source: sasview/src/sans/models/HayterMSAStructure.py @ 400155b

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Last change on this file since 400155b was 400155b, checked in by gonzalezm, 9 years ago

Implementing request from ticket 261 - default number of bins in Annulus [Phi View] is now 36 and the first bin is now centered at 0 degrees

  • Property mode set to 100644
File size: 5.7 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::
19
20   THIS FILE WAS GENERATED BY WRAPPERGENERATOR.PY
21   DO NOT MODIFY THIS FILE, MODIFY
22   src\sans\models\include\HayterMSA.h
23   AND RE-RUN THE GENERATOR SCRIPT
24"""
25
26from sans.models.BaseComponent import BaseComponent
27from sans.models.sans_extension.c_models import CHayterMSAStructure
28
29def create_HayterMSAStructure():
30    """
31       Create a model instance
32    """
33    obj = HayterMSAStructure()
34    # CHayterMSAStructure.__init__(obj) is called by
35    # the HayterMSAStructure constructor
36    return obj
37
38class HayterMSAStructure(CHayterMSAStructure, BaseComponent):
39    """
40    Class that evaluates a HayterMSAStructure model.
41    This file was auto-generated from src\sans\models\include\HayterMSA.h.
42    Refer to that file and the structure it contains
43    for details of the model.
44   
45    List of default parameters:
46
47    * effect_radius   = 20.75 [A]
48    * charge          = 19.0
49    * volfraction     = 0.0192
50    * temperature     = 318.16 [K]
51    * saltconc        = 0.0 [M]
52    * dielectconst    = 71.08
53
54    """
55       
56    def __init__(self, multfactor=1):
57        """ Initialization """
58        self.__dict__ = {}
59       
60        # Initialize BaseComponent first, then sphere
61        BaseComponent.__init__(self)
62        #apply(CHayterMSAStructure.__init__, (self,))
63
64        CHayterMSAStructure.__init__(self)
65        self.is_multifunc = False
66                       
67        ## Name of the model
68        self.name = "HayterMSAStructure"
69        ## Model description
70        self.description = """
71        To calculate the structure factor (the Fourier transform of the
72                pair correlation function g(r)) for a system of
73                charged, spheroidal objects in a dielectric
74                medium.
75                When combined with an appropriate form
76                factor, this allows for inclusion of
77                the interparticle interference effects
78                due to screened coulomb repulsion between
79                charged particles.
80                (Note: charge > 0 required.)
81               
82                Ref: JP Hansen and JB Hayter, Molecular
83                Physics 46, 651-656 (1982).
84               
85        """
86       
87        ## Parameter details [units, min, max]
88        self.details = {}
89        self.details['effect_radius'] = ['[A]', None, None]
90        self.details['charge'] = ['', None, None]
91        self.details['volfraction'] = ['', None, None]
92        self.details['temperature'] = ['[K]', None, None]
93        self.details['saltconc'] = ['[M]', None, None]
94        self.details['dielectconst'] = ['', None, None]
95
96        ## fittable parameters
97        self.fixed = ['effect_radius.width']
98       
99        ## non-fittable parameters
100        self.non_fittable = []
101       
102        ## parameters with orientation
103        self.orientation_params = []
104
105        ## parameters with magnetism
106        self.magnetic_params = []
107
108        self.category = None
109        self.multiplicity_info = None
110       
111    def __setstate__(self, state):
112        """
113        restore the state of a model from pickle
114        """
115        self.__dict__, self.params, self.dispersion = state
116       
117    def __reduce_ex__(self, proto):
118        """
119        Overwrite the __reduce_ex__ of PyTypeObject *type call in the init of
120        c model.
121        """
122        state = (self.__dict__, self.params, self.dispersion)
123        return (create_HayterMSAStructure, tuple(), state, None, None)
124       
125    def clone(self):
126        """ Return a identical copy of self """
127        return self._clone(HayterMSAStructure())   
128       
129    def run(self, x=0.0):
130        """
131        Evaluate the model
132       
133        :param x: input q, or [q,phi]
134       
135        :return: scattering function P(q)
136       
137        """
138        return CHayterMSAStructure.run(self, x)
139   
140    def runXY(self, x=0.0):
141        """
142        Evaluate the model in cartesian coordinates
143       
144        :param x: input q, or [qx, qy]
145       
146        :return: scattering function P(q)
147       
148        """
149        return CHayterMSAStructure.runXY(self, x)
150       
151    def evalDistribution(self, x):
152        """
153        Evaluate the model in cartesian coordinates
154       
155        :param x: input q[], or [qx[], qy[]]
156       
157        :return: scattering function P(q[])
158       
159        """
160        return CHayterMSAStructure.evalDistribution(self, x)
161       
162    def calculate_ER(self):
163        """
164        Calculate the effective radius for P(q)*S(q)
165       
166        :return: the value of the effective radius
167       
168        """       
169        return CHayterMSAStructure.calculate_ER(self)
170       
171    def calculate_VR(self):
172        """
173        Calculate the volf ratio for P(q)*S(q)
174       
175        :return: the value of the volf ratio
176       
177        """       
178        return CHayterMSAStructure.calculate_VR(self)
179             
180    def set_dispersion(self, parameter, dispersion):
181        """
182        Set the dispersion object for a model parameter
183       
184        :param parameter: name of the parameter [string]
185        :param dispersion: dispersion object of type DispersionModel
186       
187        """
188        return CHayterMSAStructure.set_dispersion(self,
189               parameter, dispersion.cdisp)
190       
191   
192# End of file
193
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