wayland_thread.cpp 144 KB

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  1. /**************************************************************************/
  2. /* wayland_thread.cpp */
  3. /**************************************************************************/
  4. /* This file is part of: */
  5. /* GODOT ENGINE */
  6. /* https://godotengine.org */
  7. /**************************************************************************/
  8. /* Copyright (c) 2014-present Godot Engine contributors (see AUTHORS.md). */
  9. /* Copyright (c) 2007-2014 Juan Linietsky, Ariel Manzur. */
  10. /* */
  11. /* Permission is hereby granted, free of charge, to any person obtaining */
  12. /* a copy of this software and associated documentation files (the */
  13. /* "Software"), to deal in the Software without restriction, including */
  14. /* without limitation the rights to use, copy, modify, merge, publish, */
  15. /* distribute, sublicense, and/or sell copies of the Software, and to */
  16. /* permit persons to whom the Software is furnished to do so, subject to */
  17. /* the following conditions: */
  18. /* */
  19. /* The above copyright notice and this permission notice shall be */
  20. /* included in all copies or substantial portions of the Software. */
  21. /* */
  22. /* THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND, */
  23. /* EXPRESS OR IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF */
  24. /* MERCHANTABILITY, FITNESS FOR A PARTICULAR PURPOSE AND NONINFRINGEMENT. */
  25. /* IN NO EVENT SHALL THE AUTHORS OR COPYRIGHT HOLDERS BE LIABLE FOR ANY */
  26. /* CLAIM, DAMAGES OR OTHER LIABILITY, WHETHER IN AN ACTION OF CONTRACT, */
  27. /* TORT OR OTHERWISE, ARISING FROM, OUT OF OR IN CONNECTION WITH THE */
  28. /* SOFTWARE OR THE USE OR OTHER DEALINGS IN THE SOFTWARE. */
  29. /**************************************************************************/
  30. #include "wayland_thread.h"
  31. #ifdef WAYLAND_ENABLED
  32. #ifdef __FreeBSD__
  33. #include <dev/evdev/input-event-codes.h>
  34. #else
  35. // Assume Linux.
  36. #include <linux/input-event-codes.h>
  37. #endif
  38. // For the actual polling thread.
  39. #include <poll.h>
  40. // For shared memory buffer creation.
  41. #include <fcntl.h>
  42. #include <sys/mman.h>
  43. #include <unistd.h>
  44. // Fix the wl_array_for_each macro to work with C++. This is based on the
  45. // original from `wayland-util.h` in the Wayland client library.
  46. #undef wl_array_for_each
  47. #define wl_array_for_each(pos, array) \
  48. for (pos = (decltype(pos))(array)->data; (const char *)pos < ((const char *)(array)->data + (array)->size); (pos)++)
  49. #define WAYLAND_THREAD_DEBUG_LOGS_ENABLED
  50. #ifdef WAYLAND_THREAD_DEBUG_LOGS_ENABLED
  51. #define DEBUG_LOG_WAYLAND_THREAD(...) print_verbose(__VA_ARGS__)
  52. #else
  53. #define DEBUG_LOG_WAYLAND_THREAD(...)
  54. #endif
  55. // Read the content pointed by fd into a Vector<uint8_t>.
  56. Vector<uint8_t> WaylandThread::_read_fd(int fd) {
  57. // This is pretty much an arbitrary size.
  58. uint32_t chunk_size = 2048;
  59. LocalVector<uint8_t> data;
  60. data.resize(chunk_size);
  61. uint32_t bytes_read = 0;
  62. while (true) {
  63. ssize_t last_bytes_read = read(fd, data.ptr() + bytes_read, chunk_size);
  64. if (last_bytes_read < 0) {
  65. ERR_PRINT(vformat("Read error %d.", errno));
  66. data.clear();
  67. break;
  68. }
  69. if (last_bytes_read == 0) {
  70. // We're done, we've reached the EOF.
  71. DEBUG_LOG_WAYLAND_THREAD(vformat("Done reading %d bytes.", bytes_read));
  72. close(fd);
  73. data.resize(bytes_read);
  74. break;
  75. }
  76. DEBUG_LOG_WAYLAND_THREAD(vformat("Read chunk of %d bytes.", last_bytes_read));
  77. bytes_read += last_bytes_read;
  78. // Increase the buffer size by one chunk in preparation of the next read.
  79. data.resize(bytes_read + chunk_size);
  80. }
  81. return data;
  82. }
  83. // Based on the wayland book's shared memory boilerplate (PD/CC0).
  84. // See: https://wayland-book.com/surfaces/shared-memory.html
  85. int WaylandThread::_allocate_shm_file(size_t size) {
  86. int retries = 100;
  87. do {
  88. // Generate a random name.
  89. char name[] = "/wl_shm-godot-XXXXXX";
  90. for (long unsigned int i = sizeof(name) - 7; i < sizeof(name) - 1; i++) {
  91. name[i] = Math::random('A', 'Z');
  92. }
  93. // Try to open a shared memory object with that name.
  94. int fd = shm_open(name, O_RDWR | O_CREAT | O_EXCL, 0600);
  95. if (fd >= 0) {
  96. // Success, unlink its name as we just need the file descriptor.
  97. shm_unlink(name);
  98. // Resize the file to the requested length.
  99. int ret;
  100. do {
  101. ret = ftruncate(fd, size);
  102. } while (ret < 0 && errno == EINTR);
  103. if (ret < 0) {
  104. close(fd);
  105. return -1;
  106. }
  107. return fd;
  108. }
  109. retries--;
  110. } while (retries > 0 && errno == EEXIST);
  111. return -1;
  112. }
  113. // Return the content of a wl_data_offer.
  114. Vector<uint8_t> WaylandThread::_wl_data_offer_read(struct wl_display *p_display, const char *p_mime, struct wl_data_offer *p_offer) {
  115. if (!p_offer) {
  116. return Vector<uint8_t>();
  117. }
  118. int fds[2];
  119. if (pipe(fds) == 0) {
  120. wl_data_offer_receive(p_offer, p_mime, fds[1]);
  121. // Let the compositor know about the pipe.
  122. // NOTE: It's important to just flush and not roundtrip here as we would risk
  123. // running some cleanup event, like for example `wl_data_device::leave`. We're
  124. // going to wait for the message anyways as the read will probably block if
  125. // the compositor doesn't read from the other end of the pipe.
  126. wl_display_flush(p_display);
  127. // Close the write end of the pipe, which we don't need and would otherwise
  128. // just stall our next `read`s.
  129. close(fds[1]);
  130. return _read_fd(fds[0]);
  131. }
  132. return Vector<uint8_t>();
  133. }
  134. // Read the content of a wp_primary_selection_offer.
  135. Vector<uint8_t> WaylandThread::_wp_primary_selection_offer_read(struct wl_display *p_display, const char *p_mime, struct zwp_primary_selection_offer_v1 *p_offer) {
  136. if (!p_offer) {
  137. return Vector<uint8_t>();
  138. }
  139. int fds[2];
  140. if (pipe(fds) == 0) {
  141. zwp_primary_selection_offer_v1_receive(p_offer, p_mime, fds[1]);
  142. // NOTE: It's important to just flush and not roundtrip here as we would risk
  143. // running some cleanup event, like for example `wl_data_device::leave`. We're
  144. // going to wait for the message anyways as the read will probably block if
  145. // the compositor doesn't read from the other end of the pipe.
  146. wl_display_flush(p_display);
  147. // Close the write end of the pipe, which we don't need and would otherwise
  148. // just stall our next `read`s.
  149. close(fds[1]);
  150. return _read_fd(fds[0]);
  151. }
  152. return Vector<uint8_t>();
  153. }
  154. Ref<InputEventKey> WaylandThread::_seat_state_get_key_event(SeatState *p_ss, xkb_keycode_t p_keycode, bool p_pressed) {
  155. Ref<InputEventKey> event;
  156. ERR_FAIL_NULL_V(p_ss, event);
  157. Key shifted_key = KeyMappingXKB::get_keycode(xkb_state_key_get_one_sym(p_ss->xkb_state, p_keycode));
  158. Key plain_key = Key::NONE;
  159. // NOTE: xkbcommon's API really encourages to apply the modifier state but we
  160. // only want a "plain" symbol so that we can convert it into a godot keycode.
  161. const xkb_keysym_t *syms = nullptr;
  162. int num_sys = xkb_keymap_key_get_syms_by_level(p_ss->xkb_keymap, p_keycode, p_ss->current_layout_index, 0, &syms);
  163. if (num_sys > 0 && syms) {
  164. plain_key = KeyMappingXKB::get_keycode(syms[0]);
  165. }
  166. Key physical_keycode = KeyMappingXKB::get_scancode(p_keycode);
  167. KeyLocation key_location = KeyMappingXKB::get_location(p_keycode);
  168. uint32_t unicode = xkb_state_key_get_utf32(p_ss->xkb_state, p_keycode);
  169. Key keycode = Key::NONE;
  170. if ((shifted_key & Key::SPECIAL) != Key::NONE || (plain_key & Key::SPECIAL) != Key::NONE) {
  171. keycode = shifted_key;
  172. }
  173. if (keycode == Key::NONE) {
  174. keycode = plain_key;
  175. }
  176. if (keycode == Key::NONE) {
  177. keycode = physical_keycode;
  178. }
  179. if (keycode >= Key::A + 32 && keycode <= Key::Z + 32) {
  180. keycode -= 'a' - 'A';
  181. }
  182. if (physical_keycode == Key::NONE && keycode == Key::NONE && unicode == 0) {
  183. return event;
  184. }
  185. event.instantiate();
  186. event->set_window_id(DisplayServer::MAIN_WINDOW_ID);
  187. // Set all pressed modifiers.
  188. event->set_shift_pressed(p_ss->shift_pressed);
  189. event->set_ctrl_pressed(p_ss->ctrl_pressed);
  190. event->set_alt_pressed(p_ss->alt_pressed);
  191. event->set_meta_pressed(p_ss->meta_pressed);
  192. event->set_pressed(p_pressed);
  193. event->set_keycode(keycode);
  194. event->set_physical_keycode(physical_keycode);
  195. event->set_location(key_location);
  196. if (unicode != 0) {
  197. event->set_key_label(fix_key_label(unicode, keycode));
  198. } else {
  199. event->set_key_label(keycode);
  200. }
  201. if (p_pressed) {
  202. event->set_unicode(fix_unicode(unicode));
  203. }
  204. // Taken from DisplayServerX11.
  205. if (event->get_keycode() == Key::BACKTAB) {
  206. // Make it consistent across platforms.
  207. event->set_keycode(Key::TAB);
  208. event->set_physical_keycode(Key::TAB);
  209. event->set_shift_pressed(true);
  210. }
  211. return event;
  212. }
  213. // NOTE: Due to the nature of the way keys are encoded, there's an ambiguity
  214. // regarding "special" keys. In other words: there's no reliable way of
  215. // switching between a special key and a character key if not marking a
  216. // different Godot keycode, even if we're actually using the same XKB raw
  217. // keycode. This means that, during this switch, the old key will get "stuck",
  218. // as it will never receive a release event. This method returns the necessary
  219. // event to fix this if needed.
  220. Ref<InputEventKey> WaylandThread::_seat_state_get_unstuck_key_event(SeatState *p_ss, xkb_keycode_t p_keycode, bool p_pressed, Key p_key) {
  221. Ref<InputEventKey> event;
  222. if (p_pressed) {
  223. Key *old_key = p_ss->pressed_keycodes.getptr(p_keycode);
  224. if (old_key != nullptr && *old_key != p_key) {
  225. print_verbose(vformat("%s and %s have same keycode. Generating release event for %s", keycode_get_string(*old_key), keycode_get_string(p_key), keycode_get_string(*old_key)));
  226. event = _seat_state_get_key_event(p_ss, p_keycode, false);
  227. if (event.is_valid()) {
  228. event->set_keycode(*old_key);
  229. }
  230. }
  231. p_ss->pressed_keycodes[p_keycode] = p_key;
  232. } else {
  233. p_ss->pressed_keycodes.erase(p_keycode);
  234. }
  235. return event;
  236. }
  237. void WaylandThread::_set_current_seat(struct wl_seat *p_seat) {
  238. if (p_seat == wl_seat_current) {
  239. return;
  240. }
  241. SeatState *old_state = wl_seat_get_seat_state(wl_seat_current);
  242. if (old_state) {
  243. seat_state_unlock_pointer(old_state);
  244. }
  245. SeatState *new_state = wl_seat_get_seat_state(p_seat);
  246. seat_state_unlock_pointer(new_state);
  247. wl_seat_current = p_seat;
  248. pointer_set_constraint(pointer_constraint);
  249. }
  250. // Returns whether it loaded the theme or not.
  251. bool WaylandThread::_load_cursor_theme(int p_cursor_size) {
  252. if (wl_cursor_theme) {
  253. wl_cursor_theme_destroy(wl_cursor_theme);
  254. wl_cursor_theme = nullptr;
  255. }
  256. if (cursor_theme_name.is_empty()) {
  257. cursor_theme_name = "default";
  258. }
  259. print_verbose(vformat("Loading cursor theme \"%s\" size %d.", cursor_theme_name, p_cursor_size));
  260. wl_cursor_theme = wl_cursor_theme_load(cursor_theme_name.utf8().get_data(), p_cursor_size, registry.wl_shm);
  261. ERR_FAIL_NULL_V_MSG(wl_cursor_theme, false, "Can't load any cursor theme.");
  262. static const char *cursor_names[] = {
  263. "left_ptr",
  264. "xterm",
  265. "hand2",
  266. "cross",
  267. "watch",
  268. "left_ptr_watch",
  269. "fleur",
  270. "dnd-move",
  271. "crossed_circle",
  272. "v_double_arrow",
  273. "h_double_arrow",
  274. "size_bdiag",
  275. "size_fdiag",
  276. "move",
  277. "row_resize",
  278. "col_resize",
  279. "question_arrow"
  280. };
  281. static const char *cursor_names_fallback[] = {
  282. nullptr,
  283. nullptr,
  284. "pointer",
  285. "cross",
  286. "wait",
  287. "progress",
  288. "grabbing",
  289. "hand1",
  290. "forbidden",
  291. "ns-resize",
  292. "ew-resize",
  293. "fd_double_arrow",
  294. "bd_double_arrow",
  295. "fleur",
  296. "sb_v_double_arrow",
  297. "sb_h_double_arrow",
  298. "help"
  299. };
  300. for (int i = 0; i < DisplayServer::CURSOR_MAX; i++) {
  301. struct wl_cursor *cursor = wl_cursor_theme_get_cursor(wl_cursor_theme, cursor_names[i]);
  302. if (!cursor && cursor_names_fallback[i]) {
  303. cursor = wl_cursor_theme_get_cursor(wl_cursor_theme, cursor_names_fallback[i]);
  304. }
  305. if (cursor && cursor->image_count > 0) {
  306. wl_cursors[i] = cursor;
  307. } else {
  308. wl_cursors[i] = nullptr;
  309. print_verbose("Failed loading cursor: " + String(cursor_names[i]));
  310. }
  311. }
  312. return true;
  313. }
  314. void WaylandThread::_update_scale(int p_scale) {
  315. if (p_scale <= cursor_scale) {
  316. return;
  317. }
  318. print_verbose(vformat("Bumping cursor scale to %d", p_scale));
  319. // There's some display that's bigger than the cache, let's update it.
  320. cursor_scale = p_scale;
  321. if (wl_cursor_theme == nullptr) {
  322. // Ugh. Either we're still initializing (this must've been called from the
  323. // first roundtrips) or we had some error while doing so. We'll trust that it
  324. // will be updated for us if needed.
  325. return;
  326. }
  327. int cursor_size = unscaled_cursor_size * p_scale;
  328. if (_load_cursor_theme(cursor_size)) {
  329. for (struct wl_seat *wl_seat : registry.wl_seats) {
  330. SeatState *ss = wl_seat_get_seat_state(wl_seat);
  331. ERR_FAIL_NULL(ss);
  332. seat_state_update_cursor(ss);
  333. }
  334. }
  335. }
  336. void WaylandThread::_wl_registry_on_global(void *data, struct wl_registry *wl_registry, uint32_t name, const char *interface, uint32_t version) {
  337. RegistryState *registry = (RegistryState *)data;
  338. ERR_FAIL_NULL(registry);
  339. if (strcmp(interface, wl_shm_interface.name) == 0) {
  340. registry->wl_shm = (struct wl_shm *)wl_registry_bind(wl_registry, name, &wl_shm_interface, 1);
  341. registry->wl_shm_name = name;
  342. return;
  343. }
  344. // NOTE: Deprecated.
  345. if (strcmp(interface, zxdg_exporter_v1_interface.name) == 0) {
  346. registry->xdg_exporter_v1 = (struct zxdg_exporter_v1 *)wl_registry_bind(wl_registry, name, &zxdg_exporter_v1_interface, 1);
  347. registry->xdg_exporter_v1_name = name;
  348. return;
  349. }
  350. if (strcmp(interface, zxdg_exporter_v2_interface.name) == 0) {
  351. registry->xdg_exporter_v2 = (struct zxdg_exporter_v2 *)wl_registry_bind(wl_registry, name, &zxdg_exporter_v2_interface, 1);
  352. registry->xdg_exporter_v2_name = name;
  353. return;
  354. }
  355. if (strcmp(interface, wl_compositor_interface.name) == 0) {
  356. registry->wl_compositor = (struct wl_compositor *)wl_registry_bind(wl_registry, name, &wl_compositor_interface, CLAMP((int)version, 1, 6));
  357. registry->wl_compositor_name = name;
  358. return;
  359. }
  360. if (strcmp(interface, wl_data_device_manager_interface.name) == 0) {
  361. registry->wl_data_device_manager = (struct wl_data_device_manager *)wl_registry_bind(wl_registry, name, &wl_data_device_manager_interface, CLAMP((int)version, 1, 3));
  362. registry->wl_data_device_manager_name = name;
  363. // This global creates some seat data. Let's do that for the ones already available.
  364. for (struct wl_seat *wl_seat : registry->wl_seats) {
  365. SeatState *ss = wl_seat_get_seat_state(wl_seat);
  366. ERR_FAIL_NULL(ss);
  367. if (ss->wl_data_device == nullptr) {
  368. ss->wl_data_device = wl_data_device_manager_get_data_device(registry->wl_data_device_manager, wl_seat);
  369. wl_data_device_add_listener(ss->wl_data_device, &wl_data_device_listener, ss);
  370. }
  371. }
  372. return;
  373. }
  374. if (strcmp(interface, wl_output_interface.name) == 0) {
  375. struct wl_output *wl_output = (struct wl_output *)wl_registry_bind(wl_registry, name, &wl_output_interface, CLAMP((int)version, 1, 4));
  376. wl_proxy_tag_godot((struct wl_proxy *)wl_output);
  377. registry->wl_outputs.push_back(wl_output);
  378. ScreenState *ss = memnew(ScreenState);
  379. ss->wl_output_name = name;
  380. ss->wayland_thread = registry->wayland_thread;
  381. wl_proxy_tag_godot((struct wl_proxy *)wl_output);
  382. wl_output_add_listener(wl_output, &wl_output_listener, ss);
  383. return;
  384. }
  385. if (strcmp(interface, wl_seat_interface.name) == 0) {
  386. struct wl_seat *wl_seat = (struct wl_seat *)wl_registry_bind(wl_registry, name, &wl_seat_interface, CLAMP((int)version, 1, 9));
  387. wl_proxy_tag_godot((struct wl_proxy *)wl_seat);
  388. SeatState *ss = memnew(SeatState);
  389. ss->wl_seat = wl_seat;
  390. ss->wl_seat_name = name;
  391. ss->registry = registry;
  392. ss->wayland_thread = registry->wayland_thread;
  393. // Some extra stuff depends on other globals. We'll initialize them if the
  394. // globals are already there, otherwise we'll have to do that once and if they
  395. // get announced.
  396. //
  397. // NOTE: Don't forget to also bind/destroy with the respective global.
  398. if (!ss->wl_data_device && registry->wl_data_device_manager) {
  399. // Clipboard & DnD.
  400. ss->wl_data_device = wl_data_device_manager_get_data_device(registry->wl_data_device_manager, wl_seat);
  401. wl_data_device_add_listener(ss->wl_data_device, &wl_data_device_listener, ss);
  402. }
  403. if (!ss->wp_primary_selection_device && registry->wp_primary_selection_device_manager) {
  404. // Primary selection.
  405. ss->wp_primary_selection_device = zwp_primary_selection_device_manager_v1_get_device(registry->wp_primary_selection_device_manager, wl_seat);
  406. zwp_primary_selection_device_v1_add_listener(ss->wp_primary_selection_device, &wp_primary_selection_device_listener, ss);
  407. }
  408. if (!ss->wp_tablet_seat && registry->wp_tablet_manager) {
  409. // Tablet.
  410. ss->wp_tablet_seat = zwp_tablet_manager_v2_get_tablet_seat(registry->wp_tablet_manager, wl_seat);
  411. zwp_tablet_seat_v2_add_listener(ss->wp_tablet_seat, &wp_tablet_seat_listener, ss);
  412. }
  413. if (!ss->wp_text_input && registry->wp_text_input_manager) {
  414. // IME.
  415. ss->wp_text_input = zwp_text_input_manager_v3_get_text_input(registry->wp_text_input_manager, wl_seat);
  416. zwp_text_input_v3_add_listener(ss->wp_text_input, &wp_text_input_listener, ss);
  417. }
  418. registry->wl_seats.push_back(wl_seat);
  419. wl_seat_add_listener(wl_seat, &wl_seat_listener, ss);
  420. if (registry->wayland_thread->wl_seat_current == nullptr) {
  421. registry->wayland_thread->_set_current_seat(wl_seat);
  422. }
  423. return;
  424. }
  425. if (strcmp(interface, xdg_wm_base_interface.name) == 0) {
  426. registry->xdg_wm_base = (struct xdg_wm_base *)wl_registry_bind(wl_registry, name, &xdg_wm_base_interface, CLAMP((int)version, 1, 6));
  427. registry->xdg_wm_base_name = name;
  428. xdg_wm_base_add_listener(registry->xdg_wm_base, &xdg_wm_base_listener, nullptr);
  429. return;
  430. }
  431. if (strcmp(interface, wp_viewporter_interface.name) == 0) {
  432. registry->wp_viewporter = (struct wp_viewporter *)wl_registry_bind(wl_registry, name, &wp_viewporter_interface, 1);
  433. registry->wp_viewporter_name = name;
  434. }
  435. if (strcmp(interface, wp_fractional_scale_manager_v1_interface.name) == 0) {
  436. registry->wp_fractional_scale_manager = (struct wp_fractional_scale_manager_v1 *)wl_registry_bind(wl_registry, name, &wp_fractional_scale_manager_v1_interface, 1);
  437. registry->wp_fractional_scale_manager_name = name;
  438. // NOTE: We're not mapping the fractional scale object here because this is
  439. // supposed to be a "startup global". If for some reason this isn't true (who
  440. // knows), add a conditional branch for creating the add-on object.
  441. }
  442. if (strcmp(interface, zxdg_decoration_manager_v1_interface.name) == 0) {
  443. registry->xdg_decoration_manager = (struct zxdg_decoration_manager_v1 *)wl_registry_bind(wl_registry, name, &zxdg_decoration_manager_v1_interface, 1);
  444. registry->xdg_decoration_manager_name = name;
  445. return;
  446. }
  447. if (strcmp(interface, xdg_system_bell_v1_interface.name) == 0) {
  448. registry->xdg_system_bell = (struct xdg_system_bell_v1 *)wl_registry_bind(wl_registry, name, &xdg_system_bell_v1_interface, 1);
  449. registry->xdg_system_bell_name = name;
  450. return;
  451. }
  452. if (strcmp(interface, xdg_activation_v1_interface.name) == 0) {
  453. registry->xdg_activation = (struct xdg_activation_v1 *)wl_registry_bind(wl_registry, name, &xdg_activation_v1_interface, 1);
  454. registry->xdg_activation_name = name;
  455. return;
  456. }
  457. if (strcmp(interface, zwp_primary_selection_device_manager_v1_interface.name) == 0) {
  458. registry->wp_primary_selection_device_manager = (struct zwp_primary_selection_device_manager_v1 *)wl_registry_bind(wl_registry, name, &zwp_primary_selection_device_manager_v1_interface, 1);
  459. // This global creates some seat data. Let's do that for the ones already available.
