157

Assuming

boolean a = false;

I was wondering if doing:

a &= b; 

is equivalent to

a = a && b; //logical AND, a is false hence b is not evaluated.

or on the other hand it means

a = a & b; //Bitwise AND. Both a and b are evaluated.

5 Answers 5

162

From the Java Language Specification - 15.26.2 Compound Assignment Operators.

A compound assignment expression of the form E1 op= E2 is equivalent to E1 = (T)((E1) op (E2)), where T is the type of E1, except that E1 is evaluated only once.

So a &= b; is equivalent to a = a & b;.

(In some usages, the type-casting makes a difference to the result, but in this one b has to be boolean and the type-cast does nothing.)

And, for the record, a &&= b; is not valid Java. There is no &&= operator.


In practice, there is little semantic difference between a = a & b; and a = a && b;. (If b is a variable or a constant, the result is going to be the same for both versions. There is only a semantic difference when b is a subexpression that has side-effects. In the & case, the side-effect always occurs. In the && case it occurs depending on the value of a.)

On the performance side, the trade-off is between the cost of evaluating b, and the cost of a test and branch of the value of a, and the potential saving of avoiding an unnecessary assignment to a. The analysis is not straight-forward, but unless the cost of calculating b is non-trivial, the performance difference between the two versions is too small to be worth considering.

0
54

see 15.22.2 of the JLS. For boolean operands, the & operator is boolean, not bitwise. The only difference between && and & for boolean operands is that for && it is short circuited (meaning that the second operand isn't evaluated if the first operand evaluates to false).

So in your case, if b is a primitive, a = a && b, a = a & b, and a &= b all do the same thing.

2
  • 3
    So (a &= b;) will not short-circuit if b is a method call? is there something like a "&&=" operator?
    – is7s
    Apr 25, 2012 at 18:34
  • 3
    It seems that this doesn't answer the question; the OP already knew about short-circuiting. Nov 15, 2012 at 7:58
25

It's the last one:

a = a & b;
1

Here's a simple way to test it:

public class OperatorTest {     
    public static void main(String[] args) {
        boolean a = false;
        a &= b();
    }

    private static boolean b() {
        System.out.println("b() was called");
        return true;
    }
}

The output is b() was called, therefore the right-hand operand is evaluated.

So, as already mentioned by others, a &= b is the same as a = a & b.

-4

i came across a similar situation using booleans where I wanted to avoid calling b() if a was already false.

This worked for me:

a &= a && b()
1
  • 26
    In order to avoid redundancies (still allowing for short-circuiting), you can simply write a=a&&b().
    – Unai Vivi
    Sep 8, 2012 at 9:39

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