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So for binary operators on booleans, Java has &, |, ^, && and ||.

Let's summarize what they do briefly here:

For &, the result value is true if both operand values are true; otherwise, the result is false.

For |, the result value is false if both operand values are false; otherwise, the result is true.

For ^, the result value is true if the operand values are different; otherwise, the result is false.

The && operator is like & but evaluates its right-hand operand only if the value of its left-hand operand is true.

The || operator is like |, but evaluates its right-hand operand only if the value of its left-hand operand is false.

Now, among all 5, 3 of those have compound assignment versions, namely |=, &= and ^=. So my question is obvious: why doesn't Java provide &&= and ||= as well? I find that I need those more than I need &= and |=.

And I don't think that "because it's too long" is a good answer, because Java has >>>=. There must be a better reason for this omission.


From 15.26 Assignment Operators:

There are 12 assignment operators; [...] = *= /= %= += -= <<= >>= >>>= &= ^= |=


A comment was made that if &&= and ||= were implemented, then it would be the only operators that do not evaluate the right hand side first. I believe this notion that a compound assignment operator evaluates the right hand side first is a mistake.

From 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.

As proof, the following snippet throws a NullPointerException, not an ArrayIndexOutOfBoundsException.

    int[] a = null;
    int[] b = {};
    a[0] += b[-1];
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2  
I go for the second, no one cares :P also, all these question about 'why feature x is not in language y?' should be asked to the language's designers, not to us :P –  Federico Culloca Oct 1 '09 at 17:40
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What does &= mean ? Some one please can tell me ? –  Tarik Oct 1 '09 at 17:43
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possible duplicate of Why does a "&&=" Operator not exist? –  Josh Lee Aug 16 '10 at 14:57
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@jleedev: That question is older, but this has more votes and incoming links. I'd say if there's any merge, merge the old one to this one (yes, that can be done). –  polygenelubricants Aug 16 '10 at 15:20
2  
It is fixed in Scala. –  soc Aug 18 '10 at 8:28
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11 Answers 11

Probably because something like

x = false;
x &&= someComplexExpression();

looks like it ought to be assigning to x and evaluating someComplexExpression(), but the fact that the evaluation hinges on the value of x isn't apparent from the syntax.

Also because Java's syntax is based on C, and no one saw a pressing need to add those operators. You'd probably be better off with an if statement, anyway.

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15  
I think this is not a good answer, because one can argue that x() && y() looks like it ought to evaluate both sides of the expression. Obviously people accept that && is short-circuiting, so that should also follows to &&= as well. –  polygenelubricants Feb 24 '10 at 8:41
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@jleedev, agreed. I believe in these situations it's important to remember that this isn't the equivalent of x = x && someComplexExpression() but the equivalent of x = someComplexExpression() && x. The right-hand side will/should be evaluated first to be consistent with every other assignment operator. And given that, &&= would have no different behavior than &=. –  PSpeed Feb 24 '10 at 8:46
    
@polygene That's fair. How something looks is based on what you're familiar with, though, and I guess they didn't want to add anything new. One thing I like about C/C++/Java/C# is that the basic syntax of expressions is nearly identical. –  Josh Lee Feb 24 '10 at 8:47
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@PSpeed, you are mistaken. The JLS is very clear on what the compound assignment is supposed to do. See my addition above. –  polygenelubricants Feb 24 '10 at 8:52
    
I think saying that they aren't there because the designers simply followed the precedence set by C is misleading, since they did add >>> and >>>=, which are entirely new. –  polygenelubricants Feb 24 '10 at 9:52
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&& is a logical operator, & is a bitwise operator. They do two different things. Assigning the results of the former to the left side of the operation makes sense less often than for bitwise operations.

