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According to this precedence table, the comma operator is left-associative. That is, a, b, c is parsed as (a, b), c. Is that a necessity? Wouldn't a, (b, c) have the exact same behavior?

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What if a, b and c are of different types, and each overloads , which returns a type which overloads , too? (a,b),c would not be same as a,(b,c). –  Nawaz Dec 23 '12 at 11:36
    
How is your comment different from @Pubby's answer? –  FredOverflow Dec 23 '12 at 11:40
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Not necessarily. Also, I didn't come later. Just didn't refresh the page. –  Nawaz Dec 23 '12 at 11:44
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@AlexisWilke: You're wrong. In C++, the order of function arguments evaluation is not specified. So they can be evaluated in any order. –  Nawaz Dec 23 '12 at 11:47
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Why would they be equivalent? Not even (a + b) + c and a + (b + c) are guaranteed to be equivalent. (They aren't in floating-point arithmetic for accuracy reasons, and in some exotic number systems they aren't even supposed to). –  leftaroundabout Dec 23 '12 at 12:08

2 Answers 2

up vote 12 down vote accepted

Since overloadable operator, exists, no, it's not the same behavior. a, (b, c) could call different overloads than (a, b), c.

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The comma operator has left-to-right associativity. Two expressions separated by a comma are evaluated left to right. The left operand is always evaluated, and all side effects are completed before the right operand is evaluated.

Commas can be used as separators in some contexts, such as function argument lists. Do not confuse the use of the comma as a separator with its use as an operator; the two uses are completely different.

http://msdn.microsoft.com/en-us/library/zs06xbxh.aspx

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