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  1. /*
  2. * vim:ts=4:sw=4:expandtab
  3. *
  4. * © 2010-2012 Michael Stapelberg
  5. *
  6. * See LICENSE for licensing information
  7. *
  8. */
  9. #include <stdio.h>
  10. #include <stdlib.h>
  11. #include <string.h>
  12. #include <unistd.h>
  13. #include <stdbool.h>
  14. #include <stdint.h>
  15. #include <xcb/xcb.h>
  16. #include <xcb/dpms.h>
  17. #include <err.h>
  18. #include <assert.h>
  19. #include <security/pam_appl.h>
  20. #include <X11/Xlib-xcb.h>
  21. #include <getopt.h>
  22. #include <string.h>
  23. #include <ev.h>
  24. #include <sys/mman.h>
  25. #include <X11/XKBlib.h>
  26. #include <X11/extensions/XKBfile.h>
  27. #include <xkbcommon/xkbcommon.h>
  28. #include <cairo.h>
  29. #include <cairo/cairo-xcb.h>
  30. #include "i3lock.h"
  31. #include "xcb.h"
  32. #include "cursors.h"
  33. #include "unlock_indicator.h"
  34. #include "xinerama.h"
  35. /* We need this for libxkbfile */
  36. static Display *display;
  37. char color[7] = "ffffff";
  38. uint32_t last_resolution[2];
  39. xcb_window_t win;
  40. static xcb_cursor_t cursor;
  41. static pam_handle_t *pam_handle;
  42. int input_position = 0;
  43. /* Holds the password you enter (in UTF-8). */
  44. static char password[512];
  45. static bool beep = false;
  46. bool debug_mode = false;
  47. static bool dpms = false;
  48. bool unlock_indicator = true;
  49. static bool dont_fork = false;
  50. struct ev_loop *main_loop;
  51. static struct ev_timer *clear_pam_wrong_timeout;
  52. extern unlock_state_t unlock_state;
  53. extern pam_state_t pam_state;
  54. static struct xkb_state *xkb_state;
  55. static struct xkb_context *xkb_context;
  56. static struct xkb_keymap *xkb_keymap;
  57. cairo_surface_t *img = NULL;
  58. bool tile = false;
  59. /* isutf, u8_dec © 2005 Jeff Bezanson, public domain */
  60. #define isutf(c) (((c) & 0xC0) != 0x80)
  61. /*
  62. * Decrements i to point to the previous unicode glyph
  63. *
  64. */
  65. void u8_dec(char *s, int *i) {
  66. (void)(isutf(s[--(*i)]) || isutf(s[--(*i)]) || isutf(s[--(*i)]) || --(*i));
  67. }
  68. /*
  69. * Loads the XKB keymap from the X11 server and feeds it to xkbcommon.
  70. * Necessary so that we can properly let xkbcommon track the keyboard state and
  71. * translate keypresses to utf-8.
  72. *
  73. * Ideally, xkbcommon would ship something like this itself, but as of now
  74. * (version 0.2.0), it doesnt.
  75. *
  76. */
  77. static bool load_keymap(void) {
  78. bool ret = false;
  79. XkbFileInfo result;
  80. memset(&result, '\0', sizeof(result));
  81. result.xkb = XkbGetKeyboard(display, XkbAllMapComponentsMask, XkbUseCoreKbd);
  82. if (result.xkb == NULL) {
  83. fprintf(stderr, "[i3lock] XKB: XkbGetKeyboard failed\n");
  84. return false;
  85. }
  86. FILE *temp = tmpfile();
  87. if (temp == NULL) {
  88. fprintf(stderr, "[i3lock] could not create tempfile\n");
  89. return false;
  90. }
  91. bool ok = XkbWriteXKBKeymap(temp, &result, false, false, NULL, NULL);
  92. if (!ok) {
  93. fprintf(stderr, "[i3lock] XkbWriteXKBKeymap failed\n");
  94. goto out;
  95. }
  96. rewind(temp);
  97. if (xkb_context == NULL) {
  98. if ((xkb_context = xkb_context_new(0)) == NULL) {
  99. fprintf(stderr, "[i3lock] could not create xkbcommon context\n");
  100. goto out;
  101. }
  102. }
  103. if (xkb_keymap != NULL)
  104. xkb_keymap_unref(xkb_keymap);
  105. if ((xkb_keymap = xkb_keymap_new_from_file(xkb_context, temp, XKB_KEYMAP_FORMAT_TEXT_V1, 0)) == NULL) {
  106. fprintf(stderr, "[i3lock] xkb_keymap_new_from_file failed\n");
  107. goto out;
  108. }
  109. struct xkb_state *new_state = xkb_state_new(xkb_keymap);
  110. if (new_state == NULL) {
  111. fprintf(stderr, "[i3lock] xkb_state_new failed\n");
  112. goto out;
  113. }
  114. if (xkb_state != NULL)
  115. xkb_state_unref(xkb_state);
  116. xkb_state = new_state;
  117. ret = true;
  118. out:
  119. XkbFreeKeyboard(result.xkb, XkbAllComponentsMask, true);
  120. fclose(temp);
  121. return ret;
  122. }
  123. /*
  124. * Clears the memory which stored the password to be a bit safer against
  125. * cold-boot attacks.
