My Marlin configs for Fabrikator Mini and CTC i3 Pro B
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ubl.h 13KB

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  1. /**
  2. * Marlin 3D Printer Firmware
  3. * Copyright (c) 2019 MarlinFirmware [https://github.com/MarlinFirmware/Marlin]
  4. *
  5. * Based on Sprinter and grbl.
  6. * Copyright (c) 2011 Camiel Gubbels / Erik van der Zalm
  7. *
  8. * This program is free software: you can redistribute it and/or modify
  9. * it under the terms of the GNU General Public License as published by
  10. * the Free Software Foundation, either version 3 of the License, or
  11. * (at your option) any later version.
  12. *
  13. * This program is distributed in the hope that it will be useful,
  14. * but WITHOUT ANY WARRANTY; without even the implied warranty of
  15. * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
  16. * GNU General Public License for more details.
  17. *
  18. * You should have received a copy of the GNU General Public License
  19. * along with this program. If not, see <http://www.gnu.org/licenses/>.
  20. *
  21. */
  22. #pragma once
  23. //#define UBL_DEVEL_DEBUGGING
  24. #include "../../../module/motion.h"
  25. #define DEBUG_OUT ENABLED(DEBUG_LEVELING_FEATURE)
  26. #include "../../../core/debug_out.h"
  27. #define UBL_VERSION "1.01"
  28. #define UBL_OK false
  29. #define UBL_ERR true
  30. #define USE_NOZZLE_AS_REFERENCE 0
  31. #define USE_PROBE_AS_REFERENCE 1
  32. // ubl_G29.cpp
  33. enum MeshPointType : char { INVALID, REAL, SET_IN_BITMAP };
  34. // External references
  35. #define MESH_X_DIST (float(MESH_MAX_X - (MESH_MIN_X)) / float(GRID_MAX_POINTS_X - 1))
  36. #define MESH_Y_DIST (float(MESH_MAX_Y - (MESH_MIN_Y)) / float(GRID_MAX_POINTS_Y - 1))
  37. class unified_bed_leveling {
  38. private:
  39. static int g29_verbose_level,
  40. g29_phase_value,
  41. g29_repetition_cnt,
  42. g29_storage_slot,
  43. g29_map_type;
  44. static bool g29_c_flag, g29_x_flag, g29_y_flag;
  45. static float g29_x_pos, g29_y_pos,
  46. g29_card_thickness,
  47. g29_constant;
  48. #if HAS_BED_PROBE
  49. static int g29_grid_size;
  50. #endif
  51. #if ENABLED(NEWPANEL)
  52. static void move_z_with_encoder(const float &multiplier);
  53. static float measure_point_with_encoder();
  54. static float measure_business_card_thickness(float in_height);
  55. static void manually_probe_remaining_mesh(const float&, const float&, const float&, const float&, const bool) _O0;
  56. static void fine_tune_mesh(const float &rx, const float &ry, const bool do_ubl_mesh_map) _O0;
  57. #endif
  58. static bool g29_parameter_parsing() _O0;
  59. static void shift_mesh_height();
  60. static void probe_entire_mesh(const float &rx, const float &ry, const bool do_ubl_mesh_map, const bool stow_probe, const bool do_furthest) _O0;
  61. static void tilt_mesh_based_on_3pts(const float &z1, const float &z2, const float &z3);
  62. static void tilt_mesh_based_on_probed_grid(const bool do_ubl_mesh_map);
  63. static bool smart_fill_one(const uint8_t x, const uint8_t y, const int8_t xdir, const int8_t ydir);
  64. static void smart_fill_mesh();
  65. #if ENABLED(UBL_DEVEL_DEBUGGING)
  66. static void g29_what_command();
  67. static void g29_eeprom_dump();
  68. static void g29_compare_current_mesh_to_stored_mesh();
  69. #endif
  70. public:
  71. static void echo_name();
  72. static void report_current_mesh();
  73. static void report_state();
  74. static void save_ubl_active_state_and_disable();
  75. static void restore_ubl_active_state_and_leave();
  76. static void display_map(const int) _O0;
  77. static mesh_index_pair find_closest_mesh_point_of_type(const MeshPointType, const float&, const float&, const bool, uint16_t[16]) _O0;
  78. static mesh_index_pair find_furthest_invalid_mesh_point() _O0;
  79. static void reset();
  80. static void invalidate();
  81. static void set_all_mesh_points_to_value(const float value);
  82. static void adjust_mesh_to_mean(const bool cflag, const float value);
  83. static bool sanity_check();
  84. static void G29() _O0; // O0 for no optimization
  85. static void smart_fill_wlsf(const float &) _O2; // O2 gives smaller code than Os on A2560
  86. static int8_t storage_slot;
  87. static bed_mesh_t z_values;
  88. static const float _mesh_index_to_xpos[GRID_MAX_POINTS_X],
  89. _mesh_index_to_ypos[GRID_MAX_POINTS_Y];
  90. #if HAS_LCD_MENU
  91. static bool lcd_map_control;
  92. #endif
  93. static volatile int encoder_diff; // Volatile because it's changed at interrupt time.
