Mercurial > public > ostc4
annotate Discovery/Src/data_central.c @ 834:2a8af51ab04d Evo_2_23
Added event based display changes for big font view:
It is now possible to activate "Autofocus" option in custom view dialog. This enables automatic switching of the current view depending on current dive situation. Because T7 view already displays a lot of information this feature targets the T3 view.
author | Ideenmodellierer |
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date | Sun, 17 Dec 2023 21:14:17 +0100 |
parents | dd7ce655db26 |
children | aed39d19269c |
rev | line source |
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38 | 1 /** |
2 ****************************************************************************** | |
3 * @copyright heinrichs weikamp | |
4 * @file data_central.c | |
5 * @author heinrichs weikamp gmbh | |
6 * @date 10-November-2014 | |
7 * @version V1.0.2 | |
8 * @since 10-Nov-2014 | |
9 * @brief All the data EXCEPT | |
10 * - settings (settings.c) | |
11 * feste Werte, die nur an der Oberfl�che ge�ndert werden | |
12 * - dataIn and dataOut (data_exchange.h and data_exchange_main.c) | |
13 * Austausch mit Small CPU | |
14 * @bug | |
15 * @warning | |
16 @verbatim | |
17 ============================================================================== | |
18 ##### SDiveState Real and Sim ##### | |
19 ============================================================================== | |
20 [..] SDiveSettings | |
21 copy of parts of Settings that are necessary during the dive | |
22 and could be modified during the dive without post dive changes. | |
23 | |
24 [..] SLifeData | |
25 written in DataEX_copy_to_LifeData(); | |
26 block 1 "lifedata" set by SmallCPU in stateReal | |
27 block 2 "actualGas" set by main CPU from user input and send to Small CPU | |
28 block 3 "calculated data" set by main CPU based on "lifedata" | |
29 | |
30 [..] SVpm | |
31 | |
32 [..] SEvents | |
33 | |
34 [..] SDecoinfo | |
35 | |
36 [..] mode | |
37 set by SmallCPU in stateReal, can be surface, dive, ... | |
38 | |
39 [..] data_old__lost_connection_to_slave | |
40 set by DataEX_copy_to_LifeData(); | |
41 | |
42 ============================================================================== | |
43 ##### SDiveState Deco ##### | |
44 ============================================================================== | |
45 [..] kjbkldafj�lasdfjasdf | |
46 | |
47 ============================================================================== | |
48 ##### decoLock ##### | |
49 ============================================================================== | |
50 [..] The handler that synchronizes the data between IRQ copy and main deco loop | |
51 | |
52 | |
53 @endverbatim | |
54 ****************************************************************************** | |
55 * @attention | |
56 * | |
57 * <h2><center>© COPYRIGHT(c) 2015 heinrichs weikamp</center></h2> | |
58 * | |
59 ****************************************************************************** | |
60 */ | |
61 | |
62 /* Includes ------------------------------------------------------------------*/ | |
63 #include <string.h> | |
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64 #include <math.h> |
38 | 65 #include "data_central.h" |
66 #include "calc_crush.h" | |
67 #include "decom.h" | |
68 #include "stm32f4xx_hal.h" | |
69 #include "settings.h" | |
70 #include "data_exchange_main.h" | |
71 #include "ostc.h" // for button adjust on hw testboard 1 | |
72 #include "tCCR.h" | |
73 #include "crcmodel.h" | |
662 | 74 #include "configuration.h" |
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75 #include "tHome.h" |
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76 #include "t3.h" |
38 | 77 |
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78 static SDiveState stateReal = { 0 }; |
38 | 79 SDiveState stateSim = { 0 }; |
80 SDiveState stateDeco = { 0 }; | |
81 | |
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82 static SDevice stateDevice = |
38 | 83 { |
84 /* max is 0x7FFFFFFF, min is 0x80000000 but also defined in stdint.h :-) */ | |
85 | |
86 /* count, use 0 */ | |
87 .batteryChargeCompleteCycles.value_int32 = 0, | |
88 .batteryChargeCycles.value_int32 = 0, | |
89 .diveCycles.value_int32 = 0, | |
90 .hoursOfOperation.value_int32 = 0, | |
91 | |
92 /* max values, use min. */ | |
93 .temperatureMaximum.value_int32 = INT32_MIN, | |
94 .depthMaximum.value_int32 = INT32_MIN, | |
95 | |
96 /* min values, use max. */ | |
97 .temperatureMinimum.value_int32 = INT32_MAX, | |
98 .voltageMinimum.value_int32 = INT32_MAX, | |
99 }; | |
100 | |
