28#include <simgear/scene/material/mat.hxx>
31#define WITH_POINT_TO_POINT 1
38 _receiver_sensitivity = -105.0;
48 _transmitter_power = 43.0;
50 _tx_antenna_height = 2.0;
52 _rx_antenna_height = 2.0;
55 _rx_antenna_gain = 1.0;
56 _tx_antenna_gain = 1.0;
58 _rx_line_losses = 2.0;
59 _tx_line_losses = 2.0;
63 _propagation_model = 2;
65 _root_node =
fgGetNode(
"sim/radio",
true);
66 _terrain_sampling_distance = _root_node->getDoubleValue(
"sampling-distance", 90.0);
80 freq =
fgGetDouble(
"/instrumentation/comm[0]/frequencies/selected-mhz");
83 freq =
fgGetDouble(
"/instrumentation/comm[1]/frequencies/selected-mhz");
86 freq =
fgGetDouble(
"/instrumentation/comm[0]/frequencies/selected-mhz");
103 if ( _propagation_model == 1) {
104 return LOS_calculate_attenuation(tx_pos, freq, 1);
106 else if ( _propagation_model == 2) {
107 return ITM_calculate_attenuation(tx_pos, freq, 1);
118 _receiver_sensitivity = _root_node->getDoubleValue(
"station[0]/rx-sensitivity", _receiver_sensitivity);
119 _transmitter_power =
watt_to_dbm(_root_node->getDoubleValue(
"station[0]/tx-power-watt", _transmitter_power));
120 _polarization = _root_node->getIntValue(
"station[0]/polarization", 1);
121 _tx_antenna_height += _root_node->getDoubleValue(
"station[0]/tx-antenna-height", 0);
122 _rx_antenna_height += _root_node->getDoubleValue(
"station[0]/rx-antenna-height", 0);
123 _tx_antenna_gain += _root_node->getDoubleValue(
"station[0]/tx-antenna-gain", 0);
124 _rx_antenna_gain += _root_node->getDoubleValue(
"station[0]/rx-antenna-gain", 0);
126 double freq = _root_node->getDoubleValue(
"station[0]/frequency", 144.8);
130 if ( !(fabs(freq - comm1) <= 0.0001) && !(fabs(freq - comm2) <= 0.0001) ) {
134 double signal = ITM_calculate_attenuation(tx_pos, freq, 1);
144 if(ground_to_air == 1) {
145 _transmitter_power += 4.0;
146 _tx_antenna_height += 30.0;
147 _tx_antenna_gain += 2.0;
152 if ( !(fabs(freq - comm1) <= 0.0001) && !(fabs(freq - comm2) <= 0.0001) ) {
157 if ( _propagation_model == 0) {
160 else if ( _propagation_model == 1 ) {
162 double signal = LOS_calculate_attenuation(tx_pos, freq, ground_to_air);
170 else if ( _propagation_model == 2 ) {
172 double signal = ITM_calculate_attenuation(tx_pos, freq, ground_to_air);
176 if ((signal > 0.0) && (signal < 12.0)) {
208double FGRadioTransmission::ITM_calculate_attenuation(SGGeod pos,
double freq,
int transmission_type) {
211 if((freq < 40.0) || (freq > 20000.0))
216 double eps_dielect=15.0;
217 double sgm_conductivity = 0.005;
219 double frq_mhz = freq;
221 int radio_climate = 5;
222 int pol= _polarization;
231 double clutter_loss = 0.0;
232 double tx_pow = _transmitter_power;
233 double ant_gain = _rx_antenna_gain + _tx_antenna_gain;
237 double link_budget = tx_pow - _receiver_sensitivity - _rx_line_losses - _tx_line_losses + ant_gain;
238 double signal_strength = tx_pow - _rx_line_losses - _tx_line_losses + ant_gain;
239 double tx_erp =
dbm_to_watt(tx_pow + _tx_antenna_gain - _tx_line_losses);
244 double own_lat =
fgGetDouble(
"/position/latitude-deg");
245 double own_lon =
fgGetDouble(
"/position/longitude-deg");
246 double own_alt_ft =
fgGetDouble(
"/position/altitude-ft");
247 double own_heading =
fgGetDouble(
"/orientation/heading-deg");
248 double own_alt= own_alt_ft * SG_FEET_TO_METER;
253 SGGeod own_pos = SGGeod::fromDegM( own_lon, own_lat, own_alt );
254 SGGeod max_own_pos = SGGeod::fromDegM( own_lon, own_lat, SG_MAX_ELEVATION_M );
