forked from ExternalVendorCode/Signal-Server
3.01 Image crop, SUI bugfix, txelev replaced
This commit is contained in:
2
common.h
2
common.h
@@ -106,6 +106,8 @@ extern __thread double *elev;
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extern double westoffset;
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extern double eastoffset;
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extern double delta;
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extern double cropLat;
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extern double cropLon;
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extern char string[];
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extern char sdf_path[];
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66
main.cc
66
main.cc
@@ -1,4 +1,4 @@
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double version = 3.00;
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double version = 3.01;
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/****************************************************************************\
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* Signal Server: Radio propagation simulator by Alex Farrant QCVS, 2E0TDW *
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******************************************************************************
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@@ -47,7 +47,8 @@ char string[255], sdf_path[255], udt_file[255], opened = 0, gpsav =
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double earthradius, max_range = 0.0, forced_erp, dpp, ppd, yppd,
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fzone_clearance = 0.6, forced_freq, clutter, lat, lon, txh, tercon, terdic,
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north, east, south, west, dBm, loss, field_strength,
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min_north = 90, max_north = -90, min_west = 360, max_west = -1, westoffset=180, eastoffset=-180, delta=0, rxGain=0;
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min_north = 90, max_north = -90, min_west = 360, max_west = -1, westoffset=180, eastoffset=-180, delta=0, rxGain=0,
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cropLat=-70, cropLon=0;
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int ippd, mpi,
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max_elevation = -32768, min_elevation = 32768, bzerror, contour_threshold,
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@@ -351,6 +352,23 @@ int AddElevation(double lat, double lon, double height, int size)
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return found;
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}
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double dist(double lat1, double lon1, double lat2, double lon2)
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{
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//ENHANCED HAVERSINE FORMULA WITH RADIUS SLIDER
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double dx, dy, dz;
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int polarRadius=6357;
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int equatorRadius=6378;
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int delta = equatorRadius-polarRadius; // 21km
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float earthRadius = equatorRadius - ((lat1/100) * delta);
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lon1 -= lon2;
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lon1 *= DEG2RAD, lat1 *= DEG2RAD, lat2 *= DEG2RAD;
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dz = sin(lat1) - sin(lat2);
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dx = cos(lon1) * cos(lat1) - cos(lat2);
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dy = sin(lon1) * cos(lat1);
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return asin(sqrt(dx * dx + dy * dy + dz * dz) / 2) * 2 * earthRadius;
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}
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double Distance(struct site site1, struct site site2)
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{
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/* This function returns the great circle distance
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@@ -1024,7 +1042,7 @@ int main(int argc, char *argv[])
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int x, y, z = 0, min_lat, min_lon, max_lat, max_lon,
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rxlat, rxlon, txlat, txlon, west_min, west_max,
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nortRxHin, nortRxHax, propmodel, knifeedge = 0, ppa =
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0, normalise = 0, haf = 0, pmenv = 1, lidar=0;
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0, normalise = 0, haf = 0, pmenv = 1, lidar=0, cropped;
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bool use_threads = true;
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@@ -1799,18 +1817,25 @@ int main(int argc, char *argv[])
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hottest=9; // 9dB nearfield
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// nearfield bugfix
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for (lat = tx_site[0].lat - 0.001;
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lat <= tx_site[0].lat + 0.001;
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lat = lat + 0.0001) {
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for (lon = tx_site[0].lon - 0.001;
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lon <= tx_site[0].lon + 0.001;
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lon = lon + 0.0001) {
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for (lat = tx_site[0].lat - 0.0005;
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lat <= tx_site[0].lat + 0.0005;
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lat = lat + 0.0005) {
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for (lon = tx_site[0].lon - 0.0005;
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lon <= tx_site[0].lon + 0.0005;
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lon = lon + 0.0005) {
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PutSignal(lat, lon, hottest);
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}
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}
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}
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// CROPPING. croplat assigned in propPathLoss()
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max_north=cropLat; // MAX(path.lat[y])
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max_west=cropLon; // MAX(path.lon[y])
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cropLat-=tx_site[0].lat; // angle from tx to edge
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cropLon-=tx_site[0].lon;
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width=(int)((cropLon*ppd)*2);
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height=(int)((cropLat*ppd)*2);
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// Write bitmap
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if (LR.erp == 0.0)
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DoPathLoss(mapfile, geo, kml, ngs, tx_site,
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@@ -1827,13 +1852,28 @@ int main(int argc, char *argv[])
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west=westoffset;
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}
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// Print WGS84 bounds
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fprintf(stderr, "|%.6f", north);
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if (tx_site[0].lon > 0.0){
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tx_site[0].lon *= -1;
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}
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if (tx_site[0].lon < -180.0){
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tx_site[0].lon += 360;
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}
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if (propmodel == 2) {
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// No croppping because this is LOS
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fprintf(stderr, "|%.6f", max_north);
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fprintf(stderr, "|%.6f", east);
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fprintf(stderr, "|%.6f", south);
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fprintf(stderr, "|%.6f", min_north);
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fprintf(stderr, "|%.6f|",west);
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}else{
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// Cropped EPSG4326 coordinates
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fprintf(stderr, "|%.6f", tx_site[0].lat+cropLat);
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fprintf(stderr, "|%.6f", tx_site[0].lon+cropLon);
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fprintf(stderr, "|%.6f", tx_site[0].lat-cropLat);
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fprintf(stderr, "|%.6f|",tx_site[0].lon-cropLon);
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}
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fprintf(stderr, "\n");
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} else {
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strncpy(tx_site[0].name, "Tx", 3);
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strncpy(tx_site[1].name, "Rx", 3);
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@@ -304,7 +304,7 @@ void PlotPropPath(struct site source, struct site destination,