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101 static SVpmRepetitiveData stateVPM = |
38 | 102 { |
103 .repetitive_variables_not_valid = 1, | |
104 .is_data_from_RTE_CPU = 0, | |
105 }; | |
106 | |
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107 const SDiveState *stateUsed = &stateReal; |
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108 SDiveState *stateUsedWrite = &stateReal; |
38 | 109 |
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110 |
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111 #define COMPASS_FRACTION (4.0f) /* delay till value changes to new actual */ |
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112 |
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113 static float compass_compensated = 0; |
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114 |
38 | 115 void set_stateUsedToReal(void) |
116 { | |
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117 stateUsed = stateUsedWrite = &stateReal; |
38 | 118 } |
119 | |
120 void set_stateUsedToSim(void) | |
121 { | |
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122 stateUsed = stateUsedWrite = &stateSim; |
38 | 123 } |
124 | |
125 _Bool is_stateUsedSetToSim(void) | |
126 { | |
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127 return stateUsed == &stateSim; |
38 | 128 } |
129 | |
130 const SDiveState * stateRealGetPointer(void) | |
131 { | |
132 return &stateReal; | |
133 } | |
134 | |
135 SDiveState * stateRealGetPointerWrite(void) | |
136 { | |
137 return &stateReal; | |
138 } | |
139 | |
140 | |
141 const SDiveState * stateSimGetPointer(void) | |
142 { | |
143 return &stateSim; | |
144 } | |
145 | |
146 | |
147 SDiveState * stateSimGetPointerWrite(void) | |
148 { | |
149 return &stateSim; | |
150 } | |
151 | |
152 | |
153 const SDevice * stateDeviceGetPointer(void) | |
154 { | |
155 return &stateDevice; | |
156 } | |
157 | |
158 | |
159 SDevice * stateDeviceGetPointerWrite(void) | |
160 { | |
161 return &stateDevice; | |
162 } | |
163 | |
164 | |
165 const SVpmRepetitiveData * stateVpmRepetitiveDataGetPointer(void) | |
166 { | |
167 return &stateVPM; | |
168 } | |
169 | |
170 | |
171 SVpmRepetitiveData * stateVpmRepetitiveDataGetPointerWrite(void) | |
172 { | |
173 return &stateVPM; | |
174 } | |
175 | |
176 | |
177 uint32_t time_elapsed_ms(uint32_t ticksstart,uint32_t ticksnow) | |
178 { | |
179 if(ticksstart <= ticksnow) | |
180 return ticksnow - ticksstart; | |
181 else | |
182 return 0xFFFFFFFF - ticksstart + ticksnow; | |
183 } | |
184 | |
185 | |
186 uint8_t decoLock = DECO_CALC_undefined; | |
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187 |
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188 static int descent_rate_meter_per_min = 20; |
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189 static int max_depth = 70; |
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190 static int bottom_time = 10; |
38 | 191 |
192 _Bool vpm_crush(SDiveState* pDiveState); | |
193 void setSimulationValues(int _ascent_rate_meter_per_min, int _descent_rate_meter_per_min, int _max_depth, int _bottom_time ) | |
194 { | |
195 descent_rate_meter_per_min = _descent_rate_meter_per_min; | |
196 max_depth = _max_depth; | |
197 bottom_time = _bottom_time; | |
198 } | |
199 | |
200 int current_second(void) { | |
201 | |
202 return HAL_GetTick() / 1000; | |
203 } | |
204 | |
205 #define OXY_ONE_SIXTIETH_PART 0.0166667f | |
206 | |
207 uint8_t calc_MOD(uint8_t gasId) | |
208 { | |
209 int16_t oxygen, maxppO2, result; | |
210 SSettings *pSettings; | |
211 | |
212 pSettings = settingsGetPointer(); | |
213 | |
214 oxygen = (int16_t)(pSettings->gas[gasId].oxygen_percentage); | |
215 | |
216 if(pSettings->gas[gasId].note.ub.deco > 0) | |
217 maxppO2 =(int16_t)(pSettings->ppO2_max_deco); | |
218 else | |
219 maxppO2 =(int16_t)(pSettings->ppO2_max_std); | |
220 | |
221 result = 10 * maxppO2; | |
222 result /= oxygen; | |
223 result -= 10; | |
224 | |
225 if(result < 0) | |
226 return 0; | |
227 | |
228 if(result > 255) | |
229 return 255; | |
230 | |
231 return result; | |
232 } | |
233 | |
234 float get_ambiant_pressure_simulation(long dive_time_seconds, float surface_pressure_bar ) | |
235 { | |
236 static | |
237 long descent_time; | |
238 float depth_meter; | |
239 | |
240 descent_time = 60 * max_depth / descent_rate_meter_per_min; | |
241 | |
242 if(dive_time_seconds <= descent_time) | |
243 { | |
244 depth_meter = ((float)(dive_time_seconds * descent_rate_meter_per_min)) / 60; | |
245 return surface_pressure_bar + depth_meter / 10; | |
246 } | |
247 //else if(dive_time_seconds <= (descent_time + bottom_time * 60)) | |