255 SGGeoc center = SGGeoc::fromGeod( max_own_pos );
256 SGGeoc own_pos_c = SGGeoc::fromGeod( own_pos );
259 double sender_alt_ft,sender_alt;
260 double transmitter_height=0.0;
261 double receiver_height=0.0;
262 SGGeod sender_pos = pos;
264 sender_alt_ft = sender_pos.getElevationFt();
265 sender_alt = sender_alt_ft * SG_FEET_TO_METER;
266 SGGeod max_sender_pos = SGGeod::fromGeodM( pos, SG_MAX_ELEVATION_M );
267 SGGeoc sender_pos_c = SGGeoc::fromGeod( sender_pos );
270 double point_distance= _terrain_sampling_distance;
271 double course = SGGeodesy::courseRad(own_pos_c, sender_pos_c);
272 double reverse_course = SGGeodesy::courseRad(sender_pos_c, own_pos_c);
273 double distance_m = SGGeodesy::distanceM(own_pos, sender_pos);
274 double probe_distance = 0.0;
276 if (distance_m > 300000)
279 if (own_alt > 8000) {
280 dbloss = 20 * log10(distance_m) +20 * log10(frq_mhz) -27.55;
281 SG_LOG(SG_GENERAL, SG_BULK,
282 "ITM Free-space mode:: Link budget: " << link_budget <<
", Attenuation: " << dbloss <<
" dBm, free-space attenuation");
284 signal = link_budget - dbloss;
289 int max_points = (int)floor(distance_m / point_distance);
292 deque<double> elevations;
293 deque<string*> materials;
296 double elevation_under_pilot = 0.0;
297 if (scenery->
get_elevation_m( max_own_pos, elevation_under_pilot, NULL )) {
298 receiver_height = own_alt - elevation_under_pilot;
301 double elevation_under_sender = 0.0;
302 if (scenery->
get_elevation_m( max_sender_pos, elevation_under_sender, NULL )) {
303 transmitter_height = sender_alt - elevation_under_sender;
306 transmitter_height = sender_alt;
310 transmitter_height += _tx_antenna_height;
311 receiver_height += _rx_antenna_height;
314 _root_node->setDoubleValue(
"station[0]/rx-height", receiver_height);
315 _root_node->setDoubleValue(
"station[0]/tx-height", transmitter_height);
316 _root_node->setDoubleValue(
"station[0]/distance", distance_m / 1000);
318 unsigned int e_size = (deque<unsigned>::size_type)max_points;
320 while (elevations.size() <= e_size) {
321 probe_distance += point_distance;
322 SGGeod probe = SGGeod::fromGeoc(center.advanceRadM( course, probe_distance ));
323 const simgear::BVHMaterial *material = 0;
324 double elevation_m = 0.0;
327 const SGMaterial *mat;
328 mat =
dynamic_cast<const SGMaterial*
>(material);
329 if((transmission_type == 3) || (transmission_type == 4)) {
330 elevations.push_back(elevation_m);
332 const std::vector<string> mat_names = mat->get_names();
333 string*
name =
new string(mat_names[0]);
334 materials.push_back(
name);
337 string* no_material =
new string(
"None");
338 materials.push_back(no_material);
342 elevations.push_front(elevation_m);
344 const std::vector<string> mat_names = mat->get_names();
345 string*
name =
new string(mat_names[0]);
346 materials.push_front(
name);
349 string* no_material =
new string(
"None");
350 materials.push_front(no_material);
355 if((transmission_type == 3) || (transmission_type == 4)) {
356 elevations.push_back(0.0);
357 string* no_material =
new string(
"None");
358 materials.push_back(no_material);
361 string* no_material =
new string(
"None");
362 elevations.push_front(0.0);
363 materials.push_front(no_material);
367 if((transmission_type == 3) || (transmission_type == 4)) {
368 elevations.push_front(elevation_under_pilot);
370 elevations.push_back(elevation_under_sender);
