| New file |
| | |
| | | /** |
| | | * Cesium - https://github.com/CesiumGS/cesium |
| | | * |
| | | * Copyright 2011-2020 Cesium Contributors |
| | | * |
| | | * Licensed under the Apache License, Version 2.0 (the "License"); |
| | | * you may not use this file except in compliance with the License. |
| | | * You may obtain a copy of the License at |
| | | * |
| | | * http://www.apache.org/licenses/LICENSE-2.0 |
| | | * |
| | | * Unless required by applicable law or agreed to in writing, software |
| | | * distributed under the License is distributed on an "AS IS" BASIS, |
| | | * WITHOUT WARRANTIES OR CONDITIONS OF ANY KIND, either express or implied. |
| | | * See the License for the specific language governing permissions and |
| | | * limitations under the License. |
| | | * |
| | | * Columbus View (Pat. Pend.) |
| | | * |
| | | * Portions licensed separately. |
| | | * See https://github.com/CesiumGS/cesium/blob/master/LICENSE.md for full licensing details. |
| | | */ |
| | | define(['./when-8d13db60', './Check-70bec281', './Math-61ede240', './Cartographic-fe4be337', './Cartesian2-85064f09', './BoundingSphere-775c5788', './Cartesian4-5af5bb24', './RuntimeError-ba10bc3e', './WebGLConstants-4c11ee5f', './ComponentDatatype-5862616f', './GeometryAttribute-ed9d707f', './PrimitiveType-97893bc7', './FeatureDetection-7bd32c34', './Transforms-a1cf7267', './buildModuleUrl-e7952659', './GeometryAttributes-aacecde6', './IndexDatatype-9435b55f', './IntersectionTests-397d9494', './Plane-8390418f', './VertexFormat-fe4db402', './arrayRemoveDuplicates-f0b089b1', './ArcType-66bc286a', './EllipsoidRhumbLine-f161e674', './EllipsoidGeodesic-84507801', './PolylinePipeline-a9f32196', './Color-69f1845f'], function (when, Check, _Math, Cartographic, Cartesian2, BoundingSphere, Cartesian4, RuntimeError, WebGLConstants, ComponentDatatype, GeometryAttribute, PrimitiveType, FeatureDetection, Transforms, buildModuleUrl, GeometryAttributes, IndexDatatype, IntersectionTests, Plane, VertexFormat, arrayRemoveDuplicates, ArcType, EllipsoidRhumbLine, EllipsoidGeodesic, PolylinePipeline, Color) { 'use strict'; |
| | | |
| | | var scratchInterpolateColorsArray = []; |
| | | |
| | | function interpolateColors(p0, p1, color0, color1, numPoints) { |
| | | var colors = scratchInterpolateColorsArray; |
| | | colors.length = numPoints; |
| | | var i; |
| | | |
| | | var r0 = color0.red; |
| | | var g0 = color0.green; |
| | | var b0 = color0.blue; |
| | | var a0 = color0.alpha; |
| | | |
| | | var r1 = color1.red; |
| | | var g1 = color1.green; |
| | | var b1 = color1.blue; |
| | | var a1 = color1.alpha; |
| | | |
| | | if (Color.Color.equals(color0, color1)) { |
| | | for (i = 0; i < numPoints; i++) { |
| | | colors[i] = Color.Color.clone(color0); |
| | | } |
| | | return colors; |
| | | } |
| | | |
| | | var redPerVertex = (r1 - r0) / numPoints; |
| | | var greenPerVertex = (g1 - g0) / numPoints; |
| | | var bluePerVertex = (b1 - b0) / numPoints; |
| | | var alphaPerVertex = (a1 - a0) / numPoints; |
| | | |
| | | for (i = 0; i < numPoints; i++) { |
| | | colors[i] = new Color.Color(r0 + i * redPerVertex, g0 + i * greenPerVertex, b0 + i * bluePerVertex, a0 + i * alphaPerVertex); |
| | | } |
| | | |
| | | return colors; |
| | | } |
| | | |
| | | /** |
| | | * A description of a polyline modeled as a line strip; the first two positions define a line segment, |
| | | * and each additional position defines a line segment from the previous position. The polyline is capable of |
| | | * displaying with a material. |
| | | * |
| | | * @alias PolylineGeometry |
| | | * @constructor |