  126. *
  127. */
  128. static void clear_password_memory(void) {
  129. /* A volatile pointer to the password buffer to prevent the compiler from
  130. * optimizing this out. */
  131. volatile char *vpassword = password;
  132. for (int c = 0; c < sizeof(password); c++)
  133. /* We store a non-random pattern which consists of the (irrelevant)
  134. * index plus (!) the value of the beep variable. This prevents the
  135. * compiler from optimizing the calls away, since the value of 'beep'
  136. * is not known at compile-time. */
  137. vpassword[c] = c + (int)beep;
  138. }
  139. /*
  140. * Resets pam_state to STATE_PAM_IDLE 2 seconds after an unsuccesful
  141. * authentication event.
  142. *
  143. */
  144. static void clear_pam_wrong(EV_P_ ev_timer *w, int revents) {
  145. DEBUG("clearing pam wrong\n");
  146. pam_state = STATE_PAM_IDLE;
  147. unlock_state = STATE_STARTED;
  148. redraw_screen();
  149. /* Now free this timeout. */
  150. ev_timer_stop(main_loop, clear_pam_wrong_timeout);
  151. free(clear_pam_wrong_timeout);
  152. clear_pam_wrong_timeout = NULL;
  153. }
  154. static void input_done(void) {
  155. if (clear_pam_wrong_timeout) {
  156. ev_timer_stop(main_loop, clear_pam_wrong_timeout);
  157. free(clear_pam_wrong_timeout);
  158. clear_pam_wrong_timeout = NULL;
  159. }
  160. pam_state = STATE_PAM_VERIFY;
  161. redraw_screen();
  162. if (pam_authenticate(pam_handle, 0) == PAM_SUCCESS) {
  163. DEBUG("successfully authenticated\n");
  164. clear_password_memory();
  165. exit(0);
  166. }
  167. if (debug_mode)
  168. fprintf(stderr, "Authentication failure\n");
  169. pam_state = STATE_PAM_WRONG;
  170. redraw_screen();
  171. /* Clear this state after 2 seconds (unless the user enters another
  172. * password during that time). */
  173. ev_now_update(main_loop);
  174. if ((clear_pam_wrong_timeout = calloc(sizeof(struct ev_timer), 1))) {
  175. ev_timer_init(clear_pam_wrong_timeout, clear_pam_wrong, 2.0, 0.);
  176. ev_timer_start(main_loop, clear_pam_wrong_timeout);
  177. }
  178. /* Cancel the clear_indicator_timeout, it would hide the unlock indicator
  179. * too early. */
  180. stop_clear_indicator_timeout();
  181. /* beep on authentication failure, if enabled */
  182. if (beep) {
  183. xcb_bell(conn, 100);
  184. xcb_flush(conn);
  185. }
  186. }
  187. /*
  188. * Called when the user releases a key. We need to leave the Mode_switch
  189. * state when the user releases the Mode_switch key.
  190. *
  191. */
  192. static void handle_key_release(xcb_key_release_event_t *event) {
  193. xkb_state_update_key(xkb_state, event->detail, XKB_KEY_UP);
  194. }
  195. static void redraw_timeout(EV_P_ ev_timer *w, int revents) {
  196. redraw_screen();
  197. ev_timer_stop(main_loop, w);
  198. free(w);
  199. }
  200. /*
  201. * Handle key presses. Fixes state, then looks up the key symbol for the
  202. * given keycode, then looks up the key symbol (as UCS-2), converts it to
  203. * UTF-8 and stores it in the password array.
