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If the value is 200.3456, it should be formatted to 200.34. If it is 200, then it should be 200.00.

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marked as duplicate by EJP java Nov 17 '14 at 8:38

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.

As Monn commented (in an answer), do you actually want 200.34 or 200.35 for 200.3456? As you accepted my answer, I guess you did want rounding (+ maybe also formatting) and not just truncating. But could you perhaps still clarify what you meant? – Jonik May 11 '10 at 8:58
Obviously not an answer to your question, but anyone reading this question should seriously consider why they really need to be using a Double instead of a BigDecimal. – Bill K Jul 23 '13 at 20:04
@BillK I would assume because a BigDecimal takes a BigPerformanceHit. – JohnMerlino Jul 6 '14 at 21:23

14 Answers 14

up vote 290 down vote accepted

Here's an utility that rounds (instead of truncating) a double to specified number of decimal places.

For example:

round(200.3456, 2); // returns 200.35

Original version; watch out with this

public static double round(double value, int places) {
    if (places < 0) throw new IllegalArgumentException();

    long factor = (long) Math.pow(10, places);
    value = value * factor;
    long tmp = Math.round(value);
    return (double) tmp / factor;

This breaks down badly in corner cases with either a very high number of decimal places (e.g. round(1000.0d, 17)) or large integer part (e.g. round(90080070060.1d, 9)). Thanks to Sloin for pointing this out.

I've been using the above to round "not-too-big" doubles to 2 or 3 decimal places happily for years (for example to clean up time in seconds for logging purposes: 27.987654321987 -> 27.99). But I guess it's best to avoid it, since more reliable ways are readily available, with cleaner code too.

So, use this instead

(Adapted from this answer by Louis Wasserman and this one by Sean Owen.)

public static double round(double value, int places) {
    if (places < 0) throw new IllegalArgumentException();

    BigDecimal bd = new BigDecimal(value);
    bd = bd.setScale(places, RoundingMode.HALF_UP);
    return bd.doubleValue();

Note that HALF_UP is the rounding mode "commonly taught at school". Peruse the RoundingMode documentation, if you suspect you need something else such as Bankers’ Rounding.

Of course, if you prefer, you can inline the above into a one-liner:
new BigDecimal(value).setScale(places, RoundingMode.HALF_UP).doubleValue()

And in every case

Always remember that floating point representations using float and double are inexact. For example, consider these expressions:

999199.1231231235 == 999199.1231231236 // true
1.03 - 0.41 // 0.6200000000000001

For exactness, you want to use BigDecimal. And while at it, use the constructor that takes a String, never the one taking double. For instance, try executing this:

System.out.println(new BigDecimal(1.03).subtract(new BigDecimal(0.41)));
System.out.println(new BigDecimal("1.03").subtract(new BigDecimal("0.41")));

Some excellent further reading on the topic:

If you wanted String formatting instead of (or in addition to) strictly rounding numbers, see the other answers.

Specifically, note that round(200, 0) returns 200.0. If you want to output "200.00", you should first round and then format the result for output (which is perfectly explained in Jesper's answer).

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Once again, downvotes are more useful with a comment. (Note that the question is ambiguous and my answer makes it clear that it doesn't tackle every interpretation of the question.) – Jonik May 11 '10 at 9:05
see the answer for why tmp/factor sort of thing might fail – pinkpanther Jun 6 '13 at 18:25
Read the first comment on that answer too. Obviously, if you're dealing with exact (e.g. monetary) values, you should not be using double in the first place. (In such case, use BigDecimal.) – Jonik Jul 4 '13 at 6:44
Man if I do round(3.375d, 19+) it returns 1.0, it works only up to 18 places precision, so the method should throw IllegalArgumentException if places > 18 – lisak Jul 4 '13 at 8:40
Omg, try round(13.5D, 18) and you get 9.223372036854776 !!! What a shitty rounding... – lisak Jul 10 '13 at 7:27

If you just want to print a double with two digits after the decimal point, use something like this:

double value = 200.3456;
System.out.printf("Value: %.2f", value);

If you want to have the result in a String instead of being printed to the console, use String.format() with the same arguments:

String result = String.format("%.2f", value);

Or use class DecimalFormat:

DecimalFormat df = new DecimalFormat("####0.00");
System.out.println("Value: " + df.format(value));
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And with DecimalFormat you can also select the rounding mode; default will match the OP's example or they may want RoundingMode.DOWN. – Kevin Brock May 11 '10 at 7:03
First two options give -0.00 for a number greater than -0.005 and less than 0. This might not be optimal if you display the value on a report. – Voicu Nov 20 '14 at 23:01
@Voicu for your specific case, I think you should use 3 or more decimal places. That depends on how much is your error margin. – hmartinezd Sep 17 at 17:13

I think this is easier:

double time = 200.3456;
DecimalFormat df = new DecimalFormat("#.##");      
time = Double.valueOf(df.format(time));

System.out.println(time); // 200.35

Note that this will actually do the rounding for you, not just formatting.