  460. for (struct wl_seat *wl_seat : registry->wl_seats) {
  461. SeatState *ss = wl_seat_get_seat_state(wl_seat);
  462. ERR_FAIL_NULL(ss);
  463. if (!ss->wp_primary_selection_device && registry->wp_primary_selection_device_manager) {
  464. ss->wp_primary_selection_device = zwp_primary_selection_device_manager_v1_get_device(registry->wp_primary_selection_device_manager, wl_seat);
  465. zwp_primary_selection_device_v1_add_listener(ss->wp_primary_selection_device, &wp_primary_selection_device_listener, ss);
  466. }
  467. }
  468. }
  469. if (strcmp(interface, zwp_relative_pointer_manager_v1_interface.name) == 0) {
  470. registry->wp_relative_pointer_manager = (struct zwp_relative_pointer_manager_v1 *)wl_registry_bind(wl_registry, name, &zwp_relative_pointer_manager_v1_interface, 1);
  471. registry->wp_relative_pointer_manager_name = name;
  472. return;
  473. }
  474. if (strcmp(interface, zwp_pointer_constraints_v1_interface.name) == 0) {
  475. registry->wp_pointer_constraints = (struct zwp_pointer_constraints_v1 *)wl_registry_bind(wl_registry, name, &zwp_pointer_constraints_v1_interface, 1);
  476. registry->wp_pointer_constraints_name = name;
  477. return;
  478. }
  479. if (strcmp(interface, zwp_pointer_gestures_v1_interface.name) == 0) {
  480. registry->wp_pointer_gestures = (struct zwp_pointer_gestures_v1 *)wl_registry_bind(wl_registry, name, &zwp_pointer_gestures_v1_interface, 1);
  481. registry->wp_pointer_gestures_name = name;
  482. return;
  483. }
  484. if (strcmp(interface, zwp_idle_inhibit_manager_v1_interface.name) == 0) {
  485. registry->wp_idle_inhibit_manager = (struct zwp_idle_inhibit_manager_v1 *)wl_registry_bind(wl_registry, name, &zwp_idle_inhibit_manager_v1_interface, 1);
  486. registry->wp_idle_inhibit_manager_name = name;
  487. return;
  488. }
  489. if (strcmp(interface, zwp_tablet_manager_v2_interface.name) == 0) {
  490. registry->wp_tablet_manager = (struct zwp_tablet_manager_v2 *)wl_registry_bind(wl_registry, name, &zwp_tablet_manager_v2_interface, 1);
  491. registry->wp_tablet_manager_name = name;
  492. // This global creates some seat data. Let's do that for the ones already available.
  493. for (struct wl_seat *wl_seat : registry->wl_seats) {
  494. SeatState *ss = wl_seat_get_seat_state(wl_seat);
  495. ERR_FAIL_NULL(ss);
  496. ss->wp_tablet_seat = zwp_tablet_manager_v2_get_tablet_seat(registry->wp_tablet_manager, wl_seat);
  497. zwp_tablet_seat_v2_add_listener(ss->wp_tablet_seat, &wp_tablet_seat_listener, ss);
  498. }
  499. return;
  500. }
  501. if (strcmp(interface, zwp_text_input_manager_v3_interface.name) == 0) {
  502. registry->wp_text_input_manager = (struct zwp_text_input_manager_v3 *)wl_registry_bind(wl_registry, name, &zwp_text_input_manager_v3_interface, 1);
  503. registry->wp_text_input_manager_name = name;
  504. // This global creates some seat data. Let's do that for the ones already available.
  505. for (struct wl_seat *wl_seat : registry->wl_seats) {
  506. SeatState *ss = wl_seat_get_seat_state(wl_seat);
  507. ERR_FAIL_NULL(ss);
  508. ss->wp_text_input = zwp_text_input_manager_v3_get_text_input(registry->wp_text_input_manager, wl_seat);
  509. zwp_text_input_v3_add_listener(ss->wp_text_input, &wp_text_input_listener, ss);
  510. }
  511. return;
  512. }
  513. }
  514. void WaylandThread::_wl_registry_on_global_remove(void *data, struct wl_registry *wl_registry, uint32_t name) {
  515. RegistryState *registry = (RegistryState *)data;
  516. ERR_FAIL_NULL(registry);
  517. if (name == registry->wl_shm_name) {
  518. if (registry->wl_shm) {
  519. wl_shm_destroy(registry->wl_shm);
  520. registry->wl_shm = nullptr;
  521. }
  522. registry->wl_shm_name = 0;
  523. return;
  524. }
  525. // NOTE: Deprecated.
  526. if (name == registry->xdg_exporter_v1_name) {
  527. if (registry->xdg_exporter_v1) {
  528. zxdg_exporter_v1_destroy(registry->xdg_exporter_v1);
  529. registry->xdg_exporter_v1 = nullptr;
  530. }
  531. registry->xdg_exporter_v1_name = 0;
  532. return;
  533. }
  534. if (name == registry->xdg_exporter_v2_name) {
  535. if (registry->xdg_exporter_v2) {
  536. zxdg_exporter_v2_destroy(registry->xdg_exporter_v2);
  537. registry->xdg_exporter_v2 = nullptr;
  538. }
  539. registry->xdg_exporter_v2_name = 0;
  540. return;
  541. }
  542. if (name == registry->wl_compositor_name) {
  543. if (registry->wl_compositor) {
  544. wl_compositor_destroy(registry->wl_compositor);
  545. registry->wl_compositor = nullptr;
  546. }
  547. registry->wl_compositor_name = 0;
  548. return;
  549. }
  550. if (name == registry->wl_data_device_manager_name) {
  551. if (registry->wl_data_device_manager) {
  552. wl_data_device_manager_destroy(registry->wl_data_device_manager);
  553. registry->wl_data_device_manager = nullptr;
  554. }
  555. registry->wl_data_device_manager_name = 0;
  556. // This global is used to create some seat data. Let's clean it.
  557. for (struct wl_seat *wl_seat : registry->wl_seats) {
  558. SeatState *ss = wl_seat_get_seat_state(wl_seat);
  559. ERR_FAIL_NULL(ss);
  560. if (ss->wl_data_device) {
  561. wl_data_device_destroy(ss->wl_data_device);
  562. ss->wl_data_device = nullptr;
  563. }
  564. ss->wl_data_device = nullptr;
  565. }
  566. return;
  567. }
  568. if (name == registry->xdg_wm_base_name) {
  569. if (registry->xdg_wm_base) {
  570. xdg_wm_base_destroy(registry->xdg_wm_base);
  571. registry->xdg_wm_base = nullptr;
  572. }
  573. registry->xdg_wm_base_name = 0;
  574. return;
  575. }
  576. if (name == registry->wp_viewporter_name) {
  577. WindowState *ws = &registry->wayland_thread->main_window;
  578. if (registry->wp_viewporter) {
  579. wp_viewporter_destroy(registry->wp_viewporter);
  580. registry->wp_viewporter = nullptr;
  581. }
  582. if (ws->wp_viewport) {
  583. wp_viewport_destroy(ws->wp_viewport);
  584. ws->wp_viewport = nullptr;
  585. }
  586. registry->wp_viewporter_name = 0;
  587. return;
  588. }
  589. if (name == registry->wp_fractional_scale_manager_name) {
  590. WindowState *ws = &registry->wayland_thread->main_window;
  591. if (registry->wp_fractional_scale_manager) {
  592. wp_fractional_scale_manager_v1_destroy(registry->wp_fractional_scale_manager);
  593. registry->wp_fractional_scale_manager = nullptr;
  594. }
  595. if (ws->wp_fractional_scale) {
  596. wp_fractional_scale_v1_destroy(ws->wp_fractional_scale);
  597. ws->wp_fractional_scale = nullptr;
  598. }
  599. registry->wp_fractional_scale_manager_name = 0;
  600. }
  601. if (name == registry->xdg_decoration_manager_name) {
  602. if (registry->xdg_decoration_manager) {
  603. zxdg_decoration_manager_v1_destroy(registry->xdg_decoration_manager);
  604. registry->xdg_decoration_manager = nullptr;
  605. }
  606. registry->xdg_decoration_manager_name = 0;
  607. return;
  608. }
  609. if (name == registry->xdg_system_bell_name) {
  610. if (registry->xdg_system_bell) {
  611. xdg_system_bell_v1_destroy(registry->xdg_system_bell);
  612. registry->xdg_system_bell = nullptr;
  613. }
  614. registry->xdg_system_bell_name = 0;
  615. return;
  616. }
  617. if (name == registry->xdg_activation_name) {
  618. if (registry->xdg_activation) {
  619. xdg_activation_v1_destroy(registry->xdg_activation);
  620. registry->xdg_activation = nullptr;
  621. }
  622. registry->xdg_activation_name = 0;
  623. return;
  624. }
  625. if (name == registry->wp_primary_selection_device_manager_name) {
  626. if (registry->wp_primary_selection_device_manager) {
  627. zwp_primary_selection_device_manager_v1_destroy(registry->wp_primary_selection_device_manager);
  628. registry->wp_primary_selection_device_manager = nullptr;
  629. }
  630. registry->wp_primary_selection_device_manager_name = 0;
  631. // This global is used to create some seat data. Let's clean it.
  632. for (struct wl_seat *wl_seat : registry->wl_seats) {
  633. SeatState *ss = wl_seat_get_seat_state(wl_seat);
  634. ERR_FAIL_NULL(ss);
  635. if (ss->wp_primary_selection_device) {
  636. zwp_primary_selection_device_v1_destroy(ss->wp_primary_selection_device);
  637. ss->wp_primary_selection_device = nullptr;
  638. }
  639. if (ss->wp_primary_selection_source) {
  640. zwp_primary_selection_source_v1_destroy(ss->wp_primary_selection_source);
  641. ss->wp_primary_selection_source = nullptr;
  642. }
  643. if (ss->wp_primary_selection_offer) {
  644. memfree(wp_primary_selection_offer_get_offer_state(ss->wp_primary_selection_offer));
  645. zwp_primary_selection_offer_v1_destroy(ss->wp_primary_selection_offer);
  646. ss->wp_primary_selection_offer = nullptr;
  647. }
  648. }
  649. return;
  650. }
  651. if (name == registry->wp_relative_pointer_manager_name) {
  652. if (registry->wp_relative_pointer_manager) {
  653. zwp_relative_pointer_manager_v1_destroy(registry->wp_relative_pointer_manager);
  654. registry->wp_relative_pointer_manager = nullptr;
  655. }
  656. registry->wp_relative_pointer_manager_name = 0;
  657. // This global is used to create some seat data. Let's clean it.
  658. for (struct wl_seat *wl_seat : registry->wl_seats) {
  659. SeatState *ss = wl_seat_get_seat_state(wl_seat);
  660. ERR_FAIL_NULL(ss);
  661. if (ss->wp_relative_pointer) {
  662. zwp_relative_pointer_v1_destroy(ss->wp_relative_pointer);
  663. ss->wp_relative_pointer = nullptr;
  664. }
  665. }
  666. return;
  667. }
  668. if (name == registry->wp_pointer_constraints_name) {
  669. if (registry->wp_pointer_constraints) {
  670. zwp_pointer_constraints_v1_destroy(registry->wp_pointer_constraints);
  671. registry->wp_pointer_constraints = nullptr;
  672. }
  673. registry->wp_pointer_constraints_name = 0;
  674. // This global is used to create some seat data. Let's clean it.
  675. for (struct wl_seat *wl_seat : registry->wl_seats) {
  676. SeatState *ss = wl_seat_get_seat_state(wl_seat);
  677. ERR_FAIL_NULL(ss);
  678. if (ss->wp_relative_pointer) {
  679. zwp_relative_pointer_v1_destroy(ss->wp_relative_pointer);
  680. ss->wp_relative_pointer = nullptr;
  681. }
  682. if (ss->wp_locked_pointer) {
  683. zwp_locked_pointer_v1_destroy(ss->wp_locked_pointer);
  684. ss->wp_locked_pointer = nullptr;
  685. }
  686. if (ss->wp_confined_pointer) {
  687. zwp_confined_pointer_v1_destroy(ss->wp_confined_pointer);
  688. ss->wp_confined_pointer = nullptr;
  689. }
  690. }
  691. return;
  692. }
  693. if (name == registry->wp_pointer_gestures_name) {
  694. if (registry->wp_pointer_gestures) {
  695. zwp_pointer_gestures_v1_destroy(registry->wp_pointer_gestures);
  696. }
  697. registry->wp_pointer_gestures = nullptr;
  698. registry->wp_pointer_gestures_name = 0;
  699. // This global is used to create some seat data. Let's clean it.
  700. for (struct wl_seat *wl_seat : registry->wl_seats) {
  701. SeatState *ss = wl_seat_get_seat_state(wl_seat);
  702. ERR_FAIL_NULL(ss);
  703. if (ss->wp_pointer_gesture_pinch) {
  704. zwp_pointer_gesture_pinch_v1_destroy(ss->wp_pointer_gesture_pinch);
  705. ss->wp_pointer_gesture_pinch = nullptr;
  706. }
  707. }
  708. return;
  709. }
  710. if (name == registry->wp_idle_inhibit_manager_name) {
  711. if (registry->wp_idle_inhibit_manager) {
  712. zwp_idle_inhibit_manager_v1_destroy(registry->wp_idle_inhibit_manager);
  713. registry->wp_idle_inhibit_manager = nullptr;
  714. }
  715. registry->wp_idle_inhibit_manager_name = 0;
  716. return;
  717. }
  718. if (name == registry->wp_tablet_manager_name) {
  719. if (registry->wp_tablet_manager) {
  720. zwp_tablet_manager_v2_destroy(registry->wp_tablet_manager);
  721. registry->wp_tablet_manager = nullptr;
  722. }
  723. registry->wp_tablet_manager_name = 0;
  724. // This global is used to create some seat data. Let's clean it.
  725. for (struct wl_seat *wl_seat : registry->wl_seats) {
  726. SeatState *ss = wl_seat_get_seat_state(wl_seat);
  727. ERR_FAIL_NULL(ss);
  728. for (struct zwp_tablet_tool_v2 *tool : ss->tablet_tools) {
  729. TabletToolState *state = wp_tablet_tool_get_state(tool);
  730. if (state) {
  731. memdelete(state);
  732. }
  733. zwp_tablet_tool_v2_destroy(tool);
  734. }
  735. ss->tablet_tools.clear();
  736. }
  737. return;
  738. }
  739. if (name == registry->wp_text_input_manager_name) {
  740. if (registry->wp_text_input_manager) {
  741. zwp_text_input_manager_v3_destroy(registry->wp_text_input_manager);
  742. registry->wp_text_input_manager = nullptr;
  743. }
  744. registry->wp_text_input_manager_name = 0;
  745. for (struct wl_seat *wl_seat : registry->wl_seats) {
  746. SeatState *ss = wl_seat_get_seat_state(wl_seat);
  747. ERR_FAIL_NULL(ss);
  748. zwp_text_input_v3_destroy(ss->wp_text_input);
  749. ss->wp_text_input = nullptr;
  750. }
  751. return;
  752. }
  753. {
  754. // Iterate through all of the seats to find if any got removed.
  755. List<struct wl_seat *>::Element *E = registry->wl_seats.front();
  756. while (E) {
  757. struct wl_seat *wl_seat = E->get();
  758. List<struct wl_seat *>::Element *N = E->next();
  759. SeatState *ss = wl_seat_get_seat_state(wl_seat);
  760. ERR_FAIL_NULL(ss);
  761. if (ss->wl_seat_name == name) {
  762. if (wl_seat) {
  763. wl_seat_destroy(wl_seat);
  764. }
  765. if (ss->wl_data_device) {
  766. wl_data_device_destroy(ss->wl_data_device);
  767. }
  768. if (ss->wp_tablet_seat) {
  769. zwp_tablet_seat_v2_destroy(ss->wp_tablet_seat);
  770. for (struct zwp_tablet_tool_v2 *tool : ss->tablet_tools) {
  771. TabletToolState *state = wp_tablet_tool_get_state(tool);
  772. if (state) {
  773. memdelete(state);
  774. }
  775. zwp_tablet_tool_v2_destroy(tool);
  776. }
  777. }
  778. memdelete(ss);
  779. registry->wl_seats.erase(E);
  780. return;
  781. }
  782. E = N;
  783. }
  784. }
  785. {
  786. // Iterate through all of the outputs to find if any got removed.
  787. // FIXME: This is a very bruteforce approach.
  788. List<struct wl_output *>::Element *it = registry->wl_outputs.front();
  789. while (it) {
  790. // Iterate through all of the screens to find if any got removed.
  791. struct wl_output *wl_output = it->get();
  792. ERR_FAIL_NULL(wl_output);
  793. ScreenState *ss = wl_output_get_screen_state(wl_output);
  794. if (ss->wl_output_name == name) {
  795. registry->wl_outputs.erase(it);
  796. memdelete(ss);
  797. wl_output_destroy(wl_output);
  798. return;
  799. }
  800. it = it->next();
  801. }
  802. }
  803. }
  804. void WaylandThread::_wl_surface_on_enter(void *data, struct wl_surface *wl_surface, struct wl_output *wl_output) {
  805. if (!wl_output || !wl_proxy_is_godot((struct wl_proxy *)wl_output)) {
  806. // This won't have the right data bound to it. Not worth it and would probably
  807. // just break everything.
  808. return;
  809. }
  810. WindowState *ws = (WindowState *)data;
  811. ERR_FAIL_NULL(ws);
  812. DEBUG_LOG_WAYLAND_THREAD(vformat("Window entered output %x.\n", (size_t)wl_output));
  813. ws->wl_outputs.insert(wl_output);
  814. // Workaround for buffer scaling as there's no guaranteed way of knowing the
  815. // preferred scale.
  816. // TODO: Skip this branch for newer `wl_surface`s once we add support for
  817. // `wl_surface::preferred_buffer_scale`
  818. if (ws->preferred_fractional_scale == 0) {
  819. window_state_update_size(ws, ws->rect.size.width, ws->rect.size.height);
  820. }
  821. }
  822. void WaylandThread::_frame_wl_callback_on_done(void *data, struct wl_callback *wl_callback, uint32_t callback_data) {
  823. wl_callback_destroy(wl_callback);
  824. WindowState *ws = (WindowState *)data;
  825. ERR_FAIL_NULL(ws);
  826. ERR_FAIL_NULL(ws->wayland_thread);
  827. ERR_FAIL_NULL(ws->wl_surface);
  828. ws->wayland_thread->set_frame();
  829. ws->frame_callback = wl_surface_frame(ws->wl_surface),
  830. wl_callback_add_listener(ws->frame_callback, &frame_wl_callback_listener, ws);
  831. if (ws->wl_surface && ws->buffer_scale_changed) {
  832. // NOTE: We're only now setting the buffer scale as the idea is to get this
  833. // data committed together with the new frame, all by the rendering driver.
  834. // This is important because we might otherwise set an invalid combination of
  835. // buffer size and scale (e.g. odd size and 2x scale). We're pretty much
  836. // guaranteed to get a proper buffer in the next render loop as the rescaling
  837. // method also informs the engine of a "window rect change", triggering
  838. // rendering if needed.
  839. wl_surface_set_buffer_scale(ws->wl_surface, window_state_get_preferred_buffer_scale(ws));
  840. }
  841. }
  842. void WaylandThread::_wl_surface_on_leave(void *data, struct wl_surface *wl_surface, struct wl_output *wl_output) {
  843. if (!wl_output || !wl_proxy_is_godot((struct wl_proxy *)wl_output)) {
  844. // This won't have the right data bound to it. Not worth it and would probably
  845. // just break everything.
  846. return;
  847. }
  848. WindowState *ws = (WindowState *)data;
  849. ERR_FAIL_NULL(ws);
  850. ws->wl_outputs.erase(wl_output);
  851. DEBUG_LOG_WAYLAND_THREAD(vformat("Window left output %x.\n", (size_t)wl_output));
  852. }
  853. // TODO: Add support to this event.
  854. void WaylandThread::_wl_surface_on_preferred_buffer_scale(void *data, struct wl_surface *wl_surface, int32_t factor) {
  855. }
  856. // TODO: Add support to this event.
  857. void WaylandThread::_wl_surface_on_preferred_buffer_transform(void *data, struct wl_surface *wl_surface, uint32_t transform) {
  858. }
  859. void WaylandThread::_wl_output_on_geometry(void *data, struct wl_output *wl_output, int32_t x, int32_t y, int32_t physical_width, int32_t physical_height, int32_t subpixel, const char *make, const char *model, int32_t transform) {
  860. ScreenState *ss = (ScreenState *)data;
  861. ERR_FAIL_NULL(ss);
  862. ss->pending_data.position.x = x;
  863. ss->pending_data.position.x = x;
  864. ss->pending_data.position.y = y;
  865. ss->pending_data.physical_size.width = physical_width;
  866. ss->pending_data.physical_size.height = physical_height;
  867. ss->pending_data.make.parse_utf8(make);
  868. ss->pending_data.model.parse_utf8(model);
  869. // `wl_output::done` is a version 2 addition. We'll directly update the data
  870. // for compatibility.
  871. if (wl_output_get_version(wl_output) == 1) {
  872. ss->data = ss->pending_data;
  873. }
  874. }
  875. void WaylandThread::_wl_output_on_mode(void *data, struct wl_output *wl_output, uint32_t flags, int32_t width, int32_t height, int32_t refresh) {
  876. ScreenState *ss = (ScreenState *)data;
  877. ERR_FAIL_NULL(ss);
  878. ss->pending_data.size.width = width;
  879. ss->pending_data.size.height = height;
  880. ss->pending_data.refresh_rate = refresh ? refresh / 1000.0f : -1;
  881. // `wl_output::done` is a version 2 addition. We'll directly update the data
  882. // for compatibility.
  883. if (wl_output_get_version(wl_output) == 1) {
  884. ss->data = ss->pending_data;
  885. }
  886. }
  887. // NOTE: The following `wl_output` events are only for version 2 onwards, so we
  888. // can assume that they're "atomic" (i.e. rely on the `wl_output::done` event).
  889. void WaylandThread::_wl_output_on_done(void *data, struct wl_output *wl_output) {
  890. ScreenState *ss = (ScreenState *)data;
  891. ERR_FAIL_NULL(ss);
  892. ss->data = ss->pending_data;
  893. ss->wayland_thread->_update_scale(ss->data.scale);
  894. DEBUG_LOG_WAYLAND_THREAD(vformat("Output %x done.", (size_t)wl_output));
  895. }
  896. void WaylandThread::_wl_output_on_scale(void *data, struct wl_output *wl_output, int32_t factor) {
  897. ScreenState *ss = (ScreenState *)data;
  898. ERR_FAIL_NULL(ss);
  899. ss->pending_data.scale = factor;
  900. DEBUG_LOG_WAYLAND_THREAD(vformat("Output %x scale %d", (size_t)wl_output, factor));
  901. }
  902. void WaylandThread::_wl_output_on_name(void *data, struct wl_output *wl_output, const char *name) {
  903. }
  904. void WaylandThread::_wl_output_on_description(void *data, struct wl_output *wl_output, const char *description) {
  905. }
  906. void WaylandThread::_xdg_wm_base_on_ping(void *data, struct xdg_wm_base *xdg_wm_base, uint32_t serial) {
  907. xdg_wm_base_pong(xdg_wm_base, serial);
  908. }
  909. void WaylandThread::_xdg_surface_on_configure(void *data, struct xdg_surface *xdg_surface, uint32_t serial) {
  910. xdg_surface_ack_configure(xdg_surface, serial);
  911. WindowState *ws = (WindowState *)data;
  912. ERR_FAIL_NULL(ws);
  913. DEBUG_LOG_WAYLAND_THREAD(vformat("xdg surface on configure width %d height %d", ws->rect.size.width, ws->rect.size.height));
  914. }
  915. void WaylandThread::_xdg_toplevel_on_configure(void *data, struct xdg_toplevel *xdg_toplevel, int32_t width, int32_t height, struct wl_array *states) {
  916. WindowState *ws = (WindowState *)data;
  917. ERR_FAIL_NULL(ws);
  918. // Expect the window to be in a plain state. It will get properly set if the
  919. // compositor reports otherwise below.
  920. ws->mode = DisplayServer::WINDOW_MODE_WINDOWED;
  921. ws->suspended = false;
  922. uint32_t *state = nullptr;
  923. wl_array_for_each(state, states) {
  924. switch (*state) {
  925. case XDG_TOPLEVEL_STATE_MAXIMIZED: {
  926. ws->mode = DisplayServer::WINDOW_MODE_MAXIMIZED;
  927. } break;
  928. case XDG_TOPLEVEL_STATE_FULLSCREEN: {
  929. ws->mode = DisplayServer::WINDOW_MODE_FULLSCREEN;
  930. } break;
  931. case XDG_TOPLEVEL_STATE_SUSPENDED: {
  932. ws->suspended = true;
  933. } break;
  934. default: {
  935. // We don't care about the other states (for now).
  936. } break;
  937. }
  938. }
  939. if (width != 0 && height != 0) {
  940. window_state_update_size(ws, width, height);
  941. }
  942. DEBUG_LOG_WAYLAND_THREAD(vformat("XDG toplevel on configure width %d height %d.", width, height));
  943. }
  944. void WaylandThread::_xdg_toplevel_on_close(void *data, struct xdg_toplevel *xdg_toplevel) {
  945. WindowState *ws = (WindowState *)data;
  946. ERR_FAIL_NULL(ws);
  947. Ref<WindowEventMessage> msg;
  948. msg.instantiate();
  949. msg->event = DisplayServer::WINDOW_EVENT_CLOSE_REQUEST;
  950. ws->wayland_thread->push_message(msg);
  951. }
  952. void WaylandThread::_xdg_toplevel_on_configure_bounds(void *data, struct xdg_toplevel *xdg_toplevel, int32_t width, int32_t height) {
  953. }
  954. void WaylandThread::_xdg_toplevel_on_wm_capabilities(void *data, struct xdg_toplevel *xdg_toplevel, struct wl_array *capabilities) {
  955. WindowState *ws = (WindowState *)data;
  956. ERR_FAIL_NULL(ws);
  957. ws->can_maximize = false;
  958. ws->can_fullscreen = false;
  959. ws->can_minimize = false;
  960. uint32_t *capability = nullptr;
  961. wl_array_for_each(capability, capabilities) {
  962. switch (*capability) {
  963. case XDG_TOPLEVEL_WM_CAPABILITIES_MAXIMIZE: {
  964. ws->can_maximize = true;
  965. } break;
  966. case XDG_TOPLEVEL_WM_CAPABILITIES_FULLSCREEN: {
  967. ws->can_fullscreen = true;
  968. } break;
  969. case XDG_TOPLEVEL_WM_CAPABILITIES_MINIMIZE: {
  970. ws->can_minimize = true;
  971. } break;
  972. default: {
  973. } break;
  974. }
  975. }
  976. }
  977. // NOTE: Deprecated.
