Merge pull request #4259 from marcjansen/math-radians-degrees
Remove use of toDegrees/toRadians util functions
This commit is contained in:
@@ -5,13 +5,13 @@ goog.provide('ol.control.ScaleLineUnits');
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goog.require('goog.asserts');
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goog.require('goog.dom');
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goog.require('goog.events');
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goog.require('goog.math');
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goog.require('goog.style');
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goog.require('ol');
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goog.require('ol.Object');
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goog.require('ol.TransformFunction');
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goog.require('ol.control.Control');
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goog.require('ol.css');
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goog.require('ol.math');
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goog.require('ol.proj');
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goog.require('ol.proj.METERS_PER_UNIT');
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goog.require('ol.proj.Units');
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@@ -217,7 +217,7 @@ ol.control.ScaleLine.prototype.updateElement_ = function() {
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// Convert pointResolution from degrees to meters
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this.toEPSG4326_ = null;
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cosLatitude = Math.cos(goog.math.toRadians(center[1]));
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cosLatitude = Math.cos(ol.math.toRadians(center[1]));
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pointResolution *= Math.PI * cosLatitude * ol.sphere.NORMAL.radius / 180;
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projectionUnits = ol.proj.Units.METERS;
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@@ -229,7 +229,7 @@ ol.control.ScaleLine.prototype.updateElement_ = function() {
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this.toEPSG4326_ = ol.proj.getTransformFromProjections(
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projection, ol.proj.get('EPSG:4326'));
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}
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cosLatitude = Math.cos(goog.math.toRadians(this.toEPSG4326_(center)[1]));
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cosLatitude = Math.cos(ol.math.toRadians(this.toEPSG4326_(center)[1]));
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var radius = ol.sphere.NORMAL.radius;
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goog.asserts.assert(ol.proj.METERS_PER_UNIT[projectionUnits],
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'Meters per unit should be defined for the projection unit');
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@@ -2,10 +2,10 @@ goog.provide('ol.DeviceOrientation');
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goog.provide('ol.DeviceOrientationProperty');
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goog.require('goog.events');
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goog.require('goog.math');
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goog.require('ol');
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goog.require('ol.Object');
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goog.require('ol.has');
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goog.require('ol.math');
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/**
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@@ -115,24 +115,24 @@ ol.DeviceOrientation.prototype.orientationChange_ = function(browserEvent) {
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var event = /** @type {DeviceOrientationEvent} */
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(browserEvent.getBrowserEvent());
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if (event.alpha !== null) {
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var alpha = goog.math.toRadians(event.alpha);
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var alpha = ol.math.toRadians(event.alpha);
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this.set(ol.DeviceOrientationProperty.ALPHA, alpha);
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// event.absolute is undefined in iOS.
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if (goog.isBoolean(event.absolute) && event.absolute) {
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this.set(ol.DeviceOrientationProperty.HEADING, alpha);
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} else if (goog.isNumber(event.webkitCompassHeading) &&
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event.webkitCompassAccuracy != -1) {
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var heading = goog.math.toRadians(event.webkitCompassHeading);
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var heading = ol.math.toRadians(event.webkitCompassHeading);
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this.set(ol.DeviceOrientationProperty.HEADING, heading);
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}
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}
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if (event.beta !== null) {
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this.set(ol.DeviceOrientationProperty.BETA,
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goog.math.toRadians(event.beta));
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ol.math.toRadians(event.beta));
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}
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if (event.gamma !== null) {
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this.set(ol.DeviceOrientationProperty.GAMMA,
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goog.math.toRadians(event.gamma));
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ol.math.toRadians(event.gamma));
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}
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this.changed();
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};
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@@ -10,7 +10,6 @@ goog.require('goog.Uri');
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goog.require('goog.array');
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goog.require('goog.asserts');
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goog.require('goog.dom.NodeType');
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goog.require('goog.math');
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goog.require('ol');
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goog.require('ol.Feature');
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goog.require('ol.FeatureStyleFunction');
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@@ -30,6 +29,7 @@ goog.require('ol.geom.MultiPoint');
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goog.require('ol.geom.MultiPolygon');
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goog.require('ol.geom.Point');
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goog.require('ol.geom.Polygon');
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goog.require('ol.math');
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goog.require('ol.proj');
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goog.require('ol.style.Fill');
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goog.require('ol.style.Icon');
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@@ -533,7 +533,7 @@ ol.format.KML.IconStyleParser_ = function(node, objectStack) {
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var heading = /** @type {number} */
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(object['heading']);
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if (heading !== undefined) {
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rotation = goog.math.toRadians(heading);
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rotation = ol.math.toRadians(heading);
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}
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var scale = /** @type {number|undefined} */
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@@ -5,12 +5,12 @@ goog.provide('ol.GeolocationProperty');
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goog.require('goog.events');
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goog.require('goog.events.EventType');
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goog.require('goog.math');
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goog.require('ol.Coordinate');
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goog.require('ol.Object');
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goog.require('ol.geom.Geometry');
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goog.require('ol.geom.Polygon');
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goog.require('ol.has');
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goog.require('ol.math');
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goog.require('ol.proj');
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goog.require('ol.sphere.WGS84');
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@@ -160,7 +160,7 @@ ol.Geolocation.prototype.positionChange_ = function(position) {
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coords.altitudeAccuracy === null ?
