My Marlin configs for Fabrikator Mini and CTC i3 Pro B
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Marlin_main.cpp 187KB

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  1. /* -*- c++ -*- */
  2. /*
  3. Reprap firmware based on Sprinter and grbl.
  4. Copyright (C) 2011 Camiel Gubbels / Erik van der Zalm
  5. This program is free software: you can redistribute it and/or modify
  6. it under the terms of the GNU General Public License as published by
  7. the Free Software Foundation, either version 3 of the License, or
  8. (at your option) any later version.
  9. This program is distributed in the hope that it will be useful,
  10. but WITHOUT ANY WARRANTY; without even the implied warranty of
  11. MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
  12. GNU General Public License for more details.
  13. You should have received a copy of the GNU General Public License
  14. along with this program. If not, see <http://www.gnu.org/licenses/>.
  15. */
  16. /*
  17. This firmware is a mashup between Sprinter and grbl.
  18. (https://github.com/kliment/Sprinter)
  19. (https://github.com/simen/grbl/tree)
  20. It has preliminary support for Matthew Roberts advance algorithm
  21. http://reprap.org/pipermail/reprap-dev/2011-May/003323.html
  22. */
  23. #include "Marlin.h"
  24. #ifdef ENABLE_AUTO_BED_LEVELING
  25. #include "vector_3.h"
  26. #ifdef AUTO_BED_LEVELING_GRID
  27. #include "qr_solve.h"
  28. #endif
  29. #endif // ENABLE_AUTO_BED_LEVELING
  30. #define SERVO_LEVELING defined(ENABLE_AUTO_BED_LEVELING) && PROBE_SERVO_DEACTIVATION_DELAY > 0
  31. #if defined(MESH_BED_LEVELING)
  32. #include "mesh_bed_leveling.h"
  33. #endif // MESH_BED_LEVELING
  34. #include "ultralcd.h"
  35. #include "planner.h"
  36. #include "stepper.h"
  37. #include "temperature.h"
  38. #include "motion_control.h"
  39. #include "cardreader.h"
  40. #include "watchdog.h"
  41. #include "ConfigurationStore.h"
  42. #include "language.h"
  43. #include "pins_arduino.h"
  44. #include "math.h"
  45. #ifdef BLINKM
  46. #include "BlinkM.h"
  47. #include "Wire.h"
  48. #endif
  49. #if NUM_SERVOS > 0
  50. #include "Servo.h"
  51. #endif
  52. #if HAS_DIGIPOTSS
  53. #include <SPI.h>
  54. #endif
  55. // look here for descriptions of G-codes: http://linuxcnc.org/handbook/gcode/g-code.html
  56. // http://objects.reprap.org/wiki/Mendel_User_Manual:_RepRapGCodes
  57. //Implemented Codes
  58. //-------------------
  59. // G0 -> G1
  60. // G1 - Coordinated Movement X Y Z E
  61. // G2 - CW ARC
  62. // G3 - CCW ARC
  63. // G4 - Dwell S<seconds> or P<milliseconds>
  64. // G10 - retract filament according to settings of M207
  65. // G11 - retract recover filament according to settings of M208
  66. // G28 - Home all Axis
  67. // G29 - Detailed Z-Probe, probes the bed at 3 or more points. Will fail if you haven't homed yet.
  68. // G30 - Single Z Probe, probes bed at current XY location.
  69. // G31 - Dock sled (Z_PROBE_SLED only)
  70. // G32 - Undock sled (Z_PROBE_SLED only)
  71. // G90 - Use Absolute Coordinates
  72. // G91 - Use Relative Coordinates
  73. // G92 - Set current position to coordinates given
  74. // M Codes
  75. // M0 - Unconditional stop - Wait for user to press a button on the LCD (Only if ULTRA_LCD is enabled)
  76. // M1 - Same as M0
  77. // M17 - Enable/Power all stepper motors
  78. // M18 - Disable all stepper motors; same as M84
  79. // M20 - List SD card
  80. // M21 - Init SD card
  81. // M22 - Release SD card
  82. // M23 - Select SD file (M23 filename.g)
  83. // M24 - Start/resume SD print
  84. // M25 - Pause SD print
  85. // M26 - Set SD position in bytes (M26 S12345)
  86. // M27 - Report SD print status
  87. // M28 - Start SD write (M28 filename.g)
  88. // M29 - Stop SD write
  89. // M30 - Delete file from SD (M30 filename.g)
  90. // M31 - Output time since last M109 or SD card start to serial
  91. // M32 - Select file and start SD print (Can be used _while_ printing from SD card files):
  92. // syntax "M32 /path/filename#", or "M32 S<startpos bytes> !filename#"
  93. // Call gcode file : "M32 P !filename#" and return to caller file after finishing (similar to #include).
  94. // The '#' is necessary when calling from within sd files, as it stops buffer prereading
  95. // M42 - Change pin status via gcode Use M42 Px Sy to set pin x to value y, when omitting Px the onboard led will be used.
  96. // M80 - Turn on Power Supply
  97. // M81 - Turn off Power Supply
  98. // M82 - Set E codes absolute (default)
  99. // M83 - Set E codes relative while in Absolute Coordinates (G90) mode
  100. // M84 - Disable steppers until next move,
  101. // or use S<seconds> to specify an inactivity timeout, after which the steppers will be disabled. S0 to disable the timeout.
  102. // M85 - Set inactivity shutdown timer with parameter S<seconds>. To disable set zero (default)
  103. // M92 - Set axis_steps_per_unit - same syntax as G92
  104. // M104 - Set extruder target temp
  105. // M105 - Read current temp
  106. // M106 - Fan on
  107. // M107 - Fan off
  108. // M109 - Sxxx Wait for extruder current temp to reach target temp. Waits only when heating
  109. // Rxxx Wait for extruder current temp to reach target temp. Waits when heating and cooling
  110. // IF AUTOTEMP is enabled, S<mintemp> B<maxtemp> F<factor>. Exit autotemp by any M109 without F
  111. // M112 - Emergency stop
  112. // M114 - Output current position to serial port
  113. // M115 - Capabilities string
  114. // M117 - display message
  115. // M119 - Output Endstop status to serial port
  116. // M120 - Enable endstop detection
  117. // M121 - Disable endstop detection
  118. // M126 - Solenoid Air Valve Open (BariCUDA support by jmil)
  119. // M127 - Solenoid Air Valve Closed (BariCUDA vent to atmospheric pressure by jmil)
  120. // M128 - EtoP Open (BariCUDA EtoP = electricity to air pressure transducer by jmil)
  121. // M129 - EtoP Closed (BariCUDA EtoP = electricity to air pressure transducer by jmil)
  122. // M140 - Set bed target temp
  123. // M150 - Set BlinkM Color Output R: Red<0-255> U(!): Green<0-255> B: Blue<0-255> over i2c, G for green does not work.
  124. // M190 - Sxxx Wait for bed current temp to reach target temp. Waits only when heating
  125. // Rxxx Wait for bed current temp to reach target temp. Waits when heating and cooling
  126. // M200 D<millimeters>- set filament diameter and set E axis units to cubic millimeters (use S0 to set back to millimeters).
  127. // M201 - Set max acceleration in units/s^2 for print moves (M201 X1000 Y1000)
  128. // M202 - Set max acceleration in units/s^2 for travel moves (M202 X1000 Y1000) Unused in Marlin!!
  129. // M203 - Set maximum feedrate that your machine can sustain (M203 X200 Y200 Z300 E10000) in mm/sec
  130. // M204 - Set default acceleration: P for Printing moves, R for Retract only (no X, Y, Z) moves and T for Travel (non printing) moves (ex. M204 P800 T3000 R9000) in mm/sec^2
  131. // M205 - advanced settings: minimum travel speed S=while printing T=travel only, B=minimum segment time X= maximum xy jerk, Z=maximum Z jerk, E=maximum E jerk
  132. // M206 - Set additional homing offset
  133. // M207 - Set retract length S[positive mm] F[feedrate mm/min] Z[additional zlift/hop], stays in mm regardless of M200 setting
  134. // M208 - Set recover=unretract length S[positive mm surplus to the M207 S*] F[feedrate mm/sec]
  135. // M209 - S<1=true/0=false> enable automatic retract detect if the slicer did not support G10/11: every normal extrude-only move will be classified as retract depending on the direction.
  136. // M218 - Set hotend offset (in mm): T<extruder_number> X<offset_on_X> Y<offset_on_Y>
  137. // M220 S<factor in percent>- set speed factor override percentage
  138. // M221 S<factor in percent>- set extrude factor override percentage
  139. // M226 P<pin number> S<pin state>- Wait until the specified pin reaches the state required
  140. // M240 - Trigger a camera to take a photograph
  141. // M250 - Set LCD contrast C<contrast value> (value 0..63)
  142. // M280 - Set servo position absolute. P: servo index, S: angle or microseconds
  143. // M300 - Play beep sound S<frequency Hz> P<duration ms>
  144. // M301 - Set PID parameters P I and D
  145. // M302 - Allow cold extrudes, or set the minimum extrude S<temperature>.
  146. // M303 - PID relay autotune S<temperature> sets the target temperature. (default target temperature = 150C)
  147. // M304 - Set bed PID parameters P I and D
  148. // M380 - Activate solenoid on active extruder
  149. // M381 - Disable all solenoids
  150. // M400 - Finish all moves
  151. // M401 - Lower z-probe if present
  152. // M402 - Raise z-probe if present
  153. // M404 - N<dia in mm> Enter the nominal filament width (3mm, 1.75mm ) or will display nominal filament width without parameters
  154. // M405 - Turn on Filament Sensor extrusion control. Optional D<delay in cm> to set delay in centimeters between sensor and extruder
  155. // M406 - Turn off Filament Sensor extrusion control
  156. // M407 - Displays measured filament diameter
  157. // M500 - Store parameters in EEPROM
  158. // M501 - Read parameters from EEPROM (if you need reset them after you changed them temporarily).
  159. // M502 - Revert to the default "factory settings". You still need to store them in EEPROM afterwards if you want to.
  160. // M503 - Print the current settings (from memory not from EEPROM). Use S0 to leave off headings.
  161. // M540 - Use S[0|1] to enable or disable the stop SD card print on endstop hit (requires ABORT_ON_ENDSTOP_HIT_FEATURE_ENABLED)
  162. // M600 - Pause for filament change X[pos] Y[pos] Z[relative lift] E[initial retract] L[later retract distance for removal]
  163. // M665 - Set delta configurations
  164. // M666 - Set delta endstop adjustment
  165. // M605 - Set dual x-carriage movement mode: S<mode> [ X<duplication x-offset> R<duplication temp offset> ]
  166. // M907 - Set digital trimpot motor current using axis codes.
  167. // M908 - Control digital trimpot directly.
  168. // M350 - Set microstepping mode.
  169. // M351 - Toggle MS1 MS2 pins directly.
  170. // ************ SCARA Specific - This can change to suit future G-code regulations
  171. // M360 - SCARA calibration: Move to cal-position ThetaA (0 deg calibration)
  172. // M361 - SCARA calibration: Move to cal-position ThetaB (90 deg calibration - steps per degree)
  173. // M362 - SCARA calibration: Move to cal-position PsiA (0 deg calibration)
  174. // M363 - SCARA calibration: Move to cal-position PsiB (90 deg calibration - steps per degree)
  175. // M364 - SCARA calibration: Move to cal-position PSIC (90 deg to Theta calibration position)
  176. // M365 - SCARA calibration: Scaling factor, X, Y, Z axis
  177. //************* SCARA End ***************
  178. // M928 - Start SD logging (M928 filename.g) - ended by M29
  179. // M999 - Restart after being stopped by error
  180. #ifdef SDSUPPORT
  181. CardReader card;
  182. #endif
  183. float homing_feedrate[] = HOMING_FEEDRATE;
  184. #ifdef ENABLE_AUTO_BED_LEVELING
  185. int xy_travel_speed = XY_TRAVEL_SPEED;
  186. float zprobe_zoffset = -Z_PROBE_OFFSET_FROM_EXTRUDER;
  187. #endif
  188. int homing_bump_divisor[] = HOMING_BUMP_DIVISOR;
  189. bool axis_relative_modes[] = AXIS_RELATIVE_MODES;
  190. int feedmultiply = 100; //100->1 200->2
  191. int saved_feedmultiply;
  192. int extrudemultiply = 100; //100->1 200->2
  193. int extruder_multiply[EXTRUDERS] = { 100
  194. #if EXTRUDERS > 1
  195. , 100
  196. #if EXTRUDERS > 2
  197. , 100
  198. #if EXTRUDERS > 3
  199. , 100
  200. #endif
  201. #endif
  202. #endif
  203. };
  204. bool volumetric_enabled = false;
  205. float filament_size[EXTRUDERS] = { DEFAULT_NOMINAL_FILAMENT_DIA
  206. #if EXTRUDERS > 1
  207. , DEFAULT_NOMINAL_FILAMENT_DIA
  208. #if EXTRUDERS > 2
  209. , DEFAULT_NOMINAL_FILAMENT_DIA
  210. #if EXTRUDERS > 3
  211. , DEFAULT_NOMINAL_FILAMENT_DIA
  212. #endif
  213. #endif
  214. #endif
  215. };
  216. float volumetric_multiplier[EXTRUDERS] = {1.0
  217. #if EXTRUDERS > 1
  218. , 1.0
  219. #if EXTRUDERS > 2
  220. , 1.0
  221. #if EXTRUDERS > 3
  222. , 1.0
  223. #endif
  224. #endif
  225. #endif
  226. };
  227. float current_position[NUM_AXIS] = { 0.0, 0.0, 0.0, 0.0 };
  228. float home_offset[3] = { 0, 0, 0 };
  229. #ifdef DELTA
  230. float endstop_adj[3] = { 0, 0, 0 };
  231. #elif defined(Z_DUAL_ENDSTOPS)
  232. float z_endstop_adj = 0;
  233. #endif
  234. float min_pos[3] = { X_MIN_POS, Y_MIN_POS, Z_MIN_POS };
  235. float max_pos[3] = { X_MAX_POS, Y_MAX_POS, Z_MAX_POS };
  236. bool axis_known_position[3] = { false, false, false };
  237. // Extruder offset
  238. #if EXTRUDERS > 1
  239. #ifndef DUAL_X_CARRIAGE
  240. #define NUM_EXTRUDER_OFFSETS 2 // only in XY plane
  241. #else
  242. #define NUM_EXTRUDER_OFFSETS 3 // supports offsets in XYZ plane
  243. #endif
  244. float extruder_offset[NUM_EXTRUDER_OFFSETS][EXTRUDERS] = {
  245. #if defined(EXTRUDER_OFFSET_X)
  246. EXTRUDER_OFFSET_X
  247. #else
  248. 0
  249. #endif
  250. ,
  251. #if defined(EXTRUDER_OFFSET_Y)
  252. EXTRUDER_OFFSET_Y
  253. #else
  254. 0
  255. #endif
  256. };
  257. #endif
  258. uint8_t active_extruder = 0;
  259. int fanSpeed = 0;
  260. #ifdef SERVO_ENDSTOPS
  261. int servo_endstops[] = SERVO_ENDSTOPS;
  262. int servo_endstop_angles[] = SERVO_ENDSTOP_ANGLES;
  263. #endif
  264. #ifdef BARICUDA
  265. int ValvePressure = 0;
  266. int EtoPPressure = 0;
  267. #endif
  268. #ifdef FWRETRACT
  269. bool autoretract_enabled = false;
  270. bool retracted[EXTRUDERS] = { false
  271. #if EXTRUDERS > 1
  272. , false
  273. #if EXTRUDERS > 2
  274. , false
  275. #if EXTRUDERS > 3
  276. , false
  277. #endif
  278. #endif
  279. #endif
  280. };
  281. bool retracted_swap[EXTRUDERS] = { false
  282. #if EXTRUDERS > 1
  283. , false
  284. #if EXTRUDERS > 2
  285. , false
  286. #if EXTRUDERS > 3
  287. , false
  288. #endif
  289. #endif
  290. #endif
  291. };
  292. float retract_length = RETRACT_LENGTH;
  293. float retract_length_swap = RETRACT_LENGTH_SWAP;
  294. float retract_feedrate = RETRACT_FEEDRATE;
  295. float retract_zlift = RETRACT_ZLIFT;
  296. float retract_recover_length = RETRACT_RECOVER_LENGTH;
  297. float retract_recover_length_swap = RETRACT_RECOVER_LENGTH_SWAP;
  298. float retract_recover_feedrate = RETRACT_RECOVER_FEEDRATE;
  299. #endif // FWRETRACT
  300. #ifdef ULTIPANEL
  301. bool powersupply =
  302. #ifdef PS_DEFAULT_OFF
  303. false
  304. #else
  305. true
  306. #endif
  307. ;
  308. #endif
  309. #ifdef DELTA
  310. float delta[3] = { 0, 0, 0 };
  311. #define SIN_60 0.8660254037844386
  312. #define COS_60 0.5
  313. // these are the default values, can be overriden with M665
  314. float delta_radius = DELTA_RADIUS;
  315. float delta_tower1_x = -SIN_60 * delta_radius; // front left tower
  316. float delta_tower1_y = -COS_60 * delta_radius;
  317. float delta_tower2_x = SIN_60 * delta_radius; // front right tower
  318. float delta_tower2_y = -COS_60 * delta_radius;
  319. float delta_tower3_x = 0; // back middle tower
  320. float delta_tower3_y = delta_radius;
  321. float delta_diagonal_rod = DELTA_DIAGONAL_ROD;
  322. float delta_diagonal_rod_2 = sq(delta_diagonal_rod);
  323. float delta_segments_per_second = DELTA_SEGMENTS_PER_SECOND;
  324. #ifdef ENABLE_AUTO_BED_LEVELING
  325. float bed_level[AUTO_BED_LEVELING_GRID_POINTS][AUTO_BED_LEVELING_GRID_POINTS];
  326. #endif
  327. #endif
  328. #ifdef SCARA
  329. float axis_scaling[3] = { 1, 1, 1 }; // Build size scaling, default to 1
  330. static float delta[3] = { 0, 0, 0 };
  331. #endif
  332. bool cancel_heatup = false;
  333. #ifdef FILAMENT_SENSOR
  334. //Variables for Filament Sensor input
  335. float filament_width_nominal=DEFAULT_NOMINAL_FILAMENT_DIA; //Set nominal filament width, can be changed with M404
  336. bool filament_sensor=false; //M405 turns on filament_sensor control, M406 turns it off
  337. float filament_width_meas=DEFAULT_MEASURED_FILAMENT_DIA; //Stores the measured filament diameter
  338. signed char measurement_delay[MAX_MEASUREMENT_DELAY+1]; //ring buffer to delay measurement store extruder factor after subtracting 100
  339. int delay_index1=0; //index into ring buffer
  340. int delay_index2=-1; //index into ring buffer - set to -1 on startup to indicate ring buffer needs to be initialized
  341. float delay_dist=0; //delay distance counter
  342. int meas_delay_cm = MEASUREMENT_DELAY_CM; //distance delay setting
  343. #endif
  344. #ifdef FILAMENT_RUNOUT_SENSOR
  345. static bool filrunoutEnqued = false;
  346. #endif
  347. const char errormagic[] PROGMEM = "Error:";
  348. const char echomagic[] PROGMEM = "echo:";
  349. const char axis_codes[NUM_AXIS] = {'X', 'Y', 'Z', 'E'};
  350. static float destination[NUM_AXIS] = { 0, 0, 0, 0 };
  351. static float offset[3] = { 0, 0, 0 };
  352. #ifndef DELTA
  353. static bool home_all_axis = true;
  354. #endif
  355. static float feedrate = 1500.0, next_feedrate, saved_feedrate;
  356. static long gcode_N, gcode_LastN, Stopped_gcode_LastN = 0;
  357. static bool relative_mode = false; //Determines Absolute or Relative Coordinates
  358. static char cmdbuffer[BUFSIZE][MAX_CMD_SIZE];
  359. #ifdef SDSUPPORT
  360. static bool fromsd[BUFSIZE];
  361. #endif
  362. static int bufindr = 0;
  363. static int bufindw = 0;
  364. static int buflen = 0;
  365. static char serial_char;
  366. static int serial_count = 0;
  367. static boolean comment_mode = false;
  368. static char *strchr_pointer; ///< A pointer to find chars in the command string (X, Y, Z, E, etc.)
  369. const char* queued_commands_P= NULL; /* pointer to the current line in the active sequence of commands, or NULL when none */
  370. const int sensitive_pins[] = SENSITIVE_PINS; ///< Sensitive pin list for M42
  371. // Inactivity shutdown
  372. static unsigned long previous_millis_cmd = 0;
  373. static unsigned long max_inactive_time = 0;
  374. static unsigned long stepper_inactive_time = DEFAULT_STEPPER_DEACTIVE_TIME*1000l;
  375. unsigned long starttime = 0; ///< Print job start time
  376. unsigned long stoptime = 0; ///< Print job stop time
  377. static uint8_t tmp_extruder;
  378. bool Stopped = false;
  379. #if NUM_SERVOS > 0
  380. Servo servos[NUM_SERVOS];
  381. #endif
  382. bool CooldownNoWait = true;
  383. bool target_direction;
  384. #ifdef CHDK
  385. unsigned long chdkHigh = 0;
  386. boolean chdkActive = false;
  387. #endif
  388. //===========================================================================
  389. //=============================Routines======================================
  390. //===========================================================================
  391. void get_arc_coordinates();
  392. bool setTargetedHotend(int code);
  393. void serial_echopair_P(const char *s_P, float v)
  394. { serialprintPGM(s_P); SERIAL_ECHO(v); }
  395. void serial_echopair_P(const char *s_P, double v)
  396. { serialprintPGM(s_P); SERIAL_ECHO(v); }
  397. void serial_echopair_P(const char *s_P, unsigned long v)
  398. { serialprintPGM(s_P); SERIAL_ECHO(v); }
  399. #ifdef SDSUPPORT
  400. #include "SdFatUtil.h"
  401. int freeMemory() { return SdFatUtil::FreeRam(); }
  402. #else
  403. extern "C" {
  404. extern unsigned int __bss_end;
  405. extern unsigned int __heap_start;
  406. extern void *__brkval;
  407. int freeMemory() {
  408. int free_memory;
  409. if ((int)__brkval == 0)
  410. free_memory = ((int)&free_memory) - ((int)&__bss_end);
  411. else
  412. free_memory = ((int)&free_memory) - ((int)__brkval);
  413. return free_memory;
  414. }
  415. }
  416. #endif //!SDSUPPORT
  417. //Injects the next command from the pending sequence of commands, when possible
  418. //Return false if and only if no command was pending
  419. static bool drain_queued_commands_P()
  420. {
  421. char cmd[30];
  422. if(!queued_commands_P)
  423. return false;
  424. // Get the next 30 chars from the sequence of gcodes to run
  425. strncpy_P(cmd, queued_commands_P, sizeof(cmd)-1);
  426. cmd[sizeof(cmd)-1]= 0;
  427. // Look for the end of line, or the end of sequence
  428. size_t i= 0;
  429. char c;
  430. while( (c= cmd[i]) && c!='\n' )
  431. ++i; // look for the end of this gcode command
  432. cmd[i]= 0;
  433. if(enquecommand(cmd)) // buffer was not full (else we will retry later)
  434. {
  435. if(c)
  436. queued_commands_P+= i+1; // move to next command
  437. else
  438. queued_commands_P= NULL; // will have no more commands in the sequence
  439. }
  440. return true;
  441. }
  442. //Record one or many commands to run from program memory.
  443. //Aborts the current queue, if any.
  444. //Note: drain_queued_commands_P() must be called repeatedly to drain the commands afterwards
  445. void enquecommands_P(const char* pgcode)
  446. {
  447. queued_commands_P= pgcode;
  448. drain_queued_commands_P(); // first command exectuted asap (when possible)
  449. }
  450. //adds a single command to the main command buffer, from RAM
  451. //that is really done in a non-safe way.
  452. //needs overworking someday
  453. //Returns false if it failed to do so
  454. bool enquecommand(const char *cmd)
  455. {
  456. if(*cmd==';')
  457. return false;
  458. if(buflen >= BUFSIZE)
  459. return false;
  460. //this is dangerous if a mixing of serial and this happens
  461. strcpy(&(cmdbuffer[bufindw][0]),cmd);
  462. SERIAL_ECHO_START;
  463. SERIAL_ECHOPGM(MSG_Enqueing);
  464. SERIAL_ECHO(cmdbuffer[bufindw]);
  465. SERIAL_ECHOLNPGM("\"");
  466. bufindw= (bufindw + 1)%BUFSIZE;
  467. buflen += 1;
  468. return true;
  469. }
  470. void setup_killpin()
  471. {
  472. #if defined(KILL_PIN) && KILL_PIN > -1
  473. SET_INPUT(KILL_PIN);
  474. WRITE(KILL_PIN,HIGH);
  475. #endif
  476. }
  477. void setup_filrunoutpin()
  478. {
  479. #if defined(FILRUNOUT_PIN) && FILRUNOUT_PIN > -1
  480. pinMode(FILRUNOUT_PIN,INPUT);
  481. #if defined(ENDSTOPPULLUP_FIL_RUNOUT)
  482. WRITE(FILLRUNOUT_PIN,HIGH);
  483. #endif
  484. #endif
  485. }
  486. // Set home pin
  487. void setup_homepin(void)
  488. {
  489. #if defined(HOME_PIN) && HOME_PIN > -1
  490. SET_INPUT(HOME_PIN);
  491. WRITE(HOME_PIN,HIGH);
  492. #endif
  493. }
  494. void setup_photpin()
  495. {
  496. #if defined(PHOTOGRAPH_PIN) && PHOTOGRAPH_PIN > -1
  497. OUT_WRITE(PHOTOGRAPH_PIN, LOW);
  498. #endif
  499. }
  500. void setup_powerhold()
  501. {
  502. #if defined(SUICIDE_PIN) && SUICIDE_PIN > -1
  503. OUT_WRITE(SUICIDE_PIN, HIGH);
  504. #endif
  505. #if defined(PS_ON_PIN) && PS_ON_PIN > -1
  506. #if defined(PS_DEFAULT_OFF)
  507. OUT_WRITE(PS_ON_PIN, PS_ON_ASLEEP);
  508. #else
  509. OUT_WRITE(PS_ON_PIN, PS_ON_AWAKE);
  510. #endif
  511. #endif
  512. }
  513. void suicide()
  514. {
  515. #if defined(SUICIDE_PIN) && SUICIDE_PIN > -1
  516. OUT_WRITE(SUICIDE_PIN, LOW);
  517. #endif
  518. }
  519. void servo_init()
  520. {
  521. #if (NUM_SERVOS >= 1) && defined(SERVO0_PIN) && (SERVO0_PIN > -1)
  522. servos[0].attach(SERVO0_PIN);
  523. #endif
  524. #if (NUM_SERVOS >= 2) && defined(SERVO1_PIN) && (SERVO1_PIN > -1)
  525. servos[1].attach(SERVO1_PIN);
  526. #endif
  527. #if (NUM_SERVOS >= 3) && defined(SERVO2_PIN) && (SERVO2_PIN > -1)
  528. servos[2].attach(SERVO2_PIN);
  529. #endif
  530. #if (NUM_SERVOS >= 4) && defined(SERVO3_PIN) && (SERVO3_PIN > -1)
  531. servos[3].attach(SERVO3_PIN);
  532. #endif
  533. #if (NUM_SERVOS >= 5)
  534. #error "TODO: enter initalisation code for more servos"
  535. #endif
  536. // Set position of Servo Endstops that are defined
  537. #ifdef SERVO_ENDSTOPS
  538. for(int8_t i = 0; i < 3; i++)
  539. {
  540. if(servo_endstops[i] > -1) {
  541. servos[servo_endstops[i]].write(servo_endstop_angles[i * 2 + 1]);
  542. }
  543. }
  544. #endif
  545. #if SERVO_LEVELING
  546. delay(PROBE_SERVO_DEACTIVATION_DELAY);
  547. servos[servo_endstops[Z_AXIS]].detach();
  548. #endif
  549. }
  550. void setup()
  551. {
  552. setup_killpin();
  553. setup_filrunoutpin();
  554. setup_powerhold();
  555. MYSERIAL.begin(BAUDRATE);
  556. SERIAL_PROTOCOLLNPGM("start");
  557. SERIAL_ECHO_START;
  558. // Check startup - does nothing if bootloader sets MCUSR to 0
  559. byte mcu = MCUSR;
  560. if(mcu & 1) SERIAL_ECHOLNPGM(MSG_POWERUP);
  561. if(mcu & 2) SERIAL_ECHOLNPGM(MSG_EXTERNAL_RESET);
  562. if(mcu & 4) SERIAL_ECHOLNPGM(MSG_BROWNOUT_RESET);
  563. if(mcu & 8) SERIAL_ECHOLNPGM(MSG_WATCHDOG_RESET);
  564. if(mcu & 32) SERIAL_ECHOLNPGM(MSG_SOFTWARE_RESET);
  565. MCUSR=0;
  566. SERIAL_ECHOPGM(MSG_MARLIN);
  567. SERIAL_ECHOLNPGM(STRING_VERSION);
  568. #ifdef STRING_VERSION_CONFIG_H
  569. #ifdef STRING_CONFIG_H_AUTHOR
  570. SERIAL_ECHO_START;
  571. SERIAL_ECHOPGM(MSG_CONFIGURATION_VER);
  572. SERIAL_ECHOPGM(STRING_VERSION_CONFIG_H);
  573. SERIAL_ECHOPGM(MSG_AUTHOR);
  574. SERIAL_ECHOLNPGM(STRING_CONFIG_H_AUTHOR);
  575. SERIAL_ECHOPGM("Compiled: ");
  576. SERIAL_ECHOLNPGM(__DATE__);
  577. #endif // STRING_CONFIG_H_AUTHOR
  578. #endif // STRING_VERSION_CONFIG_H
  579. SERIAL_ECHO_START;
  580. SERIAL_ECHOPGM(MSG_FREE_MEMORY);
  581. SERIAL_ECHO(freeMemory());
  582. SERIAL_ECHOPGM(MSG_PLANNER_BUFFER_BYTES);
  583. SERIAL_ECHOLN((int)sizeof(block_t)*BLOCK_BUFFER_SIZE);
  584. #ifdef SDSUPPORT
  585. for(int8_t i = 0; i < BUFSIZE; i++)
  586. {
  587. fromsd[i] = false;
  588. }
  589. #endif //!SDSUPPORT
  590. // loads data from EEPROM if available else uses defaults (and resets step acceleration rate)
  591. Config_RetrieveSettings();
  592. tp_init(); // Initialize temperature loop
  593. plan_init(); // Initialize planner;
  594. watchdog_init();
  595. st_init(); // Initialize stepper, this enables interrupts!
