561 lines
20 KiB
JavaScript
561 lines
20 KiB
JavaScript
/**
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* Cesium - https://github.com/CesiumGS/cesium
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*
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* Copyright 2011-2020 Cesium Contributors
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*
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* Licensed under the Apache License, Version 2.0 (the "License");
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* you may not use this file except in compliance with the License.
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* You may obtain a copy of the License at
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*
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* http://www.apache.org/licenses/LICENSE-2.0
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*
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* Unless required by applicable law or agreed to in writing, software
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* distributed under the License is distributed on an "AS IS" BASIS,
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* WITHOUT WARRANTIES OR CONDITIONS OF ANY KIND, either express or implied.
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* See the License for the specific language governing permissions and
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* limitations under the License.
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*
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* Columbus View (Pat. Pend.)
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*
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* Portions licensed separately.
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* See https://github.com/CesiumGS/cesium/blob/main/LICENSE.md for full licensing details.
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*/
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define(['./when-4bbc8319', './Matrix2-265d9610', './GeometryOffsetAttribute-7e016332', './Transforms-8b90e17c', './ComponentDatatype-aad54330', './RuntimeError-5b082e8f', './GeometryAttribute-4bcb785f', './GeometryAttributes-7827a6c2', './IndexDatatype-6739e544', './PolygonPipeline-5fd67ae2', './RectangleGeometryLibrary-80323cc0', './combine-e9466e32', './WebGLConstants-508b9636', './EllipsoidRhumbLine-d09d563f'], (function (when, Matrix2, GeometryOffsetAttribute, Transforms, ComponentDatatype, RuntimeError, GeometryAttribute, GeometryAttributes, IndexDatatype, PolygonPipeline, RectangleGeometryLibrary, combine, WebGLConstants, EllipsoidRhumbLine) { 'use strict';
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const bottomBoundingSphere = new Transforms.BoundingSphere();
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const topBoundingSphere = new Transforms.BoundingSphere();
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const positionScratch = new Matrix2.Cartesian3();
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const rectangleScratch = new Matrix2.Rectangle();
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function constructRectangle(geometry, computedOptions) {
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const ellipsoid = geometry._ellipsoid;
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const height = computedOptions.height;
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const width = computedOptions.width;
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const northCap = computedOptions.northCap;
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const southCap = computedOptions.southCap;
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let rowHeight = height;
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let widthMultiplier = 2;
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let size = 0;
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let corners = 4;
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if (northCap) {
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widthMultiplier -= 1;
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rowHeight -= 1;
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size += 1;
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corners -= 2;
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}
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if (southCap) {
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widthMultiplier -= 1;
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rowHeight -= 1;
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size += 1;
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corners -= 2;
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}
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size += widthMultiplier * width + 2 * rowHeight - corners;
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const positions = new Float64Array(size * 3);
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let posIndex = 0;
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let row = 0;
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let col;
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const position = positionScratch;
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if (northCap) {
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RectangleGeometryLibrary.RectangleGeometryLibrary.computePosition(
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computedOptions,
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ellipsoid,
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false,
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row,
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0,
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position
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);
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positions[posIndex++] = position.x;
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positions[posIndex++] = position.y;
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positions[posIndex++] = position.z;
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} else {
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for (col = 0; col < width; col++) {
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RectangleGeometryLibrary.RectangleGeometryLibrary.computePosition(
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computedOptions,
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ellipsoid,
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false,
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row,
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col,
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position
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);
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positions[posIndex++] = position.x;
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positions[posIndex++] = position.y;
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positions[posIndex++] = position.z;
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}
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}
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col = width - 1;
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for (row = 1; row < height; row++) {
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RectangleGeometryLibrary.RectangleGeometryLibrary.computePosition(
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computedOptions,
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ellipsoid,
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false,
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row,
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col,
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position
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);
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positions[posIndex++] = position.x;
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positions[posIndex++] = position.y;
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positions[posIndex++] = position.z;
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}
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row = height - 1;
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if (!southCap) {
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// if southCap is true, we dont need to add any more points because the south pole point was added by the iteration above
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for (col = width - 2; col >= 0; col--) {
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RectangleGeometryLibrary.RectangleGeometryLibrary.computePosition(
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computedOptions,
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ellipsoid,
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false,
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row,
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col,
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position
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);
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positions[posIndex++] = position.x;
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positions[posIndex++] = position.y;
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positions[posIndex++] = position.z;
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}
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}
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col = 0;
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for (row = height - 2; row > 0; row--) {
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RectangleGeometryLibrary.RectangleGeometryLibrary.computePosition(