  978. void WaylandThread::_xdg_exported_v1_on_handle(void *data, zxdg_exported_v1 *exported, const char *handle) {
  979. WindowState *ws = (WindowState *)data;
  980. ERR_FAIL_NULL(ws);
  981. ws->exported_handle = vformat("wayland:%s", String::utf8(handle));
  982. }
  983. void WaylandThread::_xdg_exported_v2_on_handle(void *data, zxdg_exported_v2 *exported, const char *handle) {
  984. WindowState *ws = (WindowState *)data;
  985. ERR_FAIL_NULL(ws);
  986. ws->exported_handle = vformat("wayland:%s", String::utf8(handle));
  987. }
  988. void WaylandThread::_xdg_toplevel_decoration_on_configure(void *data, struct zxdg_toplevel_decoration_v1 *xdg_toplevel_decoration, uint32_t mode) {
  989. if (mode == ZXDG_TOPLEVEL_DECORATION_V1_MODE_CLIENT_SIDE) {
  990. #ifdef LIBDECOR_ENABLED
  991. WARN_PRINT_ONCE("Native client side decorations are not yet supported without libdecor!");
  992. #else
  993. WARN_PRINT_ONCE("Native client side decorations are not yet supported!");
  994. #endif // LIBDECOR_ENABLED
  995. }
  996. }
  997. #ifdef LIBDECOR_ENABLED
  998. void WaylandThread::libdecor_on_error(struct libdecor *context, enum libdecor_error error, const char *message) {
  999. ERR_PRINT(vformat("libdecor error %d: %s", error, message));
  1000. }
  1001. // NOTE: This is pretty much a reimplementation of _xdg_surface_on_configure
  1002. // and _xdg_toplevel_on_configure. Libdecor really likes wrapping everything,
  1003. // forcing us to do stuff like this.
  1004. void WaylandThread::libdecor_frame_on_configure(struct libdecor_frame *frame, struct libdecor_configuration *configuration, void *user_data) {
  1005. WindowState *ws = (WindowState *)user_data;
  1006. ERR_FAIL_NULL(ws);
  1007. int width = 0;
  1008. int height = 0;
  1009. ws->pending_libdecor_configuration = configuration;
  1010. if (!libdecor_configuration_get_content_size(configuration, frame, &width, &height)) {
  1011. // The configuration doesn't have a size. We'll use the one already set in the window.
  1012. width = ws->rect.size.width;
  1013. height = ws->rect.size.height;
  1014. }
  1015. ERR_FAIL_COND_MSG(width == 0 || height == 0, "Window has invalid size.");
  1016. libdecor_window_state window_state = LIBDECOR_WINDOW_STATE_NONE;
  1017. // Expect the window to be in a plain state. It will get properly set if the
  1018. // compositor reports otherwise below.
  1019. ws->mode = DisplayServer::WINDOW_MODE_WINDOWED;
  1020. ws->suspended = false;
  1021. if (libdecor_configuration_get_window_state(configuration, &window_state)) {
  1022. if (window_state & LIBDECOR_WINDOW_STATE_MAXIMIZED) {
  1023. ws->mode = DisplayServer::WINDOW_MODE_MAXIMIZED;
  1024. }
  1025. if (window_state & LIBDECOR_WINDOW_STATE_FULLSCREEN) {
  1026. ws->mode = DisplayServer::WINDOW_MODE_FULLSCREEN;
  1027. }
  1028. if (window_state & LIBDECOR_WINDOW_STATE_SUSPENDED) {
  1029. ws->suspended = true;
  1030. }
  1031. }
  1032. window_state_update_size(ws, width, height);
  1033. DEBUG_LOG_WAYLAND_THREAD(vformat("libdecor frame on configure rect %s", ws->rect));
  1034. }
  1035. void WaylandThread::libdecor_frame_on_close(struct libdecor_frame *frame, void *user_data) {
  1036. WindowState *ws = (WindowState *)user_data;
  1037. ERR_FAIL_NULL(ws);
  1038. Ref<WindowEventMessage> winevent_msg;
  1039. winevent_msg.instantiate();
  1040. winevent_msg->event = DisplayServer::WINDOW_EVENT_CLOSE_REQUEST;
  1041. ws->wayland_thread->push_message(winevent_msg);
  1042. DEBUG_LOG_WAYLAND_THREAD("libdecor frame on close");
  1043. }
  1044. void WaylandThread::libdecor_frame_on_commit(struct libdecor_frame *frame, void *user_data) {
  1045. // We're skipping this as we don't really care about libdecor's commit for
  1046. // atomicity reasons. See `_frame_wl_callback_on_done` for more info.
  1047. DEBUG_LOG_WAYLAND_THREAD("libdecor frame on commit");
  1048. }
  1049. void WaylandThread::libdecor_frame_on_dismiss_popup(struct libdecor_frame *frame, const char *seat_name, void *user_data) {
  1050. }
  1051. #endif // LIBDECOR_ENABLED
  1052. void WaylandThread::_wl_seat_on_capabilities(void *data, struct wl_seat *wl_seat, uint32_t capabilities) {
  1053. SeatState *ss = (SeatState *)data;
  1054. ERR_FAIL_NULL(ss);
  1055. // TODO: Handle touch.
  1056. // Pointer handling.
  1057. if (capabilities & WL_SEAT_CAPABILITY_POINTER) {
  1058. if (!ss->wl_pointer) {
  1059. ss->cursor_surface = wl_compositor_create_surface(ss->registry->wl_compositor);
  1060. wl_surface_commit(ss->cursor_surface);
  1061. ss->wl_pointer = wl_seat_get_pointer(wl_seat);
  1062. wl_pointer_add_listener(ss->wl_pointer, &wl_pointer_listener, ss);
  1063. if (ss->registry->wp_relative_pointer_manager) {
  1064. ss->wp_relative_pointer = zwp_relative_pointer_manager_v1_get_relative_pointer(ss->registry->wp_relative_pointer_manager, ss->wl_pointer);
  1065. zwp_relative_pointer_v1_add_listener(ss->wp_relative_pointer, &wp_relative_pointer_listener, ss);
  1066. }
  1067. if (ss->registry->wp_pointer_gestures) {
  1068. ss->wp_pointer_gesture_pinch = zwp_pointer_gestures_v1_get_pinch_gesture(ss->registry->wp_pointer_gestures, ss->wl_pointer);
  1069. zwp_pointer_gesture_pinch_v1_add_listener(ss->wp_pointer_gesture_pinch, &wp_pointer_gesture_pinch_listener, ss);
  1070. }
  1071. // TODO: Constrain new pointers if the global mouse mode is constrained.
  1072. }
  1073. } else {
  1074. if (ss->cursor_frame_callback) {
  1075. // Just in case. I got bitten by weird race-like conditions already.
  1076. wl_callback_set_user_data(ss->cursor_frame_callback, nullptr);
  1077. wl_callback_destroy(ss->cursor_frame_callback);
  1078. ss->cursor_frame_callback = nullptr;
  1079. }
  1080. if (ss->cursor_surface) {
  1081. wl_surface_destroy(ss->cursor_surface);
  1082. ss->cursor_surface = nullptr;
  1083. }
  1084. if (ss->wl_pointer) {
  1085. wl_pointer_destroy(ss->wl_pointer);
  1086. ss->wl_pointer = nullptr;
  1087. }
  1088. if (ss->wp_relative_pointer) {
  1089. zwp_relative_pointer_v1_destroy(ss->wp_relative_pointer);
  1090. ss->wp_relative_pointer = nullptr;
  1091. }
  1092. if (ss->wp_confined_pointer) {
  1093. zwp_confined_pointer_v1_destroy(ss->wp_confined_pointer);
  1094. ss->wp_confined_pointer = nullptr;
  1095. }
  1096. if (ss->wp_locked_pointer) {
  1097. zwp_locked_pointer_v1_destroy(ss->wp_locked_pointer);
  1098. ss->wp_locked_pointer = nullptr;
  1099. }
  1100. }
  1101. // Keyboard handling.
  1102. if (capabilities & WL_SEAT_CAPABILITY_KEYBOARD) {
  1103. if (!ss->wl_keyboard) {
  1104. ss->xkb_context = xkb_context_new(XKB_CONTEXT_NO_FLAGS);
  1105. ERR_FAIL_NULL(ss->xkb_context);
  1106. ss->wl_keyboard = wl_seat_get_keyboard(wl_seat);
  1107. wl_keyboard_add_listener(ss->wl_keyboard, &wl_keyboard_listener, ss);
  1108. }
  1109. } else {
  1110. if (ss->xkb_context) {
  1111. xkb_context_unref(ss->xkb_context);
  1112. ss->xkb_context = nullptr;
  1113. }
  1114. if (ss->wl_keyboard) {
  1115. wl_keyboard_destroy(ss->wl_keyboard);
  1116. ss->wl_keyboard = nullptr;
  1117. }
  1118. }
  1119. }
  1120. void WaylandThread::_wl_seat_on_name(void *data, struct wl_seat *wl_seat, const char *name) {
  1121. }
  1122. void WaylandThread::_cursor_frame_callback_on_done(void *data, struct wl_callback *wl_callback, uint32_t time_ms) {
  1123. wl_callback_destroy(wl_callback);
  1124. SeatState *ss = (SeatState *)data;
  1125. ERR_FAIL_NULL(ss);
  1126. ss->cursor_frame_callback = nullptr;
  1127. ss->cursor_time_ms = time_ms;
  1128. seat_state_update_cursor(ss);
  1129. }
  1130. void WaylandThread::_wl_pointer_on_enter(void *data, struct wl_pointer *wl_pointer, uint32_t serial, struct wl_surface *surface, wl_fixed_t surface_x, wl_fixed_t surface_y) {
  1131. if (!surface || !wl_proxy_is_godot((struct wl_proxy *)surface)) {
  1132. return;
  1133. }
  1134. DEBUG_LOG_WAYLAND_THREAD("Pointing window.");
  1135. SeatState *ss = (SeatState *)data;
  1136. ERR_FAIL_NULL(ss);
  1137. ERR_FAIL_NULL(ss->cursor_surface);
  1138. ss->pointer_enter_serial = serial;
  1139. ss->pointed_surface = surface;
  1140. ss->last_pointed_surface = surface;
  1141. seat_state_update_cursor(ss);
  1142. Ref<WindowEventMessage> msg;
  1143. msg.instantiate();
  1144. msg->event = DisplayServer::WINDOW_EVENT_MOUSE_ENTER;
  1145. ss->wayland_thread->push_message(msg);
  1146. }
  1147. void WaylandThread::_wl_pointer_on_leave(void *data, struct wl_pointer *wl_pointer, uint32_t serial, struct wl_surface *surface) {
  1148. if (!surface || !wl_proxy_is_godot((struct wl_proxy *)surface)) {
  1149. return;
  1150. }
  1151. DEBUG_LOG_WAYLAND_THREAD("Left window.");
  1152. SeatState *ss = (SeatState *)data;
  1153. ERR_FAIL_NULL(ss);
  1154. WaylandThread *wayland_thread = ss->wayland_thread;
  1155. ERR_FAIL_NULL(wayland_thread);
  1156. ss->pointed_surface = nullptr;
  1157. ss->pointer_data_buffer.pressed_button_mask.clear();
  1158. Ref<WindowEventMessage> msg;
  1159. msg.instantiate();
  1160. msg->event = DisplayServer::WINDOW_EVENT_MOUSE_EXIT;
  1161. wayland_thread->push_message(msg);
  1162. }
  1163. void WaylandThread::_wl_pointer_on_motion(void *data, struct wl_pointer *wl_pointer, uint32_t time, wl_fixed_t surface_x, wl_fixed_t surface_y) {
  1164. SeatState *ss = (SeatState *)data;
  1165. ERR_FAIL_NULL(ss);
  1166. if (!ss->pointed_surface) {
  1167. // We're probably on a decoration or some other third-party thing.
  1168. return;
  1169. }
  1170. WindowState *ws = wl_surface_get_window_state(ss->pointed_surface);
  1171. ERR_FAIL_NULL(ws);
  1172. PointerData &pd = ss->pointer_data_buffer;
  1173. // TODO: Scale only when sending the Wayland message.
  1174. pd.position.x = wl_fixed_to_double(surface_x);
  1175. pd.position.y = wl_fixed_to_double(surface_y);
  1176. pd.position *= window_state_get_scale_factor(ws);
  1177. pd.motion_time = time;
  1178. }
  1179. void WaylandThread::_wl_pointer_on_button(void *data, struct wl_pointer *wl_pointer, uint32_t serial, uint32_t time, uint32_t button, uint32_t state) {
  1180. SeatState *ss = (SeatState *)data;
  1181. ERR_FAIL_NULL(ss);
  1182. if (!ss->pointed_surface) {
  1183. // We're probably on a decoration or some other third-party thing.
  1184. return;
  1185. }
  1186. PointerData &pd = ss->pointer_data_buffer;
  1187. MouseButton button_pressed = MouseButton::NONE;
  1188. switch (button) {
  1189. case BTN_LEFT:
  1190. button_pressed = MouseButton::LEFT;
  1191. break;
  1192. case BTN_MIDDLE:
  1193. button_pressed = MouseButton::MIDDLE;
  1194. break;
  1195. case BTN_RIGHT:
  1196. button_pressed = MouseButton::RIGHT;
  1197. break;
  1198. case BTN_EXTRA:
  1199. button_pressed = MouseButton::MB_XBUTTON1;
  1200. break;
  1201. case BTN_SIDE:
  1202. button_pressed = MouseButton::MB_XBUTTON2;
  1203. break;
  1204. default: {
  1205. }
  1206. }
  1207. MouseButtonMask mask = mouse_button_to_mask(button_pressed);
  1208. if (state & WL_POINTER_BUTTON_STATE_PRESSED) {
  1209. pd.pressed_button_mask.set_flag(mask);
  1210. pd.last_button_pressed = button_pressed;
  1211. pd.double_click_begun = true;
  1212. } else {
  1213. pd.pressed_button_mask.clear_flag(mask);
  1214. }
  1215. pd.button_time = time;
  1216. pd.button_serial = serial;
  1217. }
  1218. void WaylandThread::_wl_pointer_on_axis(void *data, struct wl_pointer *wl_pointer, uint32_t time, uint32_t axis, wl_fixed_t value) {
  1219. SeatState *ss = (SeatState *)data;
  1220. ERR_FAIL_NULL(ss);
  1221. if (!ss->pointed_surface) {
  1222. // We're probably on a decoration or some other third-party thing.
  1223. return;
  1224. }
  1225. PointerData &pd = ss->pointer_data_buffer;
  1226. switch (axis) {
  1227. case WL_POINTER_AXIS_VERTICAL_SCROLL: {
  1228. pd.scroll_vector.y = wl_fixed_to_double(value);
  1229. } break;
  1230. case WL_POINTER_AXIS_HORIZONTAL_SCROLL: {
  1231. pd.scroll_vector.x = wl_fixed_to_double(value);
  1232. } break;
  1233. }
  1234. pd.button_time = time;
  1235. }
  1236. void WaylandThread::_wl_pointer_on_frame(void *data, struct wl_pointer *wl_pointer) {
  1237. SeatState *ss = (SeatState *)data;
  1238. ERR_FAIL_NULL(ss);
  1239. if (!ss->pointed_surface) {
  1240. // We're probably on a decoration or some other third-party thing.
  1241. return;
  1242. }
  1243. WaylandThread *wayland_thread = ss->wayland_thread;
  1244. ERR_FAIL_NULL(wayland_thread);
  1245. wayland_thread->_set_current_seat(ss->wl_seat);
  1246. PointerData &old_pd = ss->pointer_data;
  1247. PointerData &pd = ss->pointer_data_buffer;
  1248. if (old_pd.motion_time != pd.motion_time || old_pd.relative_motion_time != pd.relative_motion_time) {
  1249. Ref<InputEventMouseMotion> mm;
  1250. mm.instantiate();
  1251. // Set all pressed modifiers.
  1252. mm->set_shift_pressed(ss->shift_pressed);
  1253. mm->set_ctrl_pressed(ss->ctrl_pressed);
  1254. mm->set_alt_pressed(ss->alt_pressed);
  1255. mm->set_meta_pressed(ss->meta_pressed);
  1256. mm->set_window_id(DisplayServer::MAIN_WINDOW_ID);
  1257. mm->set_button_mask(pd.pressed_button_mask);
  1258. mm->set_position(pd.position);
  1259. mm->set_global_position(pd.position);
  1260. Vector2 pos_delta = pd.position - old_pd.position;
  1261. if (old_pd.relative_motion_time != pd.relative_motion_time) {
  1262. uint32_t time_delta = pd.relative_motion_time - old_pd.relative_motion_time;
  1263. mm->set_relative(pd.relative_motion);
  1264. mm->set_velocity((Vector2)pos_delta / time_delta);
  1265. } else {
  1266. // The spec includes the possibility of having motion events without an
  1267. // associated relative motion event. If that's the case, fallback to a
  1268. // simple delta of the position. The captured mouse won't report the
  1269. // relative speed anymore though.
  1270. uint32_t time_delta = pd.motion_time - old_pd.motion_time;
  1271. mm->set_relative(pd.position - old_pd.position);
  1272. mm->set_velocity((Vector2)pos_delta / time_delta);
  1273. }
  1274. mm->set_relative_screen_position(mm->get_relative());
  1275. mm->set_screen_velocity(mm->get_velocity());
  1276. Ref<InputEventMessage> msg;
  1277. msg.instantiate();
  1278. msg->event = mm;
  1279. wayland_thread->push_message(msg);
  1280. }
  1281. if (pd.discrete_scroll_vector_120 - old_pd.discrete_scroll_vector_120 != Vector2i()) {
  1282. // This is a discrete scroll (eg. from a scroll wheel), so we'll just emit
  1283. // scroll wheel buttons.
  1284. if (pd.scroll_vector.y != 0) {
  1285. MouseButton button = pd.scroll_vector.y > 0 ? MouseButton::WHEEL_DOWN : MouseButton::WHEEL_UP;
  1286. pd.pressed_button_mask.set_flag(mouse_button_to_mask(button));
  1287. }
  1288. if (pd.scroll_vector.x != 0) {
  1289. MouseButton button = pd.scroll_vector.x > 0 ? MouseButton::WHEEL_RIGHT : MouseButton::WHEEL_LEFT;
  1290. pd.pressed_button_mask.set_flag(mouse_button_to_mask(button));
  1291. }
  1292. } else {
  1293. if (pd.scroll_vector - old_pd.scroll_vector != Vector2()) {
  1294. // This is a continuous scroll, so we'll emit a pan gesture.
  1295. Ref<InputEventPanGesture> pg;
  1296. pg.instantiate();
  1297. // Set all pressed modifiers.
  1298. pg->set_shift_pressed(ss->shift_pressed);
  1299. pg->set_ctrl_pressed(ss->ctrl_pressed);
  1300. pg->set_alt_pressed(ss->alt_pressed);
  1301. pg->set_meta_pressed(ss->meta_pressed);
  1302. pg->set_position(pd.position);
  1303. pg->set_window_id(DisplayServer::MAIN_WINDOW_ID);
  1304. pg->set_delta(pd.scroll_vector);
  1305. Ref<InputEventMessage> msg;
  1306. msg.instantiate();
  1307. msg->event = pg;
  1308. wayland_thread->push_message(msg);
  1309. }
  1310. }
  1311. if (old_pd.pressed_button_mask != pd.pressed_button_mask) {
  1312. BitField<MouseButtonMask> pressed_mask_delta = old_pd.pressed_button_mask ^ pd.pressed_button_mask;
  1313. const MouseButton buttons_to_test[] = {
  1314. MouseButton::LEFT,
  1315. MouseButton::MIDDLE,
  1316. MouseButton::RIGHT,
  1317. MouseButton::WHEEL_UP,
  1318. MouseButton::WHEEL_DOWN,
  1319. MouseButton::WHEEL_LEFT,
  1320. MouseButton::WHEEL_RIGHT,
  1321. MouseButton::MB_XBUTTON1,
  1322. MouseButton::MB_XBUTTON2,
  1323. };
  1324. for (MouseButton test_button : buttons_to_test) {
  1325. MouseButtonMask test_button_mask = mouse_button_to_mask(test_button);
  1326. if (pressed_mask_delta.has_flag(test_button_mask)) {
  1327. Ref<InputEventMouseButton> mb;
  1328. mb.instantiate();
  1329. // Set all pressed modifiers.
  1330. mb->set_shift_pressed(ss->shift_pressed);
  1331. mb->set_ctrl_pressed(ss->ctrl_pressed);
  1332. mb->set_alt_pressed(ss->alt_pressed);
  1333. mb->set_meta_pressed(ss->meta_pressed);
  1334. mb->set_window_id(DisplayServer::MAIN_WINDOW_ID);
  1335. mb->set_position(pd.position);
  1336. mb->set_global_position(pd.position);
  1337. if (test_button == MouseButton::WHEEL_UP || test_button == MouseButton::WHEEL_DOWN) {
  1338. // If this is a discrete scroll, specify how many "clicks" it did for this
  1339. // pointer frame.
  1340. mb->set_factor(Math::abs(pd.discrete_scroll_vector_120.y / (float)120));
  1341. }
  1342. if (test_button == MouseButton::WHEEL_RIGHT || test_button == MouseButton::WHEEL_LEFT) {
  1343. // If this is a discrete scroll, specify how many "clicks" it did for this
  1344. // pointer frame.
  1345. mb->set_factor(fabs(pd.discrete_scroll_vector_120.x / (float)120));
  1346. }
  1347. mb->set_button_mask(pd.pressed_button_mask);
  1348. mb->set_button_index(test_button);
  1349. mb->set_pressed(pd.pressed_button_mask.has_flag(test_button_mask));
  1350. // We have to set the last position pressed here as we can't take for
  1351. // granted what the individual events might have seen due to them not having
  1352. // a guaranteed order.
  1353. if (mb->is_pressed()) {
  1354. pd.last_pressed_position = pd.position;
  1355. }
  1356. if (old_pd.double_click_begun && mb->is_pressed() && pd.last_button_pressed == old_pd.last_button_pressed && (pd.button_time - old_pd.button_time) < 400 && Vector2(old_pd.last_pressed_position).distance_to(Vector2(pd.last_pressed_position)) < 5) {
  1357. pd.double_click_begun = false;
  1358. mb->set_double_click(true);
  1359. }
  1360. Ref<InputEventMessage> msg;
  1361. msg.instantiate();
  1362. msg->event = mb;
  1363. wayland_thread->push_message(msg);
  1364. // Send an event resetting immediately the wheel key.
  1365. // Wayland specification defines axis_stop events as optional and says to
  1366. // treat all axis events as unterminated. As such, we have to manually do
  1367. // it ourselves.
  1368. if (test_button == MouseButton::WHEEL_UP || test_button == MouseButton::WHEEL_DOWN || test_button == MouseButton::WHEEL_LEFT || test_button == MouseButton::WHEEL_RIGHT) {
  1369. // FIXME: This is ugly, I can't find a clean way to clone an InputEvent.
  1370. // This works for now, despite being horrible.
  1371. Ref<InputEventMouseButton> wh_up;
  1372. wh_up.instantiate();
  1373. wh_up->set_window_id(DisplayServer::MAIN_WINDOW_ID);
  1374. wh_up->set_position(pd.position);
  1375. wh_up->set_global_position(pd.position);
  1376. // We have to unset the button to avoid it getting stuck.
  1377. pd.pressed_button_mask.clear_flag(test_button_mask);
  1378. wh_up->set_button_mask(pd.pressed_button_mask);
  1379. wh_up->set_button_index(test_button);
  1380. wh_up->set_pressed(false);
  1381. Ref<InputEventMessage> msg_up;
  1382. msg_up.instantiate();
  1383. msg_up->event = wh_up;
  1384. wayland_thread->push_message(msg_up);
  1385. }
  1386. }
  1387. }
  1388. }
  1389. // Reset the scroll vectors as we already handled them.
  1390. pd.scroll_vector = Vector2();
  1391. pd.discrete_scroll_vector_120 = Vector2i();
  1392. // Update the data all getters read. Wayland's specification requires us to do
  1393. // this, since all pointer actions are sent in individual events.
  1394. old_pd = pd;
  1395. }
  1396. void WaylandThread::_wl_pointer_on_axis_source(void *data, struct wl_pointer *wl_pointer, uint32_t axis_source) {
  1397. SeatState *ss = (SeatState *)data;
  1398. ERR_FAIL_NULL(ss);
  1399. if (!ss->pointed_surface) {
  1400. // We're probably on a decoration or some other third-party thing.
