My Marlin configs for Fabrikator Mini and CTC i3 Pro B
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DGUSScreenHandler.cpp 74KB

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  1. /**
  2. * Marlin 3D Printer Firmware
  3. * Copyright (c) 2020 MarlinFirmware [https://github.com/MarlinFirmware/Marlin]
  4. *
  5. * Based on Sprinter and grbl.
  6. * Copyright (c) 2011 Camiel Gubbels / Erik van der Zalm
  7. *
  8. * This program is free software: you can redistribute it and/or modify
  9. * it under the terms of the GNU General Public License as published by
  10. * the Free Software Foundation, either version 3 of the License, or
  11. * (at your option) any later version.
  12. *
  13. * This program is distributed in the hope that it will be useful,
  14. * but WITHOUT ANY WARRANTY; without even the implied warranty of
  15. * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
  16. * GNU General Public License for more details.
  17. *
  18. * You should have received a copy of the GNU General Public License
  19. * along with this program. If not, see <https://www.gnu.org/licenses/>.
  20. *
  21. */
  22. #include "../../../../../inc/MarlinConfigPre.h"
  23. #if ENABLED(DGUS_LCD_UI_MKS)
  24. #include "../DGUSScreenHandler.h"
  25. #include "../../../../../inc/MarlinConfig.h"
  26. #include "../../../../../MarlinCore.h"
  27. #include "../../../../../module/settings.h"
  28. #include "../../../../../module/temperature.h"
  29. #include "../../../../../module/motion.h"
  30. #include "../../../../../module/planner.h"
  31. #include "../../../../../module/printcounter.h"
  32. #include "../../../../../gcode/gcode.h"
  33. #if ENABLED(HAS_STEALTHCHOP)
  34. #include "../../../../../module/stepper/trinamic.h"
  35. #include "../../../../../module/stepper/indirection.h"
  36. #endif
  37. #include "../../../../../module/probe.h"
  38. #if ENABLED(POWER_LOSS_RECOVERY)
  39. #include "../../../../../feature/powerloss.h"
  40. #endif
  41. #if ENABLED(SDSUPPORT)
  42. static ExtUI::FileList filelist;
  43. #endif
  44. bool DGUSAutoTurnOff = false;
  45. uint8_t mks_language_index; // Initialized by settings.load()
  46. // endianness swap
  47. uint32_t swap32(const uint32_t value) { return (value & 0x000000FFU) << 24U | (value & 0x0000FF00U) << 8U | (value & 0x00FF0000U) >> 8U | (value & 0xFF000000U) >> 24U; }
  48. #if 0
  49. void DGUSScreenHandler::sendinfoscreen_ch_mks(const uint16_t *line1, const uint16_t *line2, const uint16_t *line3, const uint16_t *line4) {
  50. dgusdisplay.WriteVariable(VP_MSGSTR1, line1, 32, true);
  51. dgusdisplay.WriteVariable(VP_MSGSTR2, line2, 32, true);
  52. dgusdisplay.WriteVariable(VP_MSGSTR3, line3, 32, true);
  53. dgusdisplay.WriteVariable(VP_MSGSTR4, line4, 32, true);
  54. }
  55. void DGUSScreenHandler::sendinfoscreen_en_mks(const char *line1, const char *line2, const char *line3, const char *line4) {
  56. dgusdisplay.WriteVariable(VP_MSGSTR1, line1, 32, true);
  57. dgusdisplay.WriteVariable(VP_MSGSTR2, line2, 32, true);
  58. dgusdisplay.WriteVariable(VP_MSGSTR3, line3, 32, true);
  59. dgusdisplay.WriteVariable(VP_MSGSTR4, line4, 32, true);
  60. }
  61. void DGUSScreenHandler::sendinfoscreen_mks(const void *line1, const void *line2, const void *line3, const void *line4, uint16_t language) {
  62. if (language == MKS_English)
  63. DGUSScreenHandler::sendinfoscreen_en_mks((char *)line1, (char *)line2, (char *)line3, (char *)line4);
  64. else if (language == MKS_SimpleChinese)
  65. DGUSScreenHandler::sendinfoscreen_ch_mks((uint16_t *)line1, (uint16_t *)line2, (uint16_t *)line3, (uint16_t *)line4);
  66. }
  67. #endif
  68. void DGUSScreenHandler::DGUSLCD_SendFanToDisplay(DGUS_VP_Variable &var) {
  69. if (var.memadr) {
  70. //DEBUG_ECHOPAIR(" DGUS_LCD_SendWordValueToDisplay ", var.VP);
  71. //DEBUG_ECHOLNPAIR(" data ", *(uint16_t *)var.memadr);
  72. uint16_t tmp = *(uint8_t *) var.memadr; // +1 -> avoid rounding issues for the display.
  73. // tmp = map(tmp, 0, 255, 0, 100);
  74. dgusdisplay.WriteVariable(var.VP, tmp);
  75. }
  76. }
  77. void DGUSScreenHandler::DGUSLCD_SendBabyStepToDisplay_MKS(DGUS_VP_Variable &var) {
  78. float value = current_position.z;
  79. DEBUG_ECHOLNPAIR_F(" >> ", value, 6);
  80. value *= cpow(10, 2);
  81. dgusdisplay.WriteVariable(VP_SD_Print_Baby, (uint16_t)value);
  82. }
  83. void DGUSScreenHandler::DGUSLCD_SendPrintTimeToDisplay_MKS(DGUS_VP_Variable &var) {
  84. duration_t elapsed = print_job_timer.duration();
  85. uint32_t time = elapsed.value;
  86. dgusdisplay.WriteVariable(VP_PrintTime_H, uint16_t(time / 3600));
  87. dgusdisplay.WriteVariable(VP_PrintTime_M, uint16_t(time % 3600 / 60));
  88. dgusdisplay.WriteVariable(VP_PrintTime_S, uint16_t((time % 3600) % 60));
  89. }
  90. void DGUSScreenHandler::DGUSLCD_SetUint8(DGUS_VP_Variable &var, void *val_ptr) {
  91. if (var.memadr) {
  92. const uint16_t value = swap16(*(uint16_t*)val_ptr);
  93. DEBUG_ECHOLNPAIR("FAN value get:", value);
  94. *(uint8_t*)var.memadr = map(constrain(value, 0, 255), 0, 255, 0, 255);
  95. DEBUG_ECHOLNPAIR("FAN value change:", *(uint8_t*)var.memadr);
  96. }
  97. }
  98. void DGUSScreenHandler::DGUSLCD_SendGbkToDisplay(DGUS_VP_Variable &var) {
  99. DEBUG_ECHOLNPAIR(" data ", *(uint16_t *)var.memadr);
  100. uint16_t *tmp = (uint16_t*) var.memadr;
  101. dgusdisplay.WriteVariable(var.VP, tmp, var.size, true);
  102. }
  103. void DGUSScreenHandler::DGUSLCD_SendStringToDisplay_Language_MKS(DGUS_VP_Variable &var) {
  104. if (mks_language_index == MKS_English) {
  105. char *tmp = (char*) var.memadr;
  106. dgusdisplay.WriteVariable(var.VP, tmp, var.size, true);
  107. }
  108. else if (mks_language_index == MKS_SimpleChinese) {
  109. uint16_t *tmp = (uint16_t *)var.memadr;
  110. dgusdisplay.WriteVariable(var.VP, tmp, var.size, true);
  111. }
  112. }
  113. void DGUSScreenHandler::DGUSLCD_SendTMCStepValue(DGUS_VP_Variable &var) {
  114. #if ENABLED(SENSORLESS_HOMING)
  115. #if AXIS_HAS_STEALTHCHOP(X)
  116. tmc_step.x = stepperX.homing_threshold();
  117. dgusdisplay.WriteVariable(var.VP, *(int16_t*)var.memadr);
  118. #endif
  119. #if AXIS_HAS_STEALTHCHOP(Y)
  120. tmc_step.y = stepperY.homing_threshold();
  121. dgusdisplay.WriteVariable(var.VP, *(int16_t*)var.memadr);
  122. #endif
  123. #if AXIS_HAS_STEALTHCHOP(Z)
  124. tmc_step.z = stepperZ.homing_threshold();
  125. dgusdisplay.WriteVariable(var.VP, *(int16_t*)var.memadr);
  126. #endif
  127. #endif
  128. }
  129. #if ENABLED(SDSUPPORT)
  130. void DGUSScreenHandler::DGUSLCD_SD_FileSelected(DGUS_VP_Variable &var, void *val_ptr) {
  131. uint16_t touched_nr = (int16_t)swap16(*(uint16_t*)val_ptr) + top_file;
  132. if (touched_nr != 0x0F && touched_nr > filelist.count()) return;
  133. if (!filelist.seek(touched_nr) && touched_nr != 0x0F) return;
  134. if (touched_nr == 0x0F) {
  135. if (filelist.isAtRootDir())
  136. GotoScreen(DGUSLCD_SCREEN_MAIN);
  137. else
  138. filelist.upDir();
  139. return;
  140. }
  141. if (filelist.isDir()) {
  142. filelist.changeDir(filelist.filename());
  143. top_file = 0;
  144. ForceCompleteUpdate();
  145. return;
  146. }
  147. #if ENABLED(DGUS_PRINT_FILENAME)
  148. // Send print filename
  149. dgusdisplay.WriteVariable(VP_SD_Print_Filename, filelist.filename(), VP_SD_FileName_LEN, true);
  150. #endif
  151. // Setup Confirmation screen
  152. file_to_print = touched_nr;
  153. GotoScreen(MKSLCD_SCREEN_PRINT_CONFIRM);
  154. }
  155. void DGUSScreenHandler::DGUSLCD_SD_StartPrint(DGUS_VP_Variable &var, void *val_ptr) {
  156. if (!filelist.seek(file_to_print)) return;
  157. ExtUI::printFile(filelist.shortFilename());
  158. GotoScreen(MKSLCD_SCREEN_PRINT);
  159. z_offset_add = 0;
  160. }
  161. void DGUSScreenHandler::DGUSLCD_SD_ResumePauseAbort(DGUS_VP_Variable &var, void *val_ptr) {
  162. if (!ExtUI::isPrintingFromMedia()) return; // avoid race condition when user stays in this menu and printer finishes.