  596. setup_photpin();
  597. servo_init();
  598. lcd_init();
  599. _delay_ms(1000); // wait 1sec to display the splash screen
  600. #if defined(CONTROLLERFAN_PIN) && CONTROLLERFAN_PIN > -1
  601. SET_OUTPUT(CONTROLLERFAN_PIN); //Set pin used for driver cooling fan
  602. #endif
  603. #ifdef DIGIPOT_I2C
  604. digipot_i2c_init();
  605. #endif
  606. #ifdef Z_PROBE_SLED
  607. pinMode(SERVO0_PIN, OUTPUT);
  608. digitalWrite(SERVO0_PIN, LOW); // turn it off
  609. #endif // Z_PROBE_SLED
  610. setup_homepin();
  611. #ifdef STAT_LED_RED
  612. pinMode(STAT_LED_RED, OUTPUT);
  613. digitalWrite(STAT_LED_RED, LOW); // turn it off
  614. #endif
  615. #ifdef STAT_LED_BLUE
  616. pinMode(STAT_LED_BLUE, OUTPUT);
  617. digitalWrite(STAT_LED_BLUE, LOW); // turn it off
  618. #endif
  619. }
  620. void loop()
  621. {
  622. if(buflen < (BUFSIZE-1))
  623. get_command();
  624. #ifdef SDSUPPORT
  625. card.checkautostart(false);
  626. #endif
  627. if(buflen)
  628. {
  629. #ifdef SDSUPPORT
  630. if(card.saving)
  631. {
  632. if(strstr_P(cmdbuffer[bufindr], PSTR("M29")) == NULL)
  633. {
  634. card.write_command(cmdbuffer[bufindr]);
  635. if(card.logging)
  636. {
  637. process_commands();
  638. }
  639. else
  640. {
  641. SERIAL_PROTOCOLLNPGM(MSG_OK);
  642. }
  643. }
  644. else
  645. {
  646. card.closefile();
  647. SERIAL_PROTOCOLLNPGM(MSG_FILE_SAVED);
  648. }
  649. }
  650. else
  651. {
  652. process_commands();
  653. }
  654. #else
  655. process_commands();
  656. #endif //SDSUPPORT
  657. buflen = (buflen-1);
  658. bufindr = (bufindr + 1)%BUFSIZE;
  659. }
  660. //check heater every n milliseconds
  661. manage_heater();
  662. manage_inactivity();
  663. checkHitEndstops();
  664. lcd_update();
  665. }
  666. void get_command()
  667. {
  668. if(drain_queued_commands_P()) // priority is given to non-serial commands
  669. return;
  670. while( MYSERIAL.available() > 0 && buflen < BUFSIZE) {
  671. serial_char = MYSERIAL.read();
  672. if(serial_char == '\n' ||
  673. serial_char == '\r' ||
  674. serial_count >= (MAX_CMD_SIZE - 1) )
  675. {
  676. // end of line == end of comment
  677. comment_mode = false;
  678. if(!serial_count) {
  679. // short cut for empty lines
  680. return;
  681. }
  682. cmdbuffer[bufindw][serial_count] = 0; //terminate string
  683. #ifdef SDSUPPORT
  684. fromsd[bufindw] = false;
  685. #endif //!SDSUPPORT
  686. if(strchr(cmdbuffer[bufindw], 'N') != NULL)
  687. {
  688. strchr_pointer = strchr(cmdbuffer[bufindw], 'N');
  689. gcode_N = (strtol(strchr_pointer + 1, NULL, 10));
  690. if(gcode_N != gcode_LastN+1 && (strstr_P(cmdbuffer[bufindw], PSTR("M110")) == NULL) ) {
  691. SERIAL_ERROR_START;
  692. SERIAL_ERRORPGM(MSG_ERR_LINE_NO);
  693. SERIAL_ERRORLN(gcode_LastN);
  694. //Serial.println(gcode_N);
  695. FlushSerialRequestResend();
  696. serial_count = 0;
  697. return;
  698. }
  699. if(strchr(cmdbuffer[bufindw], '*') != NULL)
  700. {
  701. byte checksum = 0;
  702. byte count = 0;
  703. while(cmdbuffer[bufindw][count] != '*') checksum = checksum^cmdbuffer[bufindw][count++];
  704. strchr_pointer = strchr(cmdbuffer[bufindw], '*');
  705. if(strtol(strchr_pointer + 1, NULL, 10) != checksum) {
  706. SERIAL_ERROR_START;
  707. SERIAL_ERRORPGM(MSG_ERR_CHECKSUM_MISMATCH);
  708. SERIAL_ERRORLN(gcode_LastN);
  709. FlushSerialRequestResend();
  710. serial_count = 0;
  711. return;
  712. }
  713. //if no errors, continue parsing
  714. }
  715. else
  716. {
  717. SERIAL_ERROR_START;
  718. SERIAL_ERRORPGM(MSG_ERR_NO_CHECKSUM);
  719. SERIAL_ERRORLN(gcode_LastN);
  720. FlushSerialRequestResend();
  721. serial_count = 0;
  722. return;
  723. }
  724. gcode_LastN = gcode_N;
  725. //if no errors, continue parsing
  726. }
  727. else // if we don't receive 'N' but still see '*'
  728. {
  729. if((strchr(cmdbuffer[bufindw], '*') != NULL))
  730. {
  731. SERIAL_ERROR_START;
  732. SERIAL_ERRORPGM(MSG_ERR_NO_LINENUMBER_WITH_CHECKSUM);
  733. SERIAL_ERRORLN(gcode_LastN);
  734. serial_count = 0;
  735. return;
  736. }
  737. }
  738. if((strchr(cmdbuffer[bufindw], 'G') != NULL)){
  739. strchr_pointer = strchr(cmdbuffer[bufindw], 'G');
  740. switch(strtol(strchr_pointer + 1, NULL, 10)){
  741. case 0:
  742. case 1:
  743. case 2:
  744. case 3:
  745. if (Stopped == true) {
  746. SERIAL_ERRORLNPGM(MSG_ERR_STOPPED);
  747. LCD_MESSAGEPGM(MSG_STOPPED);
  748. }
  749. break;
  750. default:
  751. break;
  752. }
  753. }
  754. //If command was e-stop process now
  755. if(strcmp(cmdbuffer[bufindw], "M112") == 0)
  756. kill();
  757. bufindw = (bufindw + 1)%BUFSIZE;
  758. buflen += 1;
  759. serial_count = 0; //clear buffer
  760. }
  761. else if(serial_char == '\\') { //Handle escapes
  762. if(MYSERIAL.available() > 0 && buflen < BUFSIZE) {
  763. // if we have one more character, copy it over
  764. serial_char = MYSERIAL.read();
  765. cmdbuffer[bufindw][serial_count++] = serial_char;
  766. }
  767. //otherwise do nothing
  768. }
  769. else { // its not a newline, carriage return or escape char
  770. if(serial_char == ';') comment_mode = true;
  771. if(!comment_mode) cmdbuffer[bufindw][serial_count++] = serial_char;
  772. }
  773. }
  774. #ifdef SDSUPPORT
  775. if(!card.sdprinting || serial_count!=0){
  776. return;
  777. }
  778. //'#' stops reading from SD to the buffer prematurely, so procedural macro calls are possible
  779. // if it occurs, stop_buffering is triggered and the buffer is ran dry.
  780. // this character _can_ occur in serial com, due to checksums. however, no checksums are used in SD printing
  781. static bool stop_buffering=false;
  782. if(buflen==0) stop_buffering=false;
  783. while( !card.eof() && buflen < BUFSIZE && !stop_buffering) {
  784. int16_t n=card.get();
  785. serial_char = (char)n;
  786. if(serial_char == '\n' ||
  787. serial_char == '\r' ||
  788. (serial_char == '#' && comment_mode == false) ||
  789. (serial_char == ':' && comment_mode == false) ||
  790. serial_count >= (MAX_CMD_SIZE - 1)||n==-1)
  791. {
  792. if(card.eof()){
  793. SERIAL_PROTOCOLLNPGM(MSG_FILE_PRINTED);
  794. stoptime=millis();
  795. char time[30];
  796. unsigned long t=(stoptime-starttime)/1000;
  797. int hours, minutes;
  798. minutes=(t/60)%60;
  799. hours=t/60/60;
  800. sprintf_P(time, PSTR("%i hours %i minutes"),hours, minutes);
  801. SERIAL_ECHO_START;
  802. SERIAL_ECHOLN(time);
  803. lcd_setstatus(time);
  804. card.printingHasFinished();
  805. card.checkautostart(true);
  806. }
  807. if(serial_char=='#')
  808. stop_buffering=true;
  809. if(!serial_count)
  810. {
  811. comment_mode = false; //for new command
  812. return; //if empty line
  813. }
  814. cmdbuffer[bufindw][serial_count] = 0; //terminate string
  815. // if(!comment_mode){
  816. fromsd[bufindw] = true;
  817. buflen += 1;
  818. bufindw = (bufindw + 1)%BUFSIZE;
  819. // }
  820. comment_mode = false; //for new command
  821. serial_count = 0; //clear buffer
  822. }
  823. else
  824. {
  825. if(serial_char == ';') comment_mode = true;
  826. if(!comment_mode) cmdbuffer[bufindw][serial_count++] = serial_char;
  827. }
  828. }
  829. #endif //SDSUPPORT
  830. }
  831. float code_value() {
  832. float ret;
  833. char *e = strchr(strchr_pointer, 'E');
  834. if (e) {
  835. *e = 0;
  836. ret = strtod(strchr_pointer+1, NULL);
  837. *e = 'E';
  838. }
  839. else
  840. ret = strtod(strchr_pointer+1, NULL);
  841. return ret;
  842. }
  843. long code_value_long() { return (strtol(strchr_pointer + 1, NULL, 10)); }
  844. bool code_seen(char code) {
  845. strchr_pointer = strchr(cmdbuffer[bufindr], code);
  846. return (strchr_pointer != NULL); //Return True if a character was found
  847. }
  848. #define DEFINE_PGM_READ_ANY(type, reader) \
  849. static inline type pgm_read_any(const type *p) \
  850. { return pgm_read_##reader##_near(p); }
  851. DEFINE_PGM_READ_ANY(float, float);
  852. DEFINE_PGM_READ_ANY(signed char, byte);
  853. #define XYZ_CONSTS_FROM_CONFIG(type, array, CONFIG) \
  854. static const PROGMEM type array##_P[3] = \
  855. { X_##CONFIG, Y_##CONFIG, Z_##CONFIG }; \
  856. static inline type array(int axis) \
  857. { return pgm_read_any(&array##_P[axis]); }
  858. XYZ_CONSTS_FROM_CONFIG(float, base_min_pos, MIN_POS);
  859. XYZ_CONSTS_FROM_CONFIG(float, base_max_pos, MAX_POS);
  860. XYZ_CONSTS_FROM_CONFIG(float, base_home_pos, HOME_POS);
  861. XYZ_CONSTS_FROM_CONFIG(float, max_length, MAX_LENGTH);
  862. XYZ_CONSTS_FROM_CONFIG(float, home_retract_mm, HOME_RETRACT_MM);
  863. XYZ_CONSTS_FROM_CONFIG(signed char, home_dir, HOME_DIR);
  864. #ifdef DUAL_X_CARRIAGE
  865. #define DXC_FULL_CONTROL_MODE 0
  866. #define DXC_AUTO_PARK_MODE 1
  867. #define DXC_DUPLICATION_MODE 2
  868. static int dual_x_carriage_mode = DEFAULT_DUAL_X_CARRIAGE_MODE;
  869. static float x_home_pos(int extruder) {
  870. if (extruder == 0)
  871. return base_home_pos(X_AXIS) + home_offset[X_AXIS];
  872. else
  873. // In dual carriage mode the extruder offset provides an override of the
  874. // second X-carriage offset when homed - otherwise X2_HOME_POS is used.
  875. // This allow soft recalibration of the second extruder offset position without firmware reflash
  876. // (through the M218 command).
  877. return (extruder_offset[X_AXIS][1] > 0) ? extruder_offset[X_AXIS][1] : X2_HOME_POS;
  878. }
  879. static int x_home_dir(int extruder) {
  880. return (extruder == 0) ? X_HOME_DIR : X2_HOME_DIR;
  881. }
  882. static float inactive_extruder_x_pos = X2_MAX_POS; // used in mode 0 & 1
  883. static bool active_extruder_parked = false; // used in mode 1 & 2
  884. static float raised_parked_position[NUM_AXIS]; // used in mode 1
  885. static unsigned long delayed_move_time = 0; // used in mode 1
  886. static float duplicate_extruder_x_offset = DEFAULT_DUPLICATION_X_OFFSET; // used in mode 2
  887. static float duplicate_extruder_temp_offset = 0; // used in mode 2
  888. bool extruder_duplication_enabled = false; // used in mode 2
  889. #endif //DUAL_X_CARRIAGE
  890. static void axis_is_at_home(int axis) {
  891. #ifdef DUAL_X_CARRIAGE
  892. if (axis == X_AXIS) {
  893. if (active_extruder != 0) {
  894. current_position[X_AXIS] = x_home_pos(active_extruder);
  895. min_pos[X_AXIS] = X2_MIN_POS;
  896. max_pos[X_AXIS] = max(extruder_offset[X_AXIS][1], X2_MAX_POS);
  897. return;
  898. }
  899. else if (dual_x_carriage_mode == DXC_DUPLICATION_MODE) {
  900. current_position[X_AXIS] = base_home_pos(X_AXIS) + home_offset[X_AXIS];
  901. min_pos[X_AXIS] = base_min_pos(X_AXIS) + home_offset[X_AXIS];
  902. max_pos[X_AXIS] = min(base_max_pos(X_AXIS) + home_offset[X_AXIS],
  903. max(extruder_offset[X_AXIS][1], X2_MAX_POS) - duplicate_extruder_x_offset);
  904. return;
  905. }
  906. }
  907. #endif
  908. #ifdef SCARA
  909. float homeposition[3];
  910. if (axis < 2) {
  911. for (int i = 0; i < 3; i++) homeposition[i] = base_home_pos(i);
  912. // SERIAL_ECHOPGM("homeposition[x]= "); SERIAL_ECHO(homeposition[0]);
  913. // SERIAL_ECHOPGM("homeposition[y]= "); SERIAL_ECHOLN(homeposition[1]);
  914. // Works out real Homeposition angles using inverse kinematics,
  915. // and calculates homing offset using forward kinematics
  916. calculate_delta(homeposition);
  917. // SERIAL_ECHOPGM("base Theta= "); SERIAL_ECHO(delta[X_AXIS]);
  918. // SERIAL_ECHOPGM(" base Psi+Theta="); SERIAL_ECHOLN(delta[Y_AXIS]);
  919. for (int i = 0; i < 2; i++) delta[i] -= home_offset[i];
  920. // SERIAL_ECHOPGM("addhome X="); SERIAL_ECHO(home_offset[X_AXIS]);
  921. // SERIAL_ECHOPGM(" addhome Y="); SERIAL_ECHO(home_offset[Y_AXIS]);
  922. // SERIAL_ECHOPGM(" addhome Theta="); SERIAL_ECHO(delta[X_AXIS]);
  923. // SERIAL_ECHOPGM(" addhome Psi+Theta="); SERIAL_ECHOLN(delta[Y_AXIS]);
  924. calculate_SCARA_forward_Transform(delta);
  925. // SERIAL_ECHOPGM("Delta X="); SERIAL_ECHO(delta[X_AXIS]);
  926. // SERIAL_ECHOPGM(" Delta Y="); SERIAL_ECHOLN(delta[Y_AXIS]);
  927. current_position[axis] = delta[axis];
  928. // SCARA home positions are based on configuration since the actual limits are determined by the
  929. // inverse kinematic transform.
  930. min_pos[axis] = base_min_pos(axis); // + (delta[axis] - base_home_pos(axis));
  931. max_pos[axis] = base_max_pos(axis); // + (delta[axis] - base_home_pos(axis));
  932. }
  933. else {
  934. current_position[axis] = base_home_pos(axis) + home_offset[axis];
  935. min_pos[axis] = base_min_pos(axis) + home_offset[axis];
  936. max_pos[axis] = base_max_pos(axis) + home_offset[axis];
  937. }
  938. #else
  939. current_position[axis] = base_home_pos(axis) + home_offset[axis];
  940. min_pos[axis] = base_min_pos(axis) + home_offset[axis];
  941. max_pos[axis] = base_max_pos(axis) + home_offset[axis];
  942. #endif
  943. }
  944. #ifdef ENABLE_AUTO_BED_LEVELING
  945. #ifdef AUTO_BED_LEVELING_GRID
  946. #ifndef DELTA
  947. static void set_bed_level_equation_lsq(double *plane_equation_coefficients)
  948. {
  949. vector_3 planeNormal = vector_3(-plane_equation_coefficients[0], -plane_equation_coefficients[1], 1);
  950. planeNormal.debug("planeNormal");
  951. plan_bed_level_matrix = matrix_3x3::create_look_at(planeNormal);
  952. //bedLevel.debug("bedLevel");
  953. //plan_bed_level_matrix.debug("bed level before");
  954. //vector_3 uncorrected_position = plan_get_position_mm();
  955. //uncorrected_position.debug("position before");
  956. vector_3 corrected_position = plan_get_position();
  957. // corrected_position.debug("position after");
  958. current_position[X_AXIS] = corrected_position.x;
  959. current_position[Y_AXIS] = corrected_position.y;
  960. current_position[Z_AXIS] = corrected_position.z;
  961. plan_set_position(current_position[X_AXIS], current_position[Y_AXIS], current_position[Z_AXIS], current_position[E_AXIS]);
  962. }
  963. #endif
  964. #else // not AUTO_BED_LEVELING_GRID
  965. static void set_bed_level_equation_3pts(float z_at_pt_1, float z_at_pt_2, float z_at_pt_3) {
  966. plan_bed_level_matrix.set_to_identity();
  967. vector_3 pt1 = vector_3(ABL_PROBE_PT_1_X, ABL_PROBE_PT_1_Y, z_at_pt_1);
  968. vector_3 pt2 = vector_3(ABL_PROBE_PT_2_X, ABL_PROBE_PT_2_Y, z_at_pt_2);
  969. vector_3 pt3 = vector_3(ABL_PROBE_PT_3_X, ABL_PROBE_PT_3_Y, z_at_pt_3);
  970. vector_3 planeNormal = vector_3::cross(pt1 - pt2, pt3 - pt2).get_normal();
  971. if (planeNormal.z < 0) {
  972. planeNormal.x = -planeNormal.x;
  973. planeNormal.y = -planeNormal.y;
  974. planeNormal.z = -planeNormal.z;
  975. }
  976. plan_bed_level_matrix = matrix_3x3::create_look_at(planeNormal);
  977. vector_3 corrected_position = plan_get_position();
  978. current_position[X_AXIS] = corrected_position.x;
  979. current_position[Y_AXIS] = corrected_position.y;
  980. current_position[Z_AXIS] = corrected_position.z;
  981. plan_set_position(current_position[X_AXIS], current_position[Y_AXIS], current_position[Z_AXIS], current_position[E_AXIS]);
  982. }
  983. #endif // AUTO_BED_LEVELING_GRID
  984. static void run_z_probe() {
  985. #ifdef DELTA
  986. float start_z = current_position[Z_AXIS];
  987. long start_steps = st_get_position(Z_AXIS);
  988. // move down slowly until you find the bed
  989. feedrate = homing_feedrate[Z_AXIS] / 4;
  990. destination[Z_AXIS] = -10;
  991. prepare_move_raw();
  992. st_synchronize();
  993. endstops_hit_on_purpose();
  994. // we have to let the planner know where we are right now as it is not where we said to go.
  995. long stop_steps = st_get_position(Z_AXIS);
  996. float mm = start_z - float(start_steps - stop_steps) / axis_steps_per_unit[Z_AXIS];
  997. current_position[Z_AXIS] = mm;
  998. calculate_delta(current_position);
  999. plan_set_position(delta[X_AXIS], delta[Y_AXIS], delta[Z_AXIS], current_position[E_AXIS]);
  1000. #else
  1001. plan_bed_level_matrix.set_to_identity();
  1002. feedrate = homing_feedrate[Z_AXIS];
  1003. // move down until you find the bed
  1004. float zPosition = -10;
  1005. plan_buffer_line(current_position[X_AXIS], current_position[Y_AXIS], zPosition, current_position[E_AXIS], feedrate/60, active_extruder);
  1006. st_synchronize();
  1007. // we have to let the planner know where we are right now as it is not where we said to go.
  1008. zPosition = st_get_position_mm(Z_AXIS);
  1009. plan_set_position(current_position[X_AXIS], current_position[Y_AXIS], zPosition, current_position[E_AXIS]);
  1010. // move up the retract distance
  1011. zPosition += home_retract_mm(Z_AXIS);
  1012. plan_buffer_line(current_position[X_AXIS], current_position[Y_AXIS], zPosition, current_position[E_AXIS], feedrate/60, active_extruder);
  1013. st_synchronize();
  1014. endstops_hit_on_purpose();
  1015. // move back down slowly to find bed
  1016. if (homing_bump_divisor[Z_AXIS] >= 1)
  1017. {
  1018. feedrate = homing_feedrate[Z_AXIS]/homing_bump_divisor[Z_AXIS];
  1019. }
  1020. else
  1021. {
  1022. feedrate = homing_feedrate[Z_AXIS]/10;
  1023. SERIAL_ECHOLN("Warning: The Homing Bump Feedrate Divisor cannot be less then 1");
  1024. }
  1025. zPosition -= home_retract_mm(Z_AXIS) * 2;
  1026. plan_buffer_line(current_position[X_AXIS], current_position[Y_AXIS], zPosition, current_position[E_AXIS], feedrate/60, active_extruder);
  1027. st_synchronize();
  1028. endstops_hit_on_purpose();
  1029. current_position[Z_AXIS] = st_get_position_mm(Z_AXIS);
  1030. // make sure the planner knows where we are as it may be a bit different than we last said to move to
  1031. plan_set_position(current_position[X_AXIS], current_position[Y_AXIS], current_position[Z_AXIS], current_position[E_AXIS]);
  1032. #endif
  1033. }
  1034. static void do_blocking_move_to(float x, float y, float z) {
  1035. float oldFeedRate = feedrate;
  1036. #ifdef DELTA
  1037. feedrate = XY_TRAVEL_SPEED;
  1038. destination[X_AXIS] = x;
  1039. destination[Y_AXIS] = y;
  1040. destination[Z_AXIS] = z;
  1041. prepare_move_raw();
  1042. st_synchronize();
  1043. #else
  1044. feedrate = homing_feedrate[Z_AXIS];
  1045. current_position[Z_AXIS] = z;
  1046. plan_buffer_line(current_position[X_AXIS], current_position[Y_AXIS], current_position[Z_AXIS], current_position[E_AXIS], feedrate/60, active_extruder);
  1047. st_synchronize();
  1048. feedrate = xy_travel_speed;
  1049. current_position[X_AXIS] = x;
  1050. current_position[Y_AXIS] = y;
  1051. plan_buffer_line(current_position[X_AXIS], current_position[Y_AXIS], current_position[Z_AXIS], current_position[E_AXIS], feedrate/60, active_extruder);
  1052. st_synchronize();
  1053. #endif
  1054. feedrate = oldFeedRate;
  1055. }
  1056. static void setup_for_endstop_move() {
  1057. saved_feedrate = feedrate;
  1058. saved_feedmultiply = feedmultiply;
  1059. feedmultiply = 100;
  1060. previous_millis_cmd = millis();
  1061. enable_endstops(true);
  1062. }
  1063. static void clean_up_after_endstop_move() {
  1064. #ifdef ENDSTOPS_ONLY_FOR_HOMING
  1065. enable_endstops(false);
  1066. #endif
  1067. feedrate = saved_feedrate;
  1068. feedmultiply = saved_feedmultiply;
  1069. previous_millis_cmd = millis();
  1070. }
  1071. static void engage_z_probe() {
  1072. // Engage Z Servo endstop if enabled
  1073. #ifdef SERVO_ENDSTOPS
  1074. if (servo_endstops[Z_AXIS] > -1) {
  1075. #if SERVO_LEVELING
  1076. servos[servo_endstops[Z_AXIS]].attach(0);
  1077. #endif
  1078. servos[servo_endstops[Z_AXIS]].write(servo_endstop_angles[Z_AXIS * 2]);
  1079. #if SERVO_LEVELING
  1080. delay(PROBE_SERVO_DEACTIVATION_DELAY);
  1081. servos[servo_endstops[Z_AXIS]].detach();
  1082. #endif
  1083. }
  1084. #elif defined(Z_PROBE_ALLEN_KEY)
  1085. feedrate = homing_feedrate[X_AXIS];
  1086. // Move to the start position to initiate deployment
  1087. destination[X_AXIS] = Z_PROBE_ALLEN_KEY_DEPLOY_X;
  1088. destination[Y_AXIS] = Z_PROBE_ALLEN_KEY_DEPLOY_Y;
  1089. destination[Z_AXIS] = Z_PROBE_ALLEN_KEY_DEPLOY_Z;
  1090. prepare_move_raw();
  1091. // Home X to touch the belt
  1092. feedrate = homing_feedrate[X_AXIS]/10;
  1093. destination[X_AXIS] = 0;
  1094. prepare_move_raw();
  1095. // Home Y for safety
  1096. feedrate = homing_feedrate[X_AXIS]/2;
  1097. destination[Y_AXIS] = 0;
  1098. prepare_move_raw();
  1099. st_synchronize();
  1100. bool z_min_endstop = (READ(Z_MIN_PIN) != Z_MIN_ENDSTOP_INVERTING);
  1101. if (z_min_endstop)
  1102. {
  1103. if (!Stopped)
  1104. {
  1105. SERIAL_ERROR_START;
  1106. SERIAL_ERRORLNPGM("Z-Probe failed to engage!");
  1107. LCD_ALERTMESSAGEPGM("Err: ZPROBE");
  1108. }
  1109. Stop();
  1110. }
  1111. #endif
  1112. }
  1113. static void retract_z_probe() {
  1114. // Retract Z Servo endstop if enabled
  1115. #ifdef SERVO_ENDSTOPS
  1116. if (servo_endstops[Z_AXIS] > -1)
  1117. {
  1118. #if Z_RAISE_AFTER_PROBING > 0
  1119. do_blocking_move_to(current_position[X_AXIS], current_position[Y_AXIS], Z_RAISE_AFTER_PROBING);
  1120. st_synchronize();
  1121. #endif
  1122. #if SERVO_LEVELING
  1123. servos[servo_endstops[Z_AXIS]].attach(0);
  1124. #endif
  1125. servos[servo_endstops[Z_AXIS]].write(servo_endstop_angles[Z_AXIS * 2 + 1]);
  1126. #if SERVO_LEVELING
  1127. delay(PROBE_SERVO_DEACTIVATION_DELAY);
  1128. servos[servo_endstops[Z_AXIS]].detach();
  1129. #endif
  1130. }
  1131. #elif defined(Z_PROBE_ALLEN_KEY)
  1132. // Move up for safety
  1133. feedrate = homing_feedrate[X_AXIS];
  1134. destination[Z_AXIS] = current_position[Z_AXIS] + Z_RAISE_AFTER_PROBING;
  1135. prepare_move_raw();
  1136. // Move to the start position to initiate retraction
  1137. destination[X_AXIS] = Z_PROBE_ALLEN_KEY_RETRACT_X;
  1138. destination[Y_AXIS] = Z_PROBE_ALLEN_KEY_RETRACT_Y;
  1139. destination[Z_AXIS] = Z_PROBE_ALLEN_KEY_RETRACT_Z;
  1140. prepare_move_raw();
  1141. // Move the nozzle down to push the probe into retracted position
  1142. feedrate = homing_feedrate[Z_AXIS]/10;
  1143. destination[Z_AXIS] = current_position[Z_AXIS] - Z_PROBE_ALLEN_KEY_RETRACT_DEPTH;
  1144. prepare_move_raw();
  1145. // Move up for safety
  1146. feedrate = homing_feedrate[Z_AXIS]/2;
  1147. destination[Z_AXIS] = current_position[Z_AXIS] + Z_PROBE_ALLEN_KEY_RETRACT_DEPTH * 2;
  1148. prepare_move_raw();
  1149. // Home XY for safety
  1150. feedrate = homing_feedrate[X_AXIS]/2;
  1151. destination[X_AXIS] = 0;
  1152. destination[Y_AXIS] = 0;
  1153. prepare_move_raw();
  1154. st_synchronize();
  1155. bool z_min_endstop = (READ(Z_MIN_PIN) != Z_MIN_ENDSTOP_INVERTING);
  1156. if (!z_min_endstop)
  1157. {
  1158. if (!Stopped)
  1159. {
  1160. SERIAL_ERROR_START;
  1161. SERIAL_ERRORLNPGM("Z-Probe failed to retract!");
  1162. LCD_ALERTMESSAGEPGM("Err: ZPROBE");
  1163. }
  1164. Stop();
  1165. }
  1166. #endif
  1167. }
  1168. enum ProbeAction {
  1169. ProbeStay = 0,
  1170. ProbeEngage = BIT(0),
  1171. ProbeRetract = BIT(1),
  1172. ProbeEngageAndRetract = (ProbeEngage | ProbeRetract)
  1173. };
  1174. /// Probe bed height at position (x,y), returns the measured z value
  1175. static float probe_pt(float x, float y, float z_before, ProbeAction retract_action=ProbeEngageAndRetract, int verbose_level=1) {
  1176. // move to right place
  1177. do_blocking_move_to(current_position[X_AXIS], current_position[Y_AXIS], z_before);
  1178. do_blocking_move_to(x - X_PROBE_OFFSET_FROM_EXTRUDER, y - Y_PROBE_OFFSET_FROM_EXTRUDER, current_position[Z_AXIS]);
  1179. #if !defined(Z_PROBE_SLED) && !defined(Z_PROBE_ALLEN_KEY)
  1180. if (retract_action & ProbeEngage) engage_z_probe();
  1181. #endif
  1182. run_z_probe();
  1183. float measured_z = current_position[Z_AXIS];
  1184. #if !defined(Z_PROBE_SLED) && !defined(Z_PROBE_ALLEN_KEY)
  1185. if (retract_action & ProbeRetract) retract_z_probe();
  1186. #endif
  1187. if (verbose_level > 2) {
  1188. SERIAL_PROTOCOLPGM(MSG_BED);
  1189. SERIAL_PROTOCOLPGM(" X: ");
  1190. SERIAL_PROTOCOL_F(x, 3);
  1191. SERIAL_PROTOCOLPGM(" Y: ");
  1192. SERIAL_PROTOCOL_F(y, 3);
  1193. SERIAL_PROTOCOLPGM(" Z: ");
  1194. SERIAL_PROTOCOL_F(measured_z, 3);
  1195. SERIAL_EOL;
  1196. }
  1197. return measured_z;
  1198. }
  1199. #ifdef DELTA
  1200. static void extrapolate_one_point(int x, int y, int xdir, int ydir) {
  1201. if (bed_level[x][y] != 0.0) {
  1202. return; // Don't overwrite good values.
  1203. }
  1204. float a = 2*bed_level[x+xdir][y] - bed_level[x+xdir*2][y]; // Left to right.
  1205. float b = 2*bed_level[x][y+ydir] - bed_level[x][y+ydir*2]; // Front to back.
  1206. float c = 2*bed_level[x+xdir][y+ydir] - bed_level[x+xdir*2][y+ydir*2]; // Diagonal.
  1207. float median = c; // Median is robust (ignores outliers).
  1208. if (a < b) {
  1209. if (b < c) median = b;
  1210. if (c < a) median = a;
  1211. } else { // b <= a
  1212. if (c < b) median = b;
  1213. if (a < c) median = a;
  1214. }
  1215. bed_level[x][y] = median;
  1216. }
  1217. // Fill in the unprobed points (corners of circular print surface)
  1218. // using linear extrapolation, away from the center.
  1219. static void extrapolate_unprobed_bed_level() {
  1220. int half = (AUTO_BED_LEVELING_GRID_POINTS-1)/2;
  1221. for (int y = 0; y <= half; y++) {
  1222. for (int x = 0; x <= half; x++) {
  1223. if (x + y < 3) continue;
  1224. extrapolate_one_point(half-x, half-y, x>1?+1:0, y>1?+1:0);
  1225. extrapolate_one_point(half+x, half-y, x>1?-1:0, y>1?+1:0);
  1226. extrapolate_one_point(half-x, half+y, x>1?+1:0, y>1?-1:0);
  1227. extrapolate_one_point(half+x, half+y, x>1?-1:0, y>1?-1:0);
  1228. }
  1229. }
  1230. }
  1231. // Print calibration results for plotting or manual frame adjustment.
  1232. static void print_bed_level() {
  1233. for (int y = 0; y < AUTO_BED_LEVELING_GRID_POINTS; y++) {
  1234. for (int x = 0; x < AUTO_BED_LEVELING_GRID_POINTS; x++) {
  1235. SERIAL_PROTOCOL_F(bed_level[x][y], 2);
  1236. SERIAL_PROTOCOLPGM(" ");
  1237. }
  1238. SERIAL_ECHOLN("");
  1239. }
  1240. }
  1241. // Reset calibration results to zero.
