I'm trying to get rid of unnecessary symbols after decimal seperator of my double value. I'm doing it this way:

DecimalFormat format = new DecimalFormat("#.#####");
value = Double.valueOf(format.format(41251.50000000012343));

But when I run this code, it throws:

java.lang.NumberFormatException: For input string: "41251,5"
    at sun.misc.FloatingDecimal.readJavaFormatString(FloatingDecimal.java:1224)
    at java.lang.Double.valueOf(Double.java:447)
    at ...

As I see, Double.valueOf() works great with strings like "11.1", but it chokes on strings like "11,1". How do I work around this? Is there a more elegant way then something like

Double.valueOf(format.format(41251.50000000012343).replaceAll(",", "."));

Is there a way to override the default decimal separator value of DecimalFormat class? Any other thoughts?

  • 2
    according to his comment on my answer (stackoverflow.com/questions/2691018/…) folone actually just wants to round on the fith digit, for which Strings seem a bit overkill – Tobias Kienzler Apr 22 '10 at 16:36
  • 8
    @TobiasKienzler I'm really sorry it took three years to get the correct answer accepted :) – folone Oct 29 '13 at 13:22
  • 2
    Thanks, you made may day :) – Tobias Kienzler Oct 29 '13 at 13:23
  • 43
    I now understand the XY problem perfectly. – Milind R Feb 5 '14 at 16:28

10 Answers 10

up vote 72 down vote accepted

By

get rid of unnecessary symbols after decimal seperator of my double value

do you actually mean you want to round to e.g. the 5th decimal? Then just use

value = Math.round(value*1e5)/1e5;

(of course you can also Math.floor(value*1e5)/1e5 if you really want the other digits cut off)

  • 1
    No, I want to round it to the fifth decimal. – folone Apr 22 '10 at 13:31
  • 25
    then replace the two 1e2 by 1e5. Don't use Strings for this, it wastes performance – Tobias Kienzler Apr 22 '10 at 16:34

The problem is that your decimal format converts your value to a localized string. I'm guessing that your default decimal separator for your locale is with a ','. This often happens with French locales or other parts of the world.

Basically what you need to do is create your formatted date with the '.' separator so Double.valueOf can read it. As indicated by the comments, you can use the same format to parse the value as well instead of using Double.valueOf.

DecimalFormatSymbols symbols = DecimalFormatSymbols.getInstance();
symbols.setDecimalSeparator('.');
DecimalFormat format = new DecimalFormat("#.#####", symbols);
value = format.parse(format.format(41251.50000000012343));
  • 3
    or DecimalFormat format = new DecimalFormat("#"+symbols.getDecimalSeparator+"#####", symbols; without changing the decimal separator – Tobias Kienzler Apr 22 '10 at 13:30
  • Yeah, that worked just fine. – folone Apr 22 '10 at 13:32
  • 2
    If you already have the DecimalFormat, why not use it for parsing as well? Much more robust than trying to build a DecimalFormat whose formatted output can be parsed by Double.valueOf() – Michael Borgwardt Apr 22 '10 at 13:37
  • 5
    I'm tempted to downvote this answer - not because it doesn't solve the problem, but because it supports this insane attempt at rounding - what the OP admitted to be the goal. But technically it's the answer the OP asked for :-/ – Tobias Kienzler Aug 22 '12 at 21:53
  • 5
    @VipulPurohit For this error, yes, but for the problem behind it: NO! One should not use string operations on floats to perform MATHS – Tobias Kienzler Aug 16 '13 at 9:10

The fact that your formatting string uses . as the decimal separator while the exception complains of , points to a Locale issue; i.e. DecimalFormat is using a different Locale to format the number than Double.valueOf expects.

In general, you should construct a NumberFormat based on a specific Locale.

Locale myLocale = ...;
NumberFormat f = NumberFormat.getInstance(myLocale);

From the JavaDocs of DecimalFormat:

To obtain a NumberFormat for a specific locale, including the default locale, call one of NumberFormat's factory methods, such as getInstance(). In general, do not call the DecimalFormat constructors directly, since the NumberFormat factory methods may return subclasses other than DecimalFormat.