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undefined : coords.altitudeAccuracy);
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this.set(ol.GeolocationProperty.HEADING, coords.heading === null ?
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undefined : goog.math.toRadians(coords.heading));
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undefined : ol.math.toRadians(coords.heading));
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if (!this.position_) {
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this.position_ = [coords.longitude, coords.latitude];
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} else {
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@@ -1,7 +1,6 @@
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goog.provide('ol.geom.flat.geodesic');
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goog.require('goog.asserts');
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goog.require('goog.math');
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goog.require('goog.object');
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goog.require('ol.TransformFunction');
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goog.require('ol.math');
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@@ -102,12 +101,12 @@ ol.geom.flat.geodesic.greatCircleArc = function(
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var geoProjection = ol.proj.get('EPSG:4326');
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var cosLat1 = Math.cos(goog.math.toRadians(lat1));
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var sinLat1 = Math.sin(goog.math.toRadians(lat1));
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var cosLat2 = Math.cos(goog.math.toRadians(lat2));
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var sinLat2 = Math.sin(goog.math.toRadians(lat2));
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var cosDeltaLon = Math.cos(goog.math.toRadians(lon2 - lon1));
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var sinDeltaLon = Math.sin(goog.math.toRadians(lon2 - lon1));
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var cosLat1 = Math.cos(ol.math.toRadians(lat1));
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var sinLat1 = Math.sin(ol.math.toRadians(lat1));
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var cosLat2 = Math.cos(ol.math.toRadians(lat2));
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var sinLat2 = Math.sin(ol.math.toRadians(lat2));
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var cosDeltaLon = Math.cos(ol.math.toRadians(lon2 - lon1));
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var sinDeltaLon = Math.sin(ol.math.toRadians(lon2 - lon1));
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var d = sinLat1 * sinLat2 + cosLat1 * cosLat2 * cosDeltaLon;
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return ol.geom.flat.geodesic.line_(
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@@ -126,10 +125,10 @@ ol.geom.flat.geodesic.greatCircleArc = function(
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var x = cosLat1 * sinLat2 - sinLat1 * cosLat2 * cosDeltaLon;
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var theta = Math.atan2(y, x);
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var lat = Math.asin(sinLat1 * cosD + cosLat1 * sinD * Math.cos(theta));
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var lon = goog.math.toRadians(lon1) +
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var lon = ol.math.toRadians(lon1) +
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Math.atan2(Math.sin(theta) * sinD * cosLat1,
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cosD - sinLat1 * Math.sin(lat));
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return [goog.math.toDegrees(lon), goog.math.toDegrees(lat)];
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return [ol.math.toDegrees(lon), ol.math.toDegrees(lat)];
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}, ol.proj.getTransform(geoProjection, projection), squaredTolerance);
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};
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@@ -123,3 +123,25 @@ ol.math.tanh = function(x) {
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var expMinusTwoX = Math.exp(-2 * x);
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return (1 - expMinusTwoX) / (1 + expMinusTwoX);
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};
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/**
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* Converts radians to to degrees.
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*
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* @param {number} angleInRadians Angle in radians.
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* @return {number} Angle in degrees.
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*/
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ol.math.toDegrees = function(angleInRadians) {
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return angleInRadians * 180 / Math.PI;
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};
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/**
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* Converts degrees to radians.
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*
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* @param {number} angleInDegrees Angle in degrees.
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* @return {number} Angle in radians.