  1242. void reset_bed_level() {
  1243. for (int y = 0; y < AUTO_BED_LEVELING_GRID_POINTS; y++) {
  1244. for (int x = 0; x < AUTO_BED_LEVELING_GRID_POINTS; x++) {
  1245. bed_level[x][y] = 0.0;
  1246. }
  1247. }
  1248. }
  1249. #endif // DELTA
  1250. #endif // ENABLE_AUTO_BED_LEVELING
  1251. static void homeaxis(int axis) {
  1252. #define HOMEAXIS_DO(LETTER) \
  1253. ((LETTER##_MIN_PIN > -1 && LETTER##_HOME_DIR==-1) || (LETTER##_MAX_PIN > -1 && LETTER##_HOME_DIR==1))
  1254. if (axis==X_AXIS ? HOMEAXIS_DO(X) :
  1255. axis==Y_AXIS ? HOMEAXIS_DO(Y) :
  1256. axis==Z_AXIS ? HOMEAXIS_DO(Z) :
  1257. 0) {
  1258. int axis_home_dir = home_dir(axis);
  1259. #ifdef DUAL_X_CARRIAGE
  1260. if (axis == X_AXIS)
  1261. axis_home_dir = x_home_dir(active_extruder);
  1262. #endif
  1263. current_position[axis] = 0;
  1264. plan_set_position(current_position[X_AXIS], current_position[Y_AXIS], current_position[Z_AXIS], current_position[E_AXIS]);
  1265. #ifndef Z_PROBE_SLED
  1266. // Engage Servo endstop if enabled
  1267. #ifdef SERVO_ENDSTOPS
  1268. #if SERVO_LEVELING
  1269. if (axis==Z_AXIS) {
  1270. engage_z_probe();
  1271. }
  1272. else
  1273. #endif
  1274. if (servo_endstops[axis] > -1) {
  1275. servos[servo_endstops[axis]].write(servo_endstop_angles[axis * 2]);
  1276. }
  1277. #endif
  1278. #endif // Z_PROBE_SLED
  1279. #ifdef Z_DUAL_ENDSTOPS
  1280. if (axis==Z_AXIS) In_Homing_Process(true);
  1281. #endif
  1282. destination[axis] = 1.5 * max_length(axis) * axis_home_dir;
  1283. feedrate = homing_feedrate[axis];
  1284. plan_buffer_line(destination[X_AXIS], destination[Y_AXIS], destination[Z_AXIS], destination[E_AXIS], feedrate/60, active_extruder);
  1285. st_synchronize();
  1286. current_position[axis] = 0;
  1287. plan_set_position(current_position[X_AXIS], current_position[Y_AXIS], current_position[Z_AXIS], current_position[E_AXIS]);
  1288. destination[axis] = -home_retract_mm(axis) * axis_home_dir;
  1289. plan_buffer_line(destination[X_AXIS], destination[Y_AXIS], destination[Z_AXIS], destination[E_AXIS], feedrate/60, active_extruder);
  1290. st_synchronize();
  1291. destination[axis] = 2*home_retract_mm(axis) * axis_home_dir;
  1292. if (homing_bump_divisor[axis] >= 1)
  1293. {
  1294. feedrate = homing_feedrate[axis]/homing_bump_divisor[axis];
  1295. }
  1296. else
  1297. {
  1298. feedrate = homing_feedrate[axis]/10;
  1299. SERIAL_ECHOLN("Warning: The Homing Bump Feedrate Divisor cannot be less then 1");
  1300. }
  1301. plan_buffer_line(destination[X_AXIS], destination[Y_AXIS], destination[Z_AXIS], destination[E_AXIS], feedrate/60, active_extruder);
  1302. st_synchronize();
  1303. #ifdef Z_DUAL_ENDSTOPS
  1304. if (axis==Z_AXIS)
  1305. {
  1306. feedrate = homing_feedrate[axis];
  1307. plan_set_position(current_position[X_AXIS], current_position[Y_AXIS], current_position[Z_AXIS], current_position[E_AXIS]);
  1308. if (axis_home_dir > 0)
  1309. {
  1310. destination[axis] = (-1) * fabs(z_endstop_adj);
  1311. if (z_endstop_adj > 0) Lock_z_motor(true); else Lock_z2_motor(true);
  1312. } else {
  1313. destination[axis] = fabs(z_endstop_adj);
  1314. if (z_endstop_adj < 0) Lock_z_motor(true); else Lock_z2_motor(true);
  1315. }
  1316. plan_buffer_line(destination[X_AXIS], destination[Y_AXIS], destination[Z_AXIS], destination[E_AXIS], feedrate/60, active_extruder);
  1317. st_synchronize();
  1318. Lock_z_motor(false);
  1319. Lock_z2_motor(false);
  1320. In_Homing_Process(false);
  1321. }
  1322. #endif
  1323. #ifdef DELTA
  1324. // retrace by the amount specified in endstop_adj
  1325. if (endstop_adj[axis] * axis_home_dir < 0) {
  1326. plan_set_position(current_position[X_AXIS], current_position[Y_AXIS], current_position[Z_AXIS], current_position[E_AXIS]);
  1327. destination[axis] = endstop_adj[axis];
  1328. plan_buffer_line(destination[X_AXIS], destination[Y_AXIS], destination[Z_AXIS], destination[E_AXIS], feedrate/60, active_extruder);
  1329. st_synchronize();
  1330. }
  1331. #endif
  1332. axis_is_at_home(axis);
  1333. destination[axis] = current_position[axis];
  1334. feedrate = 0.0;
  1335. endstops_hit_on_purpose();
  1336. axis_known_position[axis] = true;
  1337. // Retract Servo endstop if enabled
  1338. #ifdef SERVO_ENDSTOPS
  1339. if (servo_endstops[axis] > -1) {
  1340. servos[servo_endstops[axis]].write(servo_endstop_angles[axis * 2 + 1]);
  1341. }
  1342. #endif
  1343. #if SERVO_LEVELING
  1344. #ifndef Z_PROBE_SLED
  1345. if (axis==Z_AXIS) retract_z_probe();
  1346. #endif
  1347. #endif
  1348. }
  1349. }
  1350. #define HOMEAXIS(LETTER) homeaxis(LETTER##_AXIS)
  1351. void refresh_cmd_timeout(void)
  1352. {
  1353. previous_millis_cmd = millis();
  1354. }
  1355. #ifdef FWRETRACT
  1356. void retract(bool retracting, bool swapretract = false) {
  1357. if(retracting && !retracted[active_extruder]) {
  1358. destination[X_AXIS]=current_position[X_AXIS];
  1359. destination[Y_AXIS]=current_position[Y_AXIS];
  1360. destination[Z_AXIS]=current_position[Z_AXIS];
  1361. destination[E_AXIS]=current_position[E_AXIS];
  1362. if (swapretract) {
  1363. current_position[E_AXIS]+=retract_length_swap/volumetric_multiplier[active_extruder];
  1364. } else {
  1365. current_position[E_AXIS]+=retract_length/volumetric_multiplier[active_extruder];
  1366. }
  1367. plan_set_e_position(current_position[E_AXIS]);
  1368. float oldFeedrate = feedrate;
  1369. feedrate=retract_feedrate*60;
  1370. retracted[active_extruder]=true;
  1371. prepare_move();
  1372. if(retract_zlift > 0.01) {
  1373. current_position[Z_AXIS]-=retract_zlift;
  1374. #ifdef DELTA
  1375. calculate_delta(current_position); // change cartesian kinematic to delta kinematic;
  1376. plan_set_position(delta[X_AXIS], delta[Y_AXIS], delta[Z_AXIS], current_position[E_AXIS]);
  1377. #else
  1378. plan_set_position(current_position[X_AXIS], current_position[Y_AXIS], current_position[Z_AXIS], current_position[E_AXIS]);
  1379. #endif
  1380. prepare_move();
  1381. }
  1382. feedrate = oldFeedrate;
  1383. } else if(!retracting && retracted[active_extruder]) {
  1384. destination[X_AXIS]=current_position[X_AXIS];
  1385. destination[Y_AXIS]=current_position[Y_AXIS];
  1386. destination[Z_AXIS]=current_position[Z_AXIS];
  1387. destination[E_AXIS]=current_position[E_AXIS];
  1388. if(retract_zlift > 0.01) {
  1389. current_position[Z_AXIS]+=retract_zlift;
  1390. #ifdef DELTA
  1391. calculate_delta(current_position); // change cartesian kinematic to delta kinematic;
  1392. plan_set_position(delta[X_AXIS], delta[Y_AXIS], delta[Z_AXIS], current_position[E_AXIS]);
  1393. #else
  1394. plan_set_position(current_position[X_AXIS], current_position[Y_AXIS], current_position[Z_AXIS], current_position[E_AXIS]);
  1395. #endif
  1396. //prepare_move();
  1397. }
  1398. if (swapretract) {
  1399. current_position[E_AXIS]-=(retract_length_swap+retract_recover_length_swap)/volumetric_multiplier[active_extruder];
  1400. } else {
  1401. current_position[E_AXIS]-=(retract_length+retract_recover_length)/volumetric_multiplier[active_extruder];
  1402. }
  1403. plan_set_e_position(current_position[E_AXIS]);
  1404. float oldFeedrate = feedrate;
  1405. feedrate=retract_recover_feedrate*60;
  1406. retracted[active_extruder]=false;
  1407. prepare_move();
  1408. feedrate = oldFeedrate;
  1409. }
  1410. } //retract
  1411. #endif //FWRETRACT
  1412. #ifdef Z_PROBE_SLED
  1413. #ifndef SLED_DOCKING_OFFSET
  1414. #define SLED_DOCKING_OFFSET 0
  1415. #endif
  1416. //
  1417. // Method to dock/undock a sled designed by Charles Bell.
  1418. //
  1419. // dock[in] If true, move to MAX_X and engage the electromagnet
  1420. // offset[in] The additional distance to move to adjust docking location
  1421. //
  1422. static void dock_sled(bool dock, int offset=0) {
  1423. int z_loc;
  1424. if (!((axis_known_position[X_AXIS]) && (axis_known_position[Y_AXIS]))) {
  1425. LCD_MESSAGEPGM(MSG_POSITION_UNKNOWN);
  1426. SERIAL_ECHO_START;
  1427. SERIAL_ECHOLNPGM(MSG_POSITION_UNKNOWN);
  1428. return;
  1429. }
  1430. if (dock) {
  1431. do_blocking_move_to(X_MAX_POS + SLED_DOCKING_OFFSET + offset,
  1432. current_position[Y_AXIS],
  1433. current_position[Z_AXIS]);
  1434. // turn off magnet
  1435. digitalWrite(SERVO0_PIN, LOW);
  1436. } else {
  1437. if (current_position[Z_AXIS] < (Z_RAISE_BEFORE_PROBING + 5))
  1438. z_loc = Z_RAISE_BEFORE_PROBING;
  1439. else
  1440. z_loc = current_position[Z_AXIS];
  1441. do_blocking_move_to(X_MAX_POS + SLED_DOCKING_OFFSET + offset,
  1442. Y_PROBE_OFFSET_FROM_EXTRUDER, z_loc);
  1443. // turn on magnet
  1444. digitalWrite(SERVO0_PIN, HIGH);
  1445. }
  1446. }
  1447. #endif
  1448. /**
  1449. *
  1450. * G-Code Handler functions
  1451. *
  1452. */
  1453. /**
  1454. * G0, G1: Coordinated movement of X Y Z E axes
  1455. */
  1456. inline void gcode_G0_G1() {
  1457. if (!Stopped) {
  1458. get_coordinates(); // For X Y Z E F
  1459. #ifdef FWRETRACT
  1460. if (autoretract_enabled)
  1461. if (!(code_seen('X') || code_seen('Y') || code_seen('Z')) && code_seen('E')) {
  1462. float echange = destination[E_AXIS] - current_position[E_AXIS];
  1463. // Is this move an attempt to retract or recover?
  1464. if ((echange < -MIN_RETRACT && !retracted[active_extruder]) || (echange > MIN_RETRACT && retracted[active_extruder])) {
  1465. current_position[E_AXIS] = destination[E_AXIS]; // hide the slicer-generated retract/recover from calculations
  1466. plan_set_e_position(current_position[E_AXIS]); // AND from the planner
  1467. retract(!retracted[active_extruder]);
  1468. return;
  1469. }
  1470. }
  1471. #endif //FWRETRACT
  1472. prepare_move();
  1473. //ClearToSend();
  1474. }
  1475. }
  1476. /**
  1477. * G2: Clockwise Arc
  1478. * G3: Counterclockwise Arc
  1479. */
  1480. inline void gcode_G2_G3(bool clockwise) {
  1481. if (!Stopped) {
  1482. get_arc_coordinates();
  1483. prepare_arc_move(clockwise);
  1484. }
  1485. }
  1486. /**
  1487. * G4: Dwell S<seconds> or P<milliseconds>
  1488. */
  1489. inline void gcode_G4() {
  1490. unsigned long codenum=0;
  1491. LCD_MESSAGEPGM(MSG_DWELL);
  1492. if (code_seen('P')) codenum = code_value_long(); // milliseconds to wait
  1493. if (code_seen('S')) codenum = code_value_long() * 1000; // seconds to wait
  1494. st_synchronize();
  1495. previous_millis_cmd = millis();
  1496. codenum += previous_millis_cmd; // keep track of when we started waiting
  1497. while(millis() < codenum) {
  1498. manage_heater();
  1499. manage_inactivity();
  1500. lcd_update();
  1501. }
  1502. }
  1503. #ifdef FWRETRACT
  1504. /**
  1505. * G10 - Retract filament according to settings of M207
  1506. * G11 - Recover filament according to settings of M208
  1507. */
  1508. inline void gcode_G10_G11(bool doRetract=false) {
  1509. #if EXTRUDERS > 1
  1510. if (doRetract) {
  1511. retracted_swap[active_extruder] = (code_seen('S') && code_value_long() == 1); // checks for swap retract argument
  1512. }
  1513. #endif
  1514. retract(doRetract
  1515. #if EXTRUDERS > 1
  1516. , retracted_swap[active_extruder]
  1517. #endif
  1518. );
  1519. }
  1520. #endif //FWRETRACT
  1521. /**
  1522. * G28: Home all axes, one at a time
  1523. */
  1524. inline void gcode_G28() {
  1525. #ifdef ENABLE_AUTO_BED_LEVELING
  1526. #ifdef DELTA
  1527. reset_bed_level();
  1528. #else
  1529. plan_bed_level_matrix.set_to_identity(); //Reset the plane ("erase" all leveling data)
  1530. #endif
  1531. #endif
  1532. #if defined(MESH_BED_LEVELING)
  1533. uint8_t mbl_was_active = mbl.active;
  1534. mbl.active = 0;
  1535. #endif // MESH_BED_LEVELING
  1536. saved_feedrate = feedrate;
  1537. saved_feedmultiply = feedmultiply;
  1538. feedmultiply = 100;
  1539. previous_millis_cmd = millis();
  1540. enable_endstops(true);
  1541. for (int i = X_AXIS; i < NUM_AXIS; i++) destination[i] = current_position[i];
  1542. feedrate = 0.0;
  1543. #ifdef DELTA
  1544. // A delta can only safely home all axis at the same time
  1545. // all axis have to home at the same time
  1546. // Move all carriages up together until the first endstop is hit.
  1547. for (int i = X_AXIS; i <= Z_AXIS; i++) current_position[i] = 0;
  1548. plan_set_position(current_position[X_AXIS], current_position[Y_AXIS], current_position[Z_AXIS], current_position[E_AXIS]);
  1549. for (int i = X_AXIS; i <= Z_AXIS; i++) destination[i] = 3 * Z_MAX_LENGTH;
  1550. feedrate = 1.732 * homing_feedrate[X_AXIS];
  1551. plan_buffer_line(destination[X_AXIS], destination[Y_AXIS], destination[Z_AXIS], destination[E_AXIS], feedrate/60, active_extruder);
  1552. st_synchronize();
  1553. endstops_hit_on_purpose();
  1554. // Destination reached
  1555. for (int i = X_AXIS; i <= Z_AXIS; i++) current_position[i] = destination[i];
  1556. // take care of back off and rehome now we are all at the top
  1557. HOMEAXIS(X);
  1558. HOMEAXIS(Y);
  1559. HOMEAXIS(Z);
  1560. calculate_delta(current_position);
  1561. plan_set_position(delta[X_AXIS], delta[Y_AXIS], delta[Z_AXIS], current_position[E_AXIS]);
  1562. #else // NOT DELTA
  1563. home_all_axis = !(code_seen(axis_codes[X_AXIS]) || code_seen(axis_codes[Y_AXIS]) || code_seen(axis_codes[Z_AXIS]));
  1564. #if Z_HOME_DIR > 0 // If homing away from BED do Z first
  1565. if (home_all_axis || code_seen(axis_codes[Z_AXIS])) {
  1566. HOMEAXIS(Z);
  1567. }
  1568. #endif
  1569. #ifdef QUICK_HOME
  1570. if (home_all_axis || code_seen(axis_codes[X_AXIS] && code_seen(axis_codes[Y_AXIS]))) { //first diagonal move
  1571. current_position[X_AXIS] = current_position[Y_AXIS] = 0;
  1572. #ifndef DUAL_X_CARRIAGE
  1573. int x_axis_home_dir = home_dir(X_AXIS);
  1574. #else
  1575. int x_axis_home_dir = x_home_dir(active_extruder);
  1576. extruder_duplication_enabled = false;
  1577. #endif
  1578. plan_set_position(current_position[X_AXIS], current_position[Y_AXIS], current_position[Z_AXIS], current_position[E_AXIS]);
  1579. destination[X_AXIS] = 1.5 * max_length(X_AXIS) * x_axis_home_dir;
  1580. destination[Y_AXIS] = 1.5 * max_length(Y_AXIS) * home_dir(Y_AXIS);
  1581. feedrate = homing_feedrate[X_AXIS];
  1582. if (homing_feedrate[Y_AXIS] < feedrate) feedrate = homing_feedrate[Y_AXIS];
  1583. if (max_length(X_AXIS) > max_length(Y_AXIS)) {
  1584. feedrate *= sqrt(pow(max_length(Y_AXIS) / max_length(X_AXIS), 2) + 1);
  1585. } else {
  1586. feedrate *= sqrt(pow(max_length(X_AXIS) / max_length(Y_AXIS), 2) + 1);
  1587. }
  1588. plan_buffer_line(destination[X_AXIS], destination[Y_AXIS], destination[Z_AXIS], destination[E_AXIS], feedrate/60, active_extruder);
  1589. st_synchronize();
  1590. axis_is_at_home(X_AXIS);
  1591. axis_is_at_home(Y_AXIS);
  1592. plan_set_position(current_position[X_AXIS], current_position[Y_AXIS], current_position[Z_AXIS], current_position[E_AXIS]);
  1593. destination[X_AXIS] = current_position[X_AXIS];
  1594. destination[Y_AXIS] = current_position[Y_AXIS];
  1595. plan_buffer_line(destination[X_AXIS], destination[Y_AXIS], destination[Z_AXIS], destination[E_AXIS], feedrate/60, active_extruder);
  1596. feedrate = 0.0;
  1597. st_synchronize();
  1598. endstops_hit_on_purpose();
  1599. current_position[X_AXIS] = destination[X_AXIS];
  1600. current_position[Y_AXIS] = destination[Y_AXIS];
  1601. #ifndef SCARA
  1602. current_position[Z_AXIS] = destination[Z_AXIS];
  1603. #endif
  1604. }
  1605. #endif //QUICK_HOME
  1606. if ((home_all_axis) || (code_seen(axis_codes[X_AXIS]))) {
  1607. #ifdef DUAL_X_CARRIAGE
  1608. int tmp_extruder = active_extruder;
  1609. extruder_duplication_enabled = false;
  1610. active_extruder = !active_extruder;
  1611. HOMEAXIS(X);
  1612. inactive_extruder_x_pos = current_position[X_AXIS];
  1613. active_extruder = tmp_extruder;
  1614. HOMEAXIS(X);
  1615. // reset state used by the different modes
  1616. memcpy(raised_parked_position, current_position, sizeof(raised_parked_position));
  1617. delayed_move_time = 0;
  1618. active_extruder_parked = true;
  1619. #else
  1620. HOMEAXIS(X);
  1621. #endif
  1622. }
  1623. if (home_all_axis || code_seen(axis_codes[Y_AXIS])) HOMEAXIS(Y);
  1624. if (code_seen(axis_codes[X_AXIS])) {
  1625. if (code_value_long() != 0) {
  1626. current_position[X_AXIS] = code_value()
  1627. #ifndef SCARA
  1628. + home_offset[X_AXIS]
  1629. #endif
  1630. ;
  1631. }
  1632. }
  1633. if (code_seen(axis_codes[Y_AXIS]) && code_value_long() != 0) {
  1634. current_position[Y_AXIS] = code_value()
  1635. #ifndef SCARA
  1636. + home_offset[Y_AXIS]
  1637. #endif
  1638. ;
  1639. }
  1640. #if Z_HOME_DIR < 0 // If homing towards BED do Z last
  1641. #ifndef Z_SAFE_HOMING
  1642. if (home_all_axis || code_seen(axis_codes[Z_AXIS])) {
  1643. #if defined(Z_RAISE_BEFORE_HOMING) && Z_RAISE_BEFORE_HOMING > 0
  1644. destination[Z_AXIS] = -Z_RAISE_BEFORE_HOMING * home_dir(Z_AXIS); // Set destination away from bed
  1645. feedrate = max_feedrate[Z_AXIS];
  1646. plan_buffer_line(destination[X_AXIS], destination[Y_AXIS], destination[Z_AXIS], destination[E_AXIS], feedrate, active_extruder);
  1647. st_synchronize();
  1648. #endif
  1649. HOMEAXIS(Z);
  1650. }
  1651. #else // Z_SAFE_HOMING
  1652. if (home_all_axis) {
  1653. destination[X_AXIS] = round(Z_SAFE_HOMING_X_POINT - X_PROBE_OFFSET_FROM_EXTRUDER);
  1654. destination[Y_AXIS] = round(Z_SAFE_HOMING_Y_POINT - Y_PROBE_OFFSET_FROM_EXTRUDER);
  1655. destination[Z_AXIS] = -Z_RAISE_BEFORE_HOMING * home_dir(Z_AXIS); // Set destination away from bed
  1656. feedrate = XY_TRAVEL_SPEED / 60;
  1657. current_position[Z_AXIS] = 0;
  1658. plan_set_position(current_position[X_AXIS], current_position[Y_AXIS], current_position[Z_AXIS], current_position[E_AXIS]);
  1659. plan_buffer_line(destination[X_AXIS], destination[Y_AXIS], destination[Z_AXIS], destination[E_AXIS], feedrate, active_extruder);
  1660. st_synchronize();
  1661. current_position[X_AXIS] = destination[X_AXIS];
  1662. current_position[Y_AXIS] = destination[Y_AXIS];
  1663. HOMEAXIS(Z);
  1664. }
  1665. // Let's see if X and Y are homed and probe is inside bed area.
  1666. if (code_seen(axis_codes[Z_AXIS])) {
  1667. if (axis_known_position[X_AXIS] && axis_known_position[Y_AXIS]) {
  1668. float cpx = current_position[X_AXIS], cpy = current_position[Y_AXIS];
  1669. if ( cpx >= X_MIN_POS - X_PROBE_OFFSET_FROM_EXTRUDER
  1670. && cpx <= X_MAX_POS - X_PROBE_OFFSET_FROM_EXTRUDER
  1671. && cpy >= Y_MIN_POS - Y_PROBE_OFFSET_FROM_EXTRUDER
  1672. && cpy <= Y_MAX_POS - Y_PROBE_OFFSET_FROM_EXTRUDER) {
  1673. current_position[Z_AXIS] = 0;
  1674. plan_set_position(cpx, cpy, current_position[Z_AXIS], current_position[E_AXIS]);
  1675. destination[Z_AXIS] = -Z_RAISE_BEFORE_HOMING * home_dir(Z_AXIS); // Set destination away from bed
  1676. feedrate = max_feedrate[Z_AXIS];
  1677. plan_buffer_line(destination[X_AXIS], destination[Y_AXIS], destination[Z_AXIS], destination[E_AXIS], feedrate, active_extruder);
  1678. st_synchronize();
  1679. HOMEAXIS(Z);
  1680. }
  1681. else {
  1682. LCD_MESSAGEPGM(MSG_ZPROBE_OUT);
  1683. SERIAL_ECHO_START;
  1684. SERIAL_ECHOLNPGM(MSG_ZPROBE_OUT);
  1685. }
  1686. }
  1687. else {
  1688. LCD_MESSAGEPGM(MSG_POSITION_UNKNOWN);
  1689. SERIAL_ECHO_START;
  1690. SERIAL_ECHOLNPGM(MSG_POSITION_UNKNOWN);
  1691. }
  1692. }
  1693. #endif // Z_SAFE_HOMING
  1694. #endif // Z_HOME_DIR < 0
  1695. if (code_seen(axis_codes[Z_AXIS]) && code_value_long() != 0)
  1696. current_position[Z_AXIS] = code_value() + home_offset[Z_AXIS];
  1697. #if defined(ENABLE_AUTO_BED_LEVELING) && (Z_HOME_DIR < 0)
  1698. if (home_all_axis || code_seen(axis_codes[Z_AXIS]))
  1699. current_position[Z_AXIS] += zprobe_zoffset; //Add Z_Probe offset (the distance is negative)
  1700. #endif
  1701. plan_set_position(current_position[X_AXIS], current_position[Y_AXIS], current_position[Z_AXIS], current_position[E_AXIS]);
  1702. #endif // else DELTA
  1703. #ifdef SCARA
  1704. calculate_delta(current_position);
  1705. plan_set_position(delta[X_AXIS], delta[Y_AXIS], delta[Z_AXIS], current_position[E_AXIS]);
  1706. #endif
  1707. #ifdef ENDSTOPS_ONLY_FOR_HOMING
  1708. enable_endstops(false);
  1709. #endif
  1710. #if defined(MESH_BED_LEVELING)
  1711. if (mbl_was_active) {
  1712. current_position[X_AXIS] = mbl.get_x(0);
  1713. current_position[Y_AXIS] = mbl.get_y(0);
  1714. destination[X_AXIS] = current_position[X_AXIS];
  1715. destination[Y_AXIS] = current_position[Y_AXIS];
  1716. destination[Z_AXIS] = current_position[Z_AXIS];
  1717. destination[E_AXIS] = current_position[E_AXIS];
  1718. feedrate = homing_feedrate[X_AXIS];
  1719. plan_buffer_line(destination[X_AXIS], destination[Y_AXIS], destination[Z_AXIS], destination[E_AXIS], feedrate, active_extruder);
  1720. st_synchronize();
  1721. current_position[Z_AXIS] = MESH_HOME_SEARCH_Z;
  1722. plan_set_position(current_position[X_AXIS], current_position[Y_AXIS], current_position[Z_AXIS], current_position[E_AXIS]);
  1723. mbl.active = 1;
  1724. }
  1725. #endif
  1726. feedrate = saved_feedrate;
  1727. feedmultiply = saved_feedmultiply;
  1728. previous_millis_cmd = millis();
  1729. endstops_hit_on_purpose();
  1730. }
  1731. #ifdef MESH_BED_LEVELING
  1732. /**
  1733. * G29: Mesh-based Z-Probe, probes a grid and produces a
  1734. * mesh to compensate for variable bed height
  1735. *
  1736. * Parameters With MESH_BED_LEVELING:
  1737. *
  1738. * S0 Produce a mesh report
  1739. * S1 Start probing mesh points
  1740. * S2 Probe the next mesh point
  1741. *
  1742. */
  1743. inline void gcode_G29() {
  1744. static int probe_point = -1;
  1745. int state = 0;
  1746. if (code_seen('S') || code_seen('s')) {
  1747. state = code_value_long();
  1748. if (state < 0 || state > 2) {
  1749. SERIAL_PROTOCOLPGM("S out of range (0-2).\n");
  1750. return;
  1751. }
  1752. }
  1753. if (state == 0) { // Dump mesh_bed_leveling
  1754. if (mbl.active) {
  1755. SERIAL_PROTOCOLPGM("Num X,Y: ");
  1756. SERIAL_PROTOCOL(MESH_NUM_X_POINTS);
  1757. SERIAL_PROTOCOLPGM(",");
  1758. SERIAL_PROTOCOL(MESH_NUM_Y_POINTS);
  1759. SERIAL_PROTOCOLPGM("\nZ search height: ");
  1760. SERIAL_PROTOCOL(MESH_HOME_SEARCH_Z);
  1761. SERIAL_PROTOCOLPGM("\nMeasured points:\n");
  1762. for (int y=0; y<MESH_NUM_Y_POINTS; y++) {
  1763. for (int x=0; x<MESH_NUM_X_POINTS; x++) {
  1764. SERIAL_PROTOCOLPGM(" ");
  1765. SERIAL_PROTOCOL_F(mbl.z_values[y][x], 5);
  1766. }
  1767. SERIAL_EOL;
  1768. }
  1769. } else {
  1770. SERIAL_PROTOCOLPGM("Mesh bed leveling not active.\n");
  1771. }
  1772. } else if (state == 1) { // Begin probing mesh points
  1773. mbl.reset();
  1774. probe_point = 0;
  1775. enquecommands_P(PSTR("G28"));
  1776. enquecommands_P(PSTR("G29 S2"));
  1777. } else if (state == 2) { // Goto next point
  1778. if (probe_point < 0) {
  1779. SERIAL_PROTOCOLPGM("Start mesh probing with \"G29 S1\" first.\n");
  1780. return;
  1781. }
  1782. int ix, iy;
  1783. if (probe_point == 0) {
  1784. current_position[Z_AXIS] = MESH_HOME_SEARCH_Z;
  1785. plan_set_position(current_position[X_AXIS], current_position[Y_AXIS], current_position[Z_AXIS], current_position[E_AXIS]);
  1786. } else {
  1787. ix = (probe_point-1) % MESH_NUM_X_POINTS;
  1788. iy = (probe_point-1) / MESH_NUM_X_POINTS;
  1789. if (iy & 1) ix = (MESH_NUM_X_POINTS - 1) - ix; // zig-zag
  1790. mbl.set_z(ix, iy, current_position[Z_AXIS]);
  1791. current_position[Z_AXIS] = MESH_HOME_SEARCH_Z;
  1792. plan_buffer_line(current_position[X_AXIS], current_position[Y_AXIS], current_position[Z_AXIS], current_position[E_AXIS], homing_feedrate[X_AXIS]/60, active_extruder);
  1793. st_synchronize();
  1794. }
  1795. if (probe_point == MESH_NUM_X_POINTS * MESH_NUM_Y_POINTS) {
  1796. SERIAL_PROTOCOLPGM("Mesh probing done.\n");
  1797. probe_point = -1;
  1798. mbl.active = 1;
  1799. enquecommands_P(PSTR("G28"));
  1800. return;
  1801. }
  1802. ix = probe_point % MESH_NUM_X_POINTS;
  1803. iy = probe_point / MESH_NUM_X_POINTS;
  1804. if (iy & 1) ix = (MESH_NUM_X_POINTS - 1) - ix; // zig-zag
  1805. current_position[X_AXIS] = mbl.get_x(ix);
  1806. current_position[Y_AXIS] = mbl.get_y(iy);
  1807. plan_buffer_line(current_position[X_AXIS], current_position[Y_AXIS], current_position[Z_AXIS], current_position[E_AXIS], homing_feedrate[X_AXIS]/60, active_extruder);
  1808. st_synchronize();
  1809. probe_point++;
  1810. }
  1811. }
  1812. #elif defined(ENABLE_AUTO_BED_LEVELING)
  1813. /**
  1814. * G29: Detailed Z-Probe, probes the bed at 3 or more points.
  1815. * Will fail if the printer has not been homed with G28.
  1816. *
  1817. * Enhanced G29 Auto Bed Leveling Probe Routine
  1818. *
  1819. * Parameters With AUTO_BED_LEVELING_GRID:
  1820. *
  1821. * P Set the size of the grid that will be probed (P x P points).
  1822. * Not supported by non-linear delta printer bed leveling.
  1823. * Example: "G29 P4"
  1824. *
  1825. * S Set the XY travel speed between probe points (in mm/min)
  1826. *
  1827. * D Dry-Run mode. Just evaluate the bed Topology - Don't apply
  1828. * or clean the rotation Matrix. Useful to check the topology
  1829. * after a first run of G29.
  1830. *
  1831. * V Set the verbose level (0-4). Example: "G29 V3"
  1832. *
  1833. * T Generate a Bed Topology Report. Example: "G29 P5 T" for a detailed report.
  1834. * This is useful for manual bed leveling and finding flaws in the bed (to
  1835. * assist with part placement).
  1836. * Not supported by non-linear delta printer bed leveling.
  1837. *
  1838. * F Set the Front limit of the probing grid
  1839. * B Set the Back limit of the probing grid
  1840. * L Set the Left limit of the probing grid
  1841. * R Set the Right limit of the probing grid
  1842. *
  1843. * Global Parameters:
  1844. *
  1845. * E/e By default G29 engages / disengages the probe for each point.
  1846. * Include "E" to engage and disengage the probe just once.
  1847. * There's no extra effect if you have a fixed probe.
