switch back to symmetric accel/decel
[clinton/Smoothieware.git] / src / modules / robot / Robot.cpp
CommitLineData
df27a6a3 1/*
aab6cbba 2 This file is part of Smoothie (http://smoothieware.org/). The motion control part is heavily based on Grbl (https://github.com/simen/grbl) with additions from Sungeun K. Jeon (https://github.com/chamnit/grbl)
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AW
3 Smoothie is free software: you can redistribute it and/or modify it under the terms of the GNU General Public License as published by the Free Software Foundation, either version 3 of the License, or (at your option) any later version.
4 Smoothie is distributed in the hope that it will be useful, but WITHOUT ANY WARRANTY; without even the implied warranty of MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the GNU General Public License for more details.
df27a6a3 5 You should have received a copy of the GNU General Public License along with Smoothie. If not, see <http://www.gnu.org/licenses/>.
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6*/
7
8#include "libs/Module.h"
9#include "libs/Kernel.h"
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10
11#include <math.h>
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12#include <string>
13using std::string;
5673fe39 14
4cff3ded 15#include "Planner.h"
3fceb8eb 16#include "Conveyor.h"
4cff3ded 17#include "Robot.h"
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MM
18#include "nuts_bolts.h"
19#include "Pin.h"
20#include "StepperMotor.h"
21#include "Gcode.h"
5647f709 22#include "PublicDataRequest.h"
66383b80 23#include "RobotPublicAccess.h"
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AW
24#include "arm_solutions/BaseSolution.h"
25#include "arm_solutions/CartesianSolution.h"
c41d6d95 26#include "arm_solutions/RotatableCartesianSolution.h"
2a06c415 27#include "arm_solutions/LinearDeltaSolution.h"
bdaaa75d 28#include "arm_solutions/HBotSolution.h"
1217e470 29#include "arm_solutions/MorganSCARASolution.h"
61134a65 30#include "StepTicker.h"
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JM
31#include "checksumm.h"
32#include "utils.h"
8d54c34c 33#include "ConfigValue.h"
5966b7d0 34#include "libs/StreamOutput.h"
dd0a7cfa 35#include "StreamOutputPool.h"
38bf9a1c 36
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MM
37#define default_seek_rate_checksum CHECKSUM("default_seek_rate")
38#define default_feed_rate_checksum CHECKSUM("default_feed_rate")
39#define mm_per_line_segment_checksum CHECKSUM("mm_per_line_segment")
40#define delta_segments_per_second_checksum CHECKSUM("delta_segments_per_second")
41#define mm_per_arc_segment_checksum CHECKSUM("mm_per_arc_segment")
42#define arc_correction_checksum CHECKSUM("arc_correction")
43#define x_axis_max_speed_checksum CHECKSUM("x_axis_max_speed")
44#define y_axis_max_speed_checksum CHECKSUM("y_axis_max_speed")
45#define z_axis_max_speed_checksum CHECKSUM("z_axis_max_speed")
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46
47// arm solutions
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48#define arm_solution_checksum CHECKSUM("arm_solution")
49#define cartesian_checksum CHECKSUM("cartesian")
50#define rotatable_cartesian_checksum CHECKSUM("rotatable_cartesian")
51#define rostock_checksum CHECKSUM("rostock")
2a06c415 52#define linear_delta_checksum CHECKSUM("linear_delta")
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MM
53#define delta_checksum CHECKSUM("delta")
54#define hbot_checksum CHECKSUM("hbot")
55#define corexy_checksum CHECKSUM("corexy")
56#define kossel_checksum CHECKSUM("kossel")
1217e470 57#define morgan_checksum CHECKSUM("morgan")
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MM
58
59// stepper motor stuff
60#define alpha_step_pin_checksum CHECKSUM("alpha_step_pin")
61#define beta_step_pin_checksum CHECKSUM("beta_step_pin")
62#define gamma_step_pin_checksum CHECKSUM("gamma_step_pin")
63#define alpha_dir_pin_checksum CHECKSUM("alpha_dir_pin")
64#define beta_dir_pin_checksum CHECKSUM("beta_dir_pin")
65#define gamma_dir_pin_checksum CHECKSUM("gamma_dir_pin")
66#define alpha_en_pin_checksum CHECKSUM("alpha_en_pin")
67#define beta_en_pin_checksum CHECKSUM("beta_en_pin")
68#define gamma_en_pin_checksum CHECKSUM("gamma_en_pin")
a84f0186 69
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70#define alpha_steps_per_mm_checksum CHECKSUM("alpha_steps_per_mm")
71#define beta_steps_per_mm_checksum CHECKSUM("beta_steps_per_mm")
72#define gamma_steps_per_mm_checksum CHECKSUM("gamma_steps_per_mm")
73
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MM
74#define alpha_max_rate_checksum CHECKSUM("alpha_max_rate")
75#define beta_max_rate_checksum CHECKSUM("beta_max_rate")
76#define gamma_max_rate_checksum CHECKSUM("gamma_max_rate")
77
78
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79// new-style actuator stuff
80#define actuator_checksum CHEKCSUM("actuator")
81
82#define step_pin_checksum CHECKSUM("step_pin")
83#define dir_pin_checksum CHEKCSUM("dir_pin")
84#define en_pin_checksum CHECKSUM("en_pin")
85
86#define steps_per_mm_checksum CHECKSUM("steps_per_mm")
df6a30f2 87#define max_rate_checksum CHECKSUM("max_rate")
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MM
88
89#define alpha_checksum CHECKSUM("alpha")
90#define beta_checksum CHECKSUM("beta")
91#define gamma_checksum CHECKSUM("gamma")
92
43424972 93
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JM
94#define NEXT_ACTION_DEFAULT 0
95#define NEXT_ACTION_DWELL 1
96#define NEXT_ACTION_GO_HOME 2
97
98#define MOTION_MODE_SEEK 0 // G0
99#define MOTION_MODE_LINEAR 1 // G1
100#define MOTION_MODE_CW_ARC 2 // G2
101#define MOTION_MODE_CCW_ARC 3 // G3
102#define MOTION_MODE_CANCEL 4 // G80
103
104#define PATH_CONTROL_MODE_EXACT_PATH 0
105#define PATH_CONTROL_MODE_EXACT_STOP 1
106#define PATH_CONTROL_MODE_CONTINOUS 2
107
108#define PROGRAM_FLOW_RUNNING 0
109#define PROGRAM_FLOW_PAUSED 1
110#define PROGRAM_FLOW_COMPLETED 2
111
112#define SPINDLE_DIRECTION_CW 0
113#define SPINDLE_DIRECTION_CCW 1
114
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115// The Robot converts GCodes into actual movements, and then adds them to the Planner, which passes them to the Conveyor so they can be added to the queue
116// It takes care of cutting arcs into segments, same thing for line that are too long
41fd89e0 117#define max(a,b) (((a) > (b)) ? (a) : (b))
edac9072 118
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119Robot::Robot()
120{
a1b7e9f0 121 this->inch_mode = false;
0e8b102e 122 this->absolute_mode = true;
df27a6a3 123 this->motion_mode = MOTION_MODE_SEEK;
4cff3ded 124 this->select_plane(X_AXIS, Y_AXIS, Z_AXIS);
df27a6a3 125 clear_vector(this->last_milestone);
3632a517 126 clear_vector(this->transformed_last_milestone);
0b804a41 127 this->arm_solution = NULL;
da947c62 128 seconds_per_minute = 60.0F;
fae93525 129 this->clearToolOffset();
3632a517 130 this->compensationTransform= nullptr;
728477c4 131 this->halted= false;
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132}
133
134//Called when the module has just been loaded
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135void Robot::on_module_loaded()
136{
4cff3ded 137 this->register_for_event(ON_GCODE_RECEIVED);
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138 this->register_for_event(ON_GET_PUBLIC_DATA);
139 this->register_for_event(ON_SET_PUBLIC_DATA);
728477c4 140 this->register_for_event(ON_HALT);
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141
142 // Configuration
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143 this->on_config_reload(this);
144}
145
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JM
146void Robot::on_config_reload(void *argument)
147{
5984acdf 148
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AW
149 // Arm solutions are used to convert positions in millimeters into position in steps for each stepper motor.
