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Can anyone tell me, why does "int" gets printed, as in the internal working.

class Test {

void Method(int i) {
    System.out.println("int");
}
void Method(String n) {
    System.out.println("string");
}

public static void main(String [] a) {
    new Test().Method('c');
    }

}
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8  
the char is being cast to int. Put double quotes and you will get string. – Pete B. Jul 9 '13 at 13:48
up vote 9 down vote accepted

The character c is being cast to an int. It isn't going to be cast to a String.

More formally, from the JLS §5.5 - a widening conversion takes place from a char to an int, long, float, or double.

The reason that will never be seen as a String is that a char can't be autoboxed into a String.

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'c' is a character as per its single quotes. Being a primitive, numeric(somewhat) type, it's cast to an integer more readily than a string as the latter must be explicit.

You can also modify Method(int i) to print i and try different characters.

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The char is actually a numeric type in Java. It is automacally transformed to int when you make the callback, that's why the method prints int.

From the Oracle tutorials, we can read that:

The char data type is a single 16-bit Unicode character. It has a minimum value of '\u0000' (or 0) and a maximum value of '\uffff' (or 65,535 inclusive).

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Passing a variable with single quotes is considered to be a char. Characters become converted to int variables.

If you want to pass it as a String simply use double quotes.

new Test().Method("c");

specific conversions on primitive types are called the widening primitive conversions:

byte to short, int, long, float, or double

short to int, long, float, or double

char to int, long, float, or double

int to long, float, or double

long to float or double

float to double

You can read more here: JLS §5.1.2

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char is a primitive type and its being casted to int, whilst the String is an object.

On the other hand, there is a feature in java called autoboxing where some primitive types are casted to objects when suited (e.g. int to Integer, boolean to Boolean) but it does not work for char. char gets autoboxed to Character.

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'c' is a char type not a string. 'c' may be compare to (int)'c'

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In Java, characters are represented as numbers. Specifically, Java represents a character by its Unicode codepoint. If I'm not mistaken, the character 'c' is number 98 in the Unicode specification.

When you call Method('c'), the program has two method signature options: one where 'c' is an int, another where it is a String. Since, deep down, 'c' is a number, it is cast to int and treated as the number 98. Characters are not cast to Strings.

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When you pass 'c' it is assumed to be a char; if you try to pass "c", it will be assumed as a string.

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He doesn't have an overloaded method that accepts a char. – Sotirios Delimanolis Jul 9 '13 at 13:54
    
nope i meant 'c' is char and is assumed as an int so the int version of overloaded function is called – Onur A. Jul 9 '13 at 14:01
    
I'm just trying to tell you to be thorough with your answer. Don't let anyone assume anything. – Sotirios Delimanolis Jul 9 '13 at 14:03
    
i dont want somebody to assume, with 'assume' i mean assumed by compiler, not anyone :) – Onur A. Jul 9 '13 at 14:19

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