248 return surface_pressure_bar + max_depth / 10; | |
249 | |
250 | |
251 | |
252 } | |
253 | |
254 void UpdateLifeDataTest(SDiveState * pDiveState) | |
255 { | |
256 static int last_second = -1; | |
257 int now = current_second(); | |
258 if(last_second == now) | |
259 return; | |
260 last_second = now; | |
261 | |
262 pDiveState->lifeData.dive_time_seconds += 1; | |
263 pDiveState->lifeData.pressure_ambient_bar = get_ambiant_pressure_simulation(pDiveState->lifeData.dive_time_seconds,pDiveState->lifeData.pressure_surface_bar); | |
264 | |
265 pDiveState->lifeData.depth_meter = (pDiveState->lifeData.pressure_ambient_bar - pDiveState->lifeData.pressure_surface_bar) * 10.0f; | |
266 if(pDiveState->lifeData.max_depth_meter < pDiveState->lifeData.depth_meter) | |
267 pDiveState->lifeData.max_depth_meter = pDiveState->lifeData.depth_meter; | |
268 decom_tissues_exposure(1, &pDiveState->lifeData); | |
269 pDiveState->lifeData.ppO2 = decom_calc_ppO2( pDiveState->lifeData.pressure_ambient_bar, &pDiveState->lifeData.actualGas); | |
270 decom_oxygen_calculate_cns(& pDiveState->lifeData.cns, pDiveState->lifeData.ppO2); | |
271 | |
272 vpm_crush(pDiveState); | |
273 } | |
274 | |
275 | |
276 _Bool vpm_crush(SDiveState* pDiveState) | |
277 { | |
278 int i = 0; | |
279 static float starting_ambient_pressure = 0; | |
280 static float ending_ambient_pressure = 0; | |
281 static float time_calc_begin = -1; | |
282 static float initial_helium_pressure[16]; | |
283 static float initial_nitrogen_pressure[16]; | |
284 ending_ambient_pressure = pDiveState->lifeData.pressure_ambient_bar * 10; | |
285 | |
286 if((pDiveState->lifeData.dive_time_seconds <= 4) || (starting_ambient_pressure >= ending_ambient_pressure)) | |
287 { | |
288 time_calc_begin = pDiveState->lifeData.dive_time_seconds; | |
289 starting_ambient_pressure = pDiveState->lifeData.pressure_ambient_bar * 10; | |
290 for( i = 0; i < 16; i++) | |
291 { | |
292 initial_helium_pressure[i] = pDiveState->lifeData.tissue_helium_bar[i] * 10; | |
293 initial_nitrogen_pressure[i] = pDiveState->lifeData.tissue_nitrogen_bar[i] * 10; | |
294 } | |
295 return false; | |
296 } | |
297 if(pDiveState->lifeData.dive_time_seconds - time_calc_begin >= 4) | |
298 { | |
299 if(ending_ambient_pressure > starting_ambient_pressure + 0.5f) | |
300 { | |
301 float rate = (ending_ambient_pressure - starting_ambient_pressure) * 60 / 4; | |
302 calc_crushing_pressure(&pDiveState->lifeData, &pDiveState->vpm, initial_helium_pressure, initial_nitrogen_pressure, starting_ambient_pressure, rate); | |
303 | |
304 time_calc_begin = pDiveState->lifeData.dive_time_seconds; | |
305 starting_ambient_pressure = pDiveState->lifeData.pressure_ambient_bar * 10; | |
306 for( i = 0; i < 16; i++) | |
307 { | |
308 initial_helium_pressure[i] = pDiveState->lifeData.tissue_helium_bar[i] * 10; | |
309 initial_nitrogen_pressure[i] = pDiveState->lifeData.tissue_nitrogen_bar[i] * 10; | |
310 } | |
311 | |
312 return true; | |
313 } | |
314 | |
315 } | |
316 return false; | |
317 }; | |
318 | |
319 | |
320 void createDiveSettings(void) | |
321 { | |
662 | 322 int i; |
38 | 323 SSettings* pSettings = settingsGetPointer(); |
324 | |
325 stateReal.diveSettings.compassHeading = pSettings->compassBearing; | |
326 stateReal.diveSettings.ascentRate_meterperminute = 10; | |
327 | |
328 stateReal.diveSettings.diveMode = pSettings->dive_mode; | |
329 stateReal.diveSettings.CCR_Mode = pSettings->CCR_Mode; | |
662 | 330 if((stateReal.diveSettings.diveMode == DIVEMODE_PSCR) && (stateReal.diveSettings.CCR_Mode == CCRMODE_FixedSetpoint)) |
331 { | |
332 /* TODO: update selection of sensor used on/off (currently sensor/fixpoint). As PSCR has no fixed setpoint change to simulated ppo2 if sensors are not active */ | |
333 stateReal.diveSettings.CCR_Mode = CCRMODE_Simulation; | |
334 } | |
335 | |
336 if(isLoopMode(stateReal.diveSettings.diveMode)) | |
38 | 337 stateReal.diveSettings.ccrOption = 1; |
338 else | |
339 stateReal.diveSettings.ccrOption = 0; | |
340 memcpy(stateReal.diveSettings.gas, pSettings->gas,sizeof(pSettings->gas)); | |
341 memcpy(stateReal.diveSettings.setpoint, pSettings->setpoint,sizeof(pSettings->setpoint)); | |
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342 |
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343 setActualGasFirst(&stateReal.lifeData); |
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344 |
38 | 345 stateReal.diveSettings.gf_high = pSettings->GF_high; |
346 stateReal.diveSettings.gf_low = pSettings->GF_low; | |
347 stateReal.diveSettings.input_next_stop_increment_depth_bar = ((float)pSettings->stop_increment_depth_meter) / 10.0f; | |