150 // While for a cartesian arm solution, this is a simple multiplication, in other, less simple cases, there is some serious math to be done.
151 // To make adding those solution easier, they have their own, separate object.
5984acdf 152 // Here we read the config to find out which arm solution to use
0b804a41 153 if (this->arm_solution) delete this->arm_solution;
314ab8f7 154 int solution_checksum = get_checksum(THEKERNEL->config->value(arm_solution_checksum)->by_default("cartesian")->as_string());
d149c730 155 // Note checksums are not const expressions when in debug mode, so don't use switch
98761c28 156 if(solution_checksum == hbot_checksum || solution_checksum == corexy_checksum) {
314ab8f7 157 this->arm_solution = new HBotSolution(THEKERNEL->config);
bdaaa75d 158
2a06c415
JM
159 } else if(solution_checksum == rostock_checksum || solution_checksum == kossel_checksum || solution_checksum == delta_checksum || solution_checksum == linear_delta_checksum) {
160 this->arm_solution = new LinearDeltaSolution(THEKERNEL->config);
73a4e3c0 161
4710532a 162 } else if(solution_checksum == rotatable_cartesian_checksum) {
314ab8f7 163 this->arm_solution = new RotatableCartesianSolution(THEKERNEL->config);
b73a756d 164
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QH
165 } else if(solution_checksum == morgan_checksum) {
166 this->arm_solution = new MorganSCARASolution(THEKERNEL->config);
167
4710532a 168 } else if(solution_checksum == cartesian_checksum) {
314ab8f7 169 this->arm_solution = new CartesianSolution(THEKERNEL->config);
73a4e3c0 170
4710532a 171 } else {
314ab8f7 172 this->arm_solution = new CartesianSolution(THEKERNEL->config);
d149c730 173 }
73a4e3c0 174
0b804a41 175
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MM
176 this->feed_rate = THEKERNEL->config->value(default_feed_rate_checksum )->by_default( 100.0F)->as_number();
177 this->seek_rate = THEKERNEL->config->value(default_seek_rate_checksum )->by_default( 100.0F)->as_number();
178 this->mm_per_line_segment = THEKERNEL->config->value(mm_per_line_segment_checksum )->by_default( 0.0F)->as_number();
1ad23cd3 179 this->delta_segments_per_second = THEKERNEL->config->value(delta_segments_per_second_checksum )->by_default(0.0f )->as_number();
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MM
180 this->mm_per_arc_segment = THEKERNEL->config->value(mm_per_arc_segment_checksum )->by_default( 0.5f)->as_number();
181 this->arc_correction = THEKERNEL->config->value(arc_correction_checksum )->by_default( 5 )->as_number();
78d0e16a 182
c9ed779d
MM
183 this->max_speeds[X_AXIS] = THEKERNEL->config->value(x_axis_max_speed_checksum )->by_default(60000.0F)->as_number() / 60.0F;
184 this->max_speeds[Y_AXIS] = THEKERNEL->config->value(y_axis_max_speed_checksum )->by_default(60000.0F)->as_number() / 60.0F;
185 this->max_speeds[Z_AXIS] = THEKERNEL->config->value(z_axis_max_speed_checksum )->by_default( 300.0F)->as_number() / 60.0F;
feb204be 186
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MM
187 Pin alpha_step_pin;
188 Pin alpha_dir_pin;
189 Pin alpha_en_pin;
190 Pin beta_step_pin;
191 Pin beta_dir_pin;
192 Pin beta_en_pin;
193 Pin gamma_step_pin;
194 Pin gamma_dir_pin;
195 Pin gamma_en_pin;
196
197 alpha_step_pin.from_string( THEKERNEL->config->value(alpha_step_pin_checksum )->by_default("2.0" )->as_string())->as_output();
198 alpha_dir_pin.from_string( THEKERNEL->config->value(alpha_dir_pin_checksum )->by_default("0.5" )->as_string())->as_output();
199 alpha_en_pin.from_string( THEKERNEL->config->value(alpha_en_pin_checksum )->by_default("0.4" )->as_string())->as_output();
200 beta_step_pin.from_string( THEKERNEL->config->value(beta_step_pin_checksum )->by_default("2.1" )->as_string())->as_output();
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MM
201 beta_dir_pin.from_string( THEKERNEL->config->value(beta_dir_pin_checksum )->by_default("0.11" )->as_string())->as_output();
202 beta_en_pin.from_string( THEKERNEL->config->value(beta_en_pin_checksum )->by_default("0.10" )->as_string())->as_output();
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MM
203 gamma_step_pin.from_string( THEKERNEL->config->value(gamma_step_pin_checksum )->by_default("2.2" )->as_string())->as_output();
204 gamma_dir_pin.from_string( THEKERNEL->config->value(gamma_dir_pin_checksum )->by_default("0.20" )->as_string())->as_output();
205 gamma_en_pin.from_string( THEKERNEL->config->value(gamma_en_pin_checksum )->by_default("0.19" )->as_string())->as_output();
78d0e16a 206
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MM
207 float steps_per_mm[3] = {
208 THEKERNEL->config->value(alpha_steps_per_mm_checksum)->by_default( 80.0F)->as_number(),
209 THEKERNEL->config->value(beta_steps_per_mm_checksum )->by_default( 80.0F)->as_number(),
210 THEKERNEL->config->value(gamma_steps_per_mm_checksum)->by_default(2560.0F)->as_number(),
211 };
212
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MM
