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I have integer value, and need to round it, how to do that?

105 will be 110 103 will be 100

so classical rounding for decimals? thank you!

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round(value/10)*10 doesnt work? –  Chad May 17 '11 at 16:41
    
@Chad: There are solutions that don't need floating point, but if you do want to use floating point you need to make either sure that value is already a float or divide by 10.0, otherwise you're doing an integer divide which is then casted to float. –  DarkDust May 17 '11 at 16:47

4 Answers 4

One more for you:

int originalNumber = 95; // or whatever
int roundedNumber = 10 * ((originalNumber + 5)/10);

Integer division always truncates in C, so e.g. 3/4 = 0, 4/4 = 1.

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I don't know the exact Objective-C syntax, byt general programming question. C-style:

int c = 105;
if (c % 10 >= 5) {
    c += 10;
}
c -= c % 10;

No floating point calculations required.

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Or, maybe c = 10 * ((c + 5)/10); ? If you wanted to avoid conditionals. –  Tommy May 17 '11 at 16:47
    
@Tommy: You should provide that as an answer, because it's Yet Another Way of solving this problem :-) You're taking advantage of the fact that an integer division "loses information". –  DarkDust May 17 '11 at 16:51
    
shame on me :)))) this = 10 * ((c + 5)/10) is great! and working! :) thank you and thank all! :) –  vogueestylee May 17 '11 at 17:14

One way to solve this:

rounded = (value + 5) - ((value + 5) % 10);

Or slightly modified:

rounded = value + 5;
rounded -= rounded % 10;
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See here: Rounding numbers in Objective-C

You could support floats or express your ints as floats (105.0).

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Note that to achieve what the poster wants by using floats, you would need to do round(value / 10.0) * 10.0. –  DarkDust May 17 '11 at 16:46

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