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I couldn't convert a String s="45,333" into number like long or double. Can anyone help me to solve the issue.. i have added the model snippet, when i try to run that code it showing NumberFormatException..

public static void main(String args[])
{
long a=85200;
NumberFormat numberFormat=NumberFormat.getNumberInstance();
String s=numberFormat.format(a);
Long l=Long.parseLong(s.toString());
System.out.println("The value:"+s);
System.out.println("The value of long:"+l);
}
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Which is the value of s? AFAIK, parseLong expects a number without thousands separators. –  SJuan76 Apr 19 '12 at 10:36
    
What exception did it raised? –  DonCallisto Apr 19 '12 at 10:37
    
String s=numberFormat.format(a);long a=85200; –  Noel M Apr 19 '12 at 10:37
    
Use the same NumberFormat to parse the number. You are mixing locale-sensitive formatting with hardcoded parsing. –  Marko Topolnik Apr 19 '12 at 10:41
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3 Answers

Consider NumberFormat.parse() method instead of Long.parseLong().

Long.parseLong() expects String without any formatting symbols inside.

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Very true, he is getting exception because ',' is getting added between the numbers –  AurA Apr 19 '12 at 10:43
    
Yup, it's the comma. –  Jon Apr 19 '12 at 10:49
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Mixing NumberFormat and Long.parseLong() isn't a good idea.

NumberFormat can be locale-aware (in your example it uses the default locale for your computer) or you can explicitly specify format patterns, whereas the parseXXX() methods of Number subclasses only read "plain" numbers (optional minus sign+digits).

If you formatted it with NumberFormat, you should use NumberFormat.parse() to parse it back. However you shouldn't depend on the default locale, try to specify one instead (or use DecimalFormat with a pattern). Otherwise you're likely to encounter some nasty and hard to detect bugs.

If you don't care about the format, consider using Long.toString() to convert a long value into string and Long.parseLong() to convert it back. It's easier to use, thread safe (unlike NumberFormat) and works the same everywhere.

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As pointed out you can use NumberFormat.parse() like this:

public static void main(String args[]) {
    long a=85200;
    NumberFormat numberFormat=NumberFormat.getNumberInstance();
    String s=numberFormat.format(a);
    Long l;
    try {
        l = numberFormat.parse(s.toString()).longValue();
    } catch (ParseException ex) {
        l = 0L;
        // Handle exception
    }
    System.out.println("The value:"+s);
    System.out.println("The value of long:"+l);
}
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