source: sasview/sansmodels/src/sans/models/EllipsoidModel.py @ 847091f

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Last change on this file since 847091f was 0824909, checked in by Jae Cho <jhjcho@…>, 15 years ago

changed notation of units

  • Property mode set to 100644
File size: 4.0 KB
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1#!/usr/bin/env python
2"""
3        This software was developed by the University of Tennessee as part of the
4        Distributed Data Analysis of Neutron Scattering Experiments (DANSE)
5        project funded by the US National Science Foundation.
6
7        If you use DANSE applications to do scientific research that leads to
8        publication, we ask that you acknowledge the use of the software with the
9        following sentence:
10
11        "This work benefited from DANSE software developed under NSF award DMR-0520547."
12
13        copyright 2008, University of Tennessee
14"""
15
16""" Provide functionality for a C extension model
17
18        WARNING: THIS FILE WAS GENERATED BY WRAPPERGENERATOR.PY
19                 DO NOT MODIFY THIS FILE, MODIFY ..\c_extensions\ellipsoid.h
20                 AND RE-RUN THE GENERATOR SCRIPT
21
22"""
23
24from sans.models.BaseComponent import BaseComponent
25from sans_extension.c_models import CEllipsoidModel
26import copy   
27   
28class EllipsoidModel(CEllipsoidModel, BaseComponent):
29    """ Class that evaluates a EllipsoidModel model.
30        This file was auto-generated from ..\c_extensions\ellipsoid.h.
31        Refer to that file and the structure it contains
32        for details of the model.
33        List of default parameters:
34         scale           = 1.0
35         radius_a        = 20.0 [Å]
36         radius_b        = 400.0 [Å]
37         contrast        = 3e-006 [1/Ų]
38         background      = 0.0 [1/cm]
39         axis_theta      = 1.57 [rad]
40         axis_phi        = 0.0 [rad]
41
42    """
43       
44    def __init__(self):
45        """ Initialization """
46       
47        # Initialize BaseComponent first, then sphere
48        BaseComponent.__init__(self)
49        CEllipsoidModel.__init__(self)
50       
51        ## Name of the model
52        self.name = "EllipsoidModel"
53        ## Model description
54        self.description =""""P(q.alpha)= scale*f(q)^(2)+ bkg
55                f(q)= 3*(scatter_sld- scatter_solvent)*V
56                *[sin(q*r(Ra,Rb,alpha))- q*r*cos(qr(Ra,Rb,alpha))]
57                /[qr(Ra,Rb,alpha)]^(3)"
58                r(Ra,Rb,alpha)= [Rb^(2)*(sin(alpha))^(2)
59                + Ra^(2)*(cos(alpha))^(2)]^(1/2)
60                scatter_sld: scattering length density of the scatter
61                solvent_sld: scattering length density of the solvent
62                V: volune of the Eliipsoid
63                Ra: radius along the rotation axis of the Ellipsoid
64                Rb: radius perpendicular to the rotation axis of the ellipsoid"""
65       
66                ## Parameter details [units, min, max]
67        self.details = {}
68        self.details['scale'] = ['', None, None]
69        self.details['radius_a'] = ['[Å]', None, None]
70        self.details['radius_b'] = ['[Å]', None, None]
71        self.details['contrast'] = ['[1/Ų]', None, None]
72        self.details['background'] = ['[1/cm]', None, None]
73        self.details['axis_theta'] = ['[rad]', None, None]
74        self.details['axis_phi'] = ['[rad]', None, None]
75
76                ## fittable parameters
77        self.fixed=['axis_phi.width', 'axis_theta.width', 'radius_a.width', 'radius_b.width', 'length.width', 'r_minor.width']
78       
79        ## parameters with orientation
80        self.orientation_params =['axis_phi.width', 'axis_theta.width', 'axis_phi', 'axis_theta']
81   
82    def clone(self):
83        """ Return a identical copy of self """
84        return self._clone(EllipsoidModel())   
85   
86    def run(self, x = 0.0):
87        """ Evaluate the model
88            @param x: input q, or [q,phi]
89            @return: scattering function P(q)
90        """
91       
92        return CEllipsoidModel.run(self, x)
93   
94    def runXY(self, x = 0.0):
95        """ Evaluate the model in cartesian coordinates
96            @param x: input q, or [qx, qy]
97            @return: scattering function P(q)
98        """
99       
100        return CEllipsoidModel.runXY(self, x)
101       
102    def set_dispersion(self, parameter, dispersion):
103        """
104            Set the dispersion object for a model parameter
105            @param parameter: name of the parameter [string]
106            @dispersion: dispersion object of type DispersionModel
107        """
108        return CEllipsoidModel.set_dispersion(self, parameter, dispersion.cdisp)
109       
110   
111# End of file
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