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Can someone explain this C++ comma operator short-circuiting example?

bIsTRUE     = true, false, true;
bIsFALSE    = (true, false), true;
bIsAlsoTRUE = ((true, false), true);

Why does the second version short-circuit and return false (at least in MSVC++) and the other two versions do not but return true?

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1 Answer 1

up vote 27 down vote accepted

The comma operator has lower precedence than assignment, so these are parsed as

(bIsTRUE     = true), false, true;     
(bIsFALSE    = (true, false)), true;   
(bIsAlsoTRUE = ((true, false), true)); 

The comma operator does not short-circuit. It evaluates its left operand, ignores the result, then evaluates its right operand.

bIsTRUE is true because the right operand of the assignment is true.

bIsFALSE is false because (true, false) evaluates true, ignores the result, then evaluates and yields false.

bIsAlsoTRUE is true because ((true, false), true) evaluates (true, false), ignores the result, then evaluates and yields true.

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1  
Ah, a case where the added parenthesis explain all! –  Adisak May 4 '11 at 0:42
    
Just out of curiosity where would you use such functionality? –  Pepe May 4 '11 at 1:03
2  
@PeterR.: Which functionality, that comma is lower precedence than assignment? int count = 0; for (Node *p = head; p; p = p->next, ++count) {} A poor example, but for-loop increment expressions, and sometimes other similar things, can use it. –  Fred Nurk May 4 '11 at 1:13
    
@Fred Yup that! I actually never noticed that I used that! Thanks :) –  Pepe May 4 '11 at 1:14
1  
@Adisak: As with all operator overloading, at least one of the operand types must be a class or enumeration type. So, you could overload the operator for MyClass and int (to be able to use MyClass, 42) but not int and int (42, 42). –  James McNellis May 4 '11 at 14:30

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