  1848. * Usage: "G29 E" or "G29 e"
  1849. *
  1850. */
  1851. inline void gcode_G29() {
  1852. // Prevent user from running a G29 without first homing in X and Y
  1853. if (!axis_known_position[X_AXIS] || !axis_known_position[Y_AXIS]) {
  1854. LCD_MESSAGEPGM(MSG_POSITION_UNKNOWN);
  1855. SERIAL_ECHO_START;
  1856. SERIAL_ECHOLNPGM(MSG_POSITION_UNKNOWN);
  1857. return;
  1858. }
  1859. int verbose_level = 1;
  1860. if (code_seen('V') || code_seen('v')) {
  1861. verbose_level = code_value_long();
  1862. if (verbose_level < 0 || verbose_level > 4) {
  1863. SERIAL_PROTOCOLPGM("?(V)erbose Level is implausible (0-4).\n");
  1864. return;
  1865. }
  1866. }
  1867. bool dryrun = code_seen('D') || code_seen('d');
  1868. bool enhanced_g29 = code_seen('E') || code_seen('e');
  1869. #ifdef AUTO_BED_LEVELING_GRID
  1870. #ifndef DELTA
  1871. bool do_topography_map = verbose_level > 2 || code_seen('T') || code_seen('t');
  1872. #endif
  1873. if (verbose_level > 0)
  1874. {
  1875. SERIAL_PROTOCOLPGM("G29 Auto Bed Leveling\n");
  1876. if (dryrun) SERIAL_ECHOLN("Running in DRY-RUN mode");
  1877. }
  1878. int auto_bed_leveling_grid_points = AUTO_BED_LEVELING_GRID_POINTS;
  1879. #ifndef DELTA
  1880. if (code_seen('P')) auto_bed_leveling_grid_points = code_value_long();
  1881. if (auto_bed_leveling_grid_points < 2) {
  1882. SERIAL_PROTOCOLPGM("?Number of probed (P)oints is implausible (2 minimum).\n");
  1883. return;
  1884. }
  1885. #endif
  1886. xy_travel_speed = code_seen('S') ? code_value_long() : XY_TRAVEL_SPEED;
  1887. int left_probe_bed_position = code_seen('L') ? code_value_long() : LEFT_PROBE_BED_POSITION,
  1888. right_probe_bed_position = code_seen('R') ? code_value_long() : RIGHT_PROBE_BED_POSITION,
  1889. front_probe_bed_position = code_seen('F') ? code_value_long() : FRONT_PROBE_BED_POSITION,
  1890. back_probe_bed_position = code_seen('B') ? code_value_long() : BACK_PROBE_BED_POSITION;
  1891. bool left_out_l = left_probe_bed_position < MIN_PROBE_X,
  1892. left_out = left_out_l || left_probe_bed_position > right_probe_bed_position - MIN_PROBE_EDGE,
  1893. right_out_r = right_probe_bed_position > MAX_PROBE_X,
  1894. right_out = right_out_r || right_probe_bed_position < left_probe_bed_position + MIN_PROBE_EDGE,
  1895. front_out_f = front_probe_bed_position < MIN_PROBE_Y,
  1896. front_out = front_out_f || front_probe_bed_position > back_probe_bed_position - MIN_PROBE_EDGE,
  1897. back_out_b = back_probe_bed_position > MAX_PROBE_Y,
  1898. back_out = back_out_b || back_probe_bed_position < front_probe_bed_position + MIN_PROBE_EDGE;
  1899. if (left_out || right_out || front_out || back_out) {
  1900. if (left_out) {
  1901. SERIAL_PROTOCOLPGM("?Probe (L)eft position out of range.\n");
  1902. left_probe_bed_position = left_out_l ? MIN_PROBE_X : right_probe_bed_position - MIN_PROBE_EDGE;
  1903. }
  1904. if (right_out) {
  1905. SERIAL_PROTOCOLPGM("?Probe (R)ight position out of range.\n");
  1906. right_probe_bed_position = right_out_r ? MAX_PROBE_X : left_probe_bed_position + MIN_PROBE_EDGE;
  1907. }
  1908. if (front_out) {
  1909. SERIAL_PROTOCOLPGM("?Probe (F)ront position out of range.\n");
  1910. front_probe_bed_position = front_out_f ? MIN_PROBE_Y : back_probe_bed_position - MIN_PROBE_EDGE;
  1911. }
  1912. if (back_out) {
  1913. SERIAL_PROTOCOLPGM("?Probe (B)ack position out of range.\n");
  1914. back_probe_bed_position = back_out_b ? MAX_PROBE_Y : front_probe_bed_position + MIN_PROBE_EDGE;
  1915. }
  1916. return;
  1917. }
  1918. #endif // AUTO_BED_LEVELING_GRID
  1919. #ifdef Z_PROBE_SLED
  1920. dock_sled(false); // engage (un-dock) the probe
  1921. #elif defined(Z_PROBE_ALLEN_KEY) //|| defined(SERVO_LEVELING)
  1922. engage_z_probe();
  1923. #endif
  1924. st_synchronize();
  1925. if (!dryrun)
  1926. {
  1927. #ifdef DELTA
  1928. reset_bed_level();
  1929. #else //!DELTA
  1930. // make sure the bed_level_rotation_matrix is identity or the planner will get it incorectly
  1931. //vector_3 corrected_position = plan_get_position_mm();
  1932. //corrected_position.debug("position before G29");
  1933. plan_bed_level_matrix.set_to_identity();
  1934. vector_3 uncorrected_position = plan_get_position();
  1935. //uncorrected_position.debug("position during G29");
  1936. current_position[X_AXIS] = uncorrected_position.x;
  1937. current_position[Y_AXIS] = uncorrected_position.y;
  1938. current_position[Z_AXIS] = uncorrected_position.z;
  1939. plan_set_position(current_position[X_AXIS], current_position[Y_AXIS], current_position[Z_AXIS], current_position[E_AXIS]);
  1940. #endif
  1941. }
  1942. setup_for_endstop_move();
  1943. feedrate = homing_feedrate[Z_AXIS];
  1944. #ifdef AUTO_BED_LEVELING_GRID
  1945. // probe at the points of a lattice grid
  1946. const int xGridSpacing = (right_probe_bed_position - left_probe_bed_position) / (auto_bed_leveling_grid_points-1);
  1947. const int yGridSpacing = (back_probe_bed_position - front_probe_bed_position) / (auto_bed_leveling_grid_points-1);
  1948. #ifdef DELTA
  1949. delta_grid_spacing[0] = xGridSpacing;
  1950. delta_grid_spacing[1] = yGridSpacing;
  1951. float z_offset = Z_PROBE_OFFSET_FROM_EXTRUDER;
  1952. if (code_seen(axis_codes[Z_AXIS])) z_offset += code_value();
  1953. #else // !DELTA
  1954. // solve the plane equation ax + by + d = z
  1955. // A is the matrix with rows [x y 1] for all the probed points
  1956. // B is the vector of the Z positions
  1957. // the normal vector to the plane is formed by the coefficients of the plane equation in the standard form, which is Vx*x+Vy*y+Vz*z+d = 0
  1958. // so Vx = -a Vy = -b Vz = 1 (we want the vector facing towards positive Z
  1959. int abl2 = auto_bed_leveling_grid_points * auto_bed_leveling_grid_points;
  1960. double eqnAMatrix[abl2 * 3], // "A" matrix of the linear system of equations
  1961. eqnBVector[abl2], // "B" vector of Z points
  1962. mean = 0.0;
  1963. #endif // !DELTA
  1964. int probePointCounter = 0;
  1965. bool zig = true;
  1966. for (int yCount = 0; yCount < auto_bed_leveling_grid_points; yCount++) {
  1967. double yProbe = front_probe_bed_position + yGridSpacing * yCount;
  1968. int xStart, xStop, xInc;
  1969. if (zig) {
  1970. xStart = 0;
  1971. xStop = auto_bed_leveling_grid_points;
  1972. xInc = 1;
  1973. }
  1974. else {
  1975. xStart = auto_bed_leveling_grid_points - 1;
  1976. xStop = -1;
  1977. xInc = -1;
  1978. }
  1979. #ifndef DELTA
  1980. // If do_topography_map is set then don't zig-zag. Just scan in one direction.
  1981. // This gets the probe points in more readable order.
  1982. if (!do_topography_map) zig = !zig;
  1983. #endif
  1984. for (int xCount = xStart; xCount != xStop; xCount += xInc) {
  1985. double xProbe = left_probe_bed_position + xGridSpacing * xCount;
  1986. // raise extruder
  1987. float measured_z,
  1988. z_before = probePointCounter == 0 ? Z_RAISE_BEFORE_PROBING : current_position[Z_AXIS] + Z_RAISE_BETWEEN_PROBINGS;
  1989. #ifdef DELTA
  1990. // Avoid probing the corners (outside the round or hexagon print surface) on a delta printer.
  1991. float distance_from_center = sqrt(xProbe*xProbe + yProbe*yProbe);
  1992. if (distance_from_center > DELTA_PROBABLE_RADIUS)
  1993. continue;
  1994. #endif //DELTA
  1995. // Enhanced G29 - Do not retract servo between probes
  1996. ProbeAction act;
  1997. if (enhanced_g29) {
  1998. if (yProbe == front_probe_bed_position && xCount == 0)
  1999. act = ProbeEngage;
  2000. else if (yProbe == front_probe_bed_position + (yGridSpacing * (auto_bed_leveling_grid_points - 1)) && xCount == auto_bed_leveling_grid_points - 1)
  2001. act = ProbeRetract;
  2002. else
  2003. act = ProbeStay;
  2004. }
  2005. else
  2006. act = ProbeEngageAndRetract;
  2007. measured_z = probe_pt(xProbe, yProbe, z_before, act, verbose_level);
  2008. #ifndef DELTA
  2009. mean += measured_z;
  2010. eqnBVector[probePointCounter] = measured_z;
  2011. eqnAMatrix[probePointCounter + 0 * abl2] = xProbe;
  2012. eqnAMatrix[probePointCounter + 1 * abl2] = yProbe;
  2013. eqnAMatrix[probePointCounter + 2 * abl2] = 1;
  2014. #else
  2015. bed_level[xCount][yCount] = measured_z + z_offset;
  2016. #endif
  2017. probePointCounter++;
  2018. } //xProbe
  2019. } //yProbe
  2020. clean_up_after_endstop_move();
  2021. #ifdef DELTA
  2022. if (!dryrun) extrapolate_unprobed_bed_level();
  2023. print_bed_level();
  2024. #else // !DELTA
  2025. // solve lsq problem
  2026. double *plane_equation_coefficients = qr_solve(abl2, 3, eqnAMatrix, eqnBVector);
  2027. mean /= abl2;
  2028. if (verbose_level) {
  2029. SERIAL_PROTOCOLPGM("Eqn coefficients: a: ");
  2030. SERIAL_PROTOCOL_F(plane_equation_coefficients[0], 8);
  2031. SERIAL_PROTOCOLPGM(" b: ");
  2032. SERIAL_PROTOCOL_F(plane_equation_coefficients[1], 8);
  2033. SERIAL_PROTOCOLPGM(" d: ");
  2034. SERIAL_PROTOCOL_F(plane_equation_coefficients[2], 8);
  2035. SERIAL_EOL;
  2036. if (verbose_level > 2) {
  2037. SERIAL_PROTOCOLPGM("Mean of sampled points: ");
  2038. SERIAL_PROTOCOL_F(mean, 8);
  2039. SERIAL_EOL;
  2040. }
  2041. }
  2042. // Show the Topography map if enabled
  2043. if (do_topography_map) {
  2044. SERIAL_PROTOCOLPGM(" \nBed Height Topography: \n");
  2045. SERIAL_PROTOCOLPGM("+-----------+\n");
  2046. SERIAL_PROTOCOLPGM("|...Back....|\n");
  2047. SERIAL_PROTOCOLPGM("|Left..Right|\n");
  2048. SERIAL_PROTOCOLPGM("|...Front...|\n");
  2049. SERIAL_PROTOCOLPGM("+-----------+\n");
  2050. for (int yy = auto_bed_leveling_grid_points - 1; yy >= 0; yy--) {
  2051. for (int xx = 0; xx < auto_bed_leveling_grid_points; xx++) {
  2052. int ind = yy * auto_bed_leveling_grid_points + xx;
  2053. float diff = eqnBVector[ind] - mean;
  2054. if (diff >= 0.0)
  2055. SERIAL_PROTOCOLPGM(" +"); // Include + for column alignment
  2056. else
  2057. SERIAL_PROTOCOLPGM(" ");
  2058. SERIAL_PROTOCOL_F(diff, 5);
  2059. } // xx
  2060. SERIAL_EOL;
  2061. } // yy
  2062. SERIAL_EOL;
  2063. } //do_topography_map
  2064. if (!dryrun) set_bed_level_equation_lsq(plane_equation_coefficients);
  2065. free(plane_equation_coefficients);
  2066. #endif //!DELTA
  2067. #else // !AUTO_BED_LEVELING_GRID
  2068. // Probe at 3 arbitrary points
  2069. float z_at_pt_1, z_at_pt_2, z_at_pt_3;
  2070. if (enhanced_g29) {
  2071. // Basic Enhanced G29
  2072. z_at_pt_1 = probe_pt(ABL_PROBE_PT_1_X, ABL_PROBE_PT_1_Y, Z_RAISE_BEFORE_PROBING, ProbeEngage, verbose_level);
  2073. z_at_pt_2 = probe_pt(ABL_PROBE_PT_2_X, ABL_PROBE_PT_2_Y, current_position[Z_AXIS] + Z_RAISE_BETWEEN_PROBINGS, ProbeStay, verbose_level);
  2074. z_at_pt_3 = probe_pt(ABL_PROBE_PT_3_X, ABL_PROBE_PT_3_Y, current_position[Z_AXIS] + Z_RAISE_BETWEEN_PROBINGS, ProbeRetract, verbose_level);
  2075. }
  2076. else {
  2077. z_at_pt_1 = probe_pt(ABL_PROBE_PT_1_X, ABL_PROBE_PT_1_Y, Z_RAISE_BEFORE_PROBING, ProbeEngageAndRetract, verbose_level);
  2078. z_at_pt_2 = probe_pt(ABL_PROBE_PT_2_X, ABL_PROBE_PT_2_Y, current_position[Z_AXIS] + Z_RAISE_BETWEEN_PROBINGS, ProbeEngageAndRetract, verbose_level);
  2079. z_at_pt_3 = probe_pt(ABL_PROBE_PT_3_X, ABL_PROBE_PT_3_Y, current_position[Z_AXIS] + Z_RAISE_BETWEEN_PROBINGS, ProbeEngageAndRetract, verbose_level);
  2080. }
  2081. clean_up_after_endstop_move();
  2082. if (!dryrun) set_bed_level_equation_3pts(z_at_pt_1, z_at_pt_2, z_at_pt_3);
  2083. #endif // !AUTO_BED_LEVELING_GRID
  2084. #ifndef DELTA
  2085. if (verbose_level > 0)
  2086. plan_bed_level_matrix.debug(" \n\nBed Level Correction Matrix:");
  2087. // Correct the Z height difference from z-probe position and hotend tip position.
  2088. // The Z height on homing is measured by Z-Probe, but the probe is quite far from the hotend.
  2089. // When the bed is uneven, this height must be corrected.
  2090. if (!dryrun)
  2091. {
  2092. float x_tmp, y_tmp, z_tmp, real_z;
  2093. real_z = float(st_get_position(Z_AXIS)) / axis_steps_per_unit[Z_AXIS]; //get the real Z (since the auto bed leveling is already correcting the plane)
  2094. x_tmp = current_position[X_AXIS] + X_PROBE_OFFSET_FROM_EXTRUDER;
  2095. y_tmp = current_position[Y_AXIS] + Y_PROBE_OFFSET_FROM_EXTRUDER;
  2096. z_tmp = current_position[Z_AXIS];
  2097. apply_rotation_xyz(plan_bed_level_matrix, x_tmp, y_tmp, z_tmp); //Apply the correction sending the probe offset
  2098. current_position[Z_AXIS] = z_tmp - real_z + current_position[Z_AXIS]; //The difference is added to current position and sent to planner.
  2099. plan_set_position(current_position[X_AXIS], current_position[Y_AXIS], current_position[Z_AXIS], current_position[E_AXIS]);
  2100. }
  2101. #endif // !DELTA
  2102. #ifdef Z_PROBE_SLED
  2103. dock_sled(true, -SLED_DOCKING_OFFSET); // dock the probe, correcting for over-travel
  2104. #elif defined(Z_PROBE_ALLEN_KEY) //|| defined(SERVO_LEVELING)
  2105. retract_z_probe();
  2106. #endif
  2107. #ifdef Z_PROBE_END_SCRIPT
  2108. enquecommands_P(PSTR(Z_PROBE_END_SCRIPT));
  2109. st_synchronize();
  2110. #endif
  2111. }
  2112. #ifndef Z_PROBE_SLED
  2113. inline void gcode_G30() {
  2114. engage_z_probe(); // Engage Z Servo endstop if available
  2115. st_synchronize();
  2116. // TODO: make sure the bed_level_rotation_matrix is identity or the planner will get set incorectly
  2117. setup_for_endstop_move();
  2118. feedrate = homing_feedrate[Z_AXIS];
  2119. run_z_probe();
  2120. SERIAL_PROTOCOLPGM(MSG_BED);
  2121. SERIAL_PROTOCOLPGM(" X: ");
  2122. SERIAL_PROTOCOL(current_position[X_AXIS] + 0.0001);
  2123. SERIAL_PROTOCOLPGM(" Y: ");
  2124. SERIAL_PROTOCOL(current_position[Y_AXIS] + 0.0001);
  2125. SERIAL_PROTOCOLPGM(" Z: ");
  2126. SERIAL_PROTOCOL(current_position[Z_AXIS] + 0.0001);
  2127. SERIAL_EOL;
  2128. clean_up_after_endstop_move();
  2129. retract_z_probe(); // Retract Z Servo endstop if available
  2130. }
  2131. #endif //!Z_PROBE_SLED
  2132. #endif //ENABLE_AUTO_BED_LEVELING
  2133. /**
  2134. * G92: Set current position to given X Y Z E
  2135. */
  2136. inline void gcode_G92() {
  2137. if (!code_seen(axis_codes[E_AXIS]))
  2138. st_synchronize();
  2139. for (int i = 0; i < NUM_AXIS; i++) {
  2140. if (code_seen(axis_codes[i])) {
  2141. current_position[i] = code_value();
  2142. if (i == E_AXIS)
  2143. plan_set_e_position(current_position[E_AXIS]);
  2144. else
  2145. plan_set_position(current_position[X_AXIS], current_position[Y_AXIS], current_position[Z_AXIS], current_position[E_AXIS]);
  2146. }
  2147. }
  2148. }
  2149. #ifdef ULTIPANEL
  2150. /**
  2151. * M0: // M0 - Unconditional stop - Wait for user button press on LCD
  2152. * M1: // M1 - Conditional stop - Wait for user button press on LCD
  2153. */
  2154. inline void gcode_M0_M1() {
  2155. char *src = strchr_pointer + 2;
  2156. unsigned long codenum = 0;
  2157. bool hasP = false, hasS = false;
  2158. if (code_seen('P')) {
  2159. codenum = code_value(); // milliseconds to wait
  2160. hasP = codenum > 0;
  2161. }
  2162. if (code_seen('S')) {
  2163. codenum = code_value() * 1000; // seconds to wait
  2164. hasS = codenum > 0;
  2165. }
  2166. char* starpos = strchr(src, '*');
  2167. if (starpos != NULL) *(starpos) = '\0';
  2168. while (*src == ' ') ++src;
  2169. if (!hasP && !hasS && *src != '\0')
  2170. lcd_setstatus(src);
  2171. else
  2172. LCD_MESSAGEPGM(MSG_USERWAIT);
  2173. lcd_ignore_click();
  2174. st_synchronize();
  2175. previous_millis_cmd = millis();
  2176. if (codenum > 0) {
  2177. codenum += previous_millis_cmd; // keep track of when we started waiting
  2178. while(millis() < codenum && !lcd_clicked()) {
  2179. manage_heater();
  2180. manage_inactivity();
  2181. lcd_update();
  2182. }
  2183. lcd_ignore_click(false);
  2184. }
  2185. else {
  2186. if (!lcd_detected()) return;
  2187. while (!lcd_clicked()) {
  2188. manage_heater();
  2189. manage_inactivity();
  2190. lcd_update();
  2191. }
  2192. }
  2193. if (IS_SD_PRINTING)
  2194. LCD_MESSAGEPGM(MSG_RESUMING);
  2195. else
  2196. LCD_MESSAGEPGM(WELCOME_MSG);
  2197. }
  2198. #endif // ULTIPANEL
  2199. /**
  2200. * M17: Enable power on all stepper motors
  2201. */
  2202. inline void gcode_M17() {
  2203. LCD_MESSAGEPGM(MSG_NO_MOVE);
  2204. enable_x();
  2205. enable_y();
  2206. enable_z();
  2207. enable_e0();
  2208. enable_e1();
  2209. enable_e2();
  2210. enable_e3();
  2211. }
  2212. #ifdef SDSUPPORT
  2213. /**
  2214. * M20: List SD card to serial output
  2215. */
  2216. inline void gcode_M20() {
  2217. SERIAL_PROTOCOLLNPGM(MSG_BEGIN_FILE_LIST);
  2218. card.ls();
  2219. SERIAL_PROTOCOLLNPGM(MSG_END_FILE_LIST);
  2220. }
  2221. /**
  2222. * M21: Init SD Card
  2223. */
  2224. inline void gcode_M21() {
  2225. card.initsd();
  2226. }
  2227. /**
  2228. * M22: Release SD Card
  2229. */
  2230. inline void gcode_M22() {
  2231. card.release();
  2232. }
  2233. /**
  2234. * M23: Select a file
  2235. */
  2236. inline void gcode_M23() {
  2237. char* codepos = strchr_pointer + 4;
  2238. char* starpos = strchr(codepos, '*');
  2239. if (starpos) *starpos = '\0';
  2240. card.openFile(codepos, true);
  2241. }
  2242. /**
  2243. * M24: Start SD Print
  2244. */
  2245. inline void gcode_M24() {
  2246. card.startFileprint();
  2247. starttime = millis();
  2248. }
  2249. /**
  2250. * M25: Pause SD Print
  2251. */
  2252. inline void gcode_M25() {
  2253. card.pauseSDPrint();
  2254. }
  2255. /**
  2256. * M26: Set SD Card file index
  2257. */
  2258. inline void gcode_M26() {
  2259. if (card.cardOK && code_seen('S'))
  2260. card.setIndex(code_value_long());
  2261. }
  2262. /**
  2263. * M27: Get SD Card status
  2264. */
  2265. inline void gcode_M27() {
  2266. card.getStatus();
  2267. }
  2268. /**
  2269. * M28: Start SD Write
  2270. */
  2271. inline void gcode_M28() {
  2272. char* codepos = strchr_pointer + 4;
  2273. char* starpos = strchr(codepos, '*');
  2274. if (starpos) {
  2275. char* npos = strchr(cmdbuffer[bufindr], 'N');
  2276. strchr_pointer = strchr(npos, ' ') + 1;
  2277. *(starpos) = '\0';
  2278. }
  2279. card.openFile(codepos, false);
  2280. }
  2281. /**
  2282. * M29: Stop SD Write
  2283. * Processed in write to file routine above
  2284. */
  2285. inline void gcode_M29() {
  2286. // card.saving = false;
  2287. }
  2288. /**
  2289. * M30 <filename>: Delete SD Card file
  2290. */
  2291. inline void gcode_M30() {
  2292. if (card.cardOK) {
  2293. card.closefile();
  2294. char* starpos = strchr(strchr_pointer + 4, '*');
  2295. if (starpos) {
  2296. char* npos = strchr(cmdbuffer[bufindr], 'N');
  2297. strchr_pointer = strchr(npos, ' ') + 1;
  2298. *(starpos) = '\0';
  2299. }
  2300. card.removeFile(strchr_pointer + 4);
  2301. }
  2302. }
  2303. #endif
  2304. /**
  2305. * M31: Get the time since the start of SD Print (or last M109)
  2306. */
  2307. inline void gcode_M31() {
  2308. stoptime = millis();
  2309. unsigned long t = (stoptime - starttime) / 1000;
  2310. int min = t / 60, sec = t % 60;
  2311. char time[30];
  2312. sprintf_P(time, PSTR("%i min, %i sec"), min, sec);
  2313. SERIAL_ECHO_START;
  2314. SERIAL_ECHOLN(time);
  2315. lcd_setstatus(time);
  2316. autotempShutdown();
  2317. }
  2318. #ifdef SDSUPPORT
  2319. /**
  2320. * M32: Select file and start SD Print
  2321. */
  2322. inline void gcode_M32() {
  2323. if (card.sdprinting)
  2324. st_synchronize();
  2325. char* codepos = strchr_pointer + 4;
  2326. char* namestartpos = strchr(codepos, '!'); //find ! to indicate filename string start.
  2327. if (! namestartpos)
  2328. namestartpos = codepos; //default name position, 4 letters after the M
  2329. else
  2330. namestartpos++; //to skip the '!'
  2331. char* starpos = strchr(codepos, '*');
  2332. if (starpos) *(starpos) = '\0';
  2333. bool call_procedure = code_seen('P') && (strchr_pointer < namestartpos);
  2334. if (card.cardOK) {
  2335. card.openFile(namestartpos, true, !call_procedure);
  2336. if (code_seen('S') && strchr_pointer < namestartpos) // "S" (must occur _before_ the filename!)
  2337. card.setIndex(code_value_long());
  2338. card.startFileprint();
  2339. if (!call_procedure)
  2340. starttime = millis(); //procedure calls count as normal print time.
  2341. }
  2342. }
  2343. /**
  2344. * M928: Start SD Write
  2345. */
  2346. inline void gcode_M928() {
  2347. char* starpos = strchr(strchr_pointer + 5, '*');
  2348. if (starpos) {
  2349. char* npos = strchr(cmdbuffer[bufindr], 'N');
  2350. strchr_pointer = strchr(npos, ' ') + 1;
  2351. *(starpos) = '\0';
  2352. }
  2353. card.openLogFile(strchr_pointer + 5);
  2354. }
  2355. #endif // SDSUPPORT
  2356. /**
  2357. * M42: Change pin status via GCode
  2358. */
  2359. inline void gcode_M42() {
  2360. if (code_seen('S')) {
  2361. int pin_status = code_value(),
  2362. pin_number = LED_PIN;
  2363. if (code_seen('P') && pin_status >= 0 && pin_status <= 255)
  2364. pin_number = code_value();
  2365. for (int8_t i = 0; i < (int8_t)(sizeof(sensitive_pins) / sizeof(*sensitive_pins)); i++) {
  2366. if (sensitive_pins[i] == pin_number) {
  2367. pin_number = -1;
  2368. break;
  2369. }
  2370. }
  2371. #if defined(FAN_PIN) && FAN_PIN > -1
  2372. if (pin_number == FAN_PIN) fanSpeed = pin_status;
  2373. #endif
  2374. if (pin_number > -1) {
  2375. pinMode(pin_number, OUTPUT);
  2376. digitalWrite(pin_number, pin_status);
  2377. analogWrite(pin_number, pin_status);
  2378. }
  2379. } // code_seen('S')
  2380. }
  2381. #if defined(ENABLE_AUTO_BED_LEVELING) && defined(Z_PROBE_REPEATABILITY_TEST)
  2382. #if Z_MIN_PIN == -1
  2383. #error "You must have a Z_MIN endstop in order to enable calculation of Z-Probe repeatability."
  2384. #endif
  2385. /**
  2386. * M48: Z-Probe repeatability measurement function.
  2387. *
  2388. * Usage:
  2389. * M48 <n#> <X#> <Y#> <V#> <E> <L#>
  2390. * n = Number of samples (4-50, default 10)
  2391. * X = Sample X position
  2392. * Y = Sample Y position
  2393. * V = Verbose level (0-4, default=1)
  2394. * E = Engage probe for each reading
  2395. * L = Number of legs of movement before probe
  2396. *
  2397. * This function assumes the bed has been homed. Specificaly, that a G28 command
  2398. * as been issued prior to invoking the M48 Z-Probe repeatability measurement function.
  2399. * Any information generated by a prior G29 Bed leveling command will be lost and need to be
  2400. * regenerated.
  2401. *
  2402. * The number of samples will default to 10 if not specified. You can use upper or lower case
  2403. * letters for any of the options EXCEPT n. n must be in lower case because Marlin uses a capital
  2404. * N for its communication protocol and will get horribly confused if you send it a capital N.
  2405. */
  2406. inline void gcode_M48() {
  2407. double sum = 0.0, mean = 0.0, sigma = 0.0, sample_set[50];
  2408. int verbose_level = 1, n = 0, j, n_samples = 10, n_legs = 0, engage_probe_for_each_reading = 0;
  2409. double X_current, Y_current, Z_current;
  2410. double X_probe_location, Y_probe_location, Z_start_location, ext_position;
  2411. if (code_seen('V') || code_seen('v')) {
  2412. verbose_level = code_value();
  2413. if (verbose_level < 0 || verbose_level > 4 ) {
  2414. SERIAL_PROTOCOLPGM("?Verbose Level not plausible (0-4).\n");
  2415. return;
  2416. }
  2417. }
  2418. if (verbose_level > 0)
  2419. SERIAL_PROTOCOLPGM("M48 Z-Probe Repeatability test\n");
  2420. if (code_seen('n')) {
  2421. n_samples = code_value();
  2422. if (n_samples < 4 || n_samples > 50) {
  2423. SERIAL_PROTOCOLPGM("?Specified sample size not plausible (4-50).\n");
  2424. return;
  2425. }
  2426. }
  2427. X_current = X_probe_location = st_get_position_mm(X_AXIS);
  2428. Y_current = Y_probe_location = st_get_position_mm(Y_AXIS);
  2429. Z_current = st_get_position_mm(Z_AXIS);
  2430. Z_start_location = st_get_position_mm(Z_AXIS) + Z_RAISE_BEFORE_PROBING;
  2431. ext_position = st_get_position_mm(E_AXIS);
  2432. if (code_seen('E') || code_seen('e'))
  2433. engage_probe_for_each_reading++;
  2434. if (code_seen('X') || code_seen('x')) {
  2435. X_probe_location = code_value() - X_PROBE_OFFSET_FROM_EXTRUDER;
  2436. if (X_probe_location < X_MIN_POS || X_probe_location > X_MAX_POS) {
  2437. SERIAL_PROTOCOLPGM("?Specified X position out of range.\n");
  2438. return;
  2439. }
  2440. }
  2441. if (code_seen('Y') || code_seen('y')) {
  2442. Y_probe_location = code_value() - Y_PROBE_OFFSET_FROM_EXTRUDER;
  2443. if (Y_probe_location < Y_MIN_POS || Y_probe_location > Y_MAX_POS) {
  2444. SERIAL_PROTOCOLPGM("?Specified Y position out of range.\n");
  2445. return;
  2446. }
  2447. }
  2448. if (code_seen('L') || code_seen('l')) {
  2449. n_legs = code_value();
  2450. if (n_legs == 1) n_legs = 2;
  2451. if (n_legs < 0 || n_legs > 15) {
  2452. SERIAL_PROTOCOLPGM("?Specified number of legs in movement not plausible (0-15).\n");
  2453. return;
  2454. }
  2455. }
  2456. //
  2457. // Do all the preliminary setup work. First raise the probe.
  2458. //
  2459. st_synchronize();
  2460. plan_bed_level_matrix.set_to_identity();
  2461. plan_buffer_line(X_current, Y_current, Z_start_location,
  2462. ext_position,
  2463. homing_feedrate[Z_AXIS] / 60,
  2464. active_extruder);
  2465. st_synchronize();
  2466. //
  2467. // Now get everything to the specified probe point So we can safely do a probe to
  2468. // get us close to the bed. If the Z-Axis is far from the bed, we don't want to
  2469. // use that as a starting point for each probe.
  2470. //
  2471. if (verbose_level > 2)
  2472. SERIAL_PROTOCOL("Positioning probe for the test.\n");
  2473. plan_buffer_line( X_probe_location, Y_probe_location, Z_start_location,
  2474. ext_position,
  2475. homing_feedrate[X_AXIS]/60,
  2476. active_extruder);
  2477. st_synchronize();
  2478. current_position[X_AXIS] = X_current = st_get_position_mm(X_AXIS);
  2479. current_position[Y_AXIS] = Y_current = st_get_position_mm(Y_AXIS);
  2480. current_position[Z_AXIS] = Z_current = st_get_position_mm(Z_AXIS);
  2481. current_position[E_AXIS] = ext_position = st_get_position_mm(E_AXIS);
  2482. //
  2483. // OK, do the inital probe to get us close to the bed.
