Remove requirement for LCD when UBL is used. (#6971)
* Remove requirement for LCD when UBL is used. * fix previous oversights * further refinement - error messages for P2 & P4 * require R on G26 when not using LCD; default to all points
This commit is contained in:
parent
2c2b991b59
commit
82e662fc69
3 changed files with 452 additions and 373 deletions
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@ -99,7 +99,8 @@
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* will be purged before continuing. If no amount is specified the command will start
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* purging filament until the user provides an LCD Click and then it will continue with
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* printing the Mesh. You can carefully remove the spent filament with a needle nose
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* pliers while holding the LCD Click wheel in a depressed state.
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* pliers while holding the LCD Click wheel in a depressed state. If you do not have
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* an LCD, you must specify a value if you use P.
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*
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* Q # Multiplier Retraction Multiplier. Normally not needed. Retraction defaults to 1.0mm and
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* un-retraction is at 1.2mm These numbers will be scaled by the specified amount
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@ -108,6 +109,11 @@
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* If a parameter isn't given, every point will be printed unless G26 is interrupted.
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* This works the same way that the UBL G29 P4 R parameter works.
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*
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* NOTE: If you do not have an LCD, you -must- specify R. This is to ensure that you are
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* aware that there's some risk associated with printing without the ability to abort in
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* cases where mesh point Z value may be inaccurate. As above, if you do not include a
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* parameter, every point will be printed.
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*
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* S # Nozzle Used to control the size of nozzle diameter. If not specified, a .4mm nozzle is assumed.
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*
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* U # Random Randomize the order that the circles are drawn on the bed. The search for the closest
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@ -131,9 +137,11 @@
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void set_destination_to_current();
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void set_current_to_destination();
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void prepare_move_to_destination();
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void lcd_setstatusPGM(const char* const message, const int8_t level);
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void sync_plan_position_e();
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#if ENABLED(NEWPANEL)
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void lcd_setstatusPGM(const char* const message, const int8_t level);
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void chirp_at_user();
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#endif
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// Private functions
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@ -173,6 +181,7 @@
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feedrate_mm_s = save_feedrate; // restore global feed rate
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}
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#if ENABLED(NEWPANEL)
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/**
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* Detect ubl_lcd_clicked, debounce it, and return true for cancel
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*/
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@ -195,6 +204,7 @@
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return true;
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}
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#endif
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/**
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* G26: Mesh Validation Pattern generation.
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@ -310,7 +320,9 @@
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for (tmp = start_angle; tmp < end_angle - 0.1; tmp += 30.0) {
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#if ENABLED(NEWPANEL)
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if (user_canceled()) goto LEAVE; // Check if the user wants to stop the Mesh Validation
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#endif
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int tmp_div_30 = tmp / 30.0;
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if (tmp_div_30 < 0) tmp_div_30 += 360 / 30;
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@ -426,7 +438,9 @@
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for (uint8_t i = 0; i < GRID_MAX_POINTS_X; i++) {
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for (uint8_t j = 0; j < GRID_MAX_POINTS_Y; j++) {
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#if ENABLED(NEWPANEL)
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if (user_canceled()) return true; // Check if the user wants to stop the Mesh Validation
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#endif
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if (i < GRID_MAX_POINTS_X) { // We can't connect to anything to the right than GRID_MAX_POINTS_X.
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// This is already a half circle because we are at the edge of the bed.