| | | * |
| | | * @param {Object} options Object with the following properties: |
| | | * @param {Cartesian3[]} options.positions An array of {@link Cartesian3} defining the positions in the polyline as a line strip. |
| | | * @param {Number} [options.width=1.0] The width in pixels. |
| | | * @param {Color[]} [options.colors] An Array of {@link Color} defining the per vertex or per segment colors. |
| | | * @param {Boolean} [options.colorsPerVertex=false] A boolean that determines whether the colors will be flat across each segment of the line or interpolated across the vertices. |
| | | * @param {ArcType} [options.arcType=ArcType.GEODESIC] The type of line the polyline segments must follow. |
| | | * @param {Number} [options.granularity=CesiumMath.RADIANS_PER_DEGREE] The distance, in radians, between each latitude and longitude if options.arcType is not ArcType.NONE. Determines the number of positions in the buffer. |
| | | * @param {VertexFormat} [options.vertexFormat=VertexFormat.DEFAULT] The vertex attributes to be computed. |
| | | * @param {Ellipsoid} [options.ellipsoid=Ellipsoid.WGS84] The ellipsoid to be used as a reference. |
| | | * |
| | | * @exception {DeveloperError} At least two positions are required. |
| | | * @exception {DeveloperError} width must be greater than or equal to one. |
| | | * @exception {DeveloperError} colors has an invalid length. |
| | | * |
| | | * @see PolylineGeometry#createGeometry |
| | | * |
| | | * @demo {@link https://cesiumjs.org/Cesium/Apps/Sandcastle/index.html?src=Polyline.html|Cesium Sandcastle Polyline Demo} |
| | | * |
| | | * @example |
| | | * // A polyline with two connected line segments |
| | | * var polyline = new Cesium.PolylineGeometry({ |
| | | * positions : Cesium.Cartesian3.fromDegreesArray([ |
| | | * 0.0, 0.0, |
| | | * 5.0, 0.0, |
| | | * 5.0, 5.0 |
| | | * ]), |
| | | * width : 10.0 |
| | | * }); |
| | | * var geometry = Cesium.PolylineGeometry.createGeometry(polyline); |
| | | */ |
| | | function PolylineGeometry(options) { |
| | | options = when.defaultValue(options, when.defaultValue.EMPTY_OBJECT); |
| | | var positions = options.positions; |
| | | var colors = options.colors; |
| | | var width = when.defaultValue(options.width, 1.0); |
| | | var hMax = when.defaultValue(options.hMax, -1.0); |
| | | var colorsPerVertex = when.defaultValue(options.colorsPerVertex, false); |
| | | |
| | | //>>includeStart('debug', pragmas.debug); |
| | | if ((!when.defined(positions)) || (positions.length < 2)) { |
| | | throw new Check.DeveloperError('At least two positions are required.'); |
| | | } |
| | | if (typeof width !== 'number') { |
| | | throw new Check.DeveloperError('width must be a number'); |
| | | } |
| | | if (when.defined(colors) && ((colorsPerVertex && colors.length < positions.length) || (!colorsPerVertex && colors.length < positions.length - 1))) { |
| | | throw new Check.DeveloperError('colors has an invalid length.'); |
| | | } |
| | | //>>includeEnd('debug'); |
| | | |
| | | this._positions = positions; |
| | | this._colors = colors; |
| | | this._width = width; |
| | | this._hMax = hMax; |
| | | this._colorsPerVertex = colorsPerVertex; |
| | | this._dist = options.dist; |
| | | this._period = options.period; |
| | | this._vertexFormat = VertexFormat.VertexFormat.clone(when.defaultValue(options.vertexFormat, VertexFormat.VertexFormat.DEFAULT)); |
| | | |
| | | this._followSurface = when.defaultValue(options.followSurface, true); |
| | | if (when.defined(options.followSurface)) { |