  2484. // Then retrace the right amount and use that in subsequent probes
  2485. //
  2486. engage_z_probe();
  2487. setup_for_endstop_move();
  2488. run_z_probe();
  2489. current_position[Z_AXIS] = Z_current = st_get_position_mm(Z_AXIS);
  2490. Z_start_location = st_get_position_mm(Z_AXIS) + Z_RAISE_BEFORE_PROBING;
  2491. plan_buffer_line( X_probe_location, Y_probe_location, Z_start_location,
  2492. ext_position,
  2493. homing_feedrate[X_AXIS]/60,
  2494. active_extruder);
  2495. st_synchronize();
  2496. current_position[Z_AXIS] = Z_current = st_get_position_mm(Z_AXIS);
  2497. if (engage_probe_for_each_reading) retract_z_probe();
  2498. for (n=0; n < n_samples; n++) {
  2499. do_blocking_move_to( X_probe_location, Y_probe_location, Z_start_location); // Make sure we are at the probe location
  2500. if (n_legs) {
  2501. double radius=0.0, theta=0.0;
  2502. int l;
  2503. int rotational_direction = (unsigned long) millis() & 0x0001; // clockwise or counter clockwise
  2504. radius = (unsigned long)millis() % (long)(X_MAX_LENGTH / 4); // limit how far out to go
  2505. theta = (float)((unsigned long)millis() % 360L) / (360. / (2 * 3.1415926)); // turn into radians
  2506. //SERIAL_ECHOPAIR("starting radius: ",radius);
  2507. //SERIAL_ECHOPAIR(" theta: ",theta);
  2508. //SERIAL_ECHOPAIR(" direction: ",rotational_direction);
  2509. //SERIAL_PROTOCOLLNPGM("");
  2510. float dir = rotational_direction ? 1 : -1;
  2511. for (l = 0; l < n_legs - 1; l++) {
  2512. theta += dir * (float)((unsigned long)millis() % 20L) / (360.0/(2*3.1415926)); // turn into radians
  2513. radius += (float)(((long)((unsigned long) millis() % 10L)) - 5L);
  2514. if (radius < 0.0) radius = -radius;
  2515. X_current = X_probe_location + cos(theta) * radius;
  2516. Y_current = Y_probe_location + sin(theta) * radius;
  2517. // Make sure our X & Y are sane
  2518. X_current = constrain(X_current, X_MIN_POS, X_MAX_POS);
  2519. Y_current = constrain(Y_current, Y_MIN_POS, Y_MAX_POS);
  2520. if (verbose_level > 3) {
  2521. SERIAL_ECHOPAIR("x: ", X_current);
  2522. SERIAL_ECHOPAIR("y: ", Y_current);
  2523. SERIAL_PROTOCOLLNPGM("");
  2524. }
  2525. do_blocking_move_to( X_current, Y_current, Z_current );
  2526. }
  2527. do_blocking_move_to( X_probe_location, Y_probe_location, Z_start_location); // Go back to the probe location
  2528. }
  2529. if (engage_probe_for_each_reading) {
  2530. engage_z_probe();
  2531. delay(1000);
  2532. }
  2533. setup_for_endstop_move();
  2534. run_z_probe();
  2535. sample_set[n] = current_position[Z_AXIS];
  2536. //
  2537. // Get the current mean for the data points we have so far
  2538. //
  2539. sum = 0.0;
  2540. for (j=0; j<=n; j++) sum += sample_set[j];
  2541. mean = sum / (double (n+1));
  2542. //
  2543. // Now, use that mean to calculate the standard deviation for the
  2544. // data points we have so far
  2545. //
  2546. sum = 0.0;
  2547. for (j=0; j<=n; j++) sum += (sample_set[j]-mean) * (sample_set[j]-mean);
  2548. sigma = sqrt( sum / (double (n+1)) );
  2549. if (verbose_level > 1) {
  2550. SERIAL_PROTOCOL(n+1);
  2551. SERIAL_PROTOCOL(" of ");
  2552. SERIAL_PROTOCOL(n_samples);
  2553. SERIAL_PROTOCOLPGM(" z: ");
  2554. SERIAL_PROTOCOL_F(current_position[Z_AXIS], 6);
  2555. }
  2556. if (verbose_level > 2) {
  2557. SERIAL_PROTOCOL(" mean: ");
  2558. SERIAL_PROTOCOL_F(mean,6);
  2559. SERIAL_PROTOCOL(" sigma: ");
  2560. SERIAL_PROTOCOL_F(sigma,6);
  2561. }
  2562. if (verbose_level > 0) SERIAL_EOL;
  2563. plan_buffer_line(X_probe_location, Y_probe_location, Z_start_location,
  2564. current_position[E_AXIS], homing_feedrate[Z_AXIS]/60, active_extruder);
  2565. st_synchronize();
  2566. if (engage_probe_for_each_reading) {
  2567. retract_z_probe();
  2568. delay(1000);
  2569. }
  2570. }
  2571. retract_z_probe();
  2572. delay(1000);
  2573. clean_up_after_endstop_move();
  2574. // enable_endstops(true);
  2575. if (verbose_level > 0) {
  2576. SERIAL_PROTOCOLPGM("Mean: ");
  2577. SERIAL_PROTOCOL_F(mean, 6);
  2578. SERIAL_EOL;
  2579. }
  2580. SERIAL_PROTOCOLPGM("Standard Deviation: ");
  2581. SERIAL_PROTOCOL_F(sigma, 6);
  2582. SERIAL_EOL; SERIAL_EOL;
  2583. }
  2584. #endif // ENABLE_AUTO_BED_LEVELING && Z_PROBE_REPEATABILITY_TEST
  2585. /**
  2586. * M104: Set hot end temperature
  2587. */
  2588. inline void gcode_M104() {
  2589. if (setTargetedHotend(104)) return;
  2590. if (code_seen('S')) setTargetHotend(code_value(), tmp_extruder);
  2591. #ifdef DUAL_X_CARRIAGE
  2592. if (dual_x_carriage_mode == DXC_DUPLICATION_MODE && tmp_extruder == 0)
  2593. setTargetHotend1(code_value() == 0.0 ? 0.0 : code_value() + duplicate_extruder_temp_offset);
  2594. #endif
  2595. setWatch();
  2596. }
  2597. /**
  2598. * M105: Read hot end and bed temperature
  2599. */
  2600. inline void gcode_M105() {
  2601. if (setTargetedHotend(105)) return;
  2602. #if defined(TEMP_0_PIN) && TEMP_0_PIN > -1
  2603. SERIAL_PROTOCOLPGM("ok T:");
  2604. SERIAL_PROTOCOL_F(degHotend(tmp_extruder),1);
  2605. SERIAL_PROTOCOLPGM(" /");
  2606. SERIAL_PROTOCOL_F(degTargetHotend(tmp_extruder),1);
  2607. #if defined(TEMP_BED_PIN) && TEMP_BED_PIN > -1
  2608. SERIAL_PROTOCOLPGM(" B:");
  2609. SERIAL_PROTOCOL_F(degBed(),1);
  2610. SERIAL_PROTOCOLPGM(" /");
  2611. SERIAL_PROTOCOL_F(degTargetBed(),1);
  2612. #endif //TEMP_BED_PIN
  2613. for (int8_t cur_extruder = 0; cur_extruder < EXTRUDERS; ++cur_extruder) {
  2614. SERIAL_PROTOCOLPGM(" T");
  2615. SERIAL_PROTOCOL(cur_extruder);
  2616. SERIAL_PROTOCOLPGM(":");
  2617. SERIAL_PROTOCOL_F(degHotend(cur_extruder),1);
  2618. SERIAL_PROTOCOLPGM(" /");
  2619. SERIAL_PROTOCOL_F(degTargetHotend(cur_extruder),1);
  2620. }
  2621. #else
  2622. SERIAL_ERROR_START;
  2623. SERIAL_ERRORLNPGM(MSG_ERR_NO_THERMISTORS);
  2624. #endif
  2625. SERIAL_PROTOCOLPGM(" @:");
  2626. #ifdef EXTRUDER_WATTS
  2627. SERIAL_PROTOCOL((EXTRUDER_WATTS * getHeaterPower(tmp_extruder))/127);
  2628. SERIAL_PROTOCOLPGM("W");
  2629. #else
  2630. SERIAL_PROTOCOL(getHeaterPower(tmp_extruder));
  2631. #endif
  2632. SERIAL_PROTOCOLPGM(" B@:");
  2633. #ifdef BED_WATTS
  2634. SERIAL_PROTOCOL((BED_WATTS * getHeaterPower(-1))/127);
  2635. SERIAL_PROTOCOLPGM("W");
  2636. #else
  2637. SERIAL_PROTOCOL(getHeaterPower(-1));
  2638. #endif
  2639. #ifdef SHOW_TEMP_ADC_VALUES
  2640. #if defined(TEMP_BED_PIN) && TEMP_BED_PIN > -1
  2641. SERIAL_PROTOCOLPGM(" ADC B:");
  2642. SERIAL_PROTOCOL_F(degBed(),1);
  2643. SERIAL_PROTOCOLPGM("C->");
  2644. SERIAL_PROTOCOL_F(rawBedTemp()/OVERSAMPLENR,0);
  2645. #endif
  2646. for (int8_t cur_extruder = 0; cur_extruder < EXTRUDERS; ++cur_extruder) {
  2647. SERIAL_PROTOCOLPGM(" T");
  2648. SERIAL_PROTOCOL(cur_extruder);
  2649. SERIAL_PROTOCOLPGM(":");
  2650. SERIAL_PROTOCOL_F(degHotend(cur_extruder),1);
  2651. SERIAL_PROTOCOLPGM("C->");
  2652. SERIAL_PROTOCOL_F(rawHotendTemp(cur_extruder)/OVERSAMPLENR,0);
  2653. }
  2654. #endif
  2655. SERIAL_PROTOCOLLN("");
  2656. }
  2657. #if defined(FAN_PIN) && FAN_PIN > -1
  2658. /**
  2659. * M106: Set Fan Speed
  2660. */
  2661. inline void gcode_M106() { fanSpeed = code_seen('S') ? constrain(code_value(), 0, 255) : 255; }
  2662. /**
  2663. * M107: Fan Off
  2664. */
  2665. inline void gcode_M107() { fanSpeed = 0; }
  2666. #endif //FAN_PIN
  2667. /**
  2668. * M109: Wait for extruder(s) to reach temperature
  2669. */
  2670. inline void gcode_M109() {
  2671. if (setTargetedHotend(109)) return;
  2672. LCD_MESSAGEPGM(MSG_HEATING);
  2673. CooldownNoWait = code_seen('S');
  2674. if (CooldownNoWait || code_seen('R')) {
  2675. setTargetHotend(code_value(), tmp_extruder);
  2676. #ifdef DUAL_X_CARRIAGE
  2677. if (dual_x_carriage_mode == DXC_DUPLICATION_MODE && tmp_extruder == 0)
  2678. setTargetHotend1(code_value() == 0.0 ? 0.0 : code_value() + duplicate_extruder_temp_offset);
  2679. #endif
  2680. }
  2681. #ifdef AUTOTEMP
  2682. autotemp_enabled = code_seen('F');
  2683. if (autotemp_enabled) autotemp_factor = code_value();
  2684. if (code_seen('S')) autotemp_min = code_value();
  2685. if (code_seen('B')) autotemp_max = code_value();
  2686. #endif
  2687. setWatch();
  2688. unsigned long timetemp = millis();
  2689. /* See if we are heating up or cooling down */
  2690. target_direction = isHeatingHotend(tmp_extruder); // true if heating, false if cooling
  2691. cancel_heatup = false;
  2692. #ifdef TEMP_RESIDENCY_TIME
  2693. long residencyStart = -1;
  2694. /* continue to loop until we have reached the target temp
  2695. _and_ until TEMP_RESIDENCY_TIME hasn't passed since we reached it */
  2696. while((!cancel_heatup)&&((residencyStart == -1) ||
  2697. (residencyStart >= 0 && (((unsigned int) (millis() - residencyStart)) < (TEMP_RESIDENCY_TIME * 1000UL)))) )
  2698. #else
  2699. while ( target_direction ? (isHeatingHotend(tmp_extruder)) : (isCoolingHotend(tmp_extruder)&&(CooldownNoWait==false)) )
  2700. #endif //TEMP_RESIDENCY_TIME
  2701. { // while loop
  2702. if (millis() > timetemp + 1000UL) { //Print temp & remaining time every 1s while waiting
  2703. SERIAL_PROTOCOLPGM("T:");
  2704. SERIAL_PROTOCOL_F(degHotend(tmp_extruder),1);
  2705. SERIAL_PROTOCOLPGM(" E:");
  2706. SERIAL_PROTOCOL((int)tmp_extruder);
  2707. #ifdef TEMP_RESIDENCY_TIME
  2708. SERIAL_PROTOCOLPGM(" W:");
  2709. if (residencyStart > -1) {
  2710. timetemp = ((TEMP_RESIDENCY_TIME * 1000UL) - (millis() - residencyStart)) / 1000UL;
  2711. SERIAL_PROTOCOLLN( timetemp );
  2712. }
  2713. else {
  2714. SERIAL_PROTOCOLLN( "?" );
  2715. }
  2716. #else
  2717. SERIAL_PROTOCOLLN("");
  2718. #endif
  2719. timetemp = millis();
  2720. }
  2721. manage_heater();
  2722. manage_inactivity();
  2723. lcd_update();
  2724. #ifdef TEMP_RESIDENCY_TIME
  2725. // start/restart the TEMP_RESIDENCY_TIME timer whenever we reach target temp for the first time
  2726. // or when current temp falls outside the hysteresis after target temp was reached
  2727. if ((residencyStart == -1 && target_direction && (degHotend(tmp_extruder) >= (degTargetHotend(tmp_extruder)-TEMP_WINDOW))) ||
  2728. (residencyStart == -1 && !target_direction && (degHotend(tmp_extruder) <= (degTargetHotend(tmp_extruder)+TEMP_WINDOW))) ||
  2729. (residencyStart > -1 && labs(degHotend(tmp_extruder) - degTargetHotend(tmp_extruder)) > TEMP_HYSTERESIS) )
  2730. {
  2731. residencyStart = millis();
  2732. }
  2733. #endif //TEMP_RESIDENCY_TIME
  2734. }
  2735. LCD_MESSAGEPGM(MSG_HEATING_COMPLETE);
  2736. starttime = previous_millis_cmd = millis();
  2737. }
  2738. #if defined(TEMP_BED_PIN) && TEMP_BED_PIN > -1
  2739. /**
  2740. * M190: Sxxx Wait for bed current temp to reach target temp. Waits only when heating
  2741. * Rxxx Wait for bed current temp to reach target temp. Waits when heating and cooling
  2742. */
  2743. inline void gcode_M190() {
  2744. LCD_MESSAGEPGM(MSG_BED_HEATING);
  2745. CooldownNoWait = code_seen('S');
  2746. if (CooldownNoWait || code_seen('R'))
  2747. setTargetBed(code_value());
  2748. unsigned long timetemp = millis();
  2749. cancel_heatup = false;
  2750. target_direction = isHeatingBed(); // true if heating, false if cooling
  2751. while ( (target_direction)&&(!cancel_heatup) ? (isHeatingBed()) : (isCoolingBed()&&(CooldownNoWait==false)) ) {
  2752. unsigned long ms = millis();
  2753. if (ms > timetemp + 1000UL) { //Print Temp Reading every 1 second while heating up.
  2754. timetemp = ms;
  2755. float tt = degHotend(active_extruder);
  2756. SERIAL_PROTOCOLPGM("T:");
  2757. SERIAL_PROTOCOL(tt);
  2758. SERIAL_PROTOCOLPGM(" E:");
  2759. SERIAL_PROTOCOL((int)active_extruder);
  2760. SERIAL_PROTOCOLPGM(" B:");
  2761. SERIAL_PROTOCOL_F(degBed(), 1);
  2762. SERIAL_PROTOCOLLN("");
  2763. }
  2764. manage_heater();
  2765. manage_inactivity();
  2766. lcd_update();
  2767. }
  2768. LCD_MESSAGEPGM(MSG_BED_DONE);
  2769. previous_millis_cmd = millis();
  2770. }
  2771. #endif // TEMP_BED_PIN > -1
  2772. /**
  2773. * M112: Emergency Stop
  2774. */
  2775. inline void gcode_M112() {
  2776. kill();
  2777. }
  2778. #ifdef BARICUDA
  2779. #if defined(HEATER_1_PIN) && HEATER_1_PIN > -1
  2780. /**
  2781. * M126: Heater 1 valve open
  2782. */
  2783. inline void gcode_M126() { ValvePressure = code_seen('S') ? constrain(code_value(), 0, 255) : 255; }
  2784. /**
  2785. * M127: Heater 1 valve close
  2786. */
  2787. inline void gcode_M127() { ValvePressure = 0; }
  2788. #endif
  2789. #if defined(HEATER_2_PIN) && HEATER_2_PIN > -1
  2790. /**
  2791. * M128: Heater 2 valve open
  2792. */
  2793. inline void gcode_M128() { EtoPPressure = code_seen('S') ? constrain(code_value(), 0, 255) : 255; }
  2794. /**
  2795. * M129: Heater 2 valve close
  2796. */
  2797. inline void gcode_M129() { EtoPPressure = 0; }
  2798. #endif
  2799. #endif //BARICUDA
  2800. /**
  2801. * M140: Set bed temperature
  2802. */
  2803. inline void gcode_M140() {
  2804. if (code_seen('S')) setTargetBed(code_value());
  2805. }
  2806. #if defined(PS_ON_PIN) && PS_ON_PIN > -1
  2807. /**
  2808. * M80: Turn on Power Supply
  2809. */
  2810. inline void gcode_M80() {
  2811. OUT_WRITE(PS_ON_PIN, PS_ON_AWAKE); //GND
  2812. // If you have a switch on suicide pin, this is useful
  2813. // if you want to start another print with suicide feature after
  2814. // a print without suicide...
  2815. #if defined(SUICIDE_PIN) && SUICIDE_PIN > -1
  2816. OUT_WRITE(SUICIDE_PIN, HIGH);
  2817. #endif
  2818. #ifdef ULTIPANEL
  2819. powersupply = true;
  2820. LCD_MESSAGEPGM(WELCOME_MSG);
  2821. lcd_update();
  2822. #endif
  2823. }
  2824. #endif // PS_ON_PIN
  2825. /**
  2826. * M81: Turn off Power Supply
  2827. */
  2828. inline void gcode_M81() {
  2829. disable_heater();
  2830. st_synchronize();
  2831. disable_e0();
  2832. disable_e1();
  2833. disable_e2();
  2834. disable_e3();
  2835. finishAndDisableSteppers();
  2836. fanSpeed = 0;
  2837. delay(1000); // Wait 1 second before switching off
  2838. #if defined(SUICIDE_PIN) && SUICIDE_PIN > -1
  2839. st_synchronize();
  2840. suicide();
  2841. #elif defined(PS_ON_PIN) && PS_ON_PIN > -1
  2842. OUT_WRITE(PS_ON_PIN, PS_ON_ASLEEP);
  2843. #endif
  2844. #ifdef ULTIPANEL
  2845. powersupply = false;
  2846. LCD_MESSAGEPGM(MACHINE_NAME " " MSG_OFF ".");
  2847. lcd_update();
  2848. #endif
  2849. }
  2850. /**
  2851. * M82: Set E codes absolute (default)
  2852. */
  2853. inline void gcode_M82() { axis_relative_modes[E_AXIS] = false; }
  2854. /**
  2855. * M82: Set E codes relative while in Absolute Coordinates (G90) mode
  2856. */
  2857. inline void gcode_M83() { axis_relative_modes[E_AXIS] = true; }
  2858. /**
  2859. * M18, M84: Disable all stepper motors
  2860. */
  2861. inline void gcode_M18_M84() {
  2862. if (code_seen('S')) {
  2863. stepper_inactive_time = code_value() * 1000;
  2864. }
  2865. else {
  2866. bool all_axis = !((code_seen(axis_codes[X_AXIS])) || (code_seen(axis_codes[Y_AXIS])) || (code_seen(axis_codes[Z_AXIS]))|| (code_seen(axis_codes[E_AXIS])));
  2867. if (all_axis) {
  2868. st_synchronize();
  2869. disable_e0();
  2870. disable_e1();
  2871. disable_e2();
  2872. disable_e3();
  2873. finishAndDisableSteppers();
  2874. }
  2875. else {
  2876. st_synchronize();
  2877. if (code_seen('X')) disable_x();
  2878. if (code_seen('Y')) disable_y();
  2879. if (code_seen('Z')) disable_z();
  2880. #if ((E0_ENABLE_PIN != X_ENABLE_PIN) && (E1_ENABLE_PIN != Y_ENABLE_PIN)) // Only enable on boards that have seperate ENABLE_PINS
  2881. if (code_seen('E')) {
  2882. disable_e0();
  2883. disable_e1();
  2884. disable_e2();
  2885. disable_e3();
  2886. }
  2887. #endif
  2888. }
  2889. }
  2890. }
  2891. /**
  2892. * M85: Set inactivity shutdown timer with parameter S<seconds>. To disable set zero (default)
  2893. */
  2894. inline void gcode_M85() {
  2895. if (code_seen('S')) max_inactive_time = code_value() * 1000;
  2896. }
  2897. /**
  2898. * M92: Set inactivity shutdown timer with parameter S<seconds>. To disable set zero (default)
  2899. */
  2900. inline void gcode_M92() {
  2901. for(int8_t i=0; i < NUM_AXIS; i++) {
  2902. if (code_seen(axis_codes[i])) {
  2903. if (i == E_AXIS) {
  2904. float value = code_value();
  2905. if (value < 20.0) {
  2906. float factor = axis_steps_per_unit[i] / value; // increase e constants if M92 E14 is given for netfab.
  2907. max_e_jerk *= factor;
  2908. max_feedrate[i] *= factor;
  2909. axis_steps_per_sqr_second[i] *= factor;
  2910. }
  2911. axis_steps_per_unit[i] = value;
  2912. }
  2913. else {
  2914. axis_steps_per_unit[i] = code_value();
  2915. }
  2916. }
  2917. }
  2918. }
  2919. /**
  2920. * M114: Output current position to serial port
  2921. */
  2922. inline void gcode_M114() {
  2923. SERIAL_PROTOCOLPGM("X:");
  2924. SERIAL_PROTOCOL(current_position[X_AXIS]);
  2925. SERIAL_PROTOCOLPGM(" Y:");
  2926. SERIAL_PROTOCOL(current_position[Y_AXIS]);
  2927. SERIAL_PROTOCOLPGM(" Z:");
  2928. SERIAL_PROTOCOL(current_position[Z_AXIS]);
  2929. SERIAL_PROTOCOLPGM(" E:");
  2930. SERIAL_PROTOCOL(current_position[E_AXIS]);
  2931. SERIAL_PROTOCOLPGM(MSG_COUNT_X);
  2932. SERIAL_PROTOCOL(float(st_get_position(X_AXIS))/axis_steps_per_unit[X_AXIS]);
  2933. SERIAL_PROTOCOLPGM(" Y:");
  2934. SERIAL_PROTOCOL(float(st_get_position(Y_AXIS))/axis_steps_per_unit[Y_AXIS]);
  2935. SERIAL_PROTOCOLPGM(" Z:");
  2936. SERIAL_PROTOCOL(float(st_get_position(Z_AXIS))/axis_steps_per_unit[Z_AXIS]);
  2937. SERIAL_PROTOCOLLN("");
  2938. #ifdef SCARA
  2939. SERIAL_PROTOCOLPGM("SCARA Theta:");
  2940. SERIAL_PROTOCOL(delta[X_AXIS]);
  2941. SERIAL_PROTOCOLPGM(" Psi+Theta:");
  2942. SERIAL_PROTOCOL(delta[Y_AXIS]);
  2943. SERIAL_PROTOCOLLN("");
  2944. SERIAL_PROTOCOLPGM("SCARA Cal - Theta:");
  2945. SERIAL_PROTOCOL(delta[X_AXIS]+home_offset[X_AXIS]);
  2946. SERIAL_PROTOCOLPGM(" Psi+Theta (90):");
  2947. SERIAL_PROTOCOL(delta[Y_AXIS]-delta[X_AXIS]-90+home_offset[Y_AXIS]);
  2948. SERIAL_PROTOCOLLN("");
  2949. SERIAL_PROTOCOLPGM("SCARA step Cal - Theta:");
  2950. SERIAL_PROTOCOL(delta[X_AXIS]/90*axis_steps_per_unit[X_AXIS]);
  2951. SERIAL_PROTOCOLPGM(" Psi+Theta:");
  2952. SERIAL_PROTOCOL((delta[Y_AXIS]-delta[X_AXIS])/90*axis_steps_per_unit[Y_AXIS]);
  2953. SERIAL_PROTOCOLLN("");
  2954. SERIAL_PROTOCOLLN("");
  2955. #endif
  2956. }
  2957. /**
  2958. * M115: Capabilities string
  2959. */
  2960. inline void gcode_M115() {
  2961. SERIAL_PROTOCOLPGM(MSG_M115_REPORT);
  2962. }
  2963. /**
  2964. * M117: Set LCD Status Message
  2965. */
  2966. inline void gcode_M117() {
  2967. char* codepos = strchr_pointer + 5;
  2968. char* starpos = strchr(codepos, '*');
  2969. if (starpos) *starpos = '\0';
  2970. lcd_setstatus(codepos);
  2971. }
  2972. /**
  2973. * M119: Output endstop states to serial output
  2974. */
  2975. inline void gcode_M119() {
  2976. SERIAL_PROTOCOLLN(MSG_M119_REPORT);
  2977. #if defined(X_MIN_PIN) && X_MIN_PIN > -1
  2978. SERIAL_PROTOCOLPGM(MSG_X_MIN);
  2979. SERIAL_PROTOCOLLN(((READ(X_MIN_PIN)^X_MIN_ENDSTOP_INVERTING)?MSG_ENDSTOP_HIT:MSG_ENDSTOP_OPEN));
  2980. #endif
  2981. #if defined(X_MAX_PIN) && X_MAX_PIN > -1
  2982. SERIAL_PROTOCOLPGM(MSG_X_MAX);
  2983. SERIAL_PROTOCOLLN(((READ(X_MAX_PIN)^X_MAX_ENDSTOP_INVERTING)?MSG_ENDSTOP_HIT:MSG_ENDSTOP_OPEN));
  2984. #endif
  2985. #if defined(Y_MIN_PIN) && Y_MIN_PIN > -1
  2986. SERIAL_PROTOCOLPGM(MSG_Y_MIN);
  2987. SERIAL_PROTOCOLLN(((READ(Y_MIN_PIN)^Y_MIN_ENDSTOP_INVERTING)?MSG_ENDSTOP_HIT:MSG_ENDSTOP_OPEN));
  2988. #endif
  2989. #if defined(Y_MAX_PIN) && Y_MAX_PIN > -1
  2990. SERIAL_PROTOCOLPGM(MSG_Y_MAX);
  2991. SERIAL_PROTOCOLLN(((READ(Y_MAX_PIN)^Y_MAX_ENDSTOP_INVERTING)?MSG_ENDSTOP_HIT:MSG_ENDSTOP_OPEN));
  2992. #endif
  2993. #if defined(Z_MIN_PIN) && Z_MIN_PIN > -1
  2994. SERIAL_PROTOCOLPGM(MSG_Z_MIN);
  2995. SERIAL_PROTOCOLLN(((READ(Z_MIN_PIN)^Z_MIN_ENDSTOP_INVERTING)?MSG_ENDSTOP_HIT:MSG_ENDSTOP_OPEN));
  2996. #endif
  2997. #if defined(Z_MAX_PIN) && Z_MAX_PIN > -1
  2998. SERIAL_PROTOCOLPGM(MSG_Z_MAX);
  2999. SERIAL_PROTOCOLLN(((READ(Z_MAX_PIN)^Z_MAX_ENDSTOP_INVERTING)?MSG_ENDSTOP_HIT:MSG_ENDSTOP_OPEN));
  3000. #endif
  3001. #if defined(Z2_MAX_PIN) && Z2_MAX_PIN > -1
  3002. SERIAL_PROTOCOLPGM(MSG_Z2_MAX);
  3003. SERIAL_PROTOCOLLN(((READ(Z2_MAX_PIN)^Z2_MAX_ENDSTOP_INVERTING)?MSG_ENDSTOP_HIT:MSG_ENDSTOP_OPEN));
  3004. #endif
  3005. }
  3006. /**
  3007. * M120: Enable endstops
  3008. */
  3009. inline void gcode_M120() { enable_endstops(false); }
  3010. /**
  3011. * M121: Disable endstops
  3012. */
  3013. inline void gcode_M121() { enable_endstops(true); }
  3014. #ifdef BLINKM
  3015. /**
  3016. * M150: Set Status LED Color - Use R-U-B for R-G-B
  3017. */
  3018. inline void gcode_M150() {
  3019. SendColors(
  3020. code_seen('R') ? (byte)code_value() : 0,
  3021. code_seen('U') ? (byte)code_value() : 0,
  3022. code_seen('B') ? (byte)code_value() : 0
  3023. );
  3024. }
  3025. #endif // BLINKM
  3026. /**
  3027. * M200: Set filament diameter and set E axis units to cubic millimeters (use S0 to set back to millimeters).
  3028. * T<extruder>
  3029. * D<millimeters>
  3030. */
  3031. inline void gcode_M200() {
  3032. tmp_extruder = active_extruder;
  3033. if (code_seen('T')) {
  3034. tmp_extruder = code_value();
  3035. if (tmp_extruder >= EXTRUDERS) {
  3036. SERIAL_ECHO_START;
  3037. SERIAL_ECHO(MSG_M200_INVALID_EXTRUDER);
  3038. return;
  3039. }
  3040. }
  3041. if (code_seen('D')) {
  3042. float diameter = code_value();
  3043. // setting any extruder filament size disables volumetric on the assumption that
  3044. // slicers either generate in extruder values as cubic mm or as as filament feeds
  3045. // for all extruders
  3046. volumetric_enabled = (diameter != 0.0);
  3047. if (volumetric_enabled) {
  3048. filament_size[tmp_extruder] = diameter;
  3049. // make sure all extruders have some sane value for the filament size
  3050. for (int i=0; i<EXTRUDERS; i++)
  3051. if (! filament_size[i]) filament_size[i] = DEFAULT_NOMINAL_FILAMENT_DIA;
  3052. }
  3053. }
  3054. else {
  3055. //reserved for setting filament diameter via UFID or filament measuring device
  3056. return;
  3057. }
  3058. calculate_volumetric_multipliers();
  3059. }
  3060. /**
  3061. * M201: Set max acceleration in units/s^2 for print moves (M201 X1000 Y1000)
  3062. */
  3063. inline void gcode_M201() {
  3064. for (int8_t i=0; i < NUM_AXIS; i++) {
  3065. if (code_seen(axis_codes[i])) {
  3066. max_acceleration_units_per_sq_second[i] = code_value();
  3067. }
  3068. }
  3069. // steps per sq second need to be updated to agree with the units per sq second (as they are what is used in the planner)
  3070. reset_acceleration_rates();
  3071. }
  3072. #if 0 // Not used for Sprinter/grbl gen6
  3073. inline void gcode_M202() {
  3074. for(int8_t i=0; i < NUM_AXIS; i++) {
  3075. if(code_seen(axis_codes[i])) axis_travel_steps_per_sqr_second[i] = code_value() * axis_steps_per_unit[i];
  3076. }
  3077. }
  3078. #endif
  3079. /**
  3080. * M203: Set maximum feedrate that your machine can sustain (M203 X200 Y200 Z300 E10000) in mm/sec
  3081. */
  3082. inline void gcode_M203() {
  3083. for (int8_t i=0; i < NUM_AXIS; i++) {
  3084. if (code_seen(axis_codes[i])) {
  3085. max_feedrate[i] = code_value();
  3086. }
  3087. }
  3088. }
  3089. /**
  3090. * M204: Set Accelerations in mm/sec^2 (M204 P1200 R3000 T3000)
  3091. *
  3092. * P = Printing moves
  3093. * R = Retract only (no X, Y, Z) moves
  3094. * T = Travel (non printing) moves
  3095. *
  3096. * Also sets minimum segment time in ms (B20000) to prevent buffer under-runs and M20 minimum feedrate
  3097. */
  3098. inline void gcode_M204() {
  3099. if (code_seen('S')) // Kept for legacy compatibility. Should NOT BE USED for new developments.
  3100. {
  3101. acceleration = code_value();
  3102. travel_acceleration = acceleration;
  3103. SERIAL_ECHOPAIR("Setting Printing and Travelling Acceleration: ", acceleration );
  3104. SERIAL_EOL;
  3105. }
  3106. if (code_seen('P'))
  3107. {
  3108. acceleration = code_value();
  3109. SERIAL_ECHOPAIR("Setting Printing Acceleration: ", acceleration );
  3110. SERIAL_EOL;
  3111. }
  3112. if (code_seen('R'))
  3113. {
  3114. retract_acceleration = code_value();
  3115. SERIAL_ECHOPAIR("Setting Retract Acceleration: ", retract_acceleration );
  3116. SERIAL_EOL;
  3117. }
  3118. if (code_seen('T'))
  3119. {
  3120. travel_acceleration = code_value();
  3121. SERIAL_ECHOPAIR("Setting Travel Acceleration: ", travel_acceleration );
  3122. SERIAL_EOL;
  3123. }
  3124. }
  3125. /**
  3126. * M205: Set Advanced Settings
  3127. *
  3128. * S = Min Feed Rate (mm/s)
  3129. * T = Min Travel Feed Rate (mm/s)
  3130. * B = Min Segment Time (µs)
  3131. * X = Max XY Jerk (mm/s/s)
  3132. * Z = Max Z Jerk (mm/s/s)
  3133. * E = Max E Jerk (mm/s/s)
  3134. */
  3135. inline void gcode_M205() {
  3136. if (code_seen('S')) minimumfeedrate = code_value();
  3137. if (code_seen('T')) mintravelfeedrate = code_value();
  3138. if (code_seen('B')) minsegmenttime = code_value();
  3139. if (code_seen('X')) max_xy_jerk = code_value();
  3140. if (code_seen('Z')) max_z_jerk = code_value();
  3141. if (code_seen('E')) max_e_jerk = code_value();
  3142. }
  3143. /**
  3144. * M206: Set Additional Homing Offset (X Y Z). SCARA aliases T=X, P=Y
  3145. */
  3146. inline void gcode_M206() {
  3147. for (int8_t i=X_AXIS; i <= Z_AXIS; i++) {
  3148. if (code_seen(axis_codes[i])) {
  3149. home_offset[i] = code_value();
  3150. }
  3151. }
  3152. #ifdef SCARA
  3153. if (code_seen('T')) home_offset[X_AXIS] = code_value(); // Theta
  3154. if (code_seen('P')) home_offset[Y_AXIS] = code_value(); // Psi
  3155. #endif
  3156. }
  3157. #ifdef DELTA
  3158. /**
  3159. * M665: Set delta configurations
  3160. *
  3161. * L = diagonal rod
  3162. * R = delta radius
  3163. * S = segments per second
  3164. */
  3165. inline void gcode_M665() {
  3166. if (code_seen('L')) delta_diagonal_rod = code_value();
  3167. if (code_seen('R')) delta_radius = code_value();
  3168. if (code_seen('S')) delta_segments_per_second = code_value();
  3169. recalc_delta_settings(delta_radius, delta_diagonal_rod);
  3170. }
  3171. /**
  3172. * M666: Set delta endstop adjustment
  3173. */
  3174. inline void gcode_M666() {
  3175. for (int8_t i = 0; i < 3; i++) {
  3176. if (code_seen(axis_codes[i])) {
  3177. endstop_adj[i] = code_value();
  3178. }
  3179. }
  3180. }
  3181. #elif defined(Z_DUAL_ENDSTOPS)
  3182. /**
  3183. * M666: For Z Dual Endstop setup, set z axis offset to the z2 axis.
  3184. */
  3185. inline void gcode_M666() {
  3186. if (code_seen('Z')) z_endstop_adj = code_value();
  3187. SERIAL_ECHOPAIR("Z Endstop Adjustment set to (mm):", z_endstop_adj );
  3188. SERIAL_EOL;
  3189. }
  3190. #endif // DELTA
  3191. #ifdef FWRETRACT
  3192. /**
  3193. * M207: Set retract length S[positive mm] F[feedrate mm/min] Z[additional zlift/hop]
  3194. */
  3195. inline void gcode_M207() {
  3196. if (code_seen('S')) retract_length = code_value();
  3197. if (code_seen('F')) retract_feedrate = code_value() / 60;
  3198. if (code_seen('Z')) retract_zlift = code_value();
  3199. }
  3200. /**
  3201. * M208: Set retract recover length S[positive mm surplus to the M207 S*] F[feedrate mm/min]
  3202. */
  3203. inline void gcode_M208() {
  3204. if (code_seen('S')) retract_recover_length = code_value();
  3205. if (code_seen('F')) retract_recover_feedrate = code_value() / 60;
  3206. }
  3207. /**
  3208. * M209: Enable automatic retract (M209 S1)
  3209. * detect if the slicer did not support G10/11: every normal extrude-only move will be classified as retract depending on the direction.
