source: sasview/src/sans/models/FuzzySphereModel.py @ 81b524f

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Last change on this file since 81b524f was 81b524f, checked in by Jeff Krzywon <jeffery.krzywon@…>, 10 years ago

This branch is now merged with the latest trunk release. I will merge them next.

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File size: 5.9 KB
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1##############################################################################
2# This software was developed by the University of Tennessee as part of the
3# Distributed Data Analysis of Neutron Scattering Experiments (DANSE)
4# project funded by the US National Science Foundation.
5#
6# If you use DANSE applications to do scientific research that leads to
7# publication, we ask that you acknowledge the use of the software with the
8# following sentence:
9#
10# This work benefited from DANSE software developed under NSF award DMR-0520547
11#
12# Copyright 2008-2011, University of Tennessee
13##############################################################################
14
15"""
16Provide functionality for a C extension model
17
18:WARNING: THIS FILE WAS GENERATED BY WRAPPERGENERATOR.PY
19         DO NOT MODIFY THIS FILE, MODIFY
20            src\sans\models\include\fuzzysphere.h
21         AND RE-RUN THE GENERATOR SCRIPT
22"""
23
24from sans.models.BaseComponent import BaseComponent
25from sans.models.sans_extension.c_models import CFuzzySphereModel
26
27def create_FuzzySphereModel():
28    """
29       Create a model instance
30    """
31    obj = FuzzySphereModel()
32    # CFuzzySphereModel.__init__(obj) is called by
33    # the FuzzySphereModel constructor
34    return obj
35
36class FuzzySphereModel(CFuzzySphereModel, BaseComponent):
37    """
38    Class that evaluates a FuzzySphereModel model.
39    This file was auto-generated from src\sans\models\include\fuzzysphere.h.
40    Refer to that file and the structure it contains
41    for details of the model.
42    List of default parameters:
43         radius          = 60.0 [A]
44         scale           = 0.01
45         fuzziness       = 10.0 [A]
46         sldSph          = 1e-06 [1/A^(2)]
47         sldSolv         = 3e-06 [1/A^(2)]
48         background      = 0.001 [1/cm]
49
50    """
51       
52    def __init__(self, multfactor=1):
53        """ Initialization """
54        self.__dict__ = {}
55       
56        # Initialize BaseComponent first, then sphere
57        BaseComponent.__init__(self)
58        #apply(CFuzzySphereModel.__init__, (self,))
59
60        CFuzzySphereModel.__init__(self)
61        self.is_multifunc = False
62                       
63        ## Name of the model
64        self.name = "FuzzySphereModel"
65        ## Model description
66        self.description = """
67       
68                scale: scale factor times volume fraction,
69                or just volume fraction for absolute scale data
70                radius: radius of the solid sphere
71                fuzziness = the STD of the height of fuzzy interfacial
72                thickness (ie., so-called interfacial roughness)
73                sldSph: the SLD of the sphere
74                sldSolv: the SLD of the solvent
75                background: incoherent background
76                Note: By definition, this function works only when fuzziness << radius.
77        """
78       
79        ## Parameter details [units, min, max]
80        self.details = {}
81        self.details['radius'] = ['[A]', None, None]
82        self.details['scale'] = ['', None, None]
83        self.details['fuzziness'] = ['[A]', None, None]
84        self.details['sldSph'] = ['[1/A^(2)]', None, None]
85        self.details['sldSolv'] = ['[1/A^(2)]', None, None]
86        self.details['background'] = ['[1/cm]', None, None]
87
88        ## fittable parameters
89        self.fixed = ['radius.width',
90                      'fuzziness.width']
91       
92        ## non-fittable parameters
93        self.non_fittable = []
94       
95        ## parameters with orientation
96        self.orientation_params = []
97
98        ## parameters with magnetism
99        self.magnetic_params = []
100
101        self.category = None
102        self.multiplicity_info = None
103       
104    def __setstate__(self, state):
105        """
106        restore the state of a model from pickle
107        """
108        self.__dict__, self.params, self.dispersion = state
109       
110    def __reduce_ex__(self, proto):
111        """
112        Overwrite the __reduce_ex__ of PyTypeObject *type call in the init of
113        c model.
114        """
115        state = (self.__dict__, self.params, self.dispersion)
116        return (create_FuzzySphereModel, tuple(), state, None, None)
117       
118    def clone(self):
119        """ Return a identical copy of self """
120        return self._clone(FuzzySphereModel())   
121       
122    def run(self, x=0.0):
123        """
124        Evaluate the model
125       
126        :param x: input q, or [q,phi]
127       
128        :return: scattering function P(q)
129       
130        """
131        return CFuzzySphereModel.run(self, x)
132   
133    def runXY(self, x=0.0):
134        """
135        Evaluate the model in cartesian coordinates
136       
137        :param x: input q, or [qx, qy]
138       
139        :return: scattering function P(q)
140       
141        """
142        return CFuzzySphereModel.runXY(self, x)
143       
144    def evalDistribution(self, x):
145        """
146        Evaluate the model in cartesian coordinates
147       
148        :param x: input q[], or [qx[], qy[]]
149       
150        :return: scattering function P(q[])
151       
152        """
153        return CFuzzySphereModel.evalDistribution(self, x)
154       
155    def calculate_ER(self):
156        """
157        Calculate the effective radius for P(q)*S(q)
158       
159        :return: the value of the effective radius
160       
161        """       
162        return CFuzzySphereModel.calculate_ER(self)
163       
164    def calculate_VR(self):
165        """
166        Calculate the volf ratio for P(q)*S(q)
167       
168        :return: the value of the volf ratio
169       
170        """       
171        return CFuzzySphereModel.calculate_VR(self)
172             
173    def set_dispersion(self, parameter, dispersion):
174        """
175        Set the dispersion object for a model parameter
176       
177        :param parameter: name of the parameter [string]
178        :param dispersion: dispersion object of type DispersionModel
179       
180        """
181        return CFuzzySphereModel.set_dispersion(self,
182               parameter, dispersion.cdisp)
183       
184   
185# End of file
186
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