348 stateReal.diveSettings.last_stop_depth_bar = ((float)pSettings->last_stop_depth_meter) / 10.0f; | |
349 stateReal.diveSettings.vpm_conservatism = pSettings->VPM_conservatism.ub.standard; | |
350 stateReal.diveSettings.deco_type.uw = pSettings->deco_type.uw; | |
351 stateReal.diveSettings.fallbackOption = pSettings->fallbackToFixedSetpoint; | |
352 stateReal.diveSettings.ppo2sensors_deactivated = pSettings->ppo2sensors_deactivated; | |
353 stateReal.diveSettings.future_TTS_minutes = pSettings->future_TTS; | |
354 | |
662 | 355 stateReal.diveSettings.pscr_lung_ratio = pSettings->pscr_lung_ratio; |
356 stateReal.diveSettings.pscr_o2_drop = pSettings->pscr_o2_drop; | |
357 | |
358 if(stateReal.diveSettings.diveMode == DIVEMODE_PSCR) | |
359 { | |
360 for(i=0; i<5; i++) | |
361 { | |
362 stateReal.diveSettings.decogaslist[i].pscr_factor = 1.0 / stateReal.diveSettings.pscr_lung_ratio * stateReal.diveSettings.pscr_o2_drop; | |
363 } | |
364 } | |
365 | |
38 | 366 decom_CreateGasChangeList(&stateReal.diveSettings, &stateReal.lifeData); // decogaslist |
367 stateReal.diveSettings.internal__pressure_first_stop_ambient_bar_as_upper_limit_for_gf_low_otherwise_zero = 0; | |
368 | |
369 /* for safety */ | |
370 stateReal.diveSettings.input_second_to_last_stop_depth_bar = stateReal.diveSettings.last_stop_depth_bar + stateReal.diveSettings.input_next_stop_increment_depth_bar; | |
371 /* and the proper calc */ | |
662 | 372 for(i = 1; i <10; i++) |
38 | 373 { |
374 if(stateReal.diveSettings.input_next_stop_increment_depth_bar * i > stateReal.diveSettings.last_stop_depth_bar) | |
375 { | |
376 stateReal.diveSettings.input_second_to_last_stop_depth_bar = stateReal.diveSettings.input_next_stop_increment_depth_bar * i; | |
377 break; | |
378 } | |
379 } | |
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380 /* generate Bitfield of active T3 views */ |
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381 stateReal.diveSettings.activeAFViews = 0; |
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382 if(t3_customview_disabled(CVIEW_T3_Navigation) == 0) |
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383 { |
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384 stateReal.diveSettings.activeAFViews |= (1 << CVIEW_T3_Navigation); |
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385 } |
38 | 386 } |
387 | |
388 | |
389 void copyDiveSettingsToSim(void) | |
390 { | |
391 memcpy(&stateSim, &stateReal, sizeof(stateReal)); | |
392 } | |
393 | |
394 | |
395 void copyVpmRepetetiveDataToSim(void) | |
396 { | |
397 SDiveState * pSimData = stateSimGetPointerWrite(); | |
398 const SVpmRepetitiveData * pVpmData = stateVpmRepetitiveDataGetPointer(); | |
399 | |
400 if(pVpmData->is_data_from_RTE_CPU) | |
401 { | |
402 for(int i=0; i<16;i++) | |
403 { | |
404 pSimData->vpm.adjusted_critical_radius_he[i] = pVpmData->adjusted_critical_radius_he[i]; | |
405 pSimData->vpm.adjusted_critical_radius_n2[i] = pVpmData->adjusted_critical_radius_n2[i]; | |
406 | |
407 pSimData->vpm.adjusted_crushing_pressure_he[i] = pVpmData->adjusted_crushing_pressure_he[i]; | |
408 pSimData->vpm.adjusted_crushing_pressure_n2[i] = pVpmData->adjusted_crushing_pressure_n2[i]; | |
409 | |
410 pSimData->vpm.initial_allowable_gradient_he[i] = pVpmData->initial_allowable_gradient_he[i]; | |
411 pSimData->vpm.initial_allowable_gradient_n2[i] = pVpmData->initial_allowable_gradient_n2[i]; | |
412 | |
413 pSimData->vpm.max_actual_gradient[i] = pVpmData->max_actual_gradient[i]; | |
414 } | |
415 pSimData->vpm.repetitive_variables_not_valid = pVpmData->repetitive_variables_not_valid; | |
416 } | |
417 } | |
418 | |
419 | |
420 void updateSetpointStateUsed(void) | |
421 { | |
682 | 422 if(!isLoopMode(stateUsed->diveSettings.diveMode)) |
38 | 423 { |
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424 stateUsedWrite->lifeData.actualGas.setPoint_cbar = 0; |
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425 stateUsedWrite->lifeData.ppO2 = decom_calc_ppO2(stateUsed->lifeData.pressure_ambient_bar, &stateUsed->lifeData.actualGas); |
38 | 426 } |
427 else | |
428 { | |
429 if(stateUsed->diveSettings.CCR_Mode == CCRMODE_Sensors) | |
430 { | |
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431 stateUsedWrite->lifeData.actualGas.setPoint_cbar = get_ppO2SensorWeightedResult_cbar(); |
38 | 432 } |
662 | 433 #ifdef ENABLE_PSCR_MODE |
434 if(stateUsed->diveSettings.diveMode == DIVEMODE_PSCR) /* calculate a ppO2 value based on assumptions ( transfered approach from hwos code) */ | |
435 { | |