  3210. */
  3211. inline void gcode_M209() {
  3212. if (code_seen('S')) {
  3213. int t = code_value();
  3214. switch(t) {
  3215. case 0:
  3216. autoretract_enabled = false;
  3217. break;
  3218. case 1:
  3219. autoretract_enabled = true;
  3220. break;
  3221. default:
  3222. SERIAL_ECHO_START;
  3223. SERIAL_ECHOPGM(MSG_UNKNOWN_COMMAND);
  3224. SERIAL_ECHO(cmdbuffer[bufindr]);
  3225. SERIAL_ECHOLNPGM("\"");
  3226. return;
  3227. }
  3228. for (int i=0; i<EXTRUDERS; i++) retracted[i] = false;
  3229. }
  3230. }
  3231. #endif // FWRETRACT
  3232. #if EXTRUDERS > 1
  3233. /**
  3234. * M218 - set hotend offset (in mm), T<extruder_number> X<offset_on_X> Y<offset_on_Y>
  3235. */
  3236. inline void gcode_M218() {
  3237. if (setTargetedHotend(218)) return;
  3238. if (code_seen('X')) extruder_offset[X_AXIS][tmp_extruder] = code_value();
  3239. if (code_seen('Y')) extruder_offset[Y_AXIS][tmp_extruder] = code_value();
  3240. #ifdef DUAL_X_CARRIAGE
  3241. if (code_seen('Z')) extruder_offset[Z_AXIS][tmp_extruder] = code_value();
  3242. #endif
  3243. SERIAL_ECHO_START;
  3244. SERIAL_ECHOPGM(MSG_HOTEND_OFFSET);
  3245. for (tmp_extruder = 0; tmp_extruder < EXTRUDERS; tmp_extruder++) {
  3246. SERIAL_ECHO(" ");
  3247. SERIAL_ECHO(extruder_offset[X_AXIS][tmp_extruder]);
  3248. SERIAL_ECHO(",");
  3249. SERIAL_ECHO(extruder_offset[Y_AXIS][tmp_extruder]);
  3250. #ifdef DUAL_X_CARRIAGE
  3251. SERIAL_ECHO(",");
  3252. SERIAL_ECHO(extruder_offset[Z_AXIS][tmp_extruder]);
  3253. #endif
  3254. }
  3255. SERIAL_EOL;
  3256. }
  3257. #endif // EXTRUDERS > 1
  3258. /**
  3259. * M220: Set speed percentage factor, aka "Feed Rate" (M220 S95)
  3260. */
  3261. inline void gcode_M220() {
  3262. if (code_seen('S')) feedmultiply = code_value();
  3263. }
  3264. /**
  3265. * M221: Set extrusion percentage (M221 T0 S95)
  3266. */
  3267. inline void gcode_M221() {
  3268. if (code_seen('S')) {
  3269. int sval = code_value();
  3270. if (code_seen('T')) {
  3271. if (setTargetedHotend(221)) return;
  3272. extruder_multiply[tmp_extruder] = sval;
  3273. }
  3274. else {
  3275. extrudemultiply = sval;
  3276. }
  3277. }
  3278. }
  3279. /**
  3280. * M226: Wait until the specified pin reaches the state required (M226 P<pin> S<state>)
  3281. */
  3282. inline void gcode_M226() {
  3283. if (code_seen('P')) {
  3284. int pin_number = code_value();
  3285. int pin_state = code_seen('S') ? code_value() : -1; // required pin state - default is inverted
  3286. if (pin_state >= -1 && pin_state <= 1) {
  3287. for (int8_t i = 0; i < (int8_t)(sizeof(sensitive_pins)/sizeof(*sensitive_pins)); i++) {
  3288. if (sensitive_pins[i] == pin_number) {
  3289. pin_number = -1;
  3290. break;
  3291. }
  3292. }
  3293. if (pin_number > -1) {
  3294. int target = LOW;
  3295. st_synchronize();
  3296. pinMode(pin_number, INPUT);
  3297. switch(pin_state){
  3298. case 1:
  3299. target = HIGH;
  3300. break;
  3301. case 0:
  3302. target = LOW;
  3303. break;
  3304. case -1:
  3305. target = !digitalRead(pin_number);
  3306. break;
  3307. }
  3308. while(digitalRead(pin_number) != target) {
  3309. manage_heater();
  3310. manage_inactivity();
  3311. lcd_update();
  3312. }
  3313. } // pin_number > -1
  3314. } // pin_state -1 0 1
  3315. } // code_seen('P')
  3316. }
  3317. #if NUM_SERVOS > 0
  3318. /**
  3319. * M280: Set servo position absolute. P: servo index, S: angle or microseconds
  3320. */
  3321. inline void gcode_M280() {
  3322. int servo_index = code_seen('P') ? code_value() : -1;
  3323. int servo_position = 0;
  3324. if (code_seen('S')) {
  3325. servo_position = code_value();
  3326. if ((servo_index >= 0) && (servo_index < NUM_SERVOS)) {
  3327. #if SERVO_LEVELING
  3328. servos[servo_index].attach(0);
  3329. #endif
  3330. servos[servo_index].write(servo_position);
  3331. #if SERVO_LEVELING
  3332. delay(PROBE_SERVO_DEACTIVATION_DELAY);
  3333. servos[servo_index].detach();
  3334. #endif
  3335. }
  3336. else {
  3337. SERIAL_ECHO_START;
  3338. SERIAL_ECHO("Servo ");
  3339. SERIAL_ECHO(servo_index);
  3340. SERIAL_ECHOLN(" out of range");
  3341. }
  3342. }
  3343. else if (servo_index >= 0) {
  3344. SERIAL_PROTOCOL(MSG_OK);
  3345. SERIAL_PROTOCOL(" Servo ");
  3346. SERIAL_PROTOCOL(servo_index);
  3347. SERIAL_PROTOCOL(": ");
  3348. SERIAL_PROTOCOL(servos[servo_index].read());
  3349. SERIAL_PROTOCOLLN("");
  3350. }
  3351. }
  3352. #endif // NUM_SERVOS > 0
  3353. #if defined(LARGE_FLASH) && (BEEPER > 0 || defined(ULTRALCD) || defined(LCD_USE_I2C_BUZZER))
  3354. /**
  3355. * M300: Play beep sound S<frequency Hz> P<duration ms>
  3356. */
  3357. inline void gcode_M300() {
  3358. int beepS = code_seen('S') ? code_value() : 110;
  3359. int beepP = code_seen('P') ? code_value() : 1000;
  3360. if (beepS > 0) {
  3361. #if BEEPER > 0
  3362. tone(BEEPER, beepS);
  3363. delay(beepP);
  3364. noTone(BEEPER);
  3365. #elif defined(ULTRALCD)
  3366. lcd_buzz(beepS, beepP);
  3367. #elif defined(LCD_USE_I2C_BUZZER)
  3368. lcd_buzz(beepP, beepS);
  3369. #endif
  3370. }
  3371. else {
  3372. delay(beepP);
  3373. }
  3374. }
  3375. #endif // LARGE_FLASH && (BEEPER>0 || ULTRALCD || LCD_USE_I2C_BUZZER)
  3376. #ifdef PIDTEMP
  3377. /**
  3378. * M301: Set PID parameters P I D (and optionally C)
  3379. */
  3380. inline void gcode_M301() {
  3381. // multi-extruder PID patch: M301 updates or prints a single extruder's PID values
  3382. // default behaviour (omitting E parameter) is to update for extruder 0 only
  3383. int e = code_seen('E') ? code_value() : 0; // extruder being updated
  3384. if (e < EXTRUDERS) { // catch bad input value
  3385. if (code_seen('P')) PID_PARAM(Kp, e) = code_value();
  3386. if (code_seen('I')) PID_PARAM(Ki, e) = scalePID_i(code_value());
  3387. if (code_seen('D')) PID_PARAM(Kd, e) = scalePID_d(code_value());
  3388. #ifdef PID_ADD_EXTRUSION_RATE
  3389. if (code_seen('C')) PID_PARAM(Kc, e) = code_value();
  3390. #endif
  3391. updatePID();
  3392. SERIAL_PROTOCOL(MSG_OK);
  3393. #ifdef PID_PARAMS_PER_EXTRUDER
  3394. SERIAL_PROTOCOL(" e:"); // specify extruder in serial output
  3395. SERIAL_PROTOCOL(e);
  3396. #endif // PID_PARAMS_PER_EXTRUDER
  3397. SERIAL_PROTOCOL(" p:");
  3398. SERIAL_PROTOCOL(PID_PARAM(Kp, e));
  3399. SERIAL_PROTOCOL(" i:");
  3400. SERIAL_PROTOCOL(unscalePID_i(PID_PARAM(Ki, e)));
  3401. SERIAL_PROTOCOL(" d:");
  3402. SERIAL_PROTOCOL(unscalePID_d(PID_PARAM(Kd, e)));
  3403. #ifdef PID_ADD_EXTRUSION_RATE
  3404. SERIAL_PROTOCOL(" c:");
  3405. //Kc does not have scaling applied above, or in resetting defaults
  3406. SERIAL_PROTOCOL(PID_PARAM(Kc, e));
  3407. #endif
  3408. SERIAL_PROTOCOLLN("");
  3409. }
  3410. else {
  3411. SERIAL_ECHO_START;
  3412. SERIAL_ECHOLN(MSG_INVALID_EXTRUDER);
  3413. }
  3414. }
  3415. #endif // PIDTEMP
  3416. #ifdef PIDTEMPBED
  3417. inline void gcode_M304() {
  3418. if (code_seen('P')) bedKp = code_value();
  3419. if (code_seen('I')) bedKi = scalePID_i(code_value());
  3420. if (code_seen('D')) bedKd = scalePID_d(code_value());
  3421. updatePID();
  3422. SERIAL_PROTOCOL(MSG_OK);
  3423. SERIAL_PROTOCOL(" p:");
  3424. SERIAL_PROTOCOL(bedKp);
  3425. SERIAL_PROTOCOL(" i:");
  3426. SERIAL_PROTOCOL(unscalePID_i(bedKi));
  3427. SERIAL_PROTOCOL(" d:");
  3428. SERIAL_PROTOCOL(unscalePID_d(bedKd));
  3429. SERIAL_PROTOCOLLN("");
  3430. }
  3431. #endif // PIDTEMPBED
  3432. #if defined(CHDK) || (defined(PHOTOGRAPH_PIN) && PHOTOGRAPH_PIN > -1)
  3433. /**
  3434. * M240: Trigger a camera by emulating a Canon RC-1
  3435. * See http://www.doc-diy.net/photo/rc-1_hacked/
  3436. */
  3437. inline void gcode_M240() {
  3438. #ifdef CHDK
  3439. OUT_WRITE(CHDK, HIGH);
  3440. chdkHigh = millis();
  3441. chdkActive = true;
  3442. #elif defined(PHOTOGRAPH_PIN) && PHOTOGRAPH_PIN > -1
  3443. const uint8_t NUM_PULSES = 16;
  3444. const float PULSE_LENGTH = 0.01524;
  3445. for (int i = 0; i < NUM_PULSES; i++) {
  3446. WRITE(PHOTOGRAPH_PIN, HIGH);
  3447. _delay_ms(PULSE_LENGTH);
  3448. WRITE(PHOTOGRAPH_PIN, LOW);
  3449. _delay_ms(PULSE_LENGTH);
  3450. }
  3451. delay(7.33);
  3452. for (int i = 0; i < NUM_PULSES; i++) {
  3453. WRITE(PHOTOGRAPH_PIN, HIGH);
  3454. _delay_ms(PULSE_LENGTH);
  3455. WRITE(PHOTOGRAPH_PIN, LOW);
  3456. _delay_ms(PULSE_LENGTH);
  3457. }
  3458. #endif // !CHDK && PHOTOGRAPH_PIN > -1
  3459. }
  3460. #endif // CHDK || PHOTOGRAPH_PIN
  3461. #ifdef DOGLCD
  3462. /**
  3463. * M250: Read and optionally set the LCD contrast
  3464. */
  3465. inline void gcode_M250() {
  3466. if (code_seen('C')) lcd_setcontrast(code_value_long() & 0x3F);
  3467. SERIAL_PROTOCOLPGM("lcd contrast value: ");
  3468. SERIAL_PROTOCOL(lcd_contrast);
  3469. SERIAL_PROTOCOLLN("");
  3470. }
  3471. #endif // DOGLCD
  3472. #ifdef PREVENT_DANGEROUS_EXTRUDE
  3473. /**
  3474. * M302: Allow cold extrudes, or set the minimum extrude S<temperature>.
  3475. */
  3476. inline void gcode_M302() {
  3477. set_extrude_min_temp(code_seen('S') ? code_value() : 0);
  3478. }
  3479. #endif // PREVENT_DANGEROUS_EXTRUDE
  3480. /**
  3481. * M303: PID relay autotune
  3482. * S<temperature> sets the target temperature. (default target temperature = 150C)
  3483. * E<extruder> (-1 for the bed)
  3484. * C<cycles>
  3485. */
  3486. inline void gcode_M303() {
  3487. int e = code_seen('E') ? code_value_long() : 0;
  3488. int c = code_seen('C') ? code_value_long() : 5;
  3489. float temp = code_seen('S') ? code_value() : (e < 0 ? 70.0 : 150.0);
  3490. PID_autotune(temp, e, c);
  3491. }
  3492. #ifdef SCARA
  3493. bool SCARA_move_to_cal(uint8_t delta_x, uint8_t delta_y) {
  3494. //SoftEndsEnabled = false; // Ignore soft endstops during calibration
  3495. //SERIAL_ECHOLN(" Soft endstops disabled ");
  3496. if (! Stopped) {
  3497. //get_coordinates(); // For X Y Z E F
  3498. delta[X_AXIS] = delta_x;
  3499. delta[Y_AXIS] = delta_y;
  3500. calculate_SCARA_forward_Transform(delta);
  3501. destination[X_AXIS] = delta[X_AXIS]/axis_scaling[X_AXIS];
  3502. destination[Y_AXIS] = delta[Y_AXIS]/axis_scaling[Y_AXIS];
  3503. prepare_move();
  3504. //ClearToSend();
  3505. return true;
  3506. }
  3507. return false;
  3508. }
  3509. /**
  3510. * M360: SCARA calibration: Move to cal-position ThetaA (0 deg calibration)
  3511. */
  3512. inline bool gcode_M360() {
  3513. SERIAL_ECHOLN(" Cal: Theta 0 ");
  3514. return SCARA_move_to_cal(0, 120);
  3515. }
  3516. /**
  3517. * M361: SCARA calibration: Move to cal-position ThetaB (90 deg calibration - steps per degree)
  3518. */
  3519. inline bool gcode_M361() {
  3520. SERIAL_ECHOLN(" Cal: Theta 90 ");
  3521. return SCARA_move_to_cal(90, 130);
  3522. }
  3523. /**
  3524. * M362: SCARA calibration: Move to cal-position PsiA (0 deg calibration)
  3525. */
  3526. inline bool gcode_M362() {
  3527. SERIAL_ECHOLN(" Cal: Psi 0 ");
  3528. return SCARA_move_to_cal(60, 180);
  3529. }
  3530. /**
  3531. * M363: SCARA calibration: Move to cal-position PsiB (90 deg calibration - steps per degree)
  3532. */
  3533. inline bool gcode_M363() {
  3534. SERIAL_ECHOLN(" Cal: Psi 90 ");
  3535. return SCARA_move_to_cal(50, 90);
  3536. }
  3537. /**
  3538. * M364: SCARA calibration: Move to cal-position PSIC (90 deg to Theta calibration position)
  3539. */
  3540. inline bool gcode_M364() {
  3541. SERIAL_ECHOLN(" Cal: Theta-Psi 90 ");
  3542. return SCARA_move_to_cal(45, 135);
  3543. }
  3544. /**
  3545. * M365: SCARA calibration: Scaling factor, X, Y, Z axis
  3546. */
  3547. inline void gcode_M365() {
  3548. for (int8_t i = X_AXIS; i <= Z_AXIS; i++) {
  3549. if (code_seen(axis_codes[i])) {
  3550. axis_scaling[i] = code_value();
  3551. }
  3552. }
  3553. }
  3554. #endif // SCARA
  3555. #ifdef EXT_SOLENOID
  3556. void enable_solenoid(uint8_t num) {
  3557. switch(num) {
  3558. case 0:
  3559. OUT_WRITE(SOL0_PIN, HIGH);
  3560. break;
  3561. #if defined(SOL1_PIN) && SOL1_PIN > -1
  3562. case 1:
  3563. OUT_WRITE(SOL1_PIN, HIGH);
  3564. break;
  3565. #endif
  3566. #if defined(SOL2_PIN) && SOL2_PIN > -1
  3567. case 2:
  3568. OUT_WRITE(SOL2_PIN, HIGH);
  3569. break;
  3570. #endif
  3571. #if defined(SOL3_PIN) && SOL3_PIN > -1
  3572. case 3:
  3573. OUT_WRITE(SOL3_PIN, HIGH);
  3574. break;
  3575. #endif
  3576. default:
  3577. SERIAL_ECHO_START;
  3578. SERIAL_ECHOLNPGM(MSG_INVALID_SOLENOID);
  3579. break;
  3580. }
  3581. }
  3582. void enable_solenoid_on_active_extruder() { enable_solenoid(active_extruder); }
  3583. void disable_all_solenoids() {
  3584. OUT_WRITE(SOL0_PIN, LOW);
  3585. OUT_WRITE(SOL1_PIN, LOW);
  3586. OUT_WRITE(SOL2_PIN, LOW);
  3587. OUT_WRITE(SOL3_PIN, LOW);
  3588. }
  3589. /**
  3590. * M380: Enable solenoid on the active extruder
  3591. */
  3592. inline void gcode_M380() { enable_solenoid_on_active_extruder(); }
  3593. /**
  3594. * M381: Disable all solenoids
  3595. */
  3596. inline void gcode_M381() { disable_all_solenoids(); }
  3597. #endif // EXT_SOLENOID
  3598. /**
  3599. * M400: Finish all moves
  3600. */
  3601. inline void gcode_M400() { st_synchronize(); }
  3602. #if defined(ENABLE_AUTO_BED_LEVELING) && (defined(SERVO_ENDSTOPS) || defined(Z_PROBE_ALLEN_KEY)) && not defined(Z_PROBE_SLED)
  3603. /**
  3604. * M401: Engage Z Servo endstop if available
  3605. */
  3606. inline void gcode_M401() { engage_z_probe(); }
  3607. /**
  3608. * M402: Retract Z Servo endstop if enabled
  3609. */
  3610. inline void gcode_M402() { retract_z_probe(); }
  3611. #endif
  3612. #ifdef FILAMENT_SENSOR
  3613. /**
  3614. * M404: Display or set the nominal filament width (3mm, 1.75mm ) W<3.0>
  3615. */
  3616. inline void gcode_M404() {
  3617. #if FILWIDTH_PIN > -1
  3618. if (code_seen('W')) {
  3619. filament_width_nominal = code_value();
  3620. }
  3621. else {
  3622. SERIAL_PROTOCOLPGM("Filament dia (nominal mm):");
  3623. SERIAL_PROTOCOLLN(filament_width_nominal);
  3624. }
  3625. #endif
  3626. }
  3627. /**
  3628. * M405: Turn on filament sensor for control
  3629. */
  3630. inline void gcode_M405() {
  3631. if (code_seen('D')) meas_delay_cm = code_value();
  3632. if (meas_delay_cm > MAX_MEASUREMENT_DELAY) meas_delay_cm = MAX_MEASUREMENT_DELAY;
  3633. if (delay_index2 == -1) { //initialize the ring buffer if it has not been done since startup
  3634. int temp_ratio = widthFil_to_size_ratio();
  3635. for (delay_index1 = 0; delay_index1 < MAX_MEASUREMENT_DELAY + 1; ++delay_index1)
  3636. measurement_delay[delay_index1] = temp_ratio - 100; //subtract 100 to scale within a signed byte
  3637. delay_index1 = delay_index2 = 0;
  3638. }
  3639. filament_sensor = true;
  3640. //SERIAL_PROTOCOLPGM("Filament dia (measured mm):");
  3641. //SERIAL_PROTOCOL(filament_width_meas);
  3642. //SERIAL_PROTOCOLPGM("Extrusion ratio(%):");
  3643. //SERIAL_PROTOCOL(extrudemultiply);
  3644. }
  3645. /**
  3646. * M406: Turn off filament sensor for control
  3647. */
  3648. inline void gcode_M406() { filament_sensor = false; }
  3649. /**
  3650. * M407: Get measured filament diameter on serial output
  3651. */
  3652. inline void gcode_M407() {
  3653. SERIAL_PROTOCOLPGM("Filament dia (measured mm):");
  3654. SERIAL_PROTOCOLLN(filament_width_meas);
  3655. }
  3656. #endif // FILAMENT_SENSOR
  3657. /**
  3658. * M500: Store settings in EEPROM
  3659. */
  3660. inline void gcode_M500() {
  3661. Config_StoreSettings();
  3662. }
  3663. /**
  3664. * M501: Read settings from EEPROM
  3665. */
  3666. inline void gcode_M501() {
  3667. Config_RetrieveSettings();
  3668. }
  3669. /**
  3670. * M502: Revert to default settings
  3671. */
  3672. inline void gcode_M502() {
  3673. Config_ResetDefault();
  3674. }
  3675. /**
  3676. * M503: print settings currently in memory
  3677. */
  3678. inline void gcode_M503() {
  3679. Config_PrintSettings(code_seen('S') && code_value() == 0);
  3680. }
  3681. #ifdef ABORT_ON_ENDSTOP_HIT_FEATURE_ENABLED
  3682. /**
  3683. * M540: Set whether SD card print should abort on endstop hit (M540 S<0|1>)
  3684. */
  3685. inline void gcode_M540() {
  3686. if (code_seen('S')) abort_on_endstop_hit = (code_value() > 0);
  3687. }
  3688. #endif // ABORT_ON_ENDSTOP_HIT_FEATURE_ENABLED
  3689. #ifdef CUSTOM_M_CODE_SET_Z_PROBE_OFFSET
  3690. inline void gcode_SET_Z_PROBE_OFFSET() {
  3691. float value;
  3692. if (code_seen('Z')) {
  3693. value = code_value();
  3694. if (Z_PROBE_OFFSET_RANGE_MIN <= value && value <= Z_PROBE_OFFSET_RANGE_MAX) {
  3695. zprobe_zoffset = -value; // compare w/ line 278 of ConfigurationStore.cpp
  3696. SERIAL_ECHO_START;
  3697. SERIAL_ECHOLNPGM(MSG_ZPROBE_ZOFFSET " " MSG_OK);
  3698. SERIAL_PROTOCOLLN("");
  3699. }
  3700. else {
  3701. SERIAL_ECHO_START;
  3702. SERIAL_ECHOPGM(MSG_ZPROBE_ZOFFSET);
  3703. SERIAL_ECHOPGM(MSG_Z_MIN);
  3704. SERIAL_ECHO(Z_PROBE_OFFSET_RANGE_MIN);
  3705. SERIAL_ECHOPGM(MSG_Z_MAX);
  3706. SERIAL_ECHO(Z_PROBE_OFFSET_RANGE_MAX);
  3707. SERIAL_PROTOCOLLN("");
  3708. }
  3709. }
  3710. else {
  3711. SERIAL_ECHO_START;
  3712. SERIAL_ECHOLNPGM(MSG_ZPROBE_ZOFFSET " : ");
  3713. SERIAL_ECHO(-zprobe_zoffset);
  3714. SERIAL_PROTOCOLLN("");
  3715. }
  3716. }
  3717. #endif // CUSTOM_M_CODE_SET_Z_PROBE_OFFSET
  3718. #ifdef FILAMENTCHANGEENABLE
  3719. /**
  3720. * M600: Pause for filament change X[pos] Y[pos] Z[relative lift] E[initial retract] L[later retract distance for removal]
  3721. */
  3722. inline void gcode_M600() {
  3723. float target[NUM_AXIS], lastpos[NUM_AXIS], fr60 = feedrate / 60;
  3724. for (int i=0; i<NUM_AXIS; i++)
  3725. target[i] = lastpos[i] = current_position[i];
  3726. #define BASICPLAN plan_buffer_line(target[X_AXIS], target[Y_AXIS], target[Z_AXIS], target[E_AXIS], fr60, active_extruder);
  3727. #ifdef DELTA
  3728. #define RUNPLAN calculate_delta(target); BASICPLAN
  3729. #else
  3730. #define RUNPLAN BASICPLAN
  3731. #endif
  3732. //retract by E
  3733. if (code_seen('E')) target[E_AXIS] += code_value();
  3734. #ifdef FILAMENTCHANGE_FIRSTRETRACT
  3735. else target[E_AXIS] += FILAMENTCHANGE_FIRSTRETRACT;
  3736. #endif
  3737. RUNPLAN;
  3738. //lift Z
  3739. if (code_seen('Z')) target[Z_AXIS] += code_value();
  3740. #ifdef FILAMENTCHANGE_ZADD
  3741. else target[Z_AXIS] += FILAMENTCHANGE_ZADD;
  3742. #endif
  3743. RUNPLAN;
  3744. //move xy
  3745. if (code_seen('X')) target[X_AXIS] = code_value();
  3746. #ifdef FILAMENTCHANGE_XPOS
  3747. else target[X_AXIS] = FILAMENTCHANGE_XPOS;
  3748. #endif
  3749. if (code_seen('Y')) target[Y_AXIS] = code_value();
  3750. #ifdef FILAMENTCHANGE_YPOS
  3751. else target[Y_AXIS] = FILAMENTCHANGE_YPOS;
  3752. #endif
  3753. RUNPLAN;
  3754. if (code_seen('L')) target[E_AXIS] += code_value();
  3755. #ifdef FILAMENTCHANGE_FINALRETRACT
  3756. else target[E_AXIS] += FILAMENTCHANGE_FINALRETRACT;
  3757. #endif
  3758. RUNPLAN;
  3759. //finish moves
  3760. st_synchronize();
  3761. //disable extruder steppers so filament can be removed
  3762. disable_e0();
  3763. disable_e1();
  3764. disable_e2();
  3765. disable_e3();
  3766. delay(100);
  3767. LCD_ALERTMESSAGEPGM(MSG_FILAMENTCHANGE);
  3768. uint8_t cnt = 0;
  3769. while (!lcd_clicked()) {
  3770. cnt++;
  3771. manage_heater();
  3772. manage_inactivity(true);
  3773. lcd_update();
  3774. if (cnt == 0) {
  3775. #if BEEPER > 0
  3776. OUT_WRITE(BEEPER,HIGH);
  3777. delay(3);
  3778. WRITE(BEEPER,LOW);
  3779. delay(3);
  3780. #else
  3781. #if !defined(LCD_FEEDBACK_FREQUENCY_HZ) || !defined(LCD_FEEDBACK_FREQUENCY_DURATION_MS)
  3782. lcd_buzz(1000/6, 100);
  3783. #else
  3784. lcd_buzz(LCD_FEEDBACK_FREQUENCY_DURATION_MS, LCD_FEEDBACK_FREQUENCY_HZ);
  3785. #endif
  3786. #endif
  3787. }
  3788. } // while(!lcd_clicked)
  3789. //return to normal
  3790. if (code_seen('L')) target[E_AXIS] -= code_value();
  3791. #ifdef FILAMENTCHANGE_FINALRETRACT
  3792. else target[E_AXIS] -= FILAMENTCHANGE_FINALRETRACT;
  3793. #endif
  3794. current_position[E_AXIS] = target[E_AXIS]; //the long retract of L is compensated by manual filament feeding
  3795. plan_set_e_position(current_position[E_AXIS]);
  3796. RUNPLAN; //should do nothing
  3797. lcd_reset_alert_level();
  3798. #ifdef DELTA
  3799. calculate_delta(lastpos);
  3800. plan_buffer_line(delta[X_AXIS], delta[Y_AXIS], delta[Z_AXIS], target[E_AXIS], fr60, active_extruder); //move xyz back
  3801. plan_buffer_line(delta[X_AXIS], delta[Y_AXIS], delta[Z_AXIS], lastpos[E_AXIS], fr60, active_extruder); //final untretract
  3802. #else
  3803. plan_buffer_line(lastpos[X_AXIS], lastpos[Y_AXIS], target[Z_AXIS], target[E_AXIS], fr60, active_extruder); //move xy back
  3804. plan_buffer_line(lastpos[X_AXIS], lastpos[Y_AXIS], lastpos[Z_AXIS], target[E_AXIS], fr60, active_extruder); //move z back
  3805. plan_buffer_line(lastpos[X_AXIS], lastpos[Y_AXIS], lastpos[Z_AXIS], lastpos[E_AXIS], fr60, active_extruder); //final untretract
  3806. #endif
  3807. #ifdef FILAMENT_RUNOUT_SENSOR
  3808. filrunoutEnqued = false;
  3809. #endif
  3810. }
  3811. #endif // FILAMENTCHANGEENABLE
  3812. #ifdef DUAL_X_CARRIAGE
  3813. /**
  3814. * M605: Set dual x-carriage movement mode
  3815. *
  3816. * M605 S0: Full control mode. The slicer has full control over x-carriage movement
  3817. * M605 S1: Auto-park mode. The inactive head will auto park/unpark without slicer involvement
  3818. * M605 S2 [Xnnn] [Rmmm]: Duplication mode. The second extruder will duplicate the first with nnn
  3819. * millimeters x-offset and an optional differential hotend temperature of
  3820. * mmm degrees. E.g., with "M605 S2 X100 R2" the second extruder will duplicate
  3821. * the first with a spacing of 100mm in the x direction and 2 degrees hotter.
  3822. *
  3823. * Note: the X axis should be homed after changing dual x-carriage mode.
  3824. */
  3825. inline void gcode_M605() {
  3826. st_synchronize();
  3827. if (code_seen('S')) dual_x_carriage_mode = code_value();
  3828. switch(dual_x_carriage_mode) {
  3829. case DXC_DUPLICATION_MODE:
  3830. if (code_seen('X')) duplicate_extruder_x_offset = max(code_value(), X2_MIN_POS - x_home_pos(0));
  3831. if (code_seen('R')) duplicate_extruder_temp_offset = code_value();
  3832. SERIAL_ECHO_START;
  3833. SERIAL_ECHOPGM(MSG_HOTEND_OFFSET);
  3834. SERIAL_ECHO(" ");
  3835. SERIAL_ECHO(extruder_offset[X_AXIS][0]);
  3836. SERIAL_ECHO(",");
  3837. SERIAL_ECHO(extruder_offset[Y_AXIS][0]);
  3838. SERIAL_ECHO(" ");
  3839. SERIAL_ECHO(duplicate_extruder_x_offset);
  3840. SERIAL_ECHO(",");
  3841. SERIAL_ECHOLN(extruder_offset[Y_AXIS][1]);
  3842. break;
  3843. case DXC_FULL_CONTROL_MODE:
  3844. case DXC_AUTO_PARK_MODE:
  3845. break;
  3846. default:
  3847. dual_x_carriage_mode = DEFAULT_DUAL_X_CARRIAGE_MODE;
  3848. break;
  3849. }
  3850. active_extruder_parked = false;
  3851. extruder_duplication_enabled = false;
  3852. delayed_move_time = 0;
  3853. }
  3854. #endif // DUAL_X_CARRIAGE
  3855. /**
  3856. * M907: Set digital trimpot motor current using axis codes X, Y, Z, E, B, S
  3857. */
  3858. inline void gcode_M907() {
  3859. #if HAS_DIGIPOTSS
  3860. for (int i=0;i<NUM_AXIS;i++)
  3861. if (code_seen(axis_codes[i])) digipot_current(i, code_value());
  3862. if (code_seen('B')) digipot_current(4, code_value());
  3863. if (code_seen('S')) for (int i=0; i<=4; i++) digipot_current(i, code_value());
  3864. #endif
  3865. #ifdef MOTOR_CURRENT_PWM_XY_PIN
  3866. if (code_seen('X')) digipot_current(0, code_value());
  3867. #endif
  3868. #ifdef MOTOR_CURRENT_PWM_Z_PIN
  3869. if (code_seen('Z')) digipot_current(1, code_value());
  3870. #endif
  3871. #ifdef MOTOR_CURRENT_PWM_E_PIN
  3872. if (code_seen('E')) digipot_current(2, code_value());
  3873. #endif
  3874. #ifdef DIGIPOT_I2C
  3875. // this one uses actual amps in floating point
  3876. for (int i=0;i<NUM_AXIS;i++) if(code_seen(axis_codes[i])) digipot_i2c_set_current(i, code_value());
  3877. // for each additional extruder (named B,C,D,E..., channels 4,5,6,7...)
