32. #include "core/debugger/engine_debugger.h"
  33. #include "core/io/json.h"
  34. #include "core/io/marshalls.h"
  35. #include "core/io/resource.h"
  36. #include "core/math/math_funcs.h"
  37. #include "core/string/print_string.h"
  38. #include "core/variant/variant_parser.h"
  39. String Variant::get_type_name(Variant::Type p_type) {
  40. switch (p_type) {
  41. case NIL: {
  42. return "Nil";
  43. } break;
  44. // atomic types
  45. case BOOL: {
  46. return "bool";
  47. } break;
  48. case INT: {
  49. return "int";
  50. } break;
  51. case FLOAT: {
  52. return "float";
  53. } break;
  54. case STRING: {
  55. return "String";
  56. } break;
  57. // math types
  58. case VECTOR2: {
  59. return "Vector2";
  60. } break;
  61. case VECTOR2I: {
  62. return "Vector2i";
  63. } break;
  64. case RECT2: {
  65. return "Rect2";
  66. } break;
  67. case RECT2I: {
  68. return "Rect2i";
  69. } break;
  70. case TRANSFORM2D: {
  71. return "Transform2D";
  72. } break;
  73. case VECTOR3: {
  74. return "Vector3";
  75. } break;
  76. case VECTOR3I: {
  77. return "Vector3i";
  78. } break;
  79. case PLANE: {
  80. return "Plane";
  81. } break;
  82. case AABB: {
  83. return "AABB";
  84. } break;
  85. case QUATERNION: {
  86. return "Quaternion";
  87. } break;
  88. case BASIS: {
  89. return "Basis";
  90. } break;
  91. case TRANSFORM3D: {
  92. return "Transform3D";
  93. } break;
  94. // misc types
  95. case COLOR: {
  96. return "Color";
  97. } break;
  98. case RID: {
  99. return "RID";
  100. } break;
  101. case OBJECT: {
  102. return "Object";
  103. } break;
  104. case CALLABLE: {
  105. return "Callable";
  106. } break;
  107. case SIGNAL: {
  108. return "Signal";
  109. } break;
  110. case STRING_NAME: {
  111. return "StringName";
  112. } break;
  113. case NODE_PATH: {
  114. return "NodePath";
  115. } break;
  116. case DICTIONARY: {
  117. return "Dictionary";
  118. } break;
  119. case ARRAY: {
  120. return "Array";
  121. } break;
  122. // arrays
  123. case PACKED_BYTE_ARRAY: {
  124. return "PackedByteArray";
  125. } break;
  126. case PACKED_INT32_ARRAY: {
  127. return "PackedInt32Array";
  128. } break;
  129. case PACKED_INT64_ARRAY: {
  130. return "PackedInt64Array";
  131. } break;
  132. case PACKED_FLOAT32_ARRAY: {
  133. return "PackedFloat32Array";
  134. } break;
  135. case PACKED_FLOAT64_ARRAY: {
  136. return "PackedFloat64Array";
  137. } break;
  138. case PACKED_STRING_ARRAY: {
  139. return "PackedStringArray";
  140. } break;
  141. case PACKED_VECTOR2_ARRAY: {
  142. return "PackedVector2Array";
  143. } break;
  144. case PACKED_VECTOR3_ARRAY: {
  145. return "PackedVector3Array";
  146. } break;
  147. case PACKED_COLOR_ARRAY: {
  148. return "PackedColorArray";
  149. } break;
  150. default: {
  151. }
  152. }
  153. return "";
  154. }
  155. bool Variant::can_convert(Variant::Type p_type_from, Variant::Type p_type_to) {
  156. if (p_type_from == p_type_to) {
  157. return true;
  158. }
  159. if (p_type_to == NIL && p_type_from != NIL) { //nil can convert to anything
  160. return true;
  161. }
  162. if (p_type_from == NIL) {
  163. return (p_type_to == OBJECT);
  164. }
  165. const Type *valid_types = nullptr;
  166. const Type *invalid_types = nullptr;
  167. switch (p_type_to) {
  168. case BOOL: {
  169. static const Type valid[] = {
  170. INT,
  171. FLOAT,
  172. STRING,
  173. NIL,
  174. };
  175. valid_types = valid;
  176. } break;
  177. case INT: {
  178. static const Type valid[] = {
  179. BOOL,
  180. FLOAT,
  181. STRING,
  182. NIL,
  183. };
  184. valid_types = valid;
  185. } break;
  186. case FLOAT: {
  187. static const Type valid[] = {
  188. BOOL,
  189. INT,
  190. STRING,
  191. NIL,
  192. };
  193. valid_types = valid;
  194. } break;
  195. case STRING: {
  196. static const Type invalid[] = {
  197. OBJECT,
  198. NIL
  199. };
  200. invalid_types = invalid;
  201. } break;
  202. case VECTOR2: {
  203. static const Type valid[] = {
  204. VECTOR2I,
  205. NIL,
  206. };
  207. valid_types = valid;
  208. } break;
  209. case VECTOR2I: {
  210. static const Type valid[] = {
  211. VECTOR2,
  212. NIL,
  213. };
  214. valid_types = valid;
  215. } break;
  216. case RECT2: {
  217. static const Type valid[] = {
  218. RECT2I,
  219. NIL,
  220. };
  221. valid_types = valid;
  222. } break;
  223. case RECT2I: {
  224. static const Type valid[] = {
  225. RECT2,
  226. NIL,
  227. };
  228. valid_types = valid;
  229. } break;
  230. case TRANSFORM2D: {
  231. static const Type valid[] = {
  232. TRANSFORM3D,
  233. NIL
  234. };
  235. valid_types = valid;
  236. } break;
  237. case VECTOR3: {
  238. static const Type valid[] = {
  239. VECTOR3I,
  240. NIL,
  241. };
  242. valid_types = valid;
  243. } break;
  244. case VECTOR3I: {
  245. static const Type valid[] = {
  246. VECTOR3,
  247. NIL,
  248. };
  249. valid_types = valid;
  250. } break;
  251. case QUATERNION: {
  252. static const Type valid[] = {
  253. BASIS,
  254. NIL
  255. };
  256. valid_types = valid;
  257. } break;
  258. case BASIS: {
  259. static const Type valid[] = {
  260. QUATERNION,
  261. NIL
  262. };
  263. valid_types = valid;
  264. } break;
  265. case TRANSFORM3D: {
  266. static const Type valid[] = {
  267. TRANSFORM2D,
  268. QUATERNION,
  269. BASIS,
  270. NIL
  271. };
  272. valid_types = valid;
  273. } break;
  274. case COLOR: {
  275. static const Type valid[] = {
  276. STRING,
  277. INT,
  278. NIL,
  279. };
  280. valid_types = valid;
  281. } break;
  282. case RID: {
  283. static const Type valid[] = {
  284. OBJECT,
  285. NIL
  286. };
  287. valid_types = valid;
  288. } break;
  289. case OBJECT: {
  290. static const Type valid[] = {
  291. NIL
  292. };
  293. valid_types = valid;
  294. } break;
  295. case STRING_NAME: {
  296. static const Type valid[] = {
  297. STRING,
  298. NIL
  299. };
  300. valid_types = valid;
  301. } break;
  302. case NODE_PATH: {
  303. static const Type valid[] = {
  304. STRING,
  305. NIL
  306. };
  307. valid_types = valid;
  308. } break;
  309. case ARRAY: {
  310. static const Type valid[] = {
  311. PACKED_BYTE_ARRAY,
  312. PACKED_INT32_ARRAY,
  313. PACKED_INT64_ARRAY,
  314. PACKED_FLOAT32_ARRAY,
  315. PACKED_FLOAT64_ARRAY,
  316. PACKED_STRING_ARRAY,
  317. PACKED_COLOR_ARRAY,
  318. PACKED_VECTOR2_ARRAY,
  319. PACKED_VECTOR3_ARRAY,
  320. NIL
  321. };
  322. valid_types = valid;
  323. } break;
  324. // arrays
  325. case PACKED_BYTE_ARRAY: {
  326. static const Type valid[] = {
  327. ARRAY,
  328. NIL
  329. };
  330. valid_types = valid;
  331. } break;
  332. case PACKED_INT32_ARRAY: {
  333. static const Type valid[] = {
  334. ARRAY,
  335. NIL
  336. };
  337. valid_types = valid;
  338. } break;
  339. case PACKED_INT64_ARRAY: {
  340. static const Type valid[] = {
  341. ARRAY,
  342. NIL
  343. };
  344. valid_types = valid;
  345. } break;
  346. case PACKED_FLOAT32_ARRAY: {
  347. static const Type valid[] = {
  348. ARRAY,
  349. NIL
  350. };
  351. valid_types = valid;
  352. } break;
  353. case PACKED_FLOAT64_ARRAY: {
  354. static const Type valid[] = {
  355. ARRAY,
  356. NIL
  357. };
  358. valid_types = valid;
  359. } break;
  360. case PACKED_STRING_ARRAY: {
  361. static const Type valid[] = {
  362. ARRAY,
  363. NIL
  364. };
  365. valid_types = valid;
  366. } break;
  367. case PACKED_VECTOR2_ARRAY: {
  368. static const Type valid[] = {
  369. ARRAY,
  370. NIL
  371. };
  372. valid_types = valid;
  373. } break;
  374. case PACKED_VECTOR3_ARRAY: {
  375. static const Type valid[] = {
  376. ARRAY,
  377. NIL
  378. };
  379. valid_types = valid;
  380. } break;
  381. case PACKED_COLOR_ARRAY: {
  382. static const Type valid[] = {
  383. ARRAY,
  384. NIL
  385. };
  386. valid_types = valid;
  387. } break;
  388. default: {
  389. }
  390. }
  391. if (valid_types) {
  392. int i = 0;
  393. while (valid_types[i] != NIL) {
  394. if (p_type_from == valid_types[i]) {
  395. return true;
  396. }
  397. i++;
  398. }
  399. } else if (invalid_types) {
  400. int i = 0;
  401. while (invalid_types[i] != NIL) {
  402. if (p_type_from == invalid_types[i]) {
  403. return false;
  404. }
  405. i++;
  406. }
  407. return true;
  408. }
  409. return false;
  410. }
  411. bool Variant::can_convert_strict(Variant::Type p_type_from, Variant::Type p_type_to) {
  412. if (p_type_from == p_type_to) {
  413. return true;
  414. }
  415. if (p_type_to == NIL && p_type_from != NIL) { //nil can convert to anything
  416. return true;
  417. }
  418. if (p_type_from == NIL) {
  419. return (p_type_to == OBJECT);
  420. }
  421. const Type *valid_types = nullptr;
  422. switch (p_type_to) {
  423. case BOOL: {
  424. static const Type valid[] = {
  425. INT,
  426. FLOAT,
  427. //STRING,
  428. NIL,
  429. };
  430. valid_types = valid;
  431. } break;
  432. case INT: {
  433. static const Type valid[] = {
  434. BOOL,
  435. FLOAT,
  436. //STRING,
  437. NIL,
  438. };
  439. valid_types = valid;
  440. } break;
  441. case FLOAT: {
  442. static const Type valid[] = {
  443. BOOL,
  444. INT,
  445. //STRING,
  446. NIL,
  447. };
  448. valid_types = valid;
  449. } break;
  450. case STRING: {
  451. static const Type valid[] = {
  452. NODE_PATH,
  453. STRING_NAME,
  454. NIL
  455. };
  456. valid_types = valid;
  457. } break;
  458. case VECTOR2: {
  459. static const Type valid[] = {
  460. VECTOR2I,
  461. NIL,
  462. };
  463. valid_types = valid;
  464. } break;
  465. case VECTOR2I: {
  466. static const Type valid[] = {
  467. VECTOR2,
  468. NIL,
  469. };
  470. valid_types = valid;
  471. } break;
  472. case RECT2: {
  473. static const Type valid[] = {
  474. RECT2I,
  475. NIL,
  476. };
  477. valid_types = valid;
  478. } break;
  479. case RECT2I: {
  480. static const Type valid[] = {
  481. RECT2,
  482. NIL,
  483. };
  484. valid_types = valid;
  485. } break;
  486. case TRANSFORM2D: {
  487. static const Type valid[] = {
  488. TRANSFORM3D,
  489. NIL
  490. };
  491. valid_types = valid;
  492. } break;
  493. case VECTOR3: {
  494. static const Type valid[] = {
  495. VECTOR3I,
  496. NIL,
  497. };
  498. valid_types = valid;
  499. } break;
  500. case VECTOR3I: {
  501. static const Type valid[] = {
  502. VECTOR3,
  503. NIL,
  504. };
  505. valid_types = valid;
  506. } break;
  507. case QUATERNION: {
  508. static const Type valid[] = {
  509. BASIS,
  510. NIL
  511. };
  512. valid_types = valid;
  513. } break;
  514. case BASIS: {
  515. static const Type valid[] = {
  516. QUATERNION,
  517. NIL
  518. };
  519. valid_types = valid;
  520. } break;
  521. case TRANSFORM3D: {
  522. static const Type valid[] = {
  523. TRANSFORM2D,
  524. QUATERNION,
  525. BASIS,
  526. NIL
  527. };
  528. valid_types = valid;
  529. } break;
  530. case COLOR: {
  531. static const Type valid[] = {
  532. STRING,
  533. INT,
  534. NIL,
  535. };
  536. valid_types = valid;
  537. } break;
  538. case RID: {
  539. static const Type valid[] = {
  540. OBJECT,
  541. NIL
  542. };
  543. valid_types = valid;
  544. } break;
  545. case OBJECT: {
  546. static const Type valid[] = {
  547. NIL
  548. };
  549. valid_types = valid;
  550. } break;
  551. case STRING_NAME: {
  552. static const Type valid[] = {
  553. STRING,
  554. NIL
  555. };
  556. valid_types = valid;
  557. } break;
  558. case NODE_PATH: {
  559. static const Type valid[] = {
  560. STRING,
  561. NIL
  562. };
  563. valid_types = valid;
  564. } break;
  565. case ARRAY: {
  566. static const Type valid[] = {
  567. PACKED_BYTE_ARRAY,
  568. PACKED_INT32_ARRAY,
  569. PACKED_INT64_ARRAY,
  570. PACKED_FLOAT32_ARRAY,
  571. PACKED_FLOAT64_ARRAY,
  572. PACKED_STRING_ARRAY,
  573. PACKED_COLOR_ARRAY,
  574. PACKED_VECTOR2_ARRAY,
  575. PACKED_VECTOR3_ARRAY,
  576. NIL
  577. };
  578. valid_types = valid;
  579. } break;
  580. // arrays
  581. case PACKED_BYTE_ARRAY: {
  582. static const Type valid[] = {
  583. ARRAY,
  584. NIL
  585. };
  586. valid_types = valid;
  587. } break;
  588. case PACKED_INT32_ARRAY: {
  589. static const Type valid[] = {
  590. ARRAY,
  591. NIL
  592. };
  593. valid_types = valid;
  594. } break;
  595. case PACKED_INT64_ARRAY: {
  596. static const Type valid[] = {
  597. ARRAY,
  598. NIL
  599. };
  600. valid_types = valid;
  601. } break;
  602. case PACKED_FLOAT32_ARRAY: {
  603. static const Type valid[] = {
  604. ARRAY,
  605. NIL
  606. };
  607. valid_types = valid;
  608. } break;
  609. case PACKED_FLOAT64_ARRAY: {
