1 | """This module contains various auxiliary function used by pyvolution. |
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2 | |
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3 | It is also a clearing house for functions that may later earn a module |
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4 | of their own. |
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5 | """ |
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6 | |
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7 | import anuga.utilities.polygon |
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8 | import sys |
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9 | import os |
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10 | |
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11 | from os import remove, mkdir, access, F_OK, sep |
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12 | from os.path import exists, basename |
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13 | from warnings import warn |
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14 | from shutil import copy |
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15 | |
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16 | from anuga.geospatial_data.geospatial_data import ensure_absolute |
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17 | |
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18 | def file_function(filename, |
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19 | domain=None, |
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20 | quantities=None, |
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21 | interpolation_points=None, |
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22 | time_thinning=1, |
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23 | verbose=False, |
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24 | use_cache=False): |
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25 | """Read time history of spatial data from NetCDF file and return |
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26 | a callable object. |
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27 | |
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28 | Input variables: |
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29 | |
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30 | filename - Name of sww or tms file |
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31 | |
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32 | If the file has extension 'sww' then it is assumed to be spatio-temporal |
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33 | or temporal and the callable object will have the form f(t,x,y) or f(t) |
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34 | depending on whether the file contains spatial data |
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35 | |
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36 | If the file has extension 'tms' then it is assumed to be temporal only |
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37 | and the callable object will have the form f(t) |
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38 | |
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39 | Either form will return interpolated values based on the input file |
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40 | using the underlying interpolation_function. |
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41 | |
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42 | domain - Associated domain object |
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43 | If domain is specified, model time (domain.starttime) |
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44 | will be checked and possibly modified. |
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45 | |
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46 | All times are assumed to be in UTC |
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47 | |
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48 | All spatial information is assumed to be in absolute UTM coordinates. |
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49 | |
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50 | quantities - the name of the quantity to be interpolated or a |
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51 | list of quantity names. The resulting function will return |
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52 | a tuple of values - one for each quantity |
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53 | |
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54 | interpolation_points - list of absolute UTM coordinates for points (N x 2) |
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55 | or geospatial object or points file name at which values are sought |
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56 | |
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57 | use_cache: True means that caching of intermediate result of |
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58 | Interpolation_function is attempted |
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59 | |
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60 | |
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61 | See Interpolation function for further documentation |
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62 | """ |
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63 | |
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64 | |
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65 | # Build arguments and keyword arguments for use with caching or apply. |
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66 | args = (filename,) |
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67 | |
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68 | kwargs = {'domain': domain, |
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69 | 'quantities': quantities, |
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70 | 'interpolation_points': interpolation_points, |
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71 | 'time_thinning': time_thinning, |
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72 | 'verbose': verbose} |
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73 | |
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74 | |
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75 | # Call underlying engine with or without caching |
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76 | if use_cache is True: |
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77 | try: |
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78 | from caching import cache |
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79 | except: |
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80 | msg = 'Caching was requested, but caching module'+\ |
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81 | 'could not be imported' |
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82 | raise msg |
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83 | |
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84 | f = cache(_file_function, |
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85 | args, kwargs, |
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86 | dependencies=[filename], |
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87 | compression=False, |
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88 | verbose=verbose) |
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89 | |
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90 | else: |
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91 | f = apply(_file_function, |
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92 | args, kwargs) |
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93 | |
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94 | |
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95 | #FIXME (Ole): Pass cache arguments, such as compression, in some sort of |
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96 | #structure |
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97 | |
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98 | |
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99 | return f |
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100 | |
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101 | |
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102 | |
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103 | def _file_function(filename, |
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104 | domain=None, |
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105 | quantities=None, |
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106 | interpolation_points=None, |
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107 | time_thinning=1, |
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108 | verbose=False): |
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109 | """Internal function |
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110 | |
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111 | See file_function for documentatiton |
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112 | """ |
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113 | |
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114 | |