  163. switch (swap16(*(uint16_t*)val_ptr)) {
  164. case 0: { // Resume
  165. auto cs = getCurrentScreen();
  166. if (runout_mks.runout_status != RUNOUT_WAITTING_STATUS && runout_mks.runout_status != UNRUNOUT_STATUS) {
  167. if (cs == MKSLCD_SCREEN_PRINT || cs == MKSLCD_SCREEN_PAUSE)
  168. GotoScreen(MKSLCD_SCREEN_PAUSE);
  169. return;
  170. }
  171. else
  172. runout_mks.runout_status = UNRUNOUT_STATUS;
  173. GotoScreen(MKSLCD_SCREEN_PRINT);
  174. if (ExtUI::isPrintingFromMediaPaused()) {
  175. nozzle_park_mks.print_pause_start_flag = 0;
  176. nozzle_park_mks.blstatus = true;
  177. ExtUI::resumePrint();
  178. }
  179. } break;
  180. case 1: // Pause
  181. GotoScreen(MKSLCD_SCREEN_PAUSE);
  182. if (!ExtUI::isPrintingFromMediaPaused()) {
  183. nozzle_park_mks.print_pause_start_flag = 1;
  184. nozzle_park_mks.blstatus = true;
  185. ExtUI::pausePrint();
  186. //ExtUI::mks_pausePrint();
  187. }
  188. break;
  189. case 2: // Abort
  190. HandleUserConfirmationPopUp(VP_SD_AbortPrintConfirmed, nullptr, PSTR("Abort printing"), filelist.filename(), PSTR("?"), true, true, false, true);
  191. break;
  192. }
  193. }
  194. void DGUSScreenHandler::DGUSLCD_SD_SendFilename(DGUS_VP_Variable& var) {
  195. uint16_t target_line = (var.VP - VP_SD_FileName0) / VP_SD_FileName_LEN;
  196. if (target_line > DGUS_SD_FILESPERSCREEN) return;
  197. char tmpfilename[VP_SD_FileName_LEN + 1] = "";
  198. var.memadr = (void*)tmpfilename;
  199. uint16_t dir_icon_val = 25;
  200. if (filelist.seek(top_file + target_line)) {
  201. snprintf_P(tmpfilename, VP_SD_FileName_LEN, PSTR("%s%c"), filelist.filename(), filelist.isDir() ? '/' : 0); // snprintf_P(tmpfilename, VP_SD_FileName_LEN, PSTR("%s"), filelist.filename());
  202. dir_icon_val = filelist.isDir() ? 0 : 1;
  203. }
  204. DGUSLCD_SendStringToDisplay(var);
  205. dgusdisplay.WriteVariable(VP_File_Pictutr0 + target_line * 2, dir_icon_val);
  206. }
  207. void DGUSScreenHandler::SDCardInserted() {
  208. top_file = 0;
  209. filelist.refresh();
  210. auto cs = getCurrentScreen();
  211. if (cs == DGUSLCD_SCREEN_MAIN || cs == DGUSLCD_SCREEN_STATUS)
  212. GotoScreen(MKSLCD_SCREEN_CHOOSE_FILE);
  213. }
  214. void DGUSScreenHandler::SDCardRemoved() {
  215. if (current_screen == DGUSLCD_SCREEN_SDFILELIST
  216. || (current_screen == DGUSLCD_SCREEN_CONFIRM && (ConfirmVP == VP_SD_AbortPrintConfirmed || ConfirmVP == VP_SD_FileSelectConfirm))
  217. || current_screen == DGUSLCD_SCREEN_SDPRINTMANIPULATION
  218. ) filelist.refresh();
  219. }
  220. void DGUSScreenHandler::SDPrintingFinished() {
  221. if (DGUSAutoTurnOff) {
  222. queue.exhaust();
  223. gcode.process_subcommands_now_P(PSTR("M81"));
  224. }
  225. GotoScreen(MKSLCD_SCREEN_PrintDone);
  226. }
  227. #else
  228. void DGUSScreenHandler::PrintReturn(DGUS_VP_Variable& var, void *val_ptr) {
  229. uint16_t value = swap16(*(uint16_t*)val_ptr);
  230. if (value == 0x0F) GotoScreen(DGUSLCD_SCREEN_MAIN);
  231. }
  232. #endif // SDSUPPORT
  233. void DGUSScreenHandler::ScreenChangeHook(DGUS_VP_Variable &var, void *val_ptr) {
  234. uint8_t *tmp = (uint8_t*)val_ptr;
  235. // The keycode in target is coded as <from-frame><to-frame>, so 0x0100A means
  236. // from screen 1 (main) to 10 (temperature). DGUSLCD_SCREEN_POPUP is special,
  237. // meaning "return to previous screen"
  238. DGUSLCD_Screens target = (DGUSLCD_Screens)tmp[1];
  239. DEBUG_ECHOLNPAIR("\n DEBUG target", target);
  240. // when the dgus had reboot, it will enter the DGUSLCD_SCREEN_MAIN page,
  241. // so user can change any page to use this function, an it will check
  242. // if robin nano is printing. when it is, dgus will enter the printing
  243. // page to continue print;
  244. //
  245. //if (print_job_timer.isRunning() || print_job_timer.isPaused()) {
  246. // if (target == MKSLCD_PAUSE_SETTING_MOVE || target == MKSLCD_PAUSE_SETTING_EX
  247. // || target == MKSLCD_SCREEN_PRINT || target == MKSLCD_SCREEN_PAUSE
  248. // ) {
  249. // }
  250. // else
  251. // GotoScreen(MKSLCD_SCREEN_PRINT);
  252. // return;
  253. //}
  254. if (target == DGUSLCD_SCREEN_POPUP) {
  255. SetupConfirmAction(ExtUI::setUserConfirmed);
  256. // Special handling for popup is to return to previous menu
  257. if (current_screen == DGUSLCD_SCREEN_POPUP && confirm_action_cb) confirm_action_cb();
  258. PopToOldScreen();
  259. return;
  260. }
  261. UpdateNewScreen(target);
  262. #ifdef DEBUG_DGUSLCD
  263. if (!DGUSLCD_FindScreenVPMapList(target)) DEBUG_ECHOLNPAIR("WARNING: No screen Mapping found for ", target);
  264. #endif
  265. }
  266. void DGUSScreenHandler::ScreenBackChange(DGUS_VP_Variable &var, void *val_ptr) {
  267. const uint16_t target = swap16(*(uint16_t *)val_ptr);
  268. DEBUG_ECHOLNPAIR(" back = 0x%x", target);
  269. switch (target) {
  270. }
  271. }
  272. void DGUSScreenHandler::ZoffsetConfirm(DGUS_VP_Variable &var, void *val_ptr) {
  273. settings.save();
  274. if (print_job_timer.isRunning())
  275. GotoScreen(MKSLCD_SCREEN_PRINT);
  276. else if (print_job_timer.isPaused)
  277. GotoScreen(MKSLCD_SCREEN_PAUSE);
  278. }
  279. void DGUSScreenHandler::GetTurnOffCtrl(DGUS_VP_Variable &var, void *val_ptr) {
  280. DEBUG_ECHOLNPGM("GetTurnOffCtrl\n");
  281. const uint16_t value = swap16(*(uint16_t *)val_ptr);
  282. switch (value) {
  283. case 0 ... 1: DGUSAutoTurnOff = (bool)value; break;
  284. default: break;
  285. }
  286. }
  287. void DGUSScreenHandler::GetMinExtrudeTemp(DGUS_VP_Variable &var, void *val_ptr) {
  288. DEBUG_ECHOLNPGM("GetMinExtrudeTemp");
  289. const uint16_t value = swap16(*(uint16_t *)val_ptr);
  290. thermalManager.extrude_min_temp = value;
  291. mks_min_extrusion_temp = value;
  292. settings.save();
  293. }
  294. void DGUSScreenHandler::GetZoffsetDistance(DGUS_VP_Variable &var, void *val_ptr) {
  295. DEBUG_ECHOLNPGM("GetZoffsetDistance");
  296. const uint16_t value = swap16(*(uint16_t *)val_ptr);
  297. float val_distance = 0;
  298. switch (value) {
  299. case 0: val_distance = 0.01; break;
  300. case 1: val_distance = 0.1; break;
  301. case 2: val_distance = 0.5; break;
  302. case 3: val_distance = 1; break;
  303. default: val_distance = 0.01; break;
  304. }
  305. ZOffset_distance = val_distance;
  306. }
  307. void DGUSScreenHandler::GetManualMovestep(DGUS_VP_Variable &var, void *val_ptr) {
  308. DEBUG_ECHOLNPGM("\nGetManualMovestep");
  309. *(uint16_t *)var.memadr = swap16(*(uint16_t *)val_ptr);
  310. }
  311. void DGUSScreenHandler::EEPROM_CTRL(DGUS_VP_Variable &var, void *val_ptr) {
  312. const uint16_t eep_flag = swap16(*(uint16_t *)val_ptr);
  313. switch (eep_flag) {
  314. case 0:
  315. settings.save();
  316. settings.load(); // load eeprom data to check the data is right
  317. GotoScreen(MKSLCD_SCREEN_EEP_Config);
  318. break;
  319. case 1:
  320. settings.reset();
  321. GotoScreen(MKSLCD_SCREEN_EEP_Config);
  322. break;
  323. default: break;
  324. }
  325. }
  326. void DGUSScreenHandler::Z_offset_select(DGUS_VP_Variable &var, void *val_ptr) {
  327. const uint16_t z_value = swap16(*(uint16_t *)val_ptr);
  328. switch (z_value) {
  329. case 0: Z_distance = 0.01; break;
  330. case 1: Z_distance = 0.1; break;
  331. case 2: Z_distance = 0.5; break;
  332. default: Z_distance = 1; break;
  333. }
  334. }
  335. void DGUSScreenHandler::GetOffsetValue(DGUS_VP_Variable &var, void *val_ptr) {
  336. #if ENABLED(HAS_BED_PROBE)
  337. int32_t value = swap32(*(int32_t *)val_ptr);
  338. float Offset = value / 100.0f;
  339. DEBUG_ECHOLNPAIR_F("\nget int6 offset >> ", value, 6);
  340. #endif
  341. switch (var.VP) {
  342. case VP_OFFSET_X: TERN_(HAS_BED_PROBE, probe.offset.x = Offset); break;
  343. case VP_OFFSET_Y: TERN_(HAS_BED_PROBE, probe.offset.y = Offset); break;
  344. case VP_OFFSET_Z: TERN_(HAS_BED_PROBE, probe.offset.z = Offset); break;
  345. default: break;
  346. }
  347. settings.save();
  348. }
  349. void DGUSScreenHandler::LanguageChange_MKS(DGUS_VP_Variable &var, void *val_ptr) {
  350. const uint16_t lag_flag = swap16(*(uint16_t *)val_ptr);
  351. switch (lag_flag) {
  352. case MKS_SimpleChinese:
  353. DGUS_LanguageDisplay(MKS_SimpleChinese);
  354. mks_language_index = MKS_SimpleChinese;
  355. dgusdisplay.MKS_WriteVariable(VP_LANGUAGE_CHANGE1, MKS_Language_Choose);
  356. dgusdisplay.MKS_WriteVariable(VP_LANGUAGE_CHANGE2, MKS_Language_NoChoose);
  357. settings.save();
  358. break;
  359. case MKS_English:
  360. DGUS_LanguageDisplay(MKS_English);
  361. mks_language_index = MKS_English;
  362. dgusdisplay.MKS_WriteVariable(VP_LANGUAGE_CHANGE1, MKS_Language_NoChoose);
  363. dgusdisplay.MKS_WriteVariable(VP_LANGUAGE_CHANGE2, MKS_Language_Choose);
  364. settings.save();
  365. break;
  366. default: break;
  367. }
  368. }
  369. #if ENABLED(MESH_BED_LEVELING)
  370. uint8_t mesh_point_count = GRID_MAX_POINTS;
  371. #endif
  372. void DGUSScreenHandler::Level_Ctrl_MKS(DGUS_VP_Variable &var, void *val_ptr) {
  373. const uint16_t lev_but = swap16(*(uint16_t *)val_ptr);
  374. #if ENABLED(MESH_BED_LEVELING)
  375. auto cs = getCurrentScreen();
  376. #endif
  377. switch (lev_but) {
  378. case 0:
  379. #if ENABLED(AUTO_BED_LEVELING_BILINEAR)
  380. static uint8_t a_first_level = 1;
  381. if (a_first_level == 1) {
  382. a_first_level = 0;
  383. queue.enqueue_now_P(G28_STR);
  384. }
  385. queue.enqueue_now_P(PSTR("G29"));
  386. #elif ENABLED(MESH_BED_LEVELING)
  387. mesh_point_count = GRID_MAX_POINTS;
  388. if (mks_language_index == MKS_English) {
  389. const char level_buf_en[] = "Start Level";
  390. dgusdisplay.WriteVariable(VP_AutoLevel_1_Dis, level_buf_en, 32, true);
  391. }
  392. else if (mks_language_index == MKS_SimpleChinese) {
  393. const uint16_t level_buf_ch[] = {0xAABF, 0xBCCA, 0xF7B5, 0xBDC6, 0x2000};
  394. dgusdisplay.WriteVariable(VP_AutoLevel_1_Dis, level_buf_ch, 32, true);
  395. }
  396. cs = getCurrentScreen();
  397. if (cs != MKSLCD_AUTO_LEVEL) GotoScreen(MKSLCD_AUTO_LEVEL);
  398. #else
  399. GotoScreen(MKSLCD_SCREEN_LEVEL);
  400. #endif
  401. break;
  402. case 1:
  403. soft_endstop._enabled = true;
  404. GotoScreen(MKSLCD_SCREEM_TOOL);
  405. break;
  406. default: break;
  407. }
  408. }
  409. void DGUSScreenHandler::MeshLevelDistanceConfig(DGUS_VP_Variable &var, void *val_ptr) {
  410. const uint16_t mesh_dist = swap16(*(uint16_t *)val_ptr);
  411. switch (mesh_dist) {
  412. case 0: mesh_adj_distance = 0.01; break;
  413. case 1: mesh_adj_distance = 0.1; break;
  414. case 2: mesh_adj_distance = 1; break;
  415. default: mesh_adj_distance = 0.1; break;
  416. }
  417. }
  418. void DGUSScreenHandler::MeshLevel(DGUS_VP_Variable &var, void *val_ptr) {
  419. #if ENABLED(MESH_BED_LEVELING)
  420. const uint16_t mesh_value = swap16(*(uint16_t *)val_ptr);
  421. // static uint8_t a_first_level = 1;
  422. char cmd_buf[30];
  423. float offset = mesh_adj_distance;
  424. int16_t integer, Deci, Deci2;
  425. if (!queue.ring_buffer.empty()) return;
  426. switch (mesh_value) {
  427. case 0:
  428. offset = mesh_adj_distance;
  429. integer = offset; // get int
  430. Deci = (offset * 10);
  431. Deci = Deci % 10;
  432. Deci2 = offset * 100;
  433. Deci2 = Deci2 % 10;
  434. soft_endstop._enabled = false;
  435. queue.enqueue_now_P(PSTR("G91"));
  436. snprintf_P(cmd_buf, 30, PSTR("G1 Z%d.%d%d"), integer, Deci, Deci2);
  437. queue.enqueue_one_now(cmd_buf);
  438. queue.enqueue_now_P(PSTR("G90"));
  439. //soft_endstop._enabled = true;
  440. break;
  441. case 1:
  442. offset = mesh_adj_distance;
  443. integer = offset; // get int
  444. Deci = (offset * 10);
  445. Deci = Deci % 10;
  446. Deci2 = offset * 100;
  447. Deci2 = Deci2 % 10;
  448. soft_endstop._enabled = false;
  449. queue.enqueue_now_P(PSTR("G91"));
  450. snprintf_P(cmd_buf, 30, PSTR("G1 Z-%d.%d%d"), integer, Deci, Deci2);
  451. queue.enqueue_one_now(cmd_buf);
  452. queue.enqueue_now_P(PSTR("G90"));
  453. break;
  454. case 2:
  455. if (mesh_point_count == GRID_MAX_POINTS) { // The first point
  456. queue.enqueue_now_P(PSTR("G28"));
  457. queue.enqueue_now_P(PSTR("G29S1"));
  458. mesh_point_count--;
  459. if (mks_language_index == MKS_English) {
  460. const char level_buf_en1[] = "Next Point";
  461. dgusdisplay.WriteVariable(VP_AutoLevel_1_Dis, level_buf_en1, 32, true);
