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char c = '0';
int i = 0;
System.out.println(c == i);

Why does this always returns false?

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1  
Where does "s" come from? – Vicente Plata Nov 22 '11 at 19:49
1  
s is an integer... – saskoch Nov 22 '11 at 19:50
    
If System.out.println(data); is not executed, then (obviously) c does not equal s. – Bart Kiers Nov 22 '11 at 19:51
    
@BartKiers yeah they are not equal..but the value printed on the above statement is the same for s and c.. – saskoch Nov 22 '11 at 19:53
    
What is the result of System.out.println((int)c + " " + s);? – LanguagesNamedAfterCofee Nov 22 '11 at 19:57

Although this question is very unclear, I am pretty sure the poster wants to know why this prints false:

char c = '0';
int i = 0;
System.out.println(c == i);

The answer is because every printable character is assigned a unique code number, and that's the value that a char has when treated as an int. The code number for the character 0 is decimal 48, and obviously 48 is not equal to 0.

Why aren't the character codes for the digits equal to the digits themselves? Mostly because the first few codes, especially 0, are too special to be used for such a mundane purpose.

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5  
+1 good mind reading skills – JonH Nov 22 '11 at 19:59
2  
+1 ^^^ The force is strong in you, young jedi. – Brian Roach Nov 22 '11 at 20:00
    
+1 exactly what I had in mind with a great explanation. – Bhesh Gurung Nov 22 '11 at 20:04

The char c = '0' has the ascii code 48. This number is compared to s, not '0'. If you want to compare c with s you can either do:

if(c == s) // compare ascii code of c with s

This will be true if c = '0' and s = 48.

or

if(c == s + '0') // compare the digit represented by c 
                 // with the digit represented by s

This will be true if c = '0' and s = 0.

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You're saying that s is an Integer and c (from what I see) is a Char.. so there you, that's the problem: Integer vs. Char comparation.

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