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source: branches/3.2/sources/HeuristicLab.ExtLibs/HeuristicLab.ALGLIB/2.3.0/ALGLIB-2.3.0/stest.cs @ 5955

Last change on this file since 5955 was 2806, checked in by gkronber, 15 years ago

Added plugin for new version of ALGLIB. #875 (Update ALGLIB sources)

File size: 4.5 KB
Line 
1/*************************************************************************
2Copyright (c) 2007, Sergey Bochkanov (ALGLIB project).
3
4>>> SOURCE LICENSE >>>
5This program is free software; you can redistribute it and/or modify
6it under the terms of the GNU General Public License as published by
7the Free Software Foundation (www.fsf.org); either version 2 of the
8License, or (at your option) any later version.
9
10This program is distributed in the hope that it will be useful,
11but WITHOUT ANY WARRANTY; without even the implied warranty of
12MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE.  See the
13GNU General Public License for more details.
14
15A copy of the GNU General Public License is available at
16http://www.fsf.org/licensing/licenses
17
18>>> END OF LICENSE >>>
19*************************************************************************/
20
21using System;
22
23namespace alglib
24{
25    public class stest
26    {
27        /*************************************************************************
28        Sign test
29
30        This test checks three hypotheses about the median of  the  given  sample.
31        The following tests are performed:
32            * two-tailed test (null hypothesis - the median is equal to the  given
33              value)
34            * left-tailed test (null hypothesis - the median is  greater  than  or
35              equal to the given value)
36            * right-tailed test (null hypothesis - the  median  is  less  than  or
37              equal to the given value)
38
39        Requirements:
40            * the scale of measurement should be ordinal, interval or ratio  (i.e.
41              the test could not be applied to nominal variables).
42
43        The test is non-parametric and doesn't require distribution X to be normal
44
45        Input parameters:
46            X       -   sample. Array whose index goes from 0 to N-1.
47            N       -   size of the sample.
48            Median  -   assumed median value.
49
50        Output parameters:
51            BothTails   -   p-value for two-tailed test.
52                            If BothTails is less than the given significance level
53                            the null hypothesis is rejected.
54            LeftTail    -   p-value for left-tailed test.
55                            If LeftTail is less than the given significance level,
56                            the null hypothesis is rejected.
57            RightTail   -   p-value for right-tailed test.
58                            If RightTail is less than the given significance level
59                            the null hypothesis is rejected.
60
61        While   calculating   p-values   high-precision   binomial    distribution
62        approximation is used, so significance levels have about 15 exact digits.
63
64          -- ALGLIB --
65             Copyright 08.09.2006 by Bochkanov Sergey
66        *************************************************************************/
67        public static void onesamplesigntest(ref double[] x,
68            int n,
69            double median,
70            ref double bothtails,
71            ref double lefttail,
72            ref double righttail)
73        {
74            int i = 0;
75            int gtcnt = 0;
76            int necnt = 0;
77
78            if( n<=1 )
79            {
80                bothtails = 1.0;
81                lefttail = 1.0;
82                righttail = 1.0;
83                return;
84            }
85           
86            //
87            // Calculate:
88            // GTCnt - count of x[i]>Median
89            // NECnt - count of x[i]<>Median
90            //
91            gtcnt = 0;
92            necnt = 0;
93            for(i=0; i<=n-1; i++)
94            {
95                if( (double)(x[i])>(double)(median) )
96                {
97                    gtcnt = gtcnt+1;
98                }
99                if( (double)(x[i])!=(double)(median) )
100                {
101                    necnt = necnt+1;
102                }
103            }
104            if( necnt==0 )
105            {
106               
107                //
108                // all x[i] are equal to Median.
109                // So we can conclude that Median is a true median :)
110                //
111                bothtails = 0.0;
112                lefttail = 0.0;
113                righttail = 0.0;
114                return;
115            }
116            bothtails = 2*binomialdistr.binomialdistribution(Math.Min(gtcnt, necnt-gtcnt), necnt, 0.5);
117            lefttail = binomialdistr.binomialdistribution(gtcnt, necnt, 0.5);
118            righttail = binomialdistr.binomialcdistribution(gtcnt-1, necnt, 0.5);
119        }
120    }
121}
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