| | | buildModuleUrl.deprecationWarning('PolylineGeometry.followSurface', 'PolylineGeometry.followSurface is deprecated and will be removed in Cesium 1.55. Use PolylineGeometry.arcType instead.'); |
| | | options.arcType = options.followSurface ? ArcType.ArcType.GEODESIC : ArcType.ArcType.NONE; |
| | | } |
| | | this._arcType = when.defaultValue(options.arcType, ArcType.ArcType.GEODESIC); |
| | | this._followSurface = (this._arcType !== ArcType.ArcType.NONE); |
| | | |
| | | this._granularity = when.defaultValue(options.granularity, _Math.CesiumMath.RADIANS_PER_DEGREE); |
| | | this._ellipsoid = Cartesian2.Ellipsoid.clone(when.defaultValue(options.ellipsoid, Cartesian2.Ellipsoid.WGS84)); |
| | | this._workerName = 'createPolylineGeometry'; |
| | | |
| | | var numComponents = 1 + positions.length * Cartographic.Cartesian3.packedLength; |
| | | numComponents += when.defined(colors) ? 1 + colors.length * Color.Color.packedLength : 1; |
| | | |
| | | /** |
| | | * The number of elements used to pack the object into an array. |
| | | * @type {Number} |
| | | */ |
| | | this.packedLength = numComponents + Cartesian2.Ellipsoid.packedLength + VertexFormat.VertexFormat.packedLength + 4 + 2; |
| | | } |
| | | |
| | | /** |
| | | * Stores the provided instance into the provided array. |
| | | * |
| | | * @param {PolylineGeometry} value The value to pack. |
| | | * @param {Number[]} array The array to pack into. |
| | | * @param {Number} [startingIndex=0] The index into the array at which to start packing the elements. |
| | | * |
| | | * @returns {Number[]} The array that was packed into |
| | | */ |
| | | PolylineGeometry.pack = function(value, array, startingIndex) { |
| | | //>>includeStart('debug', pragmas.debug); |
| | | if (!when.defined(value)) { |
| | | throw new Check.DeveloperError('value is required'); |
| | | } |
| | | if (!when.defined(array)) { |
| | | throw new Check.DeveloperError('array is required'); |
| | | } |
| | | //>>includeEnd('debug'); |
| | | |
| | | startingIndex = when.defaultValue(startingIndex, 0); |
| | | |
| | | var i; |
| | | |
| | | var positions = value._positions; |
| | | var length = positions.length; |
| | | array[startingIndex++] = length; |
| | | |
| | | for (i = 0; i < length; ++i, startingIndex += Cartographic.Cartesian3.packedLength) { |
| | | Cartographic.Cartesian3.pack(positions[i], array, startingIndex); |
| | | } |
| | | |
| | | var colors = value._colors; |
| | | length = when.defined(colors) ? colors.length : 0.0; |
| | | array[startingIndex++] = length; |
| | | |
| | | for (i = 0; i < length; ++i, startingIndex += Color.Color.packedLength) { |
| | | Color.Color.pack(colors[i], array, startingIndex); |
| | | } |
| | | |
| | | Cartesian2.Ellipsoid.pack(value._ellipsoid, array, startingIndex); |
| | | startingIndex += Cartesian2.Ellipsoid.packedLength; |
| | | |
| | | VertexFormat.VertexFormat.pack(value._vertexFormat, array, startingIndex); |
| | | startingIndex += VertexFormat.VertexFormat.packedLength; |
| | | |
| | | array[startingIndex++] = value._width; |
| | | array[startingIndex++] = value._colorsPerVertex ? 1.0 : 0.0; |
| | | array[startingIndex++] = value._arcType; |
| | | array[startingIndex++] = value._granularity; |
| | | array[startingIndex++] = value._hMax; |
| | | array[startingIndex++] = value._dist; |
| | | array[startingIndex] = value._period; |
| | | |
| | | return array; |
| | | }; |
| | | |
| | | var scratchEllipsoid = Cartesian2.Ellipsoid.clone(Cartesian2.Ellipsoid.UNIT_SPHERE); |
| | | var scratchVertexFormat = new VertexFormat.VertexFormat(); |
| | | var scratchOptions = { |
| | | positions : undefined, |
| | | colors : undefined, |
| | | ellipsoid : scratchEllipsoid, |
