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Is there a way to use DecimalFormat (or some other standard formatter) to format numbers like this:

1,000,000 => 1.00M

1,234,567 => 1.23M

1,234,567,890 => 1234.57M

Basically dividing some number by 1 million, keeping 2 decimal places, and slapping an 'M' on the end. I've thought about creating a new subclass of NumberFormat but it looks trickier than I imagined.

I'm writing an API that has a format method that looks like this:

public String format(double value, Unit unit); // Unit is an enum

Internally, I'm mapping Unit objects to NumberFormatters. The implementation is something like this:

public String format(double value, Unit unit)
{
    NumberFormatter formatter = formatters.get(unit);
    return formatter.format(value);
}

Note that because of this, I can't expect the client to divide by 1 million, and I can't just use String.format() without wrapping it in a NumberFormatter.

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Do you want to handle M(ega) only, or also (G)iga, (T)era, etc? –  Zach Scrivena Feb 9 '09 at 19:22
    
It actually represents a security's volume, so it's M(illions) and potentially B(illions) but I'll be happy with just the M. –  Outlaw Programmer Feb 9 '09 at 19:31
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6 Answers

up vote 10 down vote accepted
String.format("%.2fM", theNumber/ 1000000.0);

For more information see the String.format javadocs.

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Just in case: use 1000000.0 instead. –  Zach Scrivena Feb 9 '09 at 19:24
    
Minor nitpick, looks like his code is using longs or ints so you can dispense with the floating point arithmetic: –  wds Feb 9 '09 at 19:30
    
If I leave off the floating point math, I would be left with a whole number, no decimal places at all. We need at least 2. –  jjnguy Feb 9 '09 at 19:34
    
This works but I still need to wrap it with a NumberFormat object because of an additional constraint that I forgot to mention. Basically there is a MAP[Type => NumberFormatter] that this needs to play nicely with. –  Outlaw Programmer Feb 9 '09 at 19:35
    
Well, I have never used a NumberFormatter...so I don't know the easiest way to wrap it. –  jjnguy Feb 9 '09 at 19:40
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Here's a subclass of NumberFormat that I whipped up. It looks like it does the job but I'm not entirely sure it's the best way:

private static final NumberFormat MILLIONS = new NumberFormat()
{
    private NumberFormat LOCAL_REAL = new DecimalFormat("#,##0.00M");

    public StringBuffer format(double number, StringBuffer toAppendTo, FieldPosition pos)
    {
        double millions = number / 1000000D;
        if(millions > 0.1) LOCAL_REAL.format(millions, toAppendTo, pos);

        return toAppendTo;
    }

	public StringBuffer format(long number, StringBuffer toAppendTo, FieldPosition pos)
	{
		return format((double) number, toAppendTo, pos);
	}

	public Number parse(String source, ParsePosition parsePosition)
	{
		throw new UnsupportedOperationException("Not implemented...");
	}
};
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Note that if you have a BigDecimal, you can use the movePointLeft method:

new DecimalFormat("#.00").format(value.movePointLeft(6));
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Why not simply?

DecimalFormat df = new DecimalFormat("0.00M");
System.out.println(df.format(n / 1000000));
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The division needs to be encapsulated inside the formatter. Guess I'll update the question to more clearly explain the problem I'm having. –  Outlaw Programmer Feb 9 '09 at 19:36
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Take a look at ChoiseFormat.

A more simplistic way would be to use a wrapper that auto divided by 1m for you.

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Took a look a the docs but I'm really not sure how that's going to help me here. Seems like ChoiceFormat basically contains a bunch of formats and somehow matches the input with one of these sub-formats. I think I want all input to be handled the same. –  Outlaw Programmer Feb 9 '09 at 19:14
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I like the solution from Outlaw, especially as it can also create k/M/G "human readable" formatting without the need for the user of this api to do calculations. He always gets the shortest possible number.

999999
999.99k
999.99M
999.99G
999.99T

Greetings Bernd

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