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xmtr_alt, dest_alt, xmtr_alt2, dest_alt2,
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cos_rcvr_angle, cos_test_angle = 0.0, test_alt,
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elevation = 0.0, distance = 0.0, four_thirds_earth,
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field_strength = 0.0, rxp, dBm, txelev, dkm, diffloss;
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field_strength = 0.0, rxp, dBm, dkm, diffloss;
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struct site temp;
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ReadPath(source, destination);
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@@ -323,7 +323,6 @@ void PlotPropPath(struct site source, struct site destination,
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/* Copy ending points without clutter */
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elev[2] = path.elevation[0] * METERS_PER_FOOT;
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txelev = elev[2] + (source.alt * METERS_PER_FOOT);
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elev[path.length + 1] =
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path.elevation[path.length - 1] * METERS_PER_FOOT;
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@@ -446,6 +445,8 @@ void PlotPropPath(struct site source, struct site destination,
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dkm = (elev[1] * elev[0]) / 1000; // km
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switch (propmodel) {
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case 1:
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// Longley Rice ITM
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@@ -462,16 +463,15 @@ void PlotPropPath(struct site source, struct site destination,
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case 3:
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//HATA 1, 2 & 3
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loss =
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HATApathLoss(LR.frq_mhz, txelev,
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path.elevation[y] +
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(destination.alt *
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METERS_PER_FOOT), dkm, pmenv);
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HATApathLoss(LR.frq_mhz, source.alt * METERS_PER_FOOT,
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(path.elevation[y] * METERS_PER_FOOT) + (destination.alt * METERS_PER_FOOT), dkm, pmenv);
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break;
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case 4:
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// ECC33
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loss =
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ECC33pathLoss(LR.frq_mhz, txelev,
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path.elevation[y] +
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ECC33pathLoss(LR.frq_mhz, source.alt * METERS_PER_FOOT,
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(path.elevation[y] *
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METERS_PER_FOOT) +
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(destination.alt *
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METERS_PER_FOOT), dkm,
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pmenv);
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@@ -479,16 +479,18 @@ void PlotPropPath(struct site source, struct site destination,
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case 5:
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// SUI
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loss =
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SUIpathLoss(LR.frq_mhz, txelev,
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path.elevation[y] +
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SUIpathLoss(LR.frq_mhz, source.alt * METERS_PER_FOOT,
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(path.elevation[y] *
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METERS_PER_FOOT) +
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(destination.alt *
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METERS_PER_FOOT), dkm, pmenv);
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break;
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case 6:
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// COST231-Hata
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loss =
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COST231pathLoss(LR.frq_mhz, txelev,
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path.elevation[y] +
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COST231pathLoss(LR.frq_mhz, source.alt * METERS_PER_FOOT,
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(path.elevation[y] *
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METERS_PER_FOOT) +
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(destination.alt *
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METERS_PER_FOOT), dkm,
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pmenv);
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@@ -512,8 +514,9 @@ void PlotPropPath(struct site source, struct site destination,
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case 9:
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// Ericsson
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loss =
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EricssonpathLoss(LR.frq_mhz, txelev,
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path.elevation[y] +
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EricssonpathLoss(LR.frq_mhz, source.alt * METERS_PER_FOOT,
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(path.elevation[y] *
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METERS_PER_FOOT) +
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(destination.alt *
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METERS_PER_FOOT), dkm,
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pmenv);
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@@ -521,7 +524,7 @@ void PlotPropPath(struct site source, struct site destination,
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case 10:
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// Plane earth
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loss = PlaneEarthLoss(dkm, txelev, path.elevation[y] + (destination.alt * METERS_PER_FOOT));
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loss = PlaneEarthLoss(dkm, source.alt * METERS_PER_FOOT, (path.elevation[y] * METERS_PER_FOOT) + (destination.alt * METERS_PER_FOOT));
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break;
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default:
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@@ -537,6 +540,7 @@ void PlotPropPath(struct site source, struct site destination,
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}
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if (knifeedge == 1) {
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diffloss =
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ked(LR.frq_mhz,
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@@ -677,6 +681,11 @@ void PlotPropPath(struct site source, struct site destination,
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}
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}
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if(path.lat[y]>cropLat)
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cropLat=path.lat[y];
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if(path.lon[y]>cropLon)
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cropLon=path.lon[y];
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}
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void PlotLOSMap(struct site source, double altitude, char *plo_filename,
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@@ -9,9 +9,9 @@ double SUIpathLoss(float f, float TxH, float RxH, float d, int mode)
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TxH = Transmitter height (m)
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RxH = Receiver height (m)
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d = distance (km)
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mode 1 = Hilly + trees
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mode 2 = Flat + trees OR hilly + light foliage
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mode 3 = Flat + light foliage
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mode A1 = Hilly + trees
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mode B2 = Flat + trees OR hilly + light foliage
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mode C3 = Flat + light foliage
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http://www.cl.cam.ac.uk/research/dtg/lce-pub/public/vsa23/VTC05_Empirical.pdf
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*/
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d = d * 1000; // km to m
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@@ -45,5 +45,5 @@ double SUIpathLoss(float f, float TxH, float RxH, float d, int mode)
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double Xf = 6 * log10(f / 2000);
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double Xh = XhCF * log10(RxH / 2000);
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return A + (10 * y) * (log10(d / d0)) + Xf + Xh + s;
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return A + (10 * y * log10(d / d0)) + Xf + Xh + s;
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}
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