373 elevations.push_back(elevation_under_pilot);
375 elevations.push_front(elevation_under_sender);
379 double num_points= (double)elevations.size();
382 elevations.push_front(point_distance);
383 elevations.push_front(num_points -1);
385 int size = elevations.size();
386 std::vector<double> itm_elev(size);
388 for(
int i=0;
i<size;
i++) {
389 itm_elev[
i]=elevations[
i];
392 if((transmission_type == 3) || (transmission_type == 4)) {
394 ITM::point_to_point(itm_elev.data(), receiver_height, transmitter_height,
395 eps_dielect, sgm_conductivity, eno, frq_mhz, radio_climate,
396 pol, conf, rel, dbloss, strmode, p_mode, horizons, errnum);
397 if( _root_node->getBoolValue(
"use-clutter-attenuation",
false ) )
398 calculate_clutter_loss(frq_mhz, itm_elev.data(), materials, receiver_height, transmitter_height, p_mode, horizons, clutter_loss);
401 ITM::point_to_point(itm_elev.data(), transmitter_height, receiver_height,
402 eps_dielect, sgm_conductivity, eno, frq_mhz, radio_climate,
403 pol, conf, rel, dbloss, strmode, p_mode, horizons, errnum);
404 if( _root_node->getBoolValue(
"use-clutter-attenuation",
false ) )
405 calculate_clutter_loss(frq_mhz, itm_elev.data(), materials, transmitter_height, receiver_height, p_mode, horizons, clutter_loss);
408 double pol_loss = 0.0;
410 if (_polarization == 1) {
411 pol_loss = polarization_loss();
416 _root_node->setDoubleValue(
"station[0]/link-budget", link_budget);
417 _root_node->setDoubleValue(
"station[0]/terrain-attenuation", dbloss);
418 _root_node->setStringValue(
"station[0]/prop-mode", strmode);
419 _root_node->setDoubleValue(
"station[0]/clutter-attenuation", clutter_loss);
420 _root_node->setDoubleValue(
"station[0]/polarization-attenuation", pol_loss);
425 double tx_pattern_gain = 0.0;
426 double rx_pattern_gain = 0.0;
427 double sender_heading = 270.0;
428 double tx_antenna_bearing = sender_heading - reverse_course * SGD_RADIANS_TO_DEGREES;
429 double rx_antenna_bearing = own_heading - course * SGD_RADIANS_TO_DEGREES;
430 double rx_elev_angle = atan((itm_elev[2] + transmitter_height - itm_elev[(
int)itm_elev[0] + 2] + receiver_height) / distance_m) * SGD_RADIANS_TO_DEGREES;
431 double tx_elev_angle = 0.0 - rx_elev_angle;
432 if (_root_node->getBoolValue(
"use-tx-antenna-pattern",
false)) {
433 FGRadioAntenna* TX_antenna;
434 TX_antenna =
new FGRadioAntenna(
"Plot2");
437 tx_pattern_gain = TX_antenna->
calculate_gain(tx_antenna_bearing, tx_elev_angle);
440 if (_root_node->getBoolValue(
"use-rx-antenna-pattern",
false)) {
441 FGRadioAntenna* RX_antenna;
442 RX_antenna =
new FGRadioAntenna(
"Plot2");
445 rx_pattern_gain = RX_antenna->
calculate_gain(rx_antenna_bearing, rx_elev_angle);
449 signal = link_budget - dbloss - clutter_loss + pol_loss + rx_pattern_gain + tx_pattern_gain;
450 double signal_strength_dbm = signal_strength - dbloss - clutter_loss + pol_loss + rx_pattern_gain + tx_pattern_gain;
452 _root_node->setDoubleValue(
"station[0]/signal-dbm", signal_strength_dbm);
453 _root_node->setDoubleValue(
"station[0]/field-strength-uV", field_strength_uV);
454 _root_node->setDoubleValue(
"station[0]/signal", signal);
455 _root_node->setDoubleValue(
"station[0]/tx-erp", tx_erp);
460 for (
unsigned i =0;
i < materials.size();
i++) {
469void FGRadioTransmission::calculate_clutter_loss(
double freq,
double itm_elev[], deque<string*> &materials,
470 double transmitter_height,