213 // TODO: delete or detect old steppermotors
214 // Make our 3 StepperMotors
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MM
215 this->alpha_stepper_motor = THEKERNEL->step_ticker->add_stepper_motor( new StepperMotor(alpha_step_pin, alpha_dir_pin, alpha_en_pin) );
216 this->beta_stepper_motor = THEKERNEL->step_ticker->add_stepper_motor( new StepperMotor(beta_step_pin, beta_dir_pin, beta_en_pin ) );
217 this->gamma_stepper_motor = THEKERNEL->step_ticker->add_stepper_motor( new StepperMotor(gamma_step_pin, gamma_dir_pin, gamma_en_pin) );
78d0e16a 218
a84f0186
MM
219 alpha_stepper_motor->change_steps_per_mm(steps_per_mm[0]);
220 beta_stepper_motor->change_steps_per_mm(steps_per_mm[1]);
221 gamma_stepper_motor->change_steps_per_mm(steps_per_mm[2]);
222
df6a30f2
MM
223 alpha_stepper_motor->max_rate = THEKERNEL->config->value(alpha_max_rate_checksum)->by_default(30000.0F)->as_number() / 60.0F;
224 beta_stepper_motor->max_rate = THEKERNEL->config->value(beta_max_rate_checksum )->by_default(30000.0F)->as_number() / 60.0F;
225 gamma_stepper_motor->max_rate = THEKERNEL->config->value(gamma_max_rate_checksum)->by_default(30000.0F)->as_number() / 60.0F;
dd0a7cfa 226 check_max_actuator_speeds(); // check the configs are sane
df6a30f2 227
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MM
228 actuators.clear();
229 actuators.push_back(alpha_stepper_motor);
230 actuators.push_back(beta_stepper_motor);
231 actuators.push_back(gamma_stepper_motor);
975469ad 232
dd0a7cfa 233
975469ad
MM
234 // initialise actuator positions to current cartesian position (X0 Y0 Z0)
235 // so the first move can be correct if homing is not performed
236 float actuator_pos[3];
237 arm_solution->cartesian_to_actuator(last_milestone, actuator_pos);
238 for (int i = 0; i < 3; i++)
239 actuators[i]->change_last_milestone(actuator_pos[i]);
5966b7d0
AT
240
241 //this->clearToolOffset();
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AW
242}
243
dd0a7cfa
JM
244// this does a sanity check that actuator speeds do not exceed steps rate capability
245// we will override the actuator max_rate if the combination of max_rate and steps/sec exceeds base_stepping_frequency
246void Robot::check_max_actuator_speeds()
247{
248 float step_freq= alpha_stepper_motor->max_rate * alpha_stepper_motor->get_steps_per_mm();
249 if(step_freq > THEKERNEL->base_stepping_frequency) {
250 alpha_stepper_motor->max_rate= floorf(THEKERNEL->base_stepping_frequency / alpha_stepper_motor->get_steps_per_mm());
251 THEKERNEL->streams->printf("WARNING: alpha_max_rate exceeds base_stepping_frequency * alpha_steps_per_mm: %f, setting to %f\n", step_freq, alpha_stepper_motor->max_rate);
252 }
253
254 step_freq= beta_stepper_motor->max_rate * beta_stepper_motor->get_steps_per_mm();
255 if(step_freq > THEKERNEL->base_stepping_frequency) {
256 beta_stepper_motor->max_rate= floorf(THEKERNEL->base_stepping_frequency / beta_stepper_motor->get_steps_per_mm());
257 THEKERNEL->streams->printf("WARNING: beta_max_rate exceeds base_stepping_frequency * beta_steps_per_mm: %f, setting to %f\n", step_freq, beta_stepper_motor->max_rate);
258 }
259
260 step_freq= gamma_stepper_motor->max_rate * gamma_stepper_motor->get_steps_per_mm();
261 if(step_freq > THEKERNEL->base_stepping_frequency) {
262 gamma_stepper_motor->max_rate= floorf(THEKERNEL->base_stepping_frequency / gamma_stepper_motor->get_steps_per_mm());
263 THEKERNEL->streams->printf("WARNING: gamma_max_rate exceeds base_stepping_frequency * gamma_steps_per_mm: %f, setting to %f\n", step_freq, gamma_stepper_motor->max_rate);
264 }
265}
266
728477c4
JM
267void Robot::on_halt(void *arg)
268{
269 halted= (arg == nullptr);
270}
271
4710532a
JM
272void Robot::on_get_public_data(void *argument)
273{
274 PublicDataRequest *pdr = static_cast<PublicDataRequest *>(argument);
b55cfff1
JM
275
276 if(!pdr->starts_with(robot_checksum)) return;
277
278 if(pdr->second_element_is(speed_override_percent_checksum)) {
1ad23cd3 279 static float return_data;
da947c62 280 return_data = 100.0F * 60.0F / seconds_per_minute;
b55cfff1
JM
281 pdr->set_data_ptr(&return_data);
282 pdr->set_taken();
98761c28 283
4710532a 284 } else if(pdr->second_element_is(current_position_checksum)) {
1ad23cd3 285 static float return_data[3];
4710532a
JM
286 return_data[0] = from_millimeters(this->last_milestone[0]);
287 return_data[1] = from_millimeters(this->last_milestone[1]);
288 return_data[2] = from_millimeters(this->last_milestone[2]);
b55cfff1
JM
289
290 pdr->set_data_ptr(&return_data);
98761c28 291 pdr->set_taken();
b55cfff1 292 }
5647f709
JM
293}
294
4710532a
JM
295void Robot::on_set_public_data(void *argument)
296{
297 PublicDataRequest *pdr = static_cast<PublicDataRequest *>(argument);
5647f709 298
b55cfff1 299 if(!pdr->starts_with(robot_checksum)) return;
5647f709 300
b55cfff1 301 if(pdr->second_element_is(speed_override_percent_checksum)) {
7a522ccc 302 // NOTE do not use this while printing!
