最近工作中遇到经纬度搜索的需求,初步想法是计算所有目标城市距该点的距离,然后进行筛选,但头疼的是,没有所有产品的缓存,计算距离的操作只能放到DB端,这样是不可接受的;所以打算先将所有产品放到缓存中,再进行计算。可这么做的话,一方面改造工时比较长,另一方面目前的缓存系统不是很稳定,几番思考征得产品经理同意后得出一个不精确的方形搜索方案。
即以目标点为中心,画一个正方型,在应用端根据目标点经纬度、范围距离、角度算出正方型左下点和右上点的经纬度,然后以此去DB里between。恩,在要求不精确且没有缓存的情况下这是一个较好的折中方案。
于是接下来就开始考虑算法,参考了博客园的帖子(http://www.cnblogs.com/hellofox2000/archive/2010/07/13/1776159.html#2042746),试验后发现计算两点间距离的方法偏差有点大,于是对其做了一些修改,作为工具类收藏起来,代码如下:
实体类:
GeographicPoint
using System; using System.Collections.Generic; using System.Linq; using System.Text; namespace Xinwei.Test.Geography { public class GeographicPoint { /// <summary> /// 赤道半径 /// </summary> public const double EARTH_RADIUS = 6378137; /// <summary> /// 极半径 /// </summary> public const double POLAR_RADIUS = 6356725; /// <summary> /// /// </summary> public GeographicPoint() { } /// <summary> /// 构造函数 /// </summary> /// <param name="lat">维度</param> /// <param name="lon">经度</param> public GeographicPoint(double lat, double lon) { this.Latitude = lat; this.Longitude = lon; } /// <summary> /// 纬度 /// </summary> public double Latitude { get; set; } /// <summary> /// 经度 /// </summary> public double Longitude { get; set; } /// <summary> /// 纬度的弧度 /// </summary> public double RadianOfLatitude { get { return Latitude * Math.PI / 180; } } /// <summary> /// 经度的弧度 /// </summary> public double RadianOfLongitude { get { return Longitude * Math.PI / 180; } } /// <summary> /// 暂时不知意义,请大神们帮助 /// </summary> public double Ec { get { return POLAR_RADIUS + (EARTH_RADIUS - POLAR_RADIUS) * (90 - Latitude) / 90; } } /// <summary> /// 暂时不知意义,请大神们帮助 /// </summary> public double Ed { get { return Ec * Math.Cos(RadianOfLatitude); } } } }
Helper类:
GeographyHelper
using System; using System.Collections.Generic; using System.Linq; using System.Text; namespace Xinwei.Test.Geography { public static class GeographyHelper { /// <summary> /// 根据两点的经纬度计算两点距离 /// </summary> /// <param name="sourcePoint">A点维度</param> /// <param name="destinationPoint">B点经度</param> /// <returns></returns> public static double GetDistance(GeographicPoint sourcePoint, GeographicPoint destinationPoint) { if (Math.Abs(sourcePoint.Latitude) > 90 || Math.Abs(destinationPoint.Latitude) > 90 || Math.Abs(sourcePoint.Longitude) > 180 || Math.Abs(destinationPoint.Longitude) > 180) throw new ArgumentException("经纬度信息不正确!"); double distance = GeographicPoint.EARTH_RADIUS / 1000 * Math.Acos(Math.Cos(sourcePoint.RadianOfLatitude) * Math.Cos(destinationPoint.RadianOfLatitude) * Math.Cos(destinationPoint.RadianOfLongitude - sourcePoint.RadianOfLongitude) + Math.Sin(sourcePoint.RadianOfLatitude) * Math.Sin(destinationPoint.RadianOfLatitude)); return distance; } /// <summary> /// 已知点A经纬度,根据B点据A点的距离,和方位,求B点的经纬度 /// </summary> /// <param name="sourcePoint">已知点A</param> /// <param name="distance">B点到A点的距离 </param> /// <param name="angle">B点相对于A点的方位,12点钟方向为零度,角度顺时针增加</param> /// <returns>B点的经纬度坐标</returns> public static GeographicPoint GetGeographicPoint(GeographicPoint sourcePoint, double distance, double angle) { double dx = distance * 1000 * Math.Sin(angle * Math.PI / 180); double dy = distance * 1000 * Math.Cos(angle * Math.PI / 180); double longitude = (dx / sourcePoint.Ed + sourcePoint.RadianOfLongitude) * 180 / Math.PI; double latitude = (dy / sourcePoint.Ec + sourcePoint.RadianOfLatitude) * 180 / Math.PI; GeographicPoint destinationPoint = new GeographicPoint(latitude, longitude); return destinationPoint; } } }