My Marlin configs for Fabrikator Mini and CTC i3 Pro B
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G33.cpp 25KB

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  1. /**
  2. * Marlin 3D Printer Firmware
  3. * Copyright (c) 2020 MarlinFirmware [https://github.com/MarlinFirmware/Marlin]
  4. *
  5. * Based on Sprinter and grbl.
  6. * Copyright (c) 2011 Camiel Gubbels / Erik van der Zalm
  7. *
  8. * This program is free software: you can redistribute it and/or modify
  9. * it under the terms of the GNU General Public License as published by
  10. * the Free Software Foundation, either version 3 of the License, or
  11. * (at your option) any later version.
  12. *
  13. * This program is distributed in the hope that it will be useful,
  14. * but WITHOUT ANY WARRANTY; without even the implied warranty of
  15. * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
  16. * GNU General Public License for more details.
  17. *
  18. * You should have received a copy of the GNU General Public License
  19. * along with this program. If not, see <https://www.gnu.org/licenses/>.
  20. *
  21. */
  22. #include "../../inc/MarlinConfig.h"
  23. #if ENABLED(DELTA_AUTO_CALIBRATION)
  24. #include "../gcode.h"
  25. #include "../../module/delta.h"
  26. #include "../../module/motion.h"
  27. #include "../../module/stepper.h"
  28. #include "../../module/endstops.h"
  29. #include "../../lcd/marlinui.h"
  30. #if HAS_BED_PROBE
  31. #include "../../module/probe.h"
  32. #endif
  33. #if HAS_MULTI_HOTEND
  34. #include "../../module/tool_change.h"
  35. #endif
  36. #if HAS_LEVELING
  37. #include "../../feature/bedlevel/bedlevel.h"
  38. #endif
  39. constexpr uint8_t _7P_STEP = 1, // 7-point step - to change number of calibration points
  40. _4P_STEP = _7P_STEP * 2, // 4-point step
  41. NPP = _7P_STEP * 6; // number of calibration points on the radius
  42. enum CalEnum : char { // the 7 main calibration points - add definitions if needed
  43. CEN = 0,
  44. __A = 1,
  45. _AB = __A + _7P_STEP,
  46. __B = _AB + _7P_STEP,
  47. _BC = __B + _7P_STEP,
  48. __C = _BC + _7P_STEP,
  49. _CA = __C + _7P_STEP,
  50. };
  51. #define LOOP_CAL_PT(VAR, S, N) for (uint8_t VAR=S; VAR<=NPP; VAR+=N)
  52. #define F_LOOP_CAL_PT(VAR, S, N) for (float VAR=S; VAR<NPP+0.9999; VAR+=N)
  53. #define I_LOOP_CAL_PT(VAR, S, N) for (float VAR=S; VAR>CEN+0.9999; VAR-=N)
  54. #define LOOP_CAL_ALL(VAR) LOOP_CAL_PT(VAR, CEN, 1)
  55. #define LOOP_CAL_RAD(VAR) LOOP_CAL_PT(VAR, __A, _7P_STEP)
  56. #define LOOP_CAL_ACT(VAR, _4P, _OP) LOOP_CAL_PT(VAR, _OP ? _AB : __A, _4P ? _4P_STEP : _7P_STEP)
  57. #if HAS_MULTI_HOTEND
  58. const uint8_t old_tool_index = active_extruder;
  59. #endif
  60. float lcd_probe_pt(const xy_pos_t &xy);
  61. void ac_home() {
  62. endstops.enable(true);
  63. TERN_(HAS_DELTA_SENSORLESS_PROBING, probe.set_homing_current(true));
  64. home_delta();
  65. TERN_(HAS_DELTA_SENSORLESS_PROBING, probe.set_homing_current(false));
  66. endstops.not_homing();
  67. }
  68. void ac_setup(const bool reset_bed) {
  69. TERN_(HAS_MULTI_HOTEND, tool_change(0, true));
