1 | (function(){d3.geo = {}; |
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2 | // TODO clip input coordinates on opposite hemisphere |
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3 | d3.geo.azimuthal = function() { |
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4 | var mode = "orthographic", // or stereographic |
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5 | origin, |
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6 | scale = 200, |
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7 | translate = [480, 250], |
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8 | x0, |
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9 | y0, |
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10 | cy0, |
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11 | sy0; |
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12 | |
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13 | function azimuthal(coordinates) { |
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14 | var x1 = coordinates[0] * d3_radians - x0, |
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15 | y1 = coordinates[1] * d3_radians, |
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16 | cx1 = Math.cos(x1), |
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17 | sx1 = Math.sin(x1), |
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18 | cy1 = Math.cos(y1), |
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19 | sy1 = Math.sin(y1), |
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20 | k = mode == "stereographic" ? 1 / (1 + sy0 * sy1 + cy0 * cy1 * cx1) : 1, |
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21 | x = k * cy1 * sx1, |
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22 | y = k * (sy0 * cy1 * cx1 - cy0 * sy1); |
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23 | return [ |
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24 | scale * x + translate[0], |
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25 | scale * y + translate[1] |
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26 | ]; |
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27 | } |
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28 | |
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29 | azimuthal.mode = function(x) { |
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30 | if (!arguments.length) return mode; |
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31 | mode = x; |
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32 | return azimuthal; |
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33 | }; |
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34 | |
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35 | azimuthal.origin = function(x) { |
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36 | if (!arguments.length) return origin; |
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37 | origin = x; |
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38 | x0 = origin[0] * d3_radians; |
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39 | y0 = origin[1] * d3_radians; |
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40 | cy0 = Math.cos(y0); |
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41 | sy0 = Math.sin(y0); |
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42 | return azimuthal; |
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43 | }; |
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44 | |
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45 | azimuthal.scale = function(x) { |
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46 | if (!arguments.length) return scale; |
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47 | scale = +x; |
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48 | return azimuthal; |
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49 | }; |
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50 | |
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51 | azimuthal.translate = function(x) { |
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52 | if (!arguments.length) return translate; |
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53 | translate = [+x[0], +x[1]]; |
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54 | return azimuthal; |
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55 | }; |
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56 | |
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57 | return azimuthal.origin([0, 0]); |
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58 | }; |
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59 | // Derived from Tom Carden's Albers implementation for Protovis. |
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60 | // http://gist.github.com/476238 |
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61 | // http://mathworld.wolfram.com/AlbersEqual-AreaConicProjection.html |
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62 | |
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63 | d3.geo.albers = function() { |
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64 | var origin = [-98, 38], |
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65 | parallels = [29.5, 45.5], |
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66 | scale = 1000, |
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67 | translate = [480, 250], |
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68 | lng0, // d3_radians * origin[0] |
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69 | n, |
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70 | C, |
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71 | p0; |
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72 | |
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73 | function albers(coordinates) { |
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74 | var t = n * (d3_radians * coordinates[0] - lng0), |
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75 | p = Math.sqrt(C - 2 * n * Math.sin(d3_radians * coordinates[1])) / n; |
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76 | return [ |
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77 | scale * p * Math.sin(t) + translate[0], |
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78 | scale * (p * Math.cos(t) - p0) + translate[1] |
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79 | ]; |
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80 | } |
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81 | |
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82 | function reload() { |
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83 | var phi1 = d3_radians * parallels[0], |
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84 | phi2 = d3_radians * parallels[1], |
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85 | lat0 = d3_radians * origin[1], |
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86 | s = Math.sin(phi1), |
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87 | c = Math.cos(phi1); |
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88 | lng0 = d3_radians * origin[0]; |
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89 | n = .5 * (s + Math.sin(phi2)); |
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90 | C = c * c + 2 * n * s; |
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91 | p0 = Math.sqrt(C - 2 * n * Math.sin(lat0)) / n; |
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92 | return albers; |
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93 | } |
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94 | |
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95 | albers.origin = function(x) { |
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96 | if (!arguments.length) return origin; |
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97 | origin = [+x[0], +x[1]]; |
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98 | return reload(); |
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99 | }; |
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100 | |
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101 | albers.parallels = function(x) { |
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102 | if (!arguments.length) return parallels; |
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103 | parallels = [+x[0], +x[1]]; |
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104 | return reload(); |
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105 | }; |
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106 | |
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107 | albers.scale = function(x) { |
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108 | if (!arguments.length) return scale; |
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109 | scale = +x; |
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110 | return albers; |
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111 | }; |
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112 | |
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113 | albers.translate = function(x) { |
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114 | if (!arguments.length) return translate; |
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115 | translate = [+x[0], +x[1]]; |
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116 | return albers; |
