使用Python实现了一下我们同事的C++高斯投影正反算,实际跑通,可用。
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#!/ usr/bin/python # -*- coding:utf-8 -*- import math def LatLon2XY(latitude, longitude): a = 6378137.0 # b = 6356752.3142 # c = 6399593.6258 # alpha = 1 / 298.257223563 e2 = 0.0066943799013 # epep = 0.00673949674227 #将经纬度转换为弧度 latitude2Rad = (math.pi / 180.0 ) * latitude beltNo = int ((longitude + 1.5 ) / 3.0 ) #计算3度带投影度带号 L = beltNo * 3 #计算中央经线 l0 = longitude - L #经差 tsin = math.sin(latitude2Rad) tcos = math.cos(latitude2Rad) t = math.tan(latitude2Rad) m = (math.pi / 180.0 ) * l0 * tcos et2 = e2 * pow (tcos, 2 ) et3 = e2 * pow (tsin, 2 ) X = 111132.9558 * latitude - 16038.6496 * math.sin( 2 * latitude2Rad) + 16.8607 * math.sin( 4 * latitude2Rad) - 0.0220 * math.sin( 6 * latitude2Rad) N = a / math.sqrt( 1 - et3) x = X + N * t * ( 0.5 * pow (m, 2 ) + ( 5.0 - pow (t, 2 ) + 9.0 * et2 + 4 * pow (et2, 2 )) * pow (m, 4 ) / 24.0 + ( 61.0 - 58.0 * pow (t, 2 ) + pow (t, 4 )) * pow (m, 6 ) / 720.0 ) y = 500000 + N * (m + ( 1.0 - pow (t, 2 ) + et2) * pow (m, 3 ) / 6.0 + ( 5.0 - 18.0 * pow (t, 2 ) + pow (t, 4 ) + 14.0 * et2 - 58.0 * et2 * pow (t, 2 )) * pow (m, 5 ) / 120.0 ) return x, y def XY2LatLon(X, Y, L0): iPI = 0.0174532925199433 a = 6378137.0 f = 0.00335281006247 ZoneWide = 3 #按3度带进行投影 ProjNo = int (X / 1000000 ) L0 = L0 * iPI X0 = ProjNo * 1000000 + 500000 Y0 = 0 xval = X - X0 yval = Y - Y0 e2 = 2 * f - f * f #第一偏心率平方 e1 = ( 1.0 - math.sqrt( 1 - e2)) / ( 1.0 + math.sqrt( 1 - e2)) ee = e2 / ( 1 - e2) #第二偏心率平方 M = yval u = M / (a * ( 1 - e2 / 4 - 3 * e2 * e2 / 64 - 5 * e2 * e2 * e2 / 256 )) fai = u \ + ( 3 * e1 / 2 - 27 * e1 * e1 * e1 / 32 ) * math.sin( 2 * u) \ + ( 21 * e1 * e1 / 16 - 55 * e1 * e1 * e1 * e1 / 32 ) * math.sin( 4 * u) \ + ( 151 * e1 * e1 * e1 / 96 ) * math.sin( 6 * u)\ + ( 1097 * e1 * e1 * e1 * e1 / 512 ) * math.sin( 8 * u) C = ee * math.cos(fai) * math.cos(fai) T = math.tan(fai) * math.tan(fai) NN = a / math.sqrt( 1.0 - e2 * math.sin(fai) * math.sin(fai)) R = a * ( 1 - e2) / math.sqrt( ( 1 - e2 * math.sin(fai) * math.sin(fai)) * ( 1 - e2 * math.sin(fai) * math.sin(fai)) * ( 1 - e2 * math.sin(fai) * math.sin(fai))) D = xval / NN #计算经纬度(弧度单位的经纬度) longitude1 = L0 + (D - ( 1 + 2 * T + C) * D * D * D / 6 + ( 5 - 2 * C + 28 * T - 3 * C * C + 8 * ee + 24 * T * T) * D * D * D * D * D / 120 ) / math.cos(fai) latitude1 = fai - (NN * math.tan(fai) / R) * ( D * D / 2 - ( 5 + 3 * T + 10 * C - 4 * C * C - 9 * ee) * D * D * D * D / 24 + ( 61 + 90 * T + 298 * C + 45 * T * T - 256 * ee - 3 * C * C) * D * D * D * D * D * D / 720 ) #换换为deg longitude = longitude1 / iPI latitude = latitude1 / iPI return latitude, longitude # # print LatLon2XY(40.07837722329, 116.23514827596) # print XY2LatLon(434760.7611718801, 4438512.040474475, 117.0) |
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原文链接:https://blog.csdn.net/normalstudent/article/details/82223350