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Possible Duplicate:
Round a double to 2 significant figures after decimal point

I am trying to work with converting a decimal degree (23.1248) into a minutes style degree(23 7'29.3"). this is what I have so far:

   double a=23.1248;
   int deg=(int)a;//gives me the degree
   float b=(float) (a-deg);
   int min=(int) (b*60);//gives me the minutes
   double sec= (double) ((c*60)-min);//gives me my seconds

everything works fine, but I would like to round the seconds up to either the nearest tenth or hundrenth. I have looked at decimal formatting, but would prefer not to cast it to a string. I have also looked at bigdecimal but do not think that would be helpful,

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marked as duplicate by Ananda Mahto, Thor, oers, amon, Donal Fellows Sep 17 '12 at 12:29

This question has been asked before and already has an answer. If those answers do not fully address your question, please ask a new question.

    
There is a round method in js – Jani Jan 11 '12 at 19:12
    
I thought decimal points were already round. And minus signs, plus signs and division were all flat :) To "round up to 100's", just use "Math.round()": docs.oracle.com/javase/1.4.2/docs/api/java/lang/Math.html double x = round(y/100.0) * 100.0; – paulsm4 Jan 11 '12 at 19:14
    
BigDecimal works fine, you can create a round(number,decimals) function like the one in this answer. Try it, I don't see why it wouldn't work. stackoverflow.com/a/8911683/744859 – Jav_Rock Jan 18 '12 at 15:46
up vote 7 down vote accepted

Try using Math.round(double) on the number after scaling it up, then scaling it back down.

double x = 1.234;
double y = Math.round(x * 100.0) / 100.0; // => 1.23

You can also use BigDecimal if you want to get really heavyweight:

BigDecimal a = new BigDecimal("1.234");
BigDecimal b = a.setScale(2, RoundingMode.DOWN); // => BigDecimal("1.23")
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First off, there are library functions to do this, so why not just use those? See Math.round(). No need to reinvent the wheel. If you wanted to, though, you could try what follows. To round a double to the hundredth's place:

x = 0.01 * floor(x * 100.0)

To round a double to the tenth's place:

x = 0.1 * floor(x * 10.0)

To round a double to the 10^k place:

x = 10^k * floor(x / 10^k)

The implementation in any language - including Java - should be straightforward. A problem with this is that it doesn't really round, but truncates, to your position. To fix this, you can simply add 0.5 * 10^k to your number before rounding. If you just want to round up, use the versions above, and add 10^k before or after the computation.

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Wouldn't you want to use round() instead of floor()? I'd expect 0.193 to be rounded to 0.2 if to 1dp. – brainzzy Jan 11 '12 at 19:22
    
@brainzzy I discuss how to achieve the same thing as round() and ceiling() using the floor() primitive for base-10 numbers. But essentially, yes, if he wants rounding to the nearest (rather than always up or always down), round() should work. – Patrick87 Jan 11 '12 at 19:24

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