4710532a 303 float t = *static_cast<float *>(pdr->get_data_ptr());
98761c28 304 // enforce minimum 10% speed
4710532a 305 if (t < 10.0F) t = 10.0F;
98761c28 306
da947c62 307 this->seconds_per_minute = t / 0.6F; // t * 60 / 100
b55cfff1 308 pdr->set_taken();
4710532a
JM
309 } else if(pdr->second_element_is(current_position_checksum)) {
310 float *t = static_cast<float *>(pdr->get_data_ptr());
311 for (int i = 0; i < 3; i++) {
8adf2390
L
312 this->last_milestone[i] = this->to_millimeters(t[i]);
313 }
314
315 float actuator_pos[3];
316 arm_solution->cartesian_to_actuator(last_milestone, actuator_pos);
317 for (int i = 0; i < 3; i++)
318 actuators[i]->change_last_milestone(actuator_pos[i]);
319
320 pdr->set_taken();
321 }
5647f709
JM
322}
323
4cff3ded 324//A GCode has been received
edac9072 325//See if the current Gcode line has some orders for us
4710532a
JM
326void Robot::on_gcode_received(void *argument)
327{
328 Gcode *gcode = static_cast<Gcode *>(argument);
6bc4a00a 329
23c90ba6 330 this->motion_mode = -1;
4cff3ded 331
4710532a
JM
332 //G-letter Gcodes are mostly what the Robot module is interrested in, other modules also catch the gcode event and do stuff accordingly
333 if( gcode->has_g) {
334 switch( gcode->g ) {
74b6303c
DD
335 case 0: this->motion_mode = MOTION_MODE_SEEK; gcode->mark_as_taken(); break;
336 case 1: this->motion_mode = MOTION_MODE_LINEAR; gcode->mark_as_taken(); break;
337 case 2: this->motion_mode = MOTION_MODE_CW_ARC; gcode->mark_as_taken(); break;
338 case 3: this->motion_mode = MOTION_MODE_CCW_ARC; gcode->mark_as_taken(); break;
339 case 17: this->select_plane(X_AXIS, Y_AXIS, Z_AXIS); gcode->mark_as_taken(); break;
340 case 18: this->select_plane(X_AXIS, Z_AXIS, Y_AXIS); gcode->mark_as_taken(); break;
341 case 19: this->select_plane(Y_AXIS, Z_AXIS, X_AXIS); gcode->mark_as_taken(); break;
342 case 20: this->inch_mode = true; gcode->mark_as_taken(); break;
343 case 21: this->inch_mode = false; gcode->mark_as_taken(); break;
344 case 90: this->absolute_mode = true; gcode->mark_as_taken(); break;
345 case 91: this->absolute_mode = false; gcode->mark_as_taken(); break;
0b804a41 346 case 92: {
4710532a 347 if(gcode->get_num_args() == 0) {
cef9acea
JM
348 for (int i = X_AXIS; i <= Z_AXIS; ++i) {
349 reset_axis_position(0, i);
350 }
351
4710532a
JM
352 } else {
353 for (char letter = 'X'; letter <= 'Z'; letter++) {
cef9acea
JM
354 if ( gcode->has_letter(letter) ) {
355 reset_axis_position(this->to_millimeters(gcode->get_value(letter)), letter - 'X');
356 }
eaf8a8a8 357 }
6bc4a00a 358 }
78d0e16a 359
74b6303c 360 gcode->mark_as_taken();
78d0e16a 361 return;
4710532a
JM
362 }
363 }
364 } else if( gcode->has_m) {
365 switch( gcode->m ) {
0fb5b438 366 case 92: // M92 - set steps per mm
0fb5b438 367 if (gcode->has_letter('X'))
78d0e16a 368 actuators[0]->change_steps_per_mm(this->to_millimeters(gcode->get_value('X')));
0fb5b438 369 if (gcode->has_letter('Y'))
78d0e16a 370 actuators[1]->change_steps_per_mm(this->to_millimeters(gcode->get_value('Y')));
0fb5b438 371 if (gcode->has_letter('Z'))
78d0e16a 372 actuators[2]->change_steps_per_mm(this->to_millimeters(gcode->get_value('Z')));
7369629d
MM
373 if (gcode->has_letter('F'))
374 seconds_per_minute = gcode->get_value('F');
78d0e16a
MM
375
376 gcode->stream->printf("X:%g Y:%g Z:%g F:%g ", actuators[0]->steps_per_mm, actuators[1]->steps_per_mm, actuators[2]->steps_per_mm, seconds_per_minute);
0fb5b438 377 gcode->add_nl = true;
74b6303c 378 gcode->mark_as_taken();
dd0a7cfa 379 check_max_actuator_speeds();
0fb5b438 380 return;
4710532a 381 case 114: {
58c32991
JM
382 char buf[64];
383 int n = snprintf(buf, sizeof(buf), "C: X:%1.3f Y:%1.3f Z:%1.3f A:%1.3f B:%1.3f C:%1.3f ",
4710532a
JM
384 from_millimeters(this->last_milestone[0]),
385 from_millimeters(this->last_milestone[1]),
58c32991
JM
386 from_millimeters(this->last_milestone[2]),
387 actuators[X_AXIS]->get_current_position(),
388 actuators[Y_AXIS]->get_current_position(),
389 actuators[Z_AXIS]->get_current_position() );
4710532a
JM
390 gcode->txt_after_ok.append(buf, n);
391 gcode->mark_as_taken();
392 }
393 return;
33e4cc02 394
83488642
JM
395 case 203: // M203 Set maximum feedrates in mm/sec
396 if (gcode->has_letter('X'))
4710532a 397 this->max_speeds[X_AXIS] = gcode->get_value('X');
83488642 398 if (gcode->has_letter('Y'))
4710532a 399 this->max_speeds[Y_AXIS] = gcode->get_value('Y');
83488642 400 if (gcode->has_letter('Z'))
4710532a 401 this->max_speeds[Z_AXIS] = gcode->get_value('Z');
83488642 402 if (gcode->has_letter('A'))
