source: sasview/park_integration/ScipyFitting.py @ 00561739

ESS_GUIESS_GUI_DocsESS_GUI_batch_fittingESS_GUI_bumps_abstractionESS_GUI_iss1116ESS_GUI_iss879ESS_GUI_iss959ESS_GUI_openclESS_GUI_orderingESS_GUI_sync_sascalccostrafo411magnetic_scattrelease-4.1.1release-4.1.2release-4.2.2release_4.0.1ticket-1009ticket-1094-headlessticket-1242-2d-resolutionticket-1243ticket-1249ticket885unittest-saveload
Last change on this file since 00561739 was e71440c, checked in by Gervaise Alina <gervyh@…>, 16 years ago

changes on setparams to fix fit

  • Property mode set to 100644
File size: 3.6 KB
Line 
1"""
2    @organization: ScipyFitting module contains FitArrange , ScipyFit,
3    Parameter classes.All listed classes work together to perform a
4    simple fit with scipy optimizer.
5"""
6#import scipy.linalg
7import numpy 
8from sans.guitools.plottables import Data1D
9from Loader import Load
10from scipy import optimize
11
12from AbstractFitEngine import FitEngine, sansAssembly
13from AbstractFitEngine import FitArrange,Data
14class fitresult:
15    """
16        Storing fit result
17    """
18    calls     = None
19    fitness   = None
20    chisqr    = None
21    pvec      = None
22    cov       = None
23    info      = None
24    mesg      = None
25    success   = None
26    stderr    = None
27    parameters= None
28   
29class ScipyFit(FitEngine):
30    """
31        ScipyFit performs the Fit.This class can be used as follow:
32        #Do the fit SCIPY
33        create an engine: engine = ScipyFit()
34        Use data must be of type plottable
35        Use a sans model
36       
37        Add data with a dictionnary of FitArrangeDict where Uid is a key and data
38        is saved in FitArrange object.
39        engine.set_data(data,Uid)
40       
41        Set model parameter "M1"= model.name add {model.parameter.name:value}.
42        @note: Set_param() if used must always preceded set_model()
43             for the fit to be performed.In case of Scipyfit set_param is called in
44             fit () automatically.
45        engine.set_param( model,"M1", {'A':2,'B':4})
46       
47        Add model with a dictionnary of FitArrangeDict{} where Uid is a key and model
48        is save in FitArrange object.
49        engine.set_model(model,Uid)
50       
51        engine.fit return chisqr,[model.parameter 1,2,..],[[err1....][..err2...]]
52        chisqr1, out1, cov1=engine.fit({model.parameter.name:value},qmin,qmax)
53    """
54    def __init__(self):
55        """
56            Creates a dictionary (self.fitArrangeDict={})of FitArrange elements
57            with Uid as keys
58        """
59        self.fitArrangeDict={}
60        self.paramList=[]
61    def fit(self,qmin=None, qmax=None):
62         # Protect against simultanous fitting attempts
63        if len(self.fitArrangeDict)>1: 
64            raise RuntimeError, "Scipy can't fit more than a single fit problem at a time."
65       
66        # fitproblem contains first fitArrange object(one model and a list of data)
67        fitproblem=self.fitArrangeDict.values()[0]
68        listdata=[]
69        model = fitproblem.get_model()
70        listdata = fitproblem.get_data()
71        # Concatenate dList set (contains one or more data)before fitting
72        data=self._concatenateData( listdata)
73        #Assign a fit range is not boundaries were given
74        if qmin==None:
75            qmin= min(data.x)
76        if qmax==None:
77            qmax= max(data.x) 
78        functor= sansAssembly(self.paramList,model,data)
79        out, cov_x, info, mesg, success = optimize.leastsq(functor,model.getParams(self.paramList), full_output=1, warning=True)
80        chisqr = functor.chisq(out)
81       
82        if cov_x is not None and numpy.isfinite(cov_x).all():
83            stderr = numpy.sqrt(numpy.diag(cov_x))
84        else:
85            stderr=None
86        if not (numpy.isnan(out).any()) or ( cov_x !=None) :
87                result = fitresult()
88                result.fitness = chisqr
89                result.stderr  = stderr
90                result.pvec = out
91                result.success =success
92               
93                return result
94        else: 
95            raise ValueError, "SVD did not converge"+str(success)
96       
97       
98             
99           
100     
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