Radius are now stored in meters, to easily account for different
radiuses on X and Y axes.
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df9767b65e
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d621964863
9 changed files with 60 additions and 67 deletions
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@ -17,7 +17,7 @@ final class MatchedWaypoint
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public OsmNode node2;
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public OsmNodeNamed crosspoint;
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public OsmNodeNamed waypoint;
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public double radius;
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public double radius; // radius in meters
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public boolean hasUpdate;
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public void writeToStream( DataOutput dos ) throws IOException
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@ -10,7 +10,7 @@ import btools.mapaccess.OsmNode;
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public class OsmNodeNamed extends OsmNode
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{
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public String name;
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public double radius; // radius of nogopoint
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public double radius; // radius of nogopoint (in meters)
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public boolean isNogo = false;
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@Override
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@ -111,28 +111,24 @@ public class OsmNogoPolygon extends OsmNodeNamed
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double rad = 0; // radius
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double rad2 = 0; // radius squared;
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double dpx = 0; // x-xomponent of vector from center to point
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double dpy = 0; // y-component
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double dmax2 = 0; // squared lenght of vector from center to point
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double dmax = 0; // length of vector from center to point
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int i_max = -1;
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do
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{ // now identify the point outside of the circle that has the greatest distance
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for (int i = 0; i < points.size();i++)
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{
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// now identify the point outside of the circle that has the greatest distance
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for (int i = 0; i < points.size(); i++)
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{
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final Point p = points.get(i);
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final double dpix = (p.x - cx) * dlon2m;
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final double dpiy = (p.y - cy) * dlat2m;
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final double dist2 = dpix * dpix + dpiy * dpiy;
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if (dist2 <= rad2)
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final double dist = CheapRulerSingleton.distance(p.x, p.y, (int) cx, (int) cy);
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if (dist <= rad)
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{
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continue;
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}
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if (dist2 > dmax2)
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if (dist > dmax)
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{
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dmax2 = dist2; // new maximum distance found
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dpx = dpix / dlon2m;
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dpy = dpiy / dlat2m;
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// new maximum distance found
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dmax = dist;
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i_max = i;
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}
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}
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@ -140,17 +136,13 @@ public class OsmNogoPolygon extends OsmNodeNamed
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{
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break; // leave loop when no point outside the circle is found any more.
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}
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final double dist = Math.sqrt(dmax2);
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final double dd = 0.5 * (dist - rad) / dist;
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cx += (int)(dd * dpx + 0.5); // shift center toward point
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cy += (int)(dd * dpy + 0.5);
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final double dd = 0.5 * (1 - rad / dmax);
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final Point p = points.get(i_max); // calculate new radius to just include this point
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final double dpix = (p.x - cx) * dlon2m;
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final double dpiy = (p.y - cy) * dlat2m;
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dmax2 = rad2 = dpix * dpix + dpiy * dpiy;
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rad = Math.sqrt(rad2);
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cx += (int)(dd * (p.x - cx) + 0.5); // shift center toward point
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cy += (int)(dd * (p.y - cy) + 0.5);
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dmax = rad = CheapRulerSingleton.distance(p.x, p.y, (int) cx, (int) cy);
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i_max = -1;
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}
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while (true);
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@ -346,7 +346,8 @@ abstract class OsmPath implements OsmLinkHolder
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if ( rc.startDirectionValid )
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{
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double dir = rc.startDirection.intValue() / CheapRulerSingleton.DEG_TO_RAD;
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lon0 = lon1 - (int) ( 1000. * Math.sin( dir ) / rc.getCosLat() );
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double coslat = Math.cos(lat1);
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lon0 = lon1 - (int) ( 1000. * Math.sin( dir ) / coslat );
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lat0 = lat1 - (int) ( 1000. * Math.cos( dir ) );