4710532a 403 alpha_stepper_motor->max_rate = gcode->get_value('A');
83488642 404 if (gcode->has_letter('B'))
4710532a 405 beta_stepper_motor->max_rate = gcode->get_value('B');
83488642 406 if (gcode->has_letter('C'))
4710532a 407 gamma_stepper_motor->max_rate = gcode->get_value('C');
83488642 408
dd0a7cfa
JM
409 check_max_actuator_speeds();
410
83488642 411 gcode->stream->printf("X:%g Y:%g Z:%g A:%g B:%g C:%g ",
4710532a
JM
412 this->max_speeds[X_AXIS], this->max_speeds[Y_AXIS], this->max_speeds[Z_AXIS],
413 alpha_stepper_motor->max_rate, beta_stepper_motor->max_rate, gamma_stepper_motor->max_rate);
83488642
JM
414 gcode->add_nl = true;
415 gcode->mark_as_taken();
416 break;
417
c5fe1787 418 case 204: // M204 Snnn - set acceleration to nnn, Znnn sets z acceleration
d4ee6ee2 419 gcode->mark_as_taken();
83488642 420
4710532a 421 if (gcode->has_letter('S')) {
4710532a 422 float acc = gcode->get_value('S'); // mm/s^2
d4ee6ee2 423 // enforce minimum
da947c62
MM
424 if (acc < 1.0F)
425 acc = 1.0F;
4710532a 426 THEKERNEL->planner->acceleration = acc;
d4ee6ee2 427 }
c5fe1787 428 if (gcode->has_letter('Z')) {
c5fe1787
JM
429 float acc = gcode->get_value('Z'); // mm/s^2
430 // enforce positive
431 if (acc < 0.0F)
432 acc = 0.0F;
433 THEKERNEL->planner->z_acceleration = acc;
434 }
d4ee6ee2
JM
435 break;
436
107df03f 437 case 205: // M205 Xnnn - set junction deviation, Z - set Z junction deviation, Snnn - Set minimum planner speed
d4ee6ee2 438 gcode->mark_as_taken();
4710532a
JM
439 if (gcode->has_letter('X')) {
440 float jd = gcode->get_value('X');
d4ee6ee2 441 // enforce minimum
8b69c90d
JM
442 if (jd < 0.0F)
443 jd = 0.0F;
4710532a 444 THEKERNEL->planner->junction_deviation = jd;
d4ee6ee2 445 }
107df03f
JM
446 if (gcode->has_letter('Z')) {
447 float jd = gcode->get_value('Z');
448 // enforce minimum, -1 disables it and uses regular junction deviation
449 if (jd < -1.0F)
450 jd = -1.0F;
451 THEKERNEL->planner->z_junction_deviation = jd;
452 }
4710532a
JM
453 if (gcode->has_letter('S')) {
454 float mps = gcode->get_value('S');
8b69c90d
JM
455 // enforce minimum
456 if (mps < 0.0F)
457 mps = 0.0F;
4710532a 458 THEKERNEL->planner->minimum_planner_speed = mps;
8b69c90d 459 }
d4ee6ee2 460 break;
98761c28 461
7369629d 462 case 220: // M220 - speed override percentage
74b6303c 463 gcode->mark_as_taken();
4710532a 464 if (gcode->has_letter('S')) {
1ad23cd3 465 float factor = gcode->get_value('S');
98761c28 466 // enforce minimum 10% speed
da947c62
MM
467 if (factor < 10.0F)
468 factor = 10.0F;
469 // enforce maximum 10x speed
470 if (factor > 1000.0F)
471 factor = 1000.0F;
472
473 seconds_per_minute = 6000.0F / factor;
7369629d 474 }
b4f56013 475 break;
ec4773e5 476
494dc541
JM
477 case 400: // wait until all moves are done up to this point
478 gcode->mark_as_taken();
314ab8f7 479 THEKERNEL->conveyor->wait_for_empty_queue();
494dc541
JM
480 break;
481
33e4cc02 482 case 500: // M500 saves some volatile settings to config override file
b7cd847e 483 case 503: { // M503 just prints the settings
78d0e16a 484 gcode->stream->printf(";Steps per unit:\nM92 X%1.5f Y%1.5f Z%1.5f\n", actuators[0]->steps_per_mm, actuators[1]->steps_per_mm, actuators[2]->steps_per_mm);
c5fe1787 485 gcode->stream->printf(";Acceleration mm/sec^2:\nM204 S%1.5f Z%1.5f\n", THEKERNEL->planner->acceleration, THEKERNEL->planner->z_acceleration);
107df03f 486 gcode->stream->printf(";X- Junction Deviation, Z- Z junction deviation, S - Minimum Planner speed:\nM205 X%1.5f Z%1.5f S%1.5f\n", THEKERNEL->planner->junction_deviation, THEKERNEL->planner->z_junction_deviation, THEKERNEL->planner->minimum_planner_speed);
83488642 487 gcode->stream->printf(";Max feedrates in mm/sec, XYZ cartesian, ABC actuator:\nM203 X%1.5f Y%1.5f Z%1.5f A%1.5f B%1.5f C%1.5f\n",
4710532a
JM
488 this->max_speeds[X_AXIS], this->max_speeds[Y_AXIS], this->max_speeds[Z_AXIS],
489 alpha_stepper_motor->max_rate, beta_stepper_motor->max_rate, gamma_stepper_motor->max_rate);
b7cd847e
JM
490
491 // get or save any arm solution specific optional values
492 BaseSolution::arm_options_t options;
493 if(arm_solution->get_optional(options) && !options.empty()) {
494 gcode->stream->printf(";Optional arm solution specific settings:\nM665");
4710532a 495 for(auto &i : options) {
b7cd847e
JM
496 gcode->stream->printf(" %c%1.4f", i.first, i.second);
497 }
498 gcode->stream->printf("\n");
499 }
33e4cc02
JM
500 gcode->mark_as_taken();
501 break;
b7cd847e 502 }
33e4cc02 503
b7cd847e 504 case 665: { // M665 set optional arm solution variables based on arm solution.
