4

I'm not happy about this: http://docs.oracle.com/javase/specs/jls/se7/html/jls-15.html#jls-15.22 . It clearly states the following:

"Each operator is commutative if the operand expressions have no side effects."

and

"These operators have different precedence, with & having the highest precedence and | the lowest precedence".

How come the JVM doesn't comply to it's own rules. Take for instance the following example.

public static void main(String[] args){
    boolean bool = isTrue1() | isFalse1() & isFalse2() ;
    System.out.println("Result : " + bool);
}

public static boolean isFalse1() {
    System.out.println("1 : " + false);
    return false ;
}
public static boolean isFalse2() {
    System.out.println("2 : " + false);
    return false ;
}
public static boolean isTrue1() {
    System.out.println("3 : " + true);
    return true ;
}

The result is:

3 : true
1 : false
2 : false
Result : true

While the actual result should be, according to the fact that & operators are evaluated before | operators:

1 : false
2 : false
3 : true
Result : true

Some explanation would be nice as to why this isn't correctly implemented. Even when adding parentheses around the second part, the correct precedence isn't used.

  • 1
    What's the issue? Your results match up, they are just out of order. – trevor-e Feb 4 '14 at 15:56
  • 3
    These are not logical operators but bit operators. – user1907906 Feb 4 '14 at 15:56
  • According to the official java specification, they are called both logical operators and bitwise operators depending on the data surrounding them. Meanwhile && and || are called Conditional-And/Conditional-Or operators. This doesn't even matter for the question how you call them. I suggest you take a look at the linked specification. – user2890248 Feb 4 '14 at 16:01
  • @trevor-e The issue is, that when my code has side effects (which I demonstrated with a simple sout call here), I can't depend on the official java specification to be correct. Which I'm seeking an explanation for. – user2890248 Feb 4 '14 at 16:02
  • 1
    @user2890248 "Operator precedence" has to do with how expressions are interpreted; it simply means that a | b & c is equivalent to a | (b & c) and not (a | b) & c. It has nothing to do with the order in which the parts are evaluated at runtime. Unfortunately, I was going to point to you a resource that explains "operator precedence", but the first sentence of the Wikipedia page actually confuses the issue. I may have to complain about that. – ajb Feb 4 '14 at 16:16
8

"These operators have different precedence, with & having the highest precedence and | the lowest precedence".

Just because they have higher precedence, doesn't mean their operands will be evaluated first.

This

boolean bool = isTrue1() | isFalse1() & isFalse2() ;

becomes equivalent to

boolean bool = isTrue1() | ( isFalse1() & isFalse2() ) ;

That's all precedence is.

As the Java Language Specification says, operator operands are evaluated left to right.

The Java programming language guarantees that the operands of operators appear to be evaluated in a specific evaluation order, namely, from left to right.

3

The & has higher precedence than | but in your case, evaluating this:

boolean bool = isTrue1() | isFalse1() & isFalse2()

is the same as evaluating this:

  boolean bool = (isTrue1()) | (isFalse1() & isFalse2())

Which means, the two sides of the | expression are the same precedence. So java will evaluate them in the left-to-right order in that case.

First it will call isTrue1(), being the first on the left and then the second paranthesis, again evaluating what is inside it in the left-to-right order: isFalse1() and then isFalse2().

1

The order of method evaluation isn't necessarily going to match up with the operator precedence; the side effects of each method appear in the order in which you called the method, then their results are evaluated to produce your final print statement.

0

What you are doing here is a bitwise combination and not a logic operation. So Java follows the left-to-right order as one would expect.

If you actually use logical operations (replace | with || and & with &&), the result becomes:

1 : true
Result : true
  • This isn't the most important difference, the important thing is that || and && are short circuiting. – Simon Forsberg Jan 27 '17 at 14:40
-2

Java will call all the functions before comparing the results, since you're using binary comparators (& and |) instead of logical comparators (&& and ||)

  • All the functions may not be called if the result of the expression is already determined - This is called short circuit evaluation – Gowtham Feb 4 '14 at 16:20
  • 2
    @Gowtham short circuit evaluation is not used for & and |. It's used only for && and ||. – ajb Feb 4 '14 at 16:33

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