436 stateUsedWrite->lifeData.ppo2Simulated_bar = decom_calc_SimppO2_O2based(stateUsed->lifeData.pressure_ambient_bar, stateReal.diveSettings.gas[stateUsed->lifeData.actualGas.GasIdInSettings].oxygen_percentage, stateUsed->lifeData.actualGas.pscr_factor); | |
437 if(stateUsed->diveSettings.CCR_Mode == CCRMODE_Simulation) | |
438 { | |
439 stateUsedWrite->lifeData.actualGas.setPoint_cbar = stateUsedWrite->lifeData.ppo2Simulated_bar * 100; | |
440 } | |
441 } | |
442 #endif | |
443 /* limit calculated value to the physically possible if needed */ | |
38 | 444 if((stateUsed->lifeData.pressure_ambient_bar * 100) < stateUsed->lifeData.actualGas.setPoint_cbar) |
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445 stateUsedWrite->lifeData.ppO2 = stateUsed->lifeData.pressure_ambient_bar; |
38 | 446 else |
271
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447 stateUsedWrite->lifeData.ppO2 = ((float)stateUsed->lifeData.actualGas.setPoint_cbar) / 100; |
38 | 448 } |
449 } | |
450 | |
451 void setActualGasFirst(SLifeData *lifeData) | |
452 { | |
453 SSettings* pSettings = settingsGetPointer(); | |
454 uint8_t start = 0; | |
455 uint8_t gasId = 0; | |
456 uint8_t setpoint_cbar = 0; | |
457 | |
662 | 458 if(isLoopMode(pSettings->dive_mode)) |
38 | 459 { |
460 setpoint_cbar = pSettings->setpoint[1].setpoint_cbar; | |
461 start = NUM_OFFSET_DILUENT+1; | |
462 } | |
463 else | |
464 { | |
465 setpoint_cbar = 0; | |
466 start = 1; | |
467 } | |
468 | |
469 gasId = start; | |
470 for(int i=start;i<=NUM_GASES+start;i++) | |
471 { | |
472 if(pSettings->gas[i].note.ub.first) | |
473 { | |
474 gasId = i; | |
475 break; | |
476 } | |
477 } | |
478 setActualGas(lifeData, gasId, setpoint_cbar); | |
788
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479 |
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480 lifeData->setpointDecoActivated = false; |
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481 lifeData->setpointLowDelayed = false; |
38 | 482 } |
483 | |
484 void setActualGasAir(SLifeData *lifeData) | |
485 { | |
486 uint8_t nitrogen; | |
487 nitrogen = 79; | |
488 lifeData->actualGas.GasIdInSettings = 0; | |
489 lifeData->actualGas.nitrogen_percentage = nitrogen; | |
490 lifeData->actualGas.helium_percentage =0; | |
491 lifeData->actualGas.setPoint_cbar = 0; | |
492 lifeData->actualGas.change_during_ascent_depth_meter_otherwise_zero = 0; | |
662 | 493 lifeData->actualGas.AppliedDiveMode = stateUsed->diveSettings.diveMode; |
38 | 494 } |
495 | |
496 | |
497 void setActualGas(SLifeData *lifeData, uint8_t gasId, uint8_t setpoint_cbar) | |
498 { | |
499 SSettings* pSettings = settingsGetPointer(); | |
500 uint8_t nitrogen; | |
501 | |
502 nitrogen = 100; | |
503 nitrogen -= pSettings->gas[gasId].oxygen_percentage; | |
504 nitrogen -= pSettings->gas[gasId].helium_percentage; | |
505 | |
506 lifeData->actualGas.GasIdInSettings = gasId; | |
507 lifeData->actualGas.nitrogen_percentage = nitrogen; | |
508 lifeData->actualGas.helium_percentage = pSettings->gas[gasId].helium_percentage; | |
509 lifeData->actualGas.setPoint_cbar = setpoint_cbar; | |
510 lifeData->actualGas.change_during_ascent_depth_meter_otherwise_zero = 0; | |
682 | 511 lifeData->actualGas.AppliedDiveMode = stateUsed->diveSettings.diveMode; |
662 | 512 lifeData->actualGas.pscr_factor = 1.0 / pSettings->pscr_lung_ratio * pSettings->pscr_o2_drop; |
771
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Revised automatic setpoint change. The proposed approach is essentially the approach used by most controllers of eCCR ('upshift' on descent, 'downshift' on ascent), so that the OSTC4 when used as a backup computer for eCCR will make the changes at the same time as the eCCR itself.
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513 if (isLoopMode(pSettings->dive_mode) && gasId > NUM_OFFSET_DILUENT) { |
38 | 514 lifeData->lastDiluent_GasIdInSettings = gasId; |
771
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Revised automatic setpoint change. The proposed approach is essentially the approach used by most controllers of eCCR ('upshift' on descent, 'downshift' on ascent), so that the OSTC4 when used as a backup computer for eCCR will make the changes at the same time as the eCCR itself.
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515 lifeData->lastSetpointChangeDepthM = lifeData->depth_meter; |
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Revised automatic setpoint change. The proposed approach is essentially the approach used by most controllers of eCCR ('upshift' on descent, 'downshift' on ascent), so that the OSTC4 when used as a backup computer for eCCR will make the changes at the same time as the eCCR itself.
