149

Simple question, but I'll bet that asking on here will probably be more straight forward than trying to understand the documentation for MessageFormat:

long foo = 12345;
String s = MessageFormat.format("{0}", foo);

Observed value is "12,345".

Desired value is "12345".

6 Answers 6

383
MessageFormat.format("{0,number,#}", foo);
10
  • 2
    Thanks, I was trying to do this with MessageFormat properties injection. Good thing there's more than one way to do it! Oct 20, 2011 at 2:27
  • 5
    i prefer this way. since it allows me to change the format in my language properties file.
    – Pascal
    Mar 5, 2012 at 10:17
  • 3
    Perfect solution! Helped me keep the format/unformat option in reference data instead of at code level - thanks! And as @SebastianRoth said - this should have been the accepted answer.
    – Ofer Lando
    Apr 13, 2015 at 8:54
  • 11
    I'm actually surprised why prettying numeric strings a default and not an explicit thing with the formatter API Jun 25, 2017 at 14:40
  • 4
    This works also inside a choice format if you quote the pattern: MessageFormat.format("{0,choice,0#no foos|1#one foo|1<'{0,number,#}' foos}"
    – GOTO 0
    Dec 1, 2017 at 10:39
81

Just use Long.toString(long foo)

7
  • 7
    String.valueOf() calls Long.toString() Jan 4, 2010 at 11:00
  • 8
    Maybe this is trifling but in this case you're relying on an undocumented behavior of Long.toString(foo). For that reason, I prefer Daniel Fortunov's answer.
    – John K
    Aug 27, 2010 at 22:49
  • 5
    It's not undocumented. See download.oracle.com/javase/6/docs/api/java/lang/….
    – Rob H
    Aug 28, 2010 at 0:53
  • 5
    OK, however this solution is not applicable to message formatting in ResourceBundle. Tuto i18n Oct 14, 2015 at 9:14
  • 4
    If you are using resource bundles, then Daniel Fortunov's answer is definitely preferable. May 8, 2016 at 23:49
4

I struggled with this a little bit when trying to do "real world" patterns with internationalization, etc. Specifically, we have a need to use a "choice" format where the output depends upon the values being displayed, and that's what java.text.ChoiceFormat is for.

Here is an example for how to get this done:

    MessageFormat fmt = new MessageFormat("{0,choice,0#zero!|1#one!|1<{0,number,'#'}|10000<big: {0}}");

    int[] nums = new int[] {
            0,
            1,
            100,
            1000,
            10000,
            100000,
            1000000,
            10000000
    };

    Object[] a = new Object[1];
    for(int num : nums) {
        a[0] = num;
        System.out.println(fmt.format(a));
    }

This generates the following output; I hope it's helpful for others who are trying to accomplish the same types of things:

zero!
one!
100
1000
10000
big: 100,000
big: 1,000,000
big: 10,000,000

As you can see, the "choice" format allows us to choose the type of format to use depending upon the value being passed-in to be formatted. Small numbers can be replaced with text (no display of the original value). Medium-sized numbers are shown with no grouping separators (no commas). The largest numbers do include the commas, again. Obviously, this is an entirely contrived example to demonstrate the flexibility of java.text.MessageFormat.

A note about the quoted # in the format text: since both ChoiceFormat and MessageFormat are being used, there is a collision between metacharacters between the two. ChoiceFormat uses # as a metacharacter that essentially means "equals" so that the formatting engine knows that e.g. in the case of 1#one! we are comparing {0} with 1, and if they are equal, it uses that particular "choice".

But # has another meaning to MessageFormat, and that's as a metacharacter which has meaning for DecimalFormat: it's a metacharacter which means "put a number here".

Because it's wrapped up in a ChoiceFormat string, the # needs to be quoted. When ChoiceFormat is done parsing the string, those quotes are removed when passing the subformats to MessageFormat (and then on to DecimalFormat).

So when you are using {0,choice,...}, you have to quote those # characters, and possibly others.

1
  • Wow kudos for digging this one, and it's been there since Java 1.1 !
    – bric3
    May 11, 2022 at 9:24
-1

The shortest way is

long foo = 12345;
String s = ""+foo;
6
  • 3
    And, as always, this expands to new StringBuilder("").append(foo).toString() so it's not really optimal.
    – randers
    Jan 22, 2016 at 19:55
  • 1
    @RAnders00 Converting a number into a single string is unlikely to be the most optimal option, depending on the context you can usually avoid it entirely, but for the simplest pattern you can use ""+ Jan 23, 2016 at 19:32
  • 1
    You are right, but I just wanted to point it out since people always tend to point it out.
    – randers
    Jan 23, 2016 at 19:33
  • 1
    @RAnders00 btw using a message format is an order of magnitude more expensive, and more complicated in this case. Jan 23, 2016 at 19:36
  • Yeah, one should instead use Long.toString() since it's what this solution uses in the background anyways :)
    – randers
    Jan 23, 2016 at 19:38
-2

As an alternative String.format and java.util.Formatter might work for you as well...

1
-6

You could try:

String s = new Long(foo).toString();
1
  • 8
    Unnecessary object creation. Never use new with wrapper classes.
    – keiki
    May 11, 2015 at 12:24

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