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If I have this equation:

    var x = (true && false || true)

Is that equivalent to:

    var x = ((true && false) || true)

or:

    var x = (true && (false || true))

And whats the logic behind this?

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2  
    
msdn.microsoft.com/en-us/library/aa691323%28v=vs.71%29.aspx see this link to give the microsoft definition. –  jimplode Apr 20 '11 at 12:23

8 Answers 8

up vote 9 down vote accepted

AND wins over OR.

So it will be

var x = ((true && false) || true)

See Operator precedence and associativity.

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3  
Is it a competition? –  RoflcoptrException Apr 20 '11 at 12:23
    
Well, I thought it is more nicely put as such :) –  Aliostad Apr 20 '11 at 12:24

It's equivalent to

var x = ((true && false) || true)

The && operator has higher precedence than the || operator.

Operator precedence MSDN documentation

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4  
Your statement contains a subtle logical error. Precedence does not control the order in which subexpressions are evaluated. That is, when you say A() + B() * C() it is NOT the case that B() * C() is evaluated before A() just because * is higher precedence than +. Rather, the order of evaluation is A(), then B(), then C(), then the multiplication, then the addition. Subexpressions are evaluated left to right, end of story. Precedence and associativity work out what the subexpressions are. –  Eric Lippert Apr 20 '11 at 13:50
    
@Eric: Whoops -- not what I meant to say / convey in this case; thanks for the correction. –  Mark Simpson Apr 28 '11 at 13:37

In boolean logic, "not" (!) is evaluated before "and" (&&) and "and" is evaluated before "or" (||). By using the double (&&) and the double (||), these operators will short circuit, which does not affect the logical outcome but it causes terms on the right hand side to not be evaluated if needed.

Thus

var x = (true && false || true) evaluates to false|| true which evaluates to true

and

var x = ((true && false) || true) evaluates to false || true which evaluates to true

and

var x = (true && (false || true)) evaluates to true && true which evaluates to true

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3  
I think (true && false || true) evaluates to false || true as && has precedence so it is equivalent to ((true && false) || true). Anyway in the end all of it are gonna be true. –  rucsi Apr 20 '11 at 13:28
    
Good catch! I messed up typing there. –  Jason Moore Apr 25 '11 at 2:15

&& has a higher precedence than || so the first two use cases will act exactly the same. The braces have no meaning here, just like in:

a * b + c = (a * b) + c

You can control precedence and associativity with braces. so the third use case will check the OR condition and then the AND.

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The above expression evaluates as ((true && false) || true) because of the operator precedence(&& has higher precedence than ||).

Check this link for more information on Operator Precedence: http://msdn.microsoft.com/en-us/library/aa691323(v=vs.71).aspx

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If you use in this expression || true that mean doesn't matter about other result it always will be true

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In the real code I'm using variables. I substituted static values to simplify the question. –  Entity Apr 20 '11 at 12:30

I believe it's

var x = ((true && false) || true)

...as && has precedence according to MSDN.

You'd think that whoever wrote that particular line of code might have made their intention clear by inserting the parenthesis in the right place. Do everyone else a favour, and add them in.

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&& has higher precedence, so the second form (of the three) is correct. As to the logic, && tends to be vaguely associated with multiplication, and || with addition (if you use zero and non-zero to represent false and true, respectively, the operators have equivalent semantics). But mostly it's just the way it's been since C, and possibly before C.

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