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I have this stack trace (part of)

Servlet.service() for servlet action threw exception
java.lang.NumberFormatException: For input string: "37648"
 at java.lang.NumberFormatException.forInputString(NumberFormatException.java:48)
 at java.lang.Long.parseLong(Long.java:403)
 at java.lang.Long.valueOf(Long.java:482)
 at java.lang.Long.decode(Long.java:593)

in one of my logfile I don't know what was real input string. But the user had made happen the same stack trace.

How such a stacktrace can happen?

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1  
Please make this into a question, so far it's just a statement –  daveb Feb 3 '10 at 16:59
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1 Answer 1

up vote 27 down vote accepted

Probably because they have a leading zero in their input.

This runs fine:

public class DecodeLong
{
    public static final void main(String[] params)
    {
        long    l;

        l = Long.decode("37648");
        System.out.println("l = " + l);
    }
}

But if you change this:

l = Long.decode("37648");

to this:

l = Long.decode("037648");

...it becomes invalid octal, and the exception from Long.parseLong doesn't include the leading zero:

Exception in thread "main" java.lang.NumberFormatException: For input string: "37648"
        at java.lang.NumberFormatException.forInputString(Unknown Source)
        at java.lang.Long.parseLong(Unknown Source)
        at java.lang.Long.valueOf(Unknown Source)
        at java.lang.Long.decode(Unknown Source)
        at DecodeLong.main(DecodeLong.java:24)

It doesn't include it because decode calls parseLong without the zero, but with the base set to 8.

Talk about obscure. :-) So if you update your program to handle the exception by showing the actual input, you'll probably find it's something along those lines.

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3  
Wow! Kudos for finding that! –  Joachim Sauer Feb 3 '10 at 17:11
    
It was precisely the answer I looked for –  Xavier Combelle Feb 4 '10 at 16:04
    
@Xavier: Glad that helped! –  T.J. Crowder Feb 4 '10 at 16:13
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