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@ -663,9 +677,14 @@
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}
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if (parser.seen('P')) {
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if (!parser.has_value())
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if (!parser.has_value()) {
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#if ENABLED(NEWPANEL)
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g26_prime_flag = -1;
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else {
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#else
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SERIAL_PROTOCOLLNPGM("?Prime length must be specified when not using an LCD.");
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return UBL_ERR;
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#endif
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} else {
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g26_prime_flag++;
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g26_prime_length = parser.value_linear_units();
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if (!WITHIN(g26_prime_length, 0.0, 25.0)) {
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@ -702,7 +721,14 @@
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random_deviation = parser.has_value() ? parser.value_float() : 50.0;
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}
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g26_repeats = parser.seen('R') ? (parser.has_value() ? parser.value_int() : GRID_MAX_POINTS + 1) : GRID_MAX_POINTS + 1;
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#if ENABLED(NEWPANEL)
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g26_repeats = parser.seen('R') && parser.has_value() ? parser.value_int() : GRID_MAX_POINTS + 1;
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#else
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if (!parser.seen('R')) {
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SERIAL_PROTOCOLLNPGM("?(R)epeat must be specified when not using an LCD.");
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return UBL_ERR;
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} else g26_repeats = parser.has_value() ? parser.value_int() : GRID_MAX_POINTS + 1;
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#endif
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if (g26_repeats < 1) {
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SERIAL_PROTOCOLLNPGM("?(R)epeat value not plausible; must be at least 1.");
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return UBL_ERR;
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@ -723,11 +749,13 @@
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return UBL_OK;
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}
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#if ENABLED(NEWPANEL)
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bool unified_bed_leveling::exit_from_g26() {
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lcd_setstatusPGM(PSTR("Leaving G26"), -1);
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while (ubl_lcd_clicked()) idle();
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return UBL_ERR;
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}
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#endif
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/**
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* Turn on the bed and nozzle heat and
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@ -744,7 +772,11 @@
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has_control_of_lcd_panel = true;
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thermalManager.setTargetBed(g26_bed_temp);
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while (abs(thermalManager.degBed() - g26_bed_temp) > 3) {
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#if ENABLED(NEWPANEL)
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if (ubl_lcd_clicked()) return exit_from_g26();
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#endif
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if (PENDING(millis(), next)) {
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next = millis() + 5000UL;
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print_heaterstates();
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@ -761,7 +793,11 @@
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// Start heating the nozzle and wait for it to reach temperature.
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thermalManager.setTargetHotend(g26_hotend_temp, 0);
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while (abs(thermalManager.degHotend(0) - g26_hotend_temp) > 3) {
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#if ENABLED(NEWPANEL)
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if (ubl_lcd_clicked()) return exit_from_g26();
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#endif
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if (PENDING(millis(), next)) {
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next = millis() + 5000UL;
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print_heaterstates();
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@ -781,12 +817,13 @@
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* Prime the nozzle if needed. Return true on error.
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*/
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bool unified_bed_leveling::prime_nozzle() {
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#if ENABLED(NEWPANEL)
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float Total_Prime = 0.0;
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if (g26_prime_flag == -1) { // The user wants to control how much filament gets purged
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has_control_of_lcd_panel = true;
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lcd_setstatusPGM(PSTR("User-Controlled Prime"), 99);
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chirp_at_user();
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@ -824,6 +861,9 @@
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}
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else {
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#else
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{
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#endif
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#if ENABLED(ULTRA_LCD)
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lcd_setstatusPGM(PSTR("Fixed Length Prime."), 99);
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lcd_quick_feedback();
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@ -468,8 +468,6 @@ static_assert(1 >= 0
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#if ENABLED(AUTO_BED_LEVELING_UBL)
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#if IS_SCARA
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#error "AUTO_BED_LEVELING_UBL does not yet support SCARA printers."
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#elif DISABLED(NEWPANEL)
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#error "AUTO_BED_LEVELING_UBL requires an LCD controller."
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#endif
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#endif
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@ -40,11 +40,14 @@
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extern float destination[XYZE], current_position[XYZE];
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#if ENABLED(NEWPANEL)
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void lcd_return_to_status();
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void lcd_mesh_edit_setup(float initial);
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float lcd_mesh_edit();
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void lcd_z_offset_edit_setup(float);
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float lcd_z_offset_edit();
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#endif
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extern float meshedit_done;
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extern long babysteps_done;
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extern float probe_pt(const float &x, const float &y, bool, int);
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@ -149,9 +152,10 @@
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* parameter can be given to prioritize where the command should be trying to measure points.