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516 } |
38 | 517 } |
518 | |
519 | |
520 void setActualGas_DM(SLifeData *lifeData, uint8_t gasId, uint8_t setpoint_cbar) | |
521 { | |
522 if(stateUsed->diveSettings.ccrOption && gasId < 6) | |
523 { | |
524 if(lifeData->actualGas.GasIdInSettings != gasId) | |
525 { | |
526 SSettings* pSettings = settingsGetPointer(); | |
271
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527 stateUsedWrite->events.bailout = 1; |
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528 stateUsedWrite->events.info_bailoutO2 = pSettings->gas[gasId].oxygen_percentage; |
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529 stateUsedWrite->events.info_bailoutHe = pSettings->gas[gasId].helium_percentage; |
38 | 530 } |
531 } | |
532 else | |
533 { | |
534 if(lifeData->actualGas.GasIdInSettings != gasId) | |
535 { | |
271
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536 stateUsedWrite->events.gasChange = 1; |
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537 stateUsedWrite->events.info_GasChange = gasId; |
38 | 538 } |
539 if( lifeData->actualGas.setPoint_cbar != setpoint_cbar) | |
540 { | |
541 // setPoint_cbar = 255 -> change to sensor mode | |
271
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542 stateUsedWrite->events.setpointChange = 1; |
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543 stateUsedWrite->events.info_SetpointChange = setpoint_cbar; |
38 | 544 } |
545 } | |
546 setActualGas(lifeData, gasId, setpoint_cbar); | |
547 } | |
548 | |
549 void setActualGas_ExtraGas(SLifeData *lifeData, uint8_t oxygen, uint8_t helium, uint8_t setpoint_cbar) | |
550 { | |
551 uint8_t nitrogen; | |
552 | |
553 nitrogen = 100; | |
554 nitrogen -= oxygen; | |
555 nitrogen -= helium; | |
556 | |
736
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Fixed logbook download after switch from CCR to extra (OC) gas if the extra gas
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557 |
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Fixed logbook download after switch from CCR to extra (OC) gas if the extra gas
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558 if((lifeData->actualGas.nitrogen_percentage != nitrogen) || (lifeData->actualGas.helium_percentage != helium) || (lifeData->actualGas.AppliedDiveMode != DIVEMODE_OC)) |
38 | 559 { |
281 | 560 stateUsedWrite->events.manualGasSet = 1; |
561 stateUsedWrite->events.info_manualGasSetHe = helium; | |
562 stateUsedWrite->events.info_manualGasSetO2 = oxygen; | |
38 | 563 } |
564 if( lifeData->actualGas.setPoint_cbar != setpoint_cbar) | |
565 { | |
271
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566 stateUsedWrite->events.setpointChange = 1; |
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567 stateUsedWrite->events.info_SetpointChange = setpoint_cbar; |
38 | 568 } |
569 lifeData->actualGas.GasIdInSettings = 0; | |
570 lifeData->actualGas.nitrogen_percentage = nitrogen; | |
571 lifeData->actualGas.helium_percentage = helium; | |
572 lifeData->actualGas.setPoint_cbar = setpoint_cbar; | |
573 lifeData->actualGas.change_during_ascent_depth_meter_otherwise_zero = 0; | |
662 | 574 lifeData->actualGas.AppliedDiveMode = stateUsed->diveSettings.diveMode; |
38 | 575 } |
576 | |
577 void setButtonResponsiveness(uint8_t *ButtonSensitivyList) | |
578 { | |
579 SDataReceiveFromMaster *pDataOut = dataOutGetPointer(); | |
580 | |
581 for(int i=0; i<4; i++) | |
582 { | |
583 pDataOut->data.buttonResponsiveness[i] = settingsHelperButtonSens_translate_percentage_to_hwOS_values(ButtonSensitivyList[i]); | |
584 } | |
585 pDataOut->setButtonSensitivityNow = 1; | |
586 } | |
587 | |
588 | |
589 void setDate(RTC_DateTypeDef Sdate) | |
590 { | |
591 SDataReceiveFromMaster *pDataOut = dataOutGetPointer(); | |
592 | |
593 pDataOut->data.newDate = Sdate; | |
594 pDataOut->setDateNow = 1; | |
595 } | |
596 | |
597 | |
598 void setTime(RTC_TimeTypeDef Stime) | |
599 { | |
600 SDataReceiveFromMaster *pDataOut = dataOutGetPointer(); | |
601 | |
602 pDataOut->data.newTime = Stime; | |
603 pDataOut->setTimeNow = 1; | |
604 } | |
605 | |
606 | |
607 void setBatteryPercentage(uint8_t newChargePercentage) | |
608 { | |
609 SDataReceiveFromMaster *pDataOut = dataOutGetPointer(); | |
610 | |
611 pDataOut->data.newBatteryGaugePercentageFloat = settingsGetPointer()->lastKnownBatteryPercentage; | |
612 pDataOut->setBatteryGaugeNow = 1; | |
613 } | |
614 | |
615 | |
616 void calibrateCompass(void) | |
617 { | |
618 SDataReceiveFromMaster *pDataOut = dataOutGetPointer(); | |
619 pDataOut->calibrateCompassNow = 1; | |
620 } | |
621 | |
622 | |
623 void clearDeco(void) | |
624 { | |
625 SDataReceiveFromMaster *pDataOut = dataOutGetPointer(); | |
626 pDataOut->clearDecoNow = 1; | |
627 | |
628 stateRealGetPointerWrite()->cnsHigh_at_the_end_of_dive = 0; | |
629 stateRealGetPointerWrite()->decoMissed_at_the_end_of_dive = 0; | |
630 } | |
631 | |
632 | |
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633 static int32_t helper_days_from_civil(int32_t y, uint32_t m, uint32_t d) |
38 | 634 { |
635 y += 2000; | |
636 y -= m <= 2; | |
637 int32_t era = (y >= 0 ? y : y-399) / 400; | |
638 uint32_t yoe = (uint32_t)(y - era * 400); // [0, 399] | |
639 uint32_t doy = (153*(m + (m > 2 ? -3 : 9)) + 2)/5 + d-1; // [0, 365] | |
640 uint32_t doe = yoe * 365 + yoe/4 - yoe/100 + doy; // [0, 146096] | |
641 return era * 146097 + (int32_t)(doe) - 719468; | |
642 } | |
643 | |
644 | |
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645 static uint8_t helper_weekday_from_days(int32_t z) |
38 | 646 { |
647 return (uint8_t)(z >= -4 ? (z+4) % 7 : (z+5) % 7 + 6); | |
648 } | |
649 | |
650 | |
651 void setWeekday(RTC_DateTypeDef *sDate) | |
652 { | |
653 uint8_t day; | |
654 // [0, 6] -> [Sun, Sat] | |
655 day = helper_weekday_from_days(helper_days_from_civil(sDate->Year, sDate->Month, sDate->Date)); | |
656 // [1, 7] -> [Mon, Sun] | |
657 if(day == 0) | |
658 day = 7; | |
659 sDate->WeekDay = day; | |
660 } | |
661 | |
662 | |
663 void translateDate(uint32_t datetmpreg, RTC_DateTypeDef *sDate) | |
664 { | |
665 datetmpreg = (uint32_t)(datetmpreg & RTC_DR_RESERVED_MASK); | |
666 | |
667 /* Fill the structure fields with the read parameters */ | |
668 sDate->Year = (uint8_t)((datetmpreg & (RTC_DR_YT | RTC_DR_YU)) >> 16); | |