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4  
Now, I've seen a lot of situation where it does make sense: for instance: bool failed = operation1(); failed &&= operation2(); failed &&= operation3(); –  EFraim Oct 1 '09 at 17:41
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& also works with booleans. –  Tom Hawtin - tackline Oct 1 '09 at 17:42
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@Tom: Yes, it does, but the form I've posted would short-circuit and nothing would be done after the first failure. Convenient. –  EFraim Oct 1 '09 at 17:44
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Just learned something ... in C# & and && are both logical operators and I thought it would be the same in Java. –  Daniel Brückner Oct 1 '09 at 17:44
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In both Java and C#, & is not bitwise when applied to boolean arguments. It's non-short-circuiting boolean. –  Pavel Minaev Oct 1 '09 at 19:18
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It is this way in Java, because it is this way in C.

Now the question why it is so in C is because when & and && became different operators (sometime preceding C's descent from B), the &= variety of operators was simply overlooked.

But the second part of my answer does not have any sources to back it up.

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Reason

The operators &&= and ||= are not available on C / C++ / Java because :

  • error-prone
  • useless

Example for &&=

If C or C++ or Java allowed &&= operator, then that code:

bool isOk = true; //becomes false when at least a function returns false
isOK &&= f1();
isOK &&= f2(); //we may expect f2() is called whatever the f1() returned value

is equivalent to:

bool isOk = true;
if (isOK) isOk = f1();
if (isOK) isOk = f2(); //f2() is called only when f1() returns true

This first code is error-prone because many developers would think f2() is always called whatever the f1() returned value. It is like bool isOk = f1() && f2(); where f2() is called only when f1() returns true.

If the developer wants f2() to be called only when f1() returns true, therefore the second code above is less error-prone.

Else (the developer wants f2() to be always called), &= is sufficient:

Example for &=

bool isOk = true;
isOK &= f1();
isOK &= f2(); //f2() always called whatever the f1() returned value

Moreover, the JVM should run this above code as the following one:

bool isOk = true;
if (!f1())  isOk = false;
if (!f2())  isOk = false;  //f2() always called

Compare && and & results

Are the results of operators && and & the same when applied on boolean values?

Let's check using the following Java code:

public class qalcdo {

    public static void main (String[] args) {
        test (true,  true);
        test (true,  false);
        test (false, false);
        test (false, true);
    }

    private static void test (boolean a, boolean b) {
        System.out.println (counter++ +  ") a=" + a + " and b=" + b);
        System.out.println ("a && b = " + (a && b));
        System.out.println ("a & b = "  + (a & b));
        System.out.println ("======================");
    }

    private static int counter = 1;
}

Output:

1) a=true and b=true
a && b = true
a & b = true
======================
2) a=true and b=false
a && b = false
a & b = false
======================
3) a=false and b=false
a && b = false
a & b = false
======================
4) a=false and b=true
a && b = false
a & b = false
======================

Therefore YES we can replace && by & for boolean values ;-)

So better use &= instead of &&=.

Same for ||=

Same reasons as for &&=:
operator |= is less error-prone than ||=.

If a developer wants f2() not to be called when f1() returns true, then I advice the following alternatives:

// here a comment is required to explain that 
// f2() is not called when f1() returns false, and so on...
bool isOk = f1() || f2() || f3() || f4();

or:

// here the following comments are not required 
// (the code is enough understandable)
bool isOk = false;
if (!isOK) isOk = f1();
if (!isOK) isOk = f2(); //f2() is not called when f1() returns false
if (!isOK) isOk = f3(); //f3() is not called when f1() or f2() return false
if (!isOK) isOk = f4(); //f4() is not called when ...
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Actually, I think I was wrong. –  StriplingWarrior Apr 2 '12 at 16:00
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Hi @StriplingWarrior. I have checked with my colleague Yannick, our best Java expert. I have updated my answer using the Java code source used to check that point. As you said & and &&give the same results. Thank you very much for your feedback. Do you like my answer? Cheers. –  olibre Apr 3 '12 at 8:31
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What if I want to do this very fast? &&= would be faster than &=, if it existed, so you should use if (a) a = b for speed –  adventurerOK Jun 18 '12 at 17:55
    