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* If the X and Y parameters are not specified the current probe position is used.
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* P1 accepts a 'T' (Topology) parameter so you can observe mesh generation.
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* P1 also watches for the LCD Panel Encoder Switch to be held down, and will suspend
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* generation of the Mesh in that case. (Note: This check is only done between probe points,
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* so you must press and hold the switch until the Phase 1 command detects it.)
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* P1 also watches for the LCD Panel Encoder Switch to be held down (assuming you have one),
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* and will suspend generation of the Mesh in that case. (Note: This check is only done
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* between probe points, so you must press and hold the switch until the Phase 1 command
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* detects it.)
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*
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* P2 Phase 2 Probe areas of the Mesh that can't be automatically handled. Phase 2 respects an H
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* parameter to control the height between Mesh points. The default height for movement
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@ -187,6 +191,8 @@
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* Phase 2 allows the T (Map) parameter to be specified. This helps the user see the progression
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* of the Mesh being built.
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*
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* NOTE: P2 is not available unless you have LCD support enabled!
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*
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* P3 Phase 3 Fill the unpopulated regions of the Mesh with a fixed value. There are two different paths the
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* user can go down. If the user specifies the value using the C parameter, the closest invalid
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* mesh points to the nozzle will be filled. The user can specify a repeat count using the R
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@ -204,8 +210,9 @@
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* numbers. You should use some scrutiny and caution.
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*
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* P4 Phase 4 Fine tune the Mesh. The Delta Mesh Compensation System assume the existence of
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* an LCD Panel. It is possible to fine tune the mesh without the use of an LCD Panel.
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* (More work and details on doing this later!)
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* an LCD Panel. It is possible to fine tune the mesh without the use of an LCD Panel using
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* G42 and M421; see the UBL documentation for further details.
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*
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* The System will search for the closest Mesh Point to the nozzle. It will move the
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* nozzle to this location. The user can use the LCD Panel to carefully adjust the nozzle
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* so it is just barely touching the bed. When the user clicks the control, the System
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* LOWER the Mesh Point at the location. If you did not get good adheasion, you want to
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* RAISE the Mesh Point at that location.
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*
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* NOTE: P4 is not available unless you have LCD support enabled!
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*
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* P5 Phase 5 Find Mean Mesh Height and Standard Deviation. Typically, it is easier to use and
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* work with the Mesh if it is Mean Adjusted. You can specify a C parameter to
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break;
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case 2: {
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#if ENABLED(NEWPANEL)
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//
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// Manually Probe Mesh in areas that can't be reached by the probe
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//
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manually_probe_remaining_mesh(g29_x_pos, g29_y_pos, height, g29_card_thickness, parser.seen('T'));
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SERIAL_PROTOCOLLNPGM("G29 P2 finished.");
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#else
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SERIAL_PROTOCOLLNPGM("?P2 is only available when an LCD is present.");
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return;
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#endif
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} break;
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case 3: {
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break;
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}
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case 4:
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//
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// Fine Tune (i.e., Edit) the Mesh
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//
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case 4: // Fine Tune (i.e., Edit) the Mesh
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#if ENABLED(NEWPANEL)
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fine_tune_mesh(g29_x_pos, g29_y_pos, parser.seen('T'));
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#else
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SERIAL_PROTOCOLLNPGM("?P4 is only available when an LCD is present.");
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return;
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#endif
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break;
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case 5: find_mean_mesh_height(); break;
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LEAVE:
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#if ENABLED(NEWPANEL)
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lcd_reset_alert_level();
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LCD_MESSAGEPGM("");
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lcd_quick_feedback();
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has_control_of_lcd_panel = false;
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#endif
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return;