  610. static const Type valid[] = {
  611. ARRAY,
  612. NIL
  613. };
  614. valid_types = valid;
  615. } break;
  616. case PACKED_STRING_ARRAY: {
  617. static const Type valid[] = {
  618. ARRAY,
  619. NIL
  620. };
  621. valid_types = valid;
  622. } break;
  623. case PACKED_VECTOR2_ARRAY: {
  624. static const Type valid[] = {
  625. ARRAY,
  626. NIL
  627. };
  628. valid_types = valid;
  629. } break;
  630. case PACKED_VECTOR3_ARRAY: {
  631. static const Type valid[] = {
  632. ARRAY,
  633. NIL
  634. };
  635. valid_types = valid;
  636. } break;
  637. case PACKED_COLOR_ARRAY: {
  638. static const Type valid[] = {
  639. ARRAY,
  640. NIL
  641. };
  642. valid_types = valid;
  643. } break;
  644. default: {
  645. }
  646. }
  647. if (valid_types) {
  648. int i = 0;
  649. while (valid_types[i] != NIL) {
  650. if (p_type_from == valid_types[i]) {
  651. return true;
  652. }
  653. i++;
  654. }
  655. }
  656. return false;
  657. }
  658. bool Variant::operator==(const Variant &p_variant) const {
  659. return hash_compare(p_variant);
  660. }
  661. bool Variant::operator!=(const Variant &p_variant) const {
  662. // Don't use `!hash_compare(p_variant)` given it makes use of OP_EQUAL
  663. if (type != p_variant.type) { //evaluation of operator== needs to be more strict
  664. return true;
  665. }
  666. bool v;
  667. Variant r;
  668. evaluate(OP_NOT_EQUAL, *this, p_variant, r, v);
  669. return r;
  670. }
  671. bool Variant::operator<(const Variant &p_variant) const {
  672. if (type != p_variant.type) { //if types differ, then order by type first
  673. return type < p_variant.type;
  674. }
  675. bool v;
  676. Variant r;
  677. evaluate(OP_LESS, *this, p_variant, r, v);
  678. return r;
  679. }
  680. bool Variant::is_zero() const {
  681. switch (type) {
  682. case NIL: {
  683. return true;
  684. } break;
  685. // atomic types
  686. case BOOL: {
  687. return !(_data._bool);
  688. } break;
  689. case INT: {
  690. return _data._int == 0;
  691. } break;
  692. case FLOAT: {
  693. return _data._float == 0;
  694. } break;
  695. case STRING: {
  696. return *reinterpret_cast<const String *>(_data._mem) == String();
  697. } break;
  698. // math types
  699. case VECTOR2: {
  700. return *reinterpret_cast<const Vector2 *>(_data._mem) == Vector2();
  701. } break;
  702. case VECTOR2I: {
  703. return *reinterpret_cast<const Vector2i *>(_data._mem) == Vector2i();
  704. } break;
  705. case RECT2: {
  706. return *reinterpret_cast<const Rect2 *>(_data._mem) == Rect2();
  707. } break;
  708. case RECT2I: {
  709. return *reinterpret_cast<const Rect2i *>(_data._mem) == Rect2i();
  710. } break;
  711. case TRANSFORM2D: {
  712. return *_data._transform2d == Transform2D();
  713. } break;
  714. case VECTOR3: {
  715. return *reinterpret_cast<const Vector3 *>(_data._mem) == Vector3();
  716. } break;
  717. case VECTOR3I: {
  718. return *reinterpret_cast<const Vector3i *>(_data._mem) == Vector3i();
  719. } break;
  720. case PLANE: {
  721. return *reinterpret_cast<const Plane *>(_data._mem) == Plane();
  722. } break;
  723. case AABB: {
  724. return *_data._aabb == ::AABB();
  725. } break;
  726. case QUATERNION: {
  727. return *reinterpret_cast<const Quaternion *>(_data._mem) == Quaternion();
  728. } break;
  729. case BASIS: {
  730. return *_data._basis == Basis();
  731. } break;
  732. case TRANSFORM3D: {
  733. return *_data._transform3d == Transform3D();
  734. } break;
  735. // misc types
  736. case COLOR: {
  737. return *reinterpret_cast<const Color *>(_data._mem) == Color();
  738. } break;
  739. case RID: {
  740. return *reinterpret_cast<const ::RID *>(_data._mem) == ::RID();
  741. } break;
  742. case OBJECT: {
  743. return _get_obj().obj == nullptr;
  744. } break;
  745. case CALLABLE: {
  746. return reinterpret_cast<const Callable *>(_data._mem)->is_null();
  747. } break;
  748. case SIGNAL: {
  749. return reinterpret_cast<const Signal *>(_data._mem)->is_null();
  750. } break;
  751. case STRING_NAME: {
  752. return *reinterpret_cast<const StringName *>(_data._mem) != StringName();
  753. } break;
  754. case NODE_PATH: {
  755. return reinterpret_cast<const NodePath *>(_data._mem)->is_empty();
  756. } break;
  757. case DICTIONARY: {
  758. return reinterpret_cast<const Dictionary *>(_data._mem)->is_empty();
  759. } break;
  760. case ARRAY: {
  761. return reinterpret_cast<const Array *>(_data._mem)->is_empty();
  762. } break;
  763. // arrays
  764. case PACKED_BYTE_ARRAY: {
  765. return PackedArrayRef<uint8_t>::get_array(_data.packed_array).size() == 0;
  766. } break;
  767. case PACKED_INT32_ARRAY: {
  768. return PackedArrayRef<int32_t>::get_array(_data.packed_array).size() == 0;
  769. } break;
  770. case PACKED_INT64_ARRAY: {
  771. return PackedArrayRef<int64_t>::get_array(_data.packed_array).size() == 0;
  772. } break;
  773. case PACKED_FLOAT32_ARRAY: {
  774. return PackedArrayRef<float>::get_array(_data.packed_array).size() == 0;
  775. } break;
  776. case PACKED_FLOAT64_ARRAY: {
  777. return PackedArrayRef<double>::get_array(_data.packed_array).size() == 0;
  778. } break;
  779. case PACKED_STRING_ARRAY: {
  780. return PackedArrayRef<String>::get_array(_data.packed_array).size() == 0;
  781. } break;
  782. case PACKED_VECTOR2_ARRAY: {
  783. return PackedArrayRef<Vector2>::get_array(_data.packed_array).size() == 0;
  784. } break;
  785. case PACKED_VECTOR3_ARRAY: {
  786. return PackedArrayRef<Vector3>::get_array(_data.packed_array).size() == 0;
  787. } break;
  788. case PACKED_COLOR_ARRAY: {
  789. return PackedArrayRef<Color>::get_array(_data.packed_array).size() == 0;
  790. } break;
  791. default: {
  792. }
  793. }
  794. return false;
  795. }
  796. bool Variant::is_one() const {
  797. switch (type) {
  798. case NIL: {
  799. return true;
  800. } break;
  801. // atomic types
  802. case BOOL: {
  803. return _data._bool;
  804. } break;
  805. case INT: {
  806. return _data._int == 1;
  807. } break;
  808. case FLOAT: {
  809. return _data._float == 1;
  810. } break;
  811. case VECTOR2: {
  812. return *reinterpret_cast<const Vector2 *>(_data._mem) == Vector2(1, 1);
  813. } break;
  814. case VECTOR2I: {
  815. return *reinterpret_cast<const Vector2i *>(_data._mem) == Vector2i(1, 1);
  816. } break;
  817. case RECT2: {
  818. return *reinterpret_cast<const Rect2 *>(_data._mem) == Rect2(1, 1, 1, 1);
  819. } break;
  820. case RECT2I: {
  821. return *reinterpret_cast<const Rect2i *>(_data._mem) == Rect2i(1, 1, 1, 1);
  822. } break;
  823. case VECTOR3: {
  824. return *reinterpret_cast<const Vector3 *>(_data._mem) == Vector3(1, 1, 1);
  825. } break;
  826. case VECTOR3I: {
  827. return *reinterpret_cast<const Vector3i *>(_data._mem) == Vector3i(1, 1, 1);
  828. } break;
  829. case PLANE: {
  830. return *reinterpret_cast<const Plane *>(_data._mem) == Plane(1, 1, 1, 1);
  831. } break;
  832. case COLOR: {
  833. return *reinterpret_cast<const Color *>(_data._mem) == Color(1, 1, 1, 1);
  834. } break;
  835. default: {
  836. return !is_zero();
  837. }
  838. }
  839. return false;
  840. }
  841. bool Variant::is_null() const {
  842. if (type == OBJECT && _get_obj().obj) {
  843. return false;
  844. } else {
  845. return true;
  846. }
  847. }
  848. void Variant::reference(const Variant &p_variant) {
  849. switch (type) {
  850. case NIL:
  851. case BOOL:
  852. case INT:
  853. case FLOAT:
  854. break;
  855. default:
  856. clear();
  857. }
  858. type = p_variant.type;
  859. switch (p_variant.type) {
  860. case NIL: {
  861. // none
  862. } break;
  863. // atomic types
  864. case BOOL: {
  865. _data._bool = p_variant._data._bool;
  866. } break;
  867. case INT: {
  868. _data._int = p_variant._data._int;
  869. } break;
  870. case FLOAT: {
  871. _data._float = p_variant._data._float;
  872. } break;
  873. case STRING: {
  874. memnew_placement(_data._mem, String(*reinterpret_cast<const String *>(p_variant._data._mem)));
  875. } break;
  876. // math types
  877. case VECTOR2: {
  878. memnew_placement(_data._mem, Vector2(*reinterpret_cast<const Vector2 *>(p_variant._data._mem)));
  879. } break;
  880. case VECTOR2I: {
  881. memnew_placement(_data._mem, Vector2i(*reinterpret_cast<const Vector2i *>(p_variant._data._mem)));
  882. } break;
  883. case RECT2: {
  884. memnew_placement(_data._mem, Rect2(*reinterpret_cast<const Rect2 *>(p_variant._data._mem)));
  885. } break;
  886. case RECT2I: {
  887. memnew_placement(_data._mem, Rect2i(*reinterpret_cast<const Rect2i *>(p_variant._data._mem)));
  888. } break;
  889. case TRANSFORM2D: {
  890. _data._transform2d = memnew(Transform2D(*p_variant._data._transform2d));
  891. } break;
  892. case VECTOR3: {
  893. memnew_placement(_data._mem, Vector3(*reinterpret_cast<const Vector3 *>(p_variant._data._mem)));
  894. } break;
  895. case VECTOR3I: {
  896. memnew_placement(_data._mem, Vector3i(*reinterpret_cast<const Vector3i *>(p_variant._data._mem)));
  897. } break;
  898. case PLANE: {
  899. memnew_placement(_data._mem, Plane(*reinterpret_cast<const Plane *>(p_variant._data._mem)));
  900. } break;
  901. case AABB: {
  902. _data._aabb = memnew(::AABB(*p_variant._data._aabb));
  903. } break;
  904. case QUATERNION: {
  905. memnew_placement(_data._mem, Quaternion(*reinterpret_cast<const Quaternion *>(p_variant._data._mem)));
  906. } break;
  907. case BASIS: {
  908. _data._basis = memnew(Basis(*p_variant._data._basis));
  909. } break;
  910. case TRANSFORM3D: {
  911. _data._transform3d = memnew(Transform3D(*p_variant._data._transform3d));
  912. } break;
  913. // misc types
  914. case COLOR: {
  915. memnew_placement(_data._mem, Color(*reinterpret_cast<const Color *>(p_variant._data._mem)));
  916. } break;
  917. case RID: {
  918. memnew_placement(_data._mem, ::RID(*reinterpret_cast<const ::RID *>(p_variant._data._mem)));
  919. } break;
  920. case OBJECT: {
  921. memnew_placement(_data._mem, ObjData);
  922. if (p_variant._get_obj().obj && p_variant._get_obj().id.is_ref_counted()) {
  923. RefCounted *ref_counted = static_cast<RefCounted *>(p_variant._get_obj().obj);
  924. if (!ref_counted->reference()) {
  925. _get_obj().obj = nullptr;
  926. _get_obj().id = ObjectID();
  927. break;
  928. }
  929. }
  930. _get_obj().obj = const_cast<Object *>(p_variant._get_obj().obj);
  931. _get_obj().id = p_variant._get_obj().id;
  932. } break;
  933. case CALLABLE: {
  934. memnew_placement(_data._mem, Callable(*reinterpret_cast<const Callable *>(p_variant._data._mem)));
  935. } break;
  936. case SIGNAL: {
  937. memnew_placement(_data._mem, Signal(*reinterpret_cast<const Signal *>(p_variant._data._mem)));
  938. } break;
  939. case STRING_NAME: {
  940. memnew_placement(_data._mem, StringName(*reinterpret_cast<const StringName *>(p_variant._data._mem)));
  941. } break;
  942. case NODE_PATH: {
  943. memnew_placement(_data._mem, NodePath(*reinterpret_cast<const NodePath *>(p_variant._data._mem)));
  944. } break;
  945. case DICTIONARY: {
  946. memnew_placement(_data._mem, Dictionary(*reinterpret_cast<const Dictionary *>(p_variant._data._mem)));
  947. } break;
  948. case ARRAY: {
  949. memnew_placement(_data._mem, Array(*reinterpret_cast<const Array *>(p_variant._data._mem)));
  950. } break;
  951. // arrays
  952. case PACKED_BYTE_ARRAY: {
  953. _data.packed_array = static_cast<PackedArrayRef<uint8_t> *>(p_variant._data.packed_array)->reference();
  954. if (!_data.packed_array) {
  955. _data.packed_array = PackedArrayRef<uint8_t>::create();
  956. }
  957. } break;
  958. case PACKED_INT32_ARRAY: {
  959. _data.packed_array = static_cast<PackedArrayRef<int32_t> *>(p_variant._data.packed_array)->reference();
  960. if (!_data.packed_array) {
  961. _data.packed_array = PackedArrayRef<int32_t>::create();
  962. }
  963. } break;
  964. case PACKED_INT64_ARRAY: {
  965. _data.packed_array = static_cast<PackedArrayRef<int64_t> *>(p_variant._data.packed_array)->reference();
  966. if (!_data.packed_array) {
  967. _data.packed_array = PackedArrayRef<int64_t>::create();
  968. }
  969. } break;
  970. case PACKED_FLOAT32_ARRAY: {
  971. _data.packed_array = static_cast<PackedArrayRef<float> *>(p_variant._data.packed_array)->reference();
  972. if (!_data.packed_array) {
  973. _data.packed_array = PackedArrayRef<float>::create();
  974. }
  975. } break;
  976. case PACKED_FLOAT64_ARRAY: {
  977. _data.packed_array = static_cast<PackedArrayRef<double> *>(p_variant._data.packed_array)->reference();
  978. if (!_data.packed_array) {
  979. _data.packed_array = PackedArrayRef<double>::create();