double receiver_height,
int p_mode,
471 double horizons[],
double &clutter_loss) {
473 double distance_m = itm_elev[0] * itm_elev[1];
474 unsigned mat_size = materials.size();
478 for (
int k=3;k < (int)(itm_elev[0]) + 2;k++) {
480 double clutter_height = 0.0;
481 double clutter_density = 0.0;
482 if((
unsigned)mat >= mat_size) {
486 get_material_properties(materials[mat], clutter_height, clutter_density);
488 double grad = fabs(itm_elev[2] + transmitter_height - itm_elev[(
int)itm_elev[0] + 2] + receiver_height) / distance_m;
490 double frs_rad = 548 * sqrt( (j * itm_elev[1] * (itm_elev[0] - j) * itm_elev[1] / 1000000) / ( distance_m * freq / 1000) );
491 if (frs_rad <= 0.0) {
497 double min_elev = SGMiscd::min(itm_elev[2] + transmitter_height, itm_elev[(
int)itm_elev[0] + 2] + receiver_height);
498 double d1 = j * itm_elev[1];
499 if ((itm_elev[2] + transmitter_height) > ( itm_elev[(
int)itm_elev[0] + 2] + receiver_height) ) {
500 d1 = (itm_elev[0] - j) * itm_elev[1];
502 double ray_height = (grad * d1) + min_elev;
504 double clearance = ray_height - (itm_elev[k] + clutter_height) - frs_rad * 8/10;
505 double intrusion = fabs(clearance);
507 if (clearance >= 0) {
510 else if (clearance < 0 && (intrusion < clutter_height)) {
512 clutter_loss += clutter_density * (intrusion / (frs_rad * 2) ) * (freq/100) * (itm_elev[1]/100);
514 else if (clearance < 0 && (intrusion > clutter_height)) {
515 clutter_loss += clutter_density * (clutter_height / (frs_rad * 2 ) ) * (freq/100) * (itm_elev[1]/100);
525 else if (p_mode == 1) {
527 if (horizons[1] == 0.0) {
528 int num_points_1st = (int)floor( horizons[0] * itm_elev[0]/ distance_m );
529 int num_points_2nd = (int)ceil( (distance_m - horizons[0]) * itm_elev[0] / distance_m );
535 for (
int k=3;k < num_points_1st + 2;k++) {
536 if (num_points_1st < 1)
538 double clutter_height = 0.0;
539 double clutter_density = 0.0;
541 if((
unsigned)mat >= mat_size) {
545 get_material_properties(materials[mat], clutter_height, clutter_density);
547 double grad = fabs(itm_elev[2] + transmitter_height - itm_elev[num_points_1st + 2] + clutter_height) / distance_m;
549 double frs_rad = 548 * sqrt( (j * itm_elev[1] * (num_points_1st - j) * itm_elev[1] / 1000000) / ( num_points_1st * itm_elev[1] * freq / 1000) );
550 if (frs_rad <= 0.0) {
556 double min_elev = SGMiscd::min(itm_elev[2] + transmitter_height, itm_elev[num_points_1st + 2] + clutter_height);
557 double d1 = j * itm_elev[1];
558 if ( (itm_elev[2] + transmitter_height) > (itm_elev[num_points_1st + 2] + clutter_height) ) {
559 d1 = (num_points_1st - j) * itm_elev[1];
561 double ray_height = (grad * d1) + min_elev;
563 double clearance = ray_height - (itm_elev[k] + clutter_height) - frs_rad * 8/10;
564 double intrusion = fabs(clearance);
566 if (clearance >= 0) {
569 else if (clearance < 0 && (intrusion < clutter_height)) {
571 clutter_loss += clutter_density * (intrusion / (frs_rad * 2) ) * (freq/100) * (itm_elev[1]/100);
573 else if (clearance < 0 && (intrusion > clutter_height)) {
574 clutter_loss += clutter_density * (clutter_height / (frs_rad * 2 ) ) * (freq/100) * (itm_elev[1]/100);
587 for (
int k=last+2;k < (int)(itm_elev[0]) + 2;k++) {
588 if (num_points_2nd < 1)
590 double clutter_height = 0.0;
591 double clutter_density = 0.0;
593 if((
unsigned)mat >= mat_size) {
597 get_material_properties(materials[mat], clutter_height, clutter_density);