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computedOptions,
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ellipsoid,
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false,
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row,
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col,
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position
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);
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positions[posIndex++] = position.x;
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positions[posIndex++] = position.y;
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positions[posIndex++] = position.z;
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}
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const indicesSize = (positions.length / 3) * 2;
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const indices = IndexDatatype.IndexDatatype.createTypedArray(
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positions.length / 3,
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indicesSize
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);
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let index = 0;
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for (let i = 0; i < positions.length / 3 - 1; i++) {
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indices[index++] = i;
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indices[index++] = i + 1;
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}
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indices[index++] = positions.length / 3 - 1;
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indices[index++] = 0;
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const geo = new GeometryAttribute.Geometry({
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attributes: new GeometryAttributes.GeometryAttributes(),
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primitiveType: GeometryAttribute.PrimitiveType.LINES,
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});
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geo.attributes.position = new GeometryAttribute.GeometryAttribute({
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componentDatatype: ComponentDatatype.ComponentDatatype.DOUBLE,
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componentsPerAttribute: 3,
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values: positions,
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});
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geo.indices = indices;
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return geo;
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}
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function constructExtrudedRectangle(rectangleGeometry, computedOptions) {
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const surfaceHeight = rectangleGeometry._surfaceHeight;
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const extrudedHeight = rectangleGeometry._extrudedHeight;
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const ellipsoid = rectangleGeometry._ellipsoid;
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const minHeight = extrudedHeight;
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const maxHeight = surfaceHeight;
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const geo = constructRectangle(rectangleGeometry, computedOptions);
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const height = computedOptions.height;
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const width = computedOptions.width;
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const topPositions = PolygonPipeline.PolygonPipeline.scaleToGeodeticHeight(
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geo.attributes.position.values,
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maxHeight,
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ellipsoid,
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false
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);
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let length = topPositions.length;
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const positions = new Float64Array(length * 2);
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positions.set(topPositions);
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const bottomPositions = PolygonPipeline.PolygonPipeline.scaleToGeodeticHeight(
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geo.attributes.position.values,
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minHeight,
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ellipsoid
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);
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positions.set(bottomPositions, length);
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geo.attributes.position.values = positions;
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const northCap = computedOptions.northCap;
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const southCap = computedOptions.southCap;
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let corners = 4;
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if (northCap) {
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corners -= 1;
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}
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if (southCap) {
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corners -= 1;
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}
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const indicesSize = (positions.length / 3 + corners) * 2;
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const indices = IndexDatatype.IndexDatatype.createTypedArray(
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positions.length / 3,
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indicesSize
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);
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length = positions.length / 6;
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let index = 0;
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for (let i = 0; i < length - 1; i++) {
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indices[index++] = i;
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indices[index++] = i + 1;
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indices[index++] = i + length;
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indices[index++] = i + length + 1;
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}
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indices[index++] = length - 1;
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indices[index++] = 0;
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indices[index++] = length + length - 1;
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indices[index++] = length;
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indices[index++] = 0;
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indices[index++] = length;
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let bottomCorner;
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if (northCap) {
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bottomCorner = height - 1;
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} else {
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const topRightCorner = width - 1;
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indices[index++] = topRightCorner;
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indices[index++] = topRightCorner + length;
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bottomCorner = width + height - 2;
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}
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indices[index++] = bottomCorner;
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indices[index++] = bottomCorner + length;
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if (!southCap) {
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const bottomLeftCorner = width + bottomCorner - 1;
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indices[index++] = bottomLeftCorner;
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indices[index] = bottomLeftCorner + length;
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}
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geo.indices = indices;
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return geo;
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}
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/**
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* A description of the outline of a a cartographic rectangle on an ellipsoid centered at the origin.
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*
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* @alias RectangleOutlineGeometry
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* @constructor
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*
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* @param {Object} options Object with the following properties:
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* @param {Rectangle} options.rectangle A cartographic rectangle with north, south, east and west properties in radians.
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* @param {Ellipsoid} [options.ellipsoid=Ellipsoid.WGS84] The ellipsoid on which the rectangle lies.
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* @param {Number} [options.granularity=CesiumMath.RADIANS_PER_DEGREE] The distance, in radians, between each latitude and longitude. Determines the number of positions in the buffer.
