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The problem occurs when I do a division operation. I would like to know who to truncate a number with a decimal point into a whole number such as 2, 4, 67.

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What language? What environment? –  David Brabant Jun 25 '12 at 6:25
    
I think tag identifies it as C. Environment should not matter. –  Tõnu Samuel Jun 25 '12 at 6:28

3 Answers 3

up vote 2 down vote accepted

It truncates automatically is you assign value to "int" variable:

int c;    
c = a/b;

Or you can cast like this:

c = (int) (a/b);

This truncates it even if c is defined as float or double.

Usually truncation is not the best (depends what you want to achieve of course). Usually result is rounded like this:

c= round(a/b,0);

is more intelligent because rounds result properly. If you use linux, you can easily get reference with "man round" about exact data types etc.

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thanks so much . I will try both round() and cast. –  paul smith Jun 25 '12 at 6:29
    
If this answers your problem, you can mark it as "accepted" :) –  Tõnu Samuel Jun 25 '12 at 6:31
3  
In c = (int) a/b;, the cast applies to a, not to a/b. If you want to cast a/b, you need parentheses: c = (int)(a/b);. –  Keith Thompson Jun 25 '12 at 6:42
    
The lrint family of functions are possibly more suitable, as they round the value just as round, but returns an integer instead of a float. –  Lundin Jun 25 '12 at 6:44
    
Thanks, I fixed this stupid mistake now to avoid someone repeating mistake. –  Tõnu Samuel Jun 25 '12 at 6:48

Manually or implicitly casting from a floating-point type to an integral type causes automatic truncation toward zero. Keep in mind that if the integral type is not sufficiently large to store the value, overflow will occur. If you simply need to print the value with everything past the decimal point truncated, use printf():

printf("%.0f", floor(float_val));

As Tõnu Samuel has pointed out, that printf() invocation will actually round the floating-point parameter by default.

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thanks so much. –  paul smith Jun 25 '12 at 6:43
1  
This %.0f is not truncated but rounded as much I know. –  Tõnu Samuel Jun 25 '12 at 6:46
    
@TõnuSamuel, you're correct, I'll amend my answer. –  Greg E. Jun 25 '12 at 6:48
int result = (int)ceilf(myFloat );
int result = (int)roundf(myFloat );
int result = (int)floor(myFloat);

float result = ceilf(myFloat );
float result = roundf(myFloat );
float result = floor(myFloat);

I think it will be helpful to you.

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