ec4773e5 505 gcode->mark_as_taken();
b7cd847e
JM
506 // the parameter args could be any letter except S so ask solution what options it supports
507 BaseSolution::arm_options_t options;
508 if(arm_solution->get_optional(options)) {
4710532a 509 for(auto &i : options) {
b7cd847e 510 // foreach optional value
4710532a 511 char c = i.first;
b7cd847e 512 if(gcode->has_letter(c)) { // set new value
4710532a 513 i.second = gcode->get_value(c);
b7cd847e
JM
514 }
515 // print all current values of supported options
516 gcode->stream->printf("%c: %8.4f ", i.first, i.second);
5523c05d 517 gcode->add_nl = true;
ec4773e5 518 }
b7cd847e
JM
519 // set the new options
520 arm_solution->set_optional(options);
ec4773e5 521 }
ec4773e5 522
b7cd847e 523 // set delta segments per second, not saved by M500
ec29d378 524 if(gcode->has_letter('S')) {
4710532a 525 this->delta_segments_per_second = gcode->get_value('S');
ec29d378 526 }
ec4773e5 527 break;
b7cd847e 528 }
6989211c 529 }
494dc541
JM
530 }
531
c83887ea
MM
532 if( this->motion_mode < 0)
533 return;
6bc4a00a 534
4710532a 535 //Get parameters
1ad23cd3 536 float target[3], offset[3];
c2885de8 537 clear_vector(offset);
6bc4a00a 538
2ba859c9 539 memcpy(target, this->last_milestone, sizeof(target)); //default to last target
6bc4a00a 540
4710532a
JM
541 for(char letter = 'I'; letter <= 'K'; letter++) {
542 if( gcode->has_letter(letter) ) {
543 offset[letter - 'I'] = this->to_millimeters(gcode->get_value(letter));
c2885de8
JM
544 }
545 }
4710532a
JM
546 for(char letter = 'X'; letter <= 'Z'; letter++) {
547 if( gcode->has_letter(letter) ) {
c7689006 548 target[letter - 'X'] = this->to_millimeters(gcode->get_value(letter)) + (this->absolute_mode ? this->toolOffset[letter - 'X'] : target[letter - 'X']);
c2885de8
JM
549 }
550 }
6bc4a00a 551
4710532a 552 if( gcode->has_letter('F') ) {
7369629d 553 if( this->motion_mode == MOTION_MODE_SEEK )
da947c62 554 this->seek_rate = this->to_millimeters( gcode->get_value('F') );
7369629d 555 else
da947c62 556 this->feed_rate = this->to_millimeters( gcode->get_value('F') );
7369629d 557 }
6bc4a00a 558
4cff3ded 559 //Perform any physical actions
fae93525
JM
560 switch(this->motion_mode) {
561 case MOTION_MODE_CANCEL: break;
562 case MOTION_MODE_SEEK : this->append_line(gcode, target, this->seek_rate / seconds_per_minute ); break;
563 case MOTION_MODE_LINEAR: this->append_line(gcode, target, this->feed_rate / seconds_per_minute ); break;
564 case MOTION_MODE_CW_ARC:
565 case MOTION_MODE_CCW_ARC: this->compute_arc(gcode, offset, target ); break;
4cff3ded 566 }
13e4a3f9 567
fae93525 568 // last_milestone was set to target in append_milestone, no need to do it again
4cff3ded 569
edac9072
AW
570}
571
5984acdf 572// We received a new gcode, and one of the functions
edac9072
AW
573// determined the distance for that given gcode. So now we can attach this gcode to the right block
574// and continue
4710532a
JM
575void Robot::distance_in_gcode_is_known(Gcode *gcode)
576{
edac9072 577 //If the queue is empty, execute immediatly, otherwise attach to the last added block
e0ee24ed 578 THEKERNEL->conveyor->append_gcode(gcode);
edac9072
AW
579}
580
cef9acea
JM
581// reset the position for all axis (used in homing for delta as last_milestone may be bogus)
582void Robot::reset_axis_position(float x, float y, float z)
583{
584 this->last_milestone[X_AXIS] = x;
585 this->last_milestone[Y_AXIS] = y;
586 this->last_milestone[Z_AXIS] = z;
3632a517
JM
587 this->transformed_last_milestone[X_AXIS] = x;
588 this->transformed_last_milestone[Y_AXIS] = y;
589 this->transformed_last_milestone[Z_AXIS] = z;
cef9acea
JM
590
591 float actuator_pos[3];
592 arm_solution->cartesian_to_actuator(this->last_milestone, actuator_pos);
593 for (int i = 0; i < 3; i++)
594 actuators[i]->change_last_milestone(actuator_pos[i]);
595}
596
597// Reset the position for an axis (used in homing and G92)
4710532a
JM
598void Robot::reset_axis_position(float position, int axis)
599{
2ba859c9 600 this->last_milestone[axis] = position;
3632a517 601 this->transformed_last_milestone[axis] = position;
29c28822
MM
602
603 float actuator_pos[3];
cef9acea 604 arm_solution->cartesian_to_actuator(this->last_milestone, actuator_pos);
29c28822
MM
605
606 for (int i = 0; i < 3; i++)
607 actuators[i]->change_last_milestone(actuator_pos[i]);
4cff3ded
AW
608}
609
728477c4 610// Use FK to find out where actuator is and reset lastmilestone to match
728477c4
JM
611void Robot::reset_position_from_current_actuator_position()
612{
58c32991
JM
613 float actuator_pos[]= {actuators[X_AXIS]->get_current_position(), actuators[Y_AXIS]->get_current_position(), actuators[Z_AXIS]->get_current_position()};
614 arm_solution->actuator_to_cartesian(actuator_pos, this->last_milestone);
4befe777 615 memcpy(this->transformed_last_milestone, this->last_milestone, sizeof(this->transformed_last_milestone));
728477c4 616}
edac9072 617
4cff3ded 618// Convert target from millimeters to steps, and append this to the planner
da947c62 619void Robot::append_milestone( float target[], float rate_mm_s )
df6a30f2 620{
1ad23cd3 621 float deltas[3];
df6a30f2
MM
622 float unit_vec[3];
623 float actuator_pos[3];
3632a517 624 float transformed_target[3]; // adjust target for bed compensation
df6a30f2
MM
625 float millimeters_of_travel;
626
3632a517
JM
627 // unity transform by default
628 memcpy(transformed_target, target, sizeof(transformed_target));
5e45206a 629
3632a517
JM
630 // check function pointer and call if set to transform the target to compensate for bed
631 if(compensationTransform) {
632 // some compensation strategies can transform XYZ, some just change Z
633 compensationTransform(transformed_target);
33742399 634 }
ff7e9858 635
3632a517
JM
636 // find distance moved by each axis, use transformed target from last_transformed_target
637 for (int axis = X_AXIS; axis <= Z_AXIS; axis++){
638 deltas[axis] = transformed_target[axis] - transformed_last_milestone[axis];
639 }
640 // store last transformed
641 memcpy(this->transformed_last_milestone, transformed_target, sizeof(this->transformed_last_milestone));
aab6cbba 642
edac9072 643 // Compute how long this move moves, so we can attach it to the block for later use