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}
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void unified_bed_leveling::find_mean_mesh_height() {
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uint16_t max_iterations = GRID_MAX_POINTS;
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do {
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#if ENABLED(NEWPANEL)
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if (ubl_lcd_clicked()) {
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SERIAL_PROTOCOLLNPGM("\nMesh only partially populated.\n");
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lcd_quick_feedback();
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safe_delay(50); // Debounce the Encoder wheel
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return;
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}
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#endif
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location = find_closest_mesh_point_of_type(INVALID, lx, ly, USE_PROBE_AS_REFERENCE, NULL, close_or_far);
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}
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}
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#if ENABLED(NEWPANEL)
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float unified_bed_leveling::measure_point_with_encoder() {
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while (ubl_lcd_clicked()) delay(50); // wait for user to release encoder wheel
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void unified_bed_leveling::manually_probe_remaining_mesh(const float &lx, const float &ly, const float &z_clearance, const float &thick, const bool do_ubl_mesh_map) {
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has_control_of_lcd_panel = true;
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save_ubl_active_state_and_disable(); // we don't do bed level correction because we want the raw data when we probe
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do_blocking_move_to_z(Z_CLEARANCE_BETWEEN_PROBES);
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do_blocking_move_to_xy(lx, ly);
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lcd_return_to_status();
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mesh_index_pair location;
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do {
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location = find_closest_mesh_point_of_type(INVALID, lx, ly, USE_NOZZLE_AS_REFERENCE, NULL, false);
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if (ELAPSED(millis(), nxt)) {
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SERIAL_PROTOCOLLNPGM("\nMesh only partially populated.");
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do_blocking_move_to_z(Z_CLEARANCE_DEPLOY_PROBE);
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#if ENABLED(NEWPANEL)
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lcd_quick_feedback();
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while (ubl_lcd_clicked()) idle();
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has_control_of_lcd_panel = false;
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#endif
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KEEPALIVE_STATE(IN_HANDLER);
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restore_ubl_active_state_and_leave();
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return;
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do_blocking_move_to_z(Z_CLEARANCE_DEPLOY_PROBE);
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do_blocking_move_to_xy(lx, ly);
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}
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#endif
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bool unified_bed_leveling::g29_parameter_parsing() {
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bool err_flag = false;
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#if ENABLED(NEWPANEL)
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LCD_MESSAGEPGM("Doing G29 UBL!"); // TODO: Make translatable string
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lcd_quick_feedback();
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#endif
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g29_constant = 0.0;
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g29_repetition_cnt = 0;
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ubl_state_recursion_chk++;
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if (ubl_state_recursion_chk != 1) {
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SERIAL_ECHOLNPGM("save_ubl_active_state_and_disabled() called multiple times in a row.");
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#if ENABLED(NEWPANEL)
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LCD_MESSAGEPGM("save_UBL_active() error"); // TODO: Make translatable string
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lcd_quick_feedback();
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#endif
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return;
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}
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ubl_state_at_invocation = state.active;
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void unified_bed_leveling::restore_ubl_active_state_and_leave() {
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if (--ubl_state_recursion_chk) {
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SERIAL_ECHOLNPGM("restore_ubl_active_state_and_leave() called too many times.");
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#if ENABLED(NEWPANEL)
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LCD_MESSAGEPGM("restore_UBL_active() error"); // TODO: Make translatable string
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lcd_quick_feedback();
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#endif
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return;
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}
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set_bed_leveling_enabled(ubl_state_at_invocation);
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return out_mesh;
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}
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#if ENABLED(NEWPANEL)
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void unified_bed_leveling::fine_tune_mesh(const float &lx, const float &ly, const bool do_ubl_mesh_map) {
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if (!parser.seen('R')) // fine_tune_mesh() is special. If no repetition count flag is specified
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g29_repetition_cnt = 1; // do exactly one mesh location. Otherwise use what the parser decided.
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LCD_MESSAGEPGM("Done Editing Mesh"); // TODO: Make translatable string
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SERIAL_ECHOLNPGM("Done Editing Mesh");
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}
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#endif
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/**
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* 'Smart Fill': Scan from the outward edges of the mesh towards the center.
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