谷歌地图:是多边形内的纬度/经度?
Sta*_*bie 10 php google-maps google-maps-api-3
给定一对lat/lng值,如何确定该对是否在多边形内?我需要在PHP中执行此操作.我发现Google Maps API有一种containsLocation方法:https://developers.google.com/maps/documentation/javascript/reference.有没有办法从PHP中利用这个?
dav*_*han 16
查找点是否在多边形中的一种方法是计算从该点(在任何方向上)绘制的线与多边形边界相交的次数.如果它们相交偶数次,则该点在外面.
我已经在php中的这个Point in Polygon文章中实现了C代码,并使用下面的多边形来说明.
<?php
//Point-In-Polygon Algorithm
$polySides = 4; //how many corners the polygon has
$polyX = array(4,9,11,2);//horizontal coordinates of corners
$polyY = array(10,7,2,2);//vertical coordinates of corners
$x = 3.5;
$y = 13.5;//Outside
//$y = 3.5;//Inside
function pointInPolygon($polySides,$polyX,$polyY,$x,$y) {
$j = $polySides-1 ;
$oddNodes = 0;
for ($i=0; $i<$polySides; $i++) {
if ($polyY[$i]<$y && $polyY[$j]>=$y
|| $polyY[$j]<$y && $polyY[$i]>=$y) {
if ($polyX[$i]+($y-$polyY[$i])/($polyY[$j]-$polyY[$i])*($polyX[$j]-$polyX[$i])<$x) {
$oddNodes=!$oddNodes; }}
$j=$i; }
return $oddNodes; }
if (pointInPolygon($polySides,$polyX,$polyY,$x,$y)){
echo "Is in polygon!";
}
else echo "Is not in polygon";
?>