  204. *
  205. */
  206. static void handle_key_press(xcb_key_press_event_t *event) {
  207. xkb_keysym_t ksym;
  208. char buffer[128];
  209. int n;
  210. bool ctrl;
  211. ksym = xkb_state_key_get_one_sym(xkb_state, event->detail);
  212. ctrl = xkb_state_mod_name_is_active(xkb_state, "Control", XKB_STATE_MODS_DEPRESSED);
  213. xkb_state_update_key(xkb_state, event->detail, XKB_KEY_DOWN);
  214. /* The buffer will be null-terminated, so n >= 2 for 1 actual character. */
  215. memset(buffer, '\0', sizeof(buffer));
  216. n = xkb_keysym_to_utf8(ksym, buffer, sizeof(buffer));
  217. switch (ksym) {
  218. case XKB_KEY_Return:
  219. case XKB_KEY_KP_Enter:
  220. case XKB_KEY_XF86ScreenSaver:
  221. password[input_position] = '\0';
  222. unlock_state = STATE_KEY_PRESSED;
  223. redraw_screen();
  224. input_done();
  225. case XKB_KEY_u:
  226. if (!ctrl)
  227. break;
  228. case XKB_KEY_Escape:
  229. input_position = 0;
  230. clear_password_memory();
  231. password[input_position] = '\0';
  232. /* Hide the unlock indicator after a bit if the password buffer is
  233. * empty. */
  234. start_clear_indicator_timeout();
  235. unlock_state = STATE_BACKSPACE_ACTIVE;
  236. redraw_screen();
  237. unlock_state = STATE_KEY_PRESSED;
  238. return;
  239. case XKB_KEY_BackSpace:
  240. if (input_position == 0)
  241. return;
  242. /* decrement input_position to point to the previous glyph */
  243. u8_dec(password, &input_position);
  244. password[input_position] = '\0';
  245. /* Hide the unlock indicator after a bit if the password buffer is
  246. * empty. */
  247. start_clear_indicator_timeout();
  248. unlock_state = STATE_BACKSPACE_ACTIVE;
  249. redraw_screen();
  250. unlock_state = STATE_KEY_PRESSED;
  251. return;
  252. }
  253. if ((input_position + 8) >= sizeof(password))
  254. return;
  255. #if 0
  256. /* FIXME: handle all of these? */
  257. printf("is_keypad_key = %d\n", xcb_is_keypad_key(sym));
  258. printf("is_private_keypad_key = %d\n", xcb_is_private_keypad_key(sym));
  259. printf("xcb_is_cursor_key = %d\n", xcb_is_cursor_key(sym));
  260. printf("xcb_is_pf_key = %d\n", xcb_is_pf_key(sym));
  261. printf("xcb_is_function_key = %d\n", xcb_is_function_key(sym));
  262. printf("xcb_is_misc_function_key = %d\n", xcb_is_misc_function_key(sym));
  263. printf("xcb_is_modifier_key = %d\n", xcb_is_modifier_key(sym));
  264. #endif
  265. if (n < 2)
  266. return;
  267. /* store it in the password array as UTF-8 */
  268. memcpy(password+input_position, buffer, n-1);
  269. input_position += n-1;
  270. DEBUG("current password = %.*s\n", input_position, password);
  271. unlock_state = STATE_KEY_ACTIVE;
  272. redraw_screen();
  273. unlock_state = STATE_KEY_PRESSED;
  274. struct ev_timer *timeout = calloc(sizeof(struct ev_timer), 1);
  275. if (timeout) {
  276. ev_timer_init(timeout, redraw_timeout, 0.25, 0.);
  277. ev_timer_start(main_loop, timeout);
  278. }
  279. stop_clear_indicator_timeout();
  280. }
  281. /*
  282. * A visibility notify event will be received when the visibility (= can the
  283. * user view the complete window) changes, so for example when a popup overlays
  284. * some area of the i3lock window.
  285. *
  286. * In this case, we raise our window on top so that the popup (or whatever is
  287. * hiding us) gets hidden.
  288. *
  289. */
  290. static void handle_visibility_notify(xcb_visibility_notify_event_t *event) {
  291. if (event->state != XCB_VISIBILITY_UNOBSCURED) {
  292. uint32_t values[] = { XCB_STACK_MODE_ABOVE };
  293. xcb_configure_window(conn, event->window, XCB_CONFIG_WINDOW_STACK_MODE, values);
  294. xcb_flush(conn);
  295. }
  296. }
  297. /*
  298. * Called when the keyboard mapping changes. We update our symbols.