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* @param {Number} [options.height=0.0] The distance in meters between the rectangle and the ellipsoid surface.
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* @param {Number} [options.rotation=0.0] The rotation of the rectangle, in radians. A positive rotation is counter-clockwise.
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* @param {Number} [options.extrudedHeight] The distance in meters between the rectangle's extruded face and the ellipsoid surface.
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*
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* @exception {DeveloperError} <code>options.rectangle.north</code> must be in the interval [<code>-Pi/2</code>, <code>Pi/2</code>].
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* @exception {DeveloperError} <code>options.rectangle.south</code> must be in the interval [<code>-Pi/2</code>, <code>Pi/2</code>].
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* @exception {DeveloperError} <code>options.rectangle.east</code> must be in the interval [<code>-Pi</code>, <code>Pi</code>].
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* @exception {DeveloperError} <code>options.rectangle.west</code> must be in the interval [<code>-Pi</code>, <code>Pi</code>].
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* @exception {DeveloperError} <code>options.rectangle.north</code> must be greater than <code>rectangle.south</code>.
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*
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* @see RectangleOutlineGeometry#createGeometry
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*
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* @example
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* const rectangle = new Cesium.RectangleOutlineGeometry({
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* ellipsoid : Cesium.Ellipsoid.WGS84,
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* rectangle : Cesium.Rectangle.fromDegrees(-80.0, 39.0, -74.0, 42.0),
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* height : 10000.0
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* });
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* const geometry = Cesium.RectangleOutlineGeometry.createGeometry(rectangle);
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*/
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function RectangleOutlineGeometry(options) {
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options = when.defaultValue(options, when.defaultValue.EMPTY_OBJECT);
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const rectangle = options.rectangle;
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const granularity = when.defaultValue(
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options.granularity,
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ComponentDatatype.CesiumMath.RADIANS_PER_DEGREE
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);
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const ellipsoid = when.defaultValue(options.ellipsoid, Matrix2.Ellipsoid.WGS84);
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const rotation = when.defaultValue(options.rotation, 0.0);
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//>>includeStart('debug', pragmas.debug);
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if (!when.defined(rectangle)) {
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throw new RuntimeError.DeveloperError("rectangle is required.");
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}
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Matrix2.Rectangle.validate(rectangle);
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if (rectangle.north < rectangle.south) {
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throw new RuntimeError.DeveloperError(
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"options.rectangle.north must be greater than options.rectangle.south"
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);
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}
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//>>includeEnd('debug');
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const height = when.defaultValue(options.height, 0.0);
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const extrudedHeight = when.defaultValue(options.extrudedHeight, height);
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this._rectangle = Matrix2.Rectangle.clone(rectangle);
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this._granularity = granularity;
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this._ellipsoid = ellipsoid;
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this._surfaceHeight = Math.max(height, extrudedHeight);
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this._rotation = rotation;
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this._extrudedHeight = Math.min(height, extrudedHeight);
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this._offsetAttribute = options.offsetAttribute;
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this._workerName = "createRectangleOutlineGeometry";
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}
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/**
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* The number of elements used to pack the object into an array.
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* @type {Number}
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*/
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RectangleOutlineGeometry.packedLength =
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Matrix2.Rectangle.packedLength + Matrix2.Ellipsoid.packedLength + 5;
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/**
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* Stores the provided instance into the provided array.
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*
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* @param {RectangleOutlineGeometry} value The value to pack.
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* @param {Number[]} array The array to pack into.
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* @param {Number} [startingIndex=0] The index into the array at which to start packing the elements.
