source: sasview/src/sans/models/SchulzHuber.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: 4.9 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::
19
20   THIS FILE WAS GENERATED BY WRAPPERGENERATOR.PY
21   DO NOT MODIFY THIS FILE, MODIFY
22   src\sans\models\include\schulzhuber.h
23   AND RE-RUN THE GENERATOR SCRIPT
24"""
25
26from sans.models.BaseComponent import BaseComponent
27from sans.models.sans_extension.c_models import CSchulzHuber
28
29def create_SchulzHuber():
30    """
31       Create a model instance
32    """
33    obj = SchulzHuber()
34    # CSchulzHuber.__init__(obj) is called by
35    # the SchulzHuber constructor
36    return obj
37
38class SchulzHuber(CSchulzHuber, BaseComponent):
39    """
40    Class that evaluates a SchulzHuber model.
41    This file was auto-generated from src\sans\models\include\schulzhuber.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    * scale           = 1.0
48    * sigma           = 1.0
49    * center          = 0.0
50
51    """
52       
53    def __init__(self, multfactor=1):
54        """ Initialization """
55        self.__dict__ = {}
56       
57        # Initialize BaseComponent first, then sphere
58        BaseComponent.__init__(self)
59        #apply(CSchulzHuber.__init__, (self,))
60
61        CSchulzHuber.__init__(self)
62        self.is_multifunc = False
63                       
64        ## Name of the model
65        self.name = "SchulzHuber"
66        ## Model description
67        self.description = """
68         f(x) = scale * math.pow(z+1, z) * math.pow((R), z-1) *
69                math.exp(-R*z) / (center*gamma(z+1))
70                z= math.pow[(1/(sigma/center),2]-1
71        """
72       
73        ## Parameter details [units, min, max]
74        self.details = {}
75        self.details['scale'] = ['', None, None]
76        self.details['sigma'] = ['', None, None]
77        self.details['center'] = ['', None, None]
78
79        ## fittable parameters
80        self.fixed = []
81       
82        ## non-fittable parameters
83        self.non_fittable = []
84       
85        ## parameters with orientation
86        self.orientation_params = []
87
88        ## parameters with magnetism
89        self.magnetic_params = []
90
91        self.category = None
92        self.multiplicity_info = None
93       
94    def __setstate__(self, state):
95        """
96        restore the state of a model from pickle
97        """
98        self.__dict__, self.params, self.dispersion = state
99       
100    def __reduce_ex__(self, proto):
101        """
102        Overwrite the __reduce_ex__ of PyTypeObject *type call in the init of
103        c model.
104        """
105        state = (self.__dict__, self.params, self.dispersion)
106        return (create_SchulzHuber, tuple(), state, None, None)
107       
108    def clone(self):
109        """ Return a identical copy of self """
110        return self._clone(SchulzHuber())   
111       
112    def run(self, x=0.0):
113        """
114        Evaluate the model
115       
116        :param x: input q, or [q,phi]
117       
118        :return: scattering function P(q)
119       
120        """
121        return CSchulzHuber.run(self, x)
122   
123    def runXY(self, x=0.0):
124        """
125        Evaluate the model in cartesian coordinates
126       
127        :param x: input q, or [qx, qy]
128       
129        :return: scattering function P(q)
130       
131        """
132        return CSchulzHuber.runXY(self, x)
133       
134    def evalDistribution(self, x):
135        """
136        Evaluate the model in cartesian coordinates
137       
138        :param x: input q[], or [qx[], qy[]]
139       
140        :return: scattering function P(q[])
141       
142        """
143        return CSchulzHuber.evalDistribution(self, x)
144       
145    def calculate_ER(self):
146        """
147        Calculate the effective radius for P(q)*S(q)
148       
149        :return: the value of the effective radius
150       
151        """       
152        return CSchulzHuber.calculate_ER(self)
153       
154    def calculate_VR(self):
155        """
156        Calculate the volf ratio for P(q)*S(q)
157       
158        :return: the value of the volf ratio
159       
160        """       
161        return CSchulzHuber.calculate_VR(self)
162             
163    def set_dispersion(self, parameter, dispersion):
164        """
165        Set the dispersion object for a model parameter
166       
167        :param parameter: name of the parameter [string]
168        :param dispersion: dispersion object of type DispersionModel
169       
170        """
171        return CSchulzHuber.set_dispersion(self,
172               parameter, dispersion.cdisp)
173       
174   
175# End of file
176
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