  1401. return;
  1402. }
  1403. ss->pointer_data_buffer.scroll_type = axis_source;
  1404. }
  1405. void WaylandThread::_wl_pointer_on_axis_stop(void *data, struct wl_pointer *wl_pointer, uint32_t time, uint32_t axis) {
  1406. }
  1407. // NOTE: This event is deprecated since version 8 and superseded by
  1408. // `wl_pointer::axis_value120`. This thus converts the data to its
  1409. // fraction-of-120 format.
  1410. void WaylandThread::_wl_pointer_on_axis_discrete(void *data, struct wl_pointer *wl_pointer, uint32_t axis, int32_t discrete) {
  1411. SeatState *ss = (SeatState *)data;
  1412. ERR_FAIL_NULL(ss);
  1413. if (!ss->pointed_surface) {
  1414. // We're probably on a decoration or some other third-party thing.
  1415. return;
  1416. }
  1417. PointerData &pd = ss->pointer_data_buffer;
  1418. // NOTE: We can allow ourselves to not accumulate this data (and thus just
  1419. // assign it) as the spec guarantees only one event per axis type.
  1420. if (axis == WL_POINTER_AXIS_VERTICAL_SCROLL) {
  1421. pd.discrete_scroll_vector_120.y = discrete * 120;
  1422. }
  1423. if (axis == WL_POINTER_AXIS_HORIZONTAL_SCROLL) {
  1424. pd.discrete_scroll_vector_120.x = discrete * 120;
  1425. }
  1426. }
  1427. // Supersedes `wl_pointer::axis_discrete` Since version 8.
  1428. void WaylandThread::_wl_pointer_on_axis_value120(void *data, struct wl_pointer *wl_pointer, uint32_t axis, int32_t value120) {
  1429. SeatState *ss = (SeatState *)data;
  1430. ERR_FAIL_NULL(ss);
  1431. if (!ss->pointed_surface) {
  1432. // We're probably on a decoration or some other third-party thing.
  1433. return;
  1434. }
  1435. PointerData &pd = ss->pointer_data_buffer;
  1436. if (axis == WL_POINTER_AXIS_VERTICAL_SCROLL) {
  1437. pd.discrete_scroll_vector_120.y += value120;
  1438. }
  1439. if (axis == WL_POINTER_AXIS_HORIZONTAL_SCROLL) {
  1440. pd.discrete_scroll_vector_120.x += value120;
  1441. }
  1442. }
  1443. // TODO: Add support to this event.
  1444. void WaylandThread::_wl_pointer_on_axis_relative_direction(void *data, struct wl_pointer *wl_pointer, uint32_t axis, uint32_t direction) {
  1445. }
  1446. void WaylandThread::_wl_keyboard_on_keymap(void *data, struct wl_keyboard *wl_keyboard, uint32_t format, int32_t fd, uint32_t size) {
  1447. ERR_FAIL_COND_MSG(format != WL_KEYBOARD_KEYMAP_FORMAT_XKB_V1, "Unsupported keymap format announced from the Wayland compositor.");
  1448. SeatState *ss = (SeatState *)data;
  1449. ERR_FAIL_NULL(ss);
  1450. if (ss->keymap_buffer) {
  1451. // We have already a mapped buffer, so we unmap it. There's no need to reset
  1452. // its pointer or size, as we're gonna set them below.
  1453. munmap((void *)ss->keymap_buffer, ss->keymap_buffer_size);
  1454. ss->keymap_buffer = nullptr;
  1455. }
  1456. ss->keymap_buffer = (const char *)mmap(nullptr, size, PROT_READ, MAP_PRIVATE, fd, 0);
  1457. ss->keymap_buffer_size = size;
  1458. xkb_keymap_unref(ss->xkb_keymap);
  1459. ss->xkb_keymap = xkb_keymap_new_from_string(ss->xkb_context, ss->keymap_buffer,
  1460. XKB_KEYMAP_FORMAT_TEXT_V1, XKB_KEYMAP_COMPILE_NO_FLAGS);
  1461. xkb_state_unref(ss->xkb_state);
  1462. ss->xkb_state = xkb_state_new(ss->xkb_keymap);
  1463. }
  1464. void WaylandThread::_wl_keyboard_on_enter(void *data, struct wl_keyboard *wl_keyboard, uint32_t serial, struct wl_surface *surface, struct wl_array *keys) {
  1465. SeatState *ss = (SeatState *)data;
  1466. ERR_FAIL_NULL(ss);
  1467. WaylandThread *wayland_thread = ss->wayland_thread;
  1468. ERR_FAIL_NULL(wayland_thread);
  1469. wayland_thread->_set_current_seat(ss->wl_seat);
  1470. Ref<WindowEventMessage> msg;
  1471. msg.instantiate();
  1472. msg->event = DisplayServer::WINDOW_EVENT_FOCUS_IN;
  1473. wayland_thread->push_message(msg);
  1474. }
  1475. void WaylandThread::_wl_keyboard_on_leave(void *data, struct wl_keyboard *wl_keyboard, uint32_t serial, struct wl_surface *surface) {
  1476. SeatState *ss = (SeatState *)data;
  1477. ERR_FAIL_NULL(ss);
  1478. WaylandThread *wayland_thread = ss->wayland_thread;
  1479. ERR_FAIL_NULL(wayland_thread);
  1480. ss->repeating_keycode = XKB_KEYCODE_INVALID;
  1481. Ref<WindowEventMessage> msg;
  1482. msg.instantiate();
  1483. msg->event = DisplayServer::WINDOW_EVENT_FOCUS_OUT;
  1484. wayland_thread->push_message(msg);
  1485. }
  1486. void WaylandThread::_wl_keyboard_on_key(void *data, struct wl_keyboard *wl_keyboard, uint32_t serial, uint32_t time, uint32_t key, uint32_t state) {
  1487. SeatState *ss = (SeatState *)data;
  1488. ERR_FAIL_NULL(ss);
  1489. WaylandThread *wayland_thread = ss->wayland_thread;
  1490. ERR_FAIL_NULL(wayland_thread);
  1491. // We have to add 8 to the scancode to get an XKB-compatible keycode.
  1492. xkb_keycode_t xkb_keycode = key + 8;
  1493. bool pressed = state & WL_KEYBOARD_KEY_STATE_PRESSED;
  1494. if (pressed) {
  1495. if (xkb_keymap_key_repeats(ss->xkb_keymap, xkb_keycode)) {
  1496. ss->last_repeat_start_msec = OS::get_singleton()->get_ticks_msec();
  1497. ss->repeating_keycode = xkb_keycode;
  1498. }
  1499. ss->last_key_pressed_serial = serial;
  1500. } else if (ss->repeating_keycode == xkb_keycode) {
  1501. ss->repeating_keycode = XKB_KEYCODE_INVALID;
  1502. }
  1503. Ref<InputEventKey> k = _seat_state_get_key_event(ss, xkb_keycode, pressed);
  1504. if (k.is_null()) {
  1505. return;
  1506. }
  1507. Ref<InputEventKey> uk = _seat_state_get_unstuck_key_event(ss, xkb_keycode, pressed, k->get_keycode());
  1508. if (uk.is_valid()) {
  1509. Ref<InputEventMessage> u_msg;
  1510. u_msg.instantiate();
  1511. u_msg->event = uk;
  1512. wayland_thread->push_message(u_msg);
  1513. }
  1514. Ref<InputEventMessage> msg;
  1515. msg.instantiate();
  1516. msg->event = k;
  1517. wayland_thread->push_message(msg);
  1518. }
  1519. void WaylandThread::_wl_keyboard_on_modifiers(void *data, struct wl_keyboard *wl_keyboard, uint32_t serial, uint32_t mods_depressed, uint32_t mods_latched, uint32_t mods_locked, uint32_t group) {
  1520. SeatState *ss = (SeatState *)data;
  1521. ERR_FAIL_NULL(ss);
  1522. xkb_state_update_mask(ss->xkb_state, mods_depressed, mods_latched, mods_locked, ss->current_layout_index, ss->current_layout_index, group);
  1523. ss->shift_pressed = xkb_state_mod_name_is_active(ss->xkb_state, XKB_MOD_NAME_SHIFT, XKB_STATE_MODS_DEPRESSED);
  1524. ss->ctrl_pressed = xkb_state_mod_name_is_active(ss->xkb_state, XKB_MOD_NAME_CTRL, XKB_STATE_MODS_DEPRESSED);
  1525. ss->alt_pressed = xkb_state_mod_name_is_active(ss->xkb_state, XKB_MOD_NAME_ALT, XKB_STATE_MODS_DEPRESSED);
  1526. ss->meta_pressed = xkb_state_mod_name_is_active(ss->xkb_state, XKB_MOD_NAME_LOGO, XKB_STATE_MODS_DEPRESSED);
  1527. ss->current_layout_index = group;
  1528. }
  1529. void WaylandThread::_wl_keyboard_on_repeat_info(void *data, struct wl_keyboard *wl_keyboard, int32_t rate, int32_t delay) {
  1530. SeatState *ss = (SeatState *)data;
  1531. ERR_FAIL_NULL(ss);
  1532. ss->repeat_key_delay_msec = 1000 / rate;
  1533. ss->repeat_start_delay_msec = delay;
  1534. }
  1535. // NOTE: Don't forget to `memfree` the offer's state.
  1536. void WaylandThread::_wl_data_device_on_data_offer(void *data, struct wl_data_device *wl_data_device, struct wl_data_offer *id) {
  1537. wl_proxy_tag_godot((struct wl_proxy *)id);
  1538. wl_data_offer_add_listener(id, &wl_data_offer_listener, memnew(OfferState));
  1539. }
  1540. void WaylandThread::_wl_data_device_on_enter(void *data, struct wl_data_device *wl_data_device, uint32_t serial, struct wl_surface *surface, wl_fixed_t x, wl_fixed_t y, struct wl_data_offer *id) {
  1541. SeatState *ss = (SeatState *)data;
  1542. ERR_FAIL_NULL(ss);
  1543. ss->dnd_enter_serial = serial;
  1544. ss->wl_data_offer_dnd = id;
  1545. // Godot only supports DnD file copying for now.
  1546. wl_data_offer_accept(id, serial, "text/uri-list");
  1547. wl_data_offer_set_actions(id, WL_DATA_DEVICE_MANAGER_DND_ACTION_COPY, WL_DATA_DEVICE_MANAGER_DND_ACTION_COPY);
  1548. }
  1549. void WaylandThread::_wl_data_device_on_leave(void *data, struct wl_data_device *wl_data_device) {
  1550. SeatState *ss = (SeatState *)data;
  1551. ERR_FAIL_NULL(ss);
  1552. if (ss->wl_data_offer_dnd) {
  1553. memdelete(wl_data_offer_get_offer_state(ss->wl_data_offer_dnd));
  1554. wl_data_offer_destroy(ss->wl_data_offer_dnd);
  1555. ss->wl_data_offer_dnd = nullptr;
  1556. }
  1557. }
  1558. void WaylandThread::_wl_data_device_on_motion(void *data, struct wl_data_device *wl_data_device, uint32_t time, wl_fixed_t x, wl_fixed_t y) {
  1559. }
  1560. void WaylandThread::_wl_data_device_on_drop(void *data, struct wl_data_device *wl_data_device) {
  1561. SeatState *ss = (SeatState *)data;
  1562. ERR_FAIL_NULL(ss);
  1563. WaylandThread *wayland_thread = ss->wayland_thread;
  1564. ERR_FAIL_NULL(wayland_thread);
  1565. OfferState *os = wl_data_offer_get_offer_state(ss->wl_data_offer_dnd);
  1566. ERR_FAIL_NULL(os);
  1567. if (os) {
  1568. Ref<DropFilesEventMessage> msg;
  1569. msg.instantiate();
  1570. Vector<uint8_t> list_data = _wl_data_offer_read(wayland_thread->wl_display, "text/uri-list", ss->wl_data_offer_dnd);
  1571. msg->files = String::utf8((const char *)list_data.ptr(), list_data.size()).split("\r\n", false);
  1572. for (int i = 0; i < msg->files.size(); i++) {
  1573. msg->files.write[i] = msg->files[i].replace("file://", "").uri_decode();
  1574. }
  1575. wayland_thread->push_message(msg);
  1576. wl_data_offer_finish(ss->wl_data_offer_dnd);
  1577. }
  1578. memdelete(wl_data_offer_get_offer_state(ss->wl_data_offer_dnd));
  1579. wl_data_offer_destroy(ss->wl_data_offer_dnd);
  1580. ss->wl_data_offer_dnd = nullptr;
  1581. }
  1582. void WaylandThread::_wl_data_device_on_selection(void *data, struct wl_data_device *wl_data_device, struct wl_data_offer *id) {
  1583. SeatState *ss = (SeatState *)data;
  1584. ERR_FAIL_NULL(ss);
  1585. if (ss->wl_data_offer_selection) {
  1586. memdelete(wl_data_offer_get_offer_state(ss->wl_data_offer_selection));
  1587. wl_data_offer_destroy(ss->wl_data_offer_selection);
  1588. }
  1589. ss->wl_data_offer_selection = id;
  1590. }
  1591. void WaylandThread::_wl_data_offer_on_offer(void *data, struct wl_data_offer *wl_data_offer, const char *mime_type) {
  1592. OfferState *os = (OfferState *)data;
  1593. ERR_FAIL_NULL(os);
  1594. if (os) {
  1595. os->mime_types.insert(String::utf8(mime_type));
  1596. }
  1597. }
  1598. void WaylandThread::_wl_data_offer_on_source_actions(void *data, struct wl_data_offer *wl_data_offer, uint32_t source_actions) {
  1599. }
  1600. void WaylandThread::_wl_data_offer_on_action(void *data, struct wl_data_offer *wl_data_offer, uint32_t dnd_action) {
  1601. }
  1602. void WaylandThread::_wl_data_source_on_target(void *data, struct wl_data_source *wl_data_source, const char *mime_type) {
  1603. }
  1604. void WaylandThread::_wl_data_source_on_send(void *data, struct wl_data_source *wl_data_source, const char *mime_type, int32_t fd) {
  1605. SeatState *ss = (SeatState *)data;
  1606. ERR_FAIL_NULL(ss);
  1607. Vector<uint8_t> *data_to_send = nullptr;
  1608. if (wl_data_source == ss->wl_data_source_selection) {
  1609. data_to_send = &ss->selection_data;
  1610. DEBUG_LOG_WAYLAND_THREAD("Clipboard: requested selection.");
  1611. }
  1612. if (data_to_send) {
  1613. ssize_t written_bytes = 0;
  1614. bool valid_mime = false;
  1615. if (strcmp(mime_type, "text/plain;charset=utf-8") == 0) {
  1616. valid_mime = true;
  1617. } else if (strcmp(mime_type, "text/plain") == 0) {
  1618. valid_mime = true;
  1619. }
  1620. if (valid_mime) {
  1621. written_bytes = write(fd, data_to_send->ptr(), data_to_send->size());
  1622. }
  1623. if (written_bytes > 0) {
  1624. DEBUG_LOG_WAYLAND_THREAD(vformat("Clipboard: sent %d bytes.", written_bytes));
  1625. } else if (written_bytes == 0) {
  1626. DEBUG_LOG_WAYLAND_THREAD("Clipboard: no bytes sent.");
  1627. } else {
  1628. ERR_PRINT(vformat("Clipboard: write error %d.", errno));
  1629. }
  1630. }
  1631. close(fd);
  1632. }
  1633. void WaylandThread::_wl_data_source_on_cancelled(void *data, struct wl_data_source *wl_data_source) {
  1634. SeatState *ss = (SeatState *)data;
  1635. ERR_FAIL_NULL(ss);
  1636. wl_data_source_destroy(wl_data_source);
  1637. if (wl_data_source == ss->wl_data_source_selection) {
  1638. ss->wl_data_source_selection = nullptr;
  1639. ss->selection_data.clear();
  1640. DEBUG_LOG_WAYLAND_THREAD("Clipboard: selection set by another program.");
  1641. return;
  1642. }
  1643. }
  1644. void WaylandThread::_wl_data_source_on_dnd_drop_performed(void *data, struct wl_data_source *wl_data_source) {
  1645. }
  1646. void WaylandThread::_wl_data_source_on_dnd_finished(void *data, struct wl_data_source *wl_data_source) {
  1647. }
  1648. void WaylandThread::_wl_data_source_on_action(void *data, struct wl_data_source *wl_data_source, uint32_t dnd_action) {
  1649. }
  1650. void WaylandThread::_wp_fractional_scale_on_preferred_scale(void *data, struct wp_fractional_scale_v1 *wp_fractional_scale_v1, uint32_t scale) {
  1651. WindowState *ws = (WindowState *)data;
  1652. ERR_FAIL_NULL(ws);
  1653. ws->preferred_fractional_scale = (double)scale / 120;
  1654. window_state_update_size(ws, ws->rect.size.width, ws->rect.size.height);
  1655. }
  1656. void WaylandThread::_wp_relative_pointer_on_relative_motion(void *data, struct zwp_relative_pointer_v1 *wp_relative_pointer, uint32_t uptime_hi, uint32_t uptime_lo, wl_fixed_t dx, wl_fixed_t dy, wl_fixed_t dx_unaccel, wl_fixed_t dy_unaccel) {
  1657. SeatState *ss = (SeatState *)data;
  1658. ERR_FAIL_NULL(ss);
  1659. if (!ss->pointed_surface) {
  1660. // We're probably on a decoration or some other third-party thing.
  1661. return;
  1662. }
  1663. PointerData &pd = ss->pointer_data_buffer;
  1664. WindowState *ws = wl_surface_get_window_state(ss->pointed_surface);
  1665. ERR_FAIL_NULL(ws);
  1666. pd.relative_motion.x = wl_fixed_to_double(dx);
  1667. pd.relative_motion.y = wl_fixed_to_double(dy);
  1668. pd.relative_motion *= window_state_get_scale_factor(ws);
  1669. pd.relative_motion_time = uptime_lo;
  1670. }
  1671. void WaylandThread::_wp_pointer_gesture_pinch_on_begin(void *data, struct zwp_pointer_gesture_pinch_v1 *wp_pointer_gesture_pinch_v1, uint32_t serial, uint32_t time, struct wl_surface *surface, uint32_t fingers) {
  1672. SeatState *ss = (SeatState *)data;
  1673. ERR_FAIL_NULL(ss);
  1674. if (fingers == 2) {
  1675. ss->old_pinch_scale = wl_fixed_from_int(1);
  1676. ss->active_gesture = Gesture::MAGNIFY;
  1677. }
  1678. }
  1679. void WaylandThread::_wp_pointer_gesture_pinch_on_update(void *data, struct zwp_pointer_gesture_pinch_v1 *wp_pointer_gesture_pinch_v1, uint32_t time, wl_fixed_t dx, wl_fixed_t dy, wl_fixed_t scale, wl_fixed_t rotation) {
  1680. SeatState *ss = (SeatState *)data;
  1681. ERR_FAIL_NULL(ss);
  1682. WaylandThread *wayland_thread = ss->wayland_thread;
  1683. ERR_FAIL_NULL(wayland_thread);
  1684. PointerData &pd = ss->pointer_data_buffer;
  1685. if (ss->active_gesture == Gesture::MAGNIFY) {
  1686. Ref<InputEventMagnifyGesture> mg;
  1687. mg.instantiate();
  1688. mg->set_window_id(DisplayServer::MAIN_WINDOW_ID);
  1689. // Set all pressed modifiers.
  1690. mg->set_shift_pressed(ss->shift_pressed);
  1691. mg->set_ctrl_pressed(ss->ctrl_pressed);
  1692. mg->set_alt_pressed(ss->alt_pressed);
  1693. mg->set_meta_pressed(ss->meta_pressed);
  1694. mg->set_position(pd.position);
  1695. wl_fixed_t scale_delta = scale - ss->old_pinch_scale;
  1696. mg->set_factor(1 + wl_fixed_to_double(scale_delta));
  1697. Ref<InputEventMessage> magnify_msg;
  1698. magnify_msg.instantiate();
  1699. magnify_msg->event = mg;
  1700. // Since Wayland allows only one gesture at a time and godot instead expects
  1701. // both of them, we'll have to create two separate input events: one for
  1702. // magnification and one for panning.
  1703. Ref<InputEventPanGesture> pg;
  1704. pg.instantiate();
  1705. pg->set_window_id(DisplayServer::MAIN_WINDOW_ID);
  1706. // Set all pressed modifiers.
  1707. pg->set_shift_pressed(ss->shift_pressed);
  1708. pg->set_ctrl_pressed(ss->ctrl_pressed);
  1709. pg->set_alt_pressed(ss->alt_pressed);
  1710. pg->set_meta_pressed(ss->meta_pressed);
  1711. pg->set_position(pd.position);
  1712. pg->set_delta(Vector2(wl_fixed_to_double(dx), wl_fixed_to_double(dy)));
  1713. Ref<InputEventMessage> pan_msg;
  1714. pan_msg.instantiate();
  1715. pan_msg->event = pg;
  1716. wayland_thread->push_message(magnify_msg);
  1717. wayland_thread->push_message(pan_msg);
  1718. ss->old_pinch_scale = scale;
  1719. }
  1720. }
  1721. void WaylandThread::_wp_pointer_gesture_pinch_on_end(void *data, struct zwp_pointer_gesture_pinch_v1 *wp_pointer_gesture_pinch_v1, uint32_t serial, uint32_t time, int32_t cancelled) {
  1722. SeatState *ss = (SeatState *)data;
  1723. ERR_FAIL_NULL(ss);
  1724. ss->active_gesture = Gesture::NONE;
  1725. }
  1726. // NOTE: Don't forget to `memfree` the offer's state.