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117 | }; |
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118 | |
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119 | return reload(); |
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120 | }; |
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121 | |
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122 | // A composite projection for the United States, 960x500. The set of standard |
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123 | // parallels for each region comes from USGS, which is published here: |
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124 | // http://egsc.usgs.gov/isb/pubs/MapProjections/projections.html#albers |
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125 | // TODO allow the composite projection to be rescaled? |
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126 | d3.geo.albersUsa = function() { |
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127 | var lower48 = d3.geo.albers(); |
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128 | |
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129 | var alaska = d3.geo.albers() |
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130 | .origin([-160, 60]) |
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131 | .parallels([55, 65]); |
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132 | |
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133 | var hawaii = d3.geo.albers() |
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134 | .origin([-160, 20]) |
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135 | .parallels([8, 18]); |
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136 | |
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137 | var puertoRico = d3.geo.albers() |
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138 | .origin([-60, 10]) |
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139 | .parallels([8, 18]); |
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140 | |
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141 | function albersUsa(coordinates) { |
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142 | var lon = coordinates[0], |
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143 | lat = coordinates[1]; |
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144 | return (lat < 25 |
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145 | ? (lon < -100 ? hawaii : puertoRico) |
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146 | : (lat > 50 ? alaska : lower48))(coordinates); |
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147 | } |
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148 | |
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149 | albersUsa.scale = function(x) { |
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150 | if (!arguments.length) return lower48.scale(); |
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151 | lower48.scale(x); |
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152 | alaska.scale(x * .6); |
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153 | hawaii.scale(x); |
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154 | puertoRico.scale(x * 1.5); |
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155 | return albersUsa.translate(lower48.translate()); |
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156 | }; |
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157 | |
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158 | albersUsa.translate = function(x) { |
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159 | if (!arguments.length) return lower48.translate(); |
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160 | var dz = lower48.scale() / 1000, |
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161 | dx = x[0], |
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162 | dy = x[1]; |
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163 | lower48.translate(x); |
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164 | alaska.translate([dx - 400 * dz, dy + 170 * dz]); |
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165 | hawaii.translate([dx - 190 * dz, dy + 200 * dz]); |
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166 | puertoRico.translate([dx + 580 * dz, dy + 430 * dz]); |
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167 | return albersUsa; |
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168 | }; |
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169 | |
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170 | return albersUsa.scale(lower48.scale()); |
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171 | }; |
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172 | |
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173 | var d3_radians = Math.PI / 180; |
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174 | d3.geo.mercator = function() { |
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175 | var scale = 500, |
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176 | translate = [480, 250]; |
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177 | |
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178 | function mercator(coordinates) { |
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179 | var x = (coordinates[0]) / 360, |
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180 | y = (-180 / Math.PI * Math.log(Math.tan(Math.PI / 4 + coordinates[1] * Math.PI / 360))) / 360; |
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181 | return [ |
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182 | scale * x + translate[0], |
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183 | scale * Math.max(-.5, Math.min(.5, y)) + translate[1] |
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184 | ]; |
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185 | } |
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186 | |
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187 | mercator.scale = function(x) { |
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188 | if (!arguments.length) return scale; |
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189 | scale = +x; |
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190 | return mercator; |
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191 | }; |
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192 | |
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193 | mercator.translate = function(x) { |
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194 | if (!arguments.length) return translate; |
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195 | translate = [+x[0], +x[1]]; |
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196 | return mercator; |
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197 | }; |
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198 | |
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199 | return mercator; |
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200 | }; |
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201 | /** |
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202 | * Returns a function that, given a GeoJSON object (e.g., a feature), returns |
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203 | * the corresponding SVG path. The function can be customized by overriding the |
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204 | * projection. Point features are mapped to circles with a default radius of |
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205 | * 4.5px; the radius can be specified either as a constant or a function that |
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206 | * is evaluated per object. |
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207 | */ |
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208 | d3.geo.path = function() { |
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209 | var pointRadius = 4.5, |
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210 | pointCircle = d3_path_circle(pointRadius), |
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211 | projection = d3.geo.albersUsa(); |
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212 | |
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213 | function path(d, i) { |
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214 | if (typeof pointRadius === "function") { |
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215 | pointCircle = d3_path_circle(pointRadius.apply(this, arguments)); |
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216 | } |
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217 | return d3_geo_pathType(pathTypes, d); |
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218 | } |
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219 | |
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220 | function project(coordinates) { |
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221 | return projection(coordinates).join(","); |
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222 | } |
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223 | |
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224 | var pathTypes = { |
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225 | |
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226 | FeatureCollection: function(f) { |