  980. }
  981. } break;
  982. case PACKED_STRING_ARRAY: {
  983. _data.packed_array = static_cast<PackedArrayRef<String> *>(p_variant._data.packed_array)->reference();
  984. if (!_data.packed_array) {
  985. _data.packed_array = PackedArrayRef<String>::create();
  986. }
  987. } break;
  988. case PACKED_VECTOR2_ARRAY: {
  989. _data.packed_array = static_cast<PackedArrayRef<Vector2> *>(p_variant._data.packed_array)->reference();
  990. if (!_data.packed_array) {
  991. _data.packed_array = PackedArrayRef<Vector2>::create();
  992. }
  993. } break;
  994. case PACKED_VECTOR3_ARRAY: {
  995. _data.packed_array = static_cast<PackedArrayRef<Vector3> *>(p_variant._data.packed_array)->reference();
  996. if (!_data.packed_array) {
  997. _data.packed_array = PackedArrayRef<Vector3>::create();
  998. }
  999. } break;
  1000. case PACKED_COLOR_ARRAY: {
  1001. _data.packed_array = static_cast<PackedArrayRef<Color> *>(p_variant._data.packed_array)->reference();
  1002. if (!_data.packed_array) {
  1003. _data.packed_array = PackedArrayRef<Color>::create();
  1004. }
  1005. } break;
  1006. default: {
  1007. }
  1008. }
  1009. }
  1010. void Variant::zero() {
  1011. switch (type) {
  1012. case NIL:
  1013. break;
  1014. case BOOL:
  1015. this->_data._bool = false;
  1016. break;
  1017. case INT:
  1018. this->_data._int = 0;
  1019. break;
  1020. case FLOAT:
  1021. this->_data._float = 0;
  1022. break;
  1023. case VECTOR2:
  1024. *reinterpret_cast<Vector2 *>(this->_data._mem) = Vector2();
  1025. break;
  1026. case VECTOR2I:
  1027. *reinterpret_cast<Vector2i *>(this->_data._mem) = Vector2i();
  1028. break;
  1029. case RECT2:
  1030. *reinterpret_cast<Rect2 *>(this->_data._mem) = Rect2();
  1031. break;
  1032. case RECT2I:
  1033. *reinterpret_cast<Rect2i *>(this->_data._mem) = Rect2i();
  1034. break;
  1035. case VECTOR3:
  1036. *reinterpret_cast<Vector3 *>(this->_data._mem) = Vector3();
  1037. break;
  1038. case VECTOR3I:
  1039. *reinterpret_cast<Vector3i *>(this->_data._mem) = Vector3i();
  1040. break;
  1041. case PLANE:
  1042. *reinterpret_cast<Plane *>(this->_data._mem) = Plane();
  1043. break;
  1044. case QUATERNION:
  1045. *reinterpret_cast<Quaternion *>(this->_data._mem) = Quaternion();
  1046. break;
  1047. case COLOR:
  1048. *reinterpret_cast<Color *>(this->_data._mem) = Color();
  1049. break;
  1050. default:
  1051. this->clear();
  1052. break;
  1053. }
  1054. }
  1055. void Variant::_clear_internal() {
  1056. switch (type) {
  1057. case STRING: {
  1058. reinterpret_cast<String *>(_data._mem)->~String();
  1059. } break;
  1060. /*
  1061. // no point, they don't allocate memory
  1062. VECTOR3,
  1063. PLANE,
  1064. QUATERNION,
  1065. COLOR,
  1066. VECTOR2,
  1067. RECT2
  1068. */
  1069. case TRANSFORM2D: {
  1070. memdelete(_data._transform2d);
  1071. } break;
  1072. case AABB: {
  1073. memdelete(_data._aabb);
  1074. } break;
  1075. case BASIS: {
  1076. memdelete(_data._basis);
  1077. } break;
  1078. case TRANSFORM3D: {
  1079. memdelete(_data._transform3d);
  1080. } break;
  1081. // misc types
  1082. case STRING_NAME: {
  1083. reinterpret_cast<StringName *>(_data._mem)->~StringName();
  1084. } break;
  1085. case NODE_PATH: {
  1086. reinterpret_cast<NodePath *>(_data._mem)->~NodePath();
  1087. } break;
  1088. case OBJECT: {
  1089. if (_get_obj().id.is_ref_counted()) {
  1090. //we are safe that there is a reference here
  1091. RefCounted *ref_counted = static_cast<RefCounted *>(_get_obj().obj);
  1092. if (ref_counted->unreference()) {
  1093. memdelete(ref_counted);
  1094. }
  1095. }
  1096. _get_obj().obj = nullptr;
  1097. _get_obj().id = ObjectID();
  1098. } break;
  1099. case RID: {
  1100. // not much need probably
  1101. // Can't seem to use destructor + scoping operator, so hack.
  1102. typedef ::RID RID_Class;
  1103. reinterpret_cast<RID_Class *>(_data._mem)->~RID_Class();
  1104. } break;
  1105. case CALLABLE: {
  1106. reinterpret_cast<Callable *>(_data._mem)->~Callable();
  1107. } break;
  1108. case SIGNAL: {
  1109. reinterpret_cast<Signal *>(_data._mem)->~Signal();
  1110. } break;
  1111. case DICTIONARY: {
  1112. reinterpret_cast<Dictionary *>(_data._mem)->~Dictionary();
  1113. } break;
  1114. case ARRAY: {
  1115. reinterpret_cast<Array *>(_data._mem)->~Array();
  1116. } break;
  1117. // arrays
  1118. case PACKED_BYTE_ARRAY: {
  1119. PackedArrayRefBase::destroy(_data.packed_array);
  1120. } break;
  1121. case PACKED_INT32_ARRAY: {
  1122. PackedArrayRefBase::destroy(_data.packed_array);
  1123. } break;
  1124. case PACKED_INT64_ARRAY: {
  1125. PackedArrayRefBase::destroy(_data.packed_array);
  1126. } break;
  1127. case PACKED_FLOAT32_ARRAY: {
  1128. PackedArrayRefBase::destroy(_data.packed_array);
  1129. } break;
  1130. case PACKED_FLOAT64_ARRAY: {
  1131. PackedArrayRefBase::destroy(_data.packed_array);
  1132. } break;
  1133. case PACKED_STRING_ARRAY: {
  1134. PackedArrayRefBase::destroy(_data.packed_array);
  1135. } break;
  1136. case PACKED_VECTOR2_ARRAY: {
  1137. PackedArrayRefBase::destroy(_data.packed_array);
  1138. } break;
  1139. case PACKED_VECTOR3_ARRAY: {
  1140. PackedArrayRefBase::destroy(_data.packed_array);
  1141. } break;
  1142. case PACKED_COLOR_ARRAY: {
  1143. PackedArrayRefBase::destroy(_data.packed_array);
  1144. } break;
  1145. default: {
  1146. } /* not needed */
  1147. }
  1148. }
  1149. Variant::operator signed int() const {
  1150. switch (type) {
  1151. case NIL:
  1152. return 0;
  1153. case BOOL:
  1154. return _data._bool ? 1 : 0;
  1155. case INT:
  1156. return _data._int;
  1157. case FLOAT:
  1158. return _data._float;
  1159. case STRING:
  1160. return operator String().to_int();
  1161. default: {
  1162. return 0;
  1163. }
  1164. }
  1165. }
  1166. Variant::operator unsigned int() const {
  1167. switch (type) {
  1168. case NIL:
  1169. return 0;
  1170. case BOOL:
  1171. return _data._bool ? 1 : 0;
  1172. case INT:
  1173. return _data._int;
  1174. case FLOAT:
  1175. return _data._float;
  1176. case STRING:
  1177. return operator String().to_int();
  1178. default: {
  1179. return 0;
  1180. }
  1181. }
  1182. }
  1183. Variant::operator int64_t() const {
  1184. switch (type) {
  1185. case NIL:
  1186. return 0;
  1187. case BOOL:
  1188. return _data._bool ? 1 : 0;
  1189. case INT:
  1190. return _data._int;
  1191. case FLOAT:
  1192. return _data._float;
  1193. case STRING:
  1194. return operator String().to_int();
  1195. default: {
  1196. return 0;
  1197. }
  1198. }
  1199. }
  1200. Variant::operator uint64_t() const {
  1201. switch (type) {
  1202. case NIL:
  1203. return 0;
  1204. case BOOL:
  1205. return _data._bool ? 1 : 0;
  1206. case INT:
  1207. return _data._int;
  1208. case FLOAT:
  1209. return _data._float;
  1210. case STRING:
  1211. return operator String().to_int();
  1212. default: {
  1213. return 0;
  1214. }
  1215. }
  1216. }
  1217. Variant::operator ObjectID() const {
  1218. if (type == INT) {
  1219. return ObjectID(_data._int);
  1220. } else if (type == OBJECT) {
  1221. return _get_obj().id;
  1222. } else {
  1223. return ObjectID();
  1224. }
  1225. }
  1226. #ifdef NEED_LONG_INT
  1227. Variant::operator signed long() const {
  1228. switch (type) {
  1229. case NIL:
  1230. return 0;
  1231. case BOOL:
  1232. return _data._bool ? 1 : 0;
  1233. case INT:
  1234. return _data._int;
  1235. case FLOAT:
  1236. return _data._float;
  1237. case STRING:
  1238. return operator String().to_int();
  1239. default: {
  1240. return 0;
  1241. }
  1242. }
  1243. return 0;
  1244. }
  1245. Variant::operator unsigned long() const {
  1246. switch (type) {
  1247. case NIL:
  1248. return 0;
  1249. case BOOL:
  1250. return _data._bool ? 1 : 0;
  1251. case INT:
  1252. return _data._int;
  1253. case FLOAT:
  1254. return _data._float;
  1255. case STRING:
  1256. return operator String().to_int();
  1257. default: {
  1258. return 0;
  1259. }
  1260. }
  1261. return 0;
  1262. }
  1263. #endif
  1264. Variant::operator signed short() const {
  1265. switch (type) {
  1266. case NIL:
  1267. return 0;
  1268. case BOOL:
  1269. return _data._bool ? 1 : 0;
  1270. case INT:
  1271. return _data._int;
  1272. case FLOAT:
  1273. return _data._float;
  1274. case STRING:
  1275. return operator String().to_int();
  1276. default: {
  1277. return 0;
  1278. }
  1279. }
  1280. }
  1281. Variant::operator unsigned short() const {
  1282. switch (type) {
  1283. case NIL:
  1284. return 0;
  1285. case BOOL:
  1286. return _data._bool ? 1 : 0;
  1287. case INT:
  1288. return _data._int;
  1289. case FLOAT:
  1290. return _data._float;
  1291. case STRING:
  1292. return operator String().to_int();
  1293. default: {
  1294. return 0;
  1295. }
  1296. }
  1297. }
  1298. Variant::operator signed char() const {
  1299. switch (type) {
  1300. case NIL:
  1301. return 0;
  1302. case BOOL:
  1303. return _data._bool ? 1 : 0;
  1304. case INT:
  1305. return _data._int;
  1306. case FLOAT:
  1307. return _data._float;
  1308. case STRING:
  1309. return operator String().to_int();
  1310. default: {
  1311. return 0;
  1312. }
  1313. }
  1314. }
  1315. Variant::operator unsigned char() const {
  1316. switch (type) {
  1317. case NIL:
  1318. return 0;
  1319. case BOOL:
  1320. return _data._bool ? 1 : 0;
  1321. case INT:
  1322. return _data._int;
  1323. case FLOAT:
  1324. return _data._float;
  1325. case STRING:
  1326. return operator String().to_int();
  1327. default: {
  1328. return 0;
  1329. }
  1330. }
  1331. }
  1332. Variant::operator char32_t() const {
  1333. return operator unsigned int();
  1334. }
  1335. Variant::operator float() const {
  1336. switch (type) {
  1337. case NIL:
  1338. return 0;
  1339. case BOOL:
  1340. return _data._bool ? 1.0 : 0.0;
  1341. case INT:
  1342. return (float)_data._int;
  1343. case FLOAT:
  1344. return _data._float;
  1345. case STRING:
  1346. return operator String().to_float();
  1347. default: {
  1348. return 0;
  1349. }
  1350. }
  1351. }
  1352. Variant::operator double() const {
  1353. switch (type) {
  1354. case NIL:
  1355. return 0;
  1356. case BOOL:
  1357. return _data._bool ? 1.0 : 0.0;
  1358. case INT:
  1359. return (double)_data._int;
  1360. case FLOAT:
  1361. return _data._float;
  1362. case STRING:
  1363. return operator String().to_float();
  1364. default: {
  1365. return 0;
  1366. }
  1367. }
  1368. }
  1369. Variant::operator StringName() const {
  1370. if (type == STRING_NAME) {
  1371. return *reinterpret_cast<const StringName *>(_data._mem);
  1372. } else if (type == STRING) {
  1373. return *reinterpret_cast<const String *>(_data._mem);
  1374. }
  1375. return StringName();
  1376. }
  1377. struct _VariantStrPair {
  1378. String key;
  1379. String value;
  1380. bool operator<(const _VariantStrPair &p) const {
  1381. return key < p.key;
  1382. }
  1383. };
  1384. Variant::operator String() const {
  1385. return stringify(0);
  1386. }
  1387. template <class T>
  1388. String stringify_vector(const T &vec, int recursion_count) {
  1389. String str("[");
  1390. for (int i = 0; i < vec.size(); i++) {
  1391. if (i > 0) {
  1392. str += ", ";
  1393. }
  1394. str = str + Variant(vec[i]).stringify(recursion_count);
  1395. }
  1396. str += "]";
  1397. return str;
  1398. }
  1399. String Variant::stringify(int recursion_count) const {
  1400. switch (type) {
  1401. case NIL:
  1402. return "null";
  1403. case BOOL:
  1404. return _data._bool ? "true" : "false";
  1405. case INT:
  1406. return itos(_data._int);
  1407. case FLOAT:
  1408. return rtos(_data._float);
  1409. case STRING:
  1410. return *reinterpret_cast<const String *>(_data._mem);
  1411. case VECTOR2:
  1412. return operator Vector2();
  1413. case VECTOR2I:
  1414. return operator Vector2i();
  1415. case RECT2:
  1416. return operator Rect2();
  1417. case RECT2I:
  1418. return operator Rect2i();
  1419. case TRANSFORM2D:
  1420. return operator Transform2D();
  1421. case VECTOR3:
  1422. return operator Vector3();
  1423. case VECTOR3I:
  1424. return operator Vector3i();
  1425. case PLANE:
  1426. return operator Plane();
  1427. case AABB:
  1428. return operator ::AABB();
  1429. case QUATERNION:
  1430. return operator Quaternion();
  1431. case BASIS:
  1432. return operator Basis();
  1433. case TRANSFORM3D:
  1434. return operator Transform3D();
  1435. case STRING_NAME:
  1436. return operator StringName();
  1437. case NODE_PATH:
  1438. return operator NodePath();
  1439. case COLOR:
  1440. return operator Color();
  1441. case DICTIONARY: {
  1442. const Dictionary &d = *reinterpret_cast<const Dictionary *>(_data._mem);
  1443. if (recursion_count > MAX_RECURSION) {
  1444. ERR_PRINT("Max recursion reached");
  1445. return "{...}";
  1446. }
  1447. String str("{");
  1448. List<Variant> keys;
  1449. d.get_key_list(&keys);
  1450. Vector<_VariantStrPair> pairs;
  1451. recursion_count++;
  1452. for (List<Variant>::Element *E = keys.front(); E; E = E->next()) {
  1453. _VariantStrPair sp;
  1454. sp.key = E->get().stringify(recursion_count);
  1455. sp.value = d[E->get()].stringify(recursion_count);
  1456. pairs.push_back(sp);
  1457. }
  1458. pairs.sort();
  1459. for (int i = 0; i < pairs.size(); i++) {
  1460. if (i > 0) {
  1461. str += ", ";
  1462. }
  1463. str += pairs[i].key + ":" + pairs[i].value;
  1464. }
  1465. str += "}";
  1466. return str;
  1467. } break;
  1468. case PACKED_VECTOR2_ARRAY: {
  1469. return stringify_vector(operator Vector<Vector2>(), recursion_count);
  1470. } break;
  1471. case PACKED_VECTOR3_ARRAY: {
  1472. return stringify_vector(operator Vector<Vector3>(), recursion_count);
  1473. } break;
  1474. case PACKED_COLOR_ARRAY: {
  1475. return stringify_vector(operator Vector<Color>(), recursion_count);
  1476. } break;
  1477. case PACKED_STRING_ARRAY: {
  1478. return stringify_vector(operator Vector<String>(), recursion_count);
  1479. } break;
  1480. case PACKED_BYTE_ARRAY: {
  1481. return stringify_vector(operator Vector<uint8_t>(), recursion_count);
  1482. } break;
  1483. case PACKED_INT32_ARRAY: {
  1484. return stringify_vector(operator Vector<int32_t>(), recursion_count);
  1485. } break;
  1486. case PACKED_INT64_ARRAY: {
  1487. return stringify_vector(operator Vector<int64_t>(), recursion_count);
  1488. } break;
  1489. case PACKED_FLOAT32_ARRAY: {
  1490. return stringify_vector(operator Vector<float>(), recursion_count);
  1491. } break;
  1492. case PACKED_FLOAT64_ARRAY: {
  1493. return stringify_vector(operator Vector<double>(), recursion_count);
  1494. } break;
  1495. case ARRAY: {
  1496. Array arr = operator Array();
  1497. if (recursion_count > MAX_RECURSION) {
  1498. ERR_PRINT("Max recursion reached");
  1499. return "[...]";
  1500. }
  1501. String str = stringify_vector(arr, recursion_count);
  1502. return str;
  1503. } break;
  1504. case OBJECT: {
  1505. if (_get_obj().obj) {
  1506. if (!_get_obj().id.is_ref_counted() && ObjectDB::get_instance(_get_obj().id) == nullptr) {
  1507. return "[Freed Object]";
  1508. }
  1509. return _get_obj().obj->to_string();
  1510. } else {
  1511. return "[Object:null]";
  1512. }
  1513. } break;
  1514. case CALLABLE: {
  1515. const Callable &c = *reinterpret_cast<const Callable *>(_data._mem);
  1516. return c;
  1517. } break;
  1518. case SIGNAL: {
  1519. const Signal &s = *reinterpret_cast<const Signal *>(_data._mem);
  1520. return s;
  1521. } break;
  1522. case RID: {
  1523. const ::RID &s = *reinterpret_cast<const ::RID *>(_data._mem);
  1524. return "RID(" + itos(s.get_id()) + ")";
  1525. } break;
  1526. default: {
  1527. return "[" + get_type_name(type) + "]";
  1528. }
  1529. }
  1530. return "";
  1531. }
  1532. String Variant::to_json_string() const {
  1533. JSON json;
  1534. return json.stringify(*this);
  1535. }
  1536. Variant::operator Vector2() const {
  1537. if (type == VECTOR2) {
  1538. return *reinterpret_cast<const Vector2 *>(_data._mem);
  1539. } else if (type == VECTOR2I) {
  1540. return *reinterpret_cast<const Vector2i *>(_data._mem);
  1541. } else if (type == VECTOR3) {
  1542. return Vector2(reinterpret_cast<const Vector3 *>(_data._mem)->x, reinterpret_cast<const Vector3 *>(_data._mem)->y);
  1543. } else if (type == VECTOR3I) {
  1544. return Vector2(reinterpret_cast<const Vector3i *>(_data._mem)->x, reinterpret_cast<const Vector3i *>(_data._mem)->y);
  1545. } else {
  1546. return Vector2();
  1547. }
  1548. }
  1549. Variant::operator Vector2i() const {
  1550. if (type == VECTOR2I) {
  1551. return *reinterpret_cast<const Vector2i *>(_data._mem);
  1552. } else if (type == VECTOR2) {
  1553. return *reinterpret_cast<const Vector2 *>(_data._mem);
  1554. } else if (type == VECTOR3) {
  1555. return Vector2(reinterpret_cast<const Vector3 *>(_data._mem)->x, reinterpret_cast<const Vector3 *>(_data._mem)->y);
  1556. } else if (type == VECTOR3I) {
  1557. return Vector2(reinterpret_cast<const Vector3i *>(_data._mem)->x, reinterpret_cast<const Vector3i *>(_data._mem)->y);
  1558. } else {
  1559. return Vector2i();
  1560. }
  1561. }
  1562. Variant::operator Rect2() const {
  1563. if (type == RECT2) {
  1564. return *reinterpret_cast<const Rect2 *>(_data._mem);
  1565. } else if (type == RECT2I) {
  1566. return *reinterpret_cast<const Rect2i *>(_data._mem);
  1567. } else {
  1568. return Rect2();
  1569. }
  1570. }
  1571. Variant::operator Rect2i() const {
  1572. if (type == RECT2I) {
  1573. return *reinterpret_cast<const Rect2i *>(_data._mem);
  1574. } else if (type == RECT2) {
  1575. return *reinterpret_cast<const Rect2 *>(_data._mem);
  1576. } else {
  1577. return Rect2i();
  1578. }
  1579. }
  1580. Variant::operator Vector3() const {
  1581. if (type == VECTOR3) {
  1582. return *reinterpret_cast<const Vector3 *>(_data._mem);
  1583. } else if (type == VECTOR3I) {
  1584. return *reinterpret_cast<const Vector3i *>(_data._mem);
  1585. } else if (type == VECTOR2) {
  1586. return Vector3(reinterpret_cast<const Vector2 *>(_data._mem)->x, reinterpret_cast<const Vector2 *>(_data._mem)->y, 0.0);
  1587. } else if (type == VECTOR2I) {
  1588. return Vector3(reinterpret_cast<const Vector2i *>(_data._mem)->x, reinterpret_cast<const Vector2i *>(_data._mem)->y, 0.0);
  1589. } else {
  1590. return Vector3();
  1591. }
  1592. }
  1593. Variant::operator Vector3i() const {
  1594. if (type == VECTOR3I) {
  1595. return *reinterpret_cast<const Vector3i *>(_data._mem);
  1596. } else if (type == VECTOR3) {
  1597. return *reinterpret_cast<const Vector3 *>(_data._mem);
  1598. } else if (type == VECTOR2) {
  1599. return Vector3i(reinterpret_cast<const Vector2 *>(_data._mem)->x, reinterpret_cast<const Vector2 *>(_data._mem)->y, 0.0);
  1600. } else if (type == VECTOR2I) {
  1601. return Vector3i(reinterpret_cast<const Vector2i *>(_data._mem)->x, reinterpret_cast<const Vector2i *>(_data._mem)->y, 0.0);
  1602. } else {
  1603. return Vector3i();
  1604. }
  1605. }
  1606. Variant::operator Plane() const {
  1607. if (type == PLANE) {
  1608. return *reinterpret_cast<const Plane *>(_data._mem);
  1609. } else {
  1610. return Plane();
  1611. }
  1612. }
  1613. Variant::operator ::AABB() const {
  1614. if (type == AABB) {
  1615. return *_data._aabb;
  1616. } else {
  1617. return ::AABB();
  1618. }
  1619. }
  1620. Variant::operator Basis() const {
  1621. if (type == BASIS) {
  1622. return *_data._basis;
  1623. } else if (type == QUATERNION) {
  1624. return *reinterpret_cast<const Quaternion *>(_data._mem);
  1625. } else if (type == TRANSFORM3D) { // unexposed in Variant::can_convert?
  1626. return _data._transform3d->basis;
  1627. } else {
  1628. return Basis();
  1629. }
  1630. }
  1631. Variant::operator Quaternion() const {
  1632. if (type == QUATERNION) {
  1633. return *reinterpret_cast<const Quaternion *>(_data._mem);
  1634. } else if (type == BASIS) {
  1635. return *_data._basis;
  1636. } else if (type == TRANSFORM3D) {
  1637. return _data._transform3d->basis;
  1638. } else {
  1639. return Quaternion();
  1640. }
  1641. }
  1642. Variant::operator Transform3D() const {
  1643. if (type == TRANSFORM3D) {
  1644. return *_data._transform3d;
  1645. } else if (type == BASIS) {
  1646. return Transform3D(*_data._basis, Vector3());
  1647. } else if (type == QUATERNION) {
  1648. return Transform3D(Basis(*reinterpret_cast<const Quaternion *>(_data._mem)), Vector3());
  1649. } else if (type == TRANSFORM2D) {
  1650. const Transform2D &t = *_data._transform2d;
  1651. Transform3D m;
  1652. m.basis.elements[0][0] = t.elements[0][0];
  1653. m.basis.elements[1][0] = t.elements[0][1];
  1654. m.basis.elements[0][1] = t.elements[1][0];
  1655. m.basis.elements[1][1] = t.elements[1][1];
  1656. m.origin[0] = t.elements[2][0];
  1657. m.origin[1] = t.elements[2][1];
  1658. return m;
  1659. } else {
  1660. return Transform3D();
  1661. }
  1662. }
  1663. Variant::operator Transform2D() const {
  1664. if (type == TRANSFORM2D) {
  1665. return *_data._transform2d;
  1666. } else if (type == TRANSFORM3D) {
  1667. const Transform3D &t = *_data._transform3d;
  1668. Transform2D m;
  1669. m.elements[0][0] = t.basis.elements[0][0];
  1670. m.elements[0][1] = t.basis.elements[1][0];
  1671. m.elements[1][0] = t.basis.elements[0][1];
  1672. m.elements[1][1] = t.basis.elements[1][1];
  1673. m.elements[2][0] = t.origin[0];
  1674. m.elements[2][1] = t.origin[1];
  1675. return m;
  1676. } else {
  1677. return Transform2D();
  1678. }
  1679. }
  1680. Variant::operator Color() const {
  1681. if (type == COLOR) {
  1682. return *reinterpret_cast<const Color *>(_data._mem);
  1683. } else if (type == STRING) {
  1684. return Color(operator String());
  1685. } else if (type == INT) {
  1686. return Color::hex(operator int());
  1687. } else {
  1688. return Color();
  1689. }
  1690. }
  1691. Variant::operator NodePath() const {
  1692. if (type == NODE_PATH) {
  1693. return *reinterpret_cast<const NodePath *>(_data._mem);
  1694. } else if (type == STRING) {
  1695. return NodePath(operator String());
  1696. } else {
  1697. return NodePath();
  1698. }
  1699. }
  1700. Variant::operator ::RID() const {
  1701. if (type == RID) {
  1702. return *reinterpret_cast<const ::RID *>(_data._mem);
  1703. } else if (type == OBJECT && _get_obj().obj == nullptr) {
  1704. return ::RID();
  1705. } else if (type == OBJECT && _get_obj().obj) {
  1706. #ifdef DEBUG_ENABLED
  1707. if (EngineDebugger::is_active()) {
  1708. ERR_FAIL_COND_V_MSG(ObjectDB::get_instance(_get_obj().id) == nullptr, ::RID(), "Invalid pointer (object was freed).");
  1709. }
  1710. #endif
  1711. Callable::CallError ce;
  1712. Variant ret = _get_obj().obj->call(CoreStringNames::get_singleton()->get_rid, nullptr, 0, ce);
  1713. if (ce.error == Callable::CallError::CALL_OK && ret.get_type() == Variant::RID) {
  1714. return ret;
  1715. }
  1716. return ::RID();
  1717. } else {
  1718. return ::RID();
  1719. }
  1720. }
  1721. Variant::operator Object *() const {
  1722. if (type == OBJECT) {
  1723. return _get_obj().obj;
  1724. } else {
  1725. return nullptr;
  1726. }
  1727. }
  1728. Object *Variant::get_validated_object_with_check(bool &r_previously_freed) const {
  1729. if (type == OBJECT) {
  1730. Object *instance = ObjectDB::get_instance(_get_obj().id);
  1731. r_previously_freed = !instance && _get_obj().id != ObjectID();
  1732. return instance;
  1733. } else {
  1734. r_previously_freed = false;
  1735. return nullptr;
  1736. }
  1737. }
  1738. Object *Variant::get_validated_object() const {
  1739. if (type == OBJECT) {
  1740. return ObjectDB::get_instance(_get_obj().id);
  1741. } else {
  1742. return nullptr;
  1743. }
  1744. }
  1745. Variant::operator Dictionary() const {
  1746. if (type == DICTIONARY) {
  1747. return *reinterpret_cast<const Dictionary *>(_data._mem);
  1748. } else {
  1749. return Dictionary();
  1750. }
  1751. }
  1752. Variant::operator Callable() const {
  1753. if (type == CALLABLE) {
  1754. return *reinterpret_cast<const Callable *>(_data._mem);
  1755. } else {
  1756. return Callable();
  1757. }
  1758. }
  1759. Variant::operator Signal() const {
  1760. if (type == SIGNAL) {
  1761. return *reinterpret_cast<const Signal *>(_data._mem);
  1762. } else {
  1763. return Signal();
  1764. }
  1765. }
  1766. template <class DA, class SA>
  1767. inline DA _convert_array(const SA &p_array) {
  1768. DA da;
  1769. da.resize(p_array.size());
  1770. for (int i = 0; i < p_array.size(); i++) {
  1771. da.set(i, Variant(p_array.get(i)));
  1772. }
  1773. return da;
  1774. }
  1775. template <class DA>
  1776. inline DA _convert_array_from_variant(const Variant &p_variant) {
  1777. switch (p_variant.get_type()) {
  1778. case Variant::ARRAY: {
  1779. return _convert_array<DA, Array>(p_variant.operator Array());
  1780. }
  1781. case Variant::PACKED_BYTE_ARRAY: {
  1782. return _convert_array<DA, Vector<uint8_t>>(p_variant.operator Vector<uint8_t>());
  1783. }
  1784. case Variant::PACKED_INT32_ARRAY: {