  3878. for (int i=NUM_AXIS;i<DIGIPOT_I2C_NUM_CHANNELS;i++) if(code_seen('B'+i-NUM_AXIS)) digipot_i2c_set_current(i, code_value());
  3879. #endif
  3880. }
  3881. #if HAS_DIGIPOTSS
  3882. /**
  3883. * M908: Control digital trimpot directly (M908 P<pin> S<current>)
  3884. */
  3885. inline void gcode_M908() {
  3886. digitalPotWrite(
  3887. code_seen('P') ? code_value() : 0,
  3888. code_seen('S') ? code_value() : 0
  3889. );
  3890. }
  3891. #endif // HAS_DIGIPOTSS
  3892. // M350 Set microstepping mode. Warning: Steps per unit remains unchanged. S code sets stepping mode for all drivers.
  3893. inline void gcode_M350() {
  3894. #if defined(X_MS1_PIN) && X_MS1_PIN > -1
  3895. if(code_seen('S')) for(int i=0;i<=4;i++) microstep_mode(i,code_value());
  3896. for(int i=0;i<NUM_AXIS;i++) if(code_seen(axis_codes[i])) microstep_mode(i,(uint8_t)code_value());
  3897. if(code_seen('B')) microstep_mode(4,code_value());
  3898. microstep_readings();
  3899. #endif
  3900. }
  3901. /**
  3902. * M351: Toggle MS1 MS2 pins directly with axis codes X Y Z E B
  3903. * S# determines MS1 or MS2, X# sets the pin high/low.
  3904. */
  3905. inline void gcode_M351() {
  3906. #if defined(X_MS1_PIN) && X_MS1_PIN > -1
  3907. if (code_seen('S')) switch(code_value_long()) {
  3908. case 1:
  3909. for(int i=0;i<NUM_AXIS;i++) if (code_seen(axis_codes[i])) microstep_ms(i, code_value(), -1);
  3910. if (code_seen('B')) microstep_ms(4, code_value(), -1);
  3911. break;
  3912. case 2:
  3913. for(int i=0;i<NUM_AXIS;i++) if (code_seen(axis_codes[i])) microstep_ms(i, -1, code_value());
  3914. if (code_seen('B')) microstep_ms(4, -1, code_value());
  3915. break;
  3916. }
  3917. microstep_readings();
  3918. #endif
  3919. }
  3920. /**
  3921. * M999: Restart after being stopped
  3922. */
  3923. inline void gcode_M999() {
  3924. Stopped = false;
  3925. lcd_reset_alert_level();
  3926. gcode_LastN = Stopped_gcode_LastN;
  3927. FlushSerialRequestResend();
  3928. }
  3929. inline void gcode_T() {
  3930. tmp_extruder = code_value();
  3931. if (tmp_extruder >= EXTRUDERS) {
  3932. SERIAL_ECHO_START;
  3933. SERIAL_ECHO("T");
  3934. SERIAL_ECHO(tmp_extruder);
  3935. SERIAL_ECHOLN(MSG_INVALID_EXTRUDER);
  3936. }
  3937. else {
  3938. #if EXTRUDERS > 1
  3939. bool make_move = false;
  3940. #endif
  3941. if (code_seen('F')) {
  3942. #if EXTRUDERS > 1
  3943. make_move = true;
  3944. #endif
  3945. next_feedrate = code_value();
  3946. if (next_feedrate > 0.0) feedrate = next_feedrate;
  3947. }
  3948. #if EXTRUDERS > 1
  3949. if (tmp_extruder != active_extruder) {
  3950. // Save current position to return to after applying extruder offset
  3951. memcpy(destination, current_position, sizeof(destination));
  3952. #ifdef DUAL_X_CARRIAGE
  3953. if (dual_x_carriage_mode == DXC_AUTO_PARK_MODE && Stopped == false &&
  3954. (delayed_move_time != 0 || current_position[X_AXIS] != x_home_pos(active_extruder))) {
  3955. // Park old head: 1) raise 2) move to park position 3) lower
  3956. plan_buffer_line(current_position[X_AXIS], current_position[Y_AXIS], current_position[Z_AXIS] + TOOLCHANGE_PARK_ZLIFT,
  3957. current_position[E_AXIS], max_feedrate[Z_AXIS], active_extruder);
  3958. plan_buffer_line(x_home_pos(active_extruder), current_position[Y_AXIS], current_position[Z_AXIS] + TOOLCHANGE_PARK_ZLIFT,
  3959. current_position[E_AXIS], max_feedrate[X_AXIS], active_extruder);
  3960. plan_buffer_line(x_home_pos(active_extruder), current_position[Y_AXIS], current_position[Z_AXIS],
  3961. current_position[E_AXIS], max_feedrate[Z_AXIS], active_extruder);
  3962. st_synchronize();
  3963. }
  3964. // apply Y & Z extruder offset (x offset is already used in determining home pos)
  3965. current_position[Y_AXIS] = current_position[Y_AXIS] -
  3966. extruder_offset[Y_AXIS][active_extruder] +
  3967. extruder_offset[Y_AXIS][tmp_extruder];
  3968. current_position[Z_AXIS] = current_position[Z_AXIS] -
  3969. extruder_offset[Z_AXIS][active_extruder] +
  3970. extruder_offset[Z_AXIS][tmp_extruder];
  3971. active_extruder = tmp_extruder;
  3972. // This function resets the max/min values - the current position may be overwritten below.
  3973. axis_is_at_home(X_AXIS);
  3974. if (dual_x_carriage_mode == DXC_FULL_CONTROL_MODE) {
  3975. current_position[X_AXIS] = inactive_extruder_x_pos;
  3976. inactive_extruder_x_pos = destination[X_AXIS];
  3977. }
  3978. else if (dual_x_carriage_mode == DXC_DUPLICATION_MODE) {
  3979. active_extruder_parked = (active_extruder == 0); // this triggers the second extruder to move into the duplication position
  3980. if (active_extruder == 0 || active_extruder_parked)
  3981. current_position[X_AXIS] = inactive_extruder_x_pos;
  3982. else
  3983. current_position[X_AXIS] = destination[X_AXIS] + duplicate_extruder_x_offset;
  3984. inactive_extruder_x_pos = destination[X_AXIS];
  3985. extruder_duplication_enabled = false;
  3986. }
  3987. else {
  3988. // record raised toolhead position for use by unpark
  3989. memcpy(raised_parked_position, current_position, sizeof(raised_parked_position));
  3990. raised_parked_position[Z_AXIS] += TOOLCHANGE_UNPARK_ZLIFT;
  3991. active_extruder_parked = true;
  3992. delayed_move_time = 0;
  3993. }
  3994. #else // !DUAL_X_CARRIAGE
  3995. // Offset extruder (only by XY)
  3996. for (int i=X_AXIS; i<=Y_AXIS; i++)
  3997. current_position[i] += extruder_offset[i][tmp_extruder] - extruder_offset[i][active_extruder];
  3998. // Set the new active extruder and position
  3999. active_extruder = tmp_extruder;
  4000. #endif // !DUAL_X_CARRIAGE
  4001. #ifdef DELTA
  4002. calculate_delta(current_position); // change cartesian kinematic to delta kinematic;
  4003. //sent position to plan_set_position();
  4004. plan_set_position(delta[X_AXIS], delta[Y_AXIS], delta[Z_AXIS],current_position[E_AXIS]);
  4005. #else
  4006. plan_set_position(current_position[X_AXIS], current_position[Y_AXIS], current_position[Z_AXIS], current_position[E_AXIS]);
  4007. #endif
  4008. // Move to the old position if 'F' was in the parameters
  4009. if (make_move && !Stopped) prepare_move();
  4010. }
  4011. #ifdef EXT_SOLENOID
  4012. st_synchronize();
  4013. disable_all_solenoids();
  4014. enable_solenoid_on_active_extruder();
  4015. #endif // EXT_SOLENOID
  4016. #endif // EXTRUDERS > 1
  4017. SERIAL_ECHO_START;
  4018. SERIAL_ECHO(MSG_ACTIVE_EXTRUDER);
  4019. SERIAL_PROTOCOLLN((int)active_extruder);
  4020. }
  4021. }
  4022. /**
  4023. * Process Commands and dispatch them to handlers
  4024. */
  4025. void process_commands() {
  4026. if (code_seen('G')) {
  4027. int gCode = code_value_long();
  4028. switch(gCode) {
  4029. // G0, G1
  4030. case 0:
  4031. case 1:
  4032. gcode_G0_G1();
  4033. break;
  4034. // G2, G3
  4035. #ifndef SCARA
  4036. case 2: // G2 - CW ARC
  4037. case 3: // G3 - CCW ARC
  4038. gcode_G2_G3(gCode == 2);
  4039. break;
  4040. #endif
  4041. // G4 Dwell
  4042. case 4:
  4043. gcode_G4();
  4044. break;
  4045. #ifdef FWRETRACT
  4046. case 10: // G10: retract
  4047. case 11: // G11: retract_recover
  4048. gcode_G10_G11(gCode == 10);
  4049. break;
  4050. #endif //FWRETRACT
  4051. case 28: // G28: Home all axes, one at a time
  4052. gcode_G28();
  4053. break;
  4054. #if defined(MESH_BED_LEVELING)
  4055. case 29: // G29 Handle mesh based leveling
  4056. gcode_G29();
  4057. break;
  4058. #endif
  4059. #ifdef ENABLE_AUTO_BED_LEVELING
  4060. case 29: // G29 Detailed Z-Probe, probes the bed at 3 or more points.
  4061. gcode_G29();
  4062. break;
  4063. #ifndef Z_PROBE_SLED
  4064. case 30: // G30 Single Z Probe
  4065. gcode_G30();
  4066. break;
  4067. #else // Z_PROBE_SLED
  4068. case 31: // G31: dock the sled
  4069. case 32: // G32: undock the sled
  4070. dock_sled(gCode == 31);
  4071. break;
  4072. #endif // Z_PROBE_SLED
  4073. #endif // ENABLE_AUTO_BED_LEVELING
  4074. case 90: // G90
  4075. relative_mode = false;
  4076. break;
  4077. case 91: // G91
  4078. relative_mode = true;
  4079. break;
  4080. case 92: // G92
  4081. gcode_G92();
  4082. break;
  4083. }
  4084. }
  4085. else if (code_seen('M')) {
  4086. switch( code_value_long() ) {
  4087. #ifdef ULTIPANEL
  4088. case 0: // M0 - Unconditional stop - Wait for user button press on LCD
  4089. case 1: // M1 - Conditional stop - Wait for user button press on LCD
  4090. gcode_M0_M1();
  4091. break;
  4092. #endif // ULTIPANEL
  4093. case 17:
  4094. gcode_M17();
  4095. break;
  4096. #ifdef SDSUPPORT
  4097. case 20: // M20 - list SD card
  4098. gcode_M20(); break;
  4099. case 21: // M21 - init SD card
  4100. gcode_M21(); break;
  4101. case 22: //M22 - release SD card
  4102. gcode_M22(); break;
  4103. case 23: //M23 - Select file
  4104. gcode_M23(); break;
  4105. case 24: //M24 - Start SD print
  4106. gcode_M24(); break;
  4107. case 25: //M25 - Pause SD print
  4108. gcode_M25(); break;
  4109. case 26: //M26 - Set SD index
  4110. gcode_M26(); break;
  4111. case 27: //M27 - Get SD status
  4112. gcode_M27(); break;
  4113. case 28: //M28 - Start SD write
  4114. gcode_M28(); break;
  4115. case 29: //M29 - Stop SD write
  4116. gcode_M29(); break;
  4117. case 30: //M30 <filename> Delete File
  4118. gcode_M30(); break;
  4119. case 32: //M32 - Select file and start SD print
  4120. gcode_M32(); break;
  4121. case 928: //M928 - Start SD write
  4122. gcode_M928(); break;
  4123. #endif //SDSUPPORT
  4124. case 31: //M31 take time since the start of the SD print or an M109 command
  4125. gcode_M31();
  4126. break;
  4127. case 42: //M42 -Change pin status via gcode
  4128. gcode_M42();
  4129. break;
  4130. #if defined(ENABLE_AUTO_BED_LEVELING) && defined(Z_PROBE_REPEATABILITY_TEST)
  4131. case 48: // M48 Z-Probe repeatability
  4132. gcode_M48();
  4133. break;
  4134. #endif // ENABLE_AUTO_BED_LEVELING && Z_PROBE_REPEATABILITY_TEST
  4135. case 104: // M104
  4136. gcode_M104();
  4137. break;
  4138. case 112: // M112 Emergency Stop
  4139. gcode_M112();
  4140. break;
  4141. case 140: // M140 Set bed temp
  4142. gcode_M140();
  4143. break;
  4144. case 105: // M105 Read current temperature
  4145. gcode_M105();
  4146. return;
  4147. break;
  4148. case 109: // M109 Wait for temperature
  4149. gcode_M109();
  4150. break;
  4151. #if defined(TEMP_BED_PIN) && TEMP_BED_PIN > -1
  4152. case 190: // M190 - Wait for bed heater to reach target.
  4153. gcode_M190();
  4154. break;
  4155. #endif //TEMP_BED_PIN
  4156. #if defined(FAN_PIN) && FAN_PIN > -1
  4157. case 106: //M106 Fan On
  4158. gcode_M106();
  4159. break;
  4160. case 107: //M107 Fan Off
  4161. gcode_M107();
  4162. break;
  4163. #endif //FAN_PIN
  4164. #ifdef BARICUDA
  4165. // PWM for HEATER_1_PIN
  4166. #if defined(HEATER_1_PIN) && HEATER_1_PIN > -1
  4167. case 126: // M126 valve open
  4168. gcode_M126();
  4169. break;
  4170. case 127: // M127 valve closed
  4171. gcode_M127();
  4172. break;
  4173. #endif //HEATER_1_PIN
  4174. // PWM for HEATER_2_PIN
  4175. #if defined(HEATER_2_PIN) && HEATER_2_PIN > -1
  4176. case 128: // M128 valve open
  4177. gcode_M128();
  4178. break;
  4179. case 129: // M129 valve closed
  4180. gcode_M129();
  4181. break;
  4182. #endif //HEATER_2_PIN
  4183. #endif //BARICUDA
  4184. #if defined(PS_ON_PIN) && PS_ON_PIN > -1
  4185. case 80: // M80 - Turn on Power Supply
  4186. gcode_M80();
  4187. break;
  4188. #endif // PS_ON_PIN
  4189. case 81: // M81 - Turn off Power Supply
  4190. gcode_M81();
  4191. break;
  4192. case 82:
  4193. gcode_M82();
  4194. break;
  4195. case 83:
  4196. gcode_M83();
  4197. break;
  4198. case 18: //compatibility
  4199. case 84: // M84
  4200. gcode_M18_M84();
  4201. break;
  4202. case 85: // M85
  4203. gcode_M85();
  4204. break;
  4205. case 92: // M92
  4206. gcode_M92();
  4207. break;
  4208. case 115: // M115
  4209. gcode_M115();
  4210. break;
  4211. case 117: // M117 display message
  4212. gcode_M117();
  4213. break;
  4214. case 114: // M114
  4215. gcode_M114();
  4216. break;
  4217. case 120: // M120
  4218. gcode_M120();
  4219. break;
  4220. case 121: // M121
  4221. gcode_M121();
  4222. break;
  4223. case 119: // M119
  4224. gcode_M119();
  4225. break;
  4226. //TODO: update for all axis, use for loop
  4227. #ifdef BLINKM
  4228. case 150: // M150
  4229. gcode_M150();
  4230. break;
  4231. #endif //BLINKM
  4232. case 200: // M200 D<millimeters> set filament diameter and set E axis units to cubic millimeters (use S0 to set back to millimeters).
  4233. gcode_M200();
  4234. break;
  4235. case 201: // M201
  4236. gcode_M201();
  4237. break;
  4238. #if 0 // Not used for Sprinter/grbl gen6
  4239. case 202: // M202
  4240. gcode_M202();
  4241. break;
  4242. #endif
  4243. case 203: // M203 max feedrate mm/sec
  4244. gcode_M203();
  4245. break;
  4246. case 204: // M204 acclereration S normal moves T filmanent only moves
  4247. gcode_M204();
  4248. break;
  4249. case 205: //M205 advanced settings: minimum travel speed S=while printing T=travel only, B=minimum segment time X= maximum xy jerk, Z=maximum Z jerk
  4250. gcode_M205();
  4251. break;
  4252. case 206: // M206 additional homing offset
  4253. gcode_M206();
  4254. break;
  4255. #ifdef DELTA
  4256. case 665: // M665 set delta configurations L<diagonal_rod> R<delta_radius> S<segments_per_sec>
  4257. gcode_M665();
  4258. break;
  4259. case 666: // M666 set delta endstop adjustment
  4260. gcode_M666();
  4261. break;
  4262. #elif defined(Z_DUAL_ENDSTOPS)
  4263. case 666: // M666 set delta endstop adjustment
  4264. gcode_M666();
  4265. break;
  4266. #endif // DELTA
  4267. #ifdef FWRETRACT
  4268. case 207: //M207 - set retract length S[positive mm] F[feedrate mm/min] Z[additional zlift/hop]
  4269. gcode_M207();
  4270. break;
  4271. case 208: // M208 - set retract recover length S[positive mm surplus to the M207 S*] F[feedrate mm/min]
  4272. gcode_M208();
  4273. break;
  4274. case 209: // M209 - S<1=true/0=false> enable automatic retract detect if the slicer did not support G10/11: every normal extrude-only move will be classified as retract depending on the direction.
  4275. gcode_M209();
  4276. break;
  4277. #endif // FWRETRACT
  4278. #if EXTRUDERS > 1
  4279. case 218: // M218 - set hotend offset (in mm), T<extruder_number> X<offset_on_X> Y<offset_on_Y>
  4280. gcode_M218();
  4281. break;
  4282. #endif
  4283. case 220: // M220 S<factor in percent>- set speed factor override percentage
  4284. gcode_M220();
  4285. break;
  4286. case 221: // M221 S<factor in percent>- set extrude factor override percentage
  4287. gcode_M221();
  4288. break;
  4289. case 226: // M226 P<pin number> S<pin state>- Wait until the specified pin reaches the state required
  4290. gcode_M226();
  4291. break;
  4292. #if NUM_SERVOS > 0
  4293. case 280: // M280 - set servo position absolute. P: servo index, S: angle or microseconds
  4294. gcode_M280();
  4295. break;
  4296. #endif // NUM_SERVOS > 0
  4297. #if defined(LARGE_FLASH) && (BEEPER > 0 || defined(ULTRALCD) || defined(LCD_USE_I2C_BUZZER))
  4298. case 300: // M300 - Play beep tone
  4299. gcode_M300();
  4300. break;
  4301. #endif // LARGE_FLASH && (BEEPER>0 || ULTRALCD || LCD_USE_I2C_BUZZER)
  4302. #ifdef PIDTEMP
  4303. case 301: // M301
  4304. gcode_M301();
  4305. break;
  4306. #endif // PIDTEMP
  4307. #ifdef PIDTEMPBED
  4308. case 304: // M304
  4309. gcode_M304();
  4310. break;
  4311. #endif // PIDTEMPBED
  4312. #if defined(CHDK) || (defined(PHOTOGRAPH_PIN) && PHOTOGRAPH_PIN > -1)
  4313. case 240: // M240 Triggers a camera by emulating a Canon RC-1 : http://www.doc-diy.net/photo/rc-1_hacked/
  4314. gcode_M240();
  4315. break;
  4316. #endif // CHDK || PHOTOGRAPH_PIN
  4317. #ifdef DOGLCD
  4318. case 250: // M250 Set LCD contrast value: C<value> (value 0..63)
  4319. gcode_M250();
  4320. break;
  4321. #endif // DOGLCD
  4322. #ifdef PREVENT_DANGEROUS_EXTRUDE
  4323. case 302: // allow cold extrudes, or set the minimum extrude temperature
  4324. gcode_M302();
  4325. break;
  4326. #endif // PREVENT_DANGEROUS_EXTRUDE
  4327. case 303: // M303 PID autotune
  4328. gcode_M303();
  4329. break;
  4330. #ifdef SCARA
  4331. case 360: // M360 SCARA Theta pos1
  4332. if (gcode_M360()) return;
  4333. break;
  4334. case 361: // M361 SCARA Theta pos2
  4335. if (gcode_M361()) return;
  4336. break;
  4337. case 362: // M362 SCARA Psi pos1
  4338. if (gcode_M362()) return;
  4339. break;
  4340. case 363: // M363 SCARA Psi pos2
  4341. if (gcode_M363()) return;
  4342. break;
  4343. case 364: // M364 SCARA Psi pos3 (90 deg to Theta)
  4344. if (gcode_M364()) return;
  4345. break;
  4346. case 365: // M365 Set SCARA scaling for X Y Z
  4347. gcode_M365();
  4348. break;
  4349. #endif // SCARA
  4350. case 400: // M400 finish all moves
  4351. gcode_M400();
  4352. break;
  4353. #if defined(ENABLE_AUTO_BED_LEVELING) && (defined(SERVO_ENDSTOPS) || defined(Z_PROBE_ALLEN_KEY)) && not defined(Z_PROBE_SLED)
  4354. case 401:
  4355. gcode_M401();
  4356. break;
  4357. case 402:
  4358. gcode_M402();
  4359. break;
  4360. #endif
  4361. #ifdef FILAMENT_SENSOR
  4362. case 404: //M404 Enter the nominal filament width (3mm, 1.75mm ) N<3.0> or display nominal filament width
  4363. gcode_M404();
  4364. break;
  4365. case 405: //M405 Turn on filament sensor for control
  4366. gcode_M405();
  4367. break;
  4368. case 406: //M406 Turn off filament sensor for control
  4369. gcode_M406();
  4370. break;
  4371. case 407: //M407 Display measured filament diameter
  4372. gcode_M407();
  4373. break;
  4374. #endif // FILAMENT_SENSOR
  4375. case 500: // M500 Store settings in EEPROM
  4376. gcode_M500();
  4377. break;
  4378. case 501: // M501 Read settings from EEPROM
  4379. gcode_M501();
  4380. break;
  4381. case 502: // M502 Revert to default settings
  4382. gcode_M502();
  4383. break;
  4384. case 503: // M503 print settings currently in memory
  4385. gcode_M503();
  4386. break;
  4387. #ifdef ABORT_ON_ENDSTOP_HIT_FEATURE_ENABLED
  4388. case 540:
  4389. gcode_M540();
  4390. break;
  4391. #endif
  4392. #ifdef CUSTOM_M_CODE_SET_Z_PROBE_OFFSET
  4393. case CUSTOM_M_CODE_SET_Z_PROBE_OFFSET:
  4394. gcode_SET_Z_PROBE_OFFSET();
  4395. break;
  4396. #endif // CUSTOM_M_CODE_SET_Z_PROBE_OFFSET
  4397. #ifdef FILAMENTCHANGEENABLE
  4398. case 600: //Pause for filament change X[pos] Y[pos] Z[relative lift] E[initial retract] L[later retract distance for removal]
  4399. gcode_M600();
  4400. break;
  4401. #endif // FILAMENTCHANGEENABLE
  4402. #ifdef DUAL_X_CARRIAGE
  4403. case 605:
  4404. gcode_M605();
  4405. break;
  4406. #endif // DUAL_X_CARRIAGE
  4407. case 907: // M907 Set digital trimpot motor current using axis codes.
  4408. gcode_M907();
  4409. break;
  4410. #if HAS_DIGIPOTSS
  4411. case 908: // M908 Control digital trimpot directly.
  4412. gcode_M908();
  4413. break;
  4414. #endif // HAS_DIGIPOTSS
  4415. case 350: // M350 Set microstepping mode. Warning: Steps per unit remains unchanged. S code sets stepping mode for all drivers.
  4416. gcode_M350();
  4417. break;
  4418. case 351: // M351 Toggle MS1 MS2 pins directly, S# determines MS1 or MS2, X# sets the pin high/low.
  4419. gcode_M351();
  4420. break;
  4421. case 999: // M999: Restart after being Stopped
  4422. gcode_M999();
  4423. break;
  4424. }
  4425. }
  4426. else if (code_seen('T')) {
  4427. gcode_T();
  4428. }
  4429. else {
  4430. SERIAL_ECHO_START;
  4431. SERIAL_ECHOPGM(MSG_UNKNOWN_COMMAND);
  4432. SERIAL_ECHO(cmdbuffer[bufindr]);
  4433. SERIAL_ECHOLNPGM("\"");
  4434. }
  4435. ClearToSend();
  4436. }
  4437. void FlushSerialRequestResend()
  4438. {
  4439. //char cmdbuffer[bufindr][100]="Resend:";
  4440. MYSERIAL.flush();
  4441. SERIAL_PROTOCOLPGM(MSG_RESEND);
  4442. SERIAL_PROTOCOLLN(gcode_LastN + 1);
  4443. ClearToSend();
  4444. }
  4445. void ClearToSend()
  4446. {
  4447. previous_millis_cmd = millis();
  4448. #ifdef SDSUPPORT
  4449. if(fromsd[bufindr])
  4450. return;
  4451. #endif //SDSUPPORT
  4452. SERIAL_PROTOCOLLNPGM(MSG_OK);
  4453. }
  4454. void get_coordinates() {
  4455. for (int i = 0; i < NUM_AXIS; i++) {
  4456. if (code_seen(axis_codes[i]))
  4457. destination[i] = code_value() + (axis_relative_modes[i] || relative_mode ? current_position[i] : 0);
  4458. else
  4459. destination[i] = current_position[i];
  4460. }
  4461. if (code_seen('F')) {
  4462. next_feedrate = code_value();
  4463. if (next_feedrate > 0.0) feedrate = next_feedrate;
  4464. }
  4465. }
  4466. void get_arc_coordinates()
  4467. {
  4468. #ifdef SF_ARC_FIX
  4469. bool relative_mode_backup = relative_mode;
  4470. relative_mode = true;
  4471. #endif
  4472. get_coordinates();
  4473. #ifdef SF_ARC_FIX
  4474. relative_mode=relative_mode_backup;
  4475. #endif
  4476. if(code_seen('I')) {
  4477. offset[0] = code_value();
  4478. }
  4479. else {
  4480. offset[0] = 0.0;
  4481. }
  4482. if(code_seen('J')) {
  4483. offset[1] = code_value();
  4484. }
  4485. else {
  4486. offset[1] = 0.0;
  4487. }
  4488. }
  4489. void clamp_to_software_endstops(float target[3])
  4490. {
  4491. if (min_software_endstops) {
  4492. if (target[X_AXIS] < min_pos[X_AXIS]) target[X_AXIS] = min_pos[X_AXIS];
  4493. if (target[Y_AXIS] < min_pos[Y_AXIS]) target[Y_AXIS] = min_pos[Y_AXIS];
  4494. float negative_z_offset = 0;
  4495. #ifdef ENABLE_AUTO_BED_LEVELING
  4496. if (Z_PROBE_OFFSET_FROM_EXTRUDER < 0) negative_z_offset = negative_z_offset + Z_PROBE_OFFSET_FROM_EXTRUDER;
  4497. if (home_offset[Z_AXIS] < 0) negative_z_offset = negative_z_offset + home_offset[Z_AXIS];
  4498. #endif
  4499. if (target[Z_AXIS] < min_pos[Z_AXIS]+negative_z_offset) target[Z_AXIS] = min_pos[Z_AXIS]+negative_z_offset;
  4500. }
  4501. if (max_software_endstops) {
  4502. if (target[X_AXIS] > max_pos[X_AXIS]) target[X_AXIS] = max_pos[X_AXIS];
  4503. if (target[Y_AXIS] > max_pos[Y_AXIS]) target[Y_AXIS] = max_pos[Y_AXIS];
  4504. if (target[Z_AXIS] > max_pos[Z_AXIS]) target[Z_AXIS] = max_pos[Z_AXIS];
  4505. }
  4506. }
  4507. #ifdef DELTA
  4508. void recalc_delta_settings(float radius, float diagonal_rod)
  4509. {
  4510. delta_tower1_x= -SIN_60*radius; // front left tower
  4511. delta_tower1_y= -COS_60*radius;
  4512. delta_tower2_x= SIN_60*radius; // front right tower
  4513. delta_tower2_y= -COS_60*radius;
  4514. delta_tower3_x= 0.0; // back middle tower
  4515. delta_tower3_y= radius;
  4516. delta_diagonal_rod_2= sq(diagonal_rod);
  4517. }
  4518. void calculate_delta(float cartesian[3])
  4519. {
  4520. delta[X_AXIS] = sqrt(delta_diagonal_rod_2
  4521. - sq(delta_tower1_x-cartesian[X_AXIS])
  4522. - sq(delta_tower1_y-cartesian[Y_AXIS])
  4523. ) + cartesian[Z_AXIS];
  4524. delta[Y_AXIS] = sqrt(delta_diagonal_rod_2
  4525. - sq(delta_tower2_x-cartesian[X_AXIS])
  4526. - sq(delta_tower2_y-cartesian[Y_AXIS])
  4527. ) + cartesian[Z_AXIS];
  4528. delta[Z_AXIS] = sqrt(delta_diagonal_rod_2
  4529. - sq(delta_tower3_x-cartesian[X_AXIS])
  4530. - sq(delta_tower3_y-cartesian[Y_AXIS])
  4531. ) + cartesian[Z_AXIS];
  4532. /*
  4533. SERIAL_ECHOPGM("cartesian x="); SERIAL_ECHO(cartesian[X_AXIS]);
  4534. SERIAL_ECHOPGM(" y="); SERIAL_ECHO(cartesian[Y_AXIS]);
  4535. SERIAL_ECHOPGM(" z="); SERIAL_ECHOLN(cartesian[Z_AXIS]);
  4536. SERIAL_ECHOPGM("delta x="); SERIAL_ECHO(delta[X_AXIS]);
  4537. SERIAL_ECHOPGM(" y="); SERIAL_ECHO(delta[Y_AXIS]);
  4538. SERIAL_ECHOPGM(" z="); SERIAL_ECHOLN(delta[Z_AXIS]);
  4539. */
  4540. }
  4541. #ifdef ENABLE_AUTO_BED_LEVELING
  4542. // Adjust print surface height by linear interpolation over the bed_level array.
