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Is there any way to round numbers in C?

I do not want to use ceil and floor. Is there any other alternative?

I came across this code snippet when I Googled for the answer:

(int)(num < 0 ? (num - 0.5) : (num + 0.5))

The above line always prints the value as 4 even when float num =4.9.

Please suggest a solution.

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There are many different types of rounding - which one(s) do you want to use? Please post examples of the desired behaviour. –  anon Apr 3 '10 at 10:24
3  
I think the problem is somewhere else, that should definitely print 5 for an input of 4.9. –  IVlad Apr 3 '10 at 10:41
    
Yes, the conversion of a floating point type to an integer type that can represent a number of the required signedness and magnitude should work simply by truncating the decimals; this code does the ±0.5 to cause this truncation to round the original value away from zero. –  Arkku Apr 3 '10 at 10:50
    
Needs homework tag ? –  Paul R Apr 3 '10 at 17:39
    
What's wrong with ceil and floor? Also, see stackoverflow.com/questions/485525/round-for-float-in-c. –  KennyTM Apr 5 '10 at 16:05

8 Answers 8

4.9 + 0.5 is 5.4, which cannot possibly round to 4 unless your compiler is seriously broken.

I just confirmed that the Googled code gives the correct answer for 4.9.

marcelo@macbookpro-1:~$ cat round.c 
#include <stdio.h>

int main() {
    float num = 4.9;
    int n = (int)(num < 0 ? (num - 0.5) : (num + 0.5));
    printf("%d\n", n);
}
marcelo@macbookpro-1:~$ make round && ./round
cc     round.c   -o round
5
marcelo@macbookpro-1:~$
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Hmmm....You're right....The statement can be further simplified to: int n = (num < 0) ? (num - 0.5) : (num + 0.5); I've checked this and it works flawless. Can you please explain how the (num<0) comparison works? I inserted a breakpoint in my IDE and saw that the condition check (num<0) always points to FALSE, which should execute (num + 0.5) always –  webgenius Apr 3 '10 at 10:48
    
Not sure what you are asking, but an expression a ? b : c evaluates to b if a is true and to c otherwise. In this case the idea is to move the value of num away from zero by 0.5 before converting it to int by truncating the decimals. This way the truncation will round to the nearest int (e.g. 0.5 + 0.5 = 1.0 and 0.99 + 0.5 = 1.49 both truncate to 1). –  Arkku Apr 3 '10 at 12:11
    
But why is (num<0) comparison done? num will be always 4.9 –  webgenius Apr 3 '10 at 15:34
1  
The comparison is done because the statement is for a general-use-case (where num could be positive or negative), not for the specific case in his example program. If the whole point of the question was, "how do you round 4.9 to 5?" then we could just put float num = 5.0 and be done with it. –  Dan Story Apr 3 '10 at 22:01
1  
This produces 4 with ./gcc -frip-fabric-of-space-time. There's a plugin for emacs that turns this on by default. –  Tim Post May 13 '10 at 7:23

I'm not sure that's such a good idea. That code depends on casts, and I'm fairly sure that the exact truncation is undefined.

float result = (num - floor(num) > 0.5) ? ceil(num) : floor(num);

I'd say that this is a much better way (which is basically what Shiroko posted) since it doesn't depend on any casts.

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A general solution is to use rint() and set the FLT_ROUNDS rounding mode as appropriate.

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I think what you're looking for is: int n = (d - floor(d) > 0.5) ? ceil(d) : floor(d);

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1  
"I do not want to use ceil and floor" ... –  IVlad Apr 3 '10 at 10:38
2  
If the questioner genuinely doesn't want to use ceil and floor, but genuinely is happy to use the built-in conversion to int, then the question can be filed under "quirky interview-style questions which involve an unnatural restriction to illustrate some point fully understood only by the interviewer". Unfortunately that doesn't fit in a tag. –  Steve Jessop Apr 3 '10 at 11:43
    
Steve, you are right. This is an question often asked in interviews. –  webgenius Apr 3 '10 at 12:14

the googled code works correctly. The idea behind it is that you round down when the decimal is less than .5 and round up otherwise. (int) casts the float into a int type which just drops the decimal. If you add .5 to a positive num, you get drop to the next int. If you subtract .5 from a negative it does the same thing.

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You may be able to use fesetround() in fenv.h (introduced in C99). The possible arguments are the macros FE_DOWNWARD, FE_TONEAREST, FE_TOWARDZERO, and FE_UPWARD but note that not all of them are necessarily defined - only the ones supported by the platform/implementation are. Then you can use the various round, rint and nearbyint functions in math.h (also C99). This way you can set the desired rounding behaviour once and call the same function regardless of whether or not the value is positive or negative.

(With e.g. lround you usually need not even set the rounding direction for normal use to usually get what you want.)

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int round(double x)
{
return x >= 0.0 ? int(x + 0.5) : int(x - int(x-1) + 0.5) + int(x-1);
}

It will be faster, than a version with ceil and floor.

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Try moving the brackets on your solution above, so that it reads:

(int)(num < 0) ? (num - 0.5) : (num + 0.5)

Using num as 4.9 it rounds to 5 on my machine.

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1  
This has no effect other than to possibly raise a warning when you assign this expression to an int. Also, the (int) cast is redundant, since num < 0 already has type int. –  Marcelo Cantos Apr 3 '10 at 10:34
    
What do you mean this is can't possibly work. This is the same as the answer that has 4 up votes. –  Ali Lown Apr 3 '10 at 11:07
2  
I didn't say it can't possible work, I said it has no effect, by which I meant that removing the parentheses as you did doesn't change anything. –  Marcelo Cantos Apr 4 '10 at 1:19
1  
Worse than that, by removing the brackets you have changed the type. The original expression had type int, yours has type float. –  Recurse Jun 8 '12 at 6:10

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