| | | vertexFormat : scratchVertexFormat, |
| | | width : undefined, |
| | | colorsPerVertex : undefined, |
| | | arcType : undefined, |
| | | granularity : undefined |
| | | }; |
| | | |
| | | /** |
| | | * Retrieves an instance from a packed array. |
| | | * |
| | | * @param {Number[]} array The packed array. |
| | | * @param {Number} [startingIndex=0] The starting index of the element to be unpacked. |
| | | * @param {PolylineGeometry} [result] The object into which to store the result. |
| | | * @returns {PolylineGeometry} The modified result parameter or a new PolylineGeometry instance if one was not provided. |
| | | */ |
| | | PolylineGeometry.unpack = function(array, startingIndex, result) { |
| | | //>>includeStart('debug', pragmas.debug); |
| | | if (!when.defined(array)) { |
| | | throw new Check.DeveloperError('array is required'); |
| | | } |
| | | //>>includeEnd('debug'); |
| | | |
| | | startingIndex = when.defaultValue(startingIndex, 0); |
| | | |
| | | var i; |
| | | |
| | | var length = array[startingIndex++]; |
| | | var positions = new Array(length); |
| | | |
| | | for (i = 0; i < length; ++i, startingIndex += Cartographic.Cartesian3.packedLength) { |
| | | positions[i] = Cartographic.Cartesian3.unpack(array, startingIndex); |
| | | } |
| | | |
| | | length = array[startingIndex++]; |
| | | var colors = length > 0 ? new Array(length) : undefined; |
| | | |
| | | for (i = 0; i < length; ++i, startingIndex += Color.Color.packedLength) { |
| | | colors[i] = Color.Color.unpack(array, startingIndex); |
| | | } |
| | | |
| | | var ellipsoid = Cartesian2.Ellipsoid.unpack(array, startingIndex, scratchEllipsoid); |
| | | startingIndex += Cartesian2.Ellipsoid.packedLength; |
| | | |
| | | var vertexFormat = VertexFormat.VertexFormat.unpack(array, startingIndex, scratchVertexFormat); |
| | | startingIndex += VertexFormat.VertexFormat.packedLength; |
| | | |
| | | var width = array[startingIndex++]; |
| | | var colorsPerVertex = array[startingIndex++] === 1.0; |
| | | var arcType = array[startingIndex++]; |
| | | var granularity = array[startingIndex++]; |
| | | var hMax = array[startingIndex++]; |
| | | var dist = array[startingIndex++] == 1.0; |
| | | var period = array[startingIndex]; |
| | | |
| | | if (!when.defined(result)) { |
| | | scratchOptions.positions = positions; |
| | | scratchOptions.colors = colors; |
| | | scratchOptions.width = width; |
| | | scratchOptions.colorsPerVertex = colorsPerVertex; |
| | | scratchOptions.arcType = arcType; |
| | | scratchOptions.granularity = granularity; |
| | | scratchOptions.hMax = hMax; |
| | | scratchOptions.dist = dist; |
| | | scratchOptions.period = period; |
| | | return new PolylineGeometry(scratchOptions); |
| | | } |
| | | |
| | | result._positions = positions; |
| | | result._colors = colors; |
| | | result._ellipsoid = Cartesian2.Ellipsoid.clone(ellipsoid, result._ellipsoid); |
| | | result._vertexFormat = VertexFormat.VertexFormat.clone(vertexFormat, result._vertexFormat); |
| | | result._width = width; |
| | | result._colorsPerVertex = colorsPerVertex; |
| | | result._arcType = arcType; |
| | | result._granularity = granularity; |
| | | result._hMax = hMax; |
| | | result._dist = dist; |
| | | result._period = period; |
| | | |
| | | return result; |
| | | }; |
| | | |
| | | var scratchCartesian3 = new Cartographic.Cartesian3(); |
| | | var scratchPosition = new Cartographic.Cartesian3(); |
| | | var scratchPrevPosition = new Cartographic.Cartesian3(); |
| | | var scratchNextPosition = new Cartographic.Cartesian3(); |
| | | |
| | | /** |
