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In Java we can do

byte b = 5;    

But why can't we pass same argument to a function which accepts byte

myObject.testByte(5);
public void testByte (byte b)
{
  System.out.println("Its byte");
}     

It gives following error

The method testByte(byte) in the type Apple is not applicable for the arguments (int)

PS: May be a silly question, I think I need to revise my basics again.

Thanks.

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6 Answers 6

up vote 5 down vote accepted

Hard-coded initializer values are somewhat special in Java - they're assumed to have a coercion to the type of the variable you're initializing. Essentially, that first bit of code effectively looks like this:

byte b = (byte) 5;

If you did this...

myObject.testByte((byte) 5);

...you wouldn't get that error, but if you don't do that, then the 5 is created by default as an int, and not automatically coerced.

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Sounds convincing. Is there any special reason for it ? –  Karna Sep 10 '11 at 4:05
2  
Mostly convenience - the spec designers didn't want to have to create different format for byte literals versus numeric literals for initializing things, and since the type of the variable is part of the declaration, it's very obvious what kind of box you're putting it into - byte b = 5 makes it very clear that 5 is going to be put into a byte. Function calls, on the other hand, are not nearly as clear - for instance, what if your method was just named testFoo? testFoo(5) doesn't look any different really from testFoo(1024), but the latter wouldn't actually work properly. –  Amber Sep 10 '11 at 4:08
    
Convinced. Thanks man :) –  Karna Sep 10 '11 at 4:11
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The reason is that when you are narrowing a primitive, you must explicitly make a cast - so you acknowledge a possible loss of data.

To illustrate, when casting 5 there is no loss because the value is within the -128...127 byte value range, but consider a larger int value, say 300 - if you cast to byte, you must throw away some bits to make it fit into 8 bits.

The topic is covered in full here.

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Thanks for the link. Why implicit casting is done while initializing value and not in function call ? 5 is also within the range and there will not be any loss of bit. –  Karna Sep 10 '11 at 4:03
1  
The compiler will throw an error if the (constant) value is too large for the target type. However, this compiles: byte b = (byte)1000; –  Bohemian Sep 10 '11 at 4:28
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Normally, converting an int to a byte without an explicit cast is not allowed.

However, if the conversion is part of an assignment, and the value is a statically-known constant that will fit in the destination type, the compiler will perform the conversion automatically.

This special behaviour is described in section 5.2 of the JLS. It is a special case that only applies to assignment; it does not apply to conversions in other contexts.


Now that I think about it, the lack of auto-narrowing for arguments is probably to avoid issues with overload resolution. If I have methods #foo(short) and #foo(char), it's not clear which one foo(65) should call. You could have special rules to get around this, but it's easier to just require the caller to be explicit in all cases.

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Thanks for the information. 5 is also a known constant so why compiler donot cast it to byte in case of function call ? –  Karna Sep 10 '11 at 4:00
    
The special rule that automatically narrows constants is only applied to assignment conversions, for some reason that is not explained in the JLS. I have updated my answer to make this clearer. –  Stuart Cook Sep 10 '11 at 4:05
    
That is a very good question, Ajinkya. The JLS seems to indicate the assignment conversion is applied only in an assignment expression (via its link to Chapter 15), yet it does perform the conversion during initialization but not when passing an argument, even though it is by value. It seems to me the language could have been designed to apply assignment conversion in this case, so either they chose not to for simplicity sake, OR there really is some semantic problem with doing so. This would be good to know. –  Ray Toal Sep 10 '11 at 4:09
    
@Ray: Yes.Its becomes really easy when you why it is that way. –  Karna Sep 10 '11 at 4:16
    
@Stuart good insight on overload resolution. (I had already +1'd before that, but good addition anyway.) –  Ray Toal Sep 10 '11 at 18:41
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You must cast your argument 5 to type byte in your method testByte. Java looks specifically at the argument type.

Change it to:

myObject.testByte( (byte) 5);
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Integer literals are by default int in Java. And in myObject.testByte(5); 5 is an integer literal which will be treated as int.

As all you know Java is strictly types language, so it will not allow to assign an int to a byte. All you need to have explicit type-casting.

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This is because one is an assignment and one is a method invocation and they are handled differently given the context. In this case it's a Narrowing Primitive Conversion.

http://java.sun.com/docs/books/jls/third_edition/html/conversions.html

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