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115 | #FIXME (OLE): Should check origin of domain against that of file |
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116 | #In fact, this is where origin should be converted to that of domain |
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117 | #Also, check that file covers domain fully. |
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118 | |
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119 | #Take into account: |
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120 | #- domain's georef |
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121 | #- sww file's georef |
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122 | #- interpolation points as absolute UTM coordinates |
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123 | |
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124 | |
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125 | assert type(filename) == type(''),\ |
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126 | 'First argument to File_function must be a string' |
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127 | |
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128 | try: |
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129 | fid = open(filename) |
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130 | except Exception, e: |
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131 | msg = 'File "%s" could not be opened: Error="%s"'\ |
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132 | %(filename, e) |
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133 | raise msg |
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134 | |
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135 | line = fid.readline() |
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136 | fid.close() |
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137 | |
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138 | if quantities is None: |
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139 | if domain is not None: |
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140 | quantities = domain.conserved_quantities |
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141 | |
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142 | |
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143 | |
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144 | if line[:3] == 'CDF': |
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145 | return get_netcdf_file_function(filename, domain, quantities, |
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146 | interpolation_points, |
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147 | time_thinning=time_thinning, |
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148 | verbose=verbose) |
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149 | else: |
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150 | raise 'Must be a NetCDF File' |
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151 | |
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152 | |
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153 | |
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154 | def get_netcdf_file_function(filename, |
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155 | domain=None, |
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156 | quantity_names=None, |
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157 | interpolation_points=None, |
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158 | time_thinning=1, |
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159 | verbose=False): |
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160 | """Read time history of spatial data from NetCDF sww file and |
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161 | return a callable object f(t,x,y) |
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162 | which will return interpolated values based on the input file. |
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163 | |
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164 | If domain is specified, model time (domain.starttime) |
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165 | will be checked and possibly modified |
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166 | |
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167 | All times are assumed to be in UTC |
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168 | |
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169 | See Interpolation function for further documetation |
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170 | |
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171 | """ |
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172 | |
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173 | |
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174 | #FIXME: Check that model origin is the same as file's origin |
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175 | #(both in UTM coordinates) |
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176 | #If not - modify those from file to match domain |
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177 | #Take this code from e.g. dem2pts in data_manager.py |
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178 | #FIXME: Use geo_reference to read and write xllcorner... |
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179 | |
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180 | |
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181 | #FIXME: Maybe move caching out to this level rather than at the |
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182 | #Interpolation_function level (below) |
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183 | |
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184 | import time, calendar, types |
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185 | from anuga.config import time_format |
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186 | from Scientific.IO.NetCDF import NetCDFFile |
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187 | from Numeric import array, zeros, Float, alltrue, concatenate, reshape |
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188 | |
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189 | #Open NetCDF file |
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190 | if verbose: print 'Reading', filename |
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191 | fid = NetCDFFile(filename, 'r') |
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192 | |
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193 | if type(quantity_names) == types.StringType: |
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194 | quantity_names = [quantity_names] |
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195 | |
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196 | if quantity_names is None or len(quantity_names) < 1: |
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197 | #If no quantities are specified get quantities from file |
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198 | #x, y, time are assumed as the independent variables so |
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199 | #they are excluded as potentiol quantities |
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200 | quantity_names = [] |
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201 | for name in fid.variables.keys(): |
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202 | if name not in ['x', 'y', 'time']: |
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203 | quantity_names.append(name) |
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204 | |
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205 | if len(quantity_names) < 1: |
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206 | msg = 'ERROR: At least one independent value must be specified' |
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207 | raise msg |
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208 | |
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209 | |
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210 | if interpolation_points is not None: |
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211 | interpolation_points = ensure_absolute(interpolation_points) |
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212 | msg = 'Points must by N x 2. I got %d' %interpolation_points.shape[1] |
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213 | assert interpolation_points.shape[1] == 2, msg |
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214 | |
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215 | |
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216 | #Now assert that requested quantitites (and the independent ones) |
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217 | #are present in file |
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218 | missing = [] |
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219 | for quantity in ['time'] + quantity_names: |
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220 | if not fid.variables.has_key(quantity): |
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221 | missing.append(quantity) |
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222 | |
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223 | if len(missing) > 0: |