869acfb8 644 millimeters_of_travel = sqrtf( powf( deltas[X_AXIS], 2 ) + powf( deltas[Y_AXIS], 2 ) + powf( deltas[Z_AXIS], 2 ) );
df6a30f2
MM
645
646 // find distance unit vector
647 for (int i = 0; i < 3; i++)
648 unit_vec[i] = deltas[i] / millimeters_of_travel;
649
650 // Do not move faster than the configured cartesian limits
4710532a
JM
651 for (int axis = X_AXIS; axis <= Z_AXIS; axis++) {
652 if ( max_speeds[axis] > 0 ) {
da947c62 653 float axis_speed = fabs(unit_vec[axis] * rate_mm_s);
df6a30f2
MM
654
655 if (axis_speed > max_speeds[axis])
da947c62 656 rate_mm_s *= ( max_speeds[axis] / axis_speed );
7b470506
AW
657 }
658 }
4cff3ded 659
5e45206a 660 // find actuator position given cartesian position, use actual adjusted target
3632a517 661 arm_solution->cartesian_to_actuator( transformed_target, actuator_pos );
df6a30f2
MM
662
663 // check per-actuator speed limits
4710532a 664 for (int actuator = 0; actuator <= 2; actuator++) {
da947c62 665 float actuator_rate = fabs(actuator_pos[actuator] - actuators[actuator]->last_milestone_mm) * rate_mm_s / millimeters_of_travel;
df6a30f2
MM
666
667 if (actuator_rate > actuators[actuator]->max_rate)
da947c62 668 rate_mm_s *= (actuators[actuator]->max_rate / actuator_rate);
df6a30f2
MM
669 }
670
edac9072 671 // Append the block to the planner
da947c62 672 THEKERNEL->planner->append_block( actuator_pos, rate_mm_s, millimeters_of_travel, unit_vec );
4cff3ded 673
5e45206a 674 // Update the last_milestone to the current target for the next time we use last_milestone, use the requested target not the adjusted one
c2885de8 675 memcpy(this->last_milestone, target, sizeof(this->last_milestone)); // this->last_milestone[] = target[];
4cff3ded
AW
676
677}
678
edac9072 679// Append a move to the queue ( cutting it into segments if needed )
4710532a
JM
680void Robot::append_line(Gcode *gcode, float target[], float rate_mm_s )
681{
4cff3ded 682
edac9072 683 // Find out the distance for this gcode
869acfb8 684 gcode->millimeters_of_travel = powf( target[X_AXIS] - this->last_milestone[X_AXIS], 2 ) + powf( target[Y_AXIS] - this->last_milestone[Y_AXIS], 2 ) + powf( target[Z_AXIS] - this->last_milestone[Z_AXIS], 2 );
4cff3ded 685
edac9072 686 // We ignore non-moves ( for example, extruder moves are not XYZ moves )
4710532a 687 if( gcode->millimeters_of_travel < 1e-8F ) {
95b4885b
JM
688 return;
689 }
436a2cd1 690
2ba859c9
MM
691 gcode->millimeters_of_travel = sqrtf(gcode->millimeters_of_travel);
692
edac9072 693 // Mark the gcode as having a known distance
5dcb2ff3 694 this->distance_in_gcode_is_known( gcode );
436a2cd1 695
4a0c8e14
JM
696 // We cut the line into smaller segments. This is not usefull in a cartesian robot, but necessary for robots with rotational axes.
697 // In cartesian robot, a high "mm_per_line_segment" setting will prevent waste.
698 // In delta robots either mm_per_line_segment can be used OR delta_segments_per_second The latter is more efficient and avoids splitting fast long lines into very small segments, like initial z move to 0, it is what Johanns Marlin delta port does
4a0c8e14 699 uint16_t segments;
5984acdf 700
c2885de8 701 if(this->delta_segments_per_second > 1.0F) {
4a0c8e14
JM
702 // enabled if set to something > 1, it is set to 0.0 by default
703 // segment based on current speed and requested segments per second
704 // the faster the travel speed the fewer segments needed
705 // NOTE rate is mm/sec and we take into account any speed override
da947c62 706 float seconds = gcode->millimeters_of_travel / rate_mm_s;
4710532a 707 segments = max(1, ceil(this->delta_segments_per_second * seconds));
4a0c8e14 708 // TODO if we are only moving in Z on a delta we don't really need to segment at all
5984acdf 709
4710532a
JM
710 } else {
711 if(this->mm_per_line_segment == 0.0F) {
712 segments = 1; // don't split it up
713 } else {
714 segments = ceil( gcode->millimeters_of_travel / this->mm_per_line_segment);
4a0c8e14
JM
715 }
716 }
5984acdf 717
4710532a 718 if (segments > 1) {
2ba859c9
MM
719 // A vector to keep track of the endpoint of each segment
720 float segment_delta[3];
721 float segment_end[3];
722
723 // How far do we move each segment?
9fff6045 724 for (int i = X_AXIS; i <= Z_AXIS; i++)
2ba859c9 725 segment_delta[i] = (target[i] - last_milestone[i]) / segments;
4cff3ded 726
c8e0fb15
MM
727 // segment 0 is already done - it's the end point of the previous move so we start at segment 1
728 // We always add another point after this loop so we stop at segments-1, ie i < segments
4710532a 729 for (int i = 1; i < segments; i++) {
728477c4 730 if(halted) return; // don;t queue any more segments
4710532a 731 for(int axis = X_AXIS; axis <= Z_AXIS; axis++ )
2ba859c9
MM
732 segment_end[axis] = last_milestone[axis] + segment_delta[axis];
733
734 // Append the end of this segment to the queue
735 this->append_milestone(segment_end, rate_mm_s);
736 }
4cff3ded 737 }
5984acdf
MM
738
739 // Append the end of this full move to the queue
da947c62 740 this->append_milestone(target, rate_mm_s);
2134bcf2
MM
741
742 // if adding these blocks didn't start executing, do that now
743 THEKERNEL->conveyor->ensure_running();
4cff3ded
AW
744}
745
4cff3ded 746
edac9072 747// Append an arc to the queue ( cutting it into segments as needed )
4710532a
JM
748void Robot::append_arc(Gcode *gcode, float target[], float offset[], float radius, bool is_clockwise )
749{
aab6cbba 750
edac9072 751 // Scary math
2ba859c9
MM
752 float center_axis0 = this->last_milestone[this->plane_axis_0] + offset[this->plane_axis_0];
753 float center_axis1 = this->last_milestone[this->plane_axis_1] + offset[this->plane_axis_1];
754 float linear_travel = target[this->plane_axis_2] - this->last_milestone[this->plane_axis_2];
1ad23cd3
MM
755 float r_axis0 = -offset[this->plane_axis_0]; // Radius vector from center to current location
756 float r_axis1 = -offset[this->plane_axis_1];
757 float rt_axis0 = target[this->plane_axis_0] - center_axis0;
758 float rt_axis1 = target[this->plane_axis_1] - center_axis1;
aab6cbba
AW
759
760 // CCW angle between position and target from circle center. Only one atan2() trig computation required.
