1 | ############################################################################## |
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2 | # This software was developed by the University of Tennessee as part of the |
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3 | # Distributed Data Analysis of Neutron Scattering Experiments (DANSE) |
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4 | # project funded by the US National Science Foundation. |
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5 | # |
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6 | # If you use DANSE applications to do scientific research that leads to |
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7 | # publication, we ask that you acknowledge the use of the software with the |
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8 | # following sentence: |
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9 | # |
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10 | # This work benefited from DANSE software developed under NSF award DMR-0520547 |
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11 | # |
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12 | # Copyright 2008-2011, University of Tennessee |
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13 | ############################################################################## |
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14 | |
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15 | """ |
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16 | Provide functionality for a C extension model |
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17 | |
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18 | .. WARNING:: |
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19 | |
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20 | THIS FILE WAS GENERATED BY WRAPPERGENERATOR.PY |
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21 | DO NOT MODIFY THIS FILE, MODIFY |
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22 | src\sans\models\include\polygausscoil.h |
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23 | AND RE-RUN THE GENERATOR SCRIPT |
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24 | """ |
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25 | |
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26 | from sans.models.BaseComponent import BaseComponent |
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27 | from sans.models.sans_extension.c_models import CPoly_GaussCoil |
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28 | |
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29 | def create_Poly_GaussCoil(): |
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30 | """ |
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31 | Create a model instance |
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32 | """ |
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33 | obj = Poly_GaussCoil() |
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34 | # CPoly_GaussCoil.__init__(obj) is called by |
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35 | # the Poly_GaussCoil constructor |
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36 | return obj |
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37 | |
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38 | class Poly_GaussCoil(CPoly_GaussCoil, BaseComponent): |
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39 | """ |
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40 | Class that evaluates a Poly_GaussCoil model. |
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41 | This file was auto-generated from src\sans\models\include\polygausscoil.h. |
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42 | Refer to that file and the structure it contains |
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43 | for details of the model. |
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44 | |
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45 | List of default parameters: |
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46 | |
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47 | * rg = 60.0 [A] |
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48 | * scale = 1.0 |
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49 | * poly_m = 2.0 [Mw/Mn] |
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50 | * background = 0.001 [1/cm] |
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51 | |
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52 | """ |
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53 | |
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54 | def __init__(self, multfactor=1): |
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55 | """ Initialization """ |
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56 | self.__dict__ = {} |
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57 | |
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58 | # Initialize BaseComponent first, then sphere |
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59 | BaseComponent.__init__(self) |
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60 | #apply(CPoly_GaussCoil.__init__, (self,)) |
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61 | |
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62 | CPoly_GaussCoil.__init__(self) |
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63 | self.is_multifunc = False |
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64 | |
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65 | ## Name of the model |
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66 | self.name = "Poly_GaussCoil" |
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67 | ## Model description |
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68 | self.description = """ |
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69 | I(q)=(scale)*2*[(1+U*x)^(-1/U)+x-1]/[(1+U)*x^2] + background |
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70 | where x = [rg^2*q^2] |
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71 | and the polydispersity is |
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72 | U = [M_w/M_n]-1. |
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73 | scale = scale factor * volume fraction |
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74 | rg = radius of gyration |
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75 | poly_m = polydispersity of molecular weight |
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76 | background = incoherent background |
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77 | """ |
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78 | |
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79 | ## Parameter details [units, min, max] |
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80 | self.details = {} |
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81 | self.details['rg'] = ['[A]', None, None] |
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82 | self.details['scale'] = ['', None, None] |
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83 | self.details['poly_m'] = ['[Mw/Mn]', None, None] |
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84 | self.details['background'] = ['[1/cm]', None, None] |
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85 | |
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86 | ## fittable parameters |
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87 | self.fixed = [] |
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88 | |
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89 | ## non-fittable parameters |
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90 | self.non_fittable = [] |
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91 | |
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92 | ## parameters with orientation |
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93 | self.orientation_params = [] |
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94 | |
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95 | ## parameters with magnetism |
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96 | self.magnetic_params = [] |
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97 | |
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98 | self.category = None |
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99 | self.multiplicity_info = None |
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100 | |
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101 | def __setstate__(self, state): |
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102 | """ |
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103 | restore the state of a model from pickle |
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104 | """ |
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105 | self.__dict__, self.params, self.dispersion = state |
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106 | |
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107 | def __reduce_ex__(self, proto): |
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108 | """ |
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109 | Overwrite the __reduce_ex__ of PyTypeObject *type call in the init of |
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110 | c model. |
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111 | """ |
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112 | state = (self.__dict__, self.params, self.dispersion) |
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113 | return (create_Poly_GaussCoil, tuple(), state, None, None) |
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114 | |
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115 | def clone(self): |
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116 | """ Return a identical copy of self """ |
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117 | return self._clone(Poly_GaussCoil()) |
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118 | |
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119 | def run(self, x=0.0): |
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120 | """ |
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121 | Evaluate the model |
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122 | |
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123 | :param x: input q, or [q,phi] |
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124 | |
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125 | :return: scattering function P(q) |
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126 | |
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127 | """ |
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128 | return CPoly_GaussCoil.run(self, x) |
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129 | |
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130 | def runXY(self, x=0.0): |
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131 | """ |
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132 | Evaluate the model in cartesian coordinates |
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133 | |
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134 | :param x: input q, or [qx, qy] |
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135 | |
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136 | :return: scattering function P(q) |
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137 | |
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138 | """ |
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139 | return CPoly_GaussCoil.runXY(self, x) |
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140 | |
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141 | def evalDistribution(self, x): |
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142 | """ |
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143 | Evaluate the model in cartesian coordinates |
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144 | |
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145 | :param x: input q[], or [qx[], qy[]] |
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146 | |
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147 | :return: scattering function P(q[]) |
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148 | |
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149 | """ |
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150 | return CPoly_GaussCoil.evalDistribution(self, x) |
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151 | |
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152 | def calculate_ER(self): |
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153 | """ |
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154 | Calculate the effective radius for P(q)*S(q) |
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155 | |
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156 | :return: the value of the effective radius |
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157 | |
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158 | """ |
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159 | return CPoly_GaussCoil.calculate_ER(self) |
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160 | |
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161 | def calculate_VR(self): |
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162 | """ |
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163 | Calculate the volf ratio for P(q)*S(q) |
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164 | |
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165 | :return: the value of the volf ratio |
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166 | |
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167 | """ |
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168 | return CPoly_GaussCoil.calculate_VR(self) |
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169 | |
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170 | def set_dispersion(self, parameter, dispersion): |
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171 | """ |
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172 | Set the dispersion object for a model parameter |
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173 | |
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174 | :param parameter: name of the parameter [string] |
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175 | :param dispersion: dispersion object of type DispersionModel |
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176 | |
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177 | """ |
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178 | return CPoly_GaussCoil.set_dispersion(self, |
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179 | parameter, dispersion.cdisp) |
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180 | |
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181 | |
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182 | # End of file |
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183 | |
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