669 sDate->Month = (uint8_t)((datetmpreg & (RTC_DR_MT | RTC_DR_MU)) >> 8); | |
670 sDate->Date = (uint8_t)(datetmpreg & (RTC_DR_DT | RTC_DR_DU)); | |
671 sDate->WeekDay = (uint8_t)((datetmpreg & (RTC_DR_WDU)) >> 13); | |
672 | |
673 /* Convert the date structure parameters to Binary format */ | |
674 sDate->Year = (uint8_t)RTC_Bcd2ToByte(sDate->Year); | |
675 sDate->Month = (uint8_t)RTC_Bcd2ToByte(sDate->Month); | |
676 sDate->Date = (uint8_t)RTC_Bcd2ToByte(sDate->Date); | |
677 } | |
678 | |
679 void translateTime(uint32_t tmpreg, RTC_TimeTypeDef *sTime) | |
680 { | |
681 tmpreg = (uint32_t)(tmpreg & RTC_TR_RESERVED_MASK); | |
682 | |
683 /* Fill the structure fields with the read parameters */ | |
684 sTime->Hours = (uint8_t)((tmpreg & (RTC_TR_HT | RTC_TR_HU)) >> 16); | |
685 sTime->Minutes = (uint8_t)((tmpreg & (RTC_TR_MNT | RTC_TR_MNU)) >>8); | |
686 sTime->Seconds = (uint8_t)(tmpreg & (RTC_TR_ST | RTC_TR_SU)); | |
687 sTime->TimeFormat = (uint8_t)((tmpreg & (RTC_TR_PM)) >> 16); | |
688 | |
689 /* Convert the time structure parameters to Binary format */ | |
690 sTime->Hours = (uint8_t)RTC_Bcd2ToByte(sTime->Hours); | |
691 sTime->Minutes = (uint8_t)RTC_Bcd2ToByte(sTime->Minutes); | |
692 sTime->Seconds = (uint8_t)RTC_Bcd2ToByte(sTime->Seconds); | |
693 sTime->SubSeconds = 0; | |
694 } | |
695 | |
270
2e58a4094770
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Jan Mulder <jlmulder@xs4all.nl>
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225
diff
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|
696 void resetEvents(const SDiveState *pStateUsed) |
38 | 697 { |
270
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698 memset((void *)&pStateUsed->events, 0, sizeof(SEvents)); |
38 | 699 } |
700 | |
701 | |
702 uint32_t CRC_CalcBlockCRC_moreThan768000(uint32_t *buffer1, uint32_t *buffer2, uint32_t words) | |
703 { | |
704 cm_t crc_model; | |
705 uint32_t word_to_do; | |
706 uint8_t byte_to_do; | |
707 int i; | |
708 | |
709 // Values for the STM32F generator. | |
710 | |
711 crc_model.cm_width = 32; // 32-bit CRC | |
712 crc_model.cm_poly = 0x04C11DB7; // CRC-32 polynomial | |
713 crc_model.cm_init = 0xFFFFFFFF; // CRC initialized to 1's | |
714 crc_model.cm_refin = FALSE; // CRC calculated MSB first | |
715 crc_model.cm_refot = FALSE; // Final result is not bit-reversed | |
716 crc_model.cm_xorot = 0x00000000; // Final result XOR'ed with this | |
717 | |
718 cm_ini(&crc_model); | |
719 | |
720 while (words--) | |
721 { | |
722 // The STM32F10x hardware does 32-bit words at a time!!! | |
723 if(words > (768000/4)) | |
724 word_to_do = *buffer2++; | |
725 else | |
726 word_to_do = *buffer1++; | |
727 | |
728 // Do all bytes in the 32-bit word. | |
729 | |
730 for (i = 0; i < sizeof(word_to_do); i++) | |
731 { | |
732 // We calculate a *byte* at a time. If the CRC is MSB first we | |
733 // do the next MS byte and vica-versa. | |
734 | |
735 if (crc_model.cm_refin == FALSE) | |
736 { | |
737 // MSB first. Do the next MS byte. | |
738 | |
739 byte_to_do = (uint8_t) ((word_to_do & 0xFF000000) >> 24); | |
740 word_to_do <<= 8; | |
741 } | |
742 else | |
743 { | |
744 // LSB first. Do the next LS byte. | |
745 | |
746 byte_to_do = (uint8_t) (word_to_do & 0x000000FF); | |
747 word_to_do >>= 8; | |
748 } | |
749 | |
750 cm_nxt(&crc_model, byte_to_do); | |
751 } | |
752 } | |
753 | |
754 // Return the final result. | |
755 | |
756 return (cm_crc(&crc_model)); | |
757 } | |
758 | |
759 | |
760 uint32_t CRC_CalcBlockCRC(uint32_t *buffer, uint32_t words) | |
761 { | |
762 cm_t crc_model; | |
763 uint32_t word_to_do; | |
764 uint8_t byte_to_do; | |
765 int i; | |
766 | |
767 // Values for the STM32F generator. | |
768 | |
769 crc_model.cm_width = 32; // 32-bit CRC | |
770 crc_model.cm_poly = 0x04C11DB7; // CRC-32 polynomial | |
771 crc_model.cm_init = 0xFFFFFFFF; // CRC initialized to 1's | |
772 crc_model.cm_refin = FALSE; // CRC calculated MSB first | |
773 crc_model.cm_refot = FALSE; // Final result is not bit-reversed | |
774 crc_model.cm_xorot = 0x00000000; // Final result XOR'ed with this | |
775 | |
776 cm_ini(&crc_model); | |
777 | |
778 while (words--) | |
779 { | |
780 // The STM32F10x hardware does 32-bit words at a time!!! | |
781 | |
782 word_to_do = *buffer++; | |
783 | |
784 // Do all bytes in the 32-bit word. | |
785 | |
786 for (i = 0; i < sizeof(word_to_do); i++) | |
787 { | |
788 // We calculate a *byte* at a time. If the CRC is MSB first we | |
789 // do the next MS byte and vica-versa. | |
790 | |
791 if (crc_model.cm_refin == FALSE) | |
792 { | |
793 // MSB first. Do the next MS byte. | |
794 | |
795 byte_to_do = (uint8_t) ((word_to_do & 0xFF000000) >> 24); | |
796 word_to_do <<= 8; | |
797 } | |
798 else | |
799 { | |
800 // LSB first. Do the next LS byte. | |
801 | |
802 byte_to_do = (uint8_t) (word_to_do & 0x000000FF); | |
803 word_to_do >>= 8; | |
804 } | |
805 | |
806 cm_nxt(&crc_model, byte_to_do); | |
807 } | |
808 } | |
809 | |
810 // Return the final result. | |
811 | |
812 return (cm_crc(&crc_model)); | |
813 } | |
814 | |
302
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300
diff
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|
815 // This code is also in RTE. Keep it in sync when editing |
38 | 816 _Bool is_ambient_pressure_close_to_surface(SLifeData *lifeData) |
817 { | |
310
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818 if (lifeData->pressure_ambient_bar > 1.16) |
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819 return false; |
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|
820 else if(lifeData->pressure_ambient_bar < (lifeData->pressure_surface_bar + 0.1f)) |
38 | 821 return true; |
822 else | |
823 return false; | |
824 } | |
539
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Added inertia simulation for compass heading:
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parents:
310
diff
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|
825 |
d784f281833a
Added inertia simulation for compass heading:
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diff
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|
826 void compass_Inertia(float newHeading) |
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Ideenmodellierer
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diff
