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Given the following sample:

public class Main {
    public static void main(String[] args) {
        System.out.println(1234);
        System.out.println(01234);
    }
}

The Output is:

1234
668

Why?

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1  
Of course Octal prefix - should have known...thanks – Philipp Wendt Nov 24 '11 at 8:40
up vote 8 down vote accepted

This is because integer literals with a leading zero are octal integers (base 8):

1 * 8^3 + 2 * 8^2 + 3 * 8 + 4 = 668
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if this goes for any numeric literal, would that mean Im not able to convert a string to int without having to convert the octal number to ten-base first, if the strings first number is 0? Thanks – DevilInDisguise Feb 5 at 15:59

This is described in section 3.10.1 of the Java Language Specification. Basically a decimal literal is either just 0, or 1-9 followed by one or more 0-9 characters.

An octal literal is a 0 followed by one or more 0-7 characters.

So 01234 is deemed to be octal.

(Also, interestingly "0" is a decimal literal, but "00" is an octal literal. I can't imagine any situations where that matters, mind you, given that the values are obviously the same.)

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1  
Heh, Jon Skeet can typo too :) An octal digit is 0-7 only. – Daniel Fischer Nov 24 '11 at 9:10
    
@DanielFischer: Doh, fixed, thanks :) – Jon Skeet Nov 24 '11 at 9:11

Leading zero means an octal (base 8) number. 1234 on base-8 is 668.

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A numeric literal with a leading zero is interpreted as octal, i.e. base 8.

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