| | | * Computes the geometric representation of a polyline, including its vertices, indices, and a bounding sphere. |
| | | * |
| | | * @param {PolylineGeometry} polylineGeometry A description of the polyline. |
| | | * @returns {Geometry|undefined} The computed vertices and indices. |
| | | */ |
| | | PolylineGeometry.createGeometry = function(polylineGeometry) { |
| | | var width = polylineGeometry._width; |
| | | var hMax = polylineGeometry._hMax; |
| | | var vertexFormat = polylineGeometry._vertexFormat; |
| | | var colors = polylineGeometry._colors; |
| | | var colorsPerVertex = polylineGeometry._colorsPerVertex; |
| | | var arcType = polylineGeometry._arcType; |
| | | var granularity = polylineGeometry._granularity; |
| | | var ellipsoid = polylineGeometry._ellipsoid; |
| | | var hasDist = polylineGeometry._dist; |
| | | var period = polylineGeometry._period; |
| | | |
| | | var i; |
| | | var j; |
| | | var k; |
| | | |
| | | var positions = arrayRemoveDuplicates.arrayRemoveDuplicates(polylineGeometry._positions, Cartographic.Cartesian3.equalsEpsilon); |
| | | var positionsLength = positions.length; |
| | | |
| | | // A width of a pixel or less is not a valid geometry, but in order to support external data |
| | | // that may have errors we treat this as an empty geometry. |
| | | if (positionsLength < 2 || width <= 0.0) { |
| | | return undefined; |
| | | } |
| | | |
| | | if (arcType === ArcType.ArcType.GEODESIC || arcType === ArcType.ArcType.RHUMB) { |
| | | var subdivisionSize; |
| | | var numberOfPointsFunction; |
| | | if (arcType === ArcType.ArcType.GEODESIC) { |
| | | subdivisionSize = _Math.CesiumMath.chordLength(granularity, ellipsoid.maximumRadius); |
| | | numberOfPointsFunction = PolylinePipeline.PolylinePipeline.numberOfPoints; |
| | | } else { |
| | | subdivisionSize = granularity; |
| | | numberOfPointsFunction = PolylinePipeline.PolylinePipeline.numberOfPointsRhumbLine; |
| | | } |
| | | |
| | | var heights = PolylinePipeline.PolylinePipeline.extractHeights(positions, ellipsoid); |
| | | |
| | | if (when.defined(colors)) { |
| | | var colorLength = 1; |
| | | for (i = 0; i < positionsLength - 1; ++i) { |
| | | colorLength += numberOfPointsFunction(positions[i], positions[i + 1], subdivisionSize); |
| | | } |
| | | |
| | | var newColors = new Array(colorLength); |
| | | var newColorIndex = 0; |
| | | |
| | | for (i = 0; i < positionsLength - 1; ++i) { |
| | | var p0 = positions[i]; |
| | | var p1 = positions[i + 1]; |
| | | var c0 = colors[i]; |
| | | |
| | | var numColors = numberOfPointsFunction(p0, p1, subdivisionSize); |
| | | if (colorsPerVertex && i < colorLength) { |
| | | var c1 = colors[i + 1]; |
| | | var interpolatedColors = interpolateColors(p0, p1, c0, c1, numColors); |
| | | var interpolatedColorsLength = interpolatedColors.length; |
| | | for (j = 0; j < interpolatedColorsLength; ++j) { |
| | | newColors[newColorIndex++] = interpolatedColors[j]; |
| | | } |
| | | } else { |
| | | for (j = 0; j < numColors; ++j) { |
| | | newColors[newColorIndex++] = Color.Color.clone(c0); |
| | | } |
| | | } |
| | | } |
| | | |
| | | newColors[newColorIndex] = Color.Color.clone(colors[colors.length - 1]); |
| | | colors = newColors; |
| | | |
| | | scratchInterpolateColorsArray.length = 0; |
| | | } |
| | | |
| | | if (arcType === ArcType.ArcType.GEODESIC) { |
| | | positions = PolylinePipeline.PolylinePipeline.generateCartesianArc({ |
| | | positions: positions, |
| | | minDistance: subdivisionSize, |
| | | ellipsoid: ellipsoid, |
| | | height: heights, |
| | | hMax:hMax |
| | | }); |
| | | } else { |
| | | positions = PolylinePipeline.PolylinePipeline.generateCartesianRhumbArc({ |