599 double grad = fabs(itm_elev[last+1] + clutter_height - itm_elev[(
int)itm_elev[0] + 2] + receiver_height) / distance_m;
601 double frs_rad = 548 * sqrt( (j * itm_elev[1] * (num_points_2nd - j) * itm_elev[1] / 1000000) / ( num_points_2nd * itm_elev[1] * freq / 1000) );
602 if (frs_rad <= 0.0) {
608 double min_elev = SGMiscd::min(itm_elev[last+1] + clutter_height, itm_elev[(
int)itm_elev[0] + 2] + receiver_height);
609 double d1 = j * itm_elev[1];
610 if ( (itm_elev[last+1] + clutter_height) > (itm_elev[(
int)itm_elev[0] + 2] + receiver_height) ) {
611 d1 = (num_points_2nd - j) * itm_elev[1];
613 double ray_height = (grad * d1) + min_elev;
615 double clearance = ray_height - (itm_elev[k] + clutter_height) - frs_rad * 8/10;
616 double intrusion = fabs(clearance);
618 if (clearance >= 0) {
621 else if (clearance < 0 && (intrusion < clutter_height)) {
623 clutter_loss += clutter_density * (intrusion / (frs_rad * 2) ) * (freq/100) * (itm_elev[1]/100);
625 else if (clearance < 0 && (intrusion > clutter_height)) {
626 clutter_loss += clutter_density * (clutter_height / (frs_rad * 2 ) ) * (freq/100) * (itm_elev[1]/100);
638 int num_points_1st = (int)floor( horizons[0] * itm_elev[0] / distance_m );
639 int num_points_2nd = (int)floor(horizons[1] * itm_elev[0] / distance_m );
640 int num_points_3rd = (int)itm_elev[0] - num_points_1st - num_points_2nd;
647 for (
int k=3;k < num_points_1st +2;k++) {
648 if (num_points_1st < 1)
650 double clutter_height = 0.0;
651 double clutter_density = 0.0;
652 if((
unsigned)mat >= mat_size) {
656 get_material_properties(materials[mat], clutter_height, clutter_density);
658 double grad = fabs(itm_elev[2] + transmitter_height - itm_elev[num_points_1st + 2] + clutter_height) / distance_m;
660 double frs_rad = 548 * sqrt( (j * itm_elev[1] * (num_points_1st - j) * itm_elev[1] / 1000000) / ( num_points_1st * itm_elev[1] * freq / 1000) );
661 if (frs_rad <= 0.0) {
667 double min_elev = SGMiscd::min(itm_elev[2] + transmitter_height, itm_elev[num_points_1st + 2] + clutter_height);
668 double d1 = j * itm_elev[1];
669 if ( (itm_elev[2] + transmitter_height) > (itm_elev[num_points_1st + 2] + clutter_height) ) {
670 d1 = (num_points_1st - j) * itm_elev[1];
672 double ray_height = (grad * d1) + min_elev;
674 double clearance = ray_height - (itm_elev[k] + clutter_height) - frs_rad * 8/10;
675 double intrusion = fabs(clearance);
677 if (clearance >= 0) {
680 else if (clearance < 0 && (intrusion < clutter_height)) {
682 clutter_loss += clutter_density * (intrusion / (frs_rad * 2) ) * (freq/100) * (itm_elev[1]/100);
684 else if (clearance < 0 && (intrusion > clutter_height)) {
685 clutter_loss += clutter_density * (clutter_height / (frs_rad * 2 ) ) * (freq/100) * (itm_elev[1]/100);
698 for (
int k=last+2;k < num_points_1st + num_points_2nd +2;k++) {
699 if (num_points_2nd < 1)
701 double clutter_height = 0.0;
702 double clutter_density = 0.0;
703 if((
unsigned)mat >= mat_size) {
707 get_material_properties(materials[mat], clutter_height, clutter_density);
709 double grad = fabs(itm_elev[last+1] + clutter_height - itm_elev[num_points_1st + num_points_2nd + 2] + clutter_height) / distance_m;
711 double frs_rad = 548 * sqrt( (j * itm_elev[1] * (num_points_2nd - j) * itm_elev[1] / 1000000) / ( num_points_2nd * itm_elev[1] * freq / 1000) );
712 if (frs_rad <= 0.0) {