  70. planner.synchronize();
  71. remember_feedrate_scaling_off();
  72. #if HAS_LEVELING
  73. if (reset_bed) reset_bed_level(); // After full calibration bed-level data is no longer valid
  74. #endif
  75. }
  76. void ac_cleanup(TERN_(HAS_MULTI_HOTEND, const uint8_t old_tool_index)) {
  77. TERN_(DELTA_HOME_TO_SAFE_ZONE, do_blocking_move_to_z(delta_clip_start_height));
  78. TERN_(HAS_BED_PROBE, probe.stow());
  79. restore_feedrate_and_scaling();
  80. TERN_(HAS_MULTI_HOTEND, tool_change(old_tool_index, true));
  81. }
  82. void print_signed_float(FSTR_P const prefix, const_float_t f) {
  83. SERIAL_ECHOPGM(" ");
  84. SERIAL_ECHOF(prefix, AS_CHAR(':'));
  85. serial_offset(f);
  86. }
  87. /**
  88. * - Print the delta settings
  89. */
  90. static void print_calibration_settings(const bool end_stops, const bool tower_angles) {
  91. SERIAL_ECHOPGM(".Height:", delta_height);
  92. if (end_stops) {
  93. print_signed_float(F("Ex"), delta_endstop_adj.a);
  94. print_signed_float(F("Ey"), delta_endstop_adj.b);
  95. print_signed_float(F("Ez"), delta_endstop_adj.c);
  96. }
  97. if (end_stops && tower_angles) {
  98. SERIAL_ECHOLNPGM(" Radius:", delta_radius);
  99. SERIAL_CHAR('.');
  100. SERIAL_ECHO_SP(13);
  101. }
  102. if (tower_angles) {
  103. print_signed_float(F("Tx"), delta_tower_angle_trim.a);
  104. print_signed_float(F("Ty"), delta_tower_angle_trim.b);
  105. print_signed_float(F("Tz"), delta_tower_angle_trim.c);
  106. }
  107. if (end_stops != tower_angles)
  108. SERIAL_ECHOPGM(" Radius:", delta_radius);
  109. SERIAL_EOL();
  110. }
  111. /**
  112. * - Print the probe results
  113. */
  114. static void print_calibration_results(const float z_pt[NPP + 1], const bool tower_points, const bool opposite_points) {
  115. SERIAL_ECHOPGM(". ");
  116. print_signed_float(F("c"), z_pt[CEN]);
  117. if (tower_points) {
  118. print_signed_float(F(" x"), z_pt[__A]);
  119. print_signed_float(F(" y"), z_pt[__B]);
  120. print_signed_float(F(" z"), z_pt[__C]);
  121. }
  122. if (tower_points && opposite_points) {
  123. SERIAL_EOL();
  124. SERIAL_CHAR('.');
  125. SERIAL_ECHO_SP(13);
  126. }
  127. if (opposite_points) {
  128. print_signed_float(F("yz"), z_pt[_BC]);
  129. print_signed_float(F("zx"), z_pt[_CA]);
  130. print_signed_float(F("xy"), z_pt[_AB]);
  131. }
  132. SERIAL_EOL();
  133. }
  134. /**
  135. * - Calculate the standard deviation from the zero plane
  136. */
  137. static float std_dev_points(float z_pt[NPP + 1], const bool _0p_cal, const bool _1p_cal, const bool _4p_cal, const bool _4p_opp) {
  138. if (!_0p_cal) {
  139. float S2 = sq(z_pt[CEN]);
  140. int16_t N = 1;
  141. if (!_1p_cal) { // std dev from zero plane
  142. LOOP_CAL_ACT(rad, _4p_cal, _4p_opp) {
  143. S2 += sq(z_pt[rad]);
  144. N++;
  145. }
  146. return LROUND(SQRT(S2 / N) * 1000.0f) / 1000.0f + 0.00001f;
  147. }
  148. }
  149. return 0.00001f;
  150. }
  151. /**
  152. * - Probe a point
  153. */
  154. static float calibration_probe(const xy_pos_t &xy, const bool stow, const bool probe_at_offset) {
  155. #if HAS_BED_PROBE
