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The below fails to compile:

typedef int arr[10];
int main(void) {
    return sizeof arr;
}

sizeof.c:3: error: expected expression before ‘arr’

but if I change it to

sizeof(arr);

everything is fine. Why?

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sizeof as an operator is not avaliable in ansi-c –  Grim May 5 '11 at 8:44
1  
@Kostya: my copy of K&R (the earliest description of the C language I have) is very far away and I can't check it now, but I'm 110% sure it describes sizeof fundamentally the same way C99 Standard does today. sizeof is available since before C was standardized by ANSI in 1989. –  pmg May 5 '11 at 9:09
2  
@Kostya Your statement is well known to be false by any experienced and even not-so-experienced C programmers. Please limit yourself to true assertions, doing the research necessary before making them. Thanks, and welcome to SO. –  Jim Balter May 5 '11 at 10:19
1  
Sorry, my bad.. –  Grim May 5 '11 at 14:59
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1 Answer

up vote 35 down vote accepted

According to 6.5.3, there are two forms for sizeof as the following:

sizeof unary-expression
sizeof ( type-name )

Since arr in your code is a type-name, it has to be parenthesized.

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5  
+1 concise and accurate. –  JeremyP May 5 '11 at 8:54
2  
+1 and, just to reinforce that sizeof is an operator: the parenthesis "belong to" the type, not the operator. –  pmg May 5 '11 at 9:10
    
@pmg: Thanks for clarification! Yes, as you mentioned, the standard denotes sizeof as an operator. –  Ise Wisteria May 5 '11 at 9:19
3  
@pmg: I don't think it's clear what the parentheses "belong to". The syntax of the second form consists of three tokens and one non-terminal: sizeof ( type-name ). But for the first form, you can write, for example, sizeof(x), and though it looks like a function call (if sizeof weren't a keyword), it's really an operator applied to a parenthesized expression. Is that what you had in mind? –  Keith Thompson Aug 9 '11 at 0:45
1  
@pmg: You can certainly think of it that way, but I find it misleading. The only real resemblance to a cast is that it has a type name in parentheses, and that's just a coincidence of syntactic convenience. I prefer to think of sizeof ( type-name ) as its own kind of expression. (The standard calls it an operator, but ( type-name ) isn't really an operand in the usual sense.) –  Keith Thompson Aug 17 '11 at 16:16
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