718 double min_elev = SGMiscd::min(itm_elev[last+1] + clutter_height, itm_elev[num_points_1st + num_points_2nd +2] + clutter_height);
719 double d1 = j * itm_elev[1];
720 if ( (itm_elev[last+1] + clutter_height) > (itm_elev[num_points_1st + num_points_2nd + 2] + clutter_height) ) {
721 d1 = (num_points_2nd - j) * itm_elev[1];
723 double ray_height = (grad * d1) + min_elev;
725 double clearance = ray_height - (itm_elev[k] + clutter_height) - frs_rad * 8/10;
726 double intrusion = fabs(clearance);
728 if (clearance >= 0) {
731 else if (clearance < 0 && (intrusion < clutter_height)) {
733 clutter_loss += clutter_density * (intrusion / (frs_rad * 2) ) * (freq/100) * (itm_elev[1]/100);
735 else if (clearance < 0 && (intrusion > clutter_height)) {
736 clutter_loss += clutter_density * (clutter_height / (frs_rad * 2 ) ) * (freq/100) * (itm_elev[1]/100);
749 for (
int k=last2+2;k < (int)itm_elev[0] + 2;k++) {
750 if (num_points_3rd < 1)
752 double clutter_height = 0.0;
753 double clutter_density = 0.0;
754 if((
unsigned)mat >= mat_size) {
758 get_material_properties(materials[mat], clutter_height, clutter_density);
760 double grad = fabs(itm_elev[last2+1] + clutter_height - itm_elev[(
int)itm_elev[0] + 2] + receiver_height) / distance_m;
762 double frs_rad = 548 * sqrt( (j * itm_elev[1] * (num_points_3rd - j) * itm_elev[1] / 1000000) / ( num_points_3rd * itm_elev[1] * freq / 1000) );
763 if (frs_rad <= 0.0) {
770 double min_elev = SGMiscd::min(itm_elev[last2+1] + clutter_height, itm_elev[(
int)itm_elev[0] + 2] + receiver_height);
771 double d1 = j * itm_elev[1];
772 if ( (itm_elev[last2+1] + clutter_height) > (itm_elev[(
int)itm_elev[0] + 2] + receiver_height) ) {
773 d1 = (num_points_3rd - j) * itm_elev[1];
775 double ray_height = (grad * d1) + min_elev;
777 double clearance = ray_height - (itm_elev[k] + clutter_height) - frs_rad * 8/10;
778 double intrusion = fabs(clearance);
780 if (clearance >= 0) {
783 else if (clearance < 0 && (intrusion < clutter_height)) {
785 clutter_loss += clutter_density * (intrusion / (frs_rad * 2) ) * (freq/100) * (itm_elev[1]/100);
787 else if (clearance < 0 && (intrusion > clutter_height)) {
788 clutter_loss += clutter_density * (clutter_height / (frs_rad * 2 ) ) * (freq/100) * (itm_elev[1]/100);
800 else if (p_mode == 2) {
807void FGRadioTransmission::get_material_properties(
string* mat_name,
double &height,
double &density) {
812 if(*mat_name ==
"Landmass") {
817 else if(*mat_name ==
"SomeSort") {
822 else if(*mat_name ==
"Island") {
826 else if(*mat_name ==
"Default") {
830 else if(*mat_name ==
"EvergreenBroadCover") {
834 else if(*mat_name ==
"EvergreenForest") {
838 else if(*mat_name ==
"DeciduousBroadCover") {
842 else if(*mat_name ==
"DeciduousForest") {
846 else if(*mat_name ==
"MixedForestCover") {
850 else if(*mat_name ==
"MixedForest") {
854 else if(*mat_name ==
"RainForest") {
858 else if(*mat_name ==
"EvergreenNeedleCover") {
862 else if(*mat_name ==
"WoodedTundraCover") {
866 else if(*mat_name ==
"DeciduousNeedleCover") {
870 else if(*mat_name ==
"ScrubCover") {
874 else if(*mat_name ==
"BuiltUpCover") {
878 else if(*mat_name ==
"Urban") {
882 else if(*mat_name ==
"Construction") {
886 else if(*mat_name ==
"Industrial") {
890 else if(*mat_name ==
"Port") {
894 else if(*mat_name ==
"Town") {
898 else if(*mat_name ==
"SubUrban") {
902 else if(*mat_name ==
"CropWoodCover") {
906 else if(*mat_name ==
"CropWood") {
910 else if(*mat_name ==