  462. }
  463. else if (mks_language_index == MKS_SimpleChinese) {
  464. const uint16_t level_buf_ch1[] = {0xC2CF, 0xBBD2, 0xE3B5, 0x2000};
  465. dgusdisplay.WriteVariable(VP_AutoLevel_1_Dis, level_buf_ch1, 32, true);
  466. }
  467. }
  468. else if (mesh_point_count > 1) { // 倒数第二个点
  469. queue.enqueue_now_P(PSTR("G29S2"));
  470. mesh_point_count--;
  471. if (mks_language_index == MKS_English) {
  472. const char level_buf_en2[] = "Next Point";
  473. dgusdisplay.WriteVariable(VP_AutoLevel_1_Dis, level_buf_en2, 32, true);
  474. }
  475. else if (mks_language_index == MKS_SimpleChinese) {
  476. const uint16_t level_buf_ch2[] = {0xC2CF, 0xBBD2, 0xE3B5, 0x2000};
  477. dgusdisplay.WriteVariable(VP_AutoLevel_1_Dis, level_buf_ch2, 32, true);
  478. }
  479. }
  480. else if (mesh_point_count == 1) {
  481. queue.enqueue_now_P(PSTR("G29S2"));
  482. mesh_point_count--;
  483. if (mks_language_index == MKS_English) {
  484. const char level_buf_en2[] = "Level Finsh";
  485. dgusdisplay.WriteVariable(VP_AutoLevel_1_Dis, level_buf_en2, 32, true);
  486. }
  487. else if (mks_language_index == MKS_SimpleChinese) {
  488. const uint16_t level_buf_ch2[] = {0xF7B5, 0xBDC6, 0xEACD, 0xC9B3, 0x2000};
  489. dgusdisplay.WriteVariable(VP_AutoLevel_1_Dis, level_buf_ch2, 32, true);
  490. }
  491. settings.save();
  492. }
  493. else if (mesh_point_count == 0) {
  494. mesh_point_count = GRID_MAX_POINTS;
  495. soft_endstop._enabled = true;
  496. settings.save();
  497. GotoScreen(MKSLCD_SCREEM_TOOL);
  498. }
  499. break;
  500. default:
  501. break;
  502. }
  503. #endif // MESH_BED_LEVELING
  504. }
  505. void DGUSScreenHandler::LCD_BLK_Adjust(DGUS_VP_Variable &var, void *val_ptr) {
  506. const uint16_t lcd_value = swap16(*(uint16_t *)val_ptr);
  507. lcd_default_light = constrain(lcd_value, 10, 100);
  508. const uint16_t lcd_data[2] = { lcd_default_light, lcd_default_light };
  509. dgusdisplay.WriteVariable(0x0082, &lcd_data, 5, true);
  510. }
  511. void DGUSScreenHandler::ManualAssistLeveling(DGUS_VP_Variable &var, void *val_ptr) {
  512. const int16_t point_value = swap16(*(uint16_t *)val_ptr);
  513. // Insist on leveling first time at this screen
  514. static bool first_level_flag = false;
  515. if (!first_level_flag || point_value == 0x0001) {
  516. queue.enqueue_now_P(G28_STR);
  517. first_level_flag = true;
  518. }
  519. constexpr uint16_t level_speed = 1500;
  520. auto enqueue_corner_move = [](int16_t lx, int16_t ly, uint16_t fr) {
  521. char buf_level[32];
  522. sprintf_P(buf_level, "G0X%dY%dF%d", lx, ly, fr);
  523. queue.enqueue_one_now(buf_level);
  524. };
  525. if (WITHIN(point_value, 0x0001, 0x0005))
  526. queue.enqueue_now_P(PSTR("G1Z10"));
  527. switch (point_value) {
  528. case 0x0001:
  529. enqueue_corner_move(X_MIN_POS + abs(mks_corner_offsets[0].x),
  530. Y_MIN_POS + abs(mks_corner_offsets[0].y), level_speed);
  531. queue.enqueue_now_P(PSTR("G28Z"));
  532. break;
  533. case 0x0002:
  534. enqueue_corner_move(X_MAX_POS - abs(mks_corner_offsets[1].x),
  535. Y_MIN_POS + abs(mks_corner_offsets[1].y), level_speed);
  536. break;
  537. case 0x0003:
  538. enqueue_corner_move(X_MAX_POS - abs(mks_corner_offsets[2].x),
  539. Y_MAX_POS - abs(mks_corner_offsets[2].y), level_speed);
  540. break;
  541. case 0x0004:
  542. enqueue_corner_move(X_MIN_POS + abs(mks_corner_offsets[3].x),
  543. Y_MAX_POS - abs(mks_corner_offsets[3].y), level_speed);
  544. break;
  545. case 0x0005:
  546. enqueue_corner_move(abs(mks_corner_offsets[4].x),
  547. abs(mks_corner_offsets[4].y), level_speed);
  548. break;
  549. }
  550. if (WITHIN(point_value, 0x0002, 0x0005)) {
  551. //queue.enqueue_now_P(PSTR("G28Z"));
  552. queue.enqueue_now_P(PSTR("G1Z-10"));
  553. }
  554. }
  555. #define mks_min(a, b) ((a) < (b)) ? (a) : (b)
  556. #define mks_max(a, b) ((a) > (b)) ? (a) : (b)
  557. void DGUSScreenHandler::TMC_ChangeConfig(DGUS_VP_Variable &var, void *val_ptr) {
  558. #if EITHER(HAS_TRINAMIC_CONFIG, HAS_STEALTHCHOP)
  559. const uint16_t tmc_value = swap16(*(uint16_t*)val_ptr);
  560. #endif
  561. switch (var.VP) {
  562. case VP_TMC_X_STEP:
  563. #if USE_SENSORLESS
  564. #if AXIS_HAS_STEALTHCHOP(X)
  565. stepperX.homing_threshold(mks_min(tmc_value, 255));
  566. settings.save();
  567. //tmc_step.x = stepperX.homing_threshold();
  568. #endif
  569. #endif
  570. break;
  571. case VP_TMC_Y_STEP:
  572. #if USE_SENSORLESS
  573. #if AXIS_HAS_STEALTHCHOP(Y)
  574. stepperY.homing_threshold(mks_min(tmc_value, 255));
  575. settings.save();
  576. //tmc_step.y = stepperY.homing_threshold();
  577. #endif
  578. #endif
  579. break;
  580. case VP_TMC_Z_STEP:
  581. #if USE_SENSORLESS
  582. #if AXIS_HAS_STEALTHCHOP(Z)
  583. stepperZ.homing_threshold(mks_min(tmc_value, 255));
  584. settings.save();
  585. //tmc_step.z = stepperZ.homing_threshold();
  586. #endif
  587. #endif
  588. break;
  589. case VP_TMC_X_Current:
  590. #if AXIS_IS_TMC(X)
  591. stepperX.rms_current(tmc_value);
  592. settings.save();
  593. #endif
  594. break;
  595. case VP_TMC_X1_Current:
  596. #if AXIS_IS_TMC(X2)
  597. stepperX2.rms_current(tmc_value);
  598. settings.save();
  599. #endif
  600. break;
  601. case VP_TMC_Y_Current:
  602. #if AXIS_IS_TMC(Y)
  603. stepperY.rms_current(tmc_value);
  604. settings.save();
  605. #endif
  606. break;
  607. case VP_TMC_Y1_Current:
  608. #if AXIS_IS_TMC(X2)
  609. stepperY2.rms_current(tmc_value);
  610. settings.save();
  611. #endif
  612. break;
  613. case VP_TMC_Z_Current:
  614. #if AXIS_IS_TMC(Z)
  615. stepperZ.rms_current(tmc_value);
  616. settings.save();
  617. #endif
  618. break;
  619. case VP_TMC_Z1_Current:
  620. #if AXIS_IS_TMC(Z2)
  621. stepperZ2.rms_current(tmc_value);
  622. settings.save();
  623. #endif
  624. break;
  625. case VP_TMC_E0_Current:
  626. #if AXIS_IS_TMC(E0)
  627. stepperE0.rms_current(tmc_value);
  628. settings.save();
  629. #endif
  630. break;
  631. case VP_TMC_E1_Current:
  632. #if AXIS_IS_TMC(E1)
  633. stepperE1.rms_current(tmc_value);
  634. settings.save();
  635. #endif
  636. break;
  637. default:
  638. break;
  639. }
  640. #if USE_SENSORLESS
  641. #if AXIS_HAS_STEALTHCHOP(X)
  642. tmc_step.x = stepperX.homing_threshold();
  643. #endif
  644. #if AXIS_HAS_STEALTHCHOP(Y)
  645. tmc_step.y = stepperY.homing_threshold();
  646. #endif
  647. #if AXIS_HAS_STEALTHCHOP(Z)
  648. tmc_step.z = stepperZ.homing_threshold();
  649. #endif
  650. #endif
  651. }
  652. void DGUSScreenHandler::HandleManualMove(DGUS_VP_Variable &var, void *val_ptr) {
  653. DEBUG_ECHOLNPGM("HandleManualMove");
  654. int16_t movevalue = swap16(*(uint16_t*)val_ptr);
  655. // Choose Move distance
  656. if (manualMoveStep == 0x01) manualMoveStep = 10;
  657. else if (manualMoveStep == 0x02) manualMoveStep = 100;
  658. else if (manualMoveStep == 0x03) manualMoveStep = 1000;
  659. DEBUG_ECHOLNPAIR("QUEUE LEN:", queue.length);
  660. if (!print_job_timer.isPaused() && !queue.ring_buffer.empty())
  661. return;
  662. char axiscode;
  663. unsigned int speed = 1500; // FIXME: get default feedrate for manual moves, dont hardcode.
  664. switch (var.VP) { // switch X Y Z or Home
  665. default: return;
  666. case VP_MOVE_X:
  667. DEBUG_ECHOLNPGM("X Move");
  668. axiscode = 'X';
  669. if (!ExtUI::canMove(ExtUI::axis_t::X)) goto cannotmove;
  670. break;
  671. case VP_MOVE_Y:
  672. DEBUG_ECHOLNPGM("Y Move");
  673. axiscode = 'Y';
  674. if (!ExtUI::canMove(ExtUI::axis_t::Y)) goto cannotmove;
  675. break;
  676. case VP_MOVE_Z:
  677. DEBUG_ECHOLNPGM("Z Move");
  678. axiscode = 'Z';
  679. speed = 300; // default to 5mm/s
  680. if (!ExtUI::canMove(ExtUI::axis_t::Z)) goto cannotmove;
  681. break;
  682. case VP_MOTOR_LOCK_UNLOK:
  683. DEBUG_ECHOLNPGM("Motor Unlock");
  684. movevalue = 5;
  685. axiscode = '\0';
  686. // return ;
  687. break;
  688. case VP_HOME_ALL: // only used for homing
  689. DEBUG_ECHOLNPGM("Home all");
  690. axiscode = '\0';
  691. movevalue = 0; // ignore value sent from display, this VP is _ONLY_ for homing.
  692. //return;
  693. break;
  694. case VP_X_HOME:
  695. DEBUG_ECHOLNPGM("X Home");
  696. axiscode = 'X';
  697. movevalue = 0;
  698. break;
  699. case VP_Y_HOME:
  700. DEBUG_ECHOLNPGM("Y Home");
  701. axiscode = 'Y';
  702. movevalue = 0;
  703. break;
  704. case VP_Z_HOME:
  705. DEBUG_ECHOLNPGM("Z Home");
  706. axiscode = 'Z';
  707. movevalue = 0;
  708. break;
  709. }
  710. DEBUG_ECHOPAIR("movevalue = ", movevalue);
  711. if (movevalue != 0 && movevalue != 5) { // get move distance
  712. switch (movevalue) {
  713. case 0x0001: movevalue = manualMoveStep; break;
  714. case 0x0002: movevalue = -manualMoveStep; break;
  715. default: movevalue = 0; break;
  716. }
  717. }
  718. if (!movevalue) {
  719. // homing
  720. DEBUG_ECHOPAIR(" homing ", AS_CHAR(axiscode));
  721. // char buf[6] = "G28 X";
  722. // buf[4] = axiscode;
  723. char buf[6];
  724. sprintf(buf, "G28 %c", axiscode);
  725. //DEBUG_ECHOPAIR(" ", buf);
  726. queue.enqueue_one_now(buf);
  727. //DEBUG_ECHOLNPGM(" ✓");
  728. ForceCompleteUpdate();
  729. return;
  730. }
  731. else if (movevalue == 5) {
  732. DEBUG_ECHOPAIR("send M84");
  733. char buf[6];
  734. snprintf_P(buf,6,PSTR("M84 %c"), axiscode);
  735. queue.enqueue_one_now(buf);
  736. ForceCompleteUpdate();
  737. return;
  738. }
  739. else {
  740. // movement
  741. DEBUG_ECHOPAIR(" move ", AS_CHAR(axiscode));
  742. bool old_relative_mode = relative_mode;
  743. if (!relative_mode) {
  744. //DEBUG_ECHOPGM(" G91");
  745. queue.enqueue_now_P(PSTR("G91"));
  746. //DEBUG_ECHOPGM(" ✓ ");
  747. }
  748. char buf[32]; // G1 X9999.99 F12345
  749. // unsigned int backup_speed = MMS_TO_MMM(feedrate_mm_s);
  750. char sign[] = "\0";
  751. int16_t value = movevalue / 100;
  752. if (movevalue < 0) { value = -value; sign[0] = '-'; }
  753. int16_t fraction = ABS(movevalue) % 100;
  754. snprintf_P(buf, 32, PSTR("G0 %c%s%d.%02d F%d"), axiscode, sign, value, fraction, speed);
  755. queue.enqueue_one_now(buf);
  756. //if (backup_speed != speed) {
  757. // snprintf_P(buf, 32, PSTR("G0 F%d"), backup_speed);
  758. // queue.enqueue_one_now(buf);
  759. // //DEBUG_ECHOPAIR(" ", buf);
  760. //}
  761. //while (!enqueue_and_echo_command(buf)) idle();
  762. //DEBUG_ECHOLNPGM(" ✓ ");
  763. if (!old_relative_mode) {
  764. //DEBUG_ECHOPGM("G90");
  765. //queue.enqueue_now_P(PSTR("G90"));
  766. queue.enqueue_now_P(PSTR("G90"));
  767. //DEBUG_ECHOPGM(" ✓ ");
  768. }
  769. }
  770. ForceCompleteUpdate();
  771. DEBUG_ECHOLNPGM("manmv done.");
  772. return;
  773. cannotmove:
  774. DEBUG_ECHOLNPAIR(" cannot move ", AS_CHAR(axiscode));
  775. return;
  776. }
  777. void DGUSScreenHandler::GetParkPos_MKS(DGUS_VP_Variable &var, void *val_ptr) {
  778. const int16_t value_pos = swap16(*(int16_t*)val_ptr);
  779. switch (var.VP) {
  780. case VP_X_PARK_POS: mks_park_pos.x = value_pos; break;
  781. case VP_Y_PARK_POS: mks_park_pos.y = value_pos; break;
  782. case VP_Z_PARK_POS: mks_park_pos.z = value_pos; break;
  783. default: break;
  784. }
  785. skipVP = var.VP; // don't overwrite value the next update time as the display might autoincrement in parallel
  786. }
  787. void DGUSScreenHandler::HandleChangeLevelPoint_MKS(DGUS_VP_Variable &var, void *val_ptr) {
  788. DEBUG_ECHOLNPGM("HandleChangeLevelPoint_MKS");
  789. const int16_t value_raw = swap16(*(int16_t*)val_ptr);
  790. DEBUG_ECHOLNPAIR_F("value_raw:", value_raw);
  791. *(int16_t*)var.memadr = value_raw;
  792. settings.save();
  793. skipVP = var.VP; // don't overwrite value the next update time as the display might autoincrement in parallel
  794. }
  795. void DGUSScreenHandler::HandleStepPerMMChanged_MKS(DGUS_VP_Variable &var, void *val_ptr) {
  796. DEBUG_ECHOLNPGM("HandleStepPerMMChanged_MKS");
  797. const uint16_t value_raw = swap16(*(uint16_t*)val_ptr);
  798. const float value = (float)value_raw;
  799. DEBUG_ECHOLNPAIR("value_raw:", value_raw);
  800. DEBUG_ECHOLNPAIR_F("value:", value);
  801. ExtUI::axis_t axis;
  802. switch (var.VP) {
  803. default: return;
  804. case VP_X_STEP_PER_MM: axis = ExtUI::axis_t::X; break;
  805. case VP_Y_STEP_PER_MM: axis = ExtUI::axis_t::Y; break;
  806. case VP_Z_STEP_PER_MM: axis = ExtUI::axis_t::Z; break;