  94. unified_bed_leveling();
  95. FORCE_INLINE static void set_z(const int8_t px, const int8_t py, const float &z) { z_values[px][py] = z; }
  96. static int8_t get_cell_index_x(const float &x) {
  97. const int8_t cx = (x - (MESH_MIN_X)) * RECIPROCAL(MESH_X_DIST);
  98. return constrain(cx, 0, (GRID_MAX_POINTS_X) - 1); // -1 is appropriate if we want all movement to the X_MAX
  99. } // position. But with this defined this way, it is possible
  100. // to extrapolate off of this point even further out. Probably
  101. // that is OK because something else should be keeping that from
  102. // happening and should not be worried about at this level.
  103. static int8_t get_cell_index_y(const float &y) {
  104. const int8_t cy = (y - (MESH_MIN_Y)) * RECIPROCAL(MESH_Y_DIST);
  105. return constrain(cy, 0, (GRID_MAX_POINTS_Y) - 1); // -1 is appropriate if we want all movement to the Y_MAX
  106. } // position. But with this defined this way, it is possible
  107. // to extrapolate off of this point even further out. Probably
  108. // that is OK because something else should be keeping that from
  109. // happening and should not be worried about at this level.
  110. static int8_t find_closest_x_index(const float &x) {
  111. const int8_t px = (x - (MESH_MIN_X) + (MESH_X_DIST) * 0.5) * RECIPROCAL(MESH_X_DIST);
  112. return WITHIN(px, 0, GRID_MAX_POINTS_X - 1) ? px : -1;
  113. }
  114. static int8_t find_closest_y_index(const float &y) {
  115. const int8_t py = (y - (MESH_MIN_Y) + (MESH_Y_DIST) * 0.5) * RECIPROCAL(MESH_Y_DIST);
  116. return WITHIN(py, 0, GRID_MAX_POINTS_Y - 1) ? py : -1;
  117. }
  118. /**
  119. * z2 --|
  120. * z0 | |
  121. * | | + (z2-z1)
  122. * z1 | | |
  123. * ---+-------------+--------+-- --|
  124. * a1 a0 a2
  125. * |<---delta_a---------->|
  126. *
  127. * calc_z0 is the basis for all the Mesh Based correction. It is used to
  128. * find the expected Z Height at a position between two known Z-Height locations.
  129. *
  130. * It is fairly expensive with its 4 floating point additions and 2 floating point
  131. * multiplications.
  132. */
  133. FORCE_INLINE static float calc_z0(const float &a0, const float &a1, const float &z1, const float &a2, const float &z2) {
  134. return z1 + (z2 - z1) * (a0 - a1) / (a2 - a1);
  135. }
  136. /**
  137. * z_correction_for_x_on_horizontal_mesh_line is an optimization for
  138. * the case where the printer is making a vertical line that only crosses horizontal mesh lines.