  156. return probe.probe_at_point(xy, stow ? PROBE_PT_STOW : PROBE_PT_RAISE, 0, probe_at_offset, false);
  157. #else
  158. UNUSED(stow);
  159. return lcd_probe_pt(xy);
  160. #endif
  161. }
  162. /**
  163. * - Probe a grid
  164. */
  165. static bool probe_calibration_points(float z_pt[NPP + 1], const int8_t probe_points, const float dcr, const bool towers_set, const bool stow_after_each, const bool probe_at_offset) {
  166. const bool _0p_calibration = probe_points == 0,
  167. _1p_calibration = probe_points == 1 || probe_points == -1,
  168. _4p_calibration = probe_points == 2,
  169. _4p_opposite_points = _4p_calibration && !towers_set,
  170. _7p_calibration = probe_points >= 3,
  171. _7p_no_intermediates = probe_points == 3,
  172. _7p_1_intermediates = probe_points == 4,
  173. _7p_2_intermediates = probe_points == 5,
  174. _7p_4_intermediates = probe_points == 6,
  175. _7p_6_intermediates = probe_points == 7,
  176. _7p_8_intermediates = probe_points == 8,
  177. _7p_11_intermediates = probe_points == 9,
  178. _7p_14_intermediates = probe_points == 10,
  179. _7p_intermed_points = probe_points >= 4,
  180. _7p_6_center = probe_points >= 5 && probe_points <= 7,
  181. _7p_9_center = probe_points >= 8;
  182. LOOP_CAL_ALL(rad) z_pt[rad] = 0.0f;
  183. if (!_0p_calibration) {
  184. if (!_7p_no_intermediates && !_7p_4_intermediates && !_7p_11_intermediates) { // probe the center
  185. const xy_pos_t center{0};
  186. z_pt[CEN] += calibration_probe(center, stow_after_each, probe_at_offset);
  187. if (isnan(z_pt[CEN])) return false;
  188. }
  189. if (_7p_calibration) { // probe extra center points
  190. const float start = _7p_9_center ? float(_CA) + _7P_STEP / 3.0f : _7p_6_center ? float(_CA) : float(__C),
  191. steps = _7p_9_center ? _4P_STEP / 3.0f : _7p_6_center ? _7P_STEP : _4P_STEP;
  192. I_LOOP_CAL_PT(rad, start, steps) {
  193. const float a = RADIANS(210 + (360 / NPP) * (rad - 1)),
  194. r = dcr * 0.1;
  195. const xy_pos_t vec = { cos(a), sin(a) };
  196. z_pt[CEN] += calibration_probe(vec * r, stow_after_each, probe_at_offset);
  197. if (isnan(z_pt[CEN])) return false;
  198. }
  199. z_pt[CEN] /= float(_7p_2_intermediates ? 7 : probe_points);
  200. }
  201. if (!_1p_calibration) { // probe the radius
  202. const CalEnum start = _4p_opposite_points ? _AB : __A;
  203. const float steps = _7p_14_intermediates ? _7P_STEP / 15.0f : // 15r * 6 + 10c = 100
  204. _7p_11_intermediates ? _7P_STEP / 12.0f : // 12r * 6 + 9c = 81
  205. _7p_8_intermediates ? _7P_STEP / 9.0f : // 9r * 6 + 10c = 64
  206. _7p_6_intermediates ? _7P_STEP / 7.0f : // 7r * 6 + 7c = 49
  207. _7p_4_intermediates ? _7P_STEP / 5.0f : // 5r * 6 + 6c = 36
  208. _7p_2_intermediates ? _7P_STEP / 3.0f : // 3r * 6 + 7c = 25
  209. _7p_1_intermediates ? _7P_STEP / 2.0f : // 2r * 6 + 4c = 16
  210. _7p_no_intermediates ? _7P_STEP : // 1r * 6 + 3c = 9
  211. _4P_STEP; // .5r * 6 + 1c = 4
  212. bool zig_zag = true;
  213. F_LOOP_CAL_PT(rad, start, _7p_9_center ? steps * 3 : steps) {
  214. const int8_t offset = _7p_9_center ? 2 : 0;