  1785. return _convert_array<DA, Vector<int32_t>>(p_variant.operator Vector<int32_t>());
  1786. }
  1787. case Variant::PACKED_INT64_ARRAY: {
  1788. return _convert_array<DA, Vector<int64_t>>(p_variant.operator Vector<int64_t>());
  1789. }
  1790. case Variant::PACKED_FLOAT32_ARRAY: {
  1791. return _convert_array<DA, Vector<float>>(p_variant.operator Vector<float>());
  1792. }
  1793. case Variant::PACKED_FLOAT64_ARRAY: {
  1794. return _convert_array<DA, Vector<double>>(p_variant.operator Vector<double>());
  1795. }
  1796. case Variant::PACKED_STRING_ARRAY: {
  1797. return _convert_array<DA, Vector<String>>(p_variant.operator Vector<String>());
  1798. }
  1799. case Variant::PACKED_VECTOR2_ARRAY: {
  1800. return _convert_array<DA, Vector<Vector2>>(p_variant.operator Vector<Vector2>());
  1801. }
  1802. case Variant::PACKED_VECTOR3_ARRAY: {
  1803. return _convert_array<DA, Vector<Vector3>>(p_variant.operator Vector<Vector3>());
  1804. }
  1805. case Variant::PACKED_COLOR_ARRAY: {
  1806. return _convert_array<DA, Vector<Color>>(p_variant.operator Vector<Color>());
  1807. }
  1808. default: {
  1809. return DA();
  1810. }
  1811. }
  1812. }
  1813. Variant::operator Array() const {
  1814. if (type == ARRAY) {
  1815. return *reinterpret_cast<const Array *>(_data._mem);
  1816. } else {
  1817. return _convert_array_from_variant<Array>(*this);
  1818. }
  1819. }
  1820. Variant::operator Vector<uint8_t>() const {
  1821. if (type == PACKED_BYTE_ARRAY) {
  1822. return static_cast<PackedArrayRef<uint8_t> *>(_data.packed_array)->array;
  1823. } else {
  1824. return _convert_array_from_variant<Vector<uint8_t>>(*this);
  1825. }
  1826. }
  1827. Variant::operator Vector<int32_t>() const {
  1828. if (type == PACKED_INT32_ARRAY) {
  1829. return static_cast<PackedArrayRef<int32_t> *>(_data.packed_array)->array;
  1830. } else {
  1831. return _convert_array_from_variant<Vector<int>>(*this);
  1832. }
  1833. }
  1834. Variant::operator Vector<int64_t>() const {
  1835. if (type == PACKED_INT64_ARRAY) {
  1836. return static_cast<PackedArrayRef<int64_t> *>(_data.packed_array)->array;
  1837. } else {
  1838. return _convert_array_from_variant<Vector<int64_t>>(*this);
  1839. }
  1840. }
  1841. Variant::operator Vector<float>() const {
  1842. if (type == PACKED_FLOAT32_ARRAY) {
  1843. return static_cast<PackedArrayRef<float> *>(_data.packed_array)->array;
  1844. } else {
  1845. return _convert_array_from_variant<Vector<float>>(*this);
  1846. }
  1847. }
  1848. Variant::operator Vector<double>() const {
  1849. if (type == PACKED_FLOAT64_ARRAY) {
  1850. return static_cast<PackedArrayRef<double> *>(_data.packed_array)->array;
  1851. } else {
  1852. return _convert_array_from_variant<Vector<double>>(*this);
  1853. }
  1854. }
  1855. Variant::operator Vector<String>() const {
  1856. if (type == PACKED_STRING_ARRAY) {
  1857. return static_cast<PackedArrayRef<String> *>(_data.packed_array)->array;
  1858. } else {
  1859. return _convert_array_from_variant<Vector<String>>(*this);
  1860. }
  1861. }
  1862. Variant::operator Vector<Vector3>() const {
  1863. if (type == PACKED_VECTOR3_ARRAY) {
  1864. return static_cast<PackedArrayRef<Vector3> *>(_data.packed_array)->array;
  1865. } else {
  1866. return _convert_array_from_variant<Vector<Vector3>>(*this);
  1867. }
  1868. }
  1869. Variant::operator Vector<Vector2>() const {
  1870. if (type == PACKED_VECTOR2_ARRAY) {
  1871. return static_cast<PackedArrayRef<Vector2> *>(_data.packed_array)->array;
  1872. } else {
  1873. return _convert_array_from_variant<Vector<Vector2>>(*this);
  1874. }
  1875. }
  1876. Variant::operator Vector<Color>() const {
  1877. if (type == PACKED_COLOR_ARRAY) {
  1878. return static_cast<PackedArrayRef<Color> *>(_data.packed_array)->array;
  1879. } else {
  1880. return _convert_array_from_variant<Vector<Color>>(*this);
  1881. }
  1882. }
  1883. /* helpers */
  1884. Variant::operator Vector<::RID>() const {
  1885. Array va = operator Array();
  1886. Vector<::RID> rids;
  1887. rids.resize(va.size());
  1888. for (int i = 0; i < rids.size(); i++) {
  1889. rids.write[i] = va[i];
  1890. }
  1891. return rids;
  1892. }
  1893. Variant::operator Vector<Plane>() const {
  1894. Array va = operator Array();
  1895. Vector<Plane> planes;
  1896. int va_size = va.size();
  1897. if (va_size == 0) {
  1898. return planes;
  1899. }
  1900. planes.resize(va_size);
  1901. Plane *w = planes.ptrw();
  1902. for (int i = 0; i < va_size; i++) {
  1903. w[i] = va[i];
  1904. }
  1905. return planes;
  1906. }
  1907. Variant::operator Vector<Face3>() const {
  1908. Vector<Vector3> va = operator Vector<Vector3>();
  1909. Vector<Face3> faces;
  1910. int va_size = va.size();
  1911. if (va_size == 0) {
  1912. return faces;
  1913. }
  1914. faces.resize(va_size / 3);
  1915. Face3 *w = faces.ptrw();
  1916. const Vector3 *r = va.ptr();
  1917. for (int i = 0; i < va_size; i++) {
  1918. w[i / 3].vertex[i % 3] = r[i];
  1919. }
  1920. return faces;
  1921. }
  1922. Variant::operator Vector<Variant>() const {
  1923. Array va = operator Array();
  1924. Vector<Variant> variants;
  1925. int va_size = va.size();
  1926. if (va_size == 0) {
  1927. return variants;
  1928. }
  1929. variants.resize(va_size);
  1930. Variant *w = variants.ptrw();
  1931. for (int i = 0; i < va_size; i++) {
  1932. w[i] = va[i];
  1933. }
  1934. return variants;
  1935. }
  1936. Variant::operator Vector<StringName>() const {
  1937. Vector<String> from = operator Vector<String>();
  1938. Vector<StringName> to;
  1939. int len = from.size();
  1940. to.resize(len);
  1941. for (int i = 0; i < len; i++) {
  1942. to.write[i] = from[i];
  1943. }
  1944. return to;
  1945. }
  1946. Variant::operator Side() const {
  1947. return (Side) operator int();
  1948. }
  1949. Variant::operator Orientation() const {
  1950. return (Orientation) operator int();
  1951. }
  1952. Variant::operator IPAddress() const {
  1953. if (type == PACKED_FLOAT32_ARRAY || type == PACKED_INT32_ARRAY || type == PACKED_FLOAT64_ARRAY || type == PACKED_INT64_ARRAY || type == PACKED_BYTE_ARRAY) {
  1954. Vector<int> addr = operator Vector<int>();
  1955. if (addr.size() == 4) {
  1956. return IPAddress(addr.get(0), addr.get(1), addr.get(2), addr.get(3));
  1957. }
  1958. }
  1959. return IPAddress(operator String());
  1960. }
  1961. Variant::Variant(bool p_bool) {
  1962. type = BOOL;
  1963. _data._bool = p_bool;
  1964. }
  1965. Variant::Variant(signed int p_int) {
  1966. type = INT;
  1967. _data._int = p_int;
  1968. }
  1969. Variant::Variant(unsigned int p_int) {
  1970. type = INT;
  1971. _data._int = p_int;
  1972. }
  1973. #ifdef NEED_LONG_INT
  1974. Variant::Variant(signed long p_int) {
  1975. type = INT;
  1976. _data._int = p_int;
  1977. }
  1978. Variant::Variant(unsigned long p_int) {
  1979. type = INT;
  1980. _data._int = p_int;
  1981. }
  1982. #endif
  1983. Variant::Variant(int64_t p_int) {
  1984. type = INT;
  1985. _data._int = p_int;
  1986. }
  1987. Variant::Variant(uint64_t p_int) {
  1988. type = INT;
  1989. _data._int = p_int;
  1990. }
  1991. Variant::Variant(signed short p_short) {
  1992. type = INT;
  1993. _data._int = p_short;
  1994. }
  1995. Variant::Variant(unsigned short p_short) {
  1996. type = INT;
  1997. _data._int = p_short;
  1998. }
  1999. Variant::Variant(signed char p_char) {
  2000. type = INT;
  2001. _data._int = p_char;
  2002. }
  2003. Variant::Variant(unsigned char p_char) {
  2004. type = INT;
  2005. _data._int = p_char;
  2006. }
  2007. Variant::Variant(float p_float) {
  2008. type = FLOAT;
  2009. _data._float = p_float;
  2010. }
  2011. Variant::Variant(double p_double) {
  2012. type = FLOAT;
  2013. _data._float = p_double;
  2014. }
  2015. Variant::Variant(const ObjectID &p_id) {
  2016. type = INT;
  2017. _data._int = p_id;
  2018. }
  2019. Variant::Variant(const StringName &p_string) {
  2020. type = STRING_NAME;
  2021. memnew_placement(_data._mem, StringName(p_string));
  2022. }
  2023. Variant::Variant(const String &p_string) {
  2024. type = STRING;
  2025. memnew_placement(_data._mem, String(p_string));
  2026. }
  2027. Variant::Variant(const char *const p_cstring) {
  2028. type = STRING;
  2029. memnew_placement(_data._mem, String((const char *)p_cstring));
  2030. }
  2031. Variant::Variant(const char32_t *p_wstring) {
  2032. type = STRING;
  2033. memnew_placement(_data._mem, String(p_wstring));
  2034. }
  2035. Variant::Variant(const Vector3 &p_vector3) {
  2036. type = VECTOR3;
  2037. memnew_placement(_data._mem, Vector3(p_vector3));
  2038. }
  2039. Variant::Variant(const Vector3i &p_vector3i) {
  2040. type = VECTOR3I;
  2041. memnew_placement(_data._mem, Vector3i(p_vector3i));
  2042. }
  2043. Variant::Variant(const Vector2 &p_vector2) {
  2044. type = VECTOR2;
  2045. memnew_placement(_data._mem, Vector2(p_vector2));
  2046. }
  2047. Variant::Variant(const Vector2i &p_vector2i) {
  2048. type = VECTOR2I;
  2049. memnew_placement(_data._mem, Vector2i(p_vector2i));
  2050. }
  2051. Variant::Variant(const Rect2 &p_rect2) {
  2052. type = RECT2;
  2053. memnew_placement(_data._mem, Rect2(p_rect2));
  2054. }
  2055. Variant::Variant(const Rect2i &p_rect2i) {
  2056. type = RECT2I;
  2057. memnew_placement(_data._mem, Rect2i(p_rect2i));
  2058. }
  2059. Variant::Variant(const Plane &p_plane) {
  2060. type = PLANE;
  2061. memnew_placement(_data._mem, Plane(p_plane));
  2062. }
  2063. Variant::Variant(const ::AABB &p_aabb) {
  2064. type = AABB;
  2065. _data._aabb = memnew(::AABB(p_aabb));
  2066. }
  2067. Variant::Variant(const Basis &p_matrix) {
  2068. type = BASIS;
  2069. _data._basis = memnew(Basis(p_matrix));
  2070. }
  2071. Variant::Variant(const Quaternion &p_quaternion) {
  2072. type = QUATERNION;
  2073. memnew_placement(_data._mem, Quaternion(p_quaternion));
  2074. }
  2075. Variant::Variant(const Transform3D &p_transform) {
  2076. type = TRANSFORM3D;
  2077. _data._transform3d = memnew(Transform3D(p_transform));
  2078. }
  2079. Variant::Variant(const Transform2D &p_transform) {
  2080. type = TRANSFORM2D;
  2081. _data._transform2d = memnew(Transform2D(p_transform));
  2082. }
  2083. Variant::Variant(const Color &p_color) {
  2084. type = COLOR;
  2085. memnew_placement(_data._mem, Color(p_color));
  2086. }
  2087. Variant::Variant(const NodePath &p_node_path) {
  2088. type = NODE_PATH;
  2089. memnew_placement(_data._mem, NodePath(p_node_path));
  2090. }
  2091. Variant::Variant(const ::RID &p_rid) {
  2092. type = RID;
  2093. memnew_placement(_data._mem, ::RID(p_rid));
  2094. }
  2095. Variant::Variant(const Object *p_object) {
  2096. type = OBJECT;
  2097. memnew_placement(_data._mem, ObjData);
  2098. if (p_object) {
  2099. if (p_object->is_ref_counted()) {
  2100. RefCounted *ref_counted = const_cast<RefCounted *>(static_cast<const RefCounted *>(p_object));
  2101. if (!ref_counted->init_ref()) {
  2102. _get_obj().obj = nullptr;
  2103. _get_obj().id = ObjectID();
  2104. return;
  2105. }
  2106. }
  2107. _get_obj().obj = const_cast<Object *>(p_object);
  2108. _get_obj().id = p_object->get_instance_id();
  2109. } else {
  2110. _get_obj().obj = nullptr;
  2111. _get_obj().id = ObjectID();
  2112. }
  2113. }
  2114. Variant::Variant(const Callable &p_callable) {
  2115. type = CALLABLE;
  2116. memnew_placement(_data._mem, Callable(p_callable));
  2117. }
  2118. Variant::Variant(const Signal &p_callable) {
  2119. type = SIGNAL;
  2120. memnew_placement(_data._mem, Signal(p_callable));
  2121. }
  2122. Variant::Variant(const Dictionary &p_dictionary) {
  2123. type = DICTIONARY;
  2124. memnew_placement(_data._mem, Dictionary(p_dictionary));
  2125. }
  2126. Variant::Variant(const Array &p_array) {
  2127. type = ARRAY;
  2128. memnew_placement(_data._mem, Array(p_array));
  2129. }
  2130. Variant::Variant(const Vector<Plane> &p_array) {
  2131. type = ARRAY;
  2132. Array *plane_array = memnew_placement(_data._mem, Array);
  2133. plane_array->resize(p_array.size());
  2134. for (int i = 0; i < p_array.size(); i++) {
  2135. plane_array->operator[](i) = Variant(p_array[i]);
  2136. }
  2137. }
  2138. Variant::Variant(const Vector<::RID> &p_array) {
  2139. type = ARRAY;
  2140. Array *rid_array = memnew_placement(_data._mem, Array);
  2141. rid_array->resize(p_array.size());
  2142. for (int i = 0; i < p_array.size(); i++) {
  2143. rid_array->set(i, Variant(p_array[i]));
  2144. }
  2145. }
  2146. Variant::Variant(const Vector<uint8_t> &p_byte_array) {