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227 | var path = [], |
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228 | features = f.features, |
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229 | i = -1, // features.index |
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230 | n = features.length; |
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231 | while (++i < n) path.push(d3_geo_pathType(pathTypes, features[i].geometry)); |
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232 | return path.join(""); |
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233 | }, |
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234 | |
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235 | Feature: function(f) { |
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236 | return d3_geo_pathType(pathTypes, f.geometry); |
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237 | }, |
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238 | |
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239 | Point: function(o) { |
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240 | return "M" + project(o.coordinates) + pointCircle; |
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241 | }, |
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242 | |
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243 | MultiPoint: function(o) { |
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244 | var path = [], |
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245 | coordinates = o.coordinates, |
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246 | i = -1, // coordinates.index |
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247 | n = coordinates.length; |
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248 | while (++i < n) path.push("M", project(coordinates[i]), pointCircle); |
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249 | return path.join(""); |
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250 | }, |
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251 | |
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252 | LineString: function(o) { |
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253 | var path = ["M"], |
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254 | coordinates = o.coordinates, |
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255 | i = -1, // coordinates.index |
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256 | n = coordinates.length; |
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257 | while (++i < n) path.push(project(coordinates[i]), "L"); |
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258 | path.pop(); |
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259 | return path.join(""); |
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260 | }, |
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261 | |
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262 | MultiLineString: function(o) { |
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263 | var path = [], |
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264 | coordinates = o.coordinates, |
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265 | i = -1, // coordinates.index |
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266 | n = coordinates.length, |
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267 | subcoordinates, // coordinates[i] |
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268 | j, // subcoordinates.index |
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269 | m; // subcoordinates.length |
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270 | while (++i < n) { |
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271 | subcoordinates = coordinates[i]; |
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272 | j = -1; |
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273 | m = subcoordinates.length; |
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274 | path.push("M"); |
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275 | while (++j < m) path.push(project(subcoordinates[j]), "L"); |
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276 | path.pop(); |
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277 | } |
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278 | return path.join(""); |
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279 | }, |
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280 | |
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281 | Polygon: function(o) { |
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282 | var path = [], |
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283 | coordinates = o.coordinates, |
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284 | i = -1, // coordinates.index |
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285 | n = coordinates.length, |
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286 | subcoordinates, // coordinates[i] |
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287 | j, // subcoordinates.index |
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288 | m; // subcoordinates.length |
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289 | while (++i < n) { |
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290 | subcoordinates = coordinates[i]; |
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291 | j = -1; |
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292 | m = subcoordinates.length; |
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293 | path.push("M"); |
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294 | while (++j < m) path.push(project(subcoordinates[j]), "L"); |
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295 | path[path.length - 1] = "Z"; |
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296 | } |
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297 | return path.join(""); |
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298 | }, |
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299 | |
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300 | MultiPolygon: function(o) { |
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301 | var path = [], |
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302 | coordinates = o.coordinates, |
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303 | i = -1, // coordinates index |
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304 | n = coordinates.length, |
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305 | subcoordinates, // coordinates[i] |
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306 | j, // subcoordinates index |
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307 | m, // subcoordinates.length |
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308 | subsubcoordinates, // subcoordinates[j] |
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309 | k, // subsubcoordinates index |
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310 | p; // subsubcoordinates.length |
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311 | while (++i < n) { |
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312 | subcoordinates = coordinates[i]; |
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313 | j = -1; |
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314 | m = subcoordinates.length; |
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315 | while (++j < m) { |
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316 | subsubcoordinates = subcoordinates[j]; |
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317 | k = -1; |
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318 | p = subsubcoordinates.length - 1; |
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319 | path.push("M"); |
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320 | while (++k < p) path.push(project(subsubcoordinates[k]), "L"); |
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321 | path[path.length - 1] = "Z"; |
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322 | } |
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323 | } |
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324 | return path.join(""); |
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325 | }, |
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326 | |
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327 | GeometryCollection: function(o) { |
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328 | var path = [], |
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329 | geometries = o.geometries, |
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330 | i = -1, // geometries index |
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331 | n = geometries.length; |
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332 | while (++i < n) path.push(d3_geo_pathType(pathTypes, geometries[i])); |
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333 | return path.join(""); |
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334 | } |
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335 | |
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336 | }; |
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337 | |
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338 | var areaTypes = { |
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339 | |