  215. for (int8_t circle = 0; circle <= offset; circle++) {
  216. const float a = RADIANS(210 + (360 / NPP) * (rad - 1)),
  217. r = dcr * (1 - 0.1 * (zig_zag ? offset - circle : circle)),
  218. interpol = FMOD(rad, 1);
  219. const xy_pos_t vec = { cos(a), sin(a) };
  220. const float z_temp = calibration_probe(vec * r, stow_after_each, probe_at_offset);
  221. if (isnan(z_temp)) return false;
  222. // split probe point to neighbouring calibration points
  223. z_pt[uint8_t(LROUND(rad - interpol + NPP - 1)) % NPP + 1] += z_temp * sq(cos(RADIANS(interpol * 90)));
  224. z_pt[uint8_t(LROUND(rad - interpol)) % NPP + 1] += z_temp * sq(sin(RADIANS(interpol * 90)));
  225. }
  226. zig_zag = !zig_zag;
  227. }
  228. if (_7p_intermed_points)
  229. LOOP_CAL_RAD(rad)
  230. z_pt[rad] /= _7P_STEP / steps;
  231. do_blocking_move_to_xy(0.0f, 0.0f);
  232. }
  233. }
  234. return true;
  235. }
  236. /**
  237. * kinematics routines and auto tune matrix scaling parameters:
  238. * see https://github.com/LVD-AC/Marlin-AC/tree/1.1.x-AC/documentation for
  239. * - formulae for approximative forward kinematics in the end-stop displacement matrix
  240. * - definition of the matrix scaling parameters
  241. */
  242. static void reverse_kinematics_probe_points(float z_pt[NPP + 1], abc_float_t mm_at_pt_axis[NPP + 1], const float dcr) {
  243. xyz_pos_t pos{0};
  244. LOOP_CAL_ALL(rad) {
  245. const float a = RADIANS(210 + (360 / NPP) * (rad - 1)),
  246. r = (rad == CEN ? 0.0f : dcr);
  247. pos.set(cos(a) * r, sin(a) * r, z_pt[rad]);
  248. inverse_kinematics(pos);
  249. mm_at_pt_axis[rad] = delta;
  250. }
  251. }
  252. static void forward_kinematics_probe_points(abc_float_t mm_at_pt_axis[NPP + 1], float z_pt[NPP + 1], const float dcr) {
  253. const float r_quot = dcr / delta_radius;
  254. #define ZPP(N,I,A) (((1.0f + r_quot * (N)) / 3.0f) * mm_at_pt_axis[I].A)
  255. #define Z00(I, A) ZPP( 0, I, A)
  256. #define Zp1(I, A) ZPP(+1, I, A)
  257. #define Zm1(I, A) ZPP(-1, I, A)
  258. #define Zp2(I, A) ZPP(+2, I, A)
  259. #define Zm2(I, A) ZPP(-2, I, A)
  260. z_pt[CEN] = Z00(CEN, a) + Z00(CEN, b) + Z00(CEN, c);
  261. z_pt[__A] = Zp2(__A, a) + Zm1(__A, b) + Zm1(__A, c);
  262. z_pt[__B] = Zm1(__B, a) + Zp2(__B, b) + Zm1(__B, c);
  263. z_pt[__C] = Zm1(__C, a) + Zm1(__C, b) + Zp2(__C, c);
  264. z_pt[_BC] = Zm2(_BC, a) + Zp1(_BC, b) + Zp1(_BC, c);
  265. z_pt[_CA] = Zp1(_CA, a) + Zm2(_CA, b) + Zp1(_CA, c);
  266. z_pt[_AB] = Zp1(_AB, a) + Zp1(_AB, b) + Zm2(_AB, c);
  267. }
  268. static void calc_kinematics_diff_probe_points(float z_pt[NPP + 1], const float dcr, abc_float_t delta_e, const float delta_r, abc_float_t delta_t) {
  269. const float z_center = z_pt[CEN];
  270. abc_float_t diff_mm_at_pt_axis[NPP + 1], new_mm_at_pt_axis[NPP + 1];
  271. reverse_kinematics_probe_points(z_pt, diff_mm_at_pt_axis, dcr);
  272. delta_radius += delta_r;
  273. delta_tower_angle_trim += delta_t;
  274. recalc_delta_settings();
  275. reverse_kinematics_probe_points(z_pt, new_mm_at_pt_axis, dcr);
  276. LOOP_CAL_ALL(rad) diff_mm_at_pt_axis[rad] -= new_mm_at_pt_axis[rad] + delta_e;