  807. }
  808. ExtUI::setAxisSteps_per_mm(value, axis);
  809. DEBUG_ECHOLNPAIR_F("value_set:", ExtUI::getAxisSteps_per_mm(axis));
  810. settings.save();
  811. skipVP = var.VP; // don't overwrite value the next update time as the display might autoincrement in parallel
  812. }
  813. void DGUSScreenHandler::HandleStepPerMMExtruderChanged_MKS(DGUS_VP_Variable &var, void *val_ptr) {
  814. DEBUG_ECHOLNPGM("HandleStepPerMMExtruderChanged_MKS");
  815. const uint16_t value_raw = swap16(*(uint16_t*)val_ptr);
  816. const float value = (float)value_raw;
  817. DEBUG_ECHOLNPAIR("value_raw:", value_raw);
  818. DEBUG_ECHOLNPAIR_F("value:", value);
  819. ExtUI::extruder_t extruder;
  820. switch (var.VP) {
  821. default: return;
  822. #if HAS_HOTEND
  823. case VP_E0_STEP_PER_MM: extruder = ExtUI::extruder_t::E0; break;
  824. #endif
  825. #if HAS_MULTI_HOTEND
  826. case VP_E1_STEP_PER_MM: extruder = ExtUI::extruder_t::E1; break;
  827. #endif
  828. }
  829. ExtUI::setAxisSteps_per_mm(value, extruder);
  830. DEBUG_ECHOLNPAIR_F("value_set:", ExtUI::getAxisSteps_per_mm(extruder));
  831. settings.save();
  832. skipVP = var.VP; // don't overwrite value the next update time as the display might autoincrement in parallel
  833. }
  834. void DGUSScreenHandler::HandleMaxSpeedChange_MKS(DGUS_VP_Variable &var, void *val_ptr) {
  835. DEBUG_ECHOLNPGM("HandleMaxSpeedChange_MKS");
  836. const uint16_t value_raw = swap16(*(uint16_t*)val_ptr);
  837. const float value = (float)value_raw;
  838. DEBUG_ECHOLNPAIR("value_raw:", value_raw);
  839. DEBUG_ECHOLNPAIR_F("value:", value);
  840. ExtUI::axis_t axis;
  841. switch (var.VP) {
  842. case VP_X_MAX_SPEED: axis = ExtUI::axis_t::X; break;
  843. case VP_Y_MAX_SPEED: axis = ExtUI::axis_t::Y; break;
  844. case VP_Z_MAX_SPEED: axis = ExtUI::axis_t::Z; break;
  845. default: return;
  846. }
  847. ExtUI::setAxisMaxFeedrate_mm_s(value, axis);
  848. DEBUG_ECHOLNPAIR_F("value_set:", ExtUI::getAxisMaxFeedrate_mm_s(axis));
  849. settings.save();
  850. skipVP = var.VP; // don't overwrite value the next update time as the display might autoincrement in parallel
  851. }
  852. void DGUSScreenHandler::HandleExtruderMaxSpeedChange_MKS(DGUS_VP_Variable &var, void *val_ptr) {
  853. DEBUG_ECHOLNPGM("HandleExtruderMaxSpeedChange_MKS");
  854. const uint16_t value_raw = swap16(*(uint16_t*)val_ptr);
  855. const float value = (float)value_raw;
  856. DEBUG_ECHOLNPAIR("value_raw:", value_raw);
  857. DEBUG_ECHOLNPAIR_F("value:", value);
  858. ExtUI::extruder_t extruder;
  859. switch (var.VP) {
  860. default: return;
  861. #if HAS_HOTEND
  862. case VP_E0_MAX_SPEED: extruder = ExtUI::extruder_t::E0; break;
  863. #endif
  864. #if HAS_MULTI_HOTEND
  865. #endif
  866. case VP_E1_MAX_SPEED: extruder = ExtUI::extruder_t::E1; break;
  867. }
  868. ExtUI::setAxisMaxFeedrate_mm_s(value, extruder);
  869. DEBUG_ECHOLNPAIR_F("value_set:", ExtUI::getAxisMaxFeedrate_mm_s(extruder));
  870. settings.save();
  871. skipVP = var.VP; // don't overwrite value the next update time as the display might autoincrement in parallel
  872. }
  873. void DGUSScreenHandler::HandleMaxAccChange_MKS(DGUS_VP_Variable &var, void *val_ptr) {
  874. DEBUG_ECHOLNPGM("HandleMaxAccChange_MKS");
  875. const uint16_t value_raw = swap16(*(uint16_t*)val_ptr);
  876. const float value = (float)value_raw;
  877. DEBUG_ECHOLNPAIR("value_raw:", value_raw);
  878. DEBUG_ECHOLNPAIR_F("value:", value);
  879. ExtUI::axis_t axis;
  880. switch (var.VP) {
  881. default: return;
  882. case VP_X_ACC_MAX_SPEED: axis = ExtUI::axis_t::X; break;
  883. case VP_Y_ACC_MAX_SPEED: axis = ExtUI::axis_t::Y; break;
  884. case VP_Z_ACC_MAX_SPEED: axis = ExtUI::axis_t::Z; break;
  885. }
  886. ExtUI::setAxisMaxAcceleration_mm_s2(value, axis);
  887. DEBUG_ECHOLNPAIR_F("value_set:", ExtUI::getAxisMaxAcceleration_mm_s2(axis));
  888. settings.save();
  889. skipVP = var.VP; // don't overwrite value the next update time as the display might autoincrement in parallel
  890. }
  891. void DGUSScreenHandler::HandleExtruderAccChange_MKS(DGUS_VP_Variable &var, void *val_ptr) {
  892. DEBUG_ECHOLNPGM("HandleExtruderAccChange_MKS");
  893. uint16_t value_raw = swap16(*(uint16_t*)val_ptr);
  894. DEBUG_ECHOLNPAIR("value_raw:", value_raw);
  895. float value = (float)value_raw;
  896. ExtUI::extruder_t extruder;
  897. switch (var.VP) {
  898. default: return;
  899. #if HAS_HOTEND
  900. case VP_E0_ACC_MAX_SPEED: extruder = ExtUI::extruder_t::E0; settings.load(); break;
  901. #endif
  902. #if HAS_MULTI_HOTEND
  903. case VP_E1_ACC_MAX_SPEED: extruder = ExtUI::extruder_t::E1; settings.load(); break;
  904. #endif
  905. }
  906. DEBUG_ECHOLNPAIR_F("value:", value);
  907. ExtUI::setAxisMaxAcceleration_mm_s2(value, extruder);
  908. DEBUG_ECHOLNPAIR_F("value_set:", ExtUI::getAxisMaxAcceleration_mm_s2(extruder));
  909. settings.save();
  910. skipVP = var.VP; // don't overwrite value the next update time as the display might autoincrement in parallel
  911. }
  912. void DGUSScreenHandler::HandleTravelAccChange_MKS(DGUS_VP_Variable &var, void *val_ptr) {
  913. uint16_t value_travel = swap16(*(uint16_t*)val_ptr);
  914. planner.settings.travel_acceleration = (float)value_travel;
  915. skipVP = var.VP; // don't overwrite value the next update time as the display might autoincrement in parallel
  916. }
  917. void DGUSScreenHandler::HandleFeedRateMinChange_MKS(DGUS_VP_Variable &var, void *val_ptr) {
  918. uint16_t value_t = swap16(*(uint16_t*)val_ptr);
  919. planner.settings.min_feedrate_mm_s = (float)value_t;
  920. skipVP = var.VP; // don't overwrite value the next update time as the display might autoincrement in parallel
  921. }
  922. void DGUSScreenHandler::HandleMin_T_F_MKS(DGUS_VP_Variable &var, void *val_ptr) {
  923. uint16_t value_t_f = swap16(*(uint16_t*)val_ptr);
  924. planner.settings.min_travel_feedrate_mm_s = (float)value_t_f;
  925. skipVP = var.VP; // don't overwrite value the next update time as the display might autoincrement in parallel
  926. }
  927. void DGUSScreenHandler::HandleAccChange_MKS(DGUS_VP_Variable &var, void *val_ptr) {
  928. uint16_t value_acc = swap16(*(uint16_t*)val_ptr);
  929. planner.settings.acceleration = (float)value_acc;
  930. skipVP = var.VP; // don't overwrite value the next update time as the display might autoincrement in parallel
  931. }
  932. void DGUSScreenHandler::HandleGetExMinTemp_MKS(DGUS_VP_Variable &var, void *val_ptr) {
  933. const uint16_t value_ex_min_temp = swap16(*(uint16_t*)val_ptr);
  934. thermalManager.extrude_min_temp = value_ex_min_temp;
  935. skipVP = var.VP; // don't overwrite value the next update time as the display might autoincrement in parallel
  936. }
  937. #if HAS_PID_HEATING
  938. void DGUSScreenHandler::HandleTemperaturePIDChanged(DGUS_VP_Variable &var, void *val_ptr) {
  939. const uint16_t rawvalue = swap16(*(uint16_t*)val_ptr);
  940. DEBUG_ECHOLNPAIR("V1:", rawvalue);
  941. const float value = 1.0f * rawvalue;
  942. DEBUG_ECHOLNPAIR("V2:", value);
  943. float newvalue = 0;
  944. switch (var.VP) {
  945. default: return;
  946. #if HAS_HOTEND
  947. case VP_E0_PID_P: newvalue = value; break;
  948. case VP_E0_PID_I: newvalue = scalePID_i(value); break;
  949. case VP_E0_PID_D: newvalue = scalePID_d(value); break;
  950. #endif
  951. #if HAS_MULTI_HOTEND
  952. case VP_E1_PID_P: newvalue = value; break;
  953. case VP_E1_PID_I: newvalue = scalePID_i(value); break;
  954. case VP_E1_PID_D: newvalue = scalePID_d(value); break;
  955. #endif
  956. #if HAS_HEATED_BED
  957. case VP_BED_PID_P: newvalue = value; break;
  958. case VP_BED_PID_I: newvalue = scalePID_i(value); break;
  959. case VP_BED_PID_D: newvalue = scalePID_d(value); break;
  960. #endif
  961. }
  962. DEBUG_ECHOLNPAIR_F("V3:", newvalue);
  963. *(float *)var.memadr = newvalue;
  964. settings.save();
  965. skipVP = var.VP; // don't overwrite value the next update time as the display might autoincrement in parallel
  966. }
  967. #endif // HAS_PID_HEATING
  968. #if ENABLED(BABYSTEPPING)
  969. void DGUSScreenHandler::HandleLiveAdjustZ(DGUS_VP_Variable &var, void *val_ptr) {
  970. DEBUG_ECHOLNPGM("HandleLiveAdjustZ");
  971. char babystep_buf[30];
  972. float step = ZOffset_distance;
  973. uint16_t flag = swap16(*(uint16_t*)val_ptr);
  974. switch (flag) {
  975. case 0:
  976. if (step == 0.01)
  977. queue.inject_P(PSTR("M290 Z-0.01"));
  978. else if (step == 0.1)
  979. queue.inject_P(PSTR("M290 Z-0.1"));
  980. else if (step == 0.5)
  981. queue.inject_P(PSTR("M290 Z-0.5"));
  982. else if (step == 1)
  983. queue.inject_P(PSTR("M290 Z-1"));
  984. else
  985. queue.inject_P(PSTR("M290 Z-0.01"));
  986. z_offset_add = z_offset_add - ZOffset_distance;
  987. break;
  988. case 1:
  989. if (step == 0.01)
  990. queue.inject_P(PSTR("M290 Z0.01"));
  991. else if (step == 0.1)
  992. queue.inject_P(PSTR("M290 Z0.1"));
  993. else if (step == 0.5)
  994. queue.inject_P(PSTR("M290 Z0.5"));
  995. else if (step == 1)
  996. queue.inject_P(PSTR("M290 Z1"));
  997. else
  998. queue.inject_P(PSTR("M290 Z-0.01"));
  999. z_offset_add = z_offset_add + ZOffset_distance;
  1000. break;
  1001. default:
  1002. break;
  1003. }
  1004. ForceCompleteUpdate();
  1005. }
  1006. #endif // BABYSTEPPING
  1007. void DGUSScreenHandler::GetManualFilament(DGUS_VP_Variable &var, void *val_ptr) {
  1008. DEBUG_ECHOLNPGM("GetManualFilament");
  1009. uint16_t value_len = swap16(*(uint16_t*)val_ptr);
  1010. float value = (float)value_len;
  1011. DEBUG_ECHOLNPAIR_F("Get Filament len value:", value);
  1012. distanceFilament = value;
  1013. skipVP = var.VP; // don't overwrite value the next update time as the display might autoincrement in parallel
  1014. }
  1015. void DGUSScreenHandler::GetManualFilamentSpeed(DGUS_VP_Variable &var, void *val_ptr) {
  1016. DEBUG_ECHOLNPGM("GetManualFilamentSpeed");
  1017. uint16_t value_len = swap16(*(uint16_t*)val_ptr);
  1018. DEBUG_ECHOLNPAIR_F("filamentSpeed_mm_s value:", value_len);
  1019. filamentSpeed_mm_s = value_len;
  1020. skipVP = var.VP; // don't overwrite value the next update time as the display might autoincrement in parallel
  1021. }
  1022. void DGUSScreenHandler::MKS_FilamentLoadUnload(DGUS_VP_Variable &var, void *val_ptr, const int filamentDir) {
  1023. #if EITHER(HAS_MULTI_HOTEND, SINGLENOZZLE)
  1024. uint8_t swap_tool = 0;
  1025. #else
  1026. constexpr uint8_t swap_tool = 1; // T0 (or none at all)
  1027. #endif
  1028. #if HAS_HOTEND
  1029. uint8_t hotend_too_cold = 0;
  1030. #endif
  1031. if (!print_job_timer.isPaused() && !queue.ring_buffer.empty())
  1032. return;
  1033. const uint16_t val_t = swap16(*(uint16_t*)val_ptr);
  1034. switch (val_t) {
  1035. default: break;
  1036. case 0:
  1037. #if HAS_HOTEND
  1038. if (thermalManager.tooColdToExtrude(0))
  1039. hotend_too_cold = 1;
  1040. else {
  1041. #if EITHER(HAS_MULTI_HOTEND, SINGLENOZZLE)
  1042. swap_tool = 1;
  1043. #endif
  1044. }
  1045. #endif
  1046. break;
  1047. case 1:
  1048. #if HAS_MULTI_HOTEND
  1049. if (thermalManager.tooColdToExtrude(1)) hotend_too_cold = 2; else swap_tool = 2;
  1050. #elif ENABLED(SINGLENOZZLE)
  1051. if (thermalManager.tooColdToExtrude(0)) hotend_too_cold = 1; else swap_tool = 2;
  1052. #endif
  1053. break;
  1054. }
  1055. #if HAS_HOTEND
  1056. if (hotend_too_cold) {
  1057. if (thermalManager.targetTooColdToExtrude(hotend_too_cold - 1)) thermalManager.setTargetHotend(thermalManager.extrude_min_temp, hotend_too_cold - 1);
  1058. sendinfoscreen(PSTR("NOTICE"), nullptr, PSTR("Please wait."), PSTR("Nozzle heating!"), true, true, true, true);
  1059. SetupConfirmAction(nullptr);
  1060. GotoScreen(DGUSLCD_SCREEN_POPUP);
  1061. }
  1062. #endif
  1063. if (swap_tool) {
  1064. char buf[30];
  1065. snprintf_P(buf, 30
  1066. #if EITHER(HAS_MULTI_HOTEND, SINGLENOZZLE)
  1067. , PSTR("M1002T%cE%dF%d"), char('0' + swap_tool - 1)
  1068. #else
  1069. , PSTR("M1002E%dF%d")
  1070. #endif
  1071. , (int)distanceFilament * filamentDir, filamentSpeed_mm_s * 60
  1072. );
  1073. queue.inject(buf);
  1074. }
  1075. }
  1076. /**
  1077. * M1002: Do a tool-change and relative move for MKS_FilamentLoadUnload
  1078. * within the G-code execution window for best concurrency.
