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I know that || and && are defined as short-circuit operators in C#, and such behaviour is guaranteed by the language specification, but do |= and &= short-circuit too?

For example:

private bool IsEven(int n)
{
    return n % 2 == 0;
}

private void Main()
{
    var numbers = new int[] { 2, 4, 6, 8, 9, 10, 14, 16, 17, 18, 20 };

    bool allEven = true;
    bool anyOdd = false;

    for (int i = 0; i < numbers.Length; i++)
    {
        allEven &= IsEven(numbers[i]);
        anyOdd |= !IsEven(numbers[i]);
    }
}

When the 9 entry is hit, allEven becomes false, meaning that all subsequent entries are irrelevant - the value of allEven is guaranteed to be false for all future calls to that expression. The same goes for anyOdd, which is set to true when it sees 9, and will remain true for all subsequent calls to that expression.

So, do &= and |= shortcut, or is IsEven guaranteed to be called on every iteration? Is there any defined behaviour in the language specification for this case? Are there any corner-cases where such short circuiting would be problematic?

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5 Answers 5

up vote 6 down vote accepted

The C# specification guarantees that both sides are evaluated exactly once from left-to-right and that no short-circuiting occurs.

5.3.3.21 General rules for expressions with embedded expressions

The following rules apply to these kinds of expressions: parenthesized expressions (§7.6.3), element access expressions (§7.6.6), base access expressions with indexing (§7.6.8), increment and decrement expressions (§7.6.9, §7.7.5), cast expressions (§7.7.6), unary +, -, ~, * expressions, binary +, -, *, /, %, <<, >>, <, <=, >, >=, ==, !=, is, as, &, |, ^ expressions (§7.8, §7.9, §7.10, §7.11), compound assignment expressions (§7.17.2), checked and unchecked expressions (§7.6.12), plus array and delegate creation expressions (§7.6.10).

Each of these expressions has one or more sub-expressions that are unconditionally evaluated in a fixed order.

The C# specification for compound operators says:

7.17.2 Compound assignment

...

An operation of the form x op= y is processed by applying binary operator overload resolution (§7.3.4) as if the operation was written x op y. Then,

  • If the return type of the selected operator is implicitly convertible to the type of x, the operation is evaluated as x = x op y, except that x is evaluated only once.

  • Otherwise, if the selected operator is a predefined operator, if the return type of the selected operator is explicitly convertible to the type of x, and if y is implicitly convertible to the type of x or the operator is a shift operator, then the operation is evaluated as x = (T)(x op y), where T is the type of x, except that x is evaluated only once.

...

In your case op is & or |. The short circuiting behavior mirrors that of &/| and not &&/||.


Note that this only refers to behavior visible in a single threaded scenario. So if the right hand side has no side-effects that are observable in such a scenario, the compiler or JITter is still free to omit the evaluation.

In your example the compiler is free to terminate the loop once it knows the result, since there are no such side-effects. But it's not required to do so.

In particular timing does not count as such a side-effect, and you thus can't rely on your code having constant runtime. This can be problematic in a security context, since it can introduce a timing side-channel.

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Excellent answer. I'll remember not to rely on it calling on every iteration. Great point about side channel attacks too. –  Polynomial Oct 24 '12 at 10:31

but do |= and &= short-circuit too?

No. &= and |= are the equivalents of the operations & and |, not of the short-circuited logical operators.

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2  
-1 No, that's not correct. They are not bitwise operators when used on booelans. –  Guffa Oct 24 '12 at 9:45
    
@Guffa I find it helpful to think of them as if they were but yes, you’re right. –  Konrad Rudolph Oct 24 '12 at 9:46
    
For bool operands, & computes the logical AND of its operands; that is, the result is true if and only if both its operands are true. The & operator evaluates both operators regardless of the first one's value msdn.microsoft.com/en-us/library/sbf85k1c(v=vs.80).aspx –  Roman Pekar Oct 24 '12 at 9:57
    
@Roman I’m not sure in relation to what you’ve posted that. Both Guffa and I are aware of this … –  Konrad Rudolph Oct 24 '12 at 11:28
    
Actually, it's more for other reader like me, not for you, I see that both of you aware of that. –  Roman Pekar Oct 24 '12 at 11:42

No, the &= and |= operators are not doing short-circuit evaluation.

They are pseudo-operators, which the compiler converts into use of the & and | operators.

This code:

allEven &= IsEven(numbers[i]);

is exactly equivalent to:

allEven = allEven & IsEven(numbers[i]);

If you want the short circuited check, then you have to write it out using the short circuiting versions of the operators:

allEven = allEven && IsEven(numbers[i]);

There is no &&= pseudo operator, but the code above is exactly what the compiler would do if there was one.

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Are the pseudo-operators and their behaviours defined in the language spec, or are they bolt-on syntactic sugar provided by the IDE / compiler? –  Polynomial Oct 24 '12 at 10:05
1  
@Polynomial: It's covered in the chapter "7.17.2 Compound assignment" in the language specification. –  Guffa Oct 24 '12 at 10:11

Easy to find out:

  bool b = false;
  b &= Foo(1);


    private static bool Foo(int id)
    {
        Console.WriteLine("test " + id);
        return false;
    }

The answer is No, Foo() is always executed.

But if you're looking for an optimization, the real issue is of course in the loop:

 allEven = numbers.All(n => IsEven(n));

could be a lot faster. It will stop iterating after seeing the first odd number (9 in the sample).

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Short circuiting is relevant only when there are boolean operators. & & | are bitwise operators not boolean. In short, it's guaranteed to be called every time.

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Like Guffa correctly commented on my answer, & and | are not bitwise operators when applied to operands of type bool, they are boolean operators (but still not short-circuited). –  Konrad Rudolph Oct 24 '12 at 9:53
    
@KonradRudolph I don't see anything in Guffa's answer which says that they are not bitwise operators but boolean ones. They are 100% bitwise operators. –  user93353 Oct 24 '12 at 9:55
1  
@user93353: The & and | are not bitwise operators when applied to boolean values. See: msdn.microsoft.com/en-us/library/sbf85k1c.aspx "For bool operands, & computes the logical AND of its operands" –  Guffa Oct 24 '12 at 9:59
    
@Guffa Ok - didn't realize true and false don't evaluate to 1 & 0 in C# unlike most other programming languages. –  user93353 Oct 24 '12 at 10:31

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