271 lines
9.3 KiB
C++
271 lines
9.3 KiB
C++
// ATCutils.cxx - Utility functions for the ATC / AI system
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//
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// Written by David Luff, started March 2002.
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//
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// Copyright (C) 2002 David C Luff - david.luff@nottingham.ac.uk
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//
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// This program is free software; you can redistribute it and/or
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// modify it under the terms of the GNU General Public License as
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// published by the Free Software Foundation; either version 2 of the
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// License, or (at your option) any later version.
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//
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// This program is distributed in the hope that it will be useful, but
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// WITHOUT ANY WARRANTY; without even the implied warranty of
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// MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the GNU
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// General Public License for more details.
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//
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// You should have received a copy of the GNU General Public License
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// along with this program; if not, write to the Free Software
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// Foundation, Inc., 51 Franklin Street, Fifth Floor, Boston, MA 02110-1301, USA.
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#ifdef HAVE_CONFIG_H
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# include <config.h>
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#endif
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#include <sstream>
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#include <simgear/math/SGMath.hxx>
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#include <simgear/constants.h>
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#include <simgear/misc/sg_path.hxx>
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#include <simgear/debug/logstream.hxx>
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#include <Airports/runways.hxx>
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#include <Main/globals.hxx>
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#include "ATCutils.hxx"
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#include "ATCProjection.hxx"
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static const string nums[10] = {"zero", "one", "two", "three", "four",
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"five", "six", "seven", "eight", "niner"};
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static const string letters[LTRS] = {
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"alpha", "bravo", "charlie", "delta", "echo",
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"foxtrot", "golf", "hotel", "india", "juliet",
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"kilo", "lima", "mike", "november", "oscar",
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"papa", "quebec", "romeo", "sierra", "tango",
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"uniform", "victor", "whiskey", "xray", "yankee", "zulu"
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};
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// Convert any number to spoken digits
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string ConvertNumToSpokenDigits(const string &n) {
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//cout << "n = " << n << endl;
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static const string pt = "decimal";
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string str = "";
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for(unsigned int i=0; i<n.length(); ++i) {
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//cout << "n.substr(" << i << ",1 = " << n.substr(i,1) << endl;
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if(n.substr(i,1) == " ") {
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// do nothing
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} else if(n.substr(i,1) == ".") {
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str += pt;
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} else {
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str += nums[atoi((n.substr(i,1)).c_str())];
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}
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if(i != (n.length()-1)) { // ie. don't add a space at the end.
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str += " ";
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}
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}
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return(str);
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}
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// Convert an integer to a decimal numeral string
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string decimalNumeral(const int& n) {
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std::ostringstream buf;
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buf << n;
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return buf.str();
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}
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// Convert an integer to spoken digits
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string ConvertNumToSpokenDigits(const int& n) {
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return ConvertNumToSpokenDigits(decimalNumeral(n));
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}
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// Assumes we get a string of digits optionally appended with L, R or C
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// eg 1 7L 29R 36
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// Anything else is not guaranteed to be handled correctly!
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string ConvertRwyNumToSpokenString(const string &rwy) {
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string rslt;
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for (size_t ii = 0; ii < rwy.length(); ii++){
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if (rslt.length()) rslt += " ";
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string ch = rwy.substr(ii,1);
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if (isdigit(ch[0])) rslt += ConvertNumToSpokenDigits(atoi(ch.c_str()));
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else if (ch == "R") rslt += "right";
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else if (ch == "C") rslt += "center";
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else if (ch == "L") rslt += "left";
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else {
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rslt += GetPhoneticLetter(ch[0]);
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SG_LOG(SG_ATC, SG_WARN, "WARNING: Unknown suffix '" << ch
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<< "' in runway " << rwy << " in ConvertRwyNumToSpokenString(...)");
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}
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}
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return rslt;
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}
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// Return the phonetic letter of a letter represented as an integer 1->26
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string GetPhoneticLetter(const int i) {
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return(letters[i % LTRS]);
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}
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// Return the phonetic letter of a character in the range a-z or A-Z.
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// Currently always returns prefixed by lowercase.
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string GetPhoneticLetter(const char c) {
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return GetPhoneticLetter(int(tolower(c) - 'a'));
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}
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// Get the compass direction associated with a heading in degrees
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// Currently returns 8 direction resolution (N, NE, E etc...)
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// Might be modified in future to return 4, 8 or 16 resolution but defaulting to 8.
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string GetCompassDirection(double h) {
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while(h < 0.0) h += 360.0;
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while(h > 360.0) h -= 360.0;
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if(h < 22.5 || h > 337.5) {
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return("North");
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} else if(h < 67.5) {
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return("North-East");
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} else if(h < 112.5) {
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return("East");
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} else if(h < 157.5) {
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return("South-East");
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} else if(h < 202.5) {
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return("South");
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} else if(h < 247.5) {
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return("South-West");
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} else if(h < 292.5) {
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return("West");
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} else {
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return("North-West");
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}
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}
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//================================================================================================================
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// Given two positions (lat & lon in degrees), get the HORIZONTAL separation (in meters)
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double dclGetHorizontalSeparation(const SGGeod& pos1, const SGGeod& pos2) {
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double x; //East-West separation
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double y; //North-South separation
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double z; //Horizontal separation - z = sqrt(x^2 + y^2)
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double lat1 = pos1.getLatitudeRad();
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double lon1 = pos1.getLongitudeRad();
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double lat2 = pos2.getLatitudeRad();
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double lon2 = pos2.getLongitudeRad();
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y = sin(fabs(lat1 - lat2)) * SG_EQUATORIAL_RADIUS_M;
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x = sin(fabs(lon1 - lon2)) * SG_EQUATORIAL_RADIUS_M * (cos((lat1 + lat2) / 2.0));
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z = sqrt(x*x + y*y);
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return(z);
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}
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// Given a point and a line, get the HORIZONTAL shortest distance from the point to a point on the line.
