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I'm preparing myself for the Java SE 7 Programmer I exam (1Z0-803) by reading a book called OCA Java SE 7 Programmer I Certification Guide. This book has a numerous amount of flaws in it despite the author having 12 years of experience with Java programming and despite a technical proofreader, presumably on a salary.

There is one thing though that makes me insecure. The author says on page 168 that this statement is true:

If the return type of a method is int, the method can return a value of type byte.

Well I argue differently and need your help. Take this piece of code for an example:

public static void main(String[] args)
{
    // This line won't compile ("possible loss of precision"):
    byte line1 = returnByte();

    // compiles:
    int line2 = returnByte();

    // compiles too, we "accept" the risk of precision loss:
    byte line3 = (byte) returnByte();
}

public static int returnByte()
{
    byte b = 1;
    return b;
}

Obviously, the compiler do not complain about a different return type int in the returnByte() method signature and what we actually do return at the end of the method implementation: a byte. The byte uses fewer bits (8) than the int (32) and will be cast to an int without the risk of a precision loss. But the returned value is and will always be an integer! Or am I wrong? What would you have answered on the exam?

I'm not totally sure what the actual return type is, since this statement in the book is said to be true. Is the cast happening at the end of our method implementation or is the cast happening back in the main method just before assignment?

In the real world, this question would not matter as long as one understand the implicit casting and the risk of losing precision. But since this is just one of those questions that might popup on the exam, I'd love to know the technically correct answer to the question.

Clarification!

The majority of the answers seem to think that I want to know whether one can cast a byte to an int and what happens then. Well, that is not the question. I'm asking what the returned type is. In other words, is the author's quoted statement right or wrong? Does the cast to an int happen before or after the returnByte() method actually returns? If this was the real exam and you would have got the question, what would you have answered?

Please see line1 in my code snippet. If what the author say is right, that line would have compiled as the returned value would have been a byte. But it does not compile, the rules of type promotion says that we risk loosing precision if we try to squeeze an int into a byte. For me, that is a proof that the returned value is an integer.

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You are maybe overthinking this - I think the author just meant that return b; compiles, even if b is a byte. –  assylias Aug 17 '13 at 10:34

3 Answers 3

up vote 0 down vote accepted

Yes, you can do that.

  • The value of the byte expression will be promoted to int before it is returned.

  • The actual return type is as declared in the method signature - int.

IMO, what the author of that book wrote is more or less correct. He just left out explaining the bit about the byte-to-int promotion that happens in the return statement when you "return a byte".

Is the cast happening at the end of our method implementation or is the cast happening back in the main method just before assignment?

The cast (promotion) happens in the returnByte method.

In the real world, this question would not matter as long as one understand the implicit casting and the risk of losing precision.

There is no loss of precision in promoting a byte to an int. If the types were different, there could be loss of precision, but (hypothetically) the loss of precision would be the same wherever the promotion is performed.


The section of the JLS that deals with this is JLS 14.17, which says that the return expression must assignable to the method's declared return type. It doesn't explicitly state that the promotion is done in the method, but it is implied. Furthermore, it is the only practical way to implement this.

If (hypothetically) the conversion was done in the calling method (e.g. main), then:

  • The compiler would need to know what the return statement is doing. This is not possible, given that Java classes can be compiled separately.
  • The compiler would need to know which actual method is going to be called. This is not possible if the method is overridden.
  • If the method contained two (or more) return statements with expressions that have different types, then the compiler needs to know which return will be executed. This is impossible.
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well written! However, you say that the author is right. Thus that the method returns a byte. Yet you say that the cast happen before the method returns. I can not understand that. For me, the returned value is an int - no less and no more. Compare my line3 in the code snippet. If the returned type was a byte, I wouldn't have to cast it. –  Martin Andersson Aug 17 '13 at 11:00
    
@MartinAndersson That method would return a value between -128 and +127 which can easily fit into any byte or int type. That is byte is a subtype of int. It is specified in the jls –  boxed__l Aug 17 '13 at 11:03
    
Oh and one more detail. You quote me saying that in "the real world this would not matter" and comment that there is no loss of precision in the promotion from a byte to int - as if the quote would be wrong? But, what you comment is kind of what I already said, or meant with the "real world" sentence. And if the assignment would be the other way around (int -> byte), the code wouldn't even compile without an explicit cast. So again, I think the "issue" of my question doesn't matter. The "error" would have been caught by the developer. –  Martin Andersson Aug 17 '13 at 11:05
    
boxed__I, I recently made an edit to the question and wrote a clarification that my problem has never been the promotion between primitive numeric data types. I'm more into what type the method returns. But thank you anyway for your concern! –  Martin Andersson Aug 17 '13 at 11:07
1  
@StephenC :The cast (promotion) happens in the returnByte method. statement is incorrect then? –  boxed__l Aug 17 '13 at 11:25

I'm fairly certain it's the same as doing myInt << 24, getting the last eight bits, therefor an imminent loss of precision if the integer is over the value of 255(2^8).

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I didn't know a << operator existed? And a byte can only hold values -128 to +127. A quick tip to calculate the value range for any signed data type (that is all but the char) in Java is the following: Calculate (2^bits) / 2. That will give you the lowest value if you can imagine a negative sign in front of the calculated sum. Then subtract one from the sum, that will give you the highest positive value the data type can hold. –  Martin Andersson Aug 17 '13 at 10:44
    
I don't see how this answer solves the problem. There won't be any loss of precision as both are signed and you are converting from byte(smaller) to int(larger). –  boxed__l Aug 17 '13 at 10:57
    
Yes! I know =) Please see the newly added clarification in my question. –  Martin Andersson Aug 17 '13 at 11:08
1  
@MartinAndersson comment was for user2507230 not you :) –  boxed__l Aug 17 '13 at 11:11

Yes the statement is valid. A byte will always fit into an int comfortably.

byte => int //no precision loss
int  => byte //precision loss

But if you are doing:

byte => int => byte //you won't lose any data

Which is what you are doing. Does that help?

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