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How can we extract the decimal part of a floating point number and store the decimal part and the integer part into two separate integer variables?

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I don't see how you could put the decimal part into an integer unless you knew how many digits you wanted to keep. Could you give a few examples? –  Nosredna Feb 1 '09 at 1:16
    
i want to get the decimal part as integer for any inputting value. so the number of digits in the deciaml part cannot predict. –  Binu Feb 1 '09 at 1:25
    
like if u input 16.25 i want to get 25 in an integer value also if teh nuber is 0.3215769 i want to get 3215769 in an integer like that –  Binu Feb 1 '09 at 1:33
5  
How would you distinguish the decimal fractions in 1.5 and 1.005? –  IfLoop Jun 5 '09 at 12:16
10  
2 years, 11 months. 22 questions. 0 accepts. Seriously? –  Lightness Races in Orbit Jan 27 '12 at 10:41

9 Answers 9

You use the modf function:

double integral;
double fractional = modf(some_double, &integral);

You can also cast it to an integer, but be warned you may overflow the integer. The result is not predictable then.

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codepad.org/A0ilp9eE Doesn't seem to work –  penu Nov 27 '14 at 4:43

Try this:

int main() {
  double num = 23.345;
  int intpart = (int)num;
  double decpart = num - intpart;
  printf("Num = %f, intpart = %d, decpart = %f\n", num, intpart, decpart);
}

For me, it produces:

Num = 23.345000, intpart = 23, decpart = 0.345000

Which appears to be what you're asking for.

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the first part is correct but wish to get the result as decimal part as 345000 integer –  Binu Feb 1 '09 at 1:03
    
but i want to get the deciaml part as Integer value which means decpart=345000 –  Binu Mar 14 '09 at 16:11
1  
int decpart = 100000*(num - intpart); –  IfLoop Jun 5 '09 at 12:14
2  
But wont work for negative numbers. –  Zammbi Aug 23 '12 at 3:16

The quick "in a nut shell" most obvious answer seems like:

#define N_DECIMAL_POINTS_PRECISION (1000) // n = 3. Three decimal points.

float f = 123.456;
int integerPart = (int)f;
int decimalPart = ((int)(f*N_DECIMAL_POINTS_PRECISION)%N_DECIMAL_POINTS_PRECISION);

You would change how many decimal points you want by changing the N_DECIMAL_POINTS_PRECISION to suit your needs.

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Just for fun. Let's do a thought experiement: The more obfuscated and complex ( see "hard to maintain code" ) solution could go as far as [bit slicing][1] the float or double to get the actual ["integerBits" and "fractionalBits"][2]. –  Trevor Boyd Smith Mar 26 '09 at 3:53
    
I'm not exactly sure of why you would do this... maybe this method would have the advantage of capturing the integer and decimal parts directly without losing any of the precision due to floating point rounding. –  Trevor Boyd Smith Mar 26 '09 at 3:54
    
Here is some incomplete pseudo code to give you the idea: #define BIT_MASK1 /* not sure / #define SHIFT / not sure / #define BIT_MASK2 / not sure */ float f = 123.456; uint32_t * tmp = (uint32_t *)&f; int integerPart = (int)f; –  Trevor Boyd Smith Mar 26 '09 at 3:55
    
int decimalPart = (((*tmp)&BIT_MASK1)>>SHIFT)&BIT_MASK2; [1]: en.wikipedia.org/wiki/Bit_mask [2]: en.wikipedia.org/wiki/Q_(number_format) –  Trevor Boyd Smith Mar 26 '09 at 3:56

I created a subroutine one using a double float, it returns 2 integer values.


void double2Ints(double f, int p, int *i, int *d)
{ 
  // f = float, p=decimal precision, i=integer, d=decimal
  int   li; 
  int   prec=1;

  for(int x=p;x>0;x--) 
  {
    prec*=10;
  };  // same as power(10,p)

  li = (int) f;              // get integer part
  *d = (int) ((f-li)*prec);  // get decimal part
  *i = li;
}

void test()
{ 
  double df = 3.14159265;
  int   i,d;
  for(int p=2;p<9;p++)
  {
    double2Ints(df, p, &i,&d); printf("d2i (%d) %f = %d.%d\r\n",p, df,i,d);
  }
}

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Other answers have given you how to split the whole part from the fractional part. To do what you want with the fractional part, just keep multiplying it by 10 until the fractional part of that becomes 0.

You may have to deal with overflow converting that to an integer (if you're working with doubles instead of floats).

Also, I'm not sure how rounding error might screw with this - been a long time since I did numerical analysis. And even then it was pretty much the minimum to get a good grade in some class.

I'll leave those problems and the actual implementation as an exercise for the reader. Is this homework by any chance?

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Well, floor() or casting will get you the integer part easily, but what do you actually expect to store in the "decimal" part?

Not even including issues like floating point (im)precision, what do you want to happen when your candidate float is a repeating fraction or an irrational number?

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I made this function, it seems to work fine:

#include <math.h>

void GetFloattoInt (double fnum, long precision, long *pe, long *pd)
{
  long pe_sign;
  long intpart;
  float decpart;

  if(fnum>=0)
  {
    pe_sign=1;
  }
  else
  {
    pe_sign=-1;
  }

  intpart=(long)fnum;
  decpart=fnum-intpart;

  *pe=intpart;  
  *pd=(((long)(decpart*pe_sign*pow(10,precision)))%(long)pow(10,precision));
}
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Here is another way:

#include <stdlib.h>
int main()
{
    char* inStr = "123.4567";         //the number we want to convert
    char* endptr;                     //unused char ptr for strtod

    char* loc = strchr(inStr, '.');
    long mantissa = strtod(loc+1, endptr);
    long whole = strtod(inStr, endptr);

    printf("whole: %d \n", whole);     //whole number portion
    printf("mantissa: %d", mantissa);  //decimal portion

}

http://codepad.org/jyHoBALU

Output:

whole: 123 
mantissa: 4567
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Maybe the best idea is to solve the problem while the data is in String format. If you have the data as String, you may parse it according to the decimal point. You extract the integral and decimal part as Substrings and then convert these substrings to actual integers.

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Converting it to a string just for this is a bit silly, but if it were a string originally then this makes sense. –  Matthew Read Apr 24 '12 at 21:12
    
As mentioned above consider 1.5 and 1.005 ... –  Mikhail Nov 17 '12 at 18:03

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