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Hello Is there a Java Library function which can be used to truncate a number to an arbitrary number of decimal places? For Example.

SomeLibrary.truncate(1.575, 2) = 1.57

Thanks

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possible duplicate of Round a double to 2 significant figures after decimal point –  Mr Fooz Sep 6 '12 at 0:30

11 Answers 11

up vote 24 down vote accepted

Try setScale of BigDecimal like so:

public static double round(double d, int decimalPlace) {
    BigDecimal bd = new BigDecimal(d);
    bd = bd.setScale(decimalPlace, BigDecimal.ROUND_HALF_UP);
    return bd.doubleValue();
}
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1  
2 comments: the BigDecimal has already a constructor taking a Double. The OP also doesn't seem want to round it half up, but just to truncate (floor) it. –  BalusC Dec 29 '09 at 21:13
1  
@BalusC: Concerning your first comment, I updated it... –  raoulsson Dec 29 '09 at 21:26
    
Actually, BalusC is right, I want to truncate the value however, your answer set me off in the right direction so I'm accepting it. –  user63904 Jan 7 '10 at 21:42
1  
you need to set the RoundingMode to BigDecimal.ROUND_DOWN instead of ROUND_HALF_UP to really truncate a value –  Sebastian Jul 5 '13 at 13:04
    
improved version of this stackoverflow.com/questions/7747469/… with positive and negative value and not rounding –  Mani Jan 30 at 22:15

Incredible no one brought this up yet, Java API has had DecimalFormat for ages now for this exact purpose.

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2  
Concretely for the given example the code would look something like this: final DecimalFormat df = new DecimalFormat(); df.setMaximumFractionDigits(2); df.format(1.575); The last expression returns a String which has to be converted back to a double. –  ubuntudroid Jun 13 '12 at 15:35
    
This will do round, i think the question to truncate not round. –  Mani Jan 30 at 22:08

For most numbers, you won't be able to get an exact representation of xxx.yyyy unless you use a decimal class with guaranteed accuracy, such as BigDecimal.

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2  
more fundamentally, doubles don't have decimal places, since they're stored as binary fractions. –  Michael Borgwardt Dec 29 '09 at 21:19

There's one in commons-math. Check out http://commons.apache.org/math/apidocs/org/apache/commons/math/util/MathUtils.html:

public static double round(double x,
                           int scale)

It's implemented using BigDecimal, and is overloaded to allow specifying a rounding method, so you can use it to truncate, like this:

org.apache.commons.math.util.MathUtils.round(1.575, 2, 
    java.math.BigDecimal.ROUND_DOWN);
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Use this simple function

double truncateDouble(double number, int numDigits) {
    double result = number;
    String arg = "" + number;
    int idx = arg.indexOf('.');
    if (idx!=-1) {
        if (arg.length() > idx+numDigits) {
            arg = arg.substring(0,idx+numDigits+1);
            result  = Double.parseDouble(arg);
        }
    }
    return result ;
}
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here is a short implementation which is many times faster than using BigDecimal or Math.pow

private static long TENS[] = new long[19]; static {
    TENS[0] = 1;
    for (int i = 1; i < TENS.length; i++) TENS[i] = 10 * TENS[i - 1];
}

public static double round(double v, int precision) {
    assert precision >= 0 && precision < TENS.length;
    double unscaled = v * TENS[precision];
    if(unscaled < Long.MIN_VALUE || unscaled > Long.MAX_VALUE) 
       return v;
    long unscaledLong = (long) (unscaled + (v < 0 ? -0.5 : 0.5));
    return (double) unscaledLong / TENS[precision];
}

Delete the assert'ions to taste. ;)

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The only problem I see with this is that you are multiplying parameter v by (potentially) several powers of 10, which can cause an overflow. Sure, double max value is around 10^308 so most people won't notice this, however it is possible, which is surprising behaviour (you don't expect a rounding function to have an overflow when submitting a valid value). –  U Mad Apr 13 '12 at 9:55
    
Just noticed the method will fail as soon as unscaled value will exceed long type, which is way sooner. This could be pretty fast even if parameter v is small if enough precision is requested. –  U Mad Apr 13 '12 at 9:58
    
@UMad Ok, changed the check which should handle both cases. –  Peter Lawrey Apr 13 '12 at 10:13
1  
round(9.625, 2) returns 9.63 which is wrong as per the question. the answer should be 9.62 –  Mani Jan 30 at 22:11
1  
@PeterLawrey dropping +0.5 will not work for round(9.62,2) to 9.61 . the problem is double doesn't has actual decimal point you have to use the BigDecimal or should add extra conditions –  Mani Jan 30 at 22:23

I just want to add to ubuntudroid's solution. I tried it and it wouldn't round down, so I had to add

df.setRoundingMode(RoundingMode.FLOOR);

for it to work.

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Actually, this sort of thing is easy to write:

public static double truncate(double value, int places) {
    double multiplier = Math.pow(10, places);
    return Math.floor(multiplier * value) / multiplier;
}

Note that it's Math.floor, because Math.round wouldn't be truncating.

Oh, and this returns a double, because that's what most functions in the Math class return (like Math.pow and Math.floor).

Caveat: Doubles suck for accuracy. One of the BigDecimal solutions should be considered first.

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2  
Note: pow is a very expensive function. Use it if performance is not an issue. –  Peter Lawrey Dec 29 '09 at 21:46
    
I like this solution for simplicity and clarity. –  David Carboni Jul 14 '12 at 11:29
1  
Will not work for truncate(9.62,2) will return 9.61 –  Mani Jan 30 at 22:13
    
Will not work for most values, period. –  EJP Jul 20 at 1:57
    
@Mani (well, applies to what EJP said too): I'll note that the Caveat is there for a reason. –  Powerlord Jul 20 at 14:46

To do it 100% reliably, you'd have to pass the argument as string, not as floating-point number. When given as string, the code is easy to write. The reason for this is that

double x = 1.1;

does not mean that x will actually evaluate to 1.1, only to the closest exactly representable number.

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1  
Or use BigDecimal, which is one of the reasons BigDecimal exists. –  GregS Dec 29 '09 at 21:46
1  
You still then need to initialize it from string, not from double. –  quant_dev Dec 29 '09 at 23:10

Simply remove the fractional portion

public double trunk(double value){ return value - value % 1; }

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created a method to do it.

public double roundDouble(double d, int places) {
    return Math.round(d * Math.pow(10, (double) places)) / Math.pow(10, (double)places);
}
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