Hi @adventurerOK. Sorry I am not sure to understand what you mean... I think a&=b; is faster than if(a) a=b; when using values stored within the CPU registers. However, if b is in external memory (not cached), then if(a) a=b; is faster. Is it what you mean? Please provide more example code ;-) I am curious about your opinion. See you. Cheers –  olibre Jun 25 '12 at 13:08
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I don't agree when you say "And this is not what we want." If I write isOK &&= f2(); I would want it to short circuit just like && does. –  Tor Klingberg Jun 4 '13 at 13:32
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One of Java's original aims was to be "Simple, Object Oriented, and Familiar." As applied to this case, &= is familiar (C, C++ have it and familiar in this context meant familiar to someone who knows those two).

&&= would not be familiar, and it would not be simple, in the sense that the language designers were not looking to think of every operator they could add to the language, so less extra operators are simpler.

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Largely because Java syntax is based on C (or at least the C family), and in C all those assignment operators get compiled to arithmetic or bitwise assembly instructions on a single register. The assignment-operator version avoids temporaries and may have produced more efficient code on early non-optimising compilers. The logical operator (as they are termed in C) equivalents (&&= and ||=) don't have such an obvious correspondence to single assembly instructions; they usually expand to a test and branch sequence of instructions.

Interestingly, languages like ruby do have ||= and &&=.

Edit: terminology differs between Java and C

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I believe you mean the conditional operator equivalents don't have such obvious correspondence. In JLS terminology, the boolean logical operators are &, | and ^; && and || are the conditional operators. –  polygenelubricants Feb 24 '10 at 8:40
    
In C terminology, && and || are "logical operators", s6.5.13-14 in ISO 9899:1999. The bitwise operators are only "logical" when applied to a single bit (a boolean in java); there is no single-bit type in C and the logical operators there apply to all scalar types. –  p00ya Feb 24 '10 at 9:29
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For Boolean vars, && and || would use short circuit evaluation while & and | don't, so you would expect &&= and ||= to also use short circuit evaluation. There is a good use case for this. Especially if you are iterating over a loop, you want to be fast, efficient and terse.

Instead of writing

foreach(item in coll)
{
   bVal = bVal || fn(item); // not so elegant
}

I want to write

foreach(item in coll)
{
  bVal ||= fn(item);    // elegant
}

and know that once bVal is true, fn() will not be called for the remainder of the iterations.

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I cannot think of any better reason then 'It looks incredible ugly!'

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6  
But then C/Java was never meant to be beautiful. –  EFraim Oct 1 '09 at 17:45
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This does not provide an answer to the question. To critique or request clarification from an author, leave a comment below their post. –  Ugo Robain Apr 25 at 20:06
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'&' and '&&' are not the same as '&&' is a short cut operation which will not do if the first operand is false while '&' will do it anyway (works with both number and boolean).

I do agree that it make more sense to exist but it is not that bad if it is not there. I guess it was not there because C does not have it.

Really can't think of why.

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It is allowed in Ruby.

If I were to guess, I would say that it is not frequently used so it wasn't implemented. Another explanation could be that the parser only looks at the character before the =

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Java supports <<=, >>= and >>>=, so that isn't strictly true. –  Yishai Oct 1 '09 at 18:01
    
true. I didn't think of those. I guess the only explanation is then how frequently it is used. –  zzawaideh Oct 5 '09 at 14:41
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a&b and a && b are not the same thing.

a && b is a boolean expression that returns a boolean, and a & b is a bitwise expression that returns an int (if a and b are ints).

whare do you think they are the same?

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2  
a & b can be boolean. –  Tom Hawtin - tackline Oct 1 '09 at 17:43
1  
a & b should unlike a && b always evaluate b. –  Daniel Brückner Oct 1 '09 at 17:47
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