348 lines
		
	
	
		
			20 KiB
		
	
	
	
		
			C
		
	
	
	
	
	
			
		
		
	
	
			348 lines
		
	
	
		
			20 KiB
		
	
	
	
		
			C
		
	
	
	
	
	
| /******************************************************************************\
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| *                                                                              *
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| *    SimpleCUDD library (www.cs.kuleuven.be/~theo/tools/simplecudd.html)       *
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| *  SimpleCUDD was developed at Katholieke Universiteit Leuven(www.kuleuven.be) *
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| *                                                                              *
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| *  Copyright Katholieke Universiteit Leuven 2008, 2009, 2010                   *
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| *                                                                              *
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| *  Author: Bernd Gutmann                                                       *
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| *  File: problogmath.c                                                         *
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| *  $Date:: 2010-12-17 12:21:58 +0100 (Fri, 17 Dec 2010)                      $ *
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| *  $Revision:: 5159                                                          $ *
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| *                                                                              *
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| ********************************************************************************
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| *                                                                              *
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| * Artistic License 2.0                                                         *
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| *                                                                              *
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| * Copyright (c) 2000-2006, The Perl Foundation.                                *
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| *                                                                              *
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| *                                                                              *
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| *         The End                                                              *
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| *                                                                              *
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| \******************************************************************************/
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| 
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| #include "problogmath.h"
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| #include "general.h"
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| 
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| double sigmoid(double x, double slope) {
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|   return 1.0 / (1.0 + exp(-x * slope));
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| }
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| 
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| // This function calculates the accumulated density of the normal distribution
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| // For details see G. Marsaglia, Evaluating the Normal Distribution, Journal of Statistical Software, 2004:11(4).
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| double Phi(double x)  {
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|   double s=x;
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|   double t=0.0;
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|   double b=x;
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|   double q=x*x;
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|   double i=1;
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| 
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|   // if the value is too small or too big, return
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|   // 0/1 to avoid long computations
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|   if (x < -10.0) {
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|     return 0.0;
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|   }
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| 
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|   if (x > 10.0) {
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|     return 1.0;
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|   }
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| 
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|   // t is the value from last iteration
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|   // s is the value from the current iteration
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|   // iterate until they are equal
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|   while(fabs(s-t) >= DBL_MIN) {
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|     t=s;
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|     i+=2;
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|     b*=q/i;
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|     s+=b;
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|   }
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| 
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|   return 0.5+s*exp(-0.5*q-0.91893853320467274178);
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| }
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| 
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| // integrates the normal distribution over [low,high]
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| double cumulative_normal(double low, double high, double mu, double sigma) {
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|   return Phi((high-mu)/sigma) - Phi((low-mu)/sigma);
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| }
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| 
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| // integrates the normal distribution over [-oo,high]
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| double cumulative_normal_upper(double high, double mu, double sigma) {
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|   return Phi((high-mu)/sigma);
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| }
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| 
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| 
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| // evaluates the density of the normal distribution
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| double normal(double x, double mu,double sigma) {
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|   double inner=(x-mu)/sigma;
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|   double denom=sigma*sqrt(2*3.14159265358979323846);
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|   return exp(-inner*inner/2)/denom;
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| }
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| 
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| double cumulative_normal_dmu(double low, double high,double mu,double sigma) {
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|   return normal(low,mu,sigma) - normal(high,mu,sigma);
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| }
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| 
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| double cumulative_normal_upper_dmu(double high,double mu,double sigma) {
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|   return  - normal(high,mu,sigma);
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| }
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| 