  1079. */
  1080. void GcodeSuite::M1002() {
  1081. #if EITHER(HAS_MULTI_HOTEND, SINGLENOZZLE)
  1082. {
  1083. char buf[3];
  1084. sprintf_P(buf, PSTR("T%c"), char('0' + parser.intval('T')));
  1085. process_subcommands_now(buf);
  1086. }
  1087. #endif
  1088. const uint8_t old_axis_relative = axis_relative;
  1089. set_e_relative(); // M83
  1090. {
  1091. char buf[20];
  1092. snprintf_P(buf, 20, PSTR("G1E%dF%d"), parser.intval('E'), parser.intval('F'));
  1093. process_subcommands_now(buf);
  1094. }
  1095. axis_relative = old_axis_relative;
  1096. }
  1097. void DGUSScreenHandler::MKS_FilamentLoad(DGUS_VP_Variable &var, void *val_ptr) {
  1098. DEBUG_ECHOLNPGM("MKS_FilamentLoad");
  1099. MKS_FilamentLoadUnload(var, val_ptr, 1);
  1100. }
  1101. void DGUSScreenHandler::MKS_FilamentUnLoad(DGUS_VP_Variable &var, void *val_ptr) {
  1102. DEBUG_ECHOLNPGM("MKS_FilamentUnLoad");
  1103. MKS_FilamentLoadUnload(var, val_ptr, -1);
  1104. }
  1105. #if ENABLED(DGUS_FILAMENT_LOADUNLOAD)
  1106. void DGUSScreenHandler::HandleFilamentOption(DGUS_VP_Variable &var, void *val_ptr) {
  1107. DEBUG_ECHOLNPGM("HandleFilamentOption");
  1108. uint8_t e_temp = 0;
  1109. filament_data.heated = false;
  1110. uint16_t preheat_option = swap16(*(uint16_t*)val_ptr);
  1111. if (preheat_option >= 10) { // Unload filament type
  1112. preheat_option -= 10;
  1113. filament_data.action = 2;
  1114. filament_data.purge_length = DGUS_FILAMENT_PURGE_LENGTH;
  1115. }
  1116. else if (preheat_option <= 8) // Load filament type
  1117. filament_data.action = 1;
  1118. else // Cancel filament operation
  1119. filament_data.action = 0;
  1120. switch (preheat_option) {
  1121. case 0: // Load PLA
  1122. #ifdef PREHEAT_1_TEMP_HOTEND
  1123. e_temp = PREHEAT_1_TEMP_HOTEND;
  1124. #endif
  1125. break;
  1126. case 1: // Load ABS
  1127. TERN_(PREHEAT_2_TEMP_HOTEND, e_temp = PREHEAT_2_TEMP_HOTEND);
  1128. break;
  1129. case 2: // Load PET
  1130. #ifdef PREHEAT_3_TEMP_HOTEND
  1131. e_temp = PREHEAT_3_TEMP_HOTEND;
  1132. #endif
  1133. break;
  1134. case 3: // Load FLEX
  1135. #ifdef PREHEAT_4_TEMP_HOTEND
  1136. e_temp = PREHEAT_4_TEMP_HOTEND;
  1137. #endif
  1138. break;
  1139. case 9: // Cool down
  1140. default:
  1141. e_temp = 0;
  1142. break;
  1143. }
  1144. if (filament_data.action == 0) { // Go back to utility screen
  1145. #if HAS_HOTEND
  1146. thermalManager.setTargetHotend(e_temp, ExtUI::extruder_t::E0);
  1147. #endif
  1148. #if HAS_MULTI_HOTEND
  1149. thermalManager.setTargetHotend(e_temp, ExtUI::extruder_t::E1);
  1150. #endif
  1151. GotoScreen(DGUSLCD_SCREEN_UTILITY);
  1152. }
  1153. else { // Go to the preheat screen to show the heating progress
  1154. switch (var.VP) {
  1155. default: return;
  1156. #if HAS_HOTEND
  1157. case VP_E0_FILAMENT_LOAD_UNLOAD:
  1158. filament_data.extruder = ExtUI::extruder_t::E0;
  1159. thermalManager.setTargetHotend(e_temp, filament_data.extruder);
  1160. break;
  1161. #endif
  1162. #if HAS_MULTI_HOTEND
  1163. case VP_E1_FILAMENT_LOAD_UNLOAD:
  1164. filament_data.extruder = ExtUI::extruder_t::E1;
  1165. thermalManager.setTargetHotend(e_temp, filament_data.extruder);
  1166. break;
  1167. #endif
  1168. }
  1169. }
  1170. }
  1171. void DGUSScreenHandler::HandleFilamentLoadUnload(DGUS_VP_Variable &var) {
  1172. DEBUG_ECHOLNPGM("HandleFilamentLoadUnload");
  1173. if (filament_data.action <= 0) return;
  1174. // If we close to the target temperature, we can start load or unload the filament
  1175. if (thermalManager.hotEnoughToExtrude(filament_data.extruder) && \
  1176. thermalManager.targetHotEnoughToExtrude(filament_data.extruder)) {
  1177. float movevalue = DGUS_FILAMENT_LOAD_LENGTH_PER_TIME;
  1178. if (filament_data.action == 1) { // load filament
  1179. if (!filament_data.heated) {
  1180. filament_data.heated = true;
  1181. }
  1182. movevalue = ExtUI::getAxisPosition_mm(filament_data.extruder) + movevalue;
  1183. }
  1184. else { // unload filament
  1185. if (!filament_data.heated) {
  1186. GotoScreen(DGUSLCD_SCREEN_FILAMENT_UNLOADING);
  1187. filament_data.heated = true;
  1188. }
  1189. // Before unloading extrude to prevent jamming
  1190. if (filament_data.purge_length >= 0) {
  1191. movevalue = ExtUI::getAxisPosition_mm(filament_data.extruder) + movevalue;
  1192. filament_data.purge_length -= movevalue;
  1193. }
  1194. else {
  1195. movevalue = ExtUI::getAxisPosition_mm(filament_data.extruder) - movevalue;
  1196. }
  1197. }
  1198. ExtUI::setAxisPosition_mm(movevalue, filament_data.extruder);
  1199. }
  1200. }
  1201. #endif // DGUS_FILAMENT_LOADUNLOAD
  1202. bool DGUSScreenHandler::loop() {
  1203. dgusdisplay.loop();
  1204. const millis_t ms = millis();
  1205. static millis_t next_event_ms = 0;
  1206. static uint8_t language_times = 2;
  1207. if (!IsScreenComplete() || ELAPSED(ms, next_event_ms)) {
  1208. next_event_ms = ms + DGUS_UPDATE_INTERVAL_MS;
  1209. UpdateScreenVPData();
  1210. }
  1211. if (language_times != 0) {
  1212. LanguagePInit();
  1213. DGUS_LanguageDisplay(mks_language_index);
  1214. language_times--;
  1215. }
  1216. #if ENABLED(SHOW_BOOTSCREEN)
  1217. static bool booted = false;
  1218. if (!booted && ELAPSED(ms, TERN(USE_MKS_GREEN_UI, 1000, BOOTSCREEN_TIMEOUT))) {
  1219. booted = true;
  1220. #if USE_SENSORLESS
  1221. #if AXIS_HAS_STEALTHCHOP(X)
  1222. tmc_step.x = stepperX.homing_threshold();
  1223. #endif
  1224. #if AXIS_HAS_STEALTHCHOP(Y)
  1225. tmc_step.y = stepperY.homing_threshold();
  1226. #endif
  1227. #if AXIS_HAS_STEALTHCHOP(Z)
  1228. tmc_step.z = stepperZ.homing_threshold();
  1229. #endif
  1230. #endif
  1231. if (mks_min_extrusion_temp != 0)
  1232. thermalManager.extrude_min_temp = mks_min_extrusion_temp;
  1233. DGUS_ExtrudeLoadInit();
  1234. TERN_(DGUS_MKS_RUNOUT_SENSOR, DGUS_RunoutInit());
  1235. if (TERN0(POWER_LOSS_RECOVERY, recovery.valid()))
  1236. GotoScreen(DGUSLCD_SCREEN_POWER_LOSS);
  1237. else
  1238. GotoScreen(DGUSLCD_SCREEN_MAIN);
  1239. }
  1240. #if ENABLED(DGUS_MKS_RUNOUT_SENSOR)
  1241. if (booted && (IS_SD_PRINTING() || IS_SD_PAUSED()))
  1242. DGUS_Runout_Idle();
  1243. #endif
  1244. #endif // SHOW_BOOTSCREEN
  1245. return IsScreenComplete();
  1246. }
  1247. void DGUSScreenHandler::LanguagePInit() {
  1248. switch (mks_language_index) {
  1249. case MKS_SimpleChinese:
  1250. dgusdisplay.MKS_WriteVariable(VP_LANGUAGE_CHANGE1, MKS_Language_Choose);
  1251. dgusdisplay.MKS_WriteVariable(VP_LANGUAGE_CHANGE2, MKS_Language_NoChoose);
  1252. break;
  1253. case MKS_English:
  1254. dgusdisplay.MKS_WriteVariable(VP_LANGUAGE_CHANGE1, MKS_Language_NoChoose);
  1255. dgusdisplay.MKS_WriteVariable(VP_LANGUAGE_CHANGE2, MKS_Language_Choose);
  1256. break;
  1257. default:
  1258. break;
  1259. }
  1260. }
  1261. void DGUSScreenHandler::DGUS_ExtrudeLoadInit(void) {
  1262. ex_filament.ex_length = distanceFilament;
  1263. ex_filament.ex_load_unload_flag = 0;
  1264. ex_filament.ex_need_time = filamentSpeed_mm_s;
  1265. ex_filament.ex_speed = 0;
  1266. ex_filament.ex_status = EX_NONE;
  1267. ex_filament.ex_tick_end = 0;
  1268. ex_filament.ex_tick_start = 0;
  1269. }
  1270. void DGUSScreenHandler::DGUS_RunoutInit(void) {
  1271. #if PIN_EXISTS(MT_DET_1)
  1272. pinMode(MT_DET_1_PIN, INPUT_PULLUP);
  1273. #endif
  1274. runout_mks.de_count = 0;
  1275. runout_mks.de_times = 10;
  1276. runout_mks.pin_status = 1;
  1277. runout_mks.runout_status = UNRUNOUT_STATUS;
  1278. }
  1279. void DGUSScreenHandler::DGUS_Runout_Idle(void) {
  1280. #if ENABLED(DGUS_MKS_RUNOUT_SENSOR)
  1281. // scanf runout pin
  1282. switch (runout_mks.runout_status) {
  1283. case RUNOUT_STATUS:
  1284. runout_mks.runout_status = RUNOUT_BEGIN_STATUS;
  1285. queue.inject_P(PSTR("M25"));
  1286. GotoScreen(MKSLCD_SCREEN_PAUSE);
  1287. sendinfoscreen(PSTR("NOTICE"), nullptr, PSTR("Please change filament!"), nullptr, true, true, true, true);
  1288. // SetupConfirmAction(nullptr);
  1289. GotoScreen(DGUSLCD_SCREEN_POPUP);
  1290. break;
  1291. case UNRUNOUT_STATUS:
  1292. if (READ(MT_DET_1_PIN) == LOW)
  1293. runout_mks.runout_status = RUNOUT_STATUS;
  1294. break;
  1295. case RUNOUT_BEGIN_STATUS:
  1296. if (READ(MT_DET_1_PIN) == HIGH)
  1297. runout_mks.runout_status = RUNOUT_WAITTING_STATUS;
  1298. break;
  1299. case RUNOUT_WAITTING_STATUS:
  1300. if (READ(MT_DET_1_PIN) == LOW)
  1301. runout_mks.runout_status = RUNOUT_BEGIN_STATUS;
  1302. break;
  1303. default: break;
  1304. }
  1305. #endif
  1306. }
  1307. void DGUSScreenHandler::DGUS_LanguageDisplay(uint8_t var) {
  1308. if (var == MKS_English) {
  1309. const char home_buf_en[] = "Home";
  1310. dgusdisplay.WriteVariable(VP_HOME_Dis, home_buf_en, 32, true);
  1311. const char setting_buf_en[] = "Setting";