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224 | msg = 'Quantities %s could not be found in file %s'\ |
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225 | %(str(missing), filename) |
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226 | fid.close() |
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227 | raise Exception, msg |
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228 | |
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229 | #Decide whether this data has a spatial dimension |
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230 | spatial = True |
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231 | for quantity in ['x', 'y']: |
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232 | if not fid.variables.has_key(quantity): |
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233 | spatial = False |
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234 | |
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235 | if filename[-3:] == 'tms' and spatial is True: |
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236 | msg = 'Files of type tms must not contain spatial information' |
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237 | raise msg |
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238 | |
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239 | if filename[-3:] == 'sww' and spatial is False: |
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240 | msg = 'Files of type sww must contain spatial information' |
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241 | raise msg |
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242 | |
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243 | #Get first timestep |
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244 | try: |
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245 | starttime = fid.starttime[0] |
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246 | except ValueError: |
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247 | msg = 'Could not read starttime from file %s' %filename |
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248 | raise msg |
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249 | |
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250 | #Get variables |
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251 | #if verbose: print 'Get variables' |
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252 | time = fid.variables['time'][:] |
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253 | |
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254 | # Get time independent stuff |
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255 | if spatial: |
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256 | #Get origin |
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257 | xllcorner = fid.xllcorner[0] |
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258 | yllcorner = fid.yllcorner[0] |
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259 | zone = fid.zone[0] |
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260 | |
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261 | x = fid.variables['x'][:] |
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262 | y = fid.variables['y'][:] |
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263 | triangles = fid.variables['volumes'][:] |
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264 | |
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265 | x = reshape(x, (len(x),1)) |
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266 | y = reshape(y, (len(y),1)) |
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267 | vertex_coordinates = concatenate((x,y), axis=1) #m x 2 array |
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268 | |
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269 | if interpolation_points is not None: |
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270 | #Adjust for georef |
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271 | interpolation_points[:,0] -= xllcorner |
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272 | interpolation_points[:,1] -= yllcorner |
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273 | |
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274 | |
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275 | |
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276 | |
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277 | if domain is not None: |
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278 | #Update domain.startime if it is *earlier* than starttime |
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279 | if starttime > domain.starttime: |
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280 | msg = 'WARNING: Start time as specified in domain (%f)'\ |
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281 | %domain.starttime |
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282 | msg += ' is earlier than the starttime of file %s (%f).'\ |
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283 | %(filename, starttime) |
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284 | msg += ' Modifying domain starttime accordingly.' |
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285 | |
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286 | if verbose: print msg |
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287 | domain.starttime = starttime #Modifying model time |
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288 | if verbose: print 'Domain starttime is now set to %f'\ |
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289 | %domain.starttime |
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290 | |
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291 | |
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292 | #If domain.startime is *later* than starttime, |
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293 | #move time back - relative to domain's time |
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294 | if domain.starttime > starttime: |
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295 | time = time - domain.starttime + starttime |
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296 | |
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297 | #FIXME Use method in geo to reconcile |
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298 | #if spatial: |
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299 | #assert domain.geo_reference.xllcorner == xllcorner |
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300 | #assert domain.geo_reference.yllcorner == yllcorner |
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301 | #assert domain.geo_reference.zone == zone |
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302 | |
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303 | if verbose: |
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304 | print 'File_function data obtained from: %s' %filename |
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305 | print ' References:' |
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306 | #print ' Datum ....' #FIXME |
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307 | if spatial: |
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308 | print ' Lower left corner: [%f, %f]'\ |
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309 | %(xllcorner, yllcorner) |
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310 | print ' Start time: %f' %starttime |
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311 | |
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312 | |
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313 | # Produce values for desired data points at |
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314 | # each timestep for each quantity |
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315 | quantities = {} |
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316 | for i, name in enumerate(quantity_names): |
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317 | quantities[name] = fid.variables[name][:] |
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318 | fid.close() |
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319 | |
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320 | |
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321 | #from least_squares import Interpolation_function |
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322 | from anuga.fit_interpolate.interpolate import Interpolation_function |
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323 | |
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324 | if not spatial: |
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325 | vertex_coordinates = triangles = interpolation_points = None |
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326 | |
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327 | |
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328 | return Interpolation_function(time, |
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329 | quantities, |
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330 | quantity_names, |
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331 | vertex_coordinates, |
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332 | triangles, |
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333 | interpolation_points, |
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334 | time_thinning=time_thinning, |
