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I am not able to understand the why such output when long variable with leading zero.

public class Test{
        public static void main(String[] args) {
             long var1=00123l;
             long var2=123l;
             System.out.println("Variable 1--->"+var1);
             System.out.println("Variable 2--->"+var2);
             System.out.println(var1==var2);
        }
    }

output:

Variable 1--->83
Variable 2--->123
false
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1  
leading zeros means octal notation. – jlordo Dec 17 '12 at 10:07
up vote 7 down vote accepted

The leading zero turns 00123l into an octal literal, and 1238=8310.

From the JLS:

An octal numeral consists of an ASCII digit 0 followed by one or more of the ASCII digits 0 through 7 interspersed with underscores, and can represent a positive, zero, or negative integer.

When you print the value, it gets printed in base-10, so you see 83.

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Thanks, your given specification helpful+1. I have added a comment to @CodeMan. does any solution other than format output? – bmt Dec 17 '12 at 11:49
    
@Bhumika: To be honest, I don't fully understand the problem you're trying to solve. Where are those literals coming from? What do you need to do with them? – NPE Dec 17 '12 at 11:52
    
Ok, As sort explain then I want to treat a a long type variable as long only even lead zero. so there is no any ways. A case where a variable is used in calculation and preview also. the calculation become wrong due to leading zero and if I remove leading zero the preview wrong. You know that we can solve it by logic but a stander way to do it. so before I accept a answer I want to know possible solution if exist. – bmt Dec 17 '12 at 12:14
    
@Bhumika: If the number originates from outside your code, you simply read it as a string and then use Integer.valueOf(s, 10). That'll treat it as base-10 regardless of any leading zeroes. – NPE Dec 17 '12 at 12:21

when a literal is prefixed with 0; java treats it as a octal number. When you print that same number, by default it prints in base(10) format. Hence 00123l is printed as 83.

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2  
Ok. thanks. but Do you know a way which stop conversion in base(10) format? correct me if no any way. because some cases I have such values. so I have to manually remove those leading zero. sometime leading zero required to show in preview also. so how can I handle such case? – bmt Dec 17 '12 at 10:20
    
you can print the octal number as it is using the following syntax int num = 032; System.out.printf("%04o", num); Note: Please be careful if u work with the mixture of Base(8) and Base(10) number. Make sure that your other calculations don't crib. – codeMan Dec 17 '12 at 10:47

When you add a leading zero to a value, it is interpreted as an octal value.

Integers can not store any leading zeros. When you need those, store the number as a String.

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When you write an integer literal with leading zeroes, it is interpreted as an octal number. 00123 in octal is 83 in decimal.

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00123 or 0123 or 0123l all are same for Java. You can test. They are octal numbers. If you convert them, you will find (1X8^2)+(1X8^1)(1X8^0)=64+16+3=83. If you want you can store them as String.

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