  277. forward_kinematics_probe_points(diff_mm_at_pt_axis, z_pt, dcr);
  278. LOOP_CAL_RAD(rad) z_pt[rad] -= z_pt[CEN] - z_center;
  279. z_pt[CEN] = z_center;
  280. delta_radius -= delta_r;
  281. delta_tower_angle_trim -= delta_t;
  282. recalc_delta_settings();
  283. }
  284. static float auto_tune_h(const float dcr) {
  285. const float r_quot = dcr / delta_radius;
  286. return RECIPROCAL(r_quot / (2.0f / 3.0f)); // (2/3)/CR
  287. }
  288. static float auto_tune_r(const float dcr) {
  289. constexpr float diff = 0.01f, delta_r = diff;
  290. float r_fac = 0.0f, z_pt[NPP + 1] = { 0.0f };
  291. abc_float_t delta_e = { 0.0f }, delta_t = { 0.0f };
  292. calc_kinematics_diff_probe_points(z_pt, dcr, delta_e, delta_r, delta_t);
  293. r_fac = -(z_pt[__A] + z_pt[__B] + z_pt[__C] + z_pt[_BC] + z_pt[_CA] + z_pt[_AB]) / 6.0f;
  294. r_fac = diff / r_fac / 3.0f; // 1/(3*delta_Z)
  295. return r_fac;
  296. }
  297. static float auto_tune_a(const float dcr) {
  298. constexpr float diff = 0.01f, delta_r = 0.0f;
  299. float a_fac = 0.0f, z_pt[NPP + 1] = { 0.0f };
  300. abc_float_t delta_e = { 0.0f }, delta_t = { 0.0f };
  301. delta_t.reset();
  302. LOOP_LINEAR_AXES(axis) {
  303. delta_t[axis] = diff;
  304. calc_kinematics_diff_probe_points(z_pt, dcr, delta_e, delta_r, delta_t);
  305. delta_t[axis] = 0;
  306. a_fac += z_pt[uint8_t((axis * _4P_STEP) - _7P_STEP + NPP) % NPP + 1] / 6.0f;
  307. a_fac -= z_pt[uint8_t((axis * _4P_STEP) + 1 + _7P_STEP)] / 6.0f;
  308. }
  309. a_fac = diff / a_fac / 3.0f; // 1/(3*delta_Z)
  310. return a_fac;
  311. }
  312. /**
  313. * G33 - Delta '1-4-7-point' Auto-Calibration
  314. * Calibrate height, z_offset, endstops, delta radius, and tower angles.
  315. *
  316. * Parameters:
  317. *
  318. * Pn Number of probe points:
  319. * P0 Normalizes calibration.
  320. * P1 Calibrates height only with center probe.
  321. * P2 Probe center and towers. Calibrate height, endstops and delta radius.
  322. * P3 Probe all positions: center, towers and opposite towers. Calibrate all.
  323. * P4-P10 Probe all positions at different intermediate locations and average them.
  324. *
  325. * Rn.nn Temporary reduce the probe grid by the specified amount (mm)
  326. *
  327. * T Don't calibrate tower angle corrections
  328. *
  329. * Cn.nn Calibration precision; when omitted calibrates to maximum precision
  330. *
  331. * Fn Force to run at least n iterations and take the best result
  332. *
  333. * Vn Verbose level:
  334. * V0 Dry-run mode. Report settings and probe results. No calibration.
  335. * V1 Report start and end settings only
  336. * V2 Report settings at each iteration
  337. * V3 Report settings and probe results
  338. *
  339. * E Engage the probe for each point
  340. *
  341. * O Probe at offsetted probe positions (this is wrong but it seems to work)
  342. *
  343. * With SENSORLESS_PROBING:
  344. * Use these flags to calibrate stall sensitivity: (e.g., `G33 P1 Y Z` to calibrate X only.)
  345. * X Don't activate stallguard on X.
  346. * Y Don't activate stallguard on Y.
  347. * Z Don't activate stallguard on Z.