  2147. type = PACKED_BYTE_ARRAY;
  2148. _data.packed_array = PackedArrayRef<uint8_t>::create(p_byte_array);
  2149. }
  2150. Variant::Variant(const Vector<int32_t> &p_int32_array) {
  2151. type = PACKED_INT32_ARRAY;
  2152. _data.packed_array = PackedArrayRef<int32_t>::create(p_int32_array);
  2153. }
  2154. Variant::Variant(const Vector<int64_t> &p_int64_array) {
  2155. type = PACKED_INT64_ARRAY;
  2156. _data.packed_array = PackedArrayRef<int64_t>::create(p_int64_array);
  2157. }
  2158. Variant::Variant(const Vector<float> &p_float32_array) {
  2159. type = PACKED_FLOAT32_ARRAY;
  2160. _data.packed_array = PackedArrayRef<float>::create(p_float32_array);
  2161. }
  2162. Variant::Variant(const Vector<double> &p_float64_array) {
  2163. type = PACKED_FLOAT64_ARRAY;
  2164. _data.packed_array = PackedArrayRef<double>::create(p_float64_array);
  2165. }
  2166. Variant::Variant(const Vector<String> &p_string_array) {
  2167. type = PACKED_STRING_ARRAY;
  2168. _data.packed_array = PackedArrayRef<String>::create(p_string_array);
  2169. }
  2170. Variant::Variant(const Vector<Vector3> &p_vector3_array) {
  2171. type = PACKED_VECTOR3_ARRAY;
  2172. _data.packed_array = PackedArrayRef<Vector3>::create(p_vector3_array);
  2173. }
  2174. Variant::Variant(const Vector<Vector2> &p_vector2_array) {
  2175. type = PACKED_VECTOR2_ARRAY;
  2176. _data.packed_array = PackedArrayRef<Vector2>::create(p_vector2_array);
  2177. }
  2178. Variant::Variant(const Vector<Color> &p_color_array) {
  2179. type = PACKED_COLOR_ARRAY;
  2180. _data.packed_array = PackedArrayRef<Color>::create(p_color_array);
  2181. }
  2182. Variant::Variant(const Vector<Face3> &p_face_array) {
  2183. Vector<Vector3> vertices;
  2184. int face_count = p_face_array.size();
  2185. vertices.resize(face_count * 3);
  2186. if (face_count) {
  2187. const Face3 *r = p_face_array.ptr();
  2188. Vector3 *w = vertices.ptrw();
  2189. for (int i = 0; i < face_count; i++) {
  2190. for (int j = 0; j < 3; j++) {
  2191. w[i * 3 + j] = r[i].vertex[j];
  2192. }
  2193. }
  2194. }
  2195. type = NIL;
  2196. *this = vertices;
  2197. }
  2198. /* helpers */
  2199. Variant::Variant(const Vector<Variant> &p_array) {
  2200. type = NIL;
  2201. Array arr;
  2202. arr.resize(p_array.size());
  2203. for (int i = 0; i < p_array.size(); i++) {
  2204. arr[i] = p_array[i];
  2205. }
  2206. *this = arr;
  2207. }
  2208. Variant::Variant(const Vector<StringName> &p_array) {
  2209. type = NIL;
  2210. Vector<String> v;
  2211. int len = p_array.size();
  2212. v.resize(len);
  2213. for (int i = 0; i < len; i++) {
  2214. v.set(i, p_array[i]);
  2215. }
  2216. *this = v;
  2217. }
  2218. void Variant::operator=(const Variant &p_variant) {
  2219. if (unlikely(this == &p_variant)) {
  2220. return;
  2221. }
  2222. if (unlikely(type != p_variant.type)) {
  2223. reference(p_variant);
  2224. return;
  2225. }
  2226. switch (p_variant.type) {
  2227. case NIL: {
  2228. // none
  2229. } break;
  2230. // atomic types
  2231. case BOOL: {
  2232. _data._bool = p_variant._data._bool;
  2233. } break;
  2234. case INT: {
  2235. _data._int = p_variant._data._int;
  2236. } break;
  2237. case FLOAT: {
  2238. _data._float = p_variant._data._float;
  2239. } break;
  2240. case STRING: {
  2241. *reinterpret_cast<String *>(_data._mem) = *reinterpret_cast<const String *>(p_variant._data._mem);
  2242. } break;
  2243. // math types
  2244. case VECTOR2: {
  2245. *reinterpret_cast<Vector2 *>(_data._mem) = *reinterpret_cast<const Vector2 *>(p_variant._data._mem);
  2246. } break;
  2247. case VECTOR2I: {
  2248. *reinterpret_cast<Vector2i *>(_data._mem) = *reinterpret_cast<const Vector2i *>(p_variant._data._mem);
  2249. } break;
  2250. case RECT2: {
  2251. *reinterpret_cast<Rect2 *>(_data._mem) = *reinterpret_cast<const Rect2 *>(p_variant._data._mem);
  2252. } break;
  2253. case RECT2I: {
  2254. *reinterpret_cast<Rect2i *>(_data._mem) = *reinterpret_cast<const Rect2i *>(p_variant._data._mem);
  2255. } break;
  2256. case TRANSFORM2D: {
  2257. *_data._transform2d = *(p_variant._data._transform2d);
  2258. } break;
  2259. case VECTOR3: {
  2260. *reinterpret_cast<Vector3 *>(_data._mem) = *reinterpret_cast<const Vector3 *>(p_variant._data._mem);
  2261. } break;
  2262. case VECTOR3I: {
  2263. *reinterpret_cast<Vector3i *>(_data._mem) = *reinterpret_cast<const Vector3i *>(p_variant._data._mem);
  2264. } break;
  2265. case PLANE: {
  2266. *reinterpret_cast<Plane *>(_data._mem) = *reinterpret_cast<const Plane *>(p_variant._data._mem);
  2267. } break;
  2268. case AABB: {
  2269. *_data._aabb = *(p_variant._data._aabb);
  2270. } break;
  2271. case QUATERNION: {
  2272. *reinterpret_cast<Quaternion *>(_data._mem) = *reinterpret_cast<const Quaternion *>(p_variant._data._mem);
  2273. } break;
  2274. case BASIS: {
  2275. *_data._basis = *(p_variant._data._basis);
  2276. } break;
  2277. case TRANSFORM3D: {
  2278. *_data._transform3d = *(p_variant._data._transform3d);
  2279. } break;
  2280. // misc types
  2281. case COLOR: {
  2282. *reinterpret_cast<Color *>(_data._mem) = *reinterpret_cast<const Color *>(p_variant._data._mem);
  2283. } break;
  2284. case RID: {
  2285. *reinterpret_cast<::RID *>(_data._mem) = *reinterpret_cast<const ::RID *>(p_variant._data._mem);
  2286. } break;
  2287. case OBJECT: {
  2288. if (_get_obj().id.is_ref_counted()) {
  2289. //we are safe that there is a reference here
  2290. RefCounted *ref_counted = static_cast<RefCounted *>(_get_obj().obj);
  2291. if (ref_counted->unreference()) {
  2292. memdelete(ref_counted);
  2293. }
  2294. }
  2295. if (p_variant._get_obj().obj && p_variant._get_obj().id.is_ref_counted()) {
  2296. RefCounted *ref_counted = static_cast<RefCounted *>(p_variant._get_obj().obj);
  2297. if (!ref_counted->reference()) {
  2298. _get_obj().obj = nullptr;
  2299. _get_obj().id = ObjectID();
  2300. break;
  2301. }
  2302. }
  2303. _get_obj().obj = const_cast<Object *>(p_variant._get_obj().obj);
  2304. _get_obj().id = p_variant._get_obj().id;
  2305. } break;
  2306. case CALLABLE: {
  2307. *reinterpret_cast<Callable *>(_data._mem) = *reinterpret_cast<const Callable *>(p_variant._data._mem);
  2308. } break;
  2309. case SIGNAL: {
  2310. *reinterpret_cast<Signal *>(_data._mem) = *reinterpret_cast<const Signal *>(p_variant._data._mem);
  2311. } break;
  2312. case STRING_NAME: {
  2313. *reinterpret_cast<StringName *>(_data._mem) = *reinterpret_cast<const StringName *>(p_variant._data._mem);
  2314. } break;
  2315. case NODE_PATH: {
  2316. *reinterpret_cast<NodePath *>(_data._mem) = *reinterpret_cast<const NodePath *>(p_variant._data._mem);
  2317. } break;
  2318. case DICTIONARY: {
  2319. *reinterpret_cast<Dictionary *>(_data._mem) = *reinterpret_cast<const Dictionary *>(p_variant._data._mem);
  2320. } break;
  2321. case ARRAY: {
  2322. *reinterpret_cast<Array *>(_data._mem) = *reinterpret_cast<const Array *>(p_variant._data._mem);
  2323. } break;
  2324. // arrays
  2325. case PACKED_BYTE_ARRAY: {
  2326. _data.packed_array = PackedArrayRef<uint8_t>::reference_from(_data.packed_array, p_variant._data.packed_array);
  2327. } break;
  2328. case PACKED_INT32_ARRAY: {
  2329. _data.packed_array = PackedArrayRef<int32_t>::reference_from(_data.packed_array, p_variant._data.packed_array);
  2330. } break;
  2331. case PACKED_INT64_ARRAY: {
  2332. _data.packed_array = PackedArrayRef<int64_t>::reference_from(_data.packed_array, p_variant._data.packed_array);
  2333. } break;
  2334. case PACKED_FLOAT32_ARRAY: {
  2335. _data.packed_array = PackedArrayRef<float>::reference_from(_data.packed_array, p_variant._data.packed_array);
  2336. } break;
  2337. case PACKED_FLOAT64_ARRAY: {
  2338. _data.packed_array = PackedArrayRef<double>::reference_from(_data.packed_array, p_variant._data.packed_array);
  2339. } break;
  2340. case PACKED_STRING_ARRAY: {
  2341. _data.packed_array = PackedArrayRef<String>::reference_from(_data.packed_array, p_variant._data.packed_array);
  2342. } break;
  2343. case PACKED_VECTOR2_ARRAY: {
  2344. _data.packed_array = PackedArrayRef<Vector2>::reference_from(_data.packed_array, p_variant._data.packed_array);
  2345. } break;
  2346. case PACKED_VECTOR3_ARRAY: {
  2347. _data.packed_array = PackedArrayRef<Vector3>::reference_from(_data.packed_array, p_variant._data.packed_array);
  2348. } break;
  2349. case PACKED_COLOR_ARRAY: {
  2350. _data.packed_array = PackedArrayRef<Color>::reference_from(_data.packed_array, p_variant._data.packed_array);
  2351. } break;
  2352. default: {
  2353. }
  2354. }
  2355. }
  2356. Variant::Variant(const IPAddress &p_address) {
  2357. type = STRING;
  2358. memnew_placement(_data._mem, String(p_address));
  2359. }
  2360. Variant::Variant(const Variant &p_variant) {
  2361. reference(p_variant);
  2362. }
  2363. uint32_t Variant::hash() const {
  2364. return recursive_hash(0);
  2365. }
  2366. uint32_t Variant::recursive_hash(int recursion_count) const {
  2367. switch (type) {
  2368. case NIL: {
  2369. return 0;
  2370. } break;
  2371. case BOOL: {
  2372. return _data._bool ? 1 : 0;
  2373. } break;
  2374. case INT: {
  2375. return hash_one_uint64((uint64_t)_data._int);
  2376. } break;
  2377. case FLOAT: {
  2378. return hash_djb2_one_float(_data._float);
  2379. } break;
  2380. case STRING: {
  2381. return reinterpret_cast<const String *>(_data._mem)->hash();
  2382. } break;
  2383. // math types
  2384. case VECTOR2: {
  2385. uint32_t hash = hash_djb2_one_float(reinterpret_cast<const Vector2 *>(_data._mem)->x);
  2386. return hash_djb2_one_float(reinterpret_cast<const Vector2 *>(_data._mem)->y, hash);
  2387. } break;
  2388. case VECTOR2I: {
  2389. uint32_t hash = hash_djb2_one_32((uint32_t) reinterpret_cast<const Vector2i *>(_data._mem)->x);
  2390. return hash_djb2_one_32((uint32_t) reinterpret_cast<const Vector2i *>(_data._mem)->y, hash);
  2391. } break;
  2392. case RECT2: {
  2393. uint32_t hash = hash_djb2_one_float(reinterpret_cast<const Rect2 *>(_data._mem)->position.x);
  2394. hash = hash_djb2_one_float(reinterpret_cast<const Rect2 *>(_data._mem)->position.y, hash);
  2395. hash = hash_djb2_one_float(reinterpret_cast<const Rect2 *>(_data._mem)->size.x, hash);
  2396. return hash_djb2_one_float(reinterpret_cast<const Rect2 *>(_data._mem)->size.y, hash);
  2397. } break;
  2398. case RECT2I: {
  2399. uint32_t hash = hash_djb2_one_32((uint32_t) reinterpret_cast<const Rect2i *>(_data._mem)->position.x);
  2400. hash = hash_djb2_one_32((uint32_t) reinterpret_cast<const Rect2i *>(_data._mem)->position.y, hash);
  2401. hash = hash_djb2_one_32((uint32_t) reinterpret_cast<const Rect2i *>(_data._mem)->size.x, hash);
  2402. return hash_djb2_one_32((uint32_t) reinterpret_cast<const Rect2i *>(_data._mem)->size.y, hash);
  2403. } break;
  2404. case TRANSFORM2D: {
  2405. uint32_t hash = 5831;
  2406. for (int i = 0; i < 3; i++) {
  2407. for (int j = 0; j < 2; j++) {
  2408. hash = hash_djb2_one_float(_data._transform2d->elements[i][j], hash);
  2409. }
  2410. }
  2411. return hash;
  2412. } break;
  2413. case VECTOR3: {
  2414. uint32_t hash = hash_djb2_one_float(reinterpret_cast<const Vector3 *>(_data._mem)->x);
  2415. hash = hash_djb2_one_float(reinterpret_cast<const Vector3 *>(_data._mem)->y, hash);
  2416. return hash_djb2_one_float(reinterpret_cast<const Vector3 *>(_data._mem)->z, hash);
  2417. } break;
  2418. case VECTOR3I: {
  2419. uint32_t hash = hash_djb2_one_32((uint32_t) reinterpret_cast<const Vector3i *>(_data._mem)->x);
  2420. hash = hash_djb2_one_32((uint32_t) reinterpret_cast<const Vector3i *>(_data._mem)->y, hash);
  2421. return hash_djb2_one_32((uint32_t) reinterpret_cast<const Vector3i *>(_data._mem)->z, hash);
  2422. } break;
  2423. case PLANE: {
  2424. uint32_t hash = hash_djb2_one_float(reinterpret_cast<const Plane *>(_data._mem)->normal.x);
  2425. hash = hash_djb2_one_float(reinterpret_cast<const Plane *>(_data._mem)->normal.y, hash);
  2426. hash = hash_djb2_one_float(reinterpret_cast<const Plane *>(_data._mem)->normal.z, hash);
  2427. return hash_djb2_one_float(reinterpret_cast<const Plane *>(_data._mem)->d, hash);
  2428. } break;
  2429. case AABB: {
  2430. uint32_t hash = 5831;
  2431. for (int i = 0; i < 3; i++) {
  2432. hash = hash_djb2_one_float(_data._aabb->position[i], hash);
  2433. hash = hash_djb2_one_float(_data._aabb->size[i], hash);
  2434. }
  2435. return hash;
  2436. } break;
  2437. case QUATERNION: {
  2438. uint32_t hash = hash_djb2_one_float(reinterpret_cast<const Quaternion *>(_data._mem)->x);