| | | positions: positions, |
| | | granularity: subdivisionSize, |
| | | ellipsoid: ellipsoid, |
| | | height: heights |
| | | }); |
| | | } |
| | | } |
| | | |
| | | positionsLength = positions.length; |
| | | var size = positionsLength * 4.0 - 4.0; |
| | | |
| | | var finalPositions = new Float64Array(size * 3); |
| | | var prevPositions = new Float64Array(size * 3); |
| | | var nextPositions = new Float64Array(size * 3); |
| | | var expandAndWidth = new Float32Array(size * 2); |
| | | var st = vertexFormat.st ? new Float32Array(size * 2) : undefined; |
| | | var finalColors = when.defined(colors) ? new Uint8Array(size * 4) : undefined; |
| | | var dist = hasDist ? new Float32Array(size * 3) : undefined; |
| | | |
| | | var positionIndex = 0; |
| | | var expandAndWidthIndex = 0; |
| | | var stIndex = 0; |
| | | var colorIndex = 0; |
| | | var distIndex = 0; |
| | | var position; |
| | | var curDist = 0; |
| | | |
| | | for (j = 0; j < positionsLength; ++j) { |
| | | if (j === 0) { |
| | | position = scratchCartesian3; |
| | | Cartographic.Cartesian3.subtract(positions[0], positions[1], position); |
| | | Cartographic.Cartesian3.add(positions[0], position, position); |
| | | } else { |
| | | position = positions[j - 1]; |
| | | } |
| | | |
| | | Cartographic.Cartesian3.clone(position, scratchPrevPosition); |
| | | Cartographic.Cartesian3.clone(positions[j], scratchPosition); |
| | | |
| | | if (j === positionsLength - 1) { |
| | | position = scratchCartesian3; |
| | | Cartographic.Cartesian3.subtract(positions[positionsLength - 1], positions[positionsLength - 2], position); |
| | | Cartographic.Cartesian3.add(positions[positionsLength - 1], position, position); |
| | | } else { |
| | | position = positions[j + 1]; |
| | | } |
| | | |
| | | Cartographic.Cartesian3.clone(position, scratchNextPosition); |
| | | |
| | | var color0, color1; |
| | | if (when.defined(finalColors)) { |
| | | if (j !== 0 && !colorsPerVertex) { |
| | | color0 = colors[j - 1]; |
| | | } else { |
| | | color0 = colors[j]; |
| | | } |
| | | |
| | | if (j !== positionsLength - 1) { |
| | | color1 = colors[j]; |
| | | } |
| | | } |
| | | |
| | | var startK = j === 0 ? 2 : 0; |
| | | var endK = j === positionsLength - 1 ? 2 : 4; |
| | | |
| | | for (k = startK; k < endK; ++k) { |
| | | Cartographic.Cartesian3.pack(scratchPosition, finalPositions, positionIndex); |
| | | Cartographic.Cartesian3.pack(scratchPrevPosition, prevPositions, positionIndex); |
| | | Cartographic.Cartesian3.pack(scratchNextPosition, nextPositions, positionIndex); |
| | | positionIndex += 3; |
| | | |
| | | var direction = (k - 2 < 0) ? -1.0 : 1.0; |
| | | var dd = 2 * (k % 2) - 1; |
| | | var u = dd * j/positionsLength; |
| | | hMax>0.0?expandAndWidth[expandAndWidthIndex++] = u:expandAndWidth[expandAndWidthIndex++] = dd; |
| | | // expandAndWidth[expandAndWidthIndex++] = 2 * (k % 2) - 1; // expand direction |
| | | expandAndWidth[expandAndWidthIndex++] = direction * width; |
| | | |
| | | if (vertexFormat.st) { |
| | | st[stIndex++] = j / (positionsLength - 1); |
| | | st[stIndex++] = Math.max(expandAndWidth[expandAndWidthIndex - 2], 0.0); |
| | | } |
| | | |
| | | if (when.defined(finalColors)) { |
| | | var color = (k < 2) ? color0 : color1; |
| | | |
| | | finalColors[colorIndex++] = Color.Color.floatToByte(color.red); |
| | | finalColors[colorIndex++] = Color.Color.floatToByte(color.green); |
| | | finalColors[colorIndex++] = Color.Color.floatToByte(color.blue); |
| | | finalColors[colorIndex++] = Color.Color.floatToByte(color.alpha); |
| | | } |
| | | |
| | | if(hasDist){ |