  348. */
  349. void GcodeSuite::G33() {
  350. TERN_(FULL_REPORT_TO_HOST_FEATURE, set_and_report_grblstate(M_PROBE));
  351. const int8_t probe_points = parser.intval('P', DELTA_CALIBRATION_DEFAULT_POINTS);
  352. if (!WITHIN(probe_points, 0, 10)) {
  353. SERIAL_ECHOLNPGM("?(P)oints implausible (0-10).");
  354. return;
  355. }
  356. const bool probe_at_offset = TERN0(HAS_PROBE_XY_OFFSET, parser.seen_test('O')),
  357. towers_set = !parser.seen_test('T');
  358. // The calibration radius is set to a calculated value
  359. float dcr = probe_at_offset ? DELTA_PRINTABLE_RADIUS : DELTA_PRINTABLE_RADIUS - PROBING_MARGIN;
  360. #if HAS_PROBE_XY_OFFSET
  361. const float total_offset = HYPOT(probe.offset_xy.x, probe.offset_xy.y);
  362. dcr -= probe_at_offset ? _MAX(total_offset, PROBING_MARGIN) : total_offset;
  363. #endif
  364. NOMORE(dcr, DELTA_PRINTABLE_RADIUS);
  365. if (parser.seenval('R')) dcr -= _MAX(parser.value_float(),0);
  366. const float calibration_precision = parser.floatval('C', 0.0f);
  367. if (calibration_precision < 0) {
  368. SERIAL_ECHOLNPGM("?(C)alibration precision implausible (>=0).");
  369. return;
  370. }
  371. const int8_t force_iterations = parser.intval('F', 0);
  372. if (!WITHIN(force_iterations, 0, 30)) {
  373. SERIAL_ECHOLNPGM("?(F)orce iteration implausible (0-30).");
  374. return;
  375. }
  376. const int8_t verbose_level = parser.byteval('V', 1);
  377. if (!WITHIN(verbose_level, 0, 3)) {
  378. SERIAL_ECHOLNPGM("?(V)erbose level implausible (0-3).");
  379. return;
  380. }
  381. const bool stow_after_each = parser.seen_test('E');
  382. #if HAS_DELTA_SENSORLESS_PROBING
  383. probe.test_sensitivity.x = !parser.seen_test('X');
  384. TERN_(HAS_Y_AXIS, probe.test_sensitivity.y = !parser.seen_test('Y'));
  385. TERN_(HAS_Z_AXIS, probe.test_sensitivity.z = !parser.seen_test('Z'));
  386. #endif
  387. const bool _0p_calibration = probe_points == 0,
  388. _1p_calibration = probe_points == 1 || probe_points == -1,
  389. _4p_calibration = probe_points == 2,
  390. _4p_opposite_points = _4p_calibration && !towers_set,
  391. _7p_9_center = probe_points >= 8,
  392. _tower_results = (_4p_calibration && towers_set) || probe_points >= 3,
  393. _opposite_results = (_4p_calibration && !towers_set) || probe_points >= 3,
  394. _endstop_results = probe_points != 1 && probe_points != -1 && probe_points != 0,
  395. _angle_results = probe_points >= 3 && towers_set;
  396. int8_t iterations = 0;
  397. float test_precision,
  398. zero_std_dev = (verbose_level ? 999.0f : 0.0f), // 0.0 in dry-run mode : forced end
  399. zero_std_dev_min = zero_std_dev,
  400. zero_std_dev_old = zero_std_dev,
  401. h_factor, r_factor, a_factor,
  402. r_old = delta_radius,
  403. h_old = delta_height;
  404. abc_pos_t e_old = delta_endstop_adj, a_old = delta_tower_angle_trim;
  405. SERIAL_ECHOLNPGM("G33 Auto Calibrate");
  406. // Report settings
  407. PGM_P const checkingac = PSTR("Checking... AC");
  408. SERIAL_ECHOPGM_P(checkingac);
  409. SERIAL_ECHOPGM(" at radius:", dcr);
  410. if (verbose_level == 0) SERIAL_ECHOPGM(" (DRY-RUN)");
  411. SERIAL_EOL();
  412. ui.set_status(checkingac);
  413. print_calibration_settings(_endstop_results, _angle_results);
  414. ac_setup(!_0p_calibration && !_1p_calibration);
  415. if (!_0p_calibration) ac_home();
  416. do { // start iterations
  417. float z_at_pt[NPP + 1] = { 0.0f };
  418. test_precision = zero_std_dev_old != 999.0f ? (zero_std_dev + zero_std_dev_old) / 2.0f : zero_std_dev;