  299. *
  300. */
  301. static void handle_mapping_notify(xcb_mapping_notify_event_t *event) {
  302. /* We ignore errors — if the new keymap cannot be loaded it’s better if the
  303. * screen stays locked and the user intervenes by using killall i3lock. */
  304. (void)load_keymap();
  305. }
  306. /*
  307. * Called when the properties on the root window change, e.g. when the screen
  308. * resolution changes. If so we update the window to cover the whole screen
  309. * and also redraw the image, if any.
  310. *
  311. */
  312. void handle_screen_resize(void) {
  313. xcb_get_geometry_cookie_t geomc;
  314. xcb_get_geometry_reply_t *geom;
  315. geomc = xcb_get_geometry(conn, screen->root);
  316. if ((geom = xcb_get_geometry_reply(conn, geomc, 0)) == NULL)
  317. return;
  318. if (last_resolution[0] == geom->width &&
  319. last_resolution[1] == geom->height) {
  320. free(geom);
  321. return;
  322. }
  323. last_resolution[0] = geom->width;
  324. last_resolution[1] = geom->height;
  325. free(geom);
  326. redraw_screen();
  327. uint32_t mask = XCB_CONFIG_WINDOW_WIDTH | XCB_CONFIG_WINDOW_HEIGHT;
  328. xcb_configure_window(conn, win, mask, last_resolution);
  329. xcb_flush(conn);
  330. xinerama_query_screens();
  331. redraw_screen();
  332. }
  333. /*
  334. * Callback function for PAM. We only react on password request callbacks.
  335. *
  336. */
  337. static int conv_callback(int num_msg, const struct pam_message **msg,
  338. struct pam_response **resp, void *appdata_ptr)
  339. {
  340. if (num_msg == 0)
  341. return 1;
  342. /* PAM expects an array of responses, one for each message */
  343. if ((*resp = calloc(num_msg, sizeof(struct pam_response))) == NULL) {
  344. perror("calloc");
  345. return 1;
  346. }
  347. for (int c = 0; c < num_msg; c++) {
  348. if (msg[c]->msg_style != PAM_PROMPT_ECHO_OFF &&
  349. msg[c]->msg_style != PAM_PROMPT_ECHO_ON)
  350. continue;
  351. /* return code is currently not used but should be set to zero */
  352. resp[c]->resp_retcode = 0;
  353. if ((resp[c]->resp = strdup(password)) == NULL) {
  354. perror("strdup");
  355. return 1;
  356. }
  357. }
  358. return 0;
  359. }
  360. /*
  361. * This callback is only a dummy, see xcb_prepare_cb and xcb_check_cb.
  362. * See also man libev(3): "ev_prepare" and "ev_check" - customise your event loop
  363. *
  364. */
  365. static void xcb_got_event(EV_P_ struct ev_io *w, int revents) {
  366. /* empty, because xcb_prepare_cb and xcb_check_cb are used */
  367. }
  368. /*
  369. * Flush before blocking (and waiting for new events)
  370. *
  371. */
  372. static void xcb_prepare_cb(EV_P_ ev_prepare *w, int revents) {
  373. xcb_flush(conn);
  374. }
  375. /*
  376. * Instead of polling the X connection socket we leave this to
  377. * xcb_poll_for_event() which knows better than we can ever know.