  4543. int delta_grid_spacing[2] = { 0, 0 };
  4544. void adjust_delta(float cartesian[3])
  4545. {
  4546. if (delta_grid_spacing[0] == 0 || delta_grid_spacing[1] == 0)
  4547. return; // G29 not done
  4548. int half = (AUTO_BED_LEVELING_GRID_POINTS - 1) / 2;
  4549. float grid_x = max(0.001-half, min(half-0.001, cartesian[X_AXIS] / delta_grid_spacing[0]));
  4550. float grid_y = max(0.001-half, min(half-0.001, cartesian[Y_AXIS] / delta_grid_spacing[1]));
  4551. int floor_x = floor(grid_x);
  4552. int floor_y = floor(grid_y);
  4553. float ratio_x = grid_x - floor_x;
  4554. float ratio_y = grid_y - floor_y;
  4555. float z1 = bed_level[floor_x+half][floor_y+half];
  4556. float z2 = bed_level[floor_x+half][floor_y+half+1];
  4557. float z3 = bed_level[floor_x+half+1][floor_y+half];
  4558. float z4 = bed_level[floor_x+half+1][floor_y+half+1];
  4559. float left = (1-ratio_y)*z1 + ratio_y*z2;
  4560. float right = (1-ratio_y)*z3 + ratio_y*z4;
  4561. float offset = (1-ratio_x)*left + ratio_x*right;
  4562. delta[X_AXIS] += offset;
  4563. delta[Y_AXIS] += offset;
  4564. delta[Z_AXIS] += offset;
  4565. /*
  4566. SERIAL_ECHOPGM("grid_x="); SERIAL_ECHO(grid_x);
  4567. SERIAL_ECHOPGM(" grid_y="); SERIAL_ECHO(grid_y);
  4568. SERIAL_ECHOPGM(" floor_x="); SERIAL_ECHO(floor_x);
  4569. SERIAL_ECHOPGM(" floor_y="); SERIAL_ECHO(floor_y);
  4570. SERIAL_ECHOPGM(" ratio_x="); SERIAL_ECHO(ratio_x);
  4571. SERIAL_ECHOPGM(" ratio_y="); SERIAL_ECHO(ratio_y);
  4572. SERIAL_ECHOPGM(" z1="); SERIAL_ECHO(z1);
  4573. SERIAL_ECHOPGM(" z2="); SERIAL_ECHO(z2);
  4574. SERIAL_ECHOPGM(" z3="); SERIAL_ECHO(z3);
  4575. SERIAL_ECHOPGM(" z4="); SERIAL_ECHO(z4);
  4576. SERIAL_ECHOPGM(" left="); SERIAL_ECHO(left);
  4577. SERIAL_ECHOPGM(" right="); SERIAL_ECHO(right);
  4578. SERIAL_ECHOPGM(" offset="); SERIAL_ECHOLN(offset);
  4579. */
  4580. }
  4581. #endif //ENABLE_AUTO_BED_LEVELING
  4582. void prepare_move_raw()
  4583. {
  4584. previous_millis_cmd = millis();
  4585. calculate_delta(destination);
  4586. plan_buffer_line(delta[X_AXIS], delta[Y_AXIS], delta[Z_AXIS],
  4587. destination[E_AXIS], feedrate*feedmultiply/60/100.0,
  4588. active_extruder);
  4589. for(int8_t i=0; i < NUM_AXIS; i++) {
  4590. current_position[i] = destination[i];
  4591. }
  4592. }
  4593. #endif //DELTA
  4594. #if defined(MESH_BED_LEVELING)
  4595. #if !defined(MIN)
  4596. #define MIN(_v1, _v2) (((_v1) < (_v2)) ? (_v1) : (_v2))
  4597. #endif // ! MIN
  4598. // This function is used to split lines on mesh borders so each segment is only part of one mesh area
  4599. void mesh_plan_buffer_line(float x, float y, float z, const float e, float feed_rate, const uint8_t &extruder, uint8_t x_splits=0xff, uint8_t y_splits=0xff)
  4600. {
  4601. if (!mbl.active) {
  4602. plan_buffer_line(x, y, z, e, feed_rate, extruder);
  4603. for(int8_t i=0; i < NUM_AXIS; i++) {
  4604. current_position[i] = destination[i];
  4605. }
  4606. return;
  4607. }
  4608. int pix = mbl.select_x_index(current_position[X_AXIS]);
  4609. int piy = mbl.select_y_index(current_position[Y_AXIS]);
  4610. int ix = mbl.select_x_index(x);
  4611. int iy = mbl.select_y_index(y);
  4612. pix = MIN(pix, MESH_NUM_X_POINTS-2);
  4613. piy = MIN(piy, MESH_NUM_Y_POINTS-2);
  4614. ix = MIN(ix, MESH_NUM_X_POINTS-2);
  4615. iy = MIN(iy, MESH_NUM_Y_POINTS-2);
  4616. if (pix == ix && piy == iy) {
  4617. // Start and end on same mesh square
  4618. plan_buffer_line(x, y, z, e, feed_rate, extruder);
  4619. for(int8_t i=0; i < NUM_AXIS; i++) {
  4620. current_position[i] = destination[i];
  4621. }
  4622. return;
  4623. }
  4624. float nx, ny, ne, normalized_dist;
  4625. if (ix > pix && (x_splits) & BIT(ix)) {
  4626. nx = mbl.get_x(ix);
  4627. normalized_dist = (nx - current_position[X_AXIS])/(x - current_position[X_AXIS]);
  4628. ny = current_position[Y_AXIS] + (y - current_position[Y_AXIS]) * normalized_dist;
  4629. ne = current_position[E_AXIS] + (e - current_position[E_AXIS]) * normalized_dist;
  4630. x_splits ^= BIT(ix);
  4631. } else if (ix < pix && (x_splits) & BIT(pix)) {
  4632. nx = mbl.get_x(pix);
  4633. normalized_dist = (nx - current_position[X_AXIS])/(x - current_position[X_AXIS]);
  4634. ny = current_position[Y_AXIS] + (y - current_position[Y_AXIS]) * normalized_dist;
  4635. ne = current_position[E_AXIS] + (e - current_position[E_AXIS]) * normalized_dist;
  4636. x_splits ^= BIT(pix);
  4637. } else if (iy > piy && (y_splits) & BIT(iy)) {
  4638. ny = mbl.get_y(iy);
  4639. normalized_dist = (ny - current_position[Y_AXIS])/(y - current_position[Y_AXIS]);
  4640. nx = current_position[X_AXIS] + (x - current_position[X_AXIS]) * normalized_dist;
  4641. ne = current_position[E_AXIS] + (e - current_position[E_AXIS]) * normalized_dist;
  4642. y_splits ^= BIT(iy);
  4643. } else if (iy < piy && (y_splits) & BIT(piy)) {
  4644. ny = mbl.get_y(piy);
  4645. normalized_dist = (ny - current_position[Y_AXIS])/(y - current_position[Y_AXIS]);
  4646. nx = current_position[X_AXIS] + (x - current_position[X_AXIS]) * normalized_dist;
  4647. ne = current_position[E_AXIS] + (e - current_position[E_AXIS]) * normalized_dist;
  4648. y_splits ^= BIT(piy);
  4649. } else {
  4650. // Already split on a border
  4651. plan_buffer_line(x, y, z, e, feed_rate, extruder);
  4652. for(int8_t i=0; i < NUM_AXIS; i++) {
  4653. current_position[i] = destination[i];
  4654. }
  4655. return;
  4656. }
  4657. // Do the split and look for more borders
  4658. destination[X_AXIS] = nx;
  4659. destination[Y_AXIS] = ny;
  4660. destination[E_AXIS] = ne;
  4661. mesh_plan_buffer_line(nx, ny, z, ne, feed_rate, extruder, x_splits, y_splits);
  4662. destination[X_AXIS] = x;
  4663. destination[Y_AXIS] = y;
  4664. destination[E_AXIS] = e;
  4665. mesh_plan_buffer_line(x, y, z, e, feed_rate, extruder, x_splits, y_splits);
  4666. }
  4667. #endif // MESH_BED_LEVELING
  4668. void prepare_move()
  4669. {
  4670. clamp_to_software_endstops(destination);
  4671. previous_millis_cmd = millis();
  4672. #ifdef SCARA //for now same as delta-code
  4673. float difference[NUM_AXIS];
  4674. for (int8_t i=0; i < NUM_AXIS; i++) {
  4675. difference[i] = destination[i] - current_position[i];
  4676. }
  4677. float cartesian_mm = sqrt( sq(difference[X_AXIS]) +
  4678. sq(difference[Y_AXIS]) +
  4679. sq(difference[Z_AXIS]));
  4680. if (cartesian_mm < 0.000001) { cartesian_mm = abs(difference[E_AXIS]); }
  4681. if (cartesian_mm < 0.000001) { return; }
  4682. float seconds = 6000 * cartesian_mm / feedrate / feedmultiply;
  4683. int steps = max(1, int(scara_segments_per_second * seconds));
  4684. //SERIAL_ECHOPGM("mm="); SERIAL_ECHO(cartesian_mm);
  4685. //SERIAL_ECHOPGM(" seconds="); SERIAL_ECHO(seconds);
  4686. //SERIAL_ECHOPGM(" steps="); SERIAL_ECHOLN(steps);
  4687. for (int s = 1; s <= steps; s++) {
  4688. float fraction = float(s) / float(steps);
  4689. for(int8_t i=0; i < NUM_AXIS; i++) {
  4690. destination[i] = current_position[i] + difference[i] * fraction;
  4691. }
  4692. calculate_delta(destination);
  4693. //SERIAL_ECHOPGM("destination[X_AXIS]="); SERIAL_ECHOLN(destination[X_AXIS]);
  4694. //SERIAL_ECHOPGM("destination[Y_AXIS]="); SERIAL_ECHOLN(destination[Y_AXIS]);
  4695. //SERIAL_ECHOPGM("destination[Z_AXIS]="); SERIAL_ECHOLN(destination[Z_AXIS]);
  4696. //SERIAL_ECHOPGM("delta[X_AXIS]="); SERIAL_ECHOLN(delta[X_AXIS]);
  4697. //SERIAL_ECHOPGM("delta[Y_AXIS]="); SERIAL_ECHOLN(delta[Y_AXIS]);
  4698. //SERIAL_ECHOPGM("delta[Z_AXIS]="); SERIAL_ECHOLN(delta[Z_AXIS]);
  4699. plan_buffer_line(delta[X_AXIS], delta[Y_AXIS], delta[Z_AXIS],
  4700. destination[E_AXIS], feedrate*feedmultiply/60/100.0,
  4701. active_extruder);
  4702. }
  4703. #endif // SCARA
  4704. #ifdef DELTA
  4705. float difference[NUM_AXIS];
  4706. for (int8_t i=0; i < NUM_AXIS; i++) {
  4707. difference[i] = destination[i] - current_position[i];
  4708. }
  4709. float cartesian_mm = sqrt(sq(difference[X_AXIS]) +
  4710. sq(difference[Y_AXIS]) +
  4711. sq(difference[Z_AXIS]));
  4712. if (cartesian_mm < 0.000001) { cartesian_mm = abs(difference[E_AXIS]); }
  4713. if (cartesian_mm < 0.000001) { return; }
  4714. float seconds = 6000 * cartesian_mm / feedrate / feedmultiply;
  4715. int steps = max(1, int(delta_segments_per_second * seconds));
  4716. // SERIAL_ECHOPGM("mm="); SERIAL_ECHO(cartesian_mm);
  4717. // SERIAL_ECHOPGM(" seconds="); SERIAL_ECHO(seconds);
  4718. // SERIAL_ECHOPGM(" steps="); SERIAL_ECHOLN(steps);
  4719. for (int s = 1; s <= steps; s++) {
  4720. float fraction = float(s) / float(steps);
  4721. for(int8_t i=0; i < NUM_AXIS; i++) {
  4722. destination[i] = current_position[i] + difference[i] * fraction;
  4723. }
  4724. calculate_delta(destination);
  4725. plan_buffer_line(delta[X_AXIS], delta[Y_AXIS], delta[Z_AXIS],
  4726. destination[E_AXIS], feedrate*feedmultiply/60/100.0,
  4727. active_extruder);
  4728. }
  4729. #endif // DELTA
  4730. #ifdef DUAL_X_CARRIAGE
  4731. if (active_extruder_parked)
  4732. {
  4733. if (dual_x_carriage_mode == DXC_DUPLICATION_MODE && active_extruder == 0)
  4734. {
  4735. // move duplicate extruder into correct duplication position.
  4736. plan_set_position(inactive_extruder_x_pos, current_position[Y_AXIS], current_position[Z_AXIS], current_position[E_AXIS]);
  4737. plan_buffer_line(current_position[X_AXIS] + duplicate_extruder_x_offset, current_position[Y_AXIS], current_position[Z_AXIS],
  4738. current_position[E_AXIS], max_feedrate[X_AXIS], 1);
  4739. plan_set_position(current_position[X_AXIS], current_position[Y_AXIS], current_position[Z_AXIS], current_position[E_AXIS]);
  4740. st_synchronize();
  4741. extruder_duplication_enabled = true;
  4742. active_extruder_parked = false;
  4743. }
  4744. else if (dual_x_carriage_mode == DXC_AUTO_PARK_MODE) // handle unparking of head
  4745. {
  4746. if (current_position[E_AXIS] == destination[E_AXIS])
  4747. {
  4748. // this is a travel move - skit it but keep track of current position (so that it can later
  4749. // be used as start of first non-travel move)
  4750. if (delayed_move_time != 0xFFFFFFFFUL)
  4751. {
  4752. memcpy(current_position, destination, sizeof(current_position));
  4753. if (destination[Z_AXIS] > raised_parked_position[Z_AXIS])
  4754. raised_parked_position[Z_AXIS] = destination[Z_AXIS];
  4755. delayed_move_time = millis();
  4756. return;
  4757. }
  4758. }
  4759. delayed_move_time = 0;
  4760. // unpark extruder: 1) raise, 2) move into starting XY position, 3) lower
  4761. plan_buffer_line(raised_parked_position[X_AXIS], raised_parked_position[Y_AXIS], raised_parked_position[Z_AXIS], current_position[E_AXIS], max_feedrate[Z_AXIS], active_extruder);
  4762. plan_buffer_line(current_position[X_AXIS], current_position[Y_AXIS], raised_parked_position[Z_AXIS],
  4763. current_position[E_AXIS], min(max_feedrate[X_AXIS],max_feedrate[Y_AXIS]), active_extruder);
  4764. plan_buffer_line(current_position[X_AXIS], current_position[Y_AXIS], current_position[Z_AXIS],
  4765. current_position[E_AXIS], max_feedrate[Z_AXIS], active_extruder);
  4766. active_extruder_parked = false;
  4767. }
  4768. }
  4769. #endif //DUAL_X_CARRIAGE
  4770. #if ! (defined DELTA || defined SCARA)
  4771. // Do not use feedmultiply for E or Z only moves
  4772. if( (current_position[X_AXIS] == destination [X_AXIS]) && (current_position[Y_AXIS] == destination [Y_AXIS])) {
  4773. plan_buffer_line(destination[X_AXIS], destination[Y_AXIS], destination[Z_AXIS], destination[E_AXIS], feedrate/60, active_extruder);
  4774. } else {
  4775. #if defined(MESH_BED_LEVELING)
  4776. mesh_plan_buffer_line(destination[X_AXIS], destination[Y_AXIS], destination[Z_AXIS], destination[E_AXIS], feedrate*feedmultiply/60/100.0, active_extruder);
  4777. return;
  4778. #else
  4779. plan_buffer_line(destination[X_AXIS], destination[Y_AXIS], destination[Z_AXIS], destination[E_AXIS], feedrate*feedmultiply/60/100.0, active_extruder);
  4780. #endif // MESH_BED_LEVELING
  4781. }
  4782. #endif // !(DELTA || SCARA)
  4783. for(int8_t i=0; i < NUM_AXIS; i++) {
  4784. current_position[i] = destination[i];
  4785. }
  4786. }
  4787. void prepare_arc_move(char isclockwise) {
  4788. float r = hypot(offset[X_AXIS], offset[Y_AXIS]); // Compute arc radius for mc_arc
  4789. // Trace the arc
  4790. mc_arc(current_position, destination, offset, X_AXIS, Y_AXIS, Z_AXIS, feedrate*feedmultiply/60/100.0, r, isclockwise, active_extruder);
  4791. // As far as the parser is concerned, the position is now == target. In reality the
  4792. // motion control system might still be processing the action and the real tool position
  4793. // in any intermediate location.
  4794. for(int8_t i=0; i < NUM_AXIS; i++) {
  4795. current_position[i] = destination[i];
  4796. }
  4797. previous_millis_cmd = millis();
  4798. }
  4799. #if defined(CONTROLLERFAN_PIN) && CONTROLLERFAN_PIN > -1
  4800. #if defined(FAN_PIN)
  4801. #if CONTROLLERFAN_PIN == FAN_PIN
  4802. #error "You cannot set CONTROLLERFAN_PIN equal to FAN_PIN"
  4803. #endif
  4804. #endif
  4805. unsigned long lastMotor = 0; // Last time a motor was turned on
  4806. unsigned long lastMotorCheck = 0; // Last time the state was checked
  4807. void controllerFan() {
  4808. uint32_t ms = millis();
  4809. if (ms >= lastMotorCheck + 2500) { // Not a time critical function, so we only check every 2500ms
  4810. lastMotorCheck = ms;
  4811. if (X_ENABLE_READ == X_ENABLE_ON || Y_ENABLE_READ == Y_ENABLE_ON || Z_ENABLE_READ == Z_ENABLE_ON || soft_pwm_bed > 0
  4812. || E0_ENABLE_READ == E_ENABLE_ON // If any of the drivers are enabled...
  4813. #if EXTRUDERS > 1
  4814. || E1_ENABLE_READ == E_ENABLE_ON
  4815. #if defined(X2_ENABLE_PIN) && X2_ENABLE_PIN > -1
  4816. || X2_ENABLE_READ == X_ENABLE_ON
  4817. #endif
  4818. #if EXTRUDERS > 2
  4819. || E2_ENABLE_READ == E_ENABLE_ON
  4820. #if EXTRUDERS > 3
  4821. || E3_ENABLE_READ == E_ENABLE_ON
  4822. #endif
  4823. #endif
  4824. #endif
  4825. ) {
  4826. lastMotor = ms; //... set time to NOW so the fan will turn on
  4827. }
  4828. uint8_t speed = (lastMotor == 0 || ms >= lastMotor + (CONTROLLERFAN_SECS * 1000UL)) ? 0 : CONTROLLERFAN_SPEED;
  4829. // allows digital or PWM fan output to be used (see M42 handling)
  4830. digitalWrite(CONTROLLERFAN_PIN, speed);
  4831. analogWrite(CONTROLLERFAN_PIN, speed);
  4832. }
  4833. }
  4834. #endif
  4835. #ifdef SCARA
  4836. void calculate_SCARA_forward_Transform(float f_scara[3])
  4837. {
  4838. // Perform forward kinematics, and place results in delta[3]
  4839. // The maths and first version has been done by QHARLEY . Integrated into masterbranch 06/2014 and slightly restructured by Joachim Cerny in June 2014
  4840. float x_sin, x_cos, y_sin, y_cos;
  4841. //SERIAL_ECHOPGM("f_delta x="); SERIAL_ECHO(f_scara[X_AXIS]);
  4842. //SERIAL_ECHOPGM(" y="); SERIAL_ECHO(f_scara[Y_AXIS]);
  4843. x_sin = sin(f_scara[X_AXIS]/SCARA_RAD2DEG) * Linkage_1;
  4844. x_cos = cos(f_scara[X_AXIS]/SCARA_RAD2DEG) * Linkage_1;
  4845. y_sin = sin(f_scara[Y_AXIS]/SCARA_RAD2DEG) * Linkage_2;
  4846. y_cos = cos(f_scara[Y_AXIS]/SCARA_RAD2DEG) * Linkage_2;
  4847. // SERIAL_ECHOPGM(" x_sin="); SERIAL_ECHO(x_sin);
  4848. // SERIAL_ECHOPGM(" x_cos="); SERIAL_ECHO(x_cos);
  4849. // SERIAL_ECHOPGM(" y_sin="); SERIAL_ECHO(y_sin);
  4850. // SERIAL_ECHOPGM(" y_cos="); SERIAL_ECHOLN(y_cos);
  4851. delta[X_AXIS] = x_cos + y_cos + SCARA_offset_x; //theta
  4852. delta[Y_AXIS] = x_sin + y_sin + SCARA_offset_y; //theta+phi
  4853. //SERIAL_ECHOPGM(" delta[X_AXIS]="); SERIAL_ECHO(delta[X_AXIS]);
  4854. //SERIAL_ECHOPGM(" delta[Y_AXIS]="); SERIAL_ECHOLN(delta[Y_AXIS]);
  4855. }
  4856. void calculate_delta(float cartesian[3]){
  4857. //reverse kinematics.
  4858. // Perform reversed kinematics, and place results in delta[3]
  4859. // The maths and first version has been done by QHARLEY . Integrated into masterbranch 06/2014 and slightly restructured by Joachim Cerny in June 2014
  4860. float SCARA_pos[2];
  4861. static float SCARA_C2, SCARA_S2, SCARA_K1, SCARA_K2, SCARA_theta, SCARA_psi;
  4862. SCARA_pos[X_AXIS] = cartesian[X_AXIS] * axis_scaling[X_AXIS] - SCARA_offset_x; //Translate SCARA to standard X Y
  4863. SCARA_pos[Y_AXIS] = cartesian[Y_AXIS] * axis_scaling[Y_AXIS] - SCARA_offset_y; // With scaling factor.
  4864. #if (Linkage_1 == Linkage_2)
  4865. SCARA_C2 = ( ( sq(SCARA_pos[X_AXIS]) + sq(SCARA_pos[Y_AXIS]) ) / (2 * (float)L1_2) ) - 1;
  4866. #else
  4867. SCARA_C2 = ( sq(SCARA_pos[X_AXIS]) + sq(SCARA_pos[Y_AXIS]) - (float)L1_2 - (float)L2_2 ) / 45000;
  4868. #endif
  4869. SCARA_S2 = sqrt( 1 - sq(SCARA_C2) );
  4870. SCARA_K1 = Linkage_1 + Linkage_2 * SCARA_C2;
  4871. SCARA_K2 = Linkage_2 * SCARA_S2;
  4872. SCARA_theta = ( atan2(SCARA_pos[X_AXIS],SCARA_pos[Y_AXIS])-atan2(SCARA_K1, SCARA_K2) ) * -1;
  4873. SCARA_psi = atan2(SCARA_S2,SCARA_C2);
  4874. delta[X_AXIS] = SCARA_theta * SCARA_RAD2DEG; // Multiply by 180/Pi - theta is support arm angle
  4875. delta[Y_AXIS] = (SCARA_theta + SCARA_psi) * SCARA_RAD2DEG; // - equal to sub arm angle (inverted motor)
  4876. delta[Z_AXIS] = cartesian[Z_AXIS];
  4877. /*
  4878. SERIAL_ECHOPGM("cartesian x="); SERIAL_ECHO(cartesian[X_AXIS]);
  4879. SERIAL_ECHOPGM(" y="); SERIAL_ECHO(cartesian[Y_AXIS]);
  4880. SERIAL_ECHOPGM(" z="); SERIAL_ECHOLN(cartesian[Z_AXIS]);
  4881. SERIAL_ECHOPGM("scara x="); SERIAL_ECHO(SCARA_pos[X_AXIS]);
  4882. SERIAL_ECHOPGM(" y="); SERIAL_ECHOLN(SCARA_pos[Y_AXIS]);
  4883. SERIAL_ECHOPGM("delta x="); SERIAL_ECHO(delta[X_AXIS]);
  4884. SERIAL_ECHOPGM(" y="); SERIAL_ECHO(delta[Y_AXIS]);
  4885. SERIAL_ECHOPGM(" z="); SERIAL_ECHOLN(delta[Z_AXIS]);
  4886. SERIAL_ECHOPGM("C2="); SERIAL_ECHO(SCARA_C2);
  4887. SERIAL_ECHOPGM(" S2="); SERIAL_ECHO(SCARA_S2);
  4888. SERIAL_ECHOPGM(" Theta="); SERIAL_ECHO(SCARA_theta);
  4889. SERIAL_ECHOPGM(" Psi="); SERIAL_ECHOLN(SCARA_psi);
  4890. SERIAL_ECHOLN(" ");*/
  4891. }
  4892. #endif
  4893. #ifdef TEMP_STAT_LEDS
  4894. static bool blue_led = false;
  4895. static bool red_led = false;
  4896. static uint32_t stat_update = 0;
  4897. void handle_status_leds(void) {
  4898. float max_temp = 0.0;
  4899. if(millis() > stat_update) {
  4900. stat_update += 500; // Update every 0.5s
  4901. for (int8_t cur_extruder = 0; cur_extruder < EXTRUDERS; ++cur_extruder) {
  4902. max_temp = max(max_temp, degHotend(cur_extruder));
  4903. max_temp = max(max_temp, degTargetHotend(cur_extruder));
  4904. }
  4905. #if defined(TEMP_BED_PIN) && TEMP_BED_PIN > -1
  4906. max_temp = max(max_temp, degTargetBed());
  4907. max_temp = max(max_temp, degBed());
  4908. #endif
  4909. if((max_temp > 55.0) && (red_led == false)) {
  4910. digitalWrite(STAT_LED_RED, 1);
  4911. digitalWrite(STAT_LED_BLUE, 0);
  4912. red_led = true;
  4913. blue_led = false;
  4914. }
  4915. if((max_temp < 54.0) && (blue_led == false)) {
  4916. digitalWrite(STAT_LED_RED, 0);
  4917. digitalWrite(STAT_LED_BLUE, 1);
  4918. red_led = false;
  4919. blue_led = true;
  4920. }
  4921. }
  4922. }
  4923. #endif
  4924. void manage_inactivity(bool ignore_stepper_queue/*=false*/) //default argument set in Marlin.h
  4925. {
  4926. #if defined(KILL_PIN) && KILL_PIN > -1
  4927. static int killCount = 0; // make the inactivity button a bit less responsive
  4928. const int KILL_DELAY = 750;
  4929. #endif
  4930. #if defined(FILRUNOUT_PIN) && FILRUNOUT_PIN > -1
  4931. if(card.sdprinting) {
  4932. if(!(READ(FILRUNOUT_PIN))^FIL_RUNOUT_INVERTING)
  4933. filrunout(); }
  4934. #endif
  4935. #if defined(HOME_PIN) && HOME_PIN > -1
  4936. static int homeDebounceCount = 0; // poor man's debouncing count
  4937. const int HOME_DEBOUNCE_DELAY = 750;
  4938. #endif
  4939. if(buflen < (BUFSIZE-1))
  4940. get_command();
  4941. if( (millis() - previous_millis_cmd) > max_inactive_time )
  4942. if(max_inactive_time)
  4943. kill();
  4944. if(stepper_inactive_time) {
  4945. if( (millis() - previous_millis_cmd) > stepper_inactive_time )
  4946. {
  4947. if(blocks_queued() == false && ignore_stepper_queue == false) {
  4948. disable_x();
  4949. disable_y();
  4950. disable_z();
  4951. disable_e0();
  4952. disable_e1();
  4953. disable_e2();
  4954. disable_e3();
  4955. }
  4956. }
  4957. }
  4958. #ifdef CHDK //Check if pin should be set to LOW after M240 set it to HIGH
  4959. if (chdkActive && (millis() - chdkHigh > CHDK_DELAY))
  4960. {
  4961. chdkActive = false;
  4962. WRITE(CHDK, LOW);
  4963. }
  4964. #endif
  4965. #if defined(KILL_PIN) && KILL_PIN > -1
  4966. // Check if the kill button was pressed and wait just in case it was an accidental
  4967. // key kill key press
  4968. // -------------------------------------------------------------------------------
  4969. if( 0 == READ(KILL_PIN) )
  4970. {
  4971. killCount++;
  4972. }
  4973. else if (killCount > 0)
  4974. {
  4975. killCount--;
  4976. }
  4977. // Exceeded threshold and we can confirm that it was not accidental
  4978. // KILL the machine
  4979. // ----------------------------------------------------------------
  4980. if ( killCount >= KILL_DELAY)
  4981. {
  4982. kill();
  4983. }
  4984. #endif
  4985. #if defined(HOME_PIN) && HOME_PIN > -1
  4986. // Check to see if we have to home, use poor man's debouncer
  4987. // ---------------------------------------------------------
  4988. if ( 0 == READ(HOME_PIN) )
  4989. {
  4990. if (homeDebounceCount == 0)
  4991. {
  4992. enquecommands_P((PSTR("G28")));
  4993. homeDebounceCount++;
  4994. LCD_ALERTMESSAGEPGM(MSG_AUTO_HOME);
  4995. }
  4996. else if (homeDebounceCount < HOME_DEBOUNCE_DELAY)
  4997. {
  4998. homeDebounceCount++;
  4999. }
  5000. else
  5001. {
  5002. homeDebounceCount = 0;
  5003. }
  5004. }
  5005. #endif
  5006. #if defined(CONTROLLERFAN_PIN) && CONTROLLERFAN_PIN > -1
  5007. controllerFan(); //Check if fan should be turned on to cool stepper drivers down
  5008. #endif
  5009. #ifdef EXTRUDER_RUNOUT_PREVENT
  5010. if( (millis() - previous_millis_cmd) > EXTRUDER_RUNOUT_SECONDS*1000 )
  5011. if(degHotend(active_extruder)>EXTRUDER_RUNOUT_MINTEMP)
  5012. {
  5013. bool oldstatus=E0_ENABLE_READ;
  5014. enable_e0();
  5015. float oldepos=current_position[E_AXIS];
  5016. float oldedes=destination[E_AXIS];
  5017. plan_buffer_line(destination[X_AXIS], destination[Y_AXIS], destination[Z_AXIS],
  5018. destination[E_AXIS]+EXTRUDER_RUNOUT_EXTRUDE*EXTRUDER_RUNOUT_ESTEPS/axis_steps_per_unit[E_AXIS],
  5019. EXTRUDER_RUNOUT_SPEED/60.*EXTRUDER_RUNOUT_ESTEPS/axis_steps_per_unit[E_AXIS], active_extruder);
  5020. current_position[E_AXIS]=oldepos;
  5021. destination[E_AXIS]=oldedes;
  5022. plan_set_e_position(oldepos);
  5023. previous_millis_cmd=millis();
  5024. st_synchronize();
  5025. E0_ENABLE_WRITE(oldstatus);
  5026. }
  5027. #endif
  5028. #if defined(DUAL_X_CARRIAGE)
  5029. // handle delayed move timeout
  5030. if (delayed_move_time != 0 && (millis() - delayed_move_time) > 1000 && Stopped == false)
  5031. {
  5032. // travel moves have been received so enact them
  5033. delayed_move_time = 0xFFFFFFFFUL; // force moves to be done
  5034. memcpy(destination,current_position,sizeof(destination));
  5035. prepare_move();
  5036. }
  5037. #endif
  5038. #ifdef TEMP_STAT_LEDS
  5039. handle_status_leds();
  5040. #endif
  5041. check_axes_activity();
  5042. }
  5043. void kill()
  5044. {
  5045. cli(); // Stop interrupts
  5046. disable_heater();
  5047. disable_x();
  5048. disable_y();
  5049. disable_z();
  5050. disable_e0();
  5051. disable_e1();
  5052. disable_e2();
  5053. disable_e3();
  5054. #if defined(PS_ON_PIN) && PS_ON_PIN > -1
  5055. pinMode(PS_ON_PIN,INPUT);
  5056. #endif
  5057. SERIAL_ERROR_START;
  5058. SERIAL_ERRORLNPGM(MSG_ERR_KILLED);
  5059. LCD_ALERTMESSAGEPGM(MSG_KILLED);
  5060. // FMC small patch to update the LCD before ending
  5061. sei(); // enable interrupts
  5062. for ( int i=5; i--; lcd_update())
  5063. {
  5064. delay(200);
  5065. }
  5066. cli(); // disable interrupts
  5067. suicide();
  5068. while(1) { /* Intentionally left empty */ } // Wait for reset
  5069. }
  5070. #ifdef FILAMENT_RUNOUT_SENSOR
  5071. void filrunout()
  5072. {
  5073. if filrunoutEnqued == false {
  5074. filrunoutEnqued = true;
  5075. enquecommand("M600");
  5076. }
  5077. }
  5078. #endif
  5079. void Stop()
  5080. {
  5081. disable_heater();
  5082. if(Stopped == false) {
  5083. Stopped = true;
  5084. Stopped_gcode_LastN = gcode_LastN; // Save last g_code for restart
  5085. SERIAL_ERROR_START;
  5086. SERIAL_ERRORLNPGM(MSG_ERR_STOPPED);
  5087. LCD_MESSAGEPGM(MSG_STOPPED);
  5088. }
  5089. }
  5090. bool IsStopped() { return Stopped; };
  5091. #ifdef FAST_PWM_FAN
  5092. void setPwmFrequency(uint8_t pin, int val)
  5093. {
  5094. val &= 0x07;
  5095. switch(digitalPinToTimer(pin))
  5096. {
  5097. #if defined(TCCR0A)
  5098. case TIMER0A:
  5099. case TIMER0B:
  5100. // TCCR0B &= ~(_BV(CS00) | _BV(CS01) | _BV(CS02));
  5101. // TCCR0B |= val;
  5102. break;
  5103. #endif
  5104. #if defined(TCCR1A)
  5105. case TIMER1A:
  5106. case TIMER1B:
  5107. // TCCR1B &= ~(_BV(CS10) | _BV(CS11) | _BV(CS12));
  5108. // TCCR1B |= val;
  5109. break;
  5110. #endif
  5111. #if defined(TCCR2)
  5112. case TIMER2:
  5113. case TIMER2:
  5114. TCCR2 &= ~(_BV(CS10) | _BV(CS11) | _BV(CS12));
  5115. TCCR2 |= val;
  5116. break;
  5117. #endif
  5118. #if defined(TCCR2A)
  5119. case TIMER2A:
  5120. case TIMER2B:
  5121. TCCR2B &= ~(_BV(CS20) | _BV(CS21) | _BV(CS22));
  5122. TCCR2B |= val;
  5123. break;
  5124. #endif
  5125. #if defined(TCCR3A)
  5126. case TIMER3A:
  5127. case TIMER3B:
  5128. case TIMER3C:
  5129. TCCR3B &= ~(_BV(CS30) | _BV(CS31) | _BV(CS32));
  5130. TCCR3B |= val;
  5131. break;
  5132. #endif
  5133. #if defined(TCCR4A)
  5134. case TIMER4A:
  5135. case TIMER4B:
  5136. case TIMER4C:
  5137. TCCR4B &= ~(_BV(CS40) | _BV(CS41) | _BV(CS42));
  5138. TCCR4B |= val;
  5139. break;
  5140. #endif
  5141. #if defined(TCCR5A)
  5142. case TIMER5A:
  5143. case TIMER5B:
  5144. case TIMER5C:
  5145. TCCR5B &= ~(_BV(CS50) | _BV(CS51) | _BV(CS52));
  5146. TCCR5B |= val;
  5147. break;
  5148. #endif
  5149. }
  5150. }
  5151. #endif //FAST_PWM_FAN
  5152. bool setTargetedHotend(int code){
  5153. tmp_extruder = active_extruder;
  5154. if(code_seen('T')) {
  5155. tmp_extruder = code_value();
  5156. if(tmp_extruder >= EXTRUDERS) {
  5157. SERIAL_ECHO_START;
  5158. switch(code){
  5159. case 104:
  5160. SERIAL_ECHO(MSG_M104_INVALID_EXTRUDER);
  5161. break;
  5162. case 105:
  5163. SERIAL_ECHO(MSG_M105_INVALID_EXTRUDER);
  5164. break;
  5165. case 109:
  5166. SERIAL_ECHO(MSG_M109_INVALID_EXTRUDER);
  5167. break;
  5168. case 218:
  5169. SERIAL_ECHO(MSG_M218_INVALID_EXTRUDER);
  5170. break;
  5171. case 221:
  5172. SERIAL_ECHO(MSG_M221_INVALID_EXTRUDER);
  5173. break;
  5174. }
  5175. SERIAL_ECHOLN(tmp_extruder);
  5176. return true;
  5177. }
  5178. }
  5179. return false;
  5180. }
  5181. float calculate_volumetric_multiplier(float diameter) {
  5182. if (!volumetric_enabled || diameter == 0) return 1.0;
  5183. float d2 = diameter * 0.5;
  5184. return 1.0 / (M_PI * d2 * d2);
  5185. }
  5186. void calculate_volumetric_multipliers() {
  5187. for (int i=0; i<EXTRUDERS; i++)
  5188. volumetric_multiplier[i] = calculate_volumetric_multiplier(filament_size[i]);
  5189. }