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I was looking around and could not find exactly what I was looking for.

I want to round all my numbers up to the whole number.

Example:
5.9 would be 6
5.5 would be 6
5.1 would be 6
5.000001122 would be 6
5.0 would be 5

I was thinking if I put them into ints that would get rid of the decimal but it did not look right as the decimals were just dropping off. Am I correct here?

So I thought about just doing that then adding 1 to the final result which would fix about 99% of the problem but if my result is 5 I do not want to add 1 to it.

How would I go about fixing this issue I have?

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3 Answers 3

up vote 11 down vote accepted

You're looking for the ceil() function from <math.h> or std::ceil() from <cmath>.

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If you're using c++ stick to <cmath> rather than <math.h> and use std::ceil(). The old C headers are considered deprecated [depr.c.headers]. –  joke Jan 2 '11 at 9:34

[...] but it did not look right as the decimals were just dropping off. Am I correct here?

Correct, casting to an int simply discards the fractional part (i.e. rounds toward zero).

While std::ceil() from cmath will work for all the examples in your question, the question does not specify the required behaviour for negative values. For example should -5.9 round to -6.0 or -5.0? ceil(-5.9) = 5.0, which may not be what you want. If you want -6.0, then you would need floor(-5.9), so the code would have to be:

round =  f > 0 ? std::ceil(f) : std::floor(f) ;

The question is whether you are rounding up as ceil() does, or rather rounding away from zero (up in magnitude rather than up in value) which the above code does?

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Use math.h function ceil(number)

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