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K.Sierra in her book "SCJP Study Guide" mentions "We know that a literal integer is always an int, but more importantly, the result of an expression involving anything int-sized or smaller is always an int."

I've started experimenting and I'm a little bit confused with the below results:

byte a = 1; // correct
byte b = 1 + a; // incorrect (needs explicit casting)
byte c = 1 + 1; // correct (I expected it to be incorrect)

Could anyone explain to me why the last example does not require casting? Why does the Java compiler put the implicit cast? Is it because there are 2 int literals? Clarification greatly appreciated.

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because 1+a is a String, whereas 1+1 is an byte-sized int –  mcalex Oct 22 '12 at 11:53
    
Yes..your question has the answer –  Metalhead Oct 22 '12 at 11:54
    
okies, answered :) –  mcalex Oct 22 '12 at 11:56
    
@mcalex 1+a is a String? No. It is a byte plus another byte, which might require an int to be represented. Compiler does not pay attention to a being a byte equal to 1 at compile-time. (It could. But it does not. It is compiler implementation-specific.) –  TheBlastOne Oct 22 '12 at 11:57
    
@TheBlastOne You are not correct in claiming that it is implementation-specific. It is mandated by the Java Language Specification. –  Marko Topolnik Oct 22 '12 at 12:09
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3 Answers

up vote 5 down vote accepted

Implicit typecasting only works when the value of your RHS is known at compile-time, means they are compile-time constants. In other cases, you need to do explicit typecasting.

So: -

byte c = 1 + 1; // Value of `1 + 1` is known at compile time. Implicit cast
byte c = 1 + a; // Value of `1 + a` is evaluated at runtime. Explicit cast needed

Also, note that, if you declare your variable a as final byte a = 1, then the 2nd assignment will compile, as in that case, your a will be a compile time constant.

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I really like your answer and the example with final byte. –  miller.bartek Oct 22 '12 at 12:16
    
@miller.bartek. All credit to Marko Topolink. that final byte was the point given by him only. But thanks :) –  Rohit Jain Oct 22 '12 at 12:26
    
I would not say that c=1+1 is evaluated at runtime. It just is formally not "final". –  TheBlastOne Oct 22 '12 at 13:16
    
@TheBlastOne.. Where did I say that c = 1+1 will get evaluated at runtime? –  Rohit Jain Oct 22 '12 at 13:17
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Yes, it is because they are literals, meaning they are compile-time constants and the compiler ensures that the size of the result is indeed a byte. The same will fail if you exceed the byte range. Try assigning 128 to c or, for that matter, 1 << 7 or any other compile-time constant greater than 127.

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As said "The result of an expression involving anything int-sized or smaller is always an int"

So byte b = 1 + a; returns an int value which is not evaluated at complie time. Hence Compiler cannot check it if the result falls within the byte range and expects us to put an explicit cast.

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