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335 | verbose=verbose) |
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336 | |
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337 | |
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338 | |
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339 | |
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340 | |
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341 | def multiple_replace(text, dictionary): |
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342 | """Multiple replace of words in text |
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343 | |
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344 | text: String to be modified |
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345 | dictionary: Mapping of words that are to be substituted |
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346 | |
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347 | Python Cookbook 3.14 page 88 and page 90 |
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348 | """ |
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349 | |
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350 | import re |
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351 | |
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352 | #Create a regular expression from all of the dictionary keys |
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353 | #matching only entire words |
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354 | regex = re.compile(r'\b'+ \ |
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355 | r'\b|\b'.join(map(re.escape, dictionary.keys()))+ \ |
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356 | r'\b' ) |
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357 | |
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358 | #For each match, lookup the corresponding value in the dictionary |
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359 | return regex.sub(lambda match: dictionary[match.group(0)], text) |
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360 | |
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361 | |
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362 | |
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363 | |
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364 | def apply_expression_to_dictionary(expression, dictionary):#dictionary): |
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365 | """Apply arbitrary expression to values of dictionary |
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366 | |
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367 | Given an expression in terms of the keys, replace key by the |
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368 | corresponding values and evaluate. |
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369 | |
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370 | |
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371 | expression: Arbitrary, e.g. arithmetric, expression relating keys |
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372 | from dictionary. |
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373 | |
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374 | dictionary: Mapping between symbols in expression and objects that |
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375 | will be evaluated by expression. |
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376 | Values in dictionary must support operators given in |
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377 | expression e.g. by overloading |
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378 | |
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379 | due to a limitation with Numeric, this can not evaluate 0/0 |
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380 | In general, the user can fix by adding 1e-30 to the numerator. |
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381 | SciPy core can handle this situation. |
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382 | """ |
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383 | |
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384 | import types |
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385 | import re |
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386 | |
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387 | assert isinstance(expression, basestring) |
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388 | assert type(dictionary) == types.DictType |
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389 | |
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390 | #Convert dictionary values to textual representations suitable for eval |
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391 | D = {} |
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392 | for key in dictionary: |
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393 | D[key] = 'dictionary["%s"]' %key |
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394 | |
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395 | #Perform substitution of variables |
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396 | expression = multiple_replace(expression, D) |
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397 | |
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398 | #Evaluate and return |
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399 | try: |
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400 | return eval(expression) |
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401 | except NameError, e: |
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402 | msg = 'Expression "%s" could not be evaluated: %s' %(expression, e) |
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403 | raise NameError, msg |
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404 | except ValueError, e: |
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405 | msg = 'Expression "%s" could not be evaluated: %s' %(expression, e) |
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406 | raise ValueError, msg |
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407 | |
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408 | |
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409 | |
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410 | |
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411 | #################################### |
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412 | ####OBSOLETE STUFF |
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413 | |
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414 | |
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415 | def angle(v1, v2): |
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416 | """Temporary Interface to new location""" |
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417 | |
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418 | import anuga.utilities.numerical_tools as NT |
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419 | |
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420 | msg = 'angle has moved from util.py. ' |
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421 | msg += 'Please use "from anuga.utilities.numerical_tools import angle"' |
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422 | warn(msg, DeprecationWarning) |
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423 | |
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424 | return NT.angle(v1, v2) |
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425 | |
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426 | def anglediff(v0, v1): |
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427 | """Temporary Interface to new location""" |
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428 | |
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429 | import anuga.utilities.numerical_tools as NT |
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430 | |
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431 | msg = 'anglediff has moved from util.py. ' |
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432 | msg += 'Please use "from anuga.utilities.numerical_tools import anglediff"' |
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433 | warn(msg, DeprecationWarning) |
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434 | |
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435 | return NT.anglediff(v0, v1) |
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436 | |
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437 | |
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438 | def mean(x): |
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439 | """Temporary Interface to new location""" |
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440 | |
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441 | import anuga.utilities.numerical_tools as NT |
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442 | |
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443 | msg = 'mean has moved from util.py. ' |
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444 | msg += 'Please use "from anuga.utilities.numerical_tools import mean"' |
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445 | warn(msg, DeprecationWarning) |
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446 | |
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447 | return NT.mean(x) |