  1727. void WaylandThread::_wp_primary_selection_device_on_data_offer(void *data, struct zwp_primary_selection_device_v1 *wp_primary_selection_device_v1, struct zwp_primary_selection_offer_v1 *offer) {
  1728. wl_proxy_tag_godot((struct wl_proxy *)offer);
  1729. zwp_primary_selection_offer_v1_add_listener(offer, &wp_primary_selection_offer_listener, memnew(OfferState));
  1730. }
  1731. void WaylandThread::_wp_primary_selection_device_on_selection(void *data, struct zwp_primary_selection_device_v1 *wp_primary_selection_device_v1, struct zwp_primary_selection_offer_v1 *id) {
  1732. SeatState *ss = (SeatState *)data;
  1733. ERR_FAIL_NULL(ss);
  1734. if (ss->wp_primary_selection_offer) {
  1735. memfree(wp_primary_selection_offer_get_offer_state(ss->wp_primary_selection_offer));
  1736. zwp_primary_selection_offer_v1_destroy(ss->wp_primary_selection_offer);
  1737. }
  1738. ss->wp_primary_selection_offer = id;
  1739. }
  1740. void WaylandThread::_wp_primary_selection_offer_on_offer(void *data, struct zwp_primary_selection_offer_v1 *wp_primary_selection_offer_v1, const char *mime_type) {
  1741. OfferState *os = (OfferState *)data;
  1742. ERR_FAIL_NULL(os);
  1743. if (os) {
  1744. os->mime_types.insert(String::utf8(mime_type));
  1745. }
  1746. }
  1747. void WaylandThread::_wp_primary_selection_source_on_send(void *data, struct zwp_primary_selection_source_v1 *wp_primary_selection_source_v1, const char *mime_type, int32_t fd) {
  1748. SeatState *ss = (SeatState *)data;
  1749. ERR_FAIL_NULL(ss);
  1750. Vector<uint8_t> *data_to_send = nullptr;
  1751. if (wp_primary_selection_source_v1 == ss->wp_primary_selection_source) {
  1752. data_to_send = &ss->primary_data;
  1753. DEBUG_LOG_WAYLAND_THREAD("Clipboard: requested primary selection.");
  1754. }
  1755. if (data_to_send) {
  1756. ssize_t written_bytes = 0;
  1757. if (strcmp(mime_type, "text/plain") == 0) {
  1758. written_bytes = write(fd, data_to_send->ptr(), data_to_send->size());
  1759. }
  1760. if (written_bytes > 0) {
  1761. DEBUG_LOG_WAYLAND_THREAD(vformat("Clipboard: sent %d bytes.", written_bytes));
  1762. } else if (written_bytes == 0) {
  1763. DEBUG_LOG_WAYLAND_THREAD("Clipboard: no bytes sent.");
  1764. } else {
  1765. ERR_PRINT(vformat("Clipboard: write error %d.", errno));
  1766. }
  1767. }
  1768. close(fd);
  1769. }
  1770. void WaylandThread::_wp_primary_selection_source_on_cancelled(void *data, struct zwp_primary_selection_source_v1 *wp_primary_selection_source_v1) {
  1771. SeatState *ss = (SeatState *)data;
  1772. ERR_FAIL_NULL(ss);
  1773. if (wp_primary_selection_source_v1 == ss->wp_primary_selection_source) {
  1774. zwp_primary_selection_source_v1_destroy(ss->wp_primary_selection_source);
  1775. ss->wp_primary_selection_source = nullptr;
  1776. ss->primary_data.clear();
  1777. DEBUG_LOG_WAYLAND_THREAD("Clipboard: primary selection set by another program.");
  1778. return;
  1779. }
  1780. }
  1781. void WaylandThread::_wp_tablet_seat_on_tablet_added(void *data, struct zwp_tablet_seat_v2 *wp_tablet_seat_v2, struct zwp_tablet_v2 *id) {
  1782. }
  1783. void WaylandThread::_wp_tablet_seat_on_tool_added(void *data, struct zwp_tablet_seat_v2 *wp_tablet_seat_v2, struct zwp_tablet_tool_v2 *id) {
  1784. SeatState *ss = (SeatState *)data;
  1785. ERR_FAIL_NULL(ss);
  1786. TabletToolState *state = memnew(TabletToolState);
  1787. state->wl_seat = ss->wl_seat;
  1788. wl_proxy_tag_godot((struct wl_proxy *)id);
  1789. zwp_tablet_tool_v2_add_listener(id, &wp_tablet_tool_listener, state);
  1790. ss->tablet_tools.push_back(id);
  1791. }
  1792. void WaylandThread::_wp_tablet_seat_on_pad_added(void *data, struct zwp_tablet_seat_v2 *wp_tablet_seat_v2, struct zwp_tablet_pad_v2 *id) {
  1793. }
  1794. void WaylandThread::_wp_tablet_tool_on_type(void *data, struct zwp_tablet_tool_v2 *wp_tablet_tool_v2, uint32_t tool_type) {
  1795. TabletToolState *state = wp_tablet_tool_get_state(wp_tablet_tool_v2);
  1796. if (state && tool_type == ZWP_TABLET_TOOL_V2_TYPE_ERASER) {
  1797. state->is_eraser = true;
  1798. }
  1799. }
  1800. void WaylandThread::_wp_tablet_tool_on_hardware_serial(void *data, struct zwp_tablet_tool_v2 *wp_tablet_tool_v2, uint32_t hardware_serial_hi, uint32_t hardware_serial_lo) {
  1801. }
  1802. void WaylandThread::_wp_tablet_tool_on_hardware_id_wacom(void *data, struct zwp_tablet_tool_v2 *wp_tablet_tool_v2, uint32_t hardware_id_hi, uint32_t hardware_id_lo) {
  1803. }
  1804. void WaylandThread::_wp_tablet_tool_on_capability(void *data, struct zwp_tablet_tool_v2 *wp_tablet_tool_v2, uint32_t capability) {
  1805. }
  1806. void WaylandThread::_wp_tablet_tool_on_done(void *data, struct zwp_tablet_tool_v2 *wp_tablet_tool_v2) {
  1807. }
  1808. void WaylandThread::_wp_tablet_tool_on_removed(void *data, struct zwp_tablet_tool_v2 *wp_tablet_tool_v2) {
  1809. TabletToolState *ts = wp_tablet_tool_get_state(wp_tablet_tool_v2);
  1810. if (!ts) {
  1811. return;
  1812. }
  1813. SeatState *ss = wl_seat_get_seat_state(ts->wl_seat);
  1814. if (!ss) {
  1815. return;
  1816. }
  1817. List<struct zwp_tablet_tool_v2 *>::Element *E = ss->tablet_tools.find(wp_tablet_tool_v2);
  1818. if (E && E->get()) {
  1819. struct zwp_tablet_tool_v2 *tool = E->get();
  1820. TabletToolState *state = wp_tablet_tool_get_state(tool);
  1821. if (state) {
  1822. memdelete(state);
  1823. }
  1824. zwp_tablet_tool_v2_destroy(tool);
  1825. ss->tablet_tools.erase(E);
  1826. }
  1827. }
  1828. void WaylandThread::_wp_tablet_tool_on_proximity_in(void *data, struct zwp_tablet_tool_v2 *wp_tablet_tool_v2, uint32_t serial, struct zwp_tablet_v2 *tablet, struct wl_surface *surface) {
  1829. if (!surface || !wl_proxy_is_godot((struct wl_proxy *)surface)) {
  1830. // We're probably on a decoration or something.
  1831. return;
  1832. }
  1833. TabletToolState *ts = wp_tablet_tool_get_state(wp_tablet_tool_v2);
  1834. if (!ts) {
  1835. return;
  1836. }
  1837. SeatState *ss = wl_seat_get_seat_state(ts->wl_seat);
  1838. if (!ss) {
  1839. return;
  1840. }
  1841. WaylandThread *wayland_thread = ss->wayland_thread;
  1842. ERR_FAIL_NULL(wayland_thread);
  1843. ts->data_pending.proximity_serial = serial;
  1844. ts->data_pending.proximal_surface = surface;
  1845. ts->last_surface = surface;
  1846. Ref<WindowEventMessage> msg;
  1847. msg.instantiate();
  1848. msg->event = DisplayServer::WINDOW_EVENT_MOUSE_ENTER;
  1849. wayland_thread->push_message(msg);
  1850. DEBUG_LOG_WAYLAND_THREAD("Tablet tool entered window.");
  1851. }
  1852. void WaylandThread::_wp_tablet_tool_on_proximity_out(void *data, struct zwp_tablet_tool_v2 *wp_tablet_tool_v2) {
  1853. TabletToolState *ts = wp_tablet_tool_get_state(wp_tablet_tool_v2);
  1854. if (!ts || !ts->data_pending.proximal_surface) {
  1855. // Not our stuff, we don't care.
  1856. return;
  1857. }
  1858. SeatState *ss = wl_seat_get_seat_state(ts->wl_seat);
  1859. if (!ss) {
  1860. return;
  1861. }
  1862. WaylandThread *wayland_thread = ss->wayland_thread;
  1863. ERR_FAIL_NULL(wayland_thread);
  1864. ts->data_pending.proximal_surface = nullptr;
  1865. Ref<WindowEventMessage> msg;
  1866. msg.instantiate();
  1867. msg->event = DisplayServer::WINDOW_EVENT_MOUSE_EXIT;
  1868. wayland_thread->push_message(msg);
  1869. DEBUG_LOG_WAYLAND_THREAD("Tablet tool left window.");
  1870. }
  1871. void WaylandThread::_wp_tablet_tool_on_down(void *data, struct zwp_tablet_tool_v2 *wp_tablet_tool_v2, uint32_t serial) {
  1872. TabletToolState *ts = wp_tablet_tool_get_state(wp_tablet_tool_v2);
  1873. if (!ts) {
  1874. return;
  1875. }
  1876. TabletToolData &td = ts->data_pending;
  1877. td.pressed_button_mask.set_flag(mouse_button_to_mask(MouseButton::LEFT));
  1878. td.last_button_pressed = MouseButton::LEFT;
  1879. td.double_click_begun = true;
  1880. // The protocol doesn't cover this, but we can use this funky hack to make
  1881. // double clicking work.
  1882. td.button_time = OS::get_singleton()->get_ticks_msec();
  1883. }
  1884. void WaylandThread::_wp_tablet_tool_on_up(void *data, struct zwp_tablet_tool_v2 *wp_tablet_tool_v2) {
  1885. TabletToolState *ts = wp_tablet_tool_get_state(wp_tablet_tool_v2);
  1886. if (!ts) {
  1887. return;
  1888. }
  1889. TabletToolData &td = ts->data_pending;
  1890. td.pressed_button_mask.clear_flag(mouse_button_to_mask(MouseButton::LEFT));
  1891. // The protocol doesn't cover this, but we can use this funky hack to make
  1892. // double clicking work.
  1893. td.button_time = OS::get_singleton()->get_ticks_msec();
  1894. }
  1895. void WaylandThread::_wp_tablet_tool_on_motion(void *data, struct zwp_tablet_tool_v2 *wp_tablet_tool_v2, wl_fixed_t x, wl_fixed_t y) {
  1896. TabletToolState *ts = wp_tablet_tool_get_state(wp_tablet_tool_v2);
  1897. if (!ts) {
  1898. return;
  1899. }
  1900. if (!ts->data_pending.proximal_surface) {
  1901. // We're probably on a decoration or some other third-party thing.
  1902. return;
  1903. }
  1904. WindowState *ws = wl_surface_get_window_state(ts->data_pending.proximal_surface);
  1905. ERR_FAIL_NULL(ws);
  1906. TabletToolData &td = ts->data_pending;
  1907. double scale_factor = window_state_get_scale_factor(ws);
  1908. td.position.x = wl_fixed_to_double(x);
  1909. td.position.y = wl_fixed_to_double(y);
  1910. td.position *= scale_factor;
  1911. td.motion_time = OS::get_singleton()->get_ticks_msec();
  1912. }
  1913. void WaylandThread::_wp_tablet_tool_on_pressure(void *data, struct zwp_tablet_tool_v2 *wp_tablet_tool_v2, uint32_t pressure) {
  1914. TabletToolState *ts = wp_tablet_tool_get_state(wp_tablet_tool_v2);
  1915. if (!ts) {
  1916. return;
  1917. }
  1918. ts->data_pending.pressure = pressure;
  1919. }
  1920. void WaylandThread::_wp_tablet_tool_on_distance(void *data, struct zwp_tablet_tool_v2 *wp_tablet_tool_v2, uint32_t distance) {
  1921. // Unsupported
  1922. }
  1923. void WaylandThread::_wp_tablet_tool_on_tilt(void *data, struct zwp_tablet_tool_v2 *wp_tablet_tool_v2, wl_fixed_t tilt_x, wl_fixed_t tilt_y) {
  1924. TabletToolState *ts = wp_tablet_tool_get_state(wp_tablet_tool_v2);
  1925. if (!ts) {
  1926. return;
  1927. }
  1928. TabletToolData &td = ts->data_pending;
  1929. td.tilt.x = wl_fixed_to_double(tilt_x);
  1930. td.tilt.y = wl_fixed_to_double(tilt_y);
  1931. }
  1932. void WaylandThread::_wp_tablet_tool_on_rotation(void *data, struct zwp_tablet_tool_v2 *wp_tablet_tool_v2, wl_fixed_t degrees) {
  1933. // Unsupported.
  1934. }
  1935. void WaylandThread::_wp_tablet_tool_on_slider(void *data, struct zwp_tablet_tool_v2 *wp_tablet_tool_v2, int32_t position) {
  1936. // Unsupported.
  1937. }
  1938. void WaylandThread::_wp_tablet_tool_on_wheel(void *data, struct zwp_tablet_tool_v2 *wp_tablet_tool_v2, wl_fixed_t degrees, int32_t clicks) {
  1939. // TODO
  1940. }
  1941. void WaylandThread::_wp_tablet_tool_on_button(void *data, struct zwp_tablet_tool_v2 *wp_tablet_tool_v2, uint32_t serial, uint32_t button, uint32_t state) {
  1942. TabletToolState *ts = wp_tablet_tool_get_state(wp_tablet_tool_v2);
  1943. if (!ts) {
  1944. return;
  1945. }
  1946. TabletToolData &td = ts->data_pending;
  1947. MouseButton mouse_button = MouseButton::NONE;
  1948. if (button == BTN_STYLUS) {
  1949. mouse_button = MouseButton::LEFT;
  1950. }
  1951. if (button == BTN_STYLUS2) {
  1952. mouse_button = MouseButton::RIGHT;
  1953. }
  1954. if (mouse_button != MouseButton::NONE) {
  1955. MouseButtonMask mask = mouse_button_to_mask(mouse_button);
  1956. if (state == ZWP_TABLET_TOOL_V2_BUTTON_STATE_PRESSED) {
  1957. td.pressed_button_mask.set_flag(mask);
  1958. td.last_button_pressed = mouse_button;
  1959. td.double_click_begun = true;
  1960. } else {
  1961. td.pressed_button_mask.clear_flag(mask);
  1962. }
  1963. // The protocol doesn't cover this, but we can use this funky hack to make
  1964. // double clicking work.
  1965. td.button_time = OS::get_singleton()->get_ticks_msec();
  1966. }
  1967. }
  1968. void WaylandThread::_wp_tablet_tool_on_frame(void *data, struct zwp_tablet_tool_v2 *wp_tablet_tool_v2, uint32_t time) {
  1969. TabletToolState *ts = wp_tablet_tool_get_state(wp_tablet_tool_v2);
  1970. if (!ts) {
  1971. return;
  1972. }
  1973. SeatState *ss = wl_seat_get_seat_state(ts->wl_seat);
  1974. if (!ss) {
  1975. return;
  1976. }
  1977. WaylandThread *wayland_thread = ss->wayland_thread;
  1978. ERR_FAIL_NULL(wayland_thread);
  1979. TabletToolData &old_td = ts->data;
  1980. TabletToolData &td = ts->data_pending;
  1981. if (old_td.position != td.position || old_td.tilt != td.tilt || old_td.pressure != td.pressure) {
  1982. Ref<InputEventMouseMotion> mm;
  1983. mm.instantiate();
  1984. mm->set_window_id(DisplayServer::MAIN_WINDOW_ID);
  1985. // Set all pressed modifiers.
  1986. mm->set_shift_pressed(ss->shift_pressed);
  1987. mm->set_ctrl_pressed(ss->ctrl_pressed);
  1988. mm->set_alt_pressed(ss->alt_pressed);
  1989. mm->set_meta_pressed(ss->meta_pressed);
  1990. mm->set_button_mask(td.pressed_button_mask);
  1991. mm->set_position(td.position);
  1992. mm->set_global_position(td.position);
  1993. // NOTE: The Godot API expects normalized values and we store them raw,
  1994. // straight from the compositor, so we have to normalize them here.
  1995. // According to the tablet proto spec, tilt is expressed in degrees relative
  1996. // to the Z axis of the tablet, so it shouldn't go over 90 degrees either way,
  1997. // I think. We'll clamp it just in case.
  1998. td.tilt = td.tilt.clampf(-90, 90);
  1999. mm->set_tilt(td.tilt / 90);
  2000. // The tablet proto spec explicitly says that pressure is defined as a value
  2001. // between 0 to 65535.
  2002. mm->set_pressure(td.pressure / (float)65535);
  2003. mm->set_pen_inverted(ts->is_eraser);
  2004. mm->set_relative(td.position - old_td.position);
  2005. mm->set_relative_screen_position(mm->get_relative());
  2006. Vector2 pos_delta = td.position - old_td.position;
  2007. uint32_t time_delta = td.motion_time - old_td.motion_time;
  2008. mm->set_velocity((Vector2)pos_delta / time_delta);
  2009. Ref<InputEventMessage> inputev_msg;
  2010. inputev_msg.instantiate();
  2011. inputev_msg->event = mm;
  2012. wayland_thread->push_message(inputev_msg);
  2013. }
  2014. if (old_td.pressed_button_mask != td.pressed_button_mask) {
  2015. BitField<MouseButtonMask> pressed_mask_delta = BitField<MouseButtonMask>((int64_t)old_td.pressed_button_mask ^ (int64_t)td.pressed_button_mask);
  2016. for (MouseButton test_button : { MouseButton::LEFT, MouseButton::RIGHT }) {
  2017. MouseButtonMask test_button_mask = mouse_button_to_mask(test_button);
  2018. if (pressed_mask_delta.has_flag(test_button_mask)) {
  2019. Ref<InputEventMouseButton> mb;
  2020. mb.instantiate();
  2021. // Set all pressed modifiers.
  2022. mb->set_shift_pressed(ss->shift_pressed);
  2023. mb->set_ctrl_pressed(ss->ctrl_pressed);
  2024. mb->set_alt_pressed(ss->alt_pressed);
  2025. mb->set_meta_pressed(ss->meta_pressed);
  2026. mb->set_window_id(DisplayServer::MAIN_WINDOW_ID);
  2027. mb->set_position(td.position);
  2028. mb->set_global_position(td.position);
  2029. mb->set_button_mask(td.pressed_button_mask);
  2030. mb->set_button_index(test_button);
  2031. mb->set_pressed(td.pressed_button_mask.has_flag(test_button_mask));
  2032. // We have to set the last position pressed here as we can't take for
  2033. // granted what the individual events might have seen due to them not having
  2034. // a garaunteed order.
  2035. if (mb->is_pressed()) {
  2036. td.last_pressed_position = td.position;
  2037. }
  2038. if (old_td.double_click_begun && mb->is_pressed() && td.last_button_pressed == old_td.last_button_pressed && (td.button_time - old_td.button_time) < 400 && Vector2(td.last_pressed_position).distance_to(Vector2(old_td.last_pressed_position)) < 5) {
  2039. td.double_click_begun = false;
  2040. mb->set_double_click(true);
  2041. }
  2042. Ref<InputEventMessage> msg;
  2043. msg.instantiate();
  2044. msg->event = mb;
  2045. wayland_thread->push_message(msg);
  2046. }
  2047. }
  2048. }
  2049. old_td = td;
  2050. }
  2051. void WaylandThread::_wp_text_input_on_enter(void *data, struct zwp_text_input_v3 *wp_text_input_v3, struct wl_surface *surface) {
  2052. SeatState *ss = (SeatState *)data;
  2053. if (!ss) {
  2054. return;
  2055. }
  2056. ss->ime_enabled = true;
  2057. }
  2058. void WaylandThread::_wp_text_input_on_leave(void *data, struct zwp_text_input_v3 *wp_text_input_v3, struct wl_surface *surface) {
  2059. SeatState *ss = (SeatState *)data;
  2060. if (!ss) {
  2061. return;
  2062. }
  2063. ss->ime_enabled = false;
  2064. ss->ime_active = false;
  2065. ss->ime_text = String();
  2066. ss->ime_text_commit = String();
  2067. ss->ime_cursor = Vector2i();
  2068. Ref<IMEUpdateEventMessage> msg;
  2069. msg.instantiate();
  2070. msg->text = String();
  2071. msg->selection = Vector2i();
  2072. ss->wayland_thread->push_message(msg);
  2073. }
  2074. void WaylandThread::_wp_text_input_on_preedit_string(void *data, struct zwp_text_input_v3 *wp_text_input_v3, const char *text, int32_t cursor_begin, int32_t cursor_end) {
  2075. SeatState *ss = (SeatState *)data;
  2076. if (!ss) {
  2077. return;
  2078. }
  2079. ss->ime_text = String::utf8(text);
  2080. // Convert cursor positions from UTF-8 to UTF-32 offset.
  2081. int32_t cursor_begin_utf32 = 0;
  2082. int32_t cursor_end_utf32 = 0;
  2083. for (int i = 0; i < ss->ime_text.length(); i++) {
  2084. uint32_t c = ss->ime_text[i];
  2085. if (c <= 0x7f) { // 7 bits.
  2086. cursor_begin -= 1;
  2087. cursor_end -= 1;
  2088. } else if (c <= 0x7ff) { // 11 bits
  2089. cursor_begin -= 2;
  2090. cursor_end -= 2;
  2091. } else if (c <= 0xffff) { // 16 bits
  2092. cursor_begin -= 3;
  2093. cursor_end -= 3;
  2094. } else if (c <= 0x001fffff) { // 21 bits
  2095. cursor_begin -= 4;
  2096. cursor_end -= 4;
  2097. } else if (c <= 0x03ffffff) { // 26 bits
  2098. cursor_begin -= 5;
  2099. cursor_end -= 5;
  2100. } else if (c <= 0x7fffffff) { // 31 bits
  2101. cursor_begin -= 6;
  2102. cursor_end -= 6;
  2103. } else {
  2104. cursor_begin -= 1;
  2105. cursor_end -= 1;
  2106. }
  2107. if (cursor_begin == 0) {
  2108. cursor_begin_utf32 = i + 1;
  2109. }
  2110. if (cursor_end == 0) {
  2111. cursor_end_utf32 = i + 1;
  2112. }
  2113. if (cursor_begin <= 0 && cursor_end <= 0) {
  2114. break;
  2115. }
  2116. }
  2117. ss->ime_cursor = Vector2i(cursor_begin_utf32, cursor_end_utf32 - cursor_begin_utf32);
  2118. }
  2119. void WaylandThread::_wp_text_input_on_commit_string(void *data, struct zwp_text_input_v3 *wp_text_input_v3, const char *text) {
  2120. SeatState *ss = (SeatState *)data;
  2121. if (!ss) {
  2122. return;
  2123. }
  2124. ss->ime_text_commit = String::utf8(text);
  2125. }
  2126. void WaylandThread::_wp_text_input_on_delete_surrounding_text(void *data, struct zwp_text_input_v3 *wp_text_input_v3, uint32_t before_length, uint32_t after_length) {
  2127. // Not implemented.
  2128. }
  2129. void WaylandThread::_wp_text_input_on_done(void *data, struct zwp_text_input_v3 *wp_text_input_v3, uint32_t serial) {
  2130. SeatState *ss = (SeatState *)data;
  2131. if (!ss) {
  2132. return;
  2133. }
  2134. if (!ss->ime_text_commit.is_empty()) {
  2135. Ref<IMECommitEventMessage> msg;
  2136. msg.instantiate();
  2137. msg->text = ss->ime_text_commit;
  2138. ss->wayland_thread->push_message(msg);
  2139. } else {
  2140. Ref<IMEUpdateEventMessage> msg;
  2141. msg.instantiate();
  2142. msg->text = ss->ime_text;
  2143. msg->selection = ss->ime_cursor;
  2144. ss->wayland_thread->push_message(msg);
  2145. }
  2146. ss->ime_text = String();
  2147. ss->ime_text_commit = String();
  2148. ss->ime_cursor = Vector2i();
  2149. }
  2150. void WaylandThread::_xdg_activation_token_on_done(void *data, struct xdg_activation_token_v1 *xdg_activation_token, const char *token) {
  2151. WindowState *ws = (WindowState *)data;
  2152. ERR_FAIL_NULL(ws);
  2153. ERR_FAIL_NULL(ws->wayland_thread);
  2154. ERR_FAIL_NULL(ws->wl_surface);
  2155. xdg_activation_v1_activate(ws->wayland_thread->registry.xdg_activation, token, ws->wl_surface);
  2156. xdg_activation_token_v1_destroy(xdg_activation_token);
  2157. DEBUG_LOG_WAYLAND_THREAD(vformat("Received activation token and requested window activation."));
  2158. }
  2159. // NOTE: This must be started after a valid wl_display is loaded.
  2160. void WaylandThread::_poll_events_thread(void *p_data) {
  2161. ThreadData *data = (ThreadData *)p_data;
  2162. ERR_FAIL_NULL(data);
  2163. ERR_FAIL_NULL(data->wl_display);
  2164. struct pollfd poll_fd;
  2165. poll_fd.fd = wl_display_get_fd(data->wl_display);
  2166. poll_fd.events = POLLIN | POLLHUP;
  2167. while (true) {
  2168. // Empty the event queue while it's full.
  2169. while (wl_display_prepare_read(data->wl_display) != 0) {
  2170. // We aren't using wl_display_dispatch(), instead "manually" handling events
  2171. // through wl_display_dispatch_pending so that we can use a global mutex and
  2172. // be sure that this and the main thread won't race over stuff, as long as
  2173. // the main thread locks it too.
  2174. //
  2175. // Note that the main thread can still call wl_display_roundtrip as that
  2176. // method directly handles all events, effectively bypassing this polling
  2177. // loop and thus the mutex locking, avoiding a deadlock.
  2178. MutexLock mutex_lock(data->mutex);
  2179. if (wl_display_dispatch_pending(data->wl_display) == -1) {
  2180. // Oh no. We'll check and handle any display error below.
  2181. break;
  2182. }
  2183. }
  2184. int werror = wl_display_get_error(data->wl_display);
  2185. if (werror) {
  2186. if (werror == EPROTO) {
  2187. struct wl_interface *wl_interface = nullptr;
  2188. uint32_t id = 0;
  2189. int error_code = wl_display_get_protocol_error(data->wl_display, (const struct wl_interface **)&wl_interface, &id);
  2190. CRASH_NOW_MSG(vformat("Wayland protocol error %d on interface %s@%d.", error_code, wl_interface ? wl_interface->name : "unknown", id));
  2191. } else {
  2192. CRASH_NOW_MSG(vformat("Wayland client error code %d.", werror));
  2193. }
  2194. }
  2195. wl_display_flush(data->wl_display);
  2196. // Wait for the event file descriptor to have new data.
  2197. poll(&poll_fd, 1, -1);
  2198. if (data->thread_done.is_set()) {
  2199. wl_display_cancel_read(data->wl_display);
  2200. break;
  2201. }
  2202. if (poll_fd.revents | POLLIN) {
  2203. // Load the queues with fresh new data.
  2204. wl_display_read_events(data->wl_display);
  2205. } else {
  2206. // Oh well... Stop signaling that we want to read.
  2207. wl_display_cancel_read(data->wl_display);
  2208. }
  2209. // The docs advise to redispatch unconditionally and it looks like that if we
  2210. // don't do this we can't catch protocol errors, which is bad.
  2211. MutexLock mutex_lock(data->mutex);
  2212. wl_display_dispatch_pending(data->wl_display);
  2213. }
  2214. }
  2215. struct wl_display *WaylandThread::get_wl_display() const {
  2216. return wl_display;
  2217. }
  2218. // NOTE: Stuff like libdecor can (and will) register foreign proxies which
  2219. // aren't formatted as we like. This method is needed to detect whether a proxy
  2220. // has our tag. Also, be careful! The proxy has to be manually tagged or it
  2221. // won't be recognized.