  139. */
  140. static inline float z_correction_for_x_on_horizontal_mesh_line(const float &rx0, const int x1_i, const int yi) {
  141. if (!WITHIN(x1_i, 0, GRID_MAX_POINTS_X - 1) || !WITHIN(yi, 0, GRID_MAX_POINTS_Y - 1)) {
  142. if (DEBUGGING(LEVELING)) {
  143. if (WITHIN(x1_i, 0, GRID_MAX_POINTS_X - 1)) DEBUG_ECHOPGM("yi"); else DEBUG_ECHOPGM("x1_i");
  144. DEBUG_ECHOLNPAIR(" out of bounds in z_correction_for_x_on_horizontal_mesh_line(rx0=", rx0, ",x1_i=", x1_i, ",yi=", yi, ")");
  145. }
  146. // The requested location is off the mesh. Return UBL_Z_RAISE_WHEN_OFF_MESH or NAN.
  147. return (
  148. #ifdef UBL_Z_RAISE_WHEN_OFF_MESH
  149. UBL_Z_RAISE_WHEN_OFF_MESH
  150. #else
  151. NAN
  152. #endif
  153. );
  154. }
  155. const float xratio = (rx0 - mesh_index_to_xpos(x1_i)) * RECIPROCAL(MESH_X_DIST),
  156. z1 = z_values[x1_i][yi];
  157. return z1 + xratio * (z_values[_MIN(x1_i, GRID_MAX_POINTS_X - 2) + 1][yi] - z1); // Don't allow x1_i+1 to be past the end of the array
  158. // If it is, it is clamped to the last element of the
  159. // z_values[][] array and no correction is applied.
  160. }
  161. //
  162. // See comments above for z_correction_for_x_on_horizontal_mesh_line
  163. //
  164. static inline float z_correction_for_y_on_vertical_mesh_line(const float &ry0, const int xi, const int y1_i) {
  165. if (!WITHIN(xi, 0, GRID_MAX_POINTS_X - 1) || !WITHIN(y1_i, 0, GRID_MAX_POINTS_Y - 1)) {
  166. if (DEBUGGING(LEVELING)) {
  167. if (WITHIN(xi, 0, GRID_MAX_POINTS_X - 1)) DEBUG_ECHOPGM("y1_i"); else DEBUG_ECHOPGM("xi");
  168. DEBUG_ECHOLNPAIR(" out of bounds in z_correction_for_y_on_vertical_mesh_line(ry0=", ry0, ", xi=", xi, ", y1_i=", y1_i, ")");
  169. }
  170. // The requested location is off the mesh. Return UBL_Z_RAISE_WHEN_OFF_MESH or NAN.
  171. return (
  172. #ifdef UBL_Z_RAISE_WHEN_OFF_MESH
  173. UBL_Z_RAISE_WHEN_OFF_MESH
  174. #else
  175. NAN
  176. #endif
  177. );
  178. }
  179. const float yratio = (ry0 - mesh_index_to_ypos(y1_i)) * RECIPROCAL(MESH_Y_DIST),
  180. z1 = z_values[xi][y1_i];
  181. return z1 + yratio * (z_values[xi][_MIN(y1_i, GRID_MAX_POINTS_Y - 2) + 1] - z1); // Don't allow y1_i+1 to be past the end of the array
  182. // If it is, it is clamped to the last element of the
  183. // z_values[][] array and no correction is applied.
  184. }
  185. /**
  186. * This is the generic Z-Correction. It works anywhere within a Mesh Cell. It first
  187. * does a linear interpolation along both of the bounding X-Mesh-Lines to find the
  188. * Z-Height at both ends. Then it does a linear interpolation of these heights based
  189. * on the Y position within the cell.
  190. */
  191. static float get_z_correction(const float &rx0, const float &ry0) {
  192. const int8_t cx = get_cell_index_x(rx0),
  193. cy = get_cell_index_y(ry0); // return values are clamped
  194. /**
  195. * Check if the requested location is off the mesh. If so, and
  196. * UBL_Z_RAISE_WHEN_OFF_MESH is specified, that value is returned.