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448 | |
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449 | def point_on_line(*args, **kwargs): |
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450 | """Temporary Interface to new location""" |
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451 | |
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452 | msg = 'point_on_line has moved from util.py. ' |
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453 | msg += 'Please use "from anuga.utilities.polygon import point_on_line"' |
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454 | warn(msg, DeprecationWarning) |
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455 | |
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456 | return utilities.polygon.point_on_line(*args, **kwargs) |
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457 | |
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458 | def inside_polygon(*args, **kwargs): |
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459 | """Temporary Interface to new location""" |
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460 | |
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461 | print 'inside_polygon has moved from util.py. ', |
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462 | print 'Please use "from anuga.utilities.polygon import inside_polygon"' |
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463 | |
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464 | return utilities.polygon.inside_polygon(*args, **kwargs) |
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465 | |
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466 | def outside_polygon(*args, **kwargs): |
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467 | """Temporary Interface to new location""" |
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468 | |
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469 | print 'outside_polygon has moved from util.py. ', |
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470 | print 'Please use "from anuga.utilities.polygon import outside_polygon"' |
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471 | |
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472 | return utilities.polygon.outside_polygon(*args, **kwargs) |
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473 | |
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474 | |
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475 | def separate_points_by_polygon(*args, **kwargs): |
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476 | """Temporary Interface to new location""" |
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477 | |
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478 | print 'separate_points_by_polygon has moved from util.py. ', |
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479 | print 'Please use "from anuga.utilities.polygon import separate_points_by_polygon"' |
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480 | |
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481 | return utilities.polygon.separate_points_by_polygon(*args, **kwargs) |
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482 | |
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483 | |
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484 | |
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485 | def read_polygon(*args, **kwargs): |
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486 | """Temporary Interface to new location""" |
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487 | |
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488 | print 'read_polygon has moved from util.py. ', |
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489 | print 'Please use "from anuga.utilities.polygon import read_polygon"' |
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490 | |
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491 | return utilities.polygon.read_polygon(*args, **kwargs) |
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492 | |
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493 | |
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494 | def populate_polygon(*args, **kwargs): |
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495 | """Temporary Interface to new location""" |
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496 | |
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497 | print 'populate_polygon has moved from util.py. ', |
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498 | print 'Please use "from anuga.utilities.polygon import populate_polygon"' |
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499 | |
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500 | return utilities.polygon.populate_polygon(*args, **kwargs) |
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501 | |
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502 | ##################### end of obsolete stuff ? ############ |
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503 | |
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504 | def start_screen_catcher(dirname, myid=0, numprocs=1): |
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505 | """Used to store screen output and errors to file, if run on multiple |
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506 | processes eachprocessor will have its own output and error file. |
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507 | """ |
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508 | |
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509 | dirname = dirname |
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510 | screen_output_name = dirname + "screen_output_%d_%d.txt" %(myid,numprocs) |
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511 | screen_error_name = dirname + "screen_error_%d_%d.txt" %(myid,numprocs) |
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512 | |
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513 | #used to catch screen output to file |
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514 | sys.stdout = screen_catcher(screen_output_name) |
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515 | sys.stderr = screen_catcher(screen_error_name) |
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516 | |
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517 | class screen_catcher: |
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518 | """this simply catches the screen output and stores it to file defined by |
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519 | start_screen_catcher (above) |
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520 | """ |
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521 | |
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522 | def __init__(self, filename): |
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523 | self.filename = filename |
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524 | if exists(self.filename)is True: |
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525 | remove(self.filename) |
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526 | print'Old existing file "%s" has been deleted' %(self.filename) |
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527 | |
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528 | def write(self, stuff): |
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529 | fid = open(self.filename, 'a') |
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530 | fid.write(stuff) |
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531 | |
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532 | def get_version_info(): |
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533 | """gets the version number of the SVN |
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534 | """ |
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535 | |
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536 | import os, sys |
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537 | |
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538 | # Create dummy info |
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539 | info = 'Revision: Version info could not be obtained.' |
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540 | info += 'A command line version of svn and access to the ' |
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541 | info += 'repository is necessary and the output must ' |
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542 | info += 'contain a line starting with "Revision:"' |
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543 | |
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544 | try: |
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545 | fid = os.popen('svn info') |
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546 | except: |
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547 | msg = 'svn is not recognised' |
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548 | warn(msg, UserWarning) |
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549 | else: |
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550 | lines = fid.readlines() |
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551 | fid.close() |
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552 | for line in lines: |
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553 | if line.startswith('Revision:'): |