  2222. bool WaylandThread::wl_proxy_is_godot(struct wl_proxy *p_proxy) {
  2223. ERR_FAIL_NULL_V(p_proxy, false);
  2224. return wl_proxy_get_tag(p_proxy) == &proxy_tag;
  2225. }
  2226. void WaylandThread::wl_proxy_tag_godot(struct wl_proxy *p_proxy) {
  2227. ERR_FAIL_NULL(p_proxy);
  2228. wl_proxy_set_tag(p_proxy, &proxy_tag);
  2229. }
  2230. // Returns the wl_surface's `WindowState`, otherwise `nullptr`.
  2231. // NOTE: This will fail if the surface isn't tagged as ours.
  2232. WaylandThread::WindowState *WaylandThread::wl_surface_get_window_state(struct wl_surface *p_surface) {
  2233. if (p_surface && wl_proxy_is_godot((wl_proxy *)p_surface)) {
  2234. return (WindowState *)wl_surface_get_user_data(p_surface);
  2235. }
  2236. return nullptr;
  2237. }
  2238. // Returns the wl_outputs's `ScreenState`, otherwise `nullptr`.
  2239. // NOTE: This will fail if the output isn't tagged as ours.
  2240. WaylandThread::ScreenState *WaylandThread::wl_output_get_screen_state(struct wl_output *p_output) {
  2241. if (p_output && wl_proxy_is_godot((wl_proxy *)p_output)) {
  2242. return (ScreenState *)wl_output_get_user_data(p_output);
  2243. }
  2244. return nullptr;
  2245. }
  2246. // Returns the wl_seat's `SeatState`, otherwise `nullptr`.
  2247. // NOTE: This will fail if the output isn't tagged as ours.
  2248. WaylandThread::SeatState *WaylandThread::wl_seat_get_seat_state(struct wl_seat *p_seat) {
  2249. if (p_seat && wl_proxy_is_godot((wl_proxy *)p_seat)) {
  2250. return (SeatState *)wl_seat_get_user_data(p_seat);
  2251. }
  2252. return nullptr;
  2253. }
  2254. // Returns the wp_tablet_tool's `TabletToolState`, otherwise `nullptr`.
  2255. // NOTE: This will fail if the output isn't tagged as ours.
  2256. WaylandThread::TabletToolState *WaylandThread::wp_tablet_tool_get_state(struct zwp_tablet_tool_v2 *p_tool) {
  2257. if (p_tool && wl_proxy_is_godot((wl_proxy *)p_tool)) {
  2258. return (TabletToolState *)zwp_tablet_tool_v2_get_user_data(p_tool);
  2259. }
  2260. return nullptr;
  2261. }
  2262. // Returns the wl_data_offer's `OfferState`, otherwise `nullptr`.
  2263. // NOTE: This will fail if the output isn't tagged as ours.
  2264. WaylandThread::OfferState *WaylandThread::wl_data_offer_get_offer_state(struct wl_data_offer *p_offer) {
  2265. if (p_offer && wl_proxy_is_godot((wl_proxy *)p_offer)) {
  2266. return (OfferState *)wl_data_offer_get_user_data(p_offer);
  2267. }
  2268. return nullptr;
  2269. }
  2270. // Returns the wl_data_offer's `OfferState`, otherwise `nullptr`.
  2271. // NOTE: This will fail if the output isn't tagged as ours.
  2272. WaylandThread::OfferState *WaylandThread::wp_primary_selection_offer_get_offer_state(struct zwp_primary_selection_offer_v1 *p_offer) {
  2273. if (p_offer && wl_proxy_is_godot((wl_proxy *)p_offer)) {
  2274. return (OfferState *)zwp_primary_selection_offer_v1_get_user_data(p_offer);
  2275. }
  2276. return nullptr;
  2277. }
  2278. // This is implemented as a method because this is the simplest way of
  2279. // accounting for dynamic output scale changes.
  2280. int WaylandThread::window_state_get_preferred_buffer_scale(WindowState *p_ws) {
  2281. ERR_FAIL_NULL_V(p_ws, 1);
  2282. if (p_ws->preferred_fractional_scale > 0) {
  2283. // We're scaling fractionally. Per spec, the buffer scale is always 1.
  2284. return 1;
  2285. }
  2286. if (p_ws->wl_outputs.is_empty()) {
  2287. DEBUG_LOG_WAYLAND_THREAD("Window has no output associated, returning buffer scale of 1.");
  2288. return 1;
  2289. }
  2290. // TODO: Cache value?
  2291. int max_size = 1;
  2292. // ================================ IMPORTANT =================================
  2293. // NOTE: Due to a Godot limitation, we can't really rescale the whole UI yet.
  2294. // Because of this reason, all platforms have resorted to forcing the highest
  2295. // scale possible of a system on any window, despite of what screen it's onto.
  2296. // On this backend everything's already in place for dynamic window scale
  2297. // handling, but in the meantime we'll just select the biggest _global_ output.
  2298. // To restore dynamic scale selection, simply iterate over `p_ws->wl_outputs`
  2299. // instead.
  2300. for (struct wl_output *wl_output : p_ws->registry->wl_outputs) {
  2301. ScreenState *ss = wl_output_get_screen_state(wl_output);
  2302. if (ss && ss->pending_data.scale > max_size) {
  2303. // NOTE: For some mystical reason, wl_output.done is emitted _after_ windows
  2304. // get resized but the scale event gets sent _before_ that. I'm still leaning
  2305. // towards the idea that rescaling when a window gets a resolution change is a
  2306. // pretty good approach, but this means that we'll have to use the screen data
  2307. // before it's "committed".
  2308. // FIXME: Use the committed data. Somehow.
  2309. max_size = ss->pending_data.scale;
  2310. }
  2311. }
  2312. return max_size;
  2313. }
  2314. double WaylandThread::window_state_get_scale_factor(WindowState *p_ws) {
  2315. ERR_FAIL_NULL_V(p_ws, 1);
  2316. if (p_ws->fractional_scale > 0) {
  2317. // The fractional scale amount takes priority.
  2318. return p_ws->fractional_scale;
  2319. }
  2320. return p_ws->buffer_scale;
  2321. }
  2322. void WaylandThread::window_state_update_size(WindowState *p_ws, int p_width, int p_height) {
  2323. ERR_FAIL_NULL(p_ws);
  2324. int preferred_buffer_scale = window_state_get_preferred_buffer_scale(p_ws);
  2325. bool using_fractional = p_ws->preferred_fractional_scale > 0;
  2326. // If neither is true we no-op.
  2327. bool scale_changed = false;
  2328. bool size_changed = false;
  2329. if (p_ws->rect.size.width != p_width || p_ws->rect.size.height != p_height) {
  2330. p_ws->rect.size.width = p_width;
  2331. p_ws->rect.size.height = p_height;
  2332. size_changed = true;
  2333. }
  2334. if (using_fractional && p_ws->fractional_scale != p_ws->preferred_fractional_scale) {
  2335. p_ws->fractional_scale = p_ws->preferred_fractional_scale;
  2336. scale_changed = true;
  2337. }
  2338. if (p_ws->buffer_scale != preferred_buffer_scale) {
  2339. // The buffer scale is always important, even if we use frac scaling.
  2340. p_ws->buffer_scale = preferred_buffer_scale;
  2341. p_ws->buffer_scale_changed = true;
  2342. if (!using_fractional) {
  2343. // We don't bother updating everything else if it's turned on though.
  2344. scale_changed = true;
  2345. }
  2346. }
  2347. if (p_ws->wl_surface && (size_changed || scale_changed)) {
  2348. if (p_ws->wp_viewport) {
  2349. wp_viewport_set_destination(p_ws->wp_viewport, p_width, p_height);
  2350. }
  2351. if (p_ws->xdg_surface) {
  2352. xdg_surface_set_window_geometry(p_ws->xdg_surface, 0, 0, p_width, p_height);
  2353. }
  2354. }
  2355. #ifdef LIBDECOR_ENABLED
  2356. if (p_ws->libdecor_frame) {
  2357. struct libdecor_state *state = libdecor_state_new(p_width, p_height);
  2358. libdecor_frame_commit(p_ws->libdecor_frame, state, p_ws->pending_libdecor_configuration);
  2359. libdecor_state_free(state);
  2360. p_ws->pending_libdecor_configuration = nullptr;
  2361. }
  2362. #endif
  2363. if (size_changed || scale_changed) {
  2364. Size2i scaled_size = scale_vector2i(p_ws->rect.size, window_state_get_scale_factor(p_ws));
  2365. if (using_fractional) {
  2366. DEBUG_LOG_WAYLAND_THREAD(vformat("Resizing the window from %s to %s (fractional scale x%f).", p_ws->rect.size, scaled_size, p_ws->fractional_scale));
  2367. } else {
  2368. DEBUG_LOG_WAYLAND_THREAD(vformat("Resizing the window from %s to %s (buffer scale x%d).", p_ws->rect.size, scaled_size, p_ws->buffer_scale));
  2369. }
  2370. // FIXME: Actually resize the hint instead of centering it.
  2371. p_ws->wayland_thread->pointer_set_hint(scaled_size / 2);
  2372. Ref<WindowRectMessage> rect_msg;
  2373. rect_msg.instantiate();
  2374. rect_msg->rect = p_ws->rect;
  2375. rect_msg->rect.size = scaled_size;
  2376. p_ws->wayland_thread->push_message(rect_msg);
  2377. }
  2378. if (scale_changed) {
  2379. Ref<WindowEventMessage> dpi_msg;
  2380. dpi_msg.instantiate();
  2381. dpi_msg->event = DisplayServer::WINDOW_EVENT_DPI_CHANGE;
  2382. p_ws->wayland_thread->push_message(dpi_msg);
  2383. }
  2384. }
  2385. // Scales a vector according to wp_fractional_scale's rules, where coordinates
  2386. // must be scaled with away from zero half-rounding.
  2387. Vector2i WaylandThread::scale_vector2i(const Vector2i &p_vector, double p_amount) {
  2388. // This snippet is tiny, I know, but this is done a lot.
  2389. int x = round(p_vector.x * p_amount);
  2390. int y = round(p_vector.y * p_amount);
  2391. return Vector2i(x, y);
  2392. }
  2393. void WaylandThread::seat_state_unlock_pointer(SeatState *p_ss) {
  2394. ERR_FAIL_NULL(p_ss);
  2395. if (p_ss->wl_pointer == nullptr) {
  2396. return;
  2397. }
  2398. if (p_ss->wp_locked_pointer) {
  2399. zwp_locked_pointer_v1_destroy(p_ss->wp_locked_pointer);
  2400. p_ss->wp_locked_pointer = nullptr;
  2401. }
  2402. if (p_ss->wp_confined_pointer) {
  2403. zwp_confined_pointer_v1_destroy(p_ss->wp_confined_pointer);
  2404. p_ss->wp_confined_pointer = nullptr;
  2405. }
  2406. }
  2407. void WaylandThread::seat_state_lock_pointer(SeatState *p_ss) {
  2408. ERR_FAIL_NULL(p_ss);
  2409. if (p_ss->wl_pointer == nullptr) {
  2410. return;
  2411. }
  2412. if (registry.wp_pointer_constraints == nullptr) {
  2413. return;
  2414. }
  2415. if (p_ss->wp_locked_pointer == nullptr) {
  2416. struct wl_surface *locked_surface = p_ss->last_pointed_surface;
  2417. if (locked_surface == nullptr) {
  2418. locked_surface = window_get_wl_surface(DisplayServer::MAIN_WINDOW_ID);
  2419. }
  2420. ERR_FAIL_NULL(locked_surface);
  2421. p_ss->wp_locked_pointer = zwp_pointer_constraints_v1_lock_pointer(registry.wp_pointer_constraints, locked_surface, p_ss->wl_pointer, nullptr, ZWP_POINTER_CONSTRAINTS_V1_LIFETIME_PERSISTENT);
  2422. }
  2423. }
  2424. void WaylandThread::seat_state_set_hint(SeatState *p_ss, int p_x, int p_y) {
  2425. if (p_ss->wp_locked_pointer == nullptr) {
  2426. return;
  2427. }
  2428. zwp_locked_pointer_v1_set_cursor_position_hint(p_ss->wp_locked_pointer, wl_fixed_from_int(p_x), wl_fixed_from_int(p_y));
  2429. }
  2430. void WaylandThread::seat_state_confine_pointer(SeatState *p_ss) {
  2431. ERR_FAIL_NULL(p_ss);
  2432. if (p_ss->wl_pointer == nullptr) {
  2433. return;
  2434. }
  2435. if (registry.wp_pointer_constraints == nullptr) {
  2436. return;
  2437. }
  2438. if (p_ss->wp_confined_pointer == nullptr) {
  2439. struct wl_surface *confined_surface = p_ss->last_pointed_surface;
  2440. if (confined_surface == nullptr) {
  2441. confined_surface = window_get_wl_surface(DisplayServer::MAIN_WINDOW_ID);
  2442. }
  2443. ERR_FAIL_NULL(confined_surface);
  2444. p_ss->wp_confined_pointer = zwp_pointer_constraints_v1_confine_pointer(registry.wp_pointer_constraints, confined_surface, p_ss->wl_pointer, nullptr, ZWP_POINTER_CONSTRAINTS_V1_LIFETIME_PERSISTENT);
  2445. }
  2446. }
  2447. void WaylandThread::seat_state_update_cursor(SeatState *p_ss) {
  2448. ERR_FAIL_NULL(p_ss);
  2449. WaylandThread *thread = p_ss->wayland_thread;
  2450. ERR_FAIL_NULL(p_ss->wayland_thread);
  2451. if (!p_ss->wl_pointer || !p_ss->cursor_surface) {
  2452. return;
  2453. }
  2454. // NOTE: Those values are valid by default and will hide the cursor when
  2455. // unchanged.
  2456. struct wl_buffer *cursor_buffer = nullptr;
  2457. uint32_t hotspot_x = 0;
  2458. uint32_t hotspot_y = 0;
  2459. int scale = 1;
  2460. if (thread->cursor_visible) {
  2461. DisplayServer::CursorShape shape = thread->cursor_shape;
  2462. struct CustomCursor *custom_cursor = thread->custom_cursors.getptr(shape);
  2463. if (custom_cursor) {
  2464. cursor_buffer = custom_cursor->wl_buffer;
  2465. hotspot_x = custom_cursor->hotspot.x;
  2466. hotspot_y = custom_cursor->hotspot.y;
  2467. // We can't really reasonably scale custom cursors, so we'll let the
  2468. // compositor do it for us (badly).
  2469. scale = 1;
  2470. } else {
  2471. struct wl_cursor *wl_cursor = thread->wl_cursors[shape];
  2472. if (!wl_cursor) {
  2473. return;
  2474. }
  2475. int frame_idx = 0;
  2476. if (wl_cursor->image_count > 1) {
  2477. // The cursor is animated.
  2478. frame_idx = wl_cursor_frame(wl_cursor, p_ss->cursor_time_ms);
  2479. if (!p_ss->cursor_frame_callback) {
  2480. // Since it's animated, we'll re-update it the next frame.
  2481. p_ss->cursor_frame_callback = wl_surface_frame(p_ss->cursor_surface);
  2482. wl_callback_add_listener(p_ss->cursor_frame_callback, &cursor_frame_callback_listener, p_ss);
  2483. }
  2484. }
  2485. struct wl_cursor_image *wl_cursor_image = wl_cursor->images[frame_idx];
  2486. scale = thread->cursor_scale;
  2487. cursor_buffer = wl_cursor_image_get_buffer(wl_cursor_image);
  2488. // As the surface's buffer is scaled (thus the surface is smaller) and the
  2489. // hotspot must be expressed in surface-local coordinates, we need to scale
  2490. // it down accordingly.
  2491. hotspot_x = wl_cursor_image->hotspot_x / scale;
  2492. hotspot_y = wl_cursor_image->hotspot_y / scale;
  2493. }
  2494. }
  2495. wl_pointer_set_cursor(p_ss->wl_pointer, p_ss->pointer_enter_serial, p_ss->cursor_surface, hotspot_x, hotspot_y);
  2496. wl_surface_set_buffer_scale(p_ss->cursor_surface, scale);
  2497. wl_surface_attach(p_ss->cursor_surface, cursor_buffer, 0, 0);
  2498. wl_surface_damage_buffer(p_ss->cursor_surface, 0, 0, INT_MAX, INT_MAX);
  2499. wl_surface_commit(p_ss->cursor_surface);
  2500. }
  2501. void WaylandThread::seat_state_echo_keys(SeatState *p_ss) {
  2502. ERR_FAIL_NULL(p_ss);
  2503. if (p_ss->wl_keyboard == nullptr) {
  2504. return;
  2505. }
  2506. // TODO: Comment and document out properly this block of code.
  2507. // In short, this implements key repeating.
  2508. if (p_ss->repeat_key_delay_msec && p_ss->repeating_keycode != XKB_KEYCODE_INVALID) {
  2509. uint64_t current_ticks = OS::get_singleton()->get_ticks_msec();
  2510. uint64_t delayed_start_ticks = p_ss->last_repeat_start_msec + p_ss->repeat_start_delay_msec;
  2511. if (p_ss->last_repeat_msec < delayed_start_ticks) {
  2512. p_ss->last_repeat_msec = delayed_start_ticks;
  2513. }
  2514. if (current_ticks >= delayed_start_ticks) {
  2515. uint64_t ticks_delta = current_ticks - p_ss->last_repeat_msec;
  2516. int keys_amount = (ticks_delta / p_ss->repeat_key_delay_msec);
  2517. for (int i = 0; i < keys_amount; i++) {
  2518. Ref<InputEventKey> k = _seat_state_get_key_event(p_ss, p_ss->repeating_keycode, true);
  2519. if (k.is_null()) {
  2520. continue;
  2521. }
  2522. k->set_echo(true);
  2523. Ref<InputEventKey> uk = _seat_state_get_unstuck_key_event(p_ss, p_ss->repeating_keycode, true, k->get_keycode());
  2524. if (uk.is_valid()) {
  2525. Input::get_singleton()->parse_input_event(uk);
  2526. }
  2527. Input::get_singleton()->parse_input_event(k);
  2528. }
  2529. p_ss->last_repeat_msec += ticks_delta - (ticks_delta % p_ss->repeat_key_delay_msec);
  2530. }
  2531. }
  2532. }
  2533. void WaylandThread::push_message(Ref<Message> message) {
  2534. messages.push_back(message);
  2535. }
  2536. bool WaylandThread::has_message() {
  2537. return messages.front() != nullptr;
  2538. }
  2539. Ref<WaylandThread::Message> WaylandThread::pop_message() {
  2540. if (messages.front() != nullptr) {
  2541. Ref<Message> msg = messages.front()->get();
  2542. messages.pop_front();
  2543. return msg;
  2544. }
  2545. // This method should only be called if `has_messages` returns true but if
  2546. // that isn't the case we'll just return an invalid `Ref`. After all, due to
  2547. // its `InputEvent`-like interface, we still have to dynamically cast and check
  2548. // the `Ref`'s validity anyways.
  2549. return Ref<Message>();
  2550. }
  2551. void WaylandThread::window_create(DisplayServer::WindowID p_window_id, int p_width, int p_height) {
  2552. // TODO: Implement multi-window support.
  2553. WindowState &ws = main_window;
  2554. ws.registry = &registry;
  2555. ws.wayland_thread = this;
  2556. ws.rect.size.width = p_width;
  2557. ws.rect.size.height = p_height;
  2558. ws.wl_surface = wl_compositor_create_surface(registry.wl_compositor);
  2559. wl_proxy_tag_godot((struct wl_proxy *)ws.wl_surface);
  2560. wl_surface_add_listener(ws.wl_surface, &wl_surface_listener, &ws);
  2561. if (registry.wp_viewporter) {
  2562. ws.wp_viewport = wp_viewporter_get_viewport(registry.wp_viewporter, ws.wl_surface);
  2563. if (registry.wp_fractional_scale_manager) {
  2564. ws.wp_fractional_scale = wp_fractional_scale_manager_v1_get_fractional_scale(registry.wp_fractional_scale_manager, ws.wl_surface);
  2565. wp_fractional_scale_v1_add_listener(ws.wp_fractional_scale, &wp_fractional_scale_listener, &ws);
  2566. }
  2567. }
  2568. bool decorated = false;
  2569. #ifdef LIBDECOR_ENABLED
  2570. if (!decorated && libdecor_context) {
  2571. ws.libdecor_frame = libdecor_decorate(libdecor_context, ws.wl_surface, (struct libdecor_frame_interface *)&libdecor_frame_interface, &ws);
  2572. libdecor_frame_map(ws.libdecor_frame);
  2573. decorated = true;
  2574. }
  2575. #endif
  2576. if (!decorated) {
  2577. // libdecor has failed loading or is disabled, we shall handle xdg_toplevel
  2578. // creation and decoration ourselves (and by decorating for now I just mean
  2579. // asking for SSDs and hoping for the best).
  2580. ws.xdg_surface = xdg_wm_base_get_xdg_surface(registry.xdg_wm_base, ws.wl_surface);
  2581. xdg_surface_add_listener(ws.xdg_surface, &xdg_surface_listener, &ws);
  2582. ws.xdg_toplevel = xdg_surface_get_toplevel(ws.xdg_surface);
  2583. xdg_toplevel_add_listener(ws.xdg_toplevel, &xdg_toplevel_listener, &ws);
  2584. if (registry.xdg_decoration_manager) {
  2585. ws.xdg_toplevel_decoration = zxdg_decoration_manager_v1_get_toplevel_decoration(registry.xdg_decoration_manager, ws.xdg_toplevel);
  2586. zxdg_toplevel_decoration_v1_add_listener(ws.xdg_toplevel_decoration, &xdg_toplevel_decoration_listener, &ws);
  2587. decorated = true;
  2588. }
  2589. }
  2590. ws.frame_callback = wl_surface_frame(ws.wl_surface);
  2591. wl_callback_add_listener(ws.frame_callback, &frame_wl_callback_listener, &ws);
  2592. if (registry.xdg_exporter_v2) {
  2593. ws.xdg_exported_v2 = zxdg_exporter_v2_export_toplevel(registry.xdg_exporter_v2, ws.wl_surface);
  2594. zxdg_exported_v2_add_listener(ws.xdg_exported_v2, &xdg_exported_v2_listener, &ws);
  2595. } else if (registry.xdg_exporter_v1) {
  2596. ws.xdg_exported_v1 = zxdg_exporter_v1_export(registry.xdg_exporter_v1, ws.wl_surface);
  2597. zxdg_exported_v1_add_listener(ws.xdg_exported_v1, &xdg_exported_v1_listener, &ws);
  2598. }
  2599. wl_surface_commit(ws.wl_surface);
  2600. // Wait for the surface to be configured before continuing.
  2601. wl_display_roundtrip(wl_display);
  2602. }
  2603. struct wl_surface *WaylandThread::window_get_wl_surface(DisplayServer::WindowID p_window_id) const {
  2604. // TODO: Use window IDs for multiwindow support.
  2605. const WindowState &ws = main_window;
  2606. return ws.wl_surface;
  2607. }
  2608. void WaylandThread::beep() const {
  2609. if (registry.xdg_system_bell) {
  2610. xdg_system_bell_v1_ring(registry.xdg_system_bell, nullptr);
  2611. }
  2612. }
  2613. void WaylandThread::window_start_drag(DisplayServer::WindowID p_window_id) {
  2614. // TODO: Use window IDs for multiwindow support.
  2615. WindowState &ws = main_window;
  2616. SeatState *ss = wl_seat_get_seat_state(wl_seat_current);
  2617. if (ss && ws.xdg_toplevel) {
  2618. xdg_toplevel_move(ws.xdg_toplevel, ss->wl_seat, ss->pointer_data.button_serial);
  2619. }
  2620. #ifdef LIBDECOR_ENABLED
  2621. if (ws.libdecor_frame) {
  2622. libdecor_frame_move(ws.libdecor_frame, ss->wl_seat, ss->pointer_data.button_serial);
  2623. }
  2624. #endif
  2625. }
  2626. void WaylandThread::window_start_resize(DisplayServer::WindowResizeEdge p_edge, DisplayServer::WindowID p_window) {
  2627. // TODO: Use window IDs for multiwindow support.