  2439. hash = hash_djb2_one_float(reinterpret_cast<const Quaternion *>(_data._mem)->y, hash);
  2440. hash = hash_djb2_one_float(reinterpret_cast<const Quaternion *>(_data._mem)->z, hash);
  2441. return hash_djb2_one_float(reinterpret_cast<const Quaternion *>(_data._mem)->w, hash);
  2442. } break;
  2443. case BASIS: {
  2444. uint32_t hash = 5831;
  2445. for (int i = 0; i < 3; i++) {
  2446. for (int j = 0; j < 3; j++) {
  2447. hash = hash_djb2_one_float(_data._basis->elements[i][j], hash);
  2448. }
  2449. }
  2450. return hash;
  2451. } break;
  2452. case TRANSFORM3D: {
  2453. uint32_t hash = 5831;
  2454. for (int i = 0; i < 3; i++) {
  2455. for (int j = 0; j < 3; j++) {
  2456. hash = hash_djb2_one_float(_data._transform3d->basis.elements[i][j], hash);
  2457. }
  2458. hash = hash_djb2_one_float(_data._transform3d->origin[i], hash);
  2459. }
  2460. return hash;
  2461. } break;
  2462. // misc types
  2463. case COLOR: {
  2464. uint32_t hash = hash_djb2_one_float(reinterpret_cast<const Color *>(_data._mem)->r);
  2465. hash = hash_djb2_one_float(reinterpret_cast<const Color *>(_data._mem)->g, hash);
  2466. hash = hash_djb2_one_float(reinterpret_cast<const Color *>(_data._mem)->b, hash);
  2467. return hash_djb2_one_float(reinterpret_cast<const Color *>(_data._mem)->a, hash);
  2468. } break;
  2469. case RID: {
  2470. return hash_djb2_one_64(reinterpret_cast<const ::RID *>(_data._mem)->get_id());
  2471. } break;
  2472. case OBJECT: {
  2473. return hash_djb2_one_64(make_uint64_t(_get_obj().obj));
  2474. } break;
  2475. case STRING_NAME: {
  2476. return reinterpret_cast<const StringName *>(_data._mem)->hash();
  2477. } break;
  2478. case NODE_PATH: {
  2479. return reinterpret_cast<const NodePath *>(_data._mem)->hash();
  2480. } break;
  2481. case DICTIONARY: {
  2482. return reinterpret_cast<const Dictionary *>(_data._mem)->recursive_hash(recursion_count);
  2483. } break;
  2484. case CALLABLE: {
  2485. return reinterpret_cast<const Callable *>(_data._mem)->hash();
  2486. } break;
  2487. case SIGNAL: {
  2488. const Signal &s = *reinterpret_cast<const Signal *>(_data._mem);
  2489. uint32_t hash = s.get_name().hash();
  2490. return hash_djb2_one_64(s.get_object_id(), hash);
  2491. } break;
  2492. case ARRAY: {
  2493. const Array &arr = *reinterpret_cast<const Array *>(_data._mem);
  2494. return arr.recursive_hash(recursion_count);
  2495. } break;
  2496. case PACKED_BYTE_ARRAY: {
  2497. const Vector<uint8_t> &arr = PackedArrayRef<uint8_t>::get_array(_data.packed_array);
  2498. int len = arr.size();
  2499. if (likely(len)) {
  2500. const uint8_t *r = arr.ptr();
  2501. return hash_djb2_buffer((uint8_t *)&r[0], len);
  2502. } else {
  2503. return hash_djb2_one_64(0);
  2504. }
  2505. } break;
  2506. case PACKED_INT32_ARRAY: {
  2507. const Vector<int32_t> &arr = PackedArrayRef<int32_t>::get_array(_data.packed_array);
  2508. int len = arr.size();
  2509. if (likely(len)) {
  2510. const int32_t *r = arr.ptr();
  2511. return hash_djb2_buffer((uint8_t *)&r[0], len * sizeof(int32_t));
  2512. } else {
  2513. return hash_djb2_one_64(0);
  2514. }
  2515. } break;
  2516. case PACKED_INT64_ARRAY: {
  2517. const Vector<int64_t> &arr = PackedArrayRef<int64_t>::get_array(_data.packed_array);
  2518. int len = arr.size();
  2519. if (likely(len)) {
  2520. const int64_t *r = arr.ptr();
  2521. return hash_djb2_buffer((uint8_t *)&r[0], len * sizeof(int64_t));
  2522. } else {
  2523. return hash_djb2_one_64(0);
  2524. }
  2525. } break;
  2526. case PACKED_FLOAT32_ARRAY: {
  2527. const Vector<float> &arr = PackedArrayRef<float>::get_array(_data.packed_array);
  2528. int len = arr.size();
  2529. if (likely(len)) {
  2530. const float *r = arr.ptr();
  2531. return hash_djb2_buffer((uint8_t *)&r[0], len * sizeof(float));
  2532. } else {
  2533. return hash_djb2_one_float(0.0);
  2534. }
  2535. } break;
  2536. case PACKED_FLOAT64_ARRAY: {
  2537. const Vector<double> &arr = PackedArrayRef<double>::get_array(_data.packed_array);
  2538. int len = arr.size();
  2539. if (likely(len)) {
  2540. const double *r = arr.ptr();
  2541. return hash_djb2_buffer((uint8_t *)&r[0], len * sizeof(double));
  2542. } else {
  2543. return hash_djb2_one_float(0.0);
  2544. }
  2545. } break;
  2546. case PACKED_STRING_ARRAY: {
  2547. uint32_t hash = 5831;
  2548. const Vector<String> &arr = PackedArrayRef<String>::get_array(_data.packed_array);
  2549. int len = arr.size();
  2550. if (likely(len)) {
  2551. const String *r = arr.ptr();
  2552. for (int i = 0; i < len; i++) {
  2553. hash = hash_djb2_one_32(r[i].hash(), hash);
  2554. }
  2555. }
  2556. return hash;
  2557. } break;
  2558. case PACKED_VECTOR2_ARRAY: {
  2559. uint32_t hash = 5831;
  2560. const Vector<Vector2> &arr = PackedArrayRef<Vector2>::get_array(_data.packed_array);
  2561. int len = arr.size();
  2562. if (likely(len)) {
  2563. const Vector2 *r = arr.ptr();
  2564. for (int i = 0; i < len; i++) {
  2565. hash = hash_djb2_one_float(r[i].x, hash);
  2566. hash = hash_djb2_one_float(r[i].y, hash);
  2567. }
  2568. }
  2569. return hash;
  2570. } break;
  2571. case PACKED_VECTOR3_ARRAY: {
  2572. uint32_t hash = 5831;
  2573. const Vector<Vector3> &arr = PackedArrayRef<Vector3>::get_array(_data.packed_array);
  2574. int len = arr.size();
  2575. if (likely(len)) {
  2576. const Vector3 *r = arr.ptr();
  2577. for (int i = 0; i < len; i++) {
  2578. hash = hash_djb2_one_float(r[i].x, hash);
  2579. hash = hash_djb2_one_float(r[i].y, hash);
  2580. hash = hash_djb2_one_float(r[i].z, hash);
  2581. }
  2582. }
  2583. return hash;
  2584. } break;
  2585. case PACKED_COLOR_ARRAY: {
  2586. uint32_t hash = 5831;
  2587. const Vector<Color> &arr = PackedArrayRef<Color>::get_array(_data.packed_array);
  2588. int len = arr.size();
  2589. if (likely(len)) {
  2590. const Color *r = arr.ptr();
  2591. for (int i = 0; i < len; i++) {
  2592. hash = hash_djb2_one_float(r[i].r, hash);
  2593. hash = hash_djb2_one_float(r[i].g, hash);
  2594. hash = hash_djb2_one_float(r[i].b, hash);
  2595. hash = hash_djb2_one_float(r[i].a, hash);
  2596. }
  2597. }
  2598. return hash;
  2599. } break;
  2600. default: {
  2601. }
  2602. }
  2603. return 0;
  2604. }
  2605. #define hash_compare_scalar(p_lhs, p_rhs) \
  2606. ((p_lhs) == (p_rhs)) || (Math::is_nan(p_lhs) && Math::is_nan(p_rhs))
  2607. #define hash_compare_vector2(p_lhs, p_rhs) \
  2608. (hash_compare_scalar((p_lhs).x, (p_rhs).x)) && \
  2609. (hash_compare_scalar((p_lhs).y, (p_rhs).y))
  2610. #define hash_compare_vector3(p_lhs, p_rhs) \
  2611. (hash_compare_scalar((p_lhs).x, (p_rhs).x)) && \
  2612. (hash_compare_scalar((p_lhs).y, (p_rhs).y)) && \
  2613. (hash_compare_scalar((p_lhs).z, (p_rhs).z))
  2614. #define hash_compare_quaternion(p_lhs, p_rhs) \
  2615. (hash_compare_scalar((p_lhs).x, (p_rhs).x)) && \
  2616. (hash_compare_scalar((p_lhs).y, (p_rhs).y)) && \
  2617. (hash_compare_scalar((p_lhs).z, (p_rhs).z)) && \
  2618. (hash_compare_scalar((p_lhs).w, (p_rhs).w))
  2619. #define hash_compare_color(p_lhs, p_rhs) \
  2620. (hash_compare_scalar((p_lhs).r, (p_rhs).r)) && \
  2621. (hash_compare_scalar((p_lhs).g, (p_rhs).g)) && \
  2622. (hash_compare_scalar((p_lhs).b, (p_rhs).b)) && \
  2623. (hash_compare_scalar((p_lhs).a, (p_rhs).a))
  2624. #define hash_compare_packed_array(p_lhs, p_rhs, p_type, p_compare_func) \
  2625. const Vector<p_type> &l = PackedArrayRef<p_type>::get_array(p_lhs); \
  2626. const Vector<p_type> &r = PackedArrayRef<p_type>::get_array(p_rhs); \
  2627. \
  2628. if (l.size() != r.size()) \
  2629. return false; \
  2630. \
  2631. const p_type *lr = l.ptr(); \
  2632. const p_type *rr = r.ptr(); \
  2633. \
  2634. for (int i = 0; i < l.size(); ++i) { \
  2635. if (!p_compare_func((lr[i]), (rr[i]))) \
  2636. return false; \
  2637. } \
  2638. \
  2639. return true
  2640. bool Variant::hash_compare(const Variant &p_variant, int recursion_count) const {
  2641. if (type != p_variant.type) {
  2642. return false;
  2643. }
  2644. switch (type) {
  2645. case INT: {
  2646. return _data._int == p_variant._data._int;
  2647. } break;
  2648. case FLOAT: {
  2649. return hash_compare_scalar(_data._float, p_variant._data._float);
  2650. } break;
  2651. case STRING: {
  2652. return *reinterpret_cast<const String *>(_data._mem) == *reinterpret_cast<const String *>(p_variant._data._mem);
  2653. } break;
  2654. case VECTOR2: {
  2655. const Vector2 *l = reinterpret_cast<const Vector2 *>(_data._mem);
  2656. const Vector2 *r = reinterpret_cast<const Vector2 *>(p_variant._data._mem);
  2657. return hash_compare_vector2(*l, *r);
  2658. } break;
  2659. case VECTOR2I: {
  2660. const Vector2i *l = reinterpret_cast<const Vector2i *>(_data._mem);
  2661. const Vector2i *r = reinterpret_cast<const Vector2i *>(p_variant._data._mem);
  2662. return *l == *r;
  2663. } break;
  2664. case RECT2: {
  2665. const Rect2 *l = reinterpret_cast<const Rect2 *>(_data._mem);
  2666. const Rect2 *r = reinterpret_cast<const Rect2 *>(p_variant._data._mem);
  2667. return (hash_compare_vector2(l->position, r->position)) &&
  2668. (hash_compare_vector2(l->size, r->size));
  2669. } break;
  2670. case RECT2I: {
  2671. const Rect2i *l = reinterpret_cast<const Rect2i *>(_data._mem);
  2672. const Rect2i *r = reinterpret_cast<const Rect2i *>(p_variant._data._mem);
  2673. return *l == *r;
  2674. } break;
  2675. case TRANSFORM2D: {
  2676. Transform2D *l = _data._transform2d;
  2677. Transform2D *r = p_variant._data._transform2d;
  2678. for (int i = 0; i < 3; i++) {
  2679. if (!(hash_compare_vector2(l->elements[i], r->elements[i]))) {
  2680. return false;
  2681. }
  2682. }
  2683. return true;
  2684. } break;
  2685. case VECTOR3: {
  2686. const Vector3 *l = reinterpret_cast<const Vector3 *>(_data._mem);
  2687. const Vector3 *r = reinterpret_cast<const Vector3 *>(p_variant._data._mem);
  2688. return hash_compare_vector3(*l, *r);
  2689. } break;
  2690. case VECTOR3I: {
  2691. const Vector3i *l = reinterpret_cast<const Vector3i *>(_data._mem);
  2692. const Vector3i *r = reinterpret_cast<const Vector3i *>(p_variant._data._mem);
  2693. return *l == *r;
  2694. } break;
  2695. case PLANE: {
  2696. const Plane *l = reinterpret_cast<const Plane *>(_data._mem);
  2697. const Plane *r = reinterpret_cast<const Plane *>(p_variant._data._mem);
  2698. return (hash_compare_vector3(l->normal, r->normal)) &&
  2699. (hash_compare_scalar(l->d, r->d));
  2700. } break;
  2701. case AABB: {
  2702. const ::AABB *l = _data._aabb;
  2703. const ::AABB *r = p_variant._data._aabb;
  2704. return (hash_compare_vector3(l->position, r->position) &&
  2705. (hash_compare_vector3(l->size, r->size)));
  2706. } break;
  2707. case QUATERNION: {
  2708. const Quaternion *l = reinterpret_cast<const Quaternion *>(_data._mem);
  2709. const Quaternion *r = reinterpret_cast<const Quaternion *>(p_variant._data._mem);
  2710. return hash_compare_quaternion(*l, *r);
  2711. } break;
  2712. case BASIS: {
  2713. const Basis *l = _data._basis;
  2714. const Basis *r = p_variant._data._basis;
  2715. for (int i = 0; i < 3; i++) {
  2716. if (!(hash_compare_vector3(l->elements[i], r->elements[i]))) {
  2717. return false;
  2718. }
  2719. }
  2720. return true;
  2721. } break;
  2722. case TRANSFORM3D: {
  2723. const Transform3D *l = _data._transform3d;
  2724. const Transform3D *r = p_variant._data._transform3d;
  2725. for (int i = 0; i < 3; i++) {
  2726. if (!(hash_compare_vector3(l->basis.elements[i], r->basis.elements[i]))) {
  2727. return false;
  2728. }
  2729. }
  2730. return hash_compare_vector3(l->origin, r->origin);
  2731. } break;
  2732. case COLOR: {
  2733. const Color *l = reinterpret_cast<const Color *>(_data._mem);
  2734. const Color *r = reinterpret_cast<const Color *>(p_variant._data._mem);
  2735. return hash_compare_color(*l, *r);
  2736. } break;
  2737. case ARRAY: {
  2738. const Array &l = *(reinterpret_cast<const Array *>(_data._mem));
  2739. const Array &r = *(reinterpret_cast<const Array *>(p_variant._data._mem));
  2740. if (!l.recursive_equal(r, recursion_count + 1)) {
  2741. return false;
  2742. }
  2743. return true;
  2744. } break;
  2745. case DICTIONARY: {
  2746. const Dictionary &l = *(reinterpret_cast<const Dictionary *>(_data._mem));
  2747. const Dictionary &r = *(reinterpret_cast<const Dictionary *>(p_variant._data._mem));
  2748. if (!l.recursive_equal(r, recursion_count + 1)) {
  2749. return false;
  2750. }
  2751. return true;
  2752. } break;
  2753. // This is for floating point comparisons only.