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}
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else
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@ -193,7 +193,6 @@ public final class RoutingContext
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public Integer startDirection;
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public boolean startDirectionValid;
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private double coslat;
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private double cosangle;
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public boolean nogomatch = false;
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public boolean isEndpoint = false;
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@ -248,8 +247,8 @@ public final class RoutingContext
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try { ir = Integer.parseInt( s.substring( 4 ) ); }
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catch( Exception e ) { /* ignore */ }
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}
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// TODO[Phyks]
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nogo.radius = ir / 110984.; // 6378000. / 57.3;
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// Radius of the nogo point in meters
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nogo.radius = ir;
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}
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}
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@ -259,12 +258,10 @@ public final class RoutingContext
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List<OsmNodeNamed> nogos = new ArrayList<OsmNodeNamed>();
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for( OsmNodeNamed nogo : nogopoints )
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{
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// TODO[Phyks]
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int radiusInMeter = (int)(nogo.radius * 111894.);
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boolean goodGuy = true;
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for( OsmNodeNamed wp : waypoints )
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{
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if ( wp.calcDistance( nogo ) < radiusInMeter
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if ( wp.calcDistance( nogo ) < nogo.radius
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&& (!(nogo instanceof OsmNogoPolygon)
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|| (((OsmNogoPolygon)nogo).isClosed
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? ((OsmNogoPolygon)nogo).isWithin(wp.ilon, wp.ilat)
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@ -288,6 +285,7 @@ public final class RoutingContext
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OsmNodeNamed nogo = nogopoints.get(i);
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cs[0] += nogo.ilon;
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cs[1] += nogo.ilat;
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// 10 is an arbitrary constant to get sub-integer precision in the checksum
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cs[2] += (long) ( nogo.radius*10.);
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}
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return cs;
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@ -342,7 +340,7 @@ public final class RoutingContext
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if ( s2 > 0. )
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{
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radius = Math.sqrt( s1 < s2 ? r12 : r22 );
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if ( radius > nogo.radius ) continue; // 20m ^ 2
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if ( radius > nogo.radius ) continue;
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}
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if ( nogo.isNogo )
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{
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@ -404,28 +402,23 @@ public final class RoutingContext
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return (int)(d + 1.0 );
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}
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// assumes that calcDistance/calcCosAngle called in sequence, so coslat valid
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public double getCosAngle()
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{
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return cosangle;
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}
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public double getCosLat()
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{
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return coslat;
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}
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public double calcAngle( int lon0, int lat0, int lon1, int lat1, int lon2, int lat2 )
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{
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double dlat1 = (lat1 - lat0);
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double dlon1 = (lon1 - lon0) * coslat;
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double dlat2 = (lat2 - lat1);
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double dlon2 = (lon2 - lon1) * coslat;
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double[] lonlat2m = CheapRulerSingleton.getLonLatToMeterScales( lat1 );
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double dy10 = (lat1 - lat0) * lonlat2m[1];
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double dx10 = (lon1 - lon0) * lonlat2m[0];
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double dy21 = (lat2 - lat1) * lonlat2m[1];
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double dx21 = (lon2 - lon1) * lonlat2m[0];
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double dd = Math.sqrt( (dlat1*dlat1 + dlon1*dlon1)*(dlat2*dlat2 + dlon2*dlon2) );
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double dd = Math.sqrt( (dx10*dx10 + dy10*dy10)*(dx21*dx21 + dy21*dy21) );
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if ( dd == 0. ) { cosangle = 1.; return 0.; }
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double sinp = (dlat1*dlon2 - dlon1*dlat2)/dd;
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double cosp = (dlat1*dlat2 + dlon1*dlon2)/dd;
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double sinp = (dy10*dy21 - dx10*dx21)/dd;
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double cosp = (dy10*dy21 + dx10*dx21)/dd;
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cosangle = cosp;
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double p;
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@ -25,6 +25,9 @@ public final class SearchBoundary
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int direction;
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/**
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* @param radius Search radius in meters.