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554 | info = line |
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555 | break |
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556 | |
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557 | return info |
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558 | |
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559 | #if sys.platform == 'win32': |
---|
560 | # msg = 'does not work in Windows .... yet' |
---|
561 | # raise OSError, msg |
---|
562 | #else: |
---|
563 | # fid = os.popen('svn -info') |
---|
564 | # info = fid.readlines() |
---|
565 | # fid.close() |
---|
566 | # return info |
---|
567 | |
---|
568 | |
---|
569 | def sww2timeseries(swwfiles, |
---|
570 | gauge_filename, |
---|
571 | production_dirs, |
---|
572 | report = None, |
---|
573 | reportname = None, |
---|
574 | plot_quantity = None, |
---|
575 | surface = None, |
---|
576 | time_min = None, |
---|
577 | time_max = None, |
---|
578 | title_on = None, |
---|
579 | verbose = False): |
---|
580 | |
---|
581 | """ Read sww file and plot the time series for the |
---|
582 | prescribed quantities at defined gauge locations and |
---|
583 | prescribed time range. |
---|
584 | |
---|
585 | Input variables: |
---|
586 | |
---|
587 | swwfiles - dictionary of sww files with label_ids (used in |
---|
588 | generating latex output. It will be part of |
---|
589 | the directory name of file_loc (typically the timestamp). |
---|
590 | Helps to differentiate latex files for different simulations |
---|
591 | for a particular scenario. |
---|
592 | - assume that all conserved quantities have been stored |
---|
593 | - assume each sww file has been simulated with same timestep |
---|
594 | |
---|
595 | gauge_filename - name of file containing gauge data |
---|
596 | - easting, northing, name , elevation? |
---|
597 | - OR (this is not yet done) |
---|
598 | - structure which can be converted to a Numeric array, |
---|
599 | such as a geospatial data object |
---|
600 | |
---|
601 | report - if True, then write figures to report_figures directory in |
---|
602 | relevant production directory |
---|
603 | - if False, figures are already stored with sww file |
---|
604 | - default to False |
---|
605 | |
---|
606 | reportname - name for report if wishing to generate report |
---|
607 | |
---|
608 | plot_quantity - list containing quantities to plot, they must |
---|
609 | be the name of an existing quantity or one of |
---|
610 | the following possibilities |
---|
611 | - possibilities: |
---|
612 | - stage; 'stage' |
---|
613 | - depth; 'depth' |
---|
614 | - speed; calculated as absolute momentum |
---|
615 | (pointwise) divided by depth; 'speed' |
---|
616 | - bearing; calculated as the angle of the momentum |
---|
617 | vector (xmomentum, ymomentum) from the North; 'bearing' |
---|
618 | - absolute momentum; calculated as |
---|
619 | sqrt(xmomentum^2 + ymomentum^2); 'momentum' |
---|
620 | - x momentum; 'xmomentum' |
---|
621 | - y momentum; 'ymomentum' |
---|
622 | - default will be ['stage', 'speed', 'bearing'] |
---|
623 | |
---|
624 | surface - if True, then generate solution surface with 3d plot |
---|
625 | and save to current working directory |
---|
626 | - default = False |
---|
627 | |
---|
628 | time_min - beginning of user defined time range for plotting purposes |
---|
629 | - default will be first available time found in swwfile |
---|
630 | |
---|
631 | time_max - end of user defined time range for plotting purposes |
---|
632 | - default will be last available time found in swwfile |
---|
633 | |
---|
634 | title_on - if True, export standard graphics with title |
---|
635 | - if False, export standard graphics without title |
---|
636 | |
---|
637 | |
---|
638 | |
---|
639 | Output: |
---|
640 | |
---|
641 | - time series data stored in .csv for later use if required. |
---|
642 | Name = gauges_timeseries followed by gauge name |
---|
643 | - latex file will be generated in same directory as where script is |
---|
644 | run (usually production scenario directory. |
---|
645 | Name = latexoutputlabel_id.tex |
---|
646 | |
---|
647 | Other important information: |
---|
648 | |
---|
649 | It is assumed that the used has stored all the conserved quantities |
---|
650 | and elevation during the scenario run, i.e. |
---|
651 | ['stage', 'elevation', 'xmomentum', 'ymomentum'] |
---|
652 | If this has not occurred then sww2timeseries will not work. |
---|
653 | |
---|
654 | """ |
---|
655 | |
---|
656 | |
---|
657 | k = _sww2timeseries(swwfiles, |
---|
658 | gauge_filename, |
---|
659 | production_dirs, |
---|
660 | report, |
---|
661 | reportname, |
---|
662 | plot_quantity, |
---|
663 | surface, |
---|
664 | time_min, |
---|
665 | time_max, |
---|
666 | title_on, |
---|
667 | verbose) |
---|
668 | |
---|
669 | return k |
---|
670 | |
---|
671 | def _sww2timeseries(swwfiles, |
---|
672 | gauge_filename, |
---|
673 | production_dirs, |
---|
674 | report = None, |
---|
675 | reportname = None, |
---|
676 | plot_quantity = None, |
---|
677 | surface = None, |
---|
678 | time_min = None, |
---|
679 | time_max = None, |
---|
680 | title_on = None, |
---|
681 | verbose = False): |
---|
682 | |
---|
683 | assert type(gauge_filename) == type(''),\ |
---|
684 | 'Gauge filename must be a string' |
---|
685 | |
---|
686 | try: |
---|
687 | fid = open(gauge_filename) |
---|
688 | except Exception, e: |
---|
689 | msg = 'File "%s" could not be opened: Error="%s"'\ |
---|
690 | %(gauge_filename, e) |
---|
691 | raise msg |
---|
692 | |
---|
693 | if report is None: |
---|
694 | report = False |
---|
695 | |
---|
696 | if plot_quantity is None: |
---|
697 | plot_quantity = ['depth', 'speed', 'bearing'] |
---|
698 | else: |
---|
699 | assert type(plot_quantity) == list,\ |
---|
700 | 'plot_quantity must be a list' |
---|
701 | check_list(plot_quantity) |
---|
702 | |
---|
703 | if surface is None: |
---|
704 | surface = False |
---|
705 | |
---|
706 | if title_on is None: |
---|
707 | title_on = True |
---|
708 | |
---|
709 | if verbose: print '\n Gauges obtained from: %s \n' %gauge_filename |
---|
710 | gauges, locations, elev = get_gauges_from_file(gauge_filename) |
---|
711 | |
---|
712 | sww_quantity = ['stage', 'elevation', 'xmomentum', 'ymomentum'] |
---|
713 | |
---|
714 | file_loc = [] |
---|
715 | f_list = [] |
---|
716 | label_id = [] |
---|
717 | leg_label = [] |
---|
718 | themaxT = 0.0 |
---|
719 | theminT = 0.0 |
---|
720 | |
---|
721 | for swwfile in swwfiles.keys(): |
---|
722 | |
---|
723 | try: |
---|
724 | fid = open(swwfile) |
---|
725 | except Exception, e: |
---|
726 | msg = 'File "%s" could not be opened: Error="%s"'\ |
---|
727 | %(swwfile, e) |
---|
728 | raise msg |
---|
729 | |
---|
730 | f = file_function(swwfile, |
---|
731 | quantities = sww_quantity, |
---|
732 | interpolation_points = gauges, |
---|
733 | verbose = True, |
---|
734 | use_cache = True) |
---|
735 | |
---|
736 | # determine which gauges are contained in sww file |
---|
737 | count = 0 |
---|
738 | gauge_index = [] |
---|
739 | print 'swwfile', swwfile |
---|
740 | for k, g in enumerate(gauges): |
---|
741 | if f(0.0, point_id = k)[2] > 1.0e6: |
---|
742 | count += 1 |
---|
743 | if count == 1: print 'Gauges not contained here:' |
---|
744 | print locations[k] |
---|
745 | else: |
---|
746 | gauge_index.append(k) |
---|
747 | |
---|
748 | if len(gauge_index) > 0: |
---|
749 | print 'Gauges contained here: \n', |
---|
750 | else: |
---|
751 | print 'No gauges contained here. \n' |
---|
752 | for i in range(len(gauge_index)): |
---|
753 | print locations[gauge_index[i]] |
---|
754 | |
---|
755 | index = swwfile.rfind(sep) |
---|
756 | file_loc.append(swwfile[:index+1]) |
---|
757 | label_id.append(swwfiles[swwfile]) |
---|
758 | leg_label.append(production_dirs[swwfiles[swwfile]]) |
---|
759 | |
---|
760 | f_list.append(f) |
---|
761 | maxT = max(f.get_time()) |
---|
762 | minT = min(f.get_time()) |
---|
763 | if maxT > themaxT: themaxT = maxT |
---|
764 | if minT > theminT: theminT = minT |
---|
765 | |
---|
766 | if time_min is None: |
---|
767 | time_min = theminT # min(T) |
---|
768 | else: |
---|
769 | if time_min < theminT: # min(T): |
---|
770 | msg = 'Minimum time entered not correct - please try again' |
---|
771 | raise Exception, msg |
---|
772 | |
---|
773 | if time_max is None: |
---|
774 | time_max = themaxT # max(T) |
---|
775 | else: |
---|
776 | if time_max > themaxT: # max(T): |
---|
777 | msg = 'Maximum time entered not correct - please try again' |
---|
778 | raise Exception, msg |
---|
779 | |
---|
780 | if verbose and len(gauge_index) > 0: print 'Inputs OK - going to generate figures' |
---|
781 | |
---|
782 | if len(gauge_index) <> 0: |
---|
783 | texfile, elev_output = generate_figures(plot_quantity, file_loc, report, reportname, surface, |
---|
784 | leg_label, f_list, gauges, locations, elev, gauge_index, |
---|
785 | production_dirs, time_min, time_max, title_on, label_id, verbose) |
---|
786 | else: |
---|
787 | texfile = '' |
---|
788 | elev_output = [] |
---|
789 | |
---|
790 | return texfile, elev_output |
---|
791 | |
---|
792 | #Fixme - Use geospatial to read this file - it's an xya file |
---|
793 | #Need to include other information into this filename, so xya + Name - required for report |
---|
794 | def get_gauges_from_file(filename): |
---|
795 | """ Read in gauge information from file |
---|
796 | """ |
---|