  1312. dgusdisplay.WriteVariable(VP_Setting_Dis, setting_buf_en, 32, true);
  1313. const char Tool_buf_en[] = "Tool";
  1314. dgusdisplay.WriteVariable(VP_Tool_Dis, Tool_buf_en, 32, true);
  1315. const char Print_buf_en[] = "Print";
  1316. dgusdisplay.WriteVariable(VP_Print_Dis, Print_buf_en, 32, true);
  1317. const char Language_buf_en[] = "Language";
  1318. dgusdisplay.WriteVariable(VP_Language_Dis, Language_buf_en, 32, true);
  1319. const char About_buf_en[] = "About";
  1320. dgusdisplay.WriteVariable(VP_About_Dis, About_buf_en, 32, true);
  1321. const char Config_buf_en[] = "Config";
  1322. dgusdisplay.WriteVariable(VP_Config_Dis, Config_buf_en, 32, true);
  1323. const char MotorConfig_buf_en[] = "MotorConfig";
  1324. dgusdisplay.WriteVariable(VP_MotorConfig_Dis, MotorConfig_buf_en, 32, true);
  1325. const char LevelConfig_buf_en[] = "LevelConfig";
  1326. dgusdisplay.WriteVariable(VP_LevelConfig_Dis, LevelConfig_buf_en, 32, true);
  1327. const char TemperatureConfig_buf_en[] = "Temperature";
  1328. dgusdisplay.WriteVariable(VP_TemperatureConfig_Dis, TemperatureConfig_buf_en, 32, true);
  1329. const char Advance_buf_en[] = "Advance";
  1330. dgusdisplay.WriteVariable(VP_Advance_Dis, Advance_buf_en, 32, true);
  1331. const char Filament_buf_en[] = "Extrude";
  1332. dgusdisplay.WriteVariable(VP_Filament_Dis, Filament_buf_en, 32, true);
  1333. const char Move_buf_en[] = "Move";
  1334. dgusdisplay.WriteVariable(VP_Move_Dis, Move_buf_en, 32, true);
  1335. #if ENABLED(AUTO_BED_LEVELING_BILINEAR)
  1336. const char Level_buf_en[] = "AutoLevel";
  1337. dgusdisplay.WriteVariable(VP_Level_Dis, Level_buf_en, 32, true);
  1338. #elif ENABLED(MESH_BED_LEVELING)
  1339. const char Level_buf_en[] = "MeshLevel";
  1340. dgusdisplay.WriteVariable(VP_Level_Dis, Level_buf_en, 32, true);
  1341. #else
  1342. const char Level_buf_en[] = "Level";
  1343. dgusdisplay.WriteVariable(VP_Level_Dis, Level_buf_en, 32, true);
  1344. #endif
  1345. const char MotorPluse_buf_en[] = "MotorPluse";
  1346. dgusdisplay.WriteVariable(VP_MotorPluse_Dis, MotorPluse_buf_en, 32, true);
  1347. const char MotorMaxSpeed_buf_en[] = "MotorMaxSpeed";
  1348. dgusdisplay.WriteVariable(VP_MotorMaxSpeed_Dis, MotorMaxSpeed_buf_en, 32, true);
  1349. const char MotorMaxAcc_buf_en[] = "MotorAcc";
  1350. dgusdisplay.WriteVariable(VP_MotorMaxAcc_Dis, MotorMaxAcc_buf_en, 32, true);
  1351. const char TravelAcc_buf_en[] = "TravelAcc";
  1352. dgusdisplay.WriteVariable(VP_TravelAcc_Dis, TravelAcc_buf_en, 32, true);
  1353. const char FeedRateMin_buf_en[] = "FeedRateMin";
  1354. dgusdisplay.WriteVariable(VP_FeedRateMin_Dis, FeedRateMin_buf_en, 32, true);
  1355. const char TravelFeeRateMin_buf_en[] = "TravelFeedRateMin";
  1356. dgusdisplay.WriteVariable(VP_TravelFeeRateMin_Dis, TravelFeeRateMin_buf_en, 32, true);
  1357. const char Acc_buf_en[] = "Acc";
  1358. dgusdisplay.WriteVariable(VP_ACC_Dis, Acc_buf_en, 32, true);
  1359. const char Point_One_buf_en[] = "Point_First";
  1360. dgusdisplay.WriteVariable(VP_Point_One_Dis, Point_One_buf_en, 32, true);
  1361. const char Point_Two_buf_en[] = "Point_Second";
  1362. dgusdisplay.WriteVariable(VP_Point_Two_Dis, Point_Two_buf_en, 32, true);
  1363. const char Point_Three_buf_en[] = "Point_Third";
  1364. dgusdisplay.WriteVariable(VP_Point_Three_Dis, Point_Three_buf_en, 32, true);
  1365. const char Point_Four_buf_en[] = "Point_Fourth";
  1366. dgusdisplay.WriteVariable(VP_Point_Four_Dis, Point_Four_buf_en, 32, true);
  1367. const char Point_Five_buf_en[] = "Point_Fifth";
  1368. dgusdisplay.WriteVariable(VP_Point_Five_Dis, Point_Five_buf_en, 32, true);
  1369. const char Extrusion_buf_en[] = "Extrusion";
  1370. dgusdisplay.WriteVariable(VP_Extrusion_Dis, Extrusion_buf_en, 32, true);
  1371. const char HeatBed_buf_en[] = "HeatBed";
  1372. dgusdisplay.WriteVariable(VP_HeatBed_Dis, HeatBed_buf_en, 32, true);
  1373. const char FactoryDefaults_buf_en[] = "FactoryDefaults";
  1374. dgusdisplay.WriteVariable(VP_FactoryDefaults_Dis, FactoryDefaults_buf_en, 32, true);
  1375. const char StoreSetting_buf_en[] = "StoreSetting";
  1376. dgusdisplay.WriteVariable(VP_StoreSetting_Dis, StoreSetting_buf_en, 32, true);
  1377. const char PrintPauseConfig_buf_en[] = "PrintPauseConfig";
  1378. dgusdisplay.WriteVariable(VP_PrintPauseConfig_Dis, PrintPauseConfig_buf_en, 32, true);
  1379. const char X_Pluse_buf_en[] = "X_Pluse";
  1380. dgusdisplay.WriteVariable(VP_X_Pluse_Dis, X_Pluse_buf_en, 32, true);
  1381. const char Y_Pluse_buf_en[] = "Y_Pluse";
  1382. dgusdisplay.WriteVariable(VP_Y_Pluse_Dis, Y_Pluse_buf_en, 32, true);
  1383. const char Z_Pluse_buf_en[] = "Z_Pluse";
  1384. dgusdisplay.WriteVariable(VP_Z_Pluse_Dis, Z_Pluse_buf_en, 32, true);
  1385. const char E0_Pluse_buf_en[] = "E0_Pluse";
  1386. dgusdisplay.WriteVariable(VP_E0_Pluse_Dis, E0_Pluse_buf_en, 32, true);
  1387. const char E1_Pluse_buf_en[] = "E1_Pluse";
  1388. dgusdisplay.WriteVariable(VP_E1_Pluse_Dis, E1_Pluse_buf_en, 32, true);
  1389. const char X_Max_Speed_buf_en[] = "X_Max_Speed";
  1390. dgusdisplay.WriteVariable(VP_X_Max_Speed_Dis, X_Max_Speed_buf_en, 32, true);
  1391. const char Y_Max_Speed_buf_en[] = "Y_Max_Speed";
  1392. dgusdisplay.WriteVariable(VP_Y_Max_Speed_Dis, Y_Max_Speed_buf_en, 32, true);
  1393. const char Z_Max_Speed_buf_en[] = "Z_Max_Speed";
  1394. dgusdisplay.WriteVariable(VP_Z_Max_Speed_Dis, Z_Max_Speed_buf_en, 32, true);
  1395. const char E0_Max_Speed_buf_en[] = "E0_Max_Speed";
  1396. dgusdisplay.WriteVariable(VP_E0_Max_Speed_Dis, E0_Max_Speed_buf_en, 32, true);
  1397. const char E1_Max_Speed_buf_en[] = "E1_Max_Speed";
  1398. dgusdisplay.WriteVariable(VP_E1_Max_Speed_Dis, E1_Max_Speed_buf_en, 32, true);
  1399. const char X_Max_Acc_Speed_buf_en[] = "X_Max_Acc_Speed";
  1400. dgusdisplay.WriteVariable(VP_X_Max_Acc_Speed_Dis, X_Max_Acc_Speed_buf_en, 32, true);
  1401. const char Y_Max_Acc_Speed_buf_en[] = "Y_Max_Acc_Speed";
  1402. dgusdisplay.WriteVariable(VP_Y_Max_Acc_Speed_Dis, Y_Max_Acc_Speed_buf_en, 32, true);
  1403. const char Z_Max_Acc_Speed_buf_en[] = "Z_Max_Acc_Speed";
  1404. dgusdisplay.WriteVariable(VP_Z_Max_Acc_Speed_Dis, Z_Max_Acc_Speed_buf_en, 32, true);
  1405. const char E0_Max_Acc_Speed_buf_en[] = "E0_Max_Acc_Speed";
  1406. dgusdisplay.WriteVariable(VP_E0_Max_Acc_Speed_Dis, E0_Max_Acc_Speed_buf_en, 32, true);
  1407. const char E1_Max_Acc_Speed_buf_en[] = "E1_Max_Acc_Speed";
  1408. dgusdisplay.WriteVariable(VP_E1_Max_Acc_Speed_Dis, E1_Max_Acc_Speed_buf_en, 32, true);
  1409. const char X_PARK_POS_buf_en[] = "X_PARK_POS";
  1410. dgusdisplay.WriteVariable(VP_X_PARK_POS_Dis, X_PARK_POS_buf_en, 32, true);
  1411. const char Y_PARK_POS_buf_en[] = "Y_PARK_POS";
  1412. dgusdisplay.WriteVariable(VP_Y_PARK_POS_Dis, Y_PARK_POS_buf_en, 32, true);
  1413. const char Z_PARK_POS_buf_en[] = "Z_PARK_POS";
  1414. dgusdisplay.WriteVariable(VP_Z_PARK_POS_Dis, Z_PARK_POS_buf_en, 32, true);
  1415. const char Length_buf_en[] = "Length";
  1416. dgusdisplay.WriteVariable(VP_Length_Dis, Length_buf_en, 32, true);
  1417. const char Speed_buf_en[] = "Speed";
  1418. dgusdisplay.WriteVariable(VP_Speed_Dis, Speed_buf_en, 32, true);
  1419. const char InOut_buf_en[] = "InOut";
  1420. dgusdisplay.WriteVariable(VP_InOut_Dis, InOut_buf_en, 32, true);
  1421. const char PrintTimet_buf_en[] = "PrintTime";
  1422. dgusdisplay.WriteVariable(VP_PrintTime_Dis, PrintTimet_buf_en, 32, true);
  1423. const char E0_Temp_buf_en[] = "E0_Temp";
  1424. dgusdisplay.WriteVariable(VP_E0_Temp_Dis, E0_Temp_buf_en, 32, true);
  1425. const char E1_Temp_buf_en[] = "E1_Temp";
  1426. dgusdisplay.WriteVariable(VP_E1_Temp_Dis, E1_Temp_buf_en, 32, true);
  1427. const char HB_Temp_buf_en[] = "HB_Temp";
  1428. dgusdisplay.WriteVariable(VP_HB_Temp_Dis, HB_Temp_buf_en, 32, true);
  1429. const char Feedrate_buf_en[] = "Feedrate";
  1430. dgusdisplay.WriteVariable(VP_Feedrate_Dis, Feedrate_buf_en, 32, true);
  1431. const char PrintAcc_buf_en[] = "PrintSpeed";
  1432. dgusdisplay.WriteVariable(VP_PrintAcc_Dis, PrintAcc_buf_en, 32, true);
  1433. const char FAN_Speed_buf_en[] = "FAN_Speed";
  1434. dgusdisplay.WriteVariable(VP_Fan_Speed_Dis, FAN_Speed_buf_en, 32, true);
  1435. const char Printing_buf_en[] = "Printing";
  1436. dgusdisplay.WriteVariable(VP_Printing_Dis, Printing_buf_en, 32, true);
  1437. const char Info_EEPROM_1_buf_en[] = "Store setting?";
  1438. dgusdisplay.WriteVariable(VP_Info_EEPROM_1_Dis, Info_EEPROM_1_buf_en, 32, true);
  1439. const char Info_EEPROM_2_buf_en[] = "Revert setting?";
  1440. dgusdisplay.WriteVariable(VP_Info_EEPROM_2_Dis, Info_EEPROM_2_buf_en, 32, true);
  1441. const char Info_PrinfFinsh_1_buf_en[] = "Print Done";
  1442. dgusdisplay.WriteVariable(VP_Info_PrinfFinsh_1_Dis, Info_PrinfFinsh_1_buf_en, 32, true);