  378. *
  379. */
  380. static void xcb_check_cb(EV_P_ ev_check *w, int revents) {
  381. xcb_generic_event_t *event;
  382. while ((event = xcb_poll_for_event(conn)) != NULL) {
  383. if (event->response_type == 0) {
  384. xcb_generic_error_t *error = (xcb_generic_error_t*)event;
  385. if (debug_mode)
  386. fprintf(stderr, "X11 Error received! sequence 0x%x, error_code = %d\n",
  387. error->sequence, error->error_code);
  388. free(event);
  389. continue;
  390. }
  391. /* Strip off the highest bit (set if the event is generated) */
  392. int type = (event->response_type & 0x7F);
  393. switch (type) {
  394. case XCB_KEY_PRESS:
  395. handle_key_press((xcb_key_press_event_t*)event);
  396. break;
  397. case XCB_KEY_RELEASE:
  398. handle_key_release((xcb_key_release_event_t*)event);
  399. /* If this was the backspace or escape key we are back at an
  400. * empty input, so turn off the screen if DPMS is enabled */
  401. if (dpms && input_position == 0)
  402. dpms_turn_off_screen(conn);
  403. break;
  404. case XCB_VISIBILITY_NOTIFY:
  405. handle_visibility_notify((xcb_visibility_notify_event_t*)event);
  406. break;
  407. case XCB_MAP_NOTIFY:
  408. if (!dont_fork) {
  409. /* After the first MapNotify, we never fork again. We don’t
  410. * expect to get another MapNotify, but better be sure */
  411. dont_fork = true;
  412. /* In the parent process, we exit */
  413. if (fork() != 0)
  414. exit(0);
  415. ev_loop_fork(EV_DEFAULT);
  416. }
  417. break;
  418. case XCB_MAPPING_NOTIFY:
  419. handle_mapping_notify((xcb_mapping_notify_event_t*)event);
  420. break;
  421. case XCB_CONFIGURE_NOTIFY:
  422. handle_screen_resize();
  423. break;
  424. }
  425. free(event);
  426. }
  427. }
  428. int main(int argc, char *argv[]) {
  429. char *username;
  430. char *image_path = NULL;
  431. int ret;
  432. struct pam_conv conv = {conv_callback, NULL};
  433. int curs_choice = CURS_NONE;
  434. int o;
  435. int optind = 0;
  436. struct option longopts[] = {
  437. {"version", no_argument, NULL, 'v'},
  438. {"nofork", no_argument, NULL, 'n'},
  439. {"beep", no_argument, NULL, 'b'},
  440. {"dpms", no_argument, NULL, 'd'},
  441. {"color", required_argument, NULL, 'c'},
  442. {"pointer", required_argument, NULL , 'p'},
  443. {"debug", no_argument, NULL, 0},
  444. {"help", no_argument, NULL, 'h'},
  445. {"no-unlock-indicator", no_argument, NULL, 'u'},
  446. {"image", required_argument, NULL, 'i'},
  447. {"tiling", no_argument, NULL, 't'},
  448. {NULL, no_argument, NULL, 0}
  449. };
  450. if ((username = getenv("USER")) == NULL)
  451. errx(1, "USER environment variable not set, please set it.\n");
  452. while ((o = getopt_long(argc, argv, "hvnbdc:p:ui:t", longopts, &optind)) != -1) {
  453. switch (o) {
  454. case 'v':
  455. errx(EXIT_SUCCESS, "version " VERSION " © 2010-2012 Michael Stapelberg");
  456. case 'n':
  457. dont_fork = true;
  458. break;
  459. case 'b':
  460. beep = true;
  461. break;
  462. case 'd':
  463. dpms = true;
  464. break;
  465. case 'c': {
  466. char *arg = optarg;
  467. /* Skip # if present */
  468. if (arg[0] == '#')
  469. arg++;
  470. if (strlen(arg) != 6 || sscanf(arg, "%06[0-9a-fA-F]", color) != 1)
  471. errx(1, "color is invalid, it must be given in 3-byte hexadecimal format: rrggbb\n");
  472. break;
  473. }
  474. case 'u':
  475. unlock_indicator = false;
  476. break;
  477. case 'i':
  478. image_path = strdup(optarg);
  479. break;
  480. case 't':
  481. tile = true;
  482. break;
  483. case 'p':
  484. if (!strcmp(optarg, "win")) {
  485. curs_choice = CURS_WIN;
  486. } else if (!strcmp(optarg, "default")) {
  487. curs_choice = CURS_DEFAULT;
  488. } else {
  489. errx(1, "i3lock: Invalid pointer type given. Expected one of \"win\" or \"default\".\n");
  490. }
  491. break;
  492. case 0:
  493. if (strcmp(longopts[optind].name, "debug") == 0)
  494. debug_mode = true;
  495. break;
  496. default:
  497. errx(1, "Syntax: i3lock [-v] [-n] [-b] [-d] [-c color] [-u] [-p win|default]"
  498. " [-i image.png] [-t]"
  499. );
  500. }
  501. }
  502. /* We need (relatively) random numbers for highlighting a random part of
  503. * the unlock indicator upon keypresses. */