797 | from os import sep, getcwd, access, F_OK, mkdir |
---|
798 | fid = open(filename) |
---|
799 | lines = fid.readlines() |
---|
800 | fid.close() |
---|
801 | |
---|
802 | gauges = [] |
---|
803 | gaugelocation = [] |
---|
804 | elev = [] |
---|
805 | line1 = lines[0] |
---|
806 | line11 = line1.split(',') |
---|
807 | east_index = len(line11)+1 |
---|
808 | north_index = len(line11)+1 |
---|
809 | name_index = len(line11)+1 |
---|
810 | elev_index = len(line11)+1 |
---|
811 | for i in range(len(line11)): |
---|
812 | if line11[i].strip('\n').strip(' ').lower() == 'easting': east_index = i |
---|
813 | if line11[i].strip('\n').strip(' ').lower() == 'northing': north_index = i |
---|
814 | if line11[i].strip('\n').strip(' ').lower() == 'name': name_index = i |
---|
815 | if line11[i].strip('\n').strip(' ').lower() == 'elevation': elev_index = i |
---|
816 | |
---|
817 | for line in lines[1:]: |
---|
818 | fields = line.split(',') |
---|
819 | if east_index < len(line11) and north_index < len(line11): |
---|
820 | gauges.append([float(fields[east_index]), float(fields[north_index])]) |
---|
821 | else: |
---|
822 | msg = 'WARNING: %s does not contain location information' %(filename) |
---|
823 | raise Exception, msg |
---|
824 | if elev_index < len(line11): elev.append(float(fields[elev_index])) |
---|
825 | if name_index < len(line11): |
---|
826 | loc = fields[name_index] |
---|
827 | gaugelocation.append(loc.strip('\n')) |
---|
828 | |
---|
829 | return gauges, gaugelocation, elev |
---|
830 | |
---|
831 | def check_list(quantity): |
---|
832 | """ Check that input quantities in quantity list are possible |
---|
833 | """ |
---|
834 | all_quantity = ['stage', 'depth', 'momentum', 'xmomentum', |
---|
835 | 'ymomentum', 'speed', 'bearing', 'elevation'] |
---|
836 | |
---|
837 | for i,j in enumerate(quantity): |
---|
838 | quantity[i] = quantity[i].lower() |
---|
839 | p = list(set(quantity).difference(set(all_quantity))) |
---|
840 | if len(p) <> 0: |
---|
841 | msg = 'Quantities %s do not exist - please try again' %p |
---|
842 | raise Exception, msg |
---|
843 | |
---|
844 | return |
---|
845 | |
---|
846 | def calc_bearing(uh, vh): |
---|
847 | """ Calculate velocity bearing from North |
---|
848 | """ |
---|
849 | from math import atan, degrees |
---|
850 | |
---|
851 | angle = degrees(atan(vh/(uh+1.e-15))) |
---|
852 | if (0 < angle < 90.0): |
---|
853 | if vh > 0: |
---|
854 | bearing = 90.0 - abs(angle) |
---|
855 | if vh < 0: |
---|
856 | bearing = 270.0 - abs(angle) |
---|
857 | if (-90 < angle < 0): |
---|
858 | if vh < 0: |
---|
859 | bearing = 90.0 - abs(angle) |
---|
860 | if vh > 0: |
---|
861 | bearing = 270.0 - abs(angle) |
---|
862 | if angle == 0: bearing = 0.0 |
---|
863 | |
---|
864 | return bearing |
---|
865 | |
---|
866 | def generate_figures(plot_quantity, file_loc, report, reportname, surface, |
---|
867 | leg_label, f_list, gauges, locations, elev, gauge_index, |
---|
868 | production_dirs, time_min, time_max, title_on, label_id, |
---|
869 | verbose): |
---|
870 | """ Generate figures based on required quantities and gauges for each sww file |
---|
871 | """ |
---|
872 | from math import sqrt, atan, degrees |
---|
873 | from Numeric import ones, allclose, zeros, Float, ravel |
---|
874 | from os import sep, altsep, getcwd, mkdir, access, F_OK, environ |
---|
875 | from pylab import ion, hold, plot, axis, figure, legend, savefig, \ |
---|
876 | xlabel, ylabel, title, close, subplot |
---|
877 | |
---|
878 | import pylab as p1 |
---|
879 | if surface is True: |
---|
880 | import mpl3d.mplot3d as p3 |
---|
881 | |
---|
882 | if report == True: |
---|
883 | texdir = getcwd()+sep+'report'+sep |
---|
884 | if access(texdir,F_OK) == 0: |
---|
885 | mkdir (texdir) |
---|
886 | if len(label_id) == 1: |
---|
887 | label_id1 = label_id[0].replace(sep,'') |
---|
888 | label_id2 = label_id1.replace('_','') |
---|
889 | texfile = texdir+reportname+'%s' %(label_id2) |
---|
890 | texfile2 = reportname+'%s' %(label_id2) |
---|
891 | texfilename = texfile + '.tex' |
---|
892 | if verbose: print '\n Latex output printed to %s \n' %texfilename |
---|
893 | fid = open(texfilename, 'w') |
---|
894 | else: |
---|
895 | texfile = texdir+reportname |
---|
896 | texfile2 = reportname |
---|
897 | texfilename = texfile + '.tex' |
---|
898 | if verbose: print '\n Latex output printed to %s \n' %texfilename |
---|
899 | fid = open(texfilename, 'w') |
---|
900 | else: |
---|
901 | texfile = '' |
---|
902 | texfile2 = '' |
---|
903 | |
---|
904 | p = len(f_list) |
---|
905 | n = [] |
---|
906 | n0 = 0 |
---|
907 | for i in range(len(f_list)): |
---|
908 | n.append(len(f_list[i].get_time())) |
---|
909 | if n[i] > n0: n0 = n[i] |
---|
910 | n0 = int(n0) |
---|
911 | m = len(locations) |
---|
912 | model_time = zeros((n0,m,p), Float) |
---|
913 | stages = zeros((n0,m,p), Float) |
---|
914 | elevations = zeros((n0,m,p), Float) |
---|
915 | momenta = zeros((n0,m,p), Float) |
---|
916 | xmom = zeros((n0,m,p), Float) |
---|
917 | ymom = zeros((n0,m,p), Float) |
---|
918 | speed = zeros((n0,m,p), Float) |
---|
919 | bearings = zeros((n0,m,p), Float) |
---|
920 | depths = zeros((n0,m,p), Float) |
---|
921 | eastings = zeros((n0,m,p), Float) |
---|
922 | min_stages = [] |
---|
923 | max_stages = [] |
---|
924 | max_momentums = [] |
---|
925 | max_speeds = [] |
---|
926 | c = 0 |
---|
927 | model_time_plot3d = zeros((n0,m), Float) |
---|
928 | stages_plot3d = zeros((n0,m), Float) |
---|
929 | eastings_plot3d = zeros((n0,m),Float) |
---|
930 | ##### loop over each swwfile ##### |
---|
931 | for j, f in enumerate(f_list): |
---|
932 | if verbose: print 'swwfile %d of %d' %(j, len(f_list)) |
---|
933 | comparefile = file_loc[j]+sep+'gauges_maxmins'+'.csv' |
---|
934 | fid_compare = open(comparefile, 'w') |
---|
935 | ##### loop over each gauge ##### |
---|
936 | for k in gauge_index: |
---|
937 | g = gauges[k] |
---|
938 | if verbose: print 'Gauge %d of %d' %(k, len(gauges)) |
---|
939 | min_stage = 10 |
---|
940 | max_stage = 0 |
---|
941 | max_momentum = 0 |
---|
942 | max_speed = 0 |
---|
943 | gaugeloc = locations[k] |
---|
944 | thisfile = file_loc[j]+sep+'gauges_time_series'+'_'+gaugeloc+'.csv' |
---|
945 | fid_out = open(thisfile, 'w') |
---|
946 | s = 'Time, Stage, Momentum, Speed \n' |
---|
947 | fid_out.write(s) |
---|
948 | |
---|
949 | #### generate quantities ####### |
---|
950 | for i, t in enumerate(f.get_time()): |
---|
951 | if time_min <= t <= time_max: |
---|
952 | w = f(t, point_id = k)[0] |
---|
953 | z = f(t, point_id = k)[1] |
---|
954 | uh = f(t, point_id = k)[2] |
---|
955 | vh = f(t, point_id = k)[3] |
---|
956 | depth = w-z |
---|
957 | m = sqrt(uh*uh + vh*vh) |
---|
958 | if depth < 0.001: |
---|
959 | vel = 0.0 |
---|
960 | else: |
---|
961 | vel = m / (depth + 1.e-30) |
---|
962 | bearing = calc_bearing(uh, vh) |
---|
963 | model_time[i,k,j] = t/60.0 |
---|
964 | stages[i,k,j] = w |
---|
965 | elevations[i,k,j] = z |
---|
966 | xmom[i,k,j] = uh |
---|
967 | ymom[i,k,j] = vh |
---|
968 | momenta[i,k,j] = m |
---|
969 | speed[i,k,j] = vel |
---|
970 | bearings[i,k,j] = bearing |
---|
971 | depths[i,k,j] = depth |
---|
972 | thisgauge = gauges[k] |
---|
973 | eastings[i,k,j] = thisgauge[0] |
---|
974 | s = '%.2f, %.2f, %.2f, %.2f\n' %(t, w, m, vel) |
---|
975 | fid_out.write(s) |
---|
976 | if t/60.0 <= 13920: tindex = i |
---|
977 | if w > max_stage: max_stage = w |
---|
978 | if w < min_stage: min_stage = w |
---|
979 | if m > max_momentum: max_momentum = m |
---|
980 | if vel > max_speed: max_speed = vel |
---|
981 | |
---|
982 | |
---|
983 | s = '%.2f, %.2f, %.2f, %s\n' %(max_stage, min_stage, z, leg_label[j]) |
---|
984 | fid_compare.write(s) |
---|
985 | max_stages.append(max_stage) |
---|
986 | min_stages.append(min_stage) |
---|
987 | max_momentums.append(max_momentum) |
---|
988 | max_speeds.append(max_speed) |
---|
989 | #### finished generating quantities for each swwfile ##### |
---|
990 | |
---|
991 | model_time_plot3d[:,:] = model_time[:,:,j] |
---|
992 | stages_plot3d[:,:] = stages[:,:,j] |
---|
993 | eastings_plot3d[:,] = eastings[:,:,j] |
---|
994 | |
---|
995 | if surface == True: |
---|
996 | print 'Printing surface figure' |
---|
997 | for i in range(2): |
---|
998 | fig = p1.figure(10) |
---|
999 | ax = p3.Axes3D(fig) |
---|
1000 | if len(gauges) > 80: |
---|
1001 | ax.plot_surface(model_time[:,:,j],eastings[:,:,j],stages[:,:,j]) |
---|
1002 | else: |
---|
1003 | #ax.plot_wireframe(model_time[:,:,j],eastings[:,:,j],stages[:,:,j]) |
---|
1004 | ax.plot3D(ravel(eastings[:,:,j]),ravel(model_time[:,:,j]),ravel(stages[:,:,j])) |
---|
1005 | ax.set_xlabel('time') |
---|
1006 | ax.set_ylabel('x') |
---|
1007 | ax.set_zlabel('stage') |
---|
1008 | fig.add_axes(ax) |
---|
1009 | p1.show() |
---|
1010 | surfacefig = 'solution_surface%s' %leg_label[j] |
---|
1011 | p1.savefig(surfacefig) |
---|
1012 | p1.close() |
---|
1013 | |
---|
1014 | #### finished generating quantities for all swwfiles ##### |
---|
1015 | |
---|
1016 | # x profile for given time |
---|
1017 | if surface == True: |
---|
1018 | figure(11) |
---|
1019 | plot(eastings[tindex,:,j],stages[tindex,:,j]) |
---|
1020 | xlabel('x') |
---|
1021 | ylabel('stage') |
---|
1022 | profilefig = 'solution_xprofile' |
---|
1023 | savefig('profilefig') |
---|
1024 | |
---|
1025 | stage_axis = axis([time_min/60.0, time_max/60.0, min(min_stages), max(max_stages)*1.1]) |
---|
1026 | #stage_axis = axis([time_min/60.0, time_max/60.0, -3.0, 3.0]) |
---|