However as BalusC points out, attempting to format a double as a String and then parse the String back to the double is a pretty bad code smell. I would suspect that you are dealing with issues where you expect a fixed-precision decimal number (such as a monetary amount) but are running into issues because double is a floating point number, which means that many values (such as 0.1) cannot be expressed precisely as a double/float. If this is the case, the correct way to handle a fixed-precision decimal number is to use a BigDecimal.

Use Locale.getDefault() to get your System's decimal separator which you can also set. You can't have to different separators at the same time since the other is then usually used as seprator for thousands: 2.001.000,23 <=> 2,001,000.23

looks like your local use a comma "," as a decimal separation.To get the "." as a decimal separator, you will have to declare:

DecimalFormat dFormat =new DecimalFormat("#.#", new DecimalFormatSymbols(Locale.ENGLISH));
  • 3
    Please avoid posting an answer which has already been posted earlier. – Mohammad Ghazanfar Sep 9 '15 at 15:21

You can't change the internal representation of double/Double that way.

If you want to change the (human) representation, just keep it String. Thus, leave that Double#valueOf() away and use the String outcome of DecimalFormat#format() in your presentation. If you ever want to do calculations with it, you can always convert back to a real Double using DecimalFormat and Double#valueOf().

By the way, as per your complain I'm trying to get rid of unnecessary symbols after decimal seperator of my double value, are you aware of the internals of floating point numbers? It smells a bit like that you're using unformatted doubles in the presentation layer and that you didn't realize that with the average UI you can just present them using DecimalFormat without the need to convert back to Double.

  • The problem is when I convert it to String, it then won't convert back to Double, using Double.valueOf(), because DecimalFormat places ,, where valueOf() is expecting .. So is there a way to override this in DecimalFormat class (so that I don't have to place a call to replaceAll(",", ".") there)? – folone Apr 22 '10 at 13:14
  • 1
    Use DecimalFormat to reformat it into the format as expected by Double. – BalusC Apr 22 '10 at 13:16
  • Yeah, but DecimalFormat places it's default decimal separator (which is ,). How do I make it place . instead? – folone Apr 22 '10 at 13:18
  • 1
    The separator is locale dependent. Ensure that you get the right DecimalFormat instance for the desired locale. – BalusC Apr 22 '10 at 13:20
  • @folone See my answer, e.g. Locale.setDefault(Locale.ENGLISH) – Tobias Kienzler Apr 22 '10 at 13:20

Somewhat related to this, but not an answer to the question: try switching to BigDecimal instead of doubles and floats. I was having a lot of issue with comparisons on those types and now I'm good to go with BigDecimal.

  • Definitely what one should do when precision is mandatory, e.g. when money is concerned. – Tobias Kienzler Jul 6 '17 at 5:47

For the ',' instead of the '.' , you'd have to change the locale.

For the number of decimals, use setMaximumFractionDigits(int newValue).

For the rest, see the javadoc.

The real solution is: don't use floating-point numbers for anything that needs to be counted with precision:

  • If you are dealing with currency, don't use a double number of dollars, use an integer number of cents.
  • If you are dealing with hours of time and need to count quarter-hours and 10-minute intervals, use an integer number of minutes.

A floating point number is almost always an approximation of some real value. They are suitable for measurements and calculation of physical quantities (top a degree of precision) and for statistical artifacts.

Fooling about with rounding floating point to a number of digits is a code smell: it's wasteful and you can never really be sure that your code will work properly in all cases.

My code function :

 private static double arrondi(double number){
         DecimalFormatSymbols symbols = DecimalFormatSymbols.getInstance();
         symbols.setDecimalSeparator('.');
         DecimalFormat format = new DecimalFormat("#.#####", symbols);
         return Double.valueOf(format.format(number));
     }

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