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Please note that this will break if the user locale is not US-en or similar. For example in Spanish, the format would be "#,##". Use Jonik's answer instead. – Jhovanny Nov 9 '14 at 21:11

The easiest way, would be to do a trick like this;

double val = ....;
val = val*100;
val = Math.Round(val);
val = val /100;

if val starts at 200.3456 then it goes to 20034.56 then it gets rounded to 20035 then we divide it to get 200.34.

if you wanted to always round down we could always truncate by casting to an int:

double val = ....;
val = val*100;
val = (double)((int) val);
val = val /100;

This technique will work for most cases because for very large doubles (positive or negative) it may overflow. but if you know that your values will be in an appropriate range then this should work for you.

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Good simple answer. I would just add that Math.Round should be Math.round. And the result from Math.Round(val); should be a cast as a double as it normally returns a long: val = (double) Math.round(val); – dbjohn Dec 14 '10 at 15:51
Perfect answer, because result of value will be calculated with comma in the other answers. For example, double value is 3.72 and if I use format() function, new double value changes 3,72 and If I wanna set this new value to double property, it will be throwed exception of NumberFormatException: For input string: "3,72". But you got this logical operation, not function. Best regards. – Aziz Yılmaz May 2 '14 at 5:54
excellent...tnx for sharing..this worked – user3067802 Apr 14 at 17:56
function Double round2(Double val) {
    return new BigDecimal(val.toString()).setScale(2,RoundingMode.HALF_UP).doubleValue();

Note the toString()!!!!

This is because BigDecimal converts the exact binary form of the double!!!

These are the various suggested methods and their fail cases.

// Always Good!
new BigDecimal(val.toString()).setScale(2,RoundingMode.HALF_UP).doubleValue() 

Double val = 260.775d; //EXPECTED 260.78
260.77 - WRONG - new BigDecimal(val).setScale(2,RoundingMode.HALF_UP).doubleValue()

Double val = 260.775d; //EXPECTED 260.78
260.77 - TRY AGAIN - Math.round(val * 100.d) / 100.0d  

Double val = 256.025d; //EXPECTED 256.03d
256.02 - OOPS - new DecimalFormat("0.00").format(val) 
// By default use half even, works if you change mode to half_up 

Double val = 256.025d; //EXPECTED 256.03d
256.02 - FAIL - (int)(val * 100 + 0.5) / 100.0;
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Thanks for explaining the fail case – Vishnudev K Mar 10 at 10:02
Should be the accepted answer because the accepted one is such messy compared to your clean and readable answer – singe3 Jul 1 at 20:10

Rounding a double is usually not what one wants. Instead, use String.format() to represent it in the desired format.

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If you really want the same double, but rounded in the way you want you can use BigDecimal, for example

new BigDecimal(myValue).setScale(2, RoundingMode.HALF_UP).doubleValue();
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Does it also work for negative numbers? – user1147688 Feb 16 at 5:34

Please use Apache commons math:

Precision.round(10.4567, 2)
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This doesn't actually do anything in a pass-by-value language like Java, let alone what the OP asked for. – EJP Nov 17 '14 at 8:35
@EJP why are you being so picky? all one has to do is assign the return value to a variable... – Hendy Irawan Dec 15 '14 at 12:08
Great solution! A single line call and a lot of safety work inside. – Aram Paronikyan Jun 25 at 16:46
double d = 28786.079999999998;
String str = String.format("%1.2f", d);
d = Double.valueOf(str);
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double value= 200.3456;
DecimalFormat df = new DecimalFormat("0.00");      
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For two rounding digits. Very simple and you are basically updating the variable instead of just display purposes which DecimalFormat does.

x = Math.floor(x * 100) / 100;

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Do you really want 200.34? Or what you want is 200.35? If the latter is what you want, it is called truncating, not rounding.

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Truncating is one of a number of possible rounding modes. The common "round half up" is another one. – Michael Borgwardt May 11 '10 at 8:55
The latter is rounding. The former is truncation. – EJP Nov 17 '14 at 8:35

in your question it seems that you want to avoid rounding the numbers as well? i think .format() will round the numbers using half-up, afaik?
so if you want rounding, 200.3456 should be 200.35 for a precision of 2. but in your case, if you just want the first 2 and then discard the rest... ??:

you could multiply it by 100 and then cast to an int (or taking the floor of the number), before dividing by 100 again.

200.3456 * 100 = 20034.56;
(int) 20034.56 = 20034;
20034/100.0 = 200.34;

you might have issues with really really big numbers close to the boundary though. in which case converting to a string and substring'ing it would work just as easily.

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thanks for your answer. It is working fine if the value is 200.3456, but if the value is 200, then it should be 200.00 – Rajesh May 11 '10 at 7:08
value = (int)(value * 100 + 0.5) / 100.0;
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