1027 | vel_axis = axis([time_min/60.0, time_max/60.0, min(max_speeds), max(max_speeds)*1.1]) |
---|
1028 | mom_axis = axis([time_min/60.0, time_max/60.0, min(max_momentums), max(max_momentums)*1.1]) |
---|
1029 | |
---|
1030 | cstr = ['g', 'r', 'b', 'c', 'm', 'y', 'k'] |
---|
1031 | nn = len(plot_quantity) |
---|
1032 | no_cols = 2 |
---|
1033 | elev_output = [] |
---|
1034 | if len(label_id) > 1: graphname_report = [] |
---|
1035 | for k in gauge_index: |
---|
1036 | g = gauges[k] |
---|
1037 | count1 = 0 |
---|
1038 | if report == True and len(label_id) > 1: |
---|
1039 | s = '\\begin{figure}[hbt] \n \\centering \n \\begin{tabular}{cc} \n' |
---|
1040 | fid.write(s) |
---|
1041 | if len(label_id) > 1: graphname_report = [] |
---|
1042 | #### generate figures for each gauge #### |
---|
1043 | for j, f in enumerate(f_list): |
---|
1044 | ion() |
---|
1045 | hold(True) |
---|
1046 | count = 0 |
---|
1047 | where1 = 0 |
---|
1048 | where2 = 0 |
---|
1049 | word_quantity = '' |
---|
1050 | if report == True and len(label_id) == 1: |
---|
1051 | s = '\\begin{figure}[hbt] \n \\centering \n \\begin{tabular}{cc} \n' |
---|
1052 | fid.write(s) |
---|
1053 | |
---|
1054 | for which_quantity in plot_quantity: |
---|
1055 | count += 1 |
---|
1056 | where1 += 1 |
---|
1057 | figure(count, frameon = False) |
---|
1058 | if which_quantity == 'depth': |
---|
1059 | plot(model_time[0:n[j]-1,k,j], depths[0:n[j]-1,k,j], '-', c = cstr[j]) |
---|
1060 | units = 'm' |
---|
1061 | if which_quantity == 'stage': |
---|
1062 | plot(model_time[0:n[j]-1,k,j], stages[0:n[j]-1,k,j], '-', c = cstr[j]) |
---|
1063 | axis(stage_axis) |
---|
1064 | units = 'm' |
---|
1065 | if which_quantity == 'momentum': |
---|
1066 | plot(model_time[0:n[j]-1,k,j], momenta[0:n[j]-1,k,j], '-', c = cstr[j]) |
---|
1067 | axis(mom_axis) |
---|
1068 | units = 'm^2 / sec' |
---|
1069 | if which_quantity == 'xmomentum': |
---|
1070 | plot(model_time[0:n[j]-1,k,j], xmom[0:n[j]-1,k,j], '-', c = cstr[j]) |
---|
1071 | axis(mom_axis) |
---|
1072 | units = 'm^2 / sec' |
---|
1073 | if which_quantity == 'ymomentum': |
---|
1074 | plot(model_time[0:n[j]-1,k,j], ymom[0:n[j]-1,k,j], '-', c = cstr[j]) |
---|
1075 | axis(mom_axis) |
---|
1076 | units = 'm^2 / sec' |
---|
1077 | if which_quantity == 'speed': |
---|
1078 | plot(model_time[0:n[j]-1,k,j], speed[0:n[j]-1,k,j], '-', c = cstr[j]) |
---|
1079 | axis(vel_axis) |
---|
1080 | units = 'm / sec' |
---|
1081 | if which_quantity == 'bearing': |
---|
1082 | due_east = 90.0*ones(shape(model_time[0:n[j]-1,k,j],Float)) |
---|
1083 | due_west = 270.0*ones(shape(model_time[0:n[j]-1,k,j],Float)) |
---|
1084 | plot(model_time[0:n[j]-1,k,j], bearings, '-', |
---|
1085 | model_time[0:n[j]-1,k,j], due_west, '-.', |
---|
1086 | model_time[0:n[j]-1,k,j], due_east, '-.') |
---|
1087 | units = 'degrees from North' |
---|
1088 | ax = axis([time_min, time_max, 0.0, 360.0]) |
---|
1089 | legend(('Bearing','West','East')) |
---|
1090 | |
---|
1091 | xlabel('time (mins)') |
---|
1092 | ylabel('%s (%s)' %(which_quantity, units)) |
---|
1093 | if len(label_id) > 1: legend((leg_label),loc='upper right') |
---|
1094 | |
---|
1095 | gaugeloc1 = gaugeloc.replace(' ','') |
---|
1096 | #gaugeloc2 = gaugeloc1.replace('_','') |
---|
1097 | gaugeloc2 = locations[k].replace(' ','') |
---|
1098 | graphname = '%sgauge%s_%s' %(file_loc[j], gaugeloc2, which_quantity) |
---|
1099 | |
---|
1100 | if report == True and len(label_id) > 1: |
---|
1101 | figdir = getcwd()+sep+'report_figures'+sep |
---|
1102 | if access(figdir,F_OK) == 0 : |
---|
1103 | mkdir (figdir) |
---|
1104 | latex_file_loc = figdir.replace(sep,altsep) |
---|
1105 | graphname_latex = '%sgauge%s%s' %(latex_file_loc, gaugeloc2, which_quantity) # storing files in production directory |
---|
1106 | graphname_report_input = '%sgauge%s%s' %('..'+altsep+'report_figures'+altsep, gaugeloc2, which_quantity) # giving location in latex output file |
---|
1107 | graphname_report.append(graphname_report_input) |
---|
1108 | |
---|
1109 | savefig(graphname_latex) # save figures in production directory for report generation |
---|
1110 | |
---|
1111 | if report == True: |
---|
1112 | |
---|
1113 | figdir = getcwd()+sep+'report_figures'+sep |
---|
1114 | if access(figdir,F_OK) == 0 : |
---|
1115 | mkdir (figdir) |
---|
1116 | latex_file_loc = figdir.replace(sep,altsep) |
---|
1117 | |
---|
1118 | if len(label_id) == 1: |
---|
1119 | graphname_latex = '%sgauge%s%s%s' %(latex_file_loc, gaugeloc2, which_quantity, label_id2) # storing files in production directory |
---|
1120 | graphname_report = '%sgauge%s%s%s' %('..'+altsep+'report_figures'+altsep, gaugeloc2, which_quantity, label_id2) # giving location in latex output file |
---|
1121 | s = '\includegraphics[width=0.49\linewidth, height=50mm]{%s%s}' %(graphname_report, '.png') |
---|
1122 | fid.write(s) |
---|
1123 | if where1 % 2 == 0: |
---|
1124 | s = '\\\\ \n' |
---|
1125 | where1 = 0 |
---|
1126 | else: |
---|
1127 | s = '& \n' |
---|
1128 | fid.write(s) |
---|
1129 | savefig(graphname_latex) |
---|
1130 | |
---|
1131 | if title_on == True: |
---|
1132 | title('%s scenario: %s at %s gauge' %(label_id, which_quantity, gaugeloc2)) |
---|
1133 | |
---|
1134 | savefig(graphname) # save figures with sww file |
---|
1135 | |
---|
1136 | if report == True and len(label_id) == 1: |
---|
1137 | for i in range(nn-1): |
---|
1138 | if nn > 2: |
---|
1139 | word_quantity += plot_quantity[i] + ', ' |
---|
1140 | else: |
---|
1141 | word_quantity += plot_quantity[i] |
---|
1142 | |
---|
1143 | word_quantity += ' and ' + plot_quantity[nn-1] |
---|
1144 | caption = 'Time series for %s at %s location (elevation %.2fm)' %(word_quantity, locations[k], elev[k]) #gaugeloc.replace('_',' ')) |
---|
1145 | if elev[k] == 0.0: |
---|
1146 | caption = 'Time series for %s at %s location (elevation %.2fm)' %(word_quantity, locations[k], elevations[0,k,j]) |
---|
1147 | east = gauges[0] |
---|
1148 | north = gauges[1] |
---|
1149 | elev_output.append([locations[k],east,north,elevations[0,k,j]]) |
---|
1150 | label = '%sgauge%s' %(label_id2, gaugeloc2) |
---|
1151 | s = '\end{tabular} \n \\caption{%s} \n \label{fig:%s} \n \end{figure} \n \n' %(caption, label) |
---|
1152 | fid.write(s) |
---|
1153 | c += 1 |
---|
1154 | if c % 6 == 0: fid.write('\\clearpage \n') |
---|
1155 | savefig(graphname_latex) |
---|
1156 | |
---|
1157 | if report == True and len(label_id) > 1: |
---|
1158 | for i in range(nn-1): |
---|
1159 | if nn > 2: |
---|
1160 | word_quantity += plot_quantity[i] + ', ' |
---|
1161 | else: |
---|
1162 | word_quantity += plot_quantity[i] |
---|
1163 | where1 = 0 |
---|
1164 | count1 += 1 |
---|
1165 | index = j*len(plot_quantity) |
---|
1166 | for which_quantity in plot_quantity: |
---|
1167 | where1 += 1 |
---|
1168 | s = '\includegraphics[width=0.49\linewidth, height=50mm]{%s%s}' %(graphname_report[index], '.png') |
---|
1169 | index += 1 |
---|
1170 | fid.write(s) |
---|
1171 | if where1 % 2 == 0: |
---|
1172 | s = '\\\\ \n' |
---|
1173 | where1 = 0 |
---|
1174 | else: |
---|
1175 | s = '& \n' |
---|
1176 | fid.write(s) |
---|
1177 | word_quantity += ' and ' + plot_quantity[nn-1] |
---|
1178 | label = 'gauge%s' %(gaugeloc2) |
---|
1179 | caption = 'Time series for %s at %s location (elevation %.2fm)' %(word_quantity, locations[k], elev[k]) |
---|
1180 | if elev[k] == 0.0: |
---|
1181 | caption = 'Time series for %s at %s location (elevation %.2fm)' %(word_quantity, locations[k], elevations[0,k,j]) |
---|
1182 | thisgauge = gauges[k] |
---|
1183 | east = thisgauge[0] |
---|
1184 | north = thisgauge[1] |
---|
1185 | elev_output.append([locations[k],east,north,elevations[0,k,j]]) |
---|
1186 | |
---|
1187 | s = '\end{tabular} \n \\caption{%s} \n \label{fig:%s} \n \end{figure} \n \n' %(caption, label) |
---|
1188 | fid.write(s) |
---|
1189 | c += 1 |
---|
1190 | if c % 6 == 0: fid.write('\\clearpage \n') |
---|
1191 | |
---|
1192 | #### finished generating figures ### |
---|
1193 | |
---|
1194 | close('all') |
---|
1195 | |
---|
1196 | return texfile2, elev_output |
---|
1197 | |
---|
1198 | # FIXME (DSG): Add unit test, make general, not just 2 files, |
---|
1199 | # but any number of files. |
---|
1200 | def copy_code_files(dir_name, filename1, filename2): |
---|
1201 | """Copies "filename1" and "filename2" to "dir_name". Very useful for |
---|
1202 | information management """ |
---|
1203 | |
---|
1204 | if access(dir_name,F_OK) == 0: |
---|
1205 | print 'Make directory %s' %dir_name |
---|
1206 | mkdir (dir_name,0777) |
---|
1207 | copy(filename1, dir_name + sep + basename(filename1)) |
---|
1208 | copy(filename2, dir_name + sep + basename(filename2)) |
---|
1209 | # copy (__file__, project.output_run_time_dir + basename(__file__)) |
---|
1210 | print 'Files %s and %s copied' %(filename1, filename2) |
---|
1211 | |
---|
1212 | |
---|
1213 | def add_directories(root_directory, directories): |
---|
1214 | """ |
---|
1215 | Add the first directory in directories to root_directory. |
---|
1216 | Then add the second |
---|
1217 | direcotory to the first directory and so on. |
---|
1218 | |
---|
1219 | Return the path of the final directory. |
---|
1220 | |
---|
1221 | This is handy for specifying and creating a directory where data will go. |
---|
1222 | """ |
---|
1223 | dir = root_directory |
---|
1224 | for new_dir in directories: |
---|
1225 | dir = os.path.join(dir, new_dir) |
---|
1226 | if not access(dir,F_OK): |
---|
1227 | mkdir (dir) |
---|
1228 | return dir |
---|
1229 | |
---|
1230 | |
---|
1231 | |
---|