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Could you advise on what's the best approach to retrieveting an actual value from differently formatted string numbers?

Example:

I want to be able to pass in all these strings:

101,00
101.00
-101,00
-101.00
100,000.00
100.000,00
-100,000.00
-100.000,00

And get these returns from the method:

101.00
101.00
-101.00
-101.00
100000.00
100000.00
-100000.00
-100000.00

Should I just use string.replaceAll("","") or is there a better way?

Thanks

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1 Answer 1

up vote 1 down vote accepted

Using replace all won't work. When you need is to find the last occurance of '.' or ',' and use that as your decimal place.

Based on http://docs.oracle.com/javase/tutorial/i18n/format/decimalFormat.html

public static void main(String... args) throws ParseException {
    DecimalFormatSymbols dfs1 = new DecimalFormatSymbols();
    dfs1.setDecimalSeparator('.');
    dfs1.setGroupingSeparator(',');

    DecimalFormat df1 = new DecimalFormat("#,##0.00", dfs1);
    System.out.println(df1.format(-10000)+" parsed is "+df1.parse("-10,000.01"));

    DecimalFormatSymbols dfs2 = new DecimalFormatSymbols();
    dfs2.setDecimalSeparator(',');
    dfs2.setGroupingSeparator('.');

    DecimalFormat df2 = new DecimalFormat("#,##0.00", dfs2);
    System.out.println(df2.format(-10000)+" parsed is "+df2.parse("-10.000,01"));
}

prints

-10,000.00 parsed is -10000.01
-10.000,00 parsed is -10000.01
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Well it would because when the method is called I already know the decimal separator from the application so I don;t have to account for that. So I can definitely do it like that but I wonder if there's a nicer solution to this issue. –  goe Apr 27 '12 at 7:50
    
@goe Using DecimalFormat could be considered nicer. –  Peter Lawrey Apr 27 '12 at 7:58

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