  1443. const char TMC_X_Step_buf_en[] = "X_SenSitivity";
  1444. dgusdisplay.WriteVariable(VP_TMC_X_Step_Dis, TMC_X_Step_buf_en, 32, true);
  1445. const char TMC_Y_Step_buf_en[] = "Y_SenSitivity";
  1446. dgusdisplay.WriteVariable(VP_TMC_Y_Step_Dis, TMC_Y_Step_buf_en, 32, true);
  1447. const char TMC_Z_Step_buf_en[] = "Z_SenSitivity";
  1448. dgusdisplay.WriteVariable(VP_TMC_Z_Step_Dis, TMC_Z_Step_buf_en, 32, true);
  1449. const char TMC_X_Current_buf_en[] = "X_Current";
  1450. dgusdisplay.WriteVariable(VP_TMC_X_Current_Dis, TMC_X_Current_buf_en, 32, true);
  1451. const char TMC_Y_Current_buf_en[] = "Y_Current";
  1452. dgusdisplay.WriteVariable(VP_TMC_Y_Current_Dis, TMC_Y_Current_buf_en, 32, true);
  1453. const char TMC_Z_Current_buf_en[] = "Z_Current";
  1454. dgusdisplay.WriteVariable(VP_TMC_Z_Current_Dis, TMC_Z_Current_buf_en, 32, true);
  1455. const char TMC_E0_Current_buf_en[] = "E0_Current";
  1456. dgusdisplay.WriteVariable(VP_TMC_E0_Current_Dis, TMC_E0_Current_buf_en, 32, true);
  1457. const char TMC_X1_Current_buf_en[] = "X1_Current";
  1458. dgusdisplay.WriteVariable(VP_TMC_X1_Current_Dis, TMC_X1_Current_buf_en, 32, true);
  1459. const char TMC_Y1_Current_buf_en[] = "Y1_Current";
  1460. dgusdisplay.WriteVariable(VP_TMC_Y1_Current_Dis, TMC_Y1_Current_buf_en, 32, true);
  1461. const char TMC_Z1_Current_buf_en[] = "Z1_Current";
  1462. dgusdisplay.WriteVariable(VP_TMC_Z1_Current_Dis, TMC_Z1_Current_buf_en, 32, true);
  1463. const char TMC_E1_Current_buf_en[] = "E1_Current";
  1464. dgusdisplay.WriteVariable(VP_TMC_E1_Current_Dis, TMC_E1_Current_buf_en, 32, true);
  1465. const char Min_Ex_Temp_buf_en[] = "Min_Ex_Temp";
  1466. dgusdisplay.WriteVariable(VP_Min_Ex_Temp_Dis, Min_Ex_Temp_buf_en, 32, true);
  1467. const char AutoLEVEL_INFO1_buf_en[] = "Please Press Button!";
  1468. dgusdisplay.WriteVariable(VP_AutoLEVEL_INFO1, AutoLEVEL_INFO1_buf_en, 32, true);
  1469. const char EX_TEMP_INFO2_buf_en[] = "Please wait a monent";
  1470. dgusdisplay.WriteVariable(VP_EX_TEMP_INFO2_Dis, EX_TEMP_INFO2_buf_en, 32, true);
  1471. const char EX_TEMP_INFO3_buf_en[] = "Cancle";
  1472. dgusdisplay.WriteVariable(VP_EX_TEMP_INFO3_Dis, EX_TEMP_INFO3_buf_en, 32, true);
  1473. const char PrintConfrim_Info_buf_en[] = "Start Print?";
  1474. dgusdisplay.WriteVariable(VP_PrintConfrim_Info_Dis, PrintConfrim_Info_buf_en, 32, true);
  1475. const char StopPrintConfrim_Info_buf_en[] = "Stop Print?";
  1476. dgusdisplay.WriteVariable(VP_StopPrintConfrim_Info_Dis, StopPrintConfrim_Info_buf_en, 32, true);
  1477. const char Printting_buf_en[] = "Printing";
  1478. dgusdisplay.WriteVariable(VP_Printting_Dis, Printting_buf_en, 32, true);
  1479. const char LCD_BLK_buf_en[] = "Backlight";
  1480. dgusdisplay.WriteVariable(VP_LCD_BLK_Dis, LCD_BLK_buf_en, 32, true);
  1481. }
  1482. else if (var == MKS_SimpleChinese) {
  1483. uint16_t home_buf_ch[] = { 0xF7D6, 0xB3D2 };
  1484. dgusdisplay.WriteVariable(VP_HOME_Dis, home_buf_ch, 4, true);
  1485. const uint16_t Setting_Dis[] = { 0xE8C9, 0xC3D6, 0x2000, 0x2000, 0x2000 };
  1486. dgusdisplay.WriteVariable(VP_Setting_Dis, Setting_Dis, 7, true);
  1487. const uint16_t Tool_Dis[] = { 0xA4B9, 0xDFBE };
  1488. dgusdisplay.WriteVariable(VP_Tool_Dis, Tool_Dis, 4, true);
  1489. const uint16_t Print_buf_ch[] = { 0xF2B4, 0xA1D3, 0x2000 };
  1490. dgusdisplay.WriteVariable(VP_Print_Dis, Print_buf_ch, 6, true);
  1491. const uint16_t Language_buf_ch[] = { 0xEFD3, 0xD4D1, 0x2000, 0x2000 };
  1492. dgusdisplay.WriteVariable(VP_Language_Dis, Language_buf_ch, 8, true);
  1493. const uint16_t About_buf_ch[] = { 0xD8B9, 0xDAD3, 0x2000 };
  1494. dgusdisplay.WriteVariable(VP_About_Dis, About_buf_ch, 6, true);
  1495. const uint16_t Config_buf_ch[] = { 0xE4C5, 0xC3D6, 0x2000 };
  1496. dgusdisplay.WriteVariable(VP_Config_Dis, Config_buf_ch, 6, true);
  1497. const uint16_t MotorConfig_buf_ch[] = { 0xE7B5, 0xFABB, 0xE4C5, 0xC3D6, 0x2000 };
  1498. dgusdisplay.WriteVariable(VP_MotorConfig_Dis, MotorConfig_buf_ch, 12, true);
  1499. const uint16_t LevelConfig_buf_ch[] = { 0xD6CA, 0xAFB6, 0xF7B5, 0xBDC6, 0xE8C9, 0xC3D6, 0x2000 };
  1500. dgusdisplay.WriteVariable(VP_LevelConfig_Dis, LevelConfig_buf_ch, 32, true);
  1501. const uint16_t TemperatureConfig_buf_ch[] = { 0xC2CE, 0xC8B6, 0x2000 };
  1502. dgusdisplay.WriteVariable(VP_TemperatureConfig_Dis, TemperatureConfig_buf_ch, 11, true);
  1503. const uint16_t Advance_buf_ch[] = { 0xDFB8, 0xB6BC, 0xE8C9, 0xC3D6, 0x2000 };
  1504. dgusdisplay.WriteVariable(VP_Advance_Dis, Advance_buf_ch, 16, true);
  1505. const uint16_t Filament_buf_ch[] = { 0xB7BC, 0xF6B3, 0x2000 };
  1506. dgusdisplay.WriteVariable(VP_Filament_Dis, Filament_buf_ch, 8, true);
  1507. const uint16_t Move_buf_ch[] = { 0xC6D2, 0xAFB6, 0x2000 };
  1508. dgusdisplay.WriteVariable(VP_Move_Dis, Move_buf_ch, 4, true);
  1509. #if ENABLED(AUTO_BED_LEVELING_BILINEAR)
  1510. const uint16_t Level_buf_ch[] = { 0xD4D7, 0xAFB6, 0xF7B5, 0xBDC6, 0x2000 };
  1511. dgusdisplay.WriteVariable(VP_Level_Dis, Level_buf_ch, 32, true);
  1512. #elif ENABLED(MESH_BED_LEVELING)
  1513. const uint16_t Level_buf_ch[] = { 0xF8CD, 0xF1B8, 0xF7B5, 0xBDC6, 0x2000 };
  1514. dgusdisplay.WriteVariable(VP_Level_Dis, Level_buf_ch, 32, true);
  1515. #else
  1516. const uint16_t Level_buf_ch[] = { 0xD6CA, 0xAFB6, 0xF7B5, 0xBDC6, 0x2000 };
  1517. dgusdisplay.WriteVariable(VP_Level_Dis, Level_buf_ch, 32, true);
  1518. #endif
  1519. const uint16_t MotorPluse_buf_ch[] = { 0xF6C2, 0xE5B3, 0x2000 };
  1520. dgusdisplay.WriteVariable(VP_MotorPluse_Dis, MotorPluse_buf_ch, 16, true);
  1521. const uint16_t MotorMaxSpeed_buf_ch[] = { 0xEED7, 0xF3B4, 0xD9CB, 0xC8B6, 0x2000 };
  1522. dgusdisplay.WriteVariable(VP_MotorMaxSpeed_Dis, MotorMaxSpeed_buf_ch, 16, true);
  1523. const uint16_t MotorMaxAcc_buf_ch[] = { 0xEED7, 0xF3B4, 0xD3BC, 0xD9CB, 0xC8B6, 0x2000 };
  1524. dgusdisplay.WriteVariable(VP_MotorMaxAcc_Dis, MotorMaxAcc_buf_ch, 16, true);
  1525. const uint16_t TravelAcc_buf_ch[] = { 0xD5BF, 0xD0D0, 0xD3BC, 0xD9CB, 0xC8B6, 0x2000 };
  1526. dgusdisplay.WriteVariable(VP_TravelAcc_Dis, TravelAcc_buf_ch, 16, true);
  1527. const uint16_t FeedRateMin_buf_ch[] = { 0xEED7, 0xA1D0, 0xD9CB, 0xC8B6, 0x2000 };
  1528. dgusdisplay.WriteVariable(VP_FeedRateMin_Dis, FeedRateMin_buf_ch, 12, true);
  1529. const uint16_t TravelFeeRateMin_buf_ch[] = { 0xD5BF, 0xD0D0, 0xEED7, 0xA1D0, 0xD9CB, 0xC8B6, 0x2000 };
  1530. dgusdisplay.WriteVariable(VP_TravelFeeRateMin_Dis, TravelFeeRateMin_buf_ch, 24, true);
  1531. const uint16_t Acc_buf_ch[] = { 0xD3BC, 0xD9CB, 0xC8B6, 0x2000 };
  1532. dgusdisplay.WriteVariable(VP_ACC_Dis, Acc_buf_ch, 16, true);
  1533. const uint16_t Point_One_buf_ch[] = { 0xDAB5, 0xBBD2, 0xE3B5, 0x2000 };
  1534. dgusdisplay.WriteVariable(VP_Point_One_Dis, Point_One_buf_ch, 12, true);
  1535. const uint16_t Point_Two_buf_ch[] = { 0xDAB5, 0xFEB6, 0xE3B5, 0x2000 };
  1536. dgusdisplay.WriteVariable(VP_Point_Two_Dis, Point_Two_buf_ch, 12, true);
  1537. const uint16_t Point_Three_buf_ch[] = { 0xDAB5, 0xFDC8, 0xE3B5, 0x2000 };
  1538. dgusdisplay.WriteVariable(VP_Point_Three_Dis, Point_Three_buf_ch, 12, true);
  1539. const uint16_t Point_Four_buf_ch[] = { 0xDAB5, 0xC4CB, 0xE3B5, 0x2000 };
  1540. dgusdisplay.WriteVariable(VP_Point_Four_Dis, Point_Four_buf_ch, 12, true);
  1541. const uint16_t Point_Five_buf_ch[] = { 0xDAB5, 0xE5CE, 0xE3B5, 0x2000 };
  1542. dgusdisplay.WriteVariable(VP_Point_Five_Dis, Point_Five_buf_ch, 12, true);
  1543. const uint16_t Extrusion_buf_ch[] = { 0xB7BC, 0xF6B3, 0xB7CD, 0x2000 };
  1544. dgusdisplay.WriteVariable(VP_Extrusion_Dis, Extrusion_buf_ch, 12, true);
  1545. const uint16_t HeatBed_buf_ch[] = { 0xC8C8, 0xB2B4, 0x2000 };
  1546. dgusdisplay.WriteVariable(VP_HeatBed_Dis, HeatBed_buf_ch, 12, true);
  1547. const uint16_t FactoryDefaults_buf_ch[] = { 0xD6BB, 0xB4B8, 0xF6B3, 0xA7B3, 0xE8C9, 0xC3D6, 0x2000 };
  1548. dgusdisplay.WriteVariable(VP_FactoryDefaults_Dis, FactoryDefaults_buf_ch, 16, true);
  1549. const uint16_t StoreSetting_buf_ch[] = { 0xA3B1, 0xE6B4, 0xE8C9, 0xC3D6, 0x2000 };
  1550. dgusdisplay.WriteVariable(VP_StoreSetting_Dis, StoreSetting_buf_ch, 16, true);
  1551. const uint16_t PrintPauseConfig_buf_ch[] = { 0xDDD4, 0xA3CD, 0xBBCE, 0xC3D6, 0x2000 };
  1552. dgusdisplay.WriteVariable(VP_PrintPauseConfig_Dis, PrintPauseConfig_buf_ch, 32, true);
  1553. const uint16_t X_Pluse_buf_ch[] = { 0x2058, 0xE1D6, 0xF6C2, 0xE5B3, 0x2000 };
  1554. dgusdisplay.WriteVariable(VP_X_Pluse_Dis, X_Pluse_buf_ch, 16, true);
  1555. const uint16_t Y_Pluse_buf_ch[] = { 0x2059, 0xE1D6, 0xF6C2, 0xE5B3, 0x2000 };
  1556. dgusdisplay.WriteVariable(VP_Y_Pluse_Dis, Y_Pluse_buf_ch, 16, true);
  1557. const uint16_t Z_Pluse_buf_ch[] = { 0x205A, 0xE1D6, 0xF6C2, 0xE5B3, 0x2000 };
