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Is this

if(x == a || b){//do something}

same as

if(x == a || x == b){//do something}

?

I think it is not, because in first case we evalute if x equals a and if b is true or false and in second case we evalute if x equals a and if x equals b. And I understand that in lazy evalution if x equals a than we are not evaluating further.

But somebody thinks that in first case we ask if x equals a or b, so I wanna make sure.

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1  
"I think it is not" - you are correct and so is your reasoning. –  Dukeling Feb 24 '13 at 14:35
4  
It's easier to test this yourself than to ask a question about it. –  Jeremy Feb 24 '13 at 14:36
    
@Nile A test tells you how one implementation does it once. Consulting the standard (or Stack Overflow) tells you how every implementation ought to behave. –  Daniel Fischer Feb 24 '13 at 14:39
    
Probably a good idea to right code that in the first inspection requires one to scratch ones head. –  Ed Heal Feb 24 '13 at 14:40
    
Then, maybe I should have answered my own question. :-) –  Pan.student Feb 24 '13 at 14:44

6 Answers 6

No.

In C++, this:

x == a || b  // Same as (x == a) || b

Is equivalent to this:

(x == a) || (bool)b

Which evaluates to true if x and a are equal OR if b evaluates to true when converted to bool. In C, on the other hand, it is equivalent to this:

(x == a) || (b != 0)

Which evaluate to true if x and a are equal OR if b is different from 0 (here we must make the implicit assumption that b is of integral type, otherwise this won't compile).

On the other hand, this:

(x == a || x == b) // Same as ((x == a) || (x == b))

Evaluates to true when either x and a are equal OR x and b are equal (i.e., if x is either equal to a or equal to b) both in C++ and in C.

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ehh not quite, C doesn't have a bool type and I don't think C++ diverts from C in this construct. Of course OP tagged as both so it's a bit of a free for all. –  djechlin Feb 24 '13 at 14:44
    
@djechlin: Right, I missed the C tag. This answer is for C++. I will edit. –  Andy Prowl Feb 24 '13 at 14:45
    
I'm still not sure it's correct though? I don't know if C++ does if(5) means if((bool) 5) or if(true) means if((int)true). The latter makes less sense but is more consistent with C. –  djechlin Feb 24 '13 at 15:07
    
@djechlin: In C++ the condition in if is converted to bool. See Paragraph 6.4/4 of the C++11 Standard: "The value of a condition that is an initialized declaration in a statement other than a switch statement is the value of the declared variable contextually converted to bool (Clause 4). If that conversion is ill-formed, the program is ill-formed." –  Andy Prowl Feb 24 '13 at 15:09

The two expressions are not equivalent. This

if(x == a || b)

is the equivalent of

if( (x == a) || (b))

i.e an OR of x==a and b. In C++, if b evaluates to anything other than 0 or false, it is taken as true.

The second one tests whether x==b instead of simply testing b.

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No. In C this is equivalent to:

if(x == a || b != 0)
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b is not necessarily comparable to 0 though. –  juanchopanza Feb 24 '13 at 14:36
    
are there warnings that can be generated by b != 0 but not b? –  djechlin Feb 24 '13 at 14:36
    
@djechlin no, because this is really equivalent. –  ouah Feb 24 '13 at 14:37

The first reads as "if x is equal to a, or if b is truthy"

The second reads as "if x is equal to a, or if x is equal to b"

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No.

if (x == a || b)

is equal to

if ((x == a) || (bool)b)

because operator == has higher precedence than operator ||. See Operator Precedence Table.

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You are almost right, the first case means x equals a OR b is true.

Lazy evaluation means that the expression will be evaluated only until the result is obvious. In an OR expression, for example (x || y), the result will be known when x==true – then the whole expression must be true too. In the case of AND, like (x && y), the result will be evident when x==false. So you are right, if x==a, we know the answer already and no more work is needed.

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