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If the product of 2 int values does not fit in an int, and thus I store it in a long, do I need to specify explicit cast to long before each operand (or at least before one of the operands)? Or does the compiler correctly handle it even if there is no cast?

This would be the explicit code:

public final int baseDistance = (GameCenter.BLOCKSIZE * 3/2);

long baseDistanceSquare = (long)baseDistance * (long)baseDistance;

Or is the below code sufficient?

long baseDistanceSquare = baseDistance * baseDistance;
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Downvoter, care to explain your downvote? Or stackoverflow is not allowed to be visited by beginners anymore? –  Thomas Calc Feb 4 '13 at 5:18
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3 Answers

up vote 1 down vote accepted

You might want to check Integer overflow as a general concept. Overflow and underflow are handled differently depending on the language, too. Here is an article on Integer overflow and underflow in Java.

As for the reason why this is so in the Java language, as always, it's a tradeoff between simplicity in the language design and performance. But in Java puzzlers (puzzle 3), the authors criticize the fact that overflows are silent in Java:

The lesson for language designers is that it may be worth reducing the likelihood of silent overflow. This could be done by providing support for arithmatic that does not overflow silently. Programs could throw an exception instead of overflowing, as does Ada, or they could switch to a larger internal representation automatically as required to avoid overflow, as does Lisp. Both of these approaches may have performance penalties associated with them. Another way to reduce the likelyhood of silent overflow is to support target typing, but this adds significant complexity to the type system.

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Thanks for the useful links. I know what overflow means (basically), that is what I want to avoid. So I'm wondering what I need to tell to the compiler explicitly, to prevent the following from happening: multiplication overflows, and then the (wrong) result is implicitly converted to a long. –  Thomas Calc Feb 4 '13 at 5:03
    
@ThomasCalc.. Yeah you have to do it explicitly. And you don't have to typecast both the operands. Just one is enough. –  Rohit Jain Feb 4 '13 at 5:05
    
So, based on your second link, the second solution (i.e. without explicit long casts) would be wrong. I need explicit cast. –  Thomas Calc Feb 4 '13 at 5:05
    
@Rohit Jain: thanks. –  Thomas Calc Feb 4 '13 at 5:06
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Scratch that. I read it wrong. You do have to cast it to prevent overflow.

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As a side note, this is equivalent to the problem of converting to float the result of an operation with integers; for example:

    float f = 2/3;
    System.out.println(f);  // Print 0.0

    f = (float)(2/3);
    System.out.println(f);  // Print 0.0

    f = (float)2/3;
    System.out.println(f);  // Print 0.6666667
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