  2754. case PACKED_FLOAT32_ARRAY: {
  2755. hash_compare_packed_array(_data.packed_array, p_variant._data.packed_array, float, hash_compare_scalar);
  2756. } break;
  2757. case PACKED_FLOAT64_ARRAY: {
  2758. hash_compare_packed_array(_data.packed_array, p_variant._data.packed_array, double, hash_compare_scalar);
  2759. } break;
  2760. case PACKED_VECTOR2_ARRAY: {
  2761. hash_compare_packed_array(_data.packed_array, p_variant._data.packed_array, Vector2, hash_compare_vector2);
  2762. } break;
  2763. case PACKED_VECTOR3_ARRAY: {
  2764. hash_compare_packed_array(_data.packed_array, p_variant._data.packed_array, Vector3, hash_compare_vector3);
  2765. } break;
  2766. case PACKED_COLOR_ARRAY: {
  2767. hash_compare_packed_array(_data.packed_array, p_variant._data.packed_array, Color, hash_compare_color);
  2768. } break;
  2769. default:
  2770. bool v;
  2771. Variant r;
  2772. evaluate(OP_EQUAL, *this, p_variant, r, v);
  2773. return r;
  2774. }
  2775. return false;
  2776. }
  2777. bool Variant::is_ref() const {
  2778. return type == OBJECT && _get_obj().id.is_ref_counted();
  2779. }
  2780. Vector<Variant> varray() {
  2781. return Vector<Variant>();
  2782. }
  2783. Vector<Variant> varray(const Variant &p_arg1) {
  2784. Vector<Variant> v;
  2785. v.push_back(p_arg1);
  2786. return v;
  2787. }
  2788. Vector<Variant> varray(const Variant &p_arg1, const Variant &p_arg2) {
  2789. Vector<Variant> v;
  2790. v.push_back(p_arg1);
  2791. v.push_back(p_arg2);
  2792. return v;
  2793. }
  2794. Vector<Variant> varray(const Variant &p_arg1, const Variant &p_arg2, const Variant &p_arg3) {
  2795. Vector<Variant> v;
  2796. v.push_back(p_arg1);
  2797. v.push_back(p_arg2);
  2798. v.push_back(p_arg3);
  2799. return v;
  2800. }
  2801. Vector<Variant> varray(const Variant &p_arg1, const Variant &p_arg2, const Variant &p_arg3, const Variant &p_arg4) {
  2802. Vector<Variant> v;
  2803. v.push_back(p_arg1);
  2804. v.push_back(p_arg2);
  2805. v.push_back(p_arg3);
  2806. v.push_back(p_arg4);
  2807. return v;
  2808. }
  2809. Vector<Variant> varray(const Variant &p_arg1, const Variant &p_arg2, const Variant &p_arg3, const Variant &p_arg4, const Variant &p_arg5) {
  2810. Vector<Variant> v;
  2811. v.push_back(p_arg1);
  2812. v.push_back(p_arg2);
  2813. v.push_back(p_arg3);
  2814. v.push_back(p_arg4);
  2815. v.push_back(p_arg5);
  2816. return v;
  2817. }
  2818. void Variant::static_assign(const Variant &p_variant) {
  2819. }
  2820. bool Variant::is_shared() const {
  2821. switch (type) {
  2822. case OBJECT:
  2823. return true;
  2824. case ARRAY:
  2825. return true;
  2826. case DICTIONARY:
  2827. return true;
  2828. default: {
  2829. }
  2830. }
  2831. return false;
  2832. }
  2833. Variant Variant::call(const StringName &p_method, VARIANT_ARG_DECLARE) {
  2834. VARIANT_ARGPTRS;
  2835. int argc = 0;
  2836. for (int i = 0; i < VARIANT_ARG_MAX; i++) {
  2837. if (argptr[i]->get_type() == Variant::NIL) {
  2838. break;
  2839. }
  2840. argc++;
  2841. }
  2842. Callable::CallError error;
  2843. Variant ret;
  2844. call(p_method, argptr, argc, ret, error);
  2845. switch (error.error) {
  2846. case Callable::CallError::CALL_ERROR_INVALID_ARGUMENT: {
  2847. String err = "Invalid type for argument #" + itos(error.argument) + ", expected '" + Variant::get_type_name(Variant::Type(error.expected)) + "'.";
  2848. ERR_PRINT(err.utf8().get_data());
  2849. } break;
  2850. case Callable::CallError::CALL_ERROR_INVALID_METHOD: {
  2851. String err = "Invalid method '" + p_method + "' for type '" + Variant::get_type_name(type) + "'.";
  2852. ERR_PRINT(err.utf8().get_data());
  2853. } break;
  2854. case Callable::CallError::CALL_ERROR_TOO_MANY_ARGUMENTS: {
  2855. String err = "Too many arguments for method '" + p_method + "'";
  2856. ERR_PRINT(err.utf8().get_data());
  2857. } break;
  2858. default: {
  2859. }
  2860. }
  2861. return ret;
  2862. }
  2863. void Variant::construct_from_string(const String &p_string, Variant &r_value, ObjectConstruct p_obj_construct, void *p_construct_ud) {
  2864. r_value = Variant();
  2865. }
  2866. String Variant::get_construct_string() const {
  2867. String vars;
  2868. VariantWriter::write_to_string(*this, vars);
  2869. return vars;
  2870. }
  2871. String Variant::get_call_error_text(const StringName &p_method, const Variant **p_argptrs, int p_argcount, const Callable::CallError &ce) {
  2872. String err_text;
  2873. if (ce.error == Callable::CallError::CALL_ERROR_INVALID_ARGUMENT) {
  2874. int errorarg = ce.argument;
  2875. if (p_argptrs) {
  2876. err_text = "Cannot convert argument " + itos(errorarg + 1) + " from " + Variant::get_type_name(p_argptrs[errorarg]->get_type()) + " to " + Variant::get_type_name(Variant::Type(ce.expected)) + ".";
  2877. } else {
  2878. err_text = "Cannot convert argument " + itos(errorarg + 1) + " from [missing argptr, type unknown] to " + Variant::get_type_name(Variant::Type(ce.expected)) + ".";
  2879. }
  2880. } else if (ce.error == Callable::CallError::CALL_ERROR_TOO_MANY_ARGUMENTS) {
  2881. err_text = "Method expected " + itos(ce.argument) + " arguments, but called with " + itos(p_argcount) + ".";
  2882. } else if (ce.error == Callable::CallError::CALL_ERROR_TOO_FEW_ARGUMENTS) {
  2883. err_text = "Method expected " + itos(ce.argument) + " arguments, but called with " + itos(p_argcount) + ".";
  2884. } else if (ce.error == Callable::CallError::CALL_ERROR_INVALID_METHOD) {
  2885. err_text = "Method not found.";
  2886. } else if (ce.error == Callable::CallError::CALL_ERROR_INSTANCE_IS_NULL) {
  2887. err_text = "Instance is null";
  2888. } else if (ce.error == Callable::CallError::CALL_OK) {
  2889. return "Call OK";
  2890. }
  2891. return "'" + String(p_method) + "': " + err_text;
  2892. }
  2893. String Variant::get_call_error_text(Object *p_base, const StringName &p_method, const Variant **p_argptrs, int p_argcount, const Callable::CallError &ce) {
  2894. String err_text;
  2895. if (ce.error == Callable::CallError::CALL_ERROR_INVALID_ARGUMENT) {
  2896. int errorarg = ce.argument;
  2897. if (p_argptrs) {
  2898. err_text = "Cannot convert argument " + itos(errorarg + 1) + " from " + Variant::get_type_name(p_argptrs[errorarg]->get_type()) + " to " + Variant::get_type_name(Variant::Type(ce.expected)) + ".";
  2899. } else {
  2900. err_text = "Cannot convert argument " + itos(errorarg + 1) + " from [missing argptr, type unknown] to " + Variant::get_type_name(Variant::Type(ce.expected)) + ".";
  2901. }
  2902. } else if (ce.error == Callable::CallError::CALL_ERROR_TOO_MANY_ARGUMENTS) {
  2903. err_text = "Method expected " + itos(ce.argument) + " arguments, but called with " + itos(p_argcount) + ".";
  2904. } else if (ce.error == Callable::CallError::CALL_ERROR_TOO_FEW_ARGUMENTS) {
  2905. err_text = "Method expected " + itos(ce.argument) + " arguments, but called with " + itos(p_argcount) + ".";
  2906. } else if (ce.error == Callable::CallError::CALL_ERROR_INVALID_METHOD) {
  2907. err_text = "Method not found.";
  2908. } else if (ce.error == Callable::CallError::CALL_ERROR_INSTANCE_IS_NULL) {
  2909. err_text = "Instance is null";
  2910. } else if (ce.error == Callable::CallError::CALL_OK) {
  2911. return "Call OK";
  2912. }
  2913. String class_name = p_base->get_class();
  2914. Ref<Resource> script = p_base->get_script();
  2915. if (script.is_valid() && script->get_path().is_resource_file()) {
  2916. class_name += "(" + script->get_path().get_file() + ")";
  2917. }
  2918. return "'" + class_name + "::" + String(p_method) + "': " + err_text;
  2919. }
  2920. String Variant::get_callable_error_text(const Callable &p_callable, const Variant **p_argptrs, int p_argcount, const Callable::CallError &ce) {
  2921. String err_text;
  2922. if (ce.error == Callable::CallError::CALL_ERROR_INVALID_ARGUMENT) {
  2923. int errorarg = ce.argument;
  2924. if (p_argptrs) {
  2925. err_text = "Cannot convert argument " + itos(errorarg + 1) + " from " + Variant::get_type_name(p_argptrs[errorarg]->get_type()) + " to " + Variant::get_type_name(Variant::Type(ce.expected)) + ".";
  2926. } else {
  2927. err_text = "Cannot convert argument " + itos(errorarg + 1) + " from [missing argptr, type unknown] to " + Variant::get_type_name(Variant::Type(ce.expected)) + ".";
  2928. }
  2929. } else if (ce.error == Callable::CallError::CALL_ERROR_TOO_MANY_ARGUMENTS) {
  2930. err_text = "Method expected " + itos(ce.argument) + " arguments, but called with " + itos(p_argcount) + ".";
  2931. } else if (ce.error == Callable::CallError::CALL_ERROR_TOO_FEW_ARGUMENTS) {
  2932. err_text = "Method expected " + itos(ce.argument) + " arguments, but called with " + itos(p_argcount) + ".";
  2933. } else if (ce.error == Callable::CallError::CALL_ERROR_INVALID_METHOD) {
  2934. err_text = "Method not found.";
  2935. } else if (ce.error == Callable::CallError::CALL_ERROR_INSTANCE_IS_NULL) {
  2936. err_text = "Instance is null";
  2937. } else if (ce.error == Callable::CallError::CALL_OK) {
  2938. return "Call OK";
  2939. }
  2940. return String(p_callable) + " : " + err_text;
  2941. }
  2942. String vformat(const String &p_text, const Variant &p1, const Variant &p2, const Variant &p3, const Variant &p4, const Variant &p5) {
  2943. Array args;
  2944. if (p1.get_type() != Variant::NIL) {
  2945. args.push_back(p1);
  2946. if (p2.get_type() != Variant::NIL) {
  2947. args.push_back(p2);
  2948. if (p3.get_type() != Variant::NIL) {
  2949. args.push_back(p3);
  2950. if (p4.get_type() != Variant::NIL) {
  2951. args.push_back(p4);
  2952. if (p5.get_type() != Variant::NIL) {
  2953. args.push_back(p5);
  2954. }
  2955. }
  2956. }
  2957. }
  2958. }
  2959. bool error = false;
  2960. String fmt = p_text.sprintf(args, &error);
  2961. ERR_FAIL_COND_V_MSG(error, String(), fmt);
  2962. return fmt;
  2963. }
  2964. void Variant::register_types() {
  2965. _register_variant_operators();
  2966. _register_variant_methods();
  2967. _register_variant_setters_getters();
  2968. _register_variant_constructors();
  2969. _register_variant_destructors();
  2970. _register_variant_utility_functions();
  2971. }
  2972. void Variant::unregister_types() {
  2973. _unregister_variant_operators();
  2974. _unregister_variant_methods();
  2975. _unregister_variant_setters_getters();
  2976. _unregister_variant_destructors();
  2977. _unregister_variant_utility_functions();
  2978. }