  419. iterations++;
  420. // Probe the points
  421. zero_std_dev_old = zero_std_dev;
  422. if (!probe_calibration_points(z_at_pt, probe_points, dcr, towers_set, stow_after_each, probe_at_offset)) {
  423. SERIAL_ECHOLNPGM("Correct delta settings with M665 and M666");
  424. return ac_cleanup(TERN_(HAS_MULTI_HOTEND, old_tool_index));
  425. }
  426. zero_std_dev = std_dev_points(z_at_pt, _0p_calibration, _1p_calibration, _4p_calibration, _4p_opposite_points);
  427. // Solve matrices
  428. if ((zero_std_dev < test_precision || iterations <= force_iterations) && zero_std_dev > calibration_precision) {
  429. #if !HAS_BED_PROBE
  430. test_precision = 0.0f; // forced end
  431. #endif
  432. if (zero_std_dev < zero_std_dev_min) {
  433. // set roll-back point
  434. e_old = delta_endstop_adj;
  435. r_old = delta_radius;
  436. h_old = delta_height;
  437. a_old = delta_tower_angle_trim;
  438. }
  439. abc_float_t e_delta = { 0.0f }, t_delta = { 0.0f };
  440. float r_delta = 0.0f;
  441. /**
  442. * convergence matrices:
  443. * see https://github.com/LVD-AC/Marlin-AC/tree/1.1.x-AC/documentation for
  444. * - definition of the matrix scaling parameters
  445. * - matrices for 4 and 7 point calibration
  446. */
  447. #define ZP(N,I) ((N) * z_at_pt[I] / 4.0f) // 4.0 = divider to normalize to integers
  448. #define Z12(I) ZP(12, I)
  449. #define Z4(I) ZP(4, I)
  450. #define Z2(I) ZP(2, I)
  451. #define Z1(I) ZP(1, I)
  452. #define Z0(I) ZP(0, I)
  453. // calculate factors
  454. if (_7p_9_center) dcr *= 0.9f;
  455. h_factor = auto_tune_h(dcr);
  456. r_factor = auto_tune_r(dcr);
  457. a_factor = auto_tune_a(dcr);
  458. if (_7p_9_center) dcr /= 0.9f;
  459. switch (probe_points) {
  460. case 0:
  461. test_precision = 0.0f; // forced end
  462. break;
  463. case 1:
  464. test_precision = 0.0f; // forced end
  465. LOOP_LINEAR_AXES(axis) e_delta[axis] = +Z4(CEN);
  466. break;
  467. case 2:
  468. if (towers_set) { // see 4 point calibration (towers) matrix
  469. e_delta.set((+Z4(__A) -Z2(__B) -Z2(__C)) * h_factor +Z4(CEN),
  470. (-Z2(__A) +Z4(__B) -Z2(__C)) * h_factor +Z4(CEN),
  471. (-Z2(__A) -Z2(__B) +Z4(__C)) * h_factor +Z4(CEN));
  472. r_delta = (+Z4(__A) +Z4(__B) +Z4(__C) -Z12(CEN)) * r_factor;
  473. }
  474. else { // see 4 point calibration (opposites) matrix
  475. e_delta.set((-Z4(_BC) +Z2(_CA) +Z2(_AB)) * h_factor +Z4(CEN),
  476. (+Z2(_BC) -Z4(_CA) +Z2(_AB)) * h_factor +Z4(CEN),
  477. (+Z2(_BC) +Z2(_CA) -Z4(_AB)) * h_factor +Z4(CEN));
  478. r_delta = (+Z4(_BC) +Z4(_CA) +Z4(_AB) -Z12(CEN)) * r_factor;
  479. }
  480. break;
  481. default: // see 7 point calibration (towers & opposites) matrix
  482. e_delta.set((+Z2(__A) -Z1(__B) -Z1(__C) -Z2(_BC) +Z1(_CA) +Z1(_AB)) * h_factor +Z4(CEN),
  483. (-Z1(__A) +Z2(__B) -Z1(__C) +Z1(_BC) -Z2(_CA) +Z1(_AB)) * h_factor +Z4(CEN),
  484. (-Z1(__A) -Z1(__B) +Z2(__C) +Z1(_BC) +Z1(_CA) -Z2(_AB)) * h_factor +Z4(CEN));
  485. r_delta = (+Z2(__A) +Z2(__B) +Z2(__C) +Z2(_BC) +Z2(_CA) +Z2(_AB) -Z12(CEN)) * r_factor;
  486. if (towers_set) { // see 7 point tower angle calibration (towers & opposites) matrix
  487. t_delta.set((+Z0(__A) -Z4(__B) +Z4(__C) +Z0(_BC) -Z4(_CA) +Z4(_AB) +Z0(CEN)) * a_factor,
  488. (+Z4(__A) +Z0(__B) -Z4(__C) +Z4(_BC) +Z0(_CA) -Z4(_AB) +Z0(CEN)) * a_factor,
  489. (-Z4(__A) +Z4(__B) +Z0(__C) -Z4(_BC) +Z4(_CA) +Z0(_AB) +Z0(CEN)) * a_factor);
  490. }
  491. break;