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|
827 { |
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|
828 float newTarget = newHeading; |
d784f281833a
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diff
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|
829 |
d784f281833a
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diff
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|
830 if(settingsGetPointer()->compassInertia == 0) |
d784f281833a
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831 { |
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832 compass_compensated = newHeading; |
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833 } |
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834 else |
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|
835 { |
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|
836 if((compass_compensated > 270.0) && (newHeading < 90.0)) /* transition passing 0 clockwise */ |
d784f281833a
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837 { |
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838 newTarget = newHeading + 360.0; |
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839 } |
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840 |
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841 if((compass_compensated < 90.0) && (newHeading > 270.0)) /* transition passing 0 counter clockwise */ |
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842 { |
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843 newTarget = newHeading - 360.0; |
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844 } |
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845 |
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846 compass_compensated = compass_compensated + ((newTarget - compass_compensated) / (COMPASS_FRACTION * (settingsGetPointer()->compassInertia))); |
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847 if(compass_compensated < 0.0) |
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848 { |
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849 compass_compensated += 360.0; |
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850 } |
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851 if(compass_compensated >= 360.0) |
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852 { |
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853 compass_compensated -= 360.0; |
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854 } |
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855 } |
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856 } |
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857 |
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858 float compass_getCompensated() |
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859 { |
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860 return compass_compensated; |
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861 } |
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862 |
662 | 863 uint8_t isLoopMode(uint8_t Mode) |
864 { | |
865 uint8_t retVal = 0; | |
866 if((Mode == DIVEMODE_CCR) || (Mode == DIVEMODE_PSCR)) | |
867 { | |
868 retVal = 1; | |
869 } | |
870 return retVal; | |
871 } | |
774
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872 |
776
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873 |
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874 bool isCompassCalibrated(void) |
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875 { |
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876 return stateUsed->lifeData.compass_heading != -1; |
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877 } |
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878 |
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879 |
774
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880 void setCompassHeading(uint16_t heading) |
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881 { |
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882 |
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883 // if heading == 0 set compassHeading to 360, because compassHeading == 0 means 'off' |
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884 |
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885 stateUsedWrite->diveSettings.compassHeading = ((heading - 360) % 360) + 360; |
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886 } |
788
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887 |
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888 |
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889 const SDecoinfo *getDecoInfo(void) |
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890 { |
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891 const SDecoinfo *decoInfo; |
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892 if (stateUsed->diveSettings.deco_type.ub.standard == GF_MODE) { |
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893 decoInfo = &stateUsed->decolistBuehlmann; |
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894 } else { |
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895 decoInfo = &stateUsed->decolistVPM; |
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896 } |
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897 |
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898 return decoInfo; |
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899 } |
805
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Adds a simple countdown timer, available as a custom view in surface and dive mode.
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900 |
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901 |
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902 void disableTimer(void) |
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Adds a simple countdown timer, available as a custom view in surface and dive mode.
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903 { |
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Adds a simple countdown timer, available as a custom view in surface and dive mode.
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904 stateUsedWrite->timerState = TIMER_STATE_OFF; |
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905 } |