  197. */
  198. #ifdef UBL_Z_RAISE_WHEN_OFF_MESH
  199. if (!WITHIN(rx0, MESH_MIN_X, MESH_MAX_X) || !WITHIN(ry0, MESH_MIN_Y, MESH_MAX_Y))
  200. return UBL_Z_RAISE_WHEN_OFF_MESH;
  201. #endif
  202. const float z1 = calc_z0(rx0,
  203. mesh_index_to_xpos(cx), z_values[cx][cy],
  204. mesh_index_to_xpos(cx + 1), z_values[_MIN(cx, GRID_MAX_POINTS_X - 2) + 1][cy]);
  205. const float z2 = calc_z0(rx0,
  206. mesh_index_to_xpos(cx), z_values[cx][_MIN(cy, GRID_MAX_POINTS_Y - 2) + 1],
  207. mesh_index_to_xpos(cx + 1), z_values[_MIN(cx, GRID_MAX_POINTS_X - 2) + 1][_MIN(cy, GRID_MAX_POINTS_Y - 2) + 1]);
  208. float z0 = calc_z0(ry0,
  209. mesh_index_to_ypos(cy), z1,
  210. mesh_index_to_ypos(cy + 1), z2);
  211. if (DEBUGGING(MESH_ADJUST)) {
  212. DEBUG_ECHOPAIR(" raw get_z_correction(", rx0);
  213. DEBUG_CHAR(','); DEBUG_ECHO(ry0);
  214. DEBUG_ECHOPAIR_F(") = ", z0, 6);
  215. DEBUG_ECHOLNPAIR_F(" >>>---> ", z0, 6);
  216. }
  217. if (isnan(z0)) { // if part of the Mesh is undefined, it will show up as NAN
  218. z0 = 0.0; // in ubl.z_values[][] and propagate through the
  219. // calculations. If our correction is NAN, we throw it out
  220. // because part of the Mesh is undefined and we don't have the
  221. // information we need to complete the height correction.
  222. if (DEBUGGING(MESH_ADJUST)) {
  223. DEBUG_ECHOPAIR("??? Yikes! NAN in get_z_correction(", rx0);
  224. DEBUG_CHAR(',');
  225. DEBUG_ECHO(ry0);
  226. DEBUG_CHAR(')');
  227. DEBUG_EOL();
  228. }
  229. }
  230. return z0;
  231. }
  232. static inline float mesh_index_to_xpos(const uint8_t i) {
  233. return i < GRID_MAX_POINTS_X ? pgm_read_float(&_mesh_index_to_xpos[i]) : MESH_MIN_X + i * (MESH_X_DIST);
  234. }
  235. static inline float mesh_index_to_ypos(const uint8_t i) {
  236. return i < GRID_MAX_POINTS_Y ? pgm_read_float(&_mesh_index_to_ypos[i]) : MESH_MIN_Y + i * (MESH_Y_DIST);
  237. }
  238. #if UBL_SEGMENTED
  239. static bool prepare_segmented_line_to(const float (&rtarget)[XYZE], const float &feedrate);
  240. #else
  241. static void line_to_destination_cartesian(const float &fr, const uint8_t e);
  242. #endif
  243. static inline bool mesh_is_valid() {
  244. for (uint8_t x = 0; x < GRID_MAX_POINTS_X; x++)
  245. for (uint8_t y = 0; y < GRID_MAX_POINTS_Y; y++)
  246. if (isnan(z_values[x][y])) return false;
  247. return true;
  248. }
  249. }; // class unified_bed_leveling
  250. extern unified_bed_leveling ubl;
  251. #define _GET_MESH_X(I) ubl.mesh_index_to_xpos(I)
  252. #define _GET_MESH_Y(J) ubl.mesh_index_to_ypos(J)
  253. #define Z_VALUES_ARR ubl.z_values
  254. // Prevent debugging propagating to other files
  255. #include "../../../core/debug_out.h"