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I need to get the decimal part out of a float number, for example:

float x = 18.30;

i need a way to get the '.30' in another float.. so i will have a float equals to 18.30 and another one equals to .30

Any ideas?

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do you want fmod(18.30, 1.0)? –  gbulmer Apr 7 '12 at 19:50
Or simply y1 = (int)x; y2 = x - y1;, though it gets ticklish with negative numbers, depending on your intent. –  Hot Licks Apr 7 '12 at 19:55
@gbulmer well, fmodf.... –  lnafziger Apr 7 '12 at 20:01
I just didn't understand the downVote –  newton_guima Apr 7 '12 at 20:10

6 Answers 6

up vote 11 down vote accepted

I'm not sure if there is a function doing exactly the way you want but you can use this:

x - floor(x)
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Note that this might be, or not what you expect for x = - 18.3 –  aka.nice Jun 7 '13 at 21:13

The accepted answer above (x - floor(x)) works for positive numbers but does not the right thing for negative numbers. Use trunc() instead:

x - trunc(x)

But the fmod() solution is the one to use if you ask me:

fmod(x, 1)
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The modf() function does this more directly than fmodf().

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Doh! My poor old brain :-) –  gbulmer Apr 7 '12 at 20:06

There are a family of fmod functions, e.g. fmod(18.30, 1.0), fmodf(18.30, 1.0), etc

#include <stdio.h>
#include <math.h>

int main (int argc, const char * argv[]) {
    // insert code here...
    printf("%f\n", fmod(18.30, 1.0));
    return 0;
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Note: use modf or fmod as suggested in other answers.

But don't expect to have exactly the same number as atof("0.30") - as your equals request suggests.

Indeed, it happens that atof("18.30") is the nearest float to atof("18.0") + atof("0.30"), but this operation is not exact, it has a rounding error, as would any sum of atof("0.30") with an integer > 0.

So when you subtract back the integer part, there is no reason to find atof("0.30") back, you only find something near atof("0.30").

Expressed in Squeak/Pharo Smalltalk (double precision used here)

(1 to: 100) count: [:i | 0.3 + i = (3/10+i) asFloat].


-> 100


(1 to: 100) count: [:i | (3/10+i) asFloat - i = 0.3].


-> 0
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fraction_part =( x-y );

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