  1558. dgusdisplay.WriteVariable(VP_Z_Pluse_Dis, Z_Pluse_buf_ch, 16, true);
  1559. const uint16_t E0_Pluse_buf_ch[] = { 0x3045, 0xE1D6, 0xF6C2, 0xE5B3, 0x2000 };
  1560. dgusdisplay.WriteVariable(VP_E0_Pluse_Dis, E0_Pluse_buf_ch, 16, true);
  1561. const uint16_t E1_Pluse_buf_ch[] = { 0x3145, 0xE1D6, 0xF6C2, 0xE5B3, 0x2000 };
  1562. dgusdisplay.WriteVariable(VP_E1_Pluse_Dis, E1_Pluse_buf_ch, 16, true);
  1563. const uint16_t X_Max_Speed_buf_ch[] = { 0x2058, 0xEED7, 0xF3B4, 0xD9CB, 0xC8B6, 0x2000 };
  1564. dgusdisplay.WriteVariable(VP_X_Max_Speed_Dis, X_Max_Speed_buf_ch, 16, true);
  1565. const uint16_t Y_Max_Speed_buf_ch[] = { 0x2059, 0xEED7, 0xF3B4, 0xD9CB, 0xC8B6, 0x2000 };
  1566. dgusdisplay.WriteVariable(VP_Y_Max_Speed_Dis, Y_Max_Speed_buf_ch, 16, true);
  1567. const uint16_t Z_Max_Speed_buf_ch[] = { 0x205A, 0xEED7, 0xF3B4, 0xD9CB, 0xC8B6, 0x2000 };
  1568. dgusdisplay.WriteVariable(VP_Z_Max_Speed_Dis, Z_Max_Speed_buf_ch, 16, true);
  1569. const uint16_t E0_Max_Speed_buf_ch[] = { 0x3045, 0xEED7, 0xF3B4, 0xD9CB, 0xC8B6, 0x2000 };
  1570. dgusdisplay.WriteVariable(VP_E0_Max_Speed_Dis, E0_Max_Speed_buf_ch, 16, true);
  1571. const uint16_t E1_Max_Speed_buf_ch[] = { 0x3145, 0xEED7, 0xF3B4, 0xD9CB, 0xC8B6, 0x2000 };
  1572. dgusdisplay.WriteVariable(VP_E1_Max_Speed_Dis, E1_Max_Speed_buf_ch, 16, true);
  1573. const uint16_t X_Max_Acc_Speed_buf_ch[] = { 0x2058, 0xEED7, 0xF3B4, 0xD3BC, 0xD9CB, 0xC8B6, 0x2000 };
  1574. dgusdisplay.WriteVariable(VP_X_Max_Acc_Speed_Dis, X_Max_Acc_Speed_buf_ch, 16, true);
  1575. const uint16_t Y_Max_Acc_Speed_buf_ch[] = { 0x2059, 0xEED7, 0xF3B4, 0xD3BC, 0xD9CB, 0xC8B6, 0x2000 };
  1576. dgusdisplay.WriteVariable(VP_Y_Max_Acc_Speed_Dis, Y_Max_Acc_Speed_buf_ch, 16, true);
  1577. const uint16_t Z_Max_Acc_Speed_buf_ch[] = { 0x205A, 0xEED7, 0xF3B4, 0xD3BC, 0xD9CB, 0xC8B6, 0x2000 };
  1578. dgusdisplay.WriteVariable(VP_Z_Max_Acc_Speed_Dis, Z_Max_Acc_Speed_buf_ch, 16, true);
  1579. const uint16_t E0_Max_Acc_Speed_buf_ch[] = { 0x3045, 0xEED7, 0xF3B4, 0xD3BC, 0xD9CB, 0xC8B6, 0x2000 };
  1580. dgusdisplay.WriteVariable(VP_E0_Max_Acc_Speed_Dis, E0_Max_Acc_Speed_buf_ch, 16, true);
  1581. const uint16_t E1_Max_Acc_Speed_buf_ch[] = { 0x3145, 0xEED7, 0xF3B4, 0xD3BC, 0xD9CB, 0xC8B6, 0x2000 };
  1582. dgusdisplay.WriteVariable(VP_E1_Max_Acc_Speed_Dis, E1_Max_Acc_Speed_buf_ch, 16, true);
  1583. const uint16_t X_PARK_POS_buf_ch[] = { 0x2058, 0xDDD4, 0xA3CD, 0xBBCE, 0xC3D6, 0x2000 };
  1584. dgusdisplay.WriteVariable(VP_X_PARK_POS_Dis, X_PARK_POS_buf_ch, 16, true);
  1585. const uint16_t Y_PARK_POS_buf_ch[] = { 0x2059, 0xDDD4, 0xA3CD, 0xBBCE, 0xC3D6, 0x2000 };
  1586. dgusdisplay.WriteVariable(VP_Y_PARK_POS_Dis, Y_PARK_POS_buf_ch, 16, true);
  1587. const uint16_t Z_PARK_POS_buf_ch[] = { 0x205A, 0xDDD4, 0xA3CD, 0xBBCE, 0xC3D6, 0x2000 };
  1588. dgusdisplay.WriteVariable(VP_Z_PARK_POS_Dis, Z_PARK_POS_buf_ch, 16, true);
  1589. const uint16_t Length_buf_ch[] = { 0xBDB2, 0xA4B3, 0x2000 };
  1590. dgusdisplay.WriteVariable(VP_Length_Dis, Length_buf_ch, 8, true);
  1591. const uint16_t Speed_buf_ch[] = { 0xD9CB, 0xC8B6, 0x2000 };
  1592. dgusdisplay.WriteVariable(VP_Speed_Dis, Speed_buf_ch, 8, true);
  1593. const uint16_t InOut_buf_ch[] = { 0xF8BD, 0xF6B3, 0x2000 };
  1594. dgusdisplay.WriteVariable(VP_InOut_Dis, InOut_buf_ch, 8, true);
  1595. const uint16_t PrintTimet_buf_en[] = { 0xF2B4, 0xA1D3, 0xB1CA, 0xE4BC, 0x2000 };
  1596. dgusdisplay.WriteVariable(VP_PrintTime_Dis, PrintTimet_buf_en, 16, true);
  1597. const uint16_t E0_Temp_buf_ch[] = { 0x3045, 0xC2CE, 0xC8B6, 0x2000 };
  1598. dgusdisplay.WriteVariable(VP_E0_Temp_Dis, E0_Temp_buf_ch, 16, true);
  1599. const uint16_t E1_Temp_buf_ch[] = { 0x3145, 0xC2CE, 0xC8B6, 0x2000 };
  1600. dgusdisplay.WriteVariable(VP_E1_Temp_Dis, E1_Temp_buf_ch, 16, true);
  1601. const uint16_t HB_Temp_buf_ch[] = { 0xC8C8, 0xB2B4, 0xC2CE, 0xC8B6, 0x2000 };
  1602. dgusdisplay.WriteVariable(VP_HB_Temp_Dis, HB_Temp_buf_ch, 16, true);
  1603. const uint16_t Feedrate_buf_ch[] = { 0xB7BC, 0xF6B3, 0xD9CB, 0xC8B6, 0x2000 };
  1604. dgusdisplay.WriteVariable(VP_Feedrate_Dis, Feedrate_buf_ch, 16, true);
  1605. const uint16_t PrintAcc_buf_ch[] = { 0xF2B4, 0xA1D3, 0xD9CB, 0xC8B6, 0x2000 };
  1606. dgusdisplay.WriteVariable(VP_PrintAcc_Dis, PrintAcc_buf_ch, 16, true);
  1607. const uint16_t FAN_Speed_buf_ch[] = { 0xE7B7, 0xC8C9, 0xD9CB, 0xC8B6, 0x2000 };
  1608. dgusdisplay.WriteVariable(VP_Fan_Speed_Dis, FAN_Speed_buf_ch, 16, true);
  1609. const uint16_t Printing_buf_ch[] = { 0xF2B4, 0xA1D3, 0xD0D6, 0x2000 };
  1610. dgusdisplay.WriteVariable(VP_Printing_Dis, Printing_buf_ch, 16, true);
  1611. const uint16_t Info_EEPROM_1_buf_ch[] = { 0xC7CA, 0xF1B7, 0xA3B1, 0xE6B4, 0xE8C9, 0xC3D6, 0xBFA3, 0x2000 };
  1612. dgusdisplay.WriteVariable(VP_Info_EEPROM_1_Dis, Info_EEPROM_1_buf_ch, 32, true);
  1613. const uint16_t Info_EEPROM_2_buf_ch[] = { 0xC7CA, 0xF1B7, 0xD6BB, 0xB4B8, 0xF6B3, 0xA7B3, 0xE8C9, 0xC3D6, 0xBFA3, 0x2000 };
  1614. dgusdisplay.WriteVariable(VP_Info_EEPROM_2_Dis, Info_EEPROM_2_buf_ch, 32, true);
  1615. const uint16_t TMC_X_Step_buf_ch[] = { 0x2058, 0xE9C1, 0xF4C3, 0xC8B6, 0x2000 };
  1616. dgusdisplay.WriteVariable(VP_TMC_X_Step_Dis, TMC_X_Step_buf_ch, 16, true);
  1617. const uint16_t TMC_Y_Step_buf_ch[] = { 0x2059, 0xE9C1, 0xF4C3, 0xC8B6, 0x2000 };
  1618. dgusdisplay.WriteVariable(VP_TMC_Y_Step_Dis, TMC_Y_Step_buf_ch, 16, true);
  1619. const uint16_t TMC_Z_Step_buf_ch[] = { 0x205A, 0xE9C1, 0xF4C3, 0xC8B6, 0x2000 };
  1620. dgusdisplay.WriteVariable(VP_TMC_Z_Step_Dis, TMC_Z_Step_buf_ch, 16, true);
  1621. const uint16_t Info_PrinfFinsh_1_buf_ch[] = { 0xF2B4, 0xA1D3, 0xEACD, 0xC9B3, 0x2000 };
  1622. dgusdisplay.WriteVariable(VP_Info_PrinfFinsh_1_Dis, Info_PrinfFinsh_1_buf_ch, 32, true);
  1623. const uint16_t TMC_X_Current_buf_ch[] = { 0x2058, 0xE1D6, 0xE7B5, 0xF7C1, 0x2000 };
  1624. dgusdisplay.WriteVariable(VP_TMC_X_Current_Dis, TMC_X_Current_buf_ch, 16, true);
  1625. const uint16_t TMC_Y_Current_buf_ch[] = { 0x2059, 0xE1D6, 0xE7B5, 0xF7C1, 0x2000 };
  1626. dgusdisplay.WriteVariable(VP_TMC_Y_Current_Dis, TMC_Y_Current_buf_ch, 16, true);
  1627. const uint16_t TMC_Z_Current_buf_ch[] = { 0x205A, 0xE1D6, 0xE7B5, 0xF7C1, 0x2000 };
  1628. dgusdisplay.WriteVariable(VP_TMC_Z_Current_Dis, TMC_Z_Current_buf_ch, 16, true);
  1629. const uint16_t TMC_E0_Current_buf_ch[] = { 0x3045, 0xE1D6, 0xE7B5, 0xF7C1, 0x2000 };
  1630. dgusdisplay.WriteVariable(VP_TMC_E0_Current_Dis, TMC_E0_Current_buf_ch, 16, true);
  1631. const uint16_t TMC_X1_Current_buf_ch[] = { 0x3158, 0xE1D6, 0xE7B5, 0xF7C1, 0x2000 };
  1632. dgusdisplay.WriteVariable(VP_TMC_X1_Current_Dis, TMC_X1_Current_buf_ch, 16, true);
  1633. const uint16_t TMC_Y1_Current_buf_ch[] = { 0x3159, 0xE1D6, 0xE7B5, 0xF7C1, 0x2000 };
  1634. dgusdisplay.WriteVariable(VP_TMC_Y1_Current_Dis, TMC_Y1_Current_buf_ch, 16, true);
  1635. const uint16_t TMC_Z1_Current_buf_ch[] = { 0x315A, 0xE1D6, 0xE7B5, 0xF7C1, 0x2000 };
  1636. dgusdisplay.WriteVariable(VP_TMC_Z1_Current_Dis, TMC_Z1_Current_buf_ch, 16, true);
  1637. const uint16_t TMC_E1_Current_buf_ch[] = { 0x3145, 0xE1D6, 0xE7B5, 0xF7C1, 0x2000 };
  1638. dgusdisplay.WriteVariable(VP_TMC_E1_Current_Dis, TMC_E1_Current_buf_ch, 16, true);
  1639. const uint16_t Min_Ex_Temp_buf_ch[] = { 0xEED7, 0xA1D0, 0xB7BC, 0xF6B3, 0xC2CE, 0xC8B6, 0x2000 };
  1640. dgusdisplay.WriteVariable(VP_Min_Ex_Temp_Dis, Min_Ex_Temp_buf_ch, 32, true);
  1641. const uint16_t AutoLEVEL_INFO1_buf_ch[] = { 0xEBC7, 0xB4B0, 0xC2CF, 0xB4B0, 0xA5C5, 0x2000 };
  1642. dgusdisplay.WriteVariable(VP_AutoLEVEL_INFO1, AutoLEVEL_INFO1_buf_ch, 32, true);
  1643. const uint16_t EX_TEMP_INFO2_buf_ch[] = { 0xEBC7, 0xD4C9, 0xC8B5, 0x2000 };
  1644. dgusdisplay.WriteVariable(VP_EX_TEMP_INFO2_Dis, EX_TEMP_INFO2_buf_ch, 32, true);
  1645. const uint16_t EX_TEMP_INFO3_buf_ch[] = { 0xA1C8, 0xFBCF, 0xD3BC, 0xC8C8, 0x2000 };
  1646. dgusdisplay.WriteVariable(VP_EX_TEMP_INFO3_Dis, EX_TEMP_INFO3_buf_ch, 32, true);
  1647. const uint16_t PrintConfrim_Info_buf_ch[] = { 0xC7CA, 0xF1B7, 0xAABF, 0xBCCA, 0xF2B4, 0xA1D3, 0x2000 };
  1648. dgusdisplay.WriteVariable(VP_PrintConfrim_Info_Dis, PrintConfrim_Info_buf_ch, 32, true);
  1649. const uint16_t StopPrintConfrim_Info_buf_ch[] = { 0xC7CA, 0xF1B7, 0xA3CD, 0xB9D6, 0xF2B4, 0xA1D3, 0x2000 };
  1650. dgusdisplay.WriteVariable(VP_StopPrintConfrim_Info_Dis, StopPrintConfrim_Info_buf_ch, 32, true);
  1651. const uint16_t Printting_buf_ch[] = { 0xF2B4, 0xA1D3, 0xD0D6, 0x2000 };
  1652. dgusdisplay.WriteVariable(VP_Printting_Dis, Printting_buf_ch, 32, true);
  1653. const uint16_t LCD_BLK_buf_ch[] = { 0xB3B1, 0xE2B9, 0xE8C9, 0xC3D6, 0x2000 };
  1654. dgusdisplay.WriteVariable(VP_LCD_BLK_Dis, LCD_BLK_buf_ch, 32, true);
  1655. }
  1656. }
  1657. #endif // DGUS_LCD_UI_MKS