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| 
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| double cumulative_normal_dsigma(double low, double high,double mu,double sigma) {
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|   return (((mu-high)*normal(high,mu,sigma) - (mu-low)*normal(low,mu,sigma))/sigma);
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| }
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| 
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| double cumulative_normal_upper_dsigma(double high,double mu,double sigma) {
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|   return (mu-high)*normal(high,mu,sigma);
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| }
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| 
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| 
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| // this function parses two strings "$a;$b" and "???_???l$ch$d" where $a-$d are (real) numbers
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| // it is used to parse in the parameters of continues variables from the input file
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| density_integral parse_density_integral_string(char *input, char *variablename) {
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|   density_integral result;
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|   double sigma;
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|   int i;
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|   char garbage[64], s1[64],s2[64],s3[64],s4[64];
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| 
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|   if(sscanf(input, "%64[^;];%64[^;]", s1,s2) != 2) {
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|     fprintf(stderr, "Error at parsing the string %s in the function parse_density_integral_string\n",input);
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|     fprintf(stderr, "The string should contain 2 fields seperated by ; characters.\n");
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|     exit(EXIT_FAILURE);
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|   }
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| 
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|   if (!getRealNumber(s1, &result.mu)) {
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|     fprintf(stderr, "Error at parsing the string %s in the function parse_density_integral_string\n",input);
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|     fprintf(stderr, "%s is not a number\n",s1);
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|     exit(EXIT_FAILURE);
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|   }
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| 
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|   if (!getRealNumber(s2, &sigma) || sigma<=0.0) {
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|     fprintf(stderr, "Error at parsing the string %s in the function parse_density_integral_string\n",input);
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|     fprintf(stderr, "%s is not a number\n",s2);
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|     exit(EXIT_FAILURE);
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|   }
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|   result.log_sigma=log(sigma);
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| 
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| /*  if (result.sigma<=0) { */
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| /*     fprintf(stderr, "Error at parsing the string %s in the function parse_density_integral_string",input); */
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| /*     fprintf(stderr, "The value for sigma has to be larger than 0.\n"); */
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| 
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| /*     exit(EXIT_FAILURE); */
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| /*   } */
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| 
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|   if (sscanf(variablename,"%64[^lh]l%64[^lh]h%64[^lh]",garbage,s3,s4) != 3) {
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|     fprintf(stderr, "Error at parsing the string %s in the function parse_density_integral_string\n",variablename);
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|     fprintf(stderr, "The string should contain 2 fields seperated by ; characters.\n");
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|     exit(EXIT_FAILURE);
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|   }
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| 
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|   //  replace the d by . in s1 and s2
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|   for(i=0; s3[i]!='\0' ; i++) {
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|     if (s3[i]=='d') {
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|       s3[i]='.';
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|     }
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|     if (s3[i]=='m') {
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|       s3[i]='-';
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|     }
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|   }
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|   for(i=0; s4[i]!='\0' ; i++) {
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|     if (s4[i]=='d') {
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|       s4[i]='.';
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|     }
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|     if (s4[i]=='m') {
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|       s4[i]='-';
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|     }
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|   }
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| 
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|   if (!getRealNumber(s3, &result.low)) {
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|     fprintf(stderr, "Error at parsing the string %s in the function parse_density_integral_string\n",input);
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|     fprintf(stderr, "%s is not a number\n",s1);
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|     exit(EXIT_FAILURE);
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|   }
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| 
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|  if (!getRealNumber(s4, &result.high)) {
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|     fprintf(stderr, "Error ar parsing the string %s in the function parse_density_integral_string\n",input);
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|     fprintf(stderr, "%s is not a number\n",s1);
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|     exit(EXIT_FAILURE);
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|   }
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| 
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|   
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|   if (result.low>result.high) {
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|     fprintf(stderr, "Error ar parsing the string %s in the function parse_density_integral_string\n",input);
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|     fprintf(stderr, "The value for low has to be larger than then value for high.\n");
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|     fprintf(stderr, " was [%f, %f]\n",result.low, result.high);
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|     fprintf(stderr, " input %s \n",input);
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|     fprintf(stderr, " variablename %s \n",variablename);
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|  
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|     exit(EXIT_FAILURE);
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|   }
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| 
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|   
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|   return result;
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| }
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