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*/
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ol.math.toRadians = function(angleInDegrees) {
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return angleInDegrees * Math.PI / 180;
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};
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@@ -1,7 +1,7 @@
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goog.provide('ol.RotationConstraint');
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goog.provide('ol.RotationConstraintType');
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goog.require('goog.math');
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goog.require('ol.math');
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/**
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@@ -66,7 +66,7 @@ ol.RotationConstraint.createSnapToN = function(n) {
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* @return {ol.RotationConstraintType} Rotation constraint.
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*/
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ol.RotationConstraint.createSnapToZero = function(opt_tolerance) {
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var tolerance = opt_tolerance || goog.math.toRadians(5);
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var tolerance = opt_tolerance || ol.math.toRadians(5);
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return (
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/**
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* @param {number|undefined} rotation Rotation.
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@@ -7,7 +7,7 @@
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goog.provide('ol.Sphere');
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goog.require('goog.math');
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goog.require('ol.math');
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@@ -57,9 +57,9 @@ ol.Sphere.prototype.geodesicArea = function(coordinates) {
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var y1 = coordinates[len - 1][1];
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for (var i = 0; i < len; i++) {
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var x2 = coordinates[i][0], y2 = coordinates[i][1];
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area += goog.math.toRadians(x2 - x1) *
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(2 + Math.sin(goog.math.toRadians(y1)) +
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Math.sin(goog.math.toRadians(y2)));
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area += ol.math.toRadians(x2 - x1) *
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(2 + Math.sin(ol.math.toRadians(y1)) +
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Math.sin(ol.math.toRadians(y2)));
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x1 = x2;
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y1 = y2;
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}
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@@ -76,10 +76,10 @@ ol.Sphere.prototype.geodesicArea = function(coordinates) {
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* @api
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*/
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ol.Sphere.prototype.haversineDistance = function(c1, c2) {
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var lat1 = goog.math.toRadians(c1[1]);
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var lat2 = goog.math.toRadians(c2[1]);
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var lat1 = ol.math.toRadians(c1[1]);
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var lat2 = ol.math.toRadians(c2[1]);
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var deltaLatBy2 = (lat2 - lat1) / 2;
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var deltaLonBy2 = goog.math.toRadians(c2[0] - c1[0]) / 2;
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var deltaLonBy2 = ol.math.toRadians(c2[0] - c1[0]) / 2;
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var a = Math.sin(deltaLatBy2) * Math.sin(deltaLatBy2) +
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Math.sin(deltaLonBy2) * Math.sin(deltaLonBy2) *
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Math.cos(lat1) * Math.cos(lat2);
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@@ -97,8 +97,8 @@ ol.Sphere.prototype.haversineDistance = function(c1, c2) {
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* @return {ol.Coordinate} The target point.
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*/
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ol.Sphere.prototype.offset = function(c1, distance, bearing) {
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var lat1 = goog.math.toRadians(c1[1]);
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var lon1 = goog.math.toRadians(c1[0]);
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var lat1 = ol.math.toRadians(c1[1]);
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var lon1 = ol.math.toRadians(c1[0]);
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var dByR = distance / this.radius;
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var lat = Math.asin(
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Math.sin(lat1) * Math.cos(dByR) +
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@@ -106,5 +106,5 @@ ol.Sphere.prototype.offset = function(c1, distance, bearing) {
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var lon = lon1 + Math.atan2(
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Math.sin(bearing) * Math.sin(dByR) * Math.cos(lat1),
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Math.cos(dByR) - Math.sin(lat1) * Math.sin(lat));
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return [goog.math.toDegrees(lon), goog.math.toDegrees(lat)];
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return [ol.math.toDegrees(lon), ol.math.toDegrees(lat)];
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};
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@@ -196,4 +196,31 @@ describe('ol.math.tanh', function() {
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});
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describe('ol.math.toDegrees', function() {
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it('returns the correct value at -π', function() {
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expect(ol.math.toDegrees(-Math.PI)).to.be(-180);
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});
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it('returns the correct value at 0', function() {
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expect(ol.math.toDegrees(0)).to.be(0);
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});
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it('returns the correct value at π', function() {
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expect(ol.math.toDegrees(Math.PI)).to.be(180);
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});
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});
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describe('ol.math.toRadians', function() {
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it('returns the correct value at -180', function() {
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expect(ol.math.toRadians(-180)).to.be(-Math.PI);
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});
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it('returns the correct value at 0', function() {
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expect(ol.math.toRadians(0)).to.be(0);
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});
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it('returns the correct value at 180', function() {
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expect(ol.math.toRadians(180)).to.be(Math.PI);
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});
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});
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goog.require('ol.math');
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