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*
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* @returns {Number[]} The array that was packed into
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*/
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RectangleOutlineGeometry.pack = function (value, array, startingIndex) {
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//>>includeStart('debug', pragmas.debug);
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if (!when.defined(value)) {
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throw new RuntimeError.DeveloperError("value is required");
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}
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if (!when.defined(array)) {
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throw new RuntimeError.DeveloperError("array is required");
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}
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//>>includeEnd('debug');
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startingIndex = when.defaultValue(startingIndex, 0);
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Matrix2.Rectangle.pack(value._rectangle, array, startingIndex);
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startingIndex += Matrix2.Rectangle.packedLength;
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Matrix2.Ellipsoid.pack(value._ellipsoid, array, startingIndex);
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startingIndex += Matrix2.Ellipsoid.packedLength;
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array[startingIndex++] = value._granularity;
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array[startingIndex++] = value._surfaceHeight;
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array[startingIndex++] = value._rotation;
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array[startingIndex++] = value._extrudedHeight;
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array[startingIndex] = when.defaultValue(value._offsetAttribute, -1);
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return array;
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};
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const scratchRectangle = new Matrix2.Rectangle();
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const scratchEllipsoid = Matrix2.Ellipsoid.clone(Matrix2.Ellipsoid.UNIT_SPHERE);
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const scratchOptions = {
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rectangle: scratchRectangle,
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ellipsoid: scratchEllipsoid,
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granularity: undefined,
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height: undefined,
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rotation: undefined,
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extrudedHeight: undefined,
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offsetAttribute: undefined,
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};
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/**
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* Retrieves an instance from a packed array.
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*
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* @param {Number[]} array The packed array.
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* @param {Number} [startingIndex=0] The starting index of the element to be unpacked.
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* @param {RectangleOutlineGeometry} [result] The object into which to store the result.
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* @returns {RectangleOutlineGeometry} The modified result parameter or a new Quaternion instance if one was not provided.
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*/
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RectangleOutlineGeometry.unpack = function (array, startingIndex, result) {
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//>>includeStart('debug', pragmas.debug);
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if (!when.defined(array)) {
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throw new RuntimeError.DeveloperError("array is required");
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}
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//>>includeEnd('debug');
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startingIndex = when.defaultValue(startingIndex, 0);
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const rectangle = Matrix2.Rectangle.unpack(array, startingIndex, scratchRectangle);
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startingIndex += Matrix2.Rectangle.packedLength;
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const ellipsoid = Matrix2.Ellipsoid.unpack(array, startingIndex, scratchEllipsoid);
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startingIndex += Matrix2.Ellipsoid.packedLength;
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const granularity = array[startingIndex++];
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const height = array[startingIndex++];
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const rotation = array[startingIndex++];
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const extrudedHeight = array[startingIndex++];
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const offsetAttribute = array[startingIndex];
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if (!when.defined(result)) {
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scratchOptions.granularity = granularity;
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scratchOptions.height = height;
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scratchOptions.rotation = rotation;
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scratchOptions.extrudedHeight = extrudedHeight;
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scratchOptions.offsetAttribute =
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offsetAttribute === -1 ? undefined : offsetAttribute;
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return new RectangleOutlineGeometry(scratchOptions);
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}
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result._rectangle = Matrix2.Rectangle.clone(rectangle, result._rectangle);
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result._ellipsoid = Matrix2.Ellipsoid.clone(ellipsoid, result._ellipsoid);
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result._surfaceHeight = height;
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result._rotation = rotation;
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result._extrudedHeight = extrudedHeight;
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result._offsetAttribute =
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offsetAttribute === -1 ? undefined : offsetAttribute;
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return result;
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};
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const nwScratch = new Matrix2.Cartographic();
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/**
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* Computes the geometric representation of an outline of a rectangle, including its vertices, indices, and a bounding sphere.
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*
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* @param {RectangleOutlineGeometry} rectangleGeometry A description of the rectangle outline.
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* @returns {Geometry|undefined} The computed vertices and indices.
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*
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* @exception {DeveloperError} Rotated rectangle is invalid.