4710532a
JM
761 float angular_travel = atan2(r_axis0 * rt_axis1 - r_axis1 * rt_axis0, r_axis0 * rt_axis0 + r_axis1 * rt_axis1);
762 if (angular_travel < 0) {
763 angular_travel += 2 * M_PI;
764 }
765 if (is_clockwise) {
766 angular_travel -= 2 * M_PI;
767 }
aab6cbba 768
edac9072 769 // Find the distance for this gcode
4710532a 770 gcode->millimeters_of_travel = hypotf(angular_travel * radius, fabs(linear_travel));
436a2cd1 771
edac9072 772 // We don't care about non-XYZ moves ( for example the extruder produces some of those )
4710532a
JM
773 if( gcode->millimeters_of_travel < 0.0001F ) {
774 return;
775 }
5dcb2ff3 776
edac9072 777 // Mark the gcode as having a known distance
d149c730 778 this->distance_in_gcode_is_known( gcode );
5984acdf
MM
779
780 // Figure out how many segments for this gcode
4710532a 781 uint16_t segments = floor(gcode->millimeters_of_travel / this->mm_per_arc_segment);
aab6cbba 782
4710532a
JM
783 float theta_per_segment = angular_travel / segments;
784 float linear_per_segment = linear_travel / segments;
aab6cbba
AW
785
786 /* Vector rotation by transformation matrix: r is the original vector, r_T is the rotated vector,
787 and phi is the angle of rotation. Based on the solution approach by Jens Geisler.
788 r_T = [cos(phi) -sin(phi);
789 sin(phi) cos(phi] * r ;
790 For arc generation, the center of the circle is the axis of rotation and the radius vector is
791 defined from the circle center to the initial position. Each line segment is formed by successive
792 vector rotations. This requires only two cos() and sin() computations to form the rotation
793 matrix for the duration of the entire arc. Error may accumulate from numerical round-off, since
1ad23cd3 794 all float numbers are single precision on the Arduino. (True float precision will not have
aab6cbba
AW
795 round off issues for CNC applications.) Single precision error can accumulate to be greater than
796 tool precision in some cases. Therefore, arc path correction is implemented.
797
798 Small angle approximation may be used to reduce computation overhead further. This approximation
799 holds for everything, but very small circles and large mm_per_arc_segment values. In other words,
800 theta_per_segment would need to be greater than 0.1 rad and N_ARC_CORRECTION would need to be large
801 to cause an appreciable drift error. N_ARC_CORRECTION~=25 is more than small enough to correct for
802 numerical drift error. N_ARC_CORRECTION may be on the order a hundred(s) before error becomes an
803 issue for CNC machines with the single precision Arduino calculations.
804 This approximation also allows mc_arc to immediately insert a line segment into the planner
805 without the initial overhead of computing cos() or sin(). By the time the arc needs to be applied
806 a correction, the planner should have caught up to the lag caused by the initial mc_arc overhead.
807 This is important when there are successive arc motions.
808 */
809 // Vector rotation matrix values
4710532a 810 float cos_T = 1 - 0.5F * theta_per_segment * theta_per_segment; // Small angle approximation
1ad23cd3 811 float sin_T = theta_per_segment;
aab6cbba 812
1ad23cd3
MM
813 float arc_target[3];
814 float sin_Ti;
815 float cos_Ti;
816 float r_axisi;
aab6cbba
AW
817 uint16_t i;
818 int8_t count = 0;
819
820 // Initialize the linear axis
2ba859c9 821 arc_target[this->plane_axis_2] = this->last_milestone[this->plane_axis_2];
aab6cbba 822
4710532a 823 for (i = 1; i < segments; i++) { // Increment (segments-1)
728477c4 824 if(halted) return; // don't queue any more segments
aab6cbba 825
b66fb830 826 if (count < this->arc_correction ) {
4710532a
JM
827 // Apply vector rotation matrix
828 r_axisi = r_axis0 * sin_T + r_axis1 * cos_T;
829 r_axis0 = r_axis0 * cos_T - r_axis1 * sin_T;
830 r_axis1 = r_axisi;
831 count++;
aab6cbba 832 } else {
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833 // Arc correction to radius vector. Computed only every N_ARC_CORRECTION increments.
834 // Compute exact location by applying transformation matrix from initial radius vector(=-offset).
835 cos_Ti = cosf(i * theta_per_segment);
836 sin_Ti = sinf(i * theta_per_segment);
837 r_axis0 = -offset[this->plane_axis_0] * cos_Ti + offset[this->plane_axis_1] * sin_Ti;
838 r_axis1 = -offset[this->plane_axis_0] * sin_Ti - offset[this->plane_axis_1] * cos_Ti;
839 count = 0;
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840 }
841
842 // Update arc_target location
843 arc_target[this->plane_axis_0] = center_axis0 + r_axis0;
844 arc_target[this->plane_axis_1] = center_axis1 + r_axis1;
845 arc_target[this->plane_axis_2] += linear_per_segment;
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846
847 // Append this segment to the queue
da947c62 848 this->append_milestone(arc_target, this->feed_rate / seconds_per_minute);
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849
850 }
edac9072 851
aab6cbba 852 // Ensure last segment arrives at target location.
da947c62 853 this->append_milestone(target, this->feed_rate / seconds_per_minute);
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854}
855
edac9072 856// Do the math for an arc and add it to the queue
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857void Robot::compute_arc(Gcode *gcode, float offset[], float target[])
858{
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859
860 // Find the radius
13addf09 861 float radius = hypotf(offset[this->plane_axis_0], offset[this->plane_axis_1]);
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862
863 // Set clockwise/counter-clockwise sign for mc_arc computations
864 bool is_clockwise = false;
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865 if( this->motion_mode == MOTION_MODE_CW_ARC ) {
866 is_clockwise = true;
867 }
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868
869 // Append arc
436a2cd1 870 this->append_arc(gcode, target, offset, radius, is_clockwise );
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871
872}
873
874
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875float Robot::theta(float x, float y)
876{
877 float t = atanf(x / fabs(y));
878 if (y > 0) {
879 return(t);
880 } else {
881 if (t > 0) {
882 return(M_PI - t);
883 } else {
884 return(-M_PI - t);
885 }
886 }
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887}
888
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889void Robot::select_plane(uint8_t axis_0, uint8_t axis_1, uint8_t axis_2)
890{
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891 this->plane_axis_0 = axis_0;
892 this->plane_axis_1 = axis_1;
893 this->plane_axis_2 = axis_2;
894}
895
fae93525 896void Robot::clearToolOffset()
4710532a 897{
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898 memset(this->toolOffset, 0, sizeof(this->toolOffset));
899}
900
901void Robot::setToolOffset(const float offset[3])
902{
fae93525 903 memcpy(this->toolOffset, offset, sizeof(this->toolOffset));
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904}
905