  2628. WindowState &ws = main_window;
  2629. SeatState *ss = wl_seat_get_seat_state(wl_seat_current);
  2630. if (ss && ws.xdg_toplevel) {
  2631. xdg_toplevel_resize_edge edge = XDG_TOPLEVEL_RESIZE_EDGE_NONE;
  2632. switch (p_edge) {
  2633. case DisplayServer::WINDOW_EDGE_TOP_LEFT: {
  2634. edge = XDG_TOPLEVEL_RESIZE_EDGE_TOP_LEFT;
  2635. } break;
  2636. case DisplayServer::WINDOW_EDGE_TOP: {
  2637. edge = XDG_TOPLEVEL_RESIZE_EDGE_TOP;
  2638. } break;
  2639. case DisplayServer::WINDOW_EDGE_TOP_RIGHT: {
  2640. edge = XDG_TOPLEVEL_RESIZE_EDGE_TOP_RIGHT;
  2641. } break;
  2642. case DisplayServer::WINDOW_EDGE_LEFT: {
  2643. edge = XDG_TOPLEVEL_RESIZE_EDGE_LEFT;
  2644. } break;
  2645. case DisplayServer::WINDOW_EDGE_RIGHT: {
  2646. edge = XDG_TOPLEVEL_RESIZE_EDGE_RIGHT;
  2647. } break;
  2648. case DisplayServer::WINDOW_EDGE_BOTTOM_LEFT: {
  2649. edge = XDG_TOPLEVEL_RESIZE_EDGE_BOTTOM_LEFT;
  2650. } break;
  2651. case DisplayServer::WINDOW_EDGE_BOTTOM: {
  2652. edge = XDG_TOPLEVEL_RESIZE_EDGE_BOTTOM;
  2653. } break;
  2654. case DisplayServer::WINDOW_EDGE_BOTTOM_RIGHT: {
  2655. edge = XDG_TOPLEVEL_RESIZE_EDGE_BOTTOM_RIGHT;
  2656. } break;
  2657. default:
  2658. break;
  2659. }
  2660. xdg_toplevel_resize(ws.xdg_toplevel, ss->wl_seat, ss->pointer_data.button_serial, edge);
  2661. }
  2662. #ifdef LIBDECOR_ENABLED
  2663. if (ws.libdecor_frame) {
  2664. libdecor_resize_edge edge = LIBDECOR_RESIZE_EDGE_NONE;
  2665. switch (p_edge) {
  2666. case DisplayServer::WINDOW_EDGE_TOP_LEFT: {
  2667. edge = LIBDECOR_RESIZE_EDGE_TOP_LEFT;
  2668. } break;
  2669. case DisplayServer::WINDOW_EDGE_TOP: {
  2670. edge = LIBDECOR_RESIZE_EDGE_TOP;
  2671. } break;
  2672. case DisplayServer::WINDOW_EDGE_TOP_RIGHT: {
  2673. edge = LIBDECOR_RESIZE_EDGE_TOP_RIGHT;
  2674. } break;
  2675. case DisplayServer::WINDOW_EDGE_LEFT: {
  2676. edge = LIBDECOR_RESIZE_EDGE_LEFT;
  2677. } break;
  2678. case DisplayServer::WINDOW_EDGE_RIGHT: {
  2679. edge = LIBDECOR_RESIZE_EDGE_RIGHT;
  2680. } break;
  2681. case DisplayServer::WINDOW_EDGE_BOTTOM_LEFT: {
  2682. edge = LIBDECOR_RESIZE_EDGE_BOTTOM_LEFT;
  2683. } break;
  2684. case DisplayServer::WINDOW_EDGE_BOTTOM: {
  2685. edge = LIBDECOR_RESIZE_EDGE_BOTTOM;
  2686. } break;
  2687. case DisplayServer::WINDOW_EDGE_BOTTOM_RIGHT: {
  2688. edge = LIBDECOR_RESIZE_EDGE_BOTTOM_RIGHT;
  2689. } break;
  2690. default:
  2691. break;
  2692. }
  2693. libdecor_frame_resize(ws.libdecor_frame, ss->wl_seat, ss->pointer_data.button_serial, edge);
  2694. }
  2695. #endif
  2696. }
  2697. void WaylandThread::window_set_max_size(DisplayServer::WindowID p_window_id, const Size2i &p_size) {
  2698. // TODO: Use window IDs for multiwindow support.
  2699. WindowState &ws = main_window;
  2700. Vector2i logical_max_size = p_size / window_state_get_scale_factor(&ws);
  2701. if (ws.wl_surface && ws.xdg_toplevel) {
  2702. xdg_toplevel_set_max_size(ws.xdg_toplevel, logical_max_size.width, logical_max_size.height);
  2703. }
  2704. #ifdef LIBDECOR_ENABLED
  2705. if (ws.libdecor_frame) {
  2706. libdecor_frame_set_max_content_size(ws.libdecor_frame, logical_max_size.width, logical_max_size.height);
  2707. }
  2708. // FIXME: I'm not sure whether we have to commit the surface for this to apply.
  2709. #endif
  2710. }
  2711. void WaylandThread::window_set_min_size(DisplayServer::WindowID p_window_id, const Size2i &p_size) {
  2712. // TODO: Use window IDs for multiwindow support.
  2713. WindowState &ws = main_window;
  2714. Size2i logical_min_size = p_size / window_state_get_scale_factor(&ws);
  2715. if (ws.wl_surface && ws.xdg_toplevel) {
  2716. xdg_toplevel_set_min_size(ws.xdg_toplevel, logical_min_size.width, logical_min_size.height);
  2717. }
  2718. #ifdef LIBDECOR_ENABLED
  2719. if (ws.libdecor_frame) {
  2720. libdecor_frame_set_min_content_size(ws.libdecor_frame, logical_min_size.width, logical_min_size.height);
  2721. }
  2722. // FIXME: I'm not sure whether we have to commit the surface for this to apply.
  2723. #endif
  2724. }
  2725. bool WaylandThread::window_can_set_mode(DisplayServer::WindowID p_window_id, DisplayServer::WindowMode p_window_mode) const {
  2726. // TODO: Use window IDs for multiwindow support.
  2727. const WindowState &ws = main_window;
  2728. switch (p_window_mode) {
  2729. case DisplayServer::WINDOW_MODE_WINDOWED: {
  2730. // Looks like it's guaranteed.
  2731. return true;
  2732. };
  2733. case DisplayServer::WINDOW_MODE_MINIMIZED: {
  2734. #ifdef LIBDECOR_ENABLED
  2735. if (ws.libdecor_frame) {
  2736. return libdecor_frame_has_capability(ws.libdecor_frame, LIBDECOR_ACTION_MINIMIZE);
  2737. }
  2738. #endif // LIBDECOR_ENABLED
  2739. return ws.can_minimize;
  2740. };
  2741. case DisplayServer::WINDOW_MODE_MAXIMIZED: {
  2742. // NOTE: libdecor doesn't seem to have a maximize capability query?
  2743. // The fact that there's a fullscreen one makes me suspicious.
  2744. return ws.can_maximize;
  2745. };
  2746. case DisplayServer::WINDOW_MODE_FULLSCREEN:
  2747. case DisplayServer::WINDOW_MODE_EXCLUSIVE_FULLSCREEN: {
  2748. #ifdef LIBDECOR_ENABLED
  2749. if (ws.libdecor_frame) {
  2750. return libdecor_frame_has_capability(ws.libdecor_frame, LIBDECOR_ACTION_FULLSCREEN);
  2751. }
  2752. #endif // LIBDECOR_ENABLED
  2753. return ws.can_fullscreen;
  2754. };
  2755. }
  2756. return false;
  2757. }
  2758. void WaylandThread::window_try_set_mode(DisplayServer::WindowID p_window_id, DisplayServer::WindowMode p_window_mode) {
  2759. // TODO: Use window IDs for multiwindow support.
  2760. WindowState &ws = main_window;
  2761. if (ws.mode == p_window_mode) {
  2762. return;
  2763. }
  2764. // Don't waste time with hidden windows and whatnot. Behave like it worked.
  2765. #ifdef LIBDECOR_ENABLED
  2766. if ((!ws.wl_surface || !ws.xdg_toplevel) && !ws.libdecor_frame) {
  2767. #else
  2768. if (!ws.wl_surface || !ws.xdg_toplevel) {
  2769. #endif // LIBDECOR_ENABLED
  2770. ws.mode = p_window_mode;
  2771. return;
  2772. }
  2773. // Return back to a windowed state so that we can apply what the user asked.
  2774. switch (ws.mode) {
  2775. case DisplayServer::WINDOW_MODE_WINDOWED: {
  2776. // Do nothing.
  2777. } break;
  2778. case DisplayServer::WINDOW_MODE_MINIMIZED: {
  2779. // We can't do much according to the xdg_shell protocol. I have no idea
  2780. // whether this implies that we should return or who knows what. For now
  2781. // we'll do nothing.
  2782. // TODO: Test this properly.
  2783. } break;
  2784. case DisplayServer::WINDOW_MODE_MAXIMIZED: {
  2785. // Try to unmaximize. This isn't garaunteed to work actually, so we'll have
  2786. // to check whether something changed.
  2787. if (ws.xdg_toplevel) {
  2788. xdg_toplevel_unset_maximized(ws.xdg_toplevel);
  2789. }
  2790. #ifdef LIBDECOR_ENABLED
  2791. if (ws.libdecor_frame) {
  2792. libdecor_frame_unset_maximized(ws.libdecor_frame);
  2793. }
  2794. #endif // LIBDECOR_ENABLED
  2795. } break;
  2796. case DisplayServer::WINDOW_MODE_FULLSCREEN:
  2797. case DisplayServer::WINDOW_MODE_EXCLUSIVE_FULLSCREEN: {
  2798. // Same thing as above, unset fullscreen and check later if it worked.
  2799. if (ws.xdg_toplevel) {
  2800. xdg_toplevel_unset_fullscreen(ws.xdg_toplevel);
  2801. }
  2802. #ifdef LIBDECOR_ENABLED
  2803. if (ws.libdecor_frame) {
  2804. libdecor_frame_unset_fullscreen(ws.libdecor_frame);
  2805. }
  2806. #endif // LIBDECOR_ENABLED
  2807. } break;
  2808. }
  2809. // Wait for a configure event and hope that something changed.
  2810. wl_display_roundtrip(wl_display);
  2811. if (ws.mode != DisplayServer::WINDOW_MODE_WINDOWED) {
  2812. // The compositor refused our "normalization" request. It'd be useless or
  2813. // unpredictable to attempt setting a new state. We're done.
  2814. return;
  2815. }
  2816. // Ask the compositor to set the state indicated by the new mode.
  2817. switch (p_window_mode) {
  2818. case DisplayServer::WINDOW_MODE_WINDOWED: {
  2819. // Do nothing. We're already windowed.
  2820. } break;
  2821. case DisplayServer::WINDOW_MODE_MINIMIZED: {
  2822. if (!window_can_set_mode(p_window_id, p_window_mode)) {
  2823. // Minimization is special (read below). Better not mess with it if the
  2824. // compositor explicitly announces that it doesn't support it.
  2825. break;
  2826. }
  2827. if (ws.xdg_toplevel) {
  2828. xdg_toplevel_set_minimized(ws.xdg_toplevel);
  2829. }
  2830. #ifdef LIBDECOR_ENABLED
  2831. if (ws.libdecor_frame) {
  2832. libdecor_frame_set_minimized(ws.libdecor_frame);
  2833. }
  2834. #endif // LIBDECOR_ENABLED
  2835. // We have no way to actually detect this state, so we'll have to report it
  2836. // manually to the engine (hoping that it worked). In the worst case it'll
  2837. // get reset by the next configure event.
  2838. ws.mode = DisplayServer::WINDOW_MODE_MINIMIZED;
  2839. } break;
  2840. case DisplayServer::WINDOW_MODE_MAXIMIZED: {
  2841. if (ws.xdg_toplevel) {
  2842. xdg_toplevel_set_maximized(ws.xdg_toplevel);
  2843. }
  2844. #ifdef LIBDECOR_ENABLED
  2845. if (ws.libdecor_frame) {
  2846. libdecor_frame_set_maximized(ws.libdecor_frame);
  2847. }
  2848. #endif // LIBDECOR_ENABLED
  2849. } break;
  2850. case DisplayServer::WINDOW_MODE_FULLSCREEN:
  2851. case DisplayServer::WINDOW_MODE_EXCLUSIVE_FULLSCREEN: {
  2852. if (ws.xdg_toplevel) {
  2853. xdg_toplevel_set_fullscreen(ws.xdg_toplevel, nullptr);
  2854. }
  2855. #ifdef LIBDECOR_ENABLED
  2856. if (ws.libdecor_frame) {
  2857. libdecor_frame_set_fullscreen(ws.libdecor_frame, nullptr);
  2858. }
  2859. #endif // LIBDECOR_ENABLED
  2860. } break;
  2861. default: {
  2862. } break;
  2863. }
  2864. }
  2865. void WaylandThread::window_set_borderless(DisplayServer::WindowID p_window_id, bool p_borderless) {
  2866. // TODO: Use window IDs for multiwindow support.
  2867. WindowState &ws = main_window;
  2868. if (ws.xdg_toplevel_decoration) {
  2869. if (p_borderless) {
  2870. // We implement borderless windows by simply asking the compositor to let
  2871. // us handle decorations (we don't).
  2872. zxdg_toplevel_decoration_v1_set_mode(ws.xdg_toplevel_decoration, ZXDG_TOPLEVEL_DECORATION_V1_MODE_CLIENT_SIDE);
  2873. } else {
  2874. zxdg_toplevel_decoration_v1_set_mode(ws.xdg_toplevel_decoration, ZXDG_TOPLEVEL_DECORATION_V1_MODE_SERVER_SIDE);
  2875. }
  2876. }
  2877. #ifdef LIBDECOR_ENABLED
  2878. if (ws.libdecor_frame) {
  2879. bool visible_current = libdecor_frame_is_visible(ws.libdecor_frame);
  2880. bool visible_target = !p_borderless;
  2881. // NOTE: We have to do this otherwise we trip on a libdecor bug where it's
  2882. // possible to destroy the frame more than once, by setting the visibility
  2883. // to false multiple times and thus crashing.
  2884. if (visible_current != visible_target) {
  2885. print_verbose(vformat("Setting libdecor frame visibility to %d", visible_target));
  2886. libdecor_frame_set_visibility(ws.libdecor_frame, visible_target);
  2887. }
  2888. }
  2889. #endif // LIBDECOR_ENABLED
  2890. }
  2891. void WaylandThread::window_set_title(DisplayServer::WindowID p_window_id, const String &p_title) {
  2892. // TODO: Use window IDs for multiwindow support.
  2893. WindowState &ws = main_window;
  2894. #ifdef LIBDECOR_ENABLED
  2895. if (ws.libdecor_frame) {
  2896. libdecor_frame_set_title(ws.libdecor_frame, p_title.utf8());
  2897. }
  2898. #endif // LIBDECOR_ENABLE
  2899. if (ws.xdg_toplevel) {
  2900. xdg_toplevel_set_title(ws.xdg_toplevel, p_title.utf8());
  2901. }
  2902. }
  2903. void WaylandThread::window_set_app_id(DisplayServer::WindowID p_window_id, const String &p_app_id) {
  2904. // TODO: Use window IDs for multiwindow support.
  2905. WindowState &ws = main_window;
  2906. #ifdef LIBDECOR_ENABLED
  2907. if (ws.libdecor_frame) {
  2908. libdecor_frame_set_app_id(ws.libdecor_frame, p_app_id.utf8());
  2909. return;
  2910. }
  2911. #endif // LIBDECOR_ENABLED
  2912. if (ws.xdg_toplevel) {
  2913. xdg_toplevel_set_app_id(ws.xdg_toplevel, p_app_id.utf8());
  2914. return;
  2915. }
  2916. }
  2917. DisplayServer::WindowMode WaylandThread::window_get_mode(DisplayServer::WindowID p_window_id) const {
  2918. // TODO: Use window IDs for multiwindow support.
  2919. const WindowState &ws = main_window;
  2920. return ws.mode;
  2921. }
  2922. void WaylandThread::window_request_attention(DisplayServer::WindowID p_window_id) {
  2923. // TODO: Use window IDs for multiwindow support.
  2924. WindowState &ws = main_window;
  2925. if (registry.xdg_activation) {
  2926. // Window attention requests are done through the XDG activation protocol.
  2927. xdg_activation_token_v1 *xdg_activation_token = xdg_activation_v1_get_activation_token(registry.xdg_activation);
  2928. xdg_activation_token_v1_add_listener(xdg_activation_token, &xdg_activation_token_listener, &ws);
  2929. xdg_activation_token_v1_commit(xdg_activation_token);
  2930. }
  2931. }
  2932. void WaylandThread::window_set_idle_inhibition(DisplayServer::WindowID p_window_id, bool p_enable) {
  2933. // TODO: Use window IDs for multiwindow support.
  2934. WindowState &ws = main_window;
  2935. if (p_enable) {
  2936. if (ws.registry->wp_idle_inhibit_manager && !ws.wp_idle_inhibitor) {
  2937. ERR_FAIL_NULL(ws.wl_surface);
  2938. ws.wp_idle_inhibitor = zwp_idle_inhibit_manager_v1_create_inhibitor(ws.registry->wp_idle_inhibit_manager, ws.wl_surface);
  2939. }
  2940. } else {
  2941. if (ws.wp_idle_inhibitor) {
  2942. zwp_idle_inhibitor_v1_destroy(ws.wp_idle_inhibitor);
  2943. ws.wp_idle_inhibitor = nullptr;
  2944. }
  2945. }
  2946. }
  2947. bool WaylandThread::window_get_idle_inhibition(DisplayServer::WindowID p_window_id) const {
  2948. // TODO: Use window IDs for multiwindow support.
  2949. const WindowState &ws = main_window;
  2950. return ws.wp_idle_inhibitor != nullptr;
  2951. }
  2952. WaylandThread::ScreenData WaylandThread::screen_get_data(int p_screen) const {
  2953. ERR_FAIL_INDEX_V(p_screen, registry.wl_outputs.size(), ScreenData());
  2954. return wl_output_get_screen_state(registry.wl_outputs.get(p_screen))->data;
  2955. }
  2956. int WaylandThread::get_screen_count() const {
  2957. return registry.wl_outputs.size();
  2958. }
  2959. DisplayServer::WindowID WaylandThread::pointer_get_pointed_window_id() const {
  2960. SeatState *ss = wl_seat_get_seat_state(wl_seat_current);
  2961. if (ss) {
  2962. WindowState *ws = wl_surface_get_window_state(ss->pointed_surface);
  2963. if (ws) {
  2964. return ws->id;
  2965. }
  2966. }
  2967. return DisplayServer::INVALID_WINDOW_ID;
  2968. }
  2969. void WaylandThread::pointer_set_constraint(PointerConstraint p_constraint) {
  2970. SeatState *ss = wl_seat_get_seat_state(wl_seat_current);
  2971. if (ss) {
  2972. seat_state_unlock_pointer(ss);
  2973. if (p_constraint == PointerConstraint::LOCKED) {
  2974. seat_state_lock_pointer(ss);
  2975. } else if (p_constraint == PointerConstraint::CONFINED) {
  2976. seat_state_confine_pointer(ss);
  2977. }
  2978. }
  2979. pointer_constraint = p_constraint;
  2980. }
  2981. void WaylandThread::pointer_set_hint(const Point2i &p_hint) {
  2982. SeatState *ss = wl_seat_get_seat_state(wl_seat_current);
  2983. if (!ss) {
  2984. return;
  2985. }
  2986. WindowState *ws = wl_surface_get_window_state(ss->pointed_surface);
  2987. int hint_x = 0;
  2988. int hint_y = 0;
  2989. if (ws) {
  2990. // NOTE: It looks like it's not really recommended to convert from
  2991. // "godot-space" to "wayland-space" and in general I received mixed feelings
  2992. // discussing about this. I'm not really sure about the maths behind this but,
  2993. // oh well, we're setting a cursor hint. ¯\_(ツ)_/¯
  2994. // See: https://oftc.irclog.whitequark.org/wayland/2023-08-23#1692756914-1692816818
  2995. hint_x = round(p_hint.x / window_state_get_scale_factor(ws));
  2996. hint_y = round(p_hint.y / window_state_get_scale_factor(ws));
  2997. }
  2998. if (ss) {
  2999. seat_state_set_hint(ss, hint_x, hint_y);
  3000. }
  3001. }
  3002. WaylandThread::PointerConstraint WaylandThread::pointer_get_constraint() const {
  3003. return pointer_constraint;
  3004. }
  3005. BitField<MouseButtonMask> WaylandThread::pointer_get_button_mask() const {
  3006. SeatState *ss = wl_seat_get_seat_state(wl_seat_current);
  3007. if (ss) {
  3008. return ss->pointer_data.pressed_button_mask;
  3009. }
  3010. return BitField<MouseButtonMask>();
  3011. }
  3012. Error WaylandThread::init() {
  3013. #ifdef SOWRAP_ENABLED
  3014. #ifdef DEBUG_ENABLED
  3015. int dylibloader_verbose = 1;
  3016. #else
  3017. int dylibloader_verbose = 0;
  3018. #endif // DEBUG_ENABLED
  3019. if (initialize_wayland_client(dylibloader_verbose) != 0) {
  3020. WARN_PRINT("Can't load the Wayland client library.");
  3021. return ERR_CANT_CREATE;
  3022. }
  3023. if (initialize_wayland_cursor(dylibloader_verbose) != 0) {
  3024. WARN_PRINT("Can't load the Wayland cursor library.");
  3025. return ERR_CANT_CREATE;
  3026. }
  3027. if (initialize_xkbcommon(dylibloader_verbose) != 0) {
  3028. WARN_PRINT("Can't load the XKBcommon library.");
  3029. return ERR_CANT_CREATE;
  3030. }
  3031. #endif // SOWRAP_ENABLED
  3032. KeyMappingXKB::initialize();
  3033. wl_display = wl_display_connect(nullptr);
  3034. ERR_FAIL_NULL_V_MSG(wl_display, ERR_CANT_CREATE, "Can't connect to a Wayland display.");
  3035. thread_data.wl_display = wl_display;
  3036. events_thread.start(_poll_events_thread, &thread_data);
  3037. wl_registry = wl_display_get_registry(wl_display);
  3038. ERR_FAIL_NULL_V_MSG(wl_registry, ERR_UNAVAILABLE, "Can't obtain the Wayland registry global.");
  3039. registry.wayland_thread = this;
  3040. wl_registry_add_listener(wl_registry, &wl_registry_listener, &registry);
  3041. // Wait for registry to get notified from the compositor.
  3042. wl_display_roundtrip(wl_display);
  3043. ERR_FAIL_NULL_V_MSG(registry.wl_shm, ERR_UNAVAILABLE, "Can't obtain the Wayland shared memory global.");
  3044. ERR_FAIL_NULL_V_MSG(registry.wl_compositor, ERR_UNAVAILABLE, "Can't obtain the Wayland compositor global.");
  3045. ERR_FAIL_NULL_V_MSG(registry.xdg_wm_base, ERR_UNAVAILABLE, "Can't obtain the Wayland XDG shell global.");
  3046. if (!registry.xdg_decoration_manager) {
  3047. #ifdef LIBDECOR_ENABLED
  3048. WARN_PRINT("Can't obtain the XDG decoration manager. Libdecor will be used for drawing CSDs, if available.");
  3049. #else
  3050. WARN_PRINT("Can't obtain the XDG decoration manager. Decorations won't show up.");
  3051. #endif // LIBDECOR_ENABLED
  3052. }
  3053. if (!registry.xdg_activation) {
  3054. WARN_PRINT("Can't obtain the XDG activation global. Attention requesting won't work!");
  3055. }
  3056. #ifndef DBUS_ENABLED
  3057. if (!registry.wp_idle_inhibit_manager) {
  3058. WARN_PRINT("Can't obtain the idle inhibition manager. The screen might turn off even after calling screen_set_keep_on()!");
  3059. }
  3060. #endif // DBUS_ENABLED
  3061. // Wait for seat capabilities.
  3062. wl_display_roundtrip(wl_display);
  3063. #ifdef LIBDECOR_ENABLED
  3064. bool libdecor_found = true;
  3065. #ifdef SOWRAP_ENABLED
  3066. if (initialize_libdecor(dylibloader_verbose) != 0) {
  3067. libdecor_found = false;
  3068. }
  3069. #endif // SOWRAP_ENABLED
  3070. if (libdecor_found) {
  3071. libdecor_context = libdecor_new(wl_display, (struct libdecor_interface *)&libdecor_interface);
  3072. } else {
  3073. print_verbose("libdecor not found. Client-side decorations disabled.");
  3074. }
  3075. #endif // LIBDECOR_ENABLED
  3076. cursor_theme_name = OS::get_singleton()->get_environment("XCURSOR_THEME");
  3077. unscaled_cursor_size = OS::get_singleton()->get_environment("XCURSOR_SIZE").to_int();
  3078. if (unscaled_cursor_size <= 0) {
  3079. print_verbose("Detected invalid cursor size preference, defaulting to 24.");
  3080. unscaled_cursor_size = 24;
  3081. }
  3082. // NOTE: The scale is useful here as it might've been updated by _update_scale.
  3083. bool cursor_theme_loaded = _load_cursor_theme(unscaled_cursor_size * cursor_scale);
  3084. if (!cursor_theme_loaded) {
  3085. return ERR_CANT_CREATE;
  3086. }
  3087. // Update the cursor.
  3088. cursor_set_shape(DisplayServer::CURSOR_ARROW);
  3089. initialized = true;
  3090. return OK;
  3091. }
  3092. void WaylandThread::cursor_set_visible(bool p_visible) {
  3093. cursor_visible = p_visible;
  3094. for (struct wl_seat *wl_seat : registry.wl_seats) {
  3095. SeatState *ss = wl_seat_get_seat_state(wl_seat);
  3096. ERR_FAIL_NULL(ss);
  3097. seat_state_update_cursor(ss);
  3098. }
  3099. }
  3100. void WaylandThread::cursor_set_shape(DisplayServer::CursorShape p_cursor_shape) {
  3101. cursor_shape = p_cursor_shape;
  3102. for (struct wl_seat *wl_seat : registry.wl_seats) {
  3103. SeatState *ss = wl_seat_get_seat_state(wl_seat);
  3104. ERR_FAIL_NULL(ss);
  3105. seat_state_update_cursor(ss);
  3106. }
  3107. }
  3108. void WaylandThread::cursor_shape_set_custom_image(DisplayServer::CursorShape p_cursor_shape, Ref<Image> p_image, const Point2i &p_hotspot) {
  3109. ERR_FAIL_COND(p_image.is_null());
  3110. Size2i image_size = p_image->get_size();
  3111. // NOTE: The stride is the width of the image in bytes.