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*/
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RectangleOutlineGeometry.createGeometry = function (rectangleGeometry) {
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const rectangle = rectangleGeometry._rectangle;
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const ellipsoid = rectangleGeometry._ellipsoid;
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const computedOptions = RectangleGeometryLibrary.RectangleGeometryLibrary.computeOptions(
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rectangle,
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rectangleGeometry._granularity,
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rectangleGeometry._rotation,
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0,
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rectangleScratch,
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nwScratch
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);
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let geometry;
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let boundingSphere;
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if (
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ComponentDatatype.CesiumMath.equalsEpsilon(
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rectangle.north,
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rectangle.south,
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ComponentDatatype.CesiumMath.EPSILON10
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) ||
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ComponentDatatype.CesiumMath.equalsEpsilon(
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rectangle.east,
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rectangle.west,
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ComponentDatatype.CesiumMath.EPSILON10
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)
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) {
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return undefined;
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}
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const surfaceHeight = rectangleGeometry._surfaceHeight;
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const extrudedHeight = rectangleGeometry._extrudedHeight;
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const extrude = !ComponentDatatype.CesiumMath.equalsEpsilon(
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surfaceHeight,
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extrudedHeight,
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0,
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ComponentDatatype.CesiumMath.EPSILON2
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);
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let offsetValue;
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if (extrude) {
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geometry = constructExtrudedRectangle(rectangleGeometry, computedOptions);
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if (when.defined(rectangleGeometry._offsetAttribute)) {
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const size = geometry.attributes.position.values.length / 3;
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let offsetAttribute = new Uint8Array(size);
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if (rectangleGeometry._offsetAttribute === GeometryOffsetAttribute.GeometryOffsetAttribute.TOP) {
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offsetAttribute = GeometryOffsetAttribute.arrayFill(offsetAttribute, 1, 0, size / 2);
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} else {
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offsetValue =
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rectangleGeometry._offsetAttribute === GeometryOffsetAttribute.GeometryOffsetAttribute.NONE
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? 0
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: 1;
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offsetAttribute = GeometryOffsetAttribute.arrayFill(offsetAttribute, offsetValue);
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}
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geometry.attributes.applyOffset = new GeometryAttribute.GeometryAttribute({
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componentDatatype: ComponentDatatype.ComponentDatatype.UNSIGNED_BYTE,
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componentsPerAttribute: 1,
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values: offsetAttribute,
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});
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}
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const topBS = Transforms.BoundingSphere.fromRectangle3D(
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rectangle,
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ellipsoid,
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surfaceHeight,
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topBoundingSphere
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);
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const bottomBS = Transforms.BoundingSphere.fromRectangle3D(
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rectangle,
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ellipsoid,
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extrudedHeight,
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bottomBoundingSphere
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);
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boundingSphere = Transforms.BoundingSphere.union(topBS, bottomBS);
|
|
} else {
|
|
geometry = constructRectangle(rectangleGeometry, computedOptions);
|
|
geometry.attributes.position.values = PolygonPipeline.PolygonPipeline.scaleToGeodeticHeight(
|
|
geometry.attributes.position.values,
|
|
surfaceHeight,
|
|
ellipsoid,
|
|
false
|
|
);
|
|
|
|
if (when.defined(rectangleGeometry._offsetAttribute)) {
|
|
const length = geometry.attributes.position.values.length;
|
|
const applyOffset = new Uint8Array(length / 3);
|
|
offsetValue =
|
|
rectangleGeometry._offsetAttribute === GeometryOffsetAttribute.GeometryOffsetAttribute.NONE
|
|
? 0
|
|
: 1;
|
|
GeometryOffsetAttribute.arrayFill(applyOffset, offsetValue);
|
|
geometry.attributes.applyOffset = new GeometryAttribute.GeometryAttribute({
|
|
componentDatatype: ComponentDatatype.ComponentDatatype.UNSIGNED_BYTE,
|
|
componentsPerAttribute: 1,
|
|
values: applyOffset,
|
|
});
|
|
}
|
|
|
|
boundingSphere = Transforms.BoundingSphere.fromRectangle3D(
|
|
rectangle,
|
|
ellipsoid,
|
|
surfaceHeight
|
|
);
|
|
}
|
|
|
|
return new GeometryAttribute.Geometry({
|
|
attributes: geometry.attributes,
|
|
indices: geometry.indices,
|
|
primitiveType: GeometryAttribute.PrimitiveType.LINES,
|
|
boundingSphere: boundingSphere,
|
|
offsetAttribute: rectangleGeometry._offsetAttribute,
|
|
});
|
|
};
|
|
|
|
function createRectangleOutlineGeometry(rectangleGeometry, offset) {
|
|
if (when.defined(offset)) {
|
|
rectangleGeometry = RectangleOutlineGeometry.unpack(
|
|
rectangleGeometry,
|
|
offset
|
|
);
|
|
}
|
|
rectangleGeometry._ellipsoid = Matrix2.Ellipsoid.clone(rectangleGeometry._ellipsoid);
|
|
rectangleGeometry._rectangle = Matrix2.Rectangle.clone(rectangleGeometry._rectangle);
|
|
return RectangleOutlineGeometry.createGeometry(rectangleGeometry);
|
|
}
|
|
|
|
return createRectangleOutlineGeometry;
|
|
|
|
}));
|
|
//# sourceMappingURL=createRectangleOutlineGeometry.js.map
|