  492. }
  493. delta_endstop_adj += e_delta;
  494. delta_radius += r_delta;
  495. delta_tower_angle_trim += t_delta;
  496. }
  497. else if (zero_std_dev >= test_precision) {
  498. // roll back
  499. delta_endstop_adj = e_old;
  500. delta_radius = r_old;
  501. delta_height = h_old;
  502. delta_tower_angle_trim = a_old;
  503. }
  504. if (verbose_level != 0) { // !dry run
  505. // Normalize angles to least-squares
  506. if (_angle_results) {
  507. float a_sum = 0.0f;
  508. LOOP_LINEAR_AXES(axis) a_sum += delta_tower_angle_trim[axis];
  509. LOOP_LINEAR_AXES(axis) delta_tower_angle_trim[axis] -= a_sum / 3.0f;
  510. }
  511. // adjust delta_height and endstops by the max amount
  512. const float z_temp = _MAX(delta_endstop_adj.a, delta_endstop_adj.b, delta_endstop_adj.c);
  513. delta_height -= z_temp;
  514. LOOP_LINEAR_AXES(axis) delta_endstop_adj[axis] -= z_temp;
  515. }
  516. recalc_delta_settings();
  517. NOMORE(zero_std_dev_min, zero_std_dev);
  518. // print report
  519. if (verbose_level == 3 || verbose_level == 0)
  520. print_calibration_results(z_at_pt, _tower_results, _opposite_results);
  521. if (verbose_level != 0) { // !dry run
  522. if ((zero_std_dev >= test_precision && iterations > force_iterations) || zero_std_dev <= calibration_precision) { // end iterations
  523. SERIAL_ECHOPGM("Calibration OK");
  524. SERIAL_ECHO_SP(32);
  525. #if HAS_BED_PROBE
  526. if (zero_std_dev >= test_precision && !_1p_calibration && !_0p_calibration)
  527. SERIAL_ECHOPGM("rolling back.");
  528. else
  529. #endif
  530. {
  531. SERIAL_ECHOPAIR_F("std dev:", zero_std_dev_min, 3);
  532. }
  533. SERIAL_EOL();
  534. char mess[21];
  535. strcpy_P(mess, PSTR("Calibration sd:"));
  536. if (zero_std_dev_min < 1)
  537. sprintf_P(&mess[15], PSTR("0.%03i"), (int)LROUND(zero_std_dev_min * 1000.0f));
  538. else
  539. sprintf_P(&mess[15], PSTR("%03i.x"), (int)LROUND(zero_std_dev_min));
  540. ui.set_status(mess);
  541. print_calibration_settings(_endstop_results, _angle_results);
  542. SERIAL_ECHOLNPGM("Save with M500 and/or copy to Configuration.h");
  543. }
  544. else { // !end iterations
  545. char mess[15];
  546. if (iterations < 31)
  547. sprintf_P(mess, PSTR("Iteration : %02i"), (unsigned int)iterations);
  548. else
  549. strcpy_P(mess, PSTR("No convergence"));
  550. SERIAL_ECHO(mess);
  551. SERIAL_ECHO_SP(32);
  552. SERIAL_ECHOLNPAIR_F("std dev:", zero_std_dev, 3);
  553. ui.set_status(mess);
  554. if (verbose_level > 1)
  555. print_calibration_settings(_endstop_results, _angle_results);
  556. }
  557. }
  558. else { // dry run
  559. FSTR_P const enddryrun = F("End DRY-RUN");
  560. SERIAL_ECHOF(enddryrun);
  561. SERIAL_ECHO_SP(35);
  562. SERIAL_ECHOLNPAIR_F("std dev:", zero_std_dev, 3);
  563. char mess[21];
  564. strcpy_P(mess, FTOP(enddryrun));
  565. strcpy_P(&mess[11], PSTR(" sd:"));
  566. if (zero_std_dev < 1)
  567. sprintf_P(&mess[15], PSTR("0.%03i"), (int)LROUND(zero_std_dev * 1000.0f));
  568. else
  569. sprintf_P(&mess[15], PSTR("%03i.x"), (int)LROUND(zero_std_dev));
  570. ui.set_status(mess);
  571. }
  572. ac_home();
  573. }
  574. while (((zero_std_dev < test_precision && iterations < 31) || iterations <= force_iterations) && zero_std_dev > calibration_precision);
  575. ac_cleanup(TERN_(HAS_MULTI_HOTEND, old_tool_index));
  576. TERN_(FULL_REPORT_TO_HOST_FEATURE, set_and_report_grblstate(M_IDLE));
  577. }
  578. #endif // DELTA_AUTO_CALIBRATION