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340 | FeatureCollection: function(f) { |
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341 | var area = 0, |
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342 | features = f.features, |
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343 | i = -1, // features.index |
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344 | n = features.length; |
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345 | while (++i < n) area += d3_geo_pathType(areaTypes, features[i]); |
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346 | return area; |
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347 | }, |
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348 | |
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349 | Feature: function(f) { |
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350 | return d3_geo_pathType(areaTypes, f.geometry); |
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351 | }, |
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352 | |
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353 | Point: d3_geo_pathZero, |
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354 | MultiPoint: d3_geo_pathZero, |
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355 | LineString: d3_geo_pathZero, |
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356 | MultiLineString: d3_geo_pathZero, |
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357 | |
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358 | Polygon: function(o) { |
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359 | return polygonArea(o.coordinates); |
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360 | }, |
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361 | |
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362 | MultiPolygon: function(o) { |
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363 | var sum = 0, |
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364 | coordinates = o.coordinates, |
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365 | i = -1, // coordinates index |
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366 | n = coordinates.length; |
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367 | while (++i < n) sum += polygonArea(coordinates[i]); |
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368 | return sum; |
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369 | }, |
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370 | |
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371 | GeometryCollection: function(o) { |
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372 | var sum = 0, |
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373 | geometries = o.geometries, |
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374 | i = -1, // geometries index |
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375 | n = geometries.length; |
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376 | while (++i < n) sum += d3_geo_pathType(areaTypes, geometries[i]); |
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377 | return sum; |
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378 | } |
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379 | |
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380 | }; |
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381 | |
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382 | function polygonArea(coordinates) { |
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383 | var sum = area(coordinates[0]), // exterior ring |
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384 | i = 0, // coordinates.index |
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385 | n = coordinates.length; |
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386 | while (++i < n) sum -= area(coordinates[i]); // holes |
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387 | return sum; |
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388 | } |
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389 | |
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390 | function polygonCentroid(coordinates) { |
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391 | var polygon = d3.geom.polygon(coordinates[0].map(projection)), // exterior ring |
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392 | centroid = polygon.centroid(1), |
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393 | x = centroid[0], |
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394 | y = centroid[1], |
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395 | z = Math.abs(polygon.area()), |
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396 | i = 0, // coordinates index |
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397 | n = coordinates.length; |
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398 | while (++i < n) { |
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399 | polygon = d3.geom.polygon(coordinates[i].map(projection)); // holes |
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400 | centroid = polygon.centroid(1); |
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401 | x -= centroid[0]; |
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402 | y -= centroid[1]; |
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403 | z -= Math.abs(polygon.area()); |
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404 | } |
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405 | return [x, y, 6 * z]; // weighted centroid |
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406 | } |
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407 | |
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408 | var centroidTypes = { |
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409 | |
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410 | // TODO FeatureCollection |
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411 | // TODO Point |
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412 | // TODO MultiPoint |
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413 | // TODO LineString |
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414 | // TODO MultiLineString |
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415 | // TODO GeometryCollection |
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416 | |
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417 | Feature: function(f) { |
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418 | return d3_geo_pathType(centroidTypes, f.geometry); |
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419 | }, |
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420 | |
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421 | Polygon: function(o) { |
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422 | var centroid = polygonCentroid(o.coordinates); |
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423 | return [centroid[0] / centroid[2], centroid[1] / centroid[2]]; |
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424 | }, |
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425 | |
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426 | MultiPolygon: function(o) { |
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427 | var area = 0, |
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428 | coordinates = o.coordinates, |
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429 | centroid, |
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430 | x = 0, |
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431 | y = 0, |
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432 | z = 0, |
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433 | i = -1, // coordinates index |
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434 | n = coordinates.length; |
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435 | while (++i < n) { |
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436 | centroid = polygonCentroid(coordinates[i]); |
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437 | x += centroid[0]; |
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438 | y += centroid[1]; |
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439 | z += centroid[2]; |
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440 | } |
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441 | return [x / z, y / z]; |
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442 | } |
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443 | |
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444 | }; |
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445 | |
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446 | |
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447 | function area(coordinates) { |
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448 | return Math.abs(d3.geom.polygon(coordinates.map(projection)).area()); |
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449 | } |
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450 | |
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451 | path.projection = function(x) { |
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452 | projection = x; |
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453 | return path; |
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454 | }; |
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455 | |