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*/
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public SearchBoundary( OsmNode n, int radius, int direction )
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{
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this.radius = radius;
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@ -33,8 +33,7 @@ public final class WaypointMatcherImpl implements WaypointMatcher
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this.islandPairs = islandPairs;
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for ( MatchedWaypoint mwp : waypoints )
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{
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// TODO[Phyks]
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mwp.radius = maxDistance * 110984.; // 6378000. / 57.3;
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mwp.radius = maxDistance;
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}
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}
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@ -49,6 +48,7 @@ public final class WaypointMatcherImpl implements WaypointMatcher
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double dx = ( lon2 - lon1 ) * dlon2m;
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double dy = ( lat2 - lat1 ) * dlat2m;
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double d = Math.sqrt( dy * dy + dx * dx );
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if ( d == 0. )
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return;
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@ -635,7 +635,9 @@ public class BRouterView extends View
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int lat = n.ilat - centerLat;
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int x = imgw / 2 + (int) ( scaleLon * lon );
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int y = imgh / 2 - (int) ( scaleLat * lat );
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int ir = (int) ( n.radius * 1000000. * scaleLat );
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double[] lonlat2m = CheapRulerSingleton.getLonLatToMeterScales( centerLat );
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int ir = (int) ( n.radius * scaleLat / lonlat2m[1]);
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if ( ir > minradius )
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{
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Paint paint = new Paint();
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@ -660,7 +662,8 @@ public class BRouterView extends View
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private void paintPolygon( Canvas canvas, OsmNogoPolygon p, int minradius )
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{
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final int ir = (int) ( p.radius * 1000000. * scaleLat );
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double[] lonlat2m = CheapRulerSingleton.getLonLatToMeterScales( centerLat );
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final int ir = (int) ( p.radius * scaleLat / lonlat2m[1] );
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if ( ir > minradius )
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{
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Paint paint = new Paint();
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@ -17,10 +17,10 @@ public final class CheapRulerSingleton {
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public final static int KILOMETERS_TO_METERS = 1000;
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public final static double DEG_TO_RAD = Math.PI / 180.;
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// Cosine cache constants
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// Scale cache constants
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private final static int SCALE_CACHE_LENGTH = 1800;
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private final static int SCALE_CACHE_INCREMENT = 100000;
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// COS_CACHE_LENGTH cached values between 0 and COS_CACHE_MAX_DEGREES degrees.
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// SCALE_CACHE_LENGTH cached values between 0 and COS_CACHE_MAX_DEGREES degrees.
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private final static double[][] SCALE_CACHE = new double[SCALE_CACHE_LENGTH][];
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/**
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@ -33,7 +33,7 @@ public final class CheapRulerSingleton {
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}
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private static double[] calcKxKyFromILat(int ilat) {
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double lat = DEG_TO_RAD*(ilat-90000000)/1000000.;
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double lat = DEG_TO_RAD*ilat*ILATLNG_TO_LATLNG - 90;
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double cos = Math.cos(lat);
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double cos2 = 2 * cos * cos - 1;
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double cos3 = 2 * cos * cos2 - cos;
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@ -51,7 +51,7 @@ public final class CheapRulerSingleton {
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/**
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* Calculate the degree->meter scale for given latitude
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*
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* @result [lon->meter,lat->meter]
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* @result [lon->meter,lat->meter]
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*/
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public static double[] getLonLatToMeterScales( int ilat ) {
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return SCALE_CACHE[ ilat / SCALE_CACHE_INCREMENT ];
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@ -65,6 +65,7 @@ public final class CheapRulerSingleton {
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* @param ilat1 Integer latitude for the start point, this is (latitude + 90) * 1e6.
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* @param ilon2 Integer longitude for the end point, this is (longitude + 180) * 1e6.
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* @param ilat2 Integer latitude for the end point, this is (latitude + 90) * 1e6.
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* @return The distance between the two points, in meters.
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*
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* @note Integer longitude is ((longitude in degrees) + 180) * 1e6.
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* Integer latitude is ((latitude in degrees) + 90) * 1e6.
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