  3112. unsigned int image_stride = image_size.width * 4;
  3113. unsigned int data_size = image_stride * image_size.height;
  3114. // We need a shared memory object file descriptor in order to create a
  3115. // wl_buffer through wl_shm.
  3116. int fd = WaylandThread::_allocate_shm_file(data_size);
  3117. ERR_FAIL_COND(fd == -1);
  3118. CustomCursor &cursor = custom_cursors[p_cursor_shape];
  3119. cursor.hotspot = p_hotspot;
  3120. if (cursor.wl_buffer) {
  3121. // Clean up the old Wayland buffer.
  3122. wl_buffer_destroy(cursor.wl_buffer);
  3123. }
  3124. if (cursor.buffer_data) {
  3125. // Clean up the old buffer data.
  3126. munmap(cursor.buffer_data, cursor.buffer_data_size);
  3127. }
  3128. cursor.buffer_data = (uint32_t *)mmap(nullptr, data_size, PROT_READ | PROT_WRITE, MAP_SHARED, fd, 0);
  3129. cursor.buffer_data_size = data_size;
  3130. // Create the Wayland buffer.
  3131. struct wl_shm_pool *wl_shm_pool = wl_shm_create_pool(registry.wl_shm, fd, data_size);
  3132. // TODO: Make sure that WL_SHM_FORMAT_ARGB8888 format is supported. It
  3133. // technically isn't garaunteed to be supported, but I think that'd be a
  3134. // pretty unlikely thing to stumble upon.
  3135. cursor.wl_buffer = wl_shm_pool_create_buffer(wl_shm_pool, 0, image_size.width, image_size.height, image_stride, WL_SHM_FORMAT_ARGB8888);
  3136. wl_shm_pool_destroy(wl_shm_pool);
  3137. // Fill the cursor buffer with the image data.
  3138. for (unsigned int index = 0; index < (unsigned int)(image_size.width * image_size.height); index++) {
  3139. int row_index = floor(index / image_size.width);
  3140. int column_index = (index % int(image_size.width));
  3141. cursor.buffer_data[index] = p_image->get_pixel(column_index, row_index).to_argb32();
  3142. // Wayland buffers, unless specified, require associated alpha, so we'll just
  3143. // associate the alpha in-place.
  3144. uint8_t *pixel_data = (uint8_t *)&cursor.buffer_data[index];
  3145. pixel_data[0] = pixel_data[0] * pixel_data[3] / 255;
  3146. pixel_data[1] = pixel_data[1] * pixel_data[3] / 255;
  3147. pixel_data[2] = pixel_data[2] * pixel_data[3] / 255;
  3148. }
  3149. }
  3150. void WaylandThread::cursor_shape_clear_custom_image(DisplayServer::CursorShape p_cursor_shape) {
  3151. if (custom_cursors.has(p_cursor_shape)) {
  3152. CustomCursor cursor = custom_cursors[p_cursor_shape];
  3153. custom_cursors.erase(p_cursor_shape);
  3154. if (cursor.wl_buffer) {
  3155. wl_buffer_destroy(cursor.wl_buffer);
  3156. }
  3157. if (cursor.buffer_data) {
  3158. munmap(cursor.buffer_data, cursor.buffer_data_size);
  3159. }
  3160. }
  3161. }
  3162. void WaylandThread::window_set_ime_active(const bool p_active, DisplayServer::WindowID p_window_id) {
  3163. SeatState *ss = wl_seat_get_seat_state(wl_seat_current);
  3164. if (ss && ss->wp_text_input && ss->ime_enabled) {
  3165. if (p_active) {
  3166. ss->ime_active = true;
  3167. zwp_text_input_v3_enable(ss->wp_text_input);
  3168. zwp_text_input_v3_set_cursor_rectangle(ss->wp_text_input, ss->ime_rect.position.x, ss->ime_rect.position.y, ss->ime_rect.size.x, ss->ime_rect.size.y);
  3169. } else {
  3170. ss->ime_active = false;
  3171. ss->ime_text = String();
  3172. ss->ime_text_commit = String();
  3173. ss->ime_cursor = Vector2i();
  3174. zwp_text_input_v3_disable(ss->wp_text_input);
  3175. }
  3176. zwp_text_input_v3_commit(ss->wp_text_input);
  3177. }
  3178. }
  3179. void WaylandThread::window_set_ime_position(const Point2i &p_pos, DisplayServer::WindowID p_window_id) {
  3180. SeatState *ss = wl_seat_get_seat_state(wl_seat_current);
  3181. if (ss && ss->wp_text_input && ss->ime_enabled) {
  3182. ss->ime_rect = Rect2i(p_pos, Size2i(1, 10));
  3183. zwp_text_input_v3_set_cursor_rectangle(ss->wp_text_input, ss->ime_rect.position.x, ss->ime_rect.position.y, ss->ime_rect.size.x, ss->ime_rect.size.y);
  3184. zwp_text_input_v3_commit(ss->wp_text_input);
  3185. }
  3186. }
  3187. int WaylandThread::keyboard_get_layout_count() const {
  3188. SeatState *ss = wl_seat_get_seat_state(wl_seat_current);
  3189. if (ss && ss->xkb_keymap) {
  3190. return xkb_keymap_num_layouts(ss->xkb_keymap);
  3191. }
  3192. return 0;
  3193. }
  3194. int WaylandThread::keyboard_get_current_layout_index() const {
  3195. SeatState *ss = wl_seat_get_seat_state(wl_seat_current);
  3196. if (ss) {
  3197. return ss->current_layout_index;
  3198. }
  3199. return 0;
  3200. }
  3201. void WaylandThread::keyboard_set_current_layout_index(int p_index) {
  3202. SeatState *ss = wl_seat_get_seat_state(wl_seat_current);
  3203. if (ss) {
  3204. ss->current_layout_index = p_index;
  3205. }
  3206. }
  3207. String WaylandThread::keyboard_get_layout_name(int p_index) const {
  3208. SeatState *ss = wl_seat_get_seat_state(wl_seat_current);
  3209. if (ss && ss->xkb_keymap) {
  3210. String ret;
  3211. ret.parse_utf8(xkb_keymap_layout_get_name(ss->xkb_keymap, p_index));
  3212. return ret;
  3213. }
  3214. return "";
  3215. }
  3216. Key WaylandThread::keyboard_get_key_from_physical(Key p_key) const {
  3217. SeatState *ss = wl_seat_get_seat_state(wl_seat_current);
  3218. if (ss && ss->xkb_state) {
  3219. xkb_keycode_t xkb_keycode = KeyMappingXKB::get_xkb_keycode(p_key);
  3220. return KeyMappingXKB::get_keycode(xkb_state_key_get_one_sym(ss->xkb_state, xkb_keycode));
  3221. }
  3222. return Key::NONE;
  3223. }
  3224. void WaylandThread::keyboard_echo_keys() {
  3225. SeatState *ss = wl_seat_get_seat_state(wl_seat_current);
  3226. if (ss) {
  3227. seat_state_echo_keys(ss);
  3228. }
  3229. }
  3230. void WaylandThread::selection_set_text(const String &p_text) {
  3231. SeatState *ss = wl_seat_get_seat_state(wl_seat_current);
  3232. if (registry.wl_data_device_manager == nullptr) {
  3233. DEBUG_LOG_WAYLAND_THREAD("Couldn't set selection, wl_data_device_manager global not available.");
  3234. return;
  3235. }
  3236. if (ss == nullptr) {
  3237. DEBUG_LOG_WAYLAND_THREAD("Couldn't set selection, current seat not set.");
  3238. return;
  3239. }
  3240. if (ss->wl_data_device == nullptr) {
  3241. DEBUG_LOG_WAYLAND_THREAD("Couldn't set selection, seat doesn't have wl_data_device.");
  3242. }
  3243. ss->selection_data = p_text.to_utf8_buffer();
  3244. if (ss->wl_data_source_selection == nullptr) {
  3245. ss->wl_data_source_selection = wl_data_device_manager_create_data_source(registry.wl_data_device_manager);
  3246. wl_data_source_add_listener(ss->wl_data_source_selection, &wl_data_source_listener, ss);
  3247. wl_data_source_offer(ss->wl_data_source_selection, "text/plain;charset=utf-8");
  3248. wl_data_source_offer(ss->wl_data_source_selection, "text/plain");
  3249. // TODO: Implement a good way of getting the latest serial from the user.
  3250. wl_data_device_set_selection(ss->wl_data_device, ss->wl_data_source_selection, MAX(ss->pointer_data.button_serial, ss->last_key_pressed_serial));
  3251. }
  3252. // Wait for the message to get to the server before continuing, otherwise the
  3253. // clipboard update might come with a delay.
  3254. wl_display_roundtrip(wl_display);
  3255. }
  3256. bool WaylandThread::selection_has_mime(const String &p_mime) const {
  3257. SeatState *ss = wl_seat_get_seat_state(wl_seat_current);
  3258. if (ss == nullptr) {
  3259. DEBUG_LOG_WAYLAND_THREAD("Couldn't get selection, current seat not set.");
  3260. return false;
  3261. }
  3262. OfferState *os = wl_data_offer_get_offer_state(ss->wl_data_offer_selection);
  3263. if (!os) {
  3264. return false;
  3265. }
  3266. return os->mime_types.has(p_mime);
  3267. }
  3268. Vector<uint8_t> WaylandThread::selection_get_mime(const String &p_mime) const {
  3269. SeatState *ss = wl_seat_get_seat_state(wl_seat_current);
  3270. if (ss == nullptr) {
  3271. DEBUG_LOG_WAYLAND_THREAD("Couldn't get selection, current seat not set.");
  3272. return Vector<uint8_t>();
  3273. }
  3274. if (ss->wl_data_source_selection) {
  3275. // We have a source so the stuff we're pasting is ours. We'll have to pass the
  3276. // data directly or we'd stall waiting for Godot (ourselves) to send us the
  3277. // data :P
  3278. OfferState *os = wl_data_offer_get_offer_state(ss->wl_data_offer_selection);
  3279. ERR_FAIL_NULL_V(os, Vector<uint8_t>());
  3280. if (os->mime_types.has(p_mime)) {
  3281. // All righty, we're offering this type. Let's just return the data as is.
  3282. return ss->selection_data;
  3283. }
  3284. // ... we don't offer that type. Oh well.
  3285. return Vector<uint8_t>();
  3286. }
  3287. return _wl_data_offer_read(wl_display, p_mime.utf8(), ss->wl_data_offer_selection);
  3288. }
  3289. bool WaylandThread::primary_has_mime(const String &p_mime) const {
  3290. SeatState *ss = wl_seat_get_seat_state(wl_seat_current);
  3291. if (ss == nullptr) {
  3292. DEBUG_LOG_WAYLAND_THREAD("Couldn't get selection, current seat not set.");
  3293. return false;
  3294. }
  3295. OfferState *os = wp_primary_selection_offer_get_offer_state(ss->wp_primary_selection_offer);
  3296. if (!os) {
  3297. return false;
  3298. }
  3299. return os->mime_types.has(p_mime);
  3300. }
  3301. Vector<uint8_t> WaylandThread::primary_get_mime(const String &p_mime) const {
  3302. SeatState *ss = wl_seat_get_seat_state(wl_seat_current);
  3303. if (ss == nullptr) {
  3304. DEBUG_LOG_WAYLAND_THREAD("Couldn't get primary, current seat not set.");
  3305. return Vector<uint8_t>();
  3306. }
  3307. if (ss->wp_primary_selection_source) {
  3308. // We have a source so the stuff we're pasting is ours. We'll have to pass the
  3309. // data directly or we'd stall waiting for Godot (ourselves) to send us the
  3310. // data :P
  3311. OfferState *os = wp_primary_selection_offer_get_offer_state(ss->wp_primary_selection_offer);
  3312. ERR_FAIL_NULL_V(os, Vector<uint8_t>());
  3313. if (os->mime_types.has(p_mime)) {
  3314. // All righty, we're offering this type. Let's just return the data as is.
  3315. return ss->selection_data;
  3316. }
  3317. // ... we don't offer that type. Oh well.
  3318. return Vector<uint8_t>();
  3319. }
  3320. return _wp_primary_selection_offer_read(wl_display, p_mime.utf8(), ss->wp_primary_selection_offer);
  3321. }
  3322. void WaylandThread::primary_set_text(const String &p_text) {
  3323. SeatState *ss = wl_seat_get_seat_state(wl_seat_current);
  3324. if (registry.wp_primary_selection_device_manager == nullptr) {
  3325. DEBUG_LOG_WAYLAND_THREAD("Couldn't set primary, protocol not available");
  3326. return;
  3327. }
  3328. if (ss == nullptr) {
  3329. DEBUG_LOG_WAYLAND_THREAD("Couldn't set primary, current seat not set.");
  3330. return;
  3331. }
  3332. if (ss->wp_primary_selection_device == nullptr) {
  3333. DEBUG_LOG_WAYLAND_THREAD("Couldn't set primary selection, seat doesn't have wp_primary_selection_device.");
  3334. return;
  3335. }
  3336. ss->primary_data = p_text.to_utf8_buffer();
  3337. if (ss->wp_primary_selection_source == nullptr) {
  3338. ss->wp_primary_selection_source = zwp_primary_selection_device_manager_v1_create_source(registry.wp_primary_selection_device_manager);
  3339. zwp_primary_selection_source_v1_add_listener(ss->wp_primary_selection_source, &wp_primary_selection_source_listener, ss);
  3340. zwp_primary_selection_source_v1_offer(ss->wp_primary_selection_source, "text/plain;charset=utf-8");
  3341. zwp_primary_selection_source_v1_offer(ss->wp_primary_selection_source, "text/plain");
  3342. // TODO: Implement a good way of getting the latest serial from the user.
  3343. zwp_primary_selection_device_v1_set_selection(ss->wp_primary_selection_device, ss->wp_primary_selection_source, MAX(ss->pointer_data.button_serial, ss->last_key_pressed_serial));
  3344. }
  3345. // Wait for the message to get to the server before continuing, otherwise the
  3346. // clipboard update might come with a delay.
  3347. wl_display_roundtrip(wl_display);
  3348. }
  3349. void WaylandThread::commit_surfaces() {
  3350. wl_surface_commit(main_window.wl_surface);
  3351. }
  3352. void WaylandThread::set_frame() {
  3353. frame = true;
  3354. }
  3355. bool WaylandThread::get_reset_frame() {
  3356. bool old_frame = frame;
  3357. frame = false;
  3358. return old_frame;
  3359. }
  3360. // Dispatches events until a frame event is received, a window is reported as
  3361. // suspended or the timeout expires.
  3362. bool WaylandThread::wait_frame_suspend_ms(int p_timeout) {
  3363. // This is a bit of a chicken and egg thing... Looks like the main event loop
  3364. // has to call its rightfully forever-blocking poll right in between
  3365. // `wl_display_prepare_read` and `wl_display_read`. This means, that it will
  3366. // basically be guaranteed to stay stuck in a "prepare read" state, where it
  3367. // will block any other attempt at reading the display fd, such as ours. The
  3368. // solution? Let's make sure the mutex is locked (it should) and unblock the
  3369. // main thread with a roundtrip!
  3370. MutexLock mutex_lock(mutex);
  3371. wl_display_roundtrip(wl_display);
  3372. if (main_window.suspended) {
  3373. // The window is suspended! The compositor is telling us _explicitly_ that we
  3374. // don't need to draw, without letting us guess through the frame event's
  3375. // timing and stuff like that. Our job here is done.
  3376. return false;
  3377. }
  3378. if (frame) {
  3379. // We already have a frame! Probably it got there while the caller locked :D
  3380. frame = false;
  3381. return true;
  3382. }
  3383. struct pollfd poll_fd;
  3384. poll_fd.fd = wl_display_get_fd(wl_display);
  3385. poll_fd.events = POLLIN | POLLHUP;
  3386. int begin_ms = OS::get_singleton()->get_ticks_msec();
  3387. int remaining_ms = p_timeout;
  3388. while (remaining_ms > 0) {
  3389. // Empty the event queue while it's full.
  3390. while (wl_display_prepare_read(wl_display) != 0) {
  3391. if (wl_display_dispatch_pending(wl_display) == -1) {
  3392. // Oh no. We'll check and handle any display error below.
  3393. break;
  3394. }
  3395. if (main_window.suspended) {
  3396. return false;
  3397. }
  3398. if (frame) {
  3399. // We had a frame event in the queue :D
  3400. frame = false;
  3401. return true;
  3402. }
  3403. }
  3404. int werror = wl_display_get_error(wl_display);
  3405. if (werror) {
  3406. if (werror == EPROTO) {
  3407. struct wl_interface *wl_interface = nullptr;
  3408. uint32_t id = 0;
  3409. int error_code = wl_display_get_protocol_error(wl_display, (const struct wl_interface **)&wl_interface, &id);
  3410. CRASH_NOW_MSG(vformat("Wayland protocol error %d on interface %s@%d.", error_code, wl_interface ? wl_interface->name : "unknown", id));
  3411. } else {
  3412. CRASH_NOW_MSG(vformat("Wayland client error code %d.", werror));
  3413. }
  3414. }
  3415. wl_display_flush(wl_display);
  3416. // Wait for the event file descriptor to have new data.
  3417. poll(&poll_fd, 1, remaining_ms);
  3418. if (poll_fd.revents | POLLIN) {
  3419. // Load the queues with fresh new data.
  3420. wl_display_read_events(wl_display);
  3421. } else {
  3422. // Oh well... Stop signaling that we want to read.
  3423. wl_display_cancel_read(wl_display);
  3424. // We've got no new events :(
  3425. // We won't even bother with checking the frame flag.
  3426. return false;
  3427. }
  3428. // Let's try dispatching now...
  3429. wl_display_dispatch_pending(wl_display);
  3430. if (main_window.suspended) {
  3431. return false;
  3432. }
  3433. if (frame) {
  3434. frame = false;
  3435. return true;
  3436. }
  3437. remaining_ms -= OS::get_singleton()->get_ticks_msec() - begin_ms;
  3438. }
  3439. DEBUG_LOG_WAYLAND_THREAD("Frame timeout.");
  3440. return false;
  3441. }
  3442. bool WaylandThread::is_suspended() const {
  3443. return main_window.suspended;
  3444. }
  3445. void WaylandThread::destroy() {
  3446. if (!initialized) {
  3447. return;
  3448. }
  3449. if (wl_display && events_thread.is_started()) {
  3450. thread_data.thread_done.set();
  3451. // By sending a roundtrip message we're unblocking the polling thread so that
  3452. // it can realize that it's done and also handle every event that's left.
  3453. wl_display_roundtrip(wl_display);
  3454. events_thread.wait_to_finish();
  3455. }
  3456. if (main_window.wp_fractional_scale) {
  3457. wp_fractional_scale_v1_destroy(main_window.wp_fractional_scale);
  3458. }
  3459. if (main_window.wp_viewport) {
  3460. wp_viewport_destroy(main_window.wp_viewport);
  3461. }
  3462. if (main_window.frame_callback) {
  3463. wl_callback_destroy(main_window.frame_callback);
  3464. }
  3465. #ifdef LIBDECOR_ENABLED
  3466. if (main_window.libdecor_frame) {
  3467. libdecor_frame_close(main_window.libdecor_frame);
  3468. }
  3469. #endif // LIBDECOR_ENABLED
  3470. if (main_window.xdg_toplevel) {
  3471. xdg_toplevel_destroy(main_window.xdg_toplevel);
  3472. }
  3473. if (main_window.xdg_surface) {
  3474. xdg_surface_destroy(main_window.xdg_surface);
  3475. }
  3476. if (main_window.wl_surface) {
  3477. wl_surface_destroy(main_window.wl_surface);
  3478. }
  3479. for (struct wl_seat *wl_seat : registry.wl_seats) {
  3480. SeatState *ss = wl_seat_get_seat_state(wl_seat);
  3481. ERR_FAIL_NULL(ss);
  3482. wl_seat_destroy(wl_seat);
  3483. xkb_context_unref(ss->xkb_context);
  3484. xkb_state_unref(ss->xkb_state);
  3485. xkb_keymap_unref(ss->xkb_keymap);
  3486. if (ss->wl_keyboard) {
  3487. wl_keyboard_destroy(ss->wl_keyboard);
  3488. }
  3489. if (ss->keymap_buffer) {
  3490. munmap((void *)ss->keymap_buffer, ss->keymap_buffer_size);
  3491. }
  3492. if (ss->wl_pointer) {
  3493. wl_pointer_destroy(ss->wl_pointer);
  3494. }
  3495. if (ss->cursor_frame_callback) {
  3496. // We don't need to set a null userdata for safety as the thread is done.
  3497. wl_callback_destroy(ss->cursor_frame_callback);
  3498. }
  3499. if (ss->cursor_surface) {
  3500. wl_surface_destroy(ss->cursor_surface);
  3501. }
  3502. if (ss->wl_data_device) {
  3503. wl_data_device_destroy(ss->wl_data_device);
  3504. }
  3505. if (ss->wp_relative_pointer) {
  3506. zwp_relative_pointer_v1_destroy(ss->wp_relative_pointer);
  3507. }
  3508. if (ss->wp_locked_pointer) {
  3509. zwp_locked_pointer_v1_destroy(ss->wp_locked_pointer);
  3510. }
  3511. if (ss->wp_confined_pointer) {
  3512. zwp_confined_pointer_v1_destroy(ss->wp_confined_pointer);
  3513. }
  3514. if (ss->wp_tablet_seat) {
  3515. zwp_tablet_seat_v2_destroy(ss->wp_tablet_seat);
  3516. }
  3517. for (struct zwp_tablet_tool_v2 *tool : ss->tablet_tools) {
  3518. TabletToolState *state = wp_tablet_tool_get_state(tool);
  3519. if (state) {
  3520. memdelete(state);
  3521. }
  3522. zwp_tablet_tool_v2_destroy(tool);
  3523. }
  3524. memdelete(ss);
  3525. }
  3526. for (struct wl_output *wl_output : registry.wl_outputs) {
  3527. ERR_FAIL_NULL(wl_output);
  3528. memdelete(wl_output_get_screen_state(wl_output));
  3529. wl_output_destroy(wl_output);
  3530. }
  3531. if (wl_cursor_theme) {
  3532. wl_cursor_theme_destroy(wl_cursor_theme);
  3533. }
  3534. if (registry.wp_idle_inhibit_manager) {
  3535. zwp_idle_inhibit_manager_v1_destroy(registry.wp_idle_inhibit_manager);
  3536. }
  3537. if (registry.wp_pointer_constraints) {
  3538. zwp_pointer_constraints_v1_destroy(registry.wp_pointer_constraints);
  3539. }
  3540. if (registry.wp_pointer_gestures) {
  3541. zwp_pointer_gestures_v1_destroy(registry.wp_pointer_gestures);
  3542. }
  3543. if (registry.wp_relative_pointer_manager) {
  3544. zwp_relative_pointer_manager_v1_destroy(registry.wp_relative_pointer_manager);
  3545. }
  3546. if (registry.xdg_activation) {
  3547. xdg_activation_v1_destroy(registry.xdg_activation);
  3548. }
  3549. if (registry.xdg_system_bell) {
  3550. xdg_system_bell_v1_destroy(registry.xdg_system_bell);
  3551. }
  3552. if (registry.xdg_decoration_manager) {
  3553. zxdg_decoration_manager_v1_destroy(registry.xdg_decoration_manager);
  3554. }
  3555. if (registry.wp_fractional_scale_manager) {
  3556. wp_fractional_scale_manager_v1_destroy(registry.wp_fractional_scale_manager);
  3557. }
  3558. if (registry.wp_viewporter) {
  3559. wp_viewporter_destroy(registry.wp_viewporter);
  3560. }
  3561. if (registry.xdg_wm_base) {
  3562. xdg_wm_base_destroy(registry.xdg_wm_base);
  3563. }
  3564. // NOTE: Deprecated.
  3565. if (registry.xdg_exporter_v1) {
  3566. zxdg_exporter_v1_destroy(registry.xdg_exporter_v1);
  3567. }
  3568. if (registry.xdg_exporter_v2) {
  3569. zxdg_exporter_v2_destroy(registry.xdg_exporter_v2);
  3570. }
  3571. if (registry.wl_shm) {
  3572. wl_shm_destroy(registry.wl_shm);
  3573. }
  3574. if (registry.wl_compositor) {
  3575. wl_compositor_destroy(registry.wl_compositor);
  3576. }
  3577. if (wl_registry) {
  3578. wl_registry_destroy(wl_registry);
  3579. }
  3580. if (wl_display) {
  3581. wl_display_disconnect(wl_display);
  3582. }
  3583. }
  3584. #endif // WAYLAND_ENABLED