"AgroForest") {
922double FGRadioTransmission::LOS_calculate_attenuation(SGGeod pos,
double freq,
int transmission_type) {
924 double frq_mhz = freq;
926 double tx_pow = _transmitter_power;
927 double ant_gain = _rx_antenna_gain + _tx_antenna_gain;
930 double sender_alt_ft,sender_alt;
931 double transmitter_height=0.0;
932 double receiver_height=0.0;
933 double own_lat =
fgGetDouble(
"/position/latitude-deg");
934 double own_lon =
fgGetDouble(
"/position/longitude-deg");
935 double own_alt_ft =
fgGetDouble(
"/position/altitude-ft");
936 double own_alt= own_alt_ft * SG_FEET_TO_METER;
939 double link_budget = tx_pow - _receiver_sensitivity - _rx_line_losses - _tx_line_losses + ant_gain;
943 SGGeod own_pos = SGGeod::fromDegM( own_lon, own_lat, own_alt );
945 SGGeod sender_pos = pos;
947 sender_alt_ft = sender_pos.getElevationFt();
948 sender_alt = sender_alt_ft * SG_FEET_TO_METER;
950 receiver_height = own_alt;
951 transmitter_height = sender_alt;
953 double distance_m = SGGeodesy::distanceM(own_pos, sender_pos);
956 transmitter_height += _tx_antenna_height;
957 receiver_height += _rx_antenna_height;
961 double receiver_horizon = 4.12 * sqrt(receiver_height);
962 double transmitter_horizon = 4.12 * sqrt(transmitter_height);
963 double total_horizon = receiver_horizon + transmitter_horizon;
965 if (distance_m > total_horizon) {
968 double pol_loss = 0.0;
969 if (_polarization == 1) {
970 pol_loss = polarization_loss();
973 dbloss = 20 * log10(distance_m) +20 * log10(frq_mhz) -27.55;
974 signal = link_budget - dbloss + pol_loss;
985double FGRadioTransmission::polarization_loss() {
988 double roll =
fgGetDouble(
"/orientation/roll-deg");
989 if (fabs(roll) > 85.0)
991 double pitch =
fgGetDouble(
"/orientation/pitch-deg");
992 if (fabs(pitch) > 85.0)
994 double theta = fabs( atan( sqrt(
995 pow(tan(roll * SGD_DEGREES_TO_RADIANS), 2) +
996 pow(tan(pitch * SGD_DEGREES_TO_RADIANS), 2) )) * SGD_RADIANS_TO_DEGREES);
998 if (_polarization == 0)
999 theta_deg = 90.0 - theta;
1002 if (theta_deg > 85.0)
1005 double loss = 10 * log10( pow(cos(theta_deg * SGD_DEGREES_TO_RADIANS), 2) );
1012 return 10 * log10(1000 * power_watt);
1016 return exp( (dbm-30) * log(10.0) / 10.0);
void set_elevation_angle(double elevation_angle_deg)
void set_heading(double heading_deg)
some convenience setters and getters (unused for now)
double calculate_gain(double bearing, double angle)
void receiveATC(SGGeod tx_pos, double freq, std::string text, int transmission_type)
double getFrequency(int radio)
double receiveNav(SGGeod tx_pos, double freq, int transmission_type)
static double dbm_to_watt(double dbm)
void receiveChat(SGGeod tx_pos, double freq, std::string text, int transmission_type)
double receiveBeacon(SGGeod &tx_pos, double heading, double pitch)
static double dbm_to_microvolt(double dbm)
static double watt_to_dbm(double power_watt)
static convenience functions for unit conversions
bool get_elevation_m(const SGGeod &geod, double &alt, const simgear::BVHMaterial **material, const osg::Node *butNotFrom=0)
Compute the elevation of the scenery at geodetic latitude lat, geodetic longitude lon and not higher ...
double fgGetDouble(const char *name, double defaultValue)
Get a double value for a property.
bool fgSetString(char const *name, char const *str)
Set a string value for a property.
SGPropertyNode * fgGetNode(const char *path, bool create)
Get a property node.