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While rounding off the floating point values I observed some discrepancy in values. I have extracted following part of code. Here if variable var_d is assigned value> 5.3 to then I am getting proper values for variable var_d, but for values like 5.01 and 5.02 I am getting 500 and 501 respectively.

#include<stdio.h>
int main()
{
double var_d=5.02;
long var_l;
var_l = (double)(var_d*100);
printf("var_d : %f  var_l= %ld\n ",var_d,var_l);
printf("result : %ld\n",var_l);
return 0;
}
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I am using GCC Version 4.3.2 on SUSE Linux. –  Ashish Chavan May 16 '13 at 11:59
    
Rounding up floating point values is bound to a certain degree of unpredictability. Fixed point arithmetics should be used instead. –  Alex May 16 '13 at 11:59
    
possible duplicate of Floating point inaccuracy examples –  Claptrap May 16 '13 at 12:01
1  
@Alex This has much more to do with the choice of a base than with the choice of fixed/floating point. Binary floating-point fails at these examples. With reasonable parameters, decimal floating-point gets these examples right. Binary fixed-point fails at these or similar examples. With reasonable parameters, decimal fixed-point gets these examples right. –  Pascal Cuoq May 22 '13 at 9:43
    
Indeed it would be nice if C had BCD (binary coded decimal) float types, even if they had to be done in software. –  Adrian Ratnapala Jun 13 '13 at 14:59

2 Answers 2

up vote 2 down vote accepted

Use

double var_d=5.02;
long var_l = rint(var_d*100);

Since 100 * 5.02 is not not exactly equal to 502, you are getting a rounded down.

To be clearer: 5.02 has no exact representation in binary floating point. Thus var_l*100 == 5.02*100 is not exactly 502. In fact it is closer to 501.99999999999994. When you cast it to an integer, this is rounded down to 501.

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float var_d=5.02;
long var_l;
var_l = (long)(float)(var_d*100);

This should works properly

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I tried it but it does not work, Instead I used following var_l = (float)(var_d*100) + 1e-9 ; which is working for now. –  Ashish Chavan May 17 '13 at 5:35

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