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How will I round

  1. 1 < value < 1.5 to 1.5

  2. 1.5 < value < 2 to 2

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5 Answers

up vote 6 down vote accepted

How about

double rounded = Math.ceil(number * 2) / 2;

Since Math.ceil() already returns a double, no need to divide by 2.0d here. This will work fine as long as you're in the range of integers that can be expressed as doubles without losing precision, but beware if you fall out of that range.

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Thanks a lot :) –  1355 Mar 26 '13 at 5:32
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public double foo(double x){
  int res = Math.round(x);
  if(res>x) // x > .5
   return res -0.5;
  else 
   return res + 0.5;
}

I havent compiled this but this is pseudocode and should work

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Multiply by 2, use Math.ceil(), then divide that result by 2.

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I see Andrew Mao just beat me to it. –  Gigatron Mar 26 '13 at 3:53
    
Was about to ask if you copied my answer or you just didn't look :) –  Andrew Mao Mar 26 '13 at 3:54
    
I didn't see your answer when I typed mine. I don't think the page had refreshed yet. –  Gigatron Mar 26 '13 at 3:55
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    public double round(double num)
    {
        double rounded = (int) (num + 0.4999f);
        if(num > rounded)
            return rounded + 0.5;
        else
            return rounded;
    }
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You can use

double numberGrade = 2.5;
Math.ceil(numberGrade);
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1  
I suggest you recheck what you've posted, before your answer gets downvoted. –  Ɍ.Ɉ Mar 26 '13 at 3:46
    
whoops im sorry, it should be double or float –  Lynx777 Mar 26 '13 at 3:51
    
but that won't do what the question asked for. the original poster needs to round up to the next half. yours rounds up to the next integer. –  scott_fakename Mar 26 '13 at 3:56
    
Hmm Then i guess simple branching like @smk will do; –  Lynx777 Mar 26 '13 at 4:01
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