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456 | path.area = function(d) { |
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457 | return d3_geo_pathType(areaTypes, d); |
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458 | }; |
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459 | |
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460 | path.centroid = function(d) { |
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461 | return d3_geo_pathType(centroidTypes, d); |
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462 | }; |
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463 | |
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464 | path.pointRadius = function(x) { |
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465 | if (typeof x === "function") pointRadius = x; |
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466 | else { |
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467 | pointRadius = +x; |
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468 | pointCircle = d3_path_circle(pointRadius); |
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469 | } |
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470 | return path; |
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471 | }; |
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472 | |
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473 | return path; |
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474 | }; |
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475 | |
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476 | function d3_path_circle(radius) { |
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477 | return "m0," + radius |
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478 | + "a" + radius + "," + radius + " 0 1,1 0," + (-2 * radius) |
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479 | + "a" + radius + "," + radius + " 0 1,1 0," + (+2 * radius) |
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480 | + "z"; |
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481 | } |
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482 | |
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483 | function d3_geo_pathZero() { |
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484 | return 0; |
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485 | } |
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486 | |
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487 | function d3_geo_pathType(types, o) { |
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488 | return o && o.type in types ? types[o.type](o) : ""; |
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489 | } |
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490 | /** |
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491 | * Given a GeoJSON object, returns the corresponding bounding box. The bounding |
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492 | * box is represented by a two-dimensional array: [[left, bottom], [right, |
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493 | * top]], where left is the minimum longitude, bottom is the minimum latitude, |
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494 | * right is maximum longitude, and top is the maximum latitude. |
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495 | */ |
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496 | d3.geo.bounds = function(feature) { |
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497 | var left = Infinity, |
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498 | bottom = Infinity, |
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499 | right = -Infinity, |
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500 | top = -Infinity; |
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501 | d3_geo_bounds(feature, function(x, y) { |
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502 | if (x < left) left = x; |
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503 | if (x > right) right = x; |
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504 | if (y < bottom) bottom = y; |
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505 | if (y > top) top = y; |
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506 | }); |
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507 | return [[left, bottom], [right, top]]; |
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508 | }; |
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509 | |
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510 | function d3_geo_bounds(o, f) { |
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511 | if (o.type in d3_geo_boundsTypes) d3_geo_boundsTypes[o.type](o, f); |
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512 | } |
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513 | |
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514 | var d3_geo_boundsTypes = { |
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515 | Feature: d3_geo_boundsFeature, |
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516 | FeatureCollection: d3_geo_boundsFeatureCollection, |
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517 | LineString: d3_geo_boundsLineString, |
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518 | MultiLineString: d3_geo_boundsMultiLineString, |
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519 | MultiPoint: d3_geo_boundsLineString, |
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520 | MultiPolygon: d3_geo_boundsMultiPolygon, |
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521 | Point: d3_geo_boundsPoint, |
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522 | Polygon: d3_geo_boundsPolygon |
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523 | }; |
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524 | |
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525 | function d3_geo_boundsFeature(o, f) { |
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526 | d3_geo_bounds(o.geometry, f); |
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527 | } |
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528 | |
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529 | function d3_geo_boundsFeatureCollection(o, f) { |
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530 | for (var a = o.features, i = 0, n = a.length; i < n; i++) { |
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531 | d3_geo_bounds(a[i].geometry, f); |
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532 | } |
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533 | } |
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534 | |
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535 | function d3_geo_boundsLineString(o, f) { |
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536 | for (var a = o.coordinates, i = 0, n = a.length; i < n; i++) { |
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537 | f.apply(null, a[i]); |
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538 | } |
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539 | } |
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540 | |
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541 | function d3_geo_boundsMultiLineString(o, f) { |
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542 | for (var a = o.coordinates, i = 0, n = a.length; i < n; i++) { |
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543 | for (var b = a[i], j = 0, m = b.length; j < m; j++) { |
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544 | f.apply(null, b[j]); |
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545 | } |
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546 | } |
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547 | } |
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548 | |
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549 | function d3_geo_boundsMultiPolygon(o, f) { |
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550 | for (var a = o.coordinates, i = 0, n = a.length; i < n; i++) { |
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551 | for (var b = a[i][0], j = 0, m = b.length; j < m; j++) { |
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552 | f.apply(null, b[j]); |
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553 | } |
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554 | } |
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555 | } |
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556 | |
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557 | function d3_geo_boundsPoint(o, f) { |
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558 | f.apply(null, o.coordinates); |
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559 | } |
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560 | |
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561 | function d3_geo_boundsPolygon(o, f) { |
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562 | for (var a = o.coordinates[0], i = 0, n = a.length; i < n; i++) { |
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563 | f.apply(null, a[i]); |
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564 | } |
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565 | } |
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566 | })(); |
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