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// Expects to be fed orthogonal co-ordinates, NOT lat & lon !
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// The units of the separation will be those of the input.
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double dclGetLinePointSeparation(double px, double py, double x1, double y1, double x2, double y2) {
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double vecx = x2-x1;
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double vecy = y2-y1;
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double magline = sqrt(vecx*vecx + vecy*vecy);
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double u = ((px-x1)*(x2-x1) + (py-y1)*(y2-y1)) / (magline * magline);
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double x0 = x1 + u*(x2-x1);
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double y0 = y1 + u*(y2-y1);
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vecx = px - x0;
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vecy = py - y0;
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double d = sqrt(vecx*vecx + vecy*vecy);
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if(d < 0) {
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d *= -1;
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}
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return(d);
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}
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// Given a position (lat/lon/elev), heading and vertical angle (degrees), and distance (meters), calculate the new position.
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// This function assumes the world is spherical. If geodetic accuracy is required use the functions is sg_geodesy instead!
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// Assumes that the ground is not hit!!! Expects heading and angle in degrees, distance in meters.
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SGGeod dclUpdatePosition(const SGGeod& pos, double heading, double angle, double distance) {
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// FIXME: use SGGeodesy instead ...
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//cout << setprecision(10) << pos.lon() << ' ' << pos.lat() << '\n';
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heading *= DCL_DEGREES_TO_RADIANS;
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angle *= DCL_DEGREES_TO_RADIANS;
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double lat = pos.getLatitudeRad();
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double lon = pos.getLongitudeRad();
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double elev = pos.getElevationM();
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//cout << setprecision(10) << lon*DCL_RADIANS_TO_DEGREES << ' ' << lat*DCL_RADIANS_TO_DEGREES << '\n';
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double horiz_dist = distance * cos(angle);
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double vert_dist = distance * sin(angle);
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double north_dist = horiz_dist * cos(heading);
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double east_dist = horiz_dist * sin(heading);
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//cout << distance << ' ' << horiz_dist << ' ' << vert_dist << ' ' << north_dist << ' ' << east_dist << '\n';
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double delta_lat = asin(north_dist / (double)SG_EQUATORIAL_RADIUS_M);
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double delta_lon = asin(east_dist / (double)SG_EQUATORIAL_RADIUS_M) * (1.0 / cos(lat)); // I suppose really we should use the average of the original and new lat but we'll assume that this will be good enough.
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//cout << delta_lon*DCL_RADIANS_TO_DEGREES << ' ' << delta_lat*DCL_RADIANS_TO_DEGREES << '\n';
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lat += delta_lat;
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lon += delta_lon;
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elev += vert_dist;
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//cout << setprecision(10) << lon*DCL_RADIANS_TO_DEGREES << ' ' << lat*DCL_RADIANS_TO_DEGREES << '\n';
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//cout << setprecision(15) << DCL_DEGREES_TO_RADIANS * DCL_RADIANS_TO_DEGREES << '\n';
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return SGGeod::fromRadM(lon, lat, elev);
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}
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// Get a heading in degrees from one lat/lon to another.
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// This function assumes the world is spherical. If geodetic accuracy is required use the functions is sg_geodesy instead!
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// Warning - at the moment we are not checking for identical points - currently it returns 0 in this instance.
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double GetHeadingFromTo(const SGGeod& A, const SGGeod& B) {
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double latA = A.getLatitudeRad();
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double lonA = A.getLongitudeRad();
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double latB = B.getLatitudeRad();
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double lonB = B.getLongitudeRad();
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double xdist = sin(lonB - lonA) * (double)SG_EQUATORIAL_RADIUS_M * cos((latA+latB)/2.0);
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double ydist = sin(latB - latA) * (double)SG_EQUATORIAL_RADIUS_M;
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double heading = atan2(xdist, ydist) * DCL_RADIANS_TO_DEGREES;
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return heading < 0.0 ? heading + 360 : heading;
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}
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// Given a heading (in degrees), bound it from 0 -> 360
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void dclBoundHeading(double &hdg) {
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while(hdg < 0.0) {
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hdg += 360.0;
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}
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while(hdg > 360.0) {
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hdg -= 360.0;
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}
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}
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// smallest difference between two angles in degrees
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// difference is negative if a1 > a2 and positive if a2 > a1
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double GetAngleDiff_deg( const double &a1, const double &a2) {
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double a3 = a2 - a1;
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while (a3 < 180.0) a3 += 360.0;
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while (a3 > 180.0) a3 -= 360.0;
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return a3;
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}
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// Runway stuff
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// Given (lon/lat/elev) and an FGRunway struct, determine if the point lies on the runway
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bool OnRunway(const SGGeod& pt, const FGRunwayBase* rwy) {
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FGATCAlignedProjection ortho;
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SGGeod centre = SGGeod::fromDegM(rwy->longitude(), rwy->latitude(), 0); // We don't need the elev
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ortho.Init(centre, rwy->headingDeg());
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SGVec3d xyc = ortho.ConvertToLocal(centre);
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SGVec3d xyp = ortho.ConvertToLocal(pt);
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//cout << "Length offset = " << fabs(xyp.y() - xyc.y()) << '\n';
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//cout << "Width offset = " << fabs(xyp.x() - xyc.x()) << '\n';
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if((fabs(xyp.y() - xyc.y()) < ((rwy->lengthFt()/2.0) + 5.0))
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&& (fabs(xyp.x() - xyc.x()) < (rwy->widthFt()/2.0))) {
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return(true);
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}
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return(false);
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}
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