| | | dist[distIndex * 3] = curDist; |
| | | distIndex++; |
| | | } |
| | | } |
| | | curDist += Cartographic.Cartesian3.distance(position, positions[j]); |
| | | } |
| | | |
| | | if(hasDist){ |
| | | var maxDis = curDist; |
| | | var randomStart = Math.random() * (period > 0.0 ? period : maxDis); |
| | | for(j = 0; j < size; j++){ |
| | | dist[j * 3 + 1] = maxDis; |
| | | dist[j * 3 + 2] = randomStart; |
| | | } |
| | | } |
| | | |
| | | var attributes = new GeometryAttributes.GeometryAttributes(); |
| | | |
| | | attributes.position = new GeometryAttribute.GeometryAttribute({ |
| | | componentDatatype : ComponentDatatype.ComponentDatatype.DOUBLE, |
| | | componentsPerAttribute : 3, |
| | | values : finalPositions |
| | | }); |
| | | |
| | | attributes.prevPosition = new GeometryAttribute.GeometryAttribute({ |
| | | componentDatatype : ComponentDatatype.ComponentDatatype.DOUBLE, |
| | | componentsPerAttribute : 3, |
| | | values : prevPositions |
| | | }); |
| | | |
| | | attributes.nextPosition = new GeometryAttribute.GeometryAttribute({ |
| | | componentDatatype : ComponentDatatype.ComponentDatatype.DOUBLE, |
| | | componentsPerAttribute : 3, |
| | | values : nextPositions |
| | | }); |
| | | |
| | | attributes.expandAndWidth = new GeometryAttribute.GeometryAttribute({ |
| | | componentDatatype : ComponentDatatype.ComponentDatatype.FLOAT, |
| | | componentsPerAttribute : 2, |
| | | values : expandAndWidth |
| | | }); |
| | | |
| | | if (vertexFormat.st) { |
| | | attributes.st = new GeometryAttribute.GeometryAttribute({ |
| | | componentDatatype : ComponentDatatype.ComponentDatatype.FLOAT, |
| | | componentsPerAttribute : 2, |
| | | values : st |
| | | }); |
| | | } |
| | | |
| | | if (when.defined(finalColors)) { |
| | | attributes.color = new GeometryAttribute.GeometryAttribute({ |
| | | componentDatatype : ComponentDatatype.ComponentDatatype.UNSIGNED_BYTE, |
| | | componentsPerAttribute : 4, |
| | | values : finalColors, |
| | | normalize : true |
| | | }); |
| | | } |
| | | |
| | | if (hasDist) { |
| | | attributes.dist = new GeometryAttribute.GeometryAttribute({ |
| | | componentDatatype : ComponentDatatype.ComponentDatatype.FLOAT, |
| | | componentsPerAttribute : 3, |
| | | values : dist |
| | | }); |
| | | } |
| | | |
| | | var indices = IndexDatatype.IndexDatatype.createTypedArray(size, positionsLength * 6 - 6); |
| | | var index = 0; |
| | | var indicesIndex = 0; |
| | | var length = positionsLength - 1.0; |
| | | for (j = 0; j < length; ++j) { |
| | | indices[indicesIndex++] = index; |
| | | indices[indicesIndex++] = index + 2; |
| | | indices[indicesIndex++] = index + 1; |
| | | |
| | | indices[indicesIndex++] = index + 1; |
| | | indices[indicesIndex++] = index + 2; |
| | | indices[indicesIndex++] = index + 3; |
| | | |
| | | index += 4; |
| | | } |
| | | |
| | | return new GeometryAttribute.Geometry({ |
| | | attributes : attributes, |
| | | indices : indices, |
| | | primitiveType : PrimitiveType.PrimitiveType.TRIANGLES, |
| | | boundingSphere : BoundingSphere.BoundingSphere.fromPoints(positions), |
| | | geometryType : GeometryAttribute.GeometryType.POLYLINES |
| | | }); |
| | | }; |
| | | |
| | | function createPolylineGeometry(polylineGeometry, offset) { |
| | | if (when.defined(offset)) { |
| | | polylineGeometry = PolylineGeometry.unpack(polylineGeometry, offset); |
| | | } |
| | | polylineGeometry._ellipsoid = Cartesian2.Ellipsoid.clone(polylineGeometry._ellipsoid); |
| | | return PolylineGeometry.createGeometry(polylineGeometry); |
| | | } |
| | | |
| | | return createPolylineGeometry; |
| | | |
| | | }); |