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I have a series of Java decimals like:

0.43678436287643872
0.4323424556455654
0.6575643254344554

I wish to cut off everything after 5 decimal places. How is this possible?

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1  
Technically, no: the act of cutting off the further decimal places is rounding, only you're always rounding down to 5 decimal places. See the answers below for your options. – Piskvor Dec 13 '11 at 9:37
1  
do you want result to be a String or a number? – Oleg Mikheev Dec 13 '11 at 9:38
    
I want the result to be a number – Zubair Dec 13 '11 at 10:37
up vote 17 down vote accepted

If you want to keep things fast and simple. ;)

public static void main(String... args) {
    double[] values = {0.43678436287643872, 0.4323424556455654, 0.6575643254344554,
            -0.43678436287643872, -0.4323424556455654, -0.6575643254344554,
            -0.6575699999999999 };

    for (double v : values) 
        System.out.println(v + " => "+roundDown5(v));
}

public static double roundDown5(double d) {
    return (long) (d * 1e5) / 1e5;
}

// Or this. Slightly slower, but faster than creating objects. ;)
public static double roundDown5(double d) {
    return Math.floor(d * 1e5) / 1e5;
}

prints

0.43678436287643874 => 0.43678
0.4323424556455654 => 0.43234
0.6575643254344554 => 0.65756
-0.43678436287643874 => -0.43678
-0.4323424556455654 => -0.43234
-0.6575643254344554 => -0.65756
-0.6575699999999999 => -0.65756
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2  
Great solution! Simple and tricky. I love it! thx – nowaq Dec 13 '11 at 10:58
    
This may just be the best solution! I'm just trying to find any problems with it before I accept it! – Zubair Dec 13 '11 at 11:18
1  
In the first case, your value has to be less than ten trillion to avoid an overflow, in the second case you don't need to worry. – Peter Lawrey Dec 13 '11 at 11:19
1  
this is fantastic, thx! got loads of code to refactor now :) – JBoy Dec 3 '14 at 16:16
1  
@vach The last time I tested Math.floor(x) was slightly slower than the cast (long) x but that was at least 5 years ago. I imagine if you tried to JMH this today it probably isn't significantly slower. – Peter Lawrey Nov 16 '15 at 23:22
float f = 0.43678436287643872;
BigDecimal fd = new BigDecimal(f);
BigDecimal cutted = fd.setScale(5, RoundingMode.DOWN);
f = cutted.floatValue();
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Wouldn't this round the last decimal place? OP wants to avoid that. – tobiasbayer Dec 13 '11 at 9:36
    
HALF_UP is not correct. might be "DOWN"? – Kent Dec 13 '11 at 9:36
    
Yes, DOWN, of course. – Artem Dec 13 '11 at 9:37
2  
@Artem now nothing prevents you from editing your answer – Oleg Mikheev Dec 13 '11 at 9:40
1  
Just a note for anyone looking at this, convert your float to a string then construct your BigDecimal with that string. – TEK Mar 9 '14 at 14:30
Double.parseDouble(String.valueOf(x).substring(0,7));

OR

Double.valueOf(String.valueOf(x).substring(0,7));

where x contains the value you want to cut such as 0.43678436287643872

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You can edit your answer instead of posting comments. – Harry Joy Dec 13 '11 at 9:36
    
@Piskvor: My mistake. I didnt counted "0.". Edited. – Kris Dec 13 '11 at 9:41
    
@HarryJoy: Thanks for suggesting – Kris Dec 13 '11 at 9:41
    
Caveat: Works if and only if the input is between -10 and 10. – Piskvor Dec 13 '11 at 9:42
    
I would say, if you have neagative value, its 0-8 else it will be 0-7. @Piskvor: i 'aint get you.. – Kris Dec 13 '11 at 9:44

The DecimalFormat could also be of assistance here:

    double d = 0.436789436287643872;
    DecimalFormat df = new DecimalFormat("0.#####");
    df.setRoundingMode(RoundingMode.DOWN);

    double outputNum = Double.valueOf(df.format(d));
    String outpoutString = df.format(d);
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I believe the java.text.DecimalFormat class is what you need.

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I would do it with regular expressions like this:

    double[] values = { 
            0.43678436287643872,
            0.4323424556455654,
            0.6575643254344554,
            -0.43678436287643872,
            -0.4323424556455654,
            -0.6575643254344554
    };

    Pattern p = Pattern.compile("^(-?[0-9]+[\\.\\,][0-9]{1,5})?[0-9]*$");
    for(double number : values) {
        Matcher m = p.matcher(String.valueOf(number));
        boolean matchFound = m.find();
        if (matchFound) {
            System.out.println(Double.valueOf(m.group(1)));
        }
    }

The pattern can be easily modified if you need to support more/less decimal places.

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To generalize Peter answer you can do:

public static double round(double n, int decimals) {
    return Math.floor(n * Math.pow(10, decimals)) / Math.pow(10, decimals);
}
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