  504. srand(time(NULL));
  505. /* Initialize PAM */
  506. ret = pam_start("i3lock", username, &conv, &pam_handle);
  507. if (ret != PAM_SUCCESS)
  508. errx(EXIT_FAILURE, "PAM: %s", pam_strerror(pam_handle, ret));
  509. /* Using mlock() as non-super-user seems only possible in Linux. Users of other
  510. * operating systems should use encrypted swap/no swap (or remove the ifdef and
  511. * run i3lock as super-user). */
  512. #if defined(__linux__)
  513. /* Lock the area where we store the password in memory, we don’t want it to
  514. * be swapped to disk. Since Linux 2.6.9, this does not require any
  515. * privileges, just enough bytes in the RLIMIT_MEMLOCK limit. */
  516. if (mlock(password, sizeof(password)) != 0)
  517. err(EXIT_FAILURE, "Could not lock page in memory, check RLIMIT_MEMLOCK");
  518. #endif
  519. /* Initialize connection to X11 */
  520. if ((display = XOpenDisplay(NULL)) == NULL)
  521. errx(EXIT_FAILURE, "Could not connect to X11, maybe you need to set DISPLAY?");
  522. XSetEventQueueOwner(display, XCBOwnsEventQueue);
  523. conn = XGetXCBConnection(display);
  524. /* Double checking that connection is good and operatable with xcb */
  525. if (xcb_connection_has_error(conn))
  526. errx(EXIT_FAILURE, "Could not connect to X11, maybe you need to set DISPLAY?");
  527. /* When we cannot initially load the keymap, we better exit */
  528. if (!load_keymap())
  529. errx(EXIT_FAILURE, "Could not load keymap");
  530. xinerama_init();
  531. xinerama_query_screens();
  532. /* if DPMS is enabled, check if the X server really supports it */
  533. if (dpms) {
  534. xcb_dpms_capable_cookie_t dpmsc = xcb_dpms_capable(conn);
  535. xcb_dpms_capable_reply_t *dpmsr;
  536. if ((dpmsr = xcb_dpms_capable_reply(conn, dpmsc, NULL))) {
  537. if (!dpmsr->capable) {
  538. if (debug_mode)
  539. fprintf(stderr, "Disabling DPMS, X server not DPMS capable\n");
  540. dpms = false;
  541. }
  542. free(dpmsr);
  543. }
  544. }
  545. screen = xcb_setup_roots_iterator(xcb_get_setup(conn)).data;
  546. last_resolution[0] = screen->width_in_pixels;
  547. last_resolution[1] = screen->height_in_pixels;
  548. xcb_change_window_attributes(conn, screen->root, XCB_CW_EVENT_MASK,
  549. (uint32_t[]){ XCB_EVENT_MASK_STRUCTURE_NOTIFY });
  550. if (image_path) {
  551. /* Create a pixmap to render on, fill it with the background color */
  552. img = cairo_image_surface_create_from_png(image_path);
  553. /* In case loading failed, we just pretend no -i was specified. */
  554. if (cairo_surface_status(img) != CAIRO_STATUS_SUCCESS) {
  555. fprintf(stderr, "Could not load image \"%s\": cairo surface status %d\n",
  556. image_path, cairo_surface_status(img));
  557. img = NULL;
  558. }
  559. }
  560. /* Pixmap on which the image is rendered to (if any) */
  561. xcb_pixmap_t bg_pixmap = draw_image(last_resolution);
  562. /* open the fullscreen window, already with the correct pixmap in place */
  563. win = open_fullscreen_window(conn, screen, color, bg_pixmap);
  564. xcb_free_pixmap(conn, bg_pixmap);
  565. cursor = create_cursor(conn, screen, win, curs_choice);
  566. grab_pointer_and_keyboard(conn, screen, cursor);
  567. if (dpms)
  568. dpms_turn_off_screen(conn);
  569. /* Initialize the libev event loop. */
  570. main_loop = EV_DEFAULT;
  571. if (main_loop == NULL)
  572. errx(EXIT_FAILURE, "Could not initialize libev. Bad LIBEV_FLAGS?\n");
  573. struct ev_io *xcb_watcher = calloc(sizeof(struct ev_io), 1);
  574. struct ev_check *xcb_check = calloc(sizeof(struct ev_check), 1);
  575. struct ev_prepare *xcb_prepare = calloc(sizeof(struct ev_prepare), 1);
  576. ev_io_init(xcb_watcher, xcb_got_event, xcb_get_file_descriptor(conn), EV_READ);
  577. ev_io_start(main_loop, xcb_watcher);
  578. ev_check_init(xcb_check, xcb_check_cb);
  579. ev_check_start(main_loop, xcb_check);
  580. ev_prepare_init(xcb_prepare, xcb_prepare_cb);
  581. ev_prepare_start(main_loop, xcb_prepare);
  582. /* Invoke the event callback once to catch all the events which were
  583. * received up until now. ev will only pick up new events (when the X11
  584. * file descriptor becomes readable). */
  585. ev_invoke(main_loop, xcb_check, 0);
  586. ev_loop(main_loop, 0);
  587. }