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#include <iostream>
using namespace std;

typedef int MYINT;

int main() 
{ 
    int y = MYINT();                     // As expected, y = 0; value initialization
    cout << MYINT();                     // Error
    cout << sizeof(MYINT());             // Error
} 

Why the last two lines in the main function before the closing brace give error? Why is the expression MYINT() treated differently in different contexts? Any Standard reference will be helpful.

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3  
could you show the declaration of MYINT? –  Claptrap Sep 3 '10 at 12:31
    
What is MYINT() ? I would help us answer your question. –  Cedric H. Sep 3 '10 at 12:31
    
Please post how the MYINT() macro is defined. Cannot help without that. –  Karel Petranek Sep 3 '10 at 12:31
2  
The second line compiles for me (gcc4.1.2), as I believe it should. Which compiler are you using, and what are the errors? –  Mike Seymour Sep 3 '10 at 12:36
1  
@chubsdad see how giving enough info works wonders? :-) –  Claptrap Sep 3 '10 at 13:01

5 Answers 5

up vote 2 down vote accepted

I do not see any error for the cout << MYINT(); line. However I see invalid application of 'sizeof' to a function type for the cout << sizeof(MYINT()); line. The problem is the () around MYINT(). The C++ standard says this about sizeof and how it is parsed:

sizeof unary-expression
sizeof ( type-id )

There is a parsing ambiguity between sizeof unary-expression and sizeof ( type-id ). It is resolved by using longer match. It parses sizeof (MYINT()) as sizeof ( type-id ), MYINT() is a function type and thus you see the error.

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MYINT() can, depending on context, be interpreted as an expression of type MYINT, or a specifier of a function type taking no arguments and returning MYINT. In some situations, where either an expression or a type specifier is valid, this gives an ambiguity; this is resolved by interpreting it as a type specifier if possible (EDIT: C++03 8.2/2, if you want a Standard reference).

sizeof can take either an expression, or a parenthesised type specifier, as it's argument, giving this ambiguity. So here MYINT() is interpreted as a type specifier; then you get an error, since sizeof can't be applied to a function type.

EDIT: You can fix the error by removing the parentheses so it will be interpreted as an expression (sizeof MYINT()), adding extra parentheses so it isn't a valid type specifier (sizeof((MYINT()))), or changing it to the correct type (sizeof(MYINT)).

cout << MYINT() is unambiguous, so there should be no error, and indeed there isn't on my compiler. What is the error, and what is your compiler?

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+1. May be worthwhile to show a work around. One such is to say sizeof MYINT() or sizeof((MYINT())) –  Johannes Schaub - litb Sep 3 '10 at 14:09
    
Indeed there is no error on cout << MYINT() on a second confirmation on my system as well!. Sorry for the misleading info –  Chubsdad Sep 4 '10 at 0:55

If your MINTINT is typedef int MYINT then MYINT() is not a function but is int() which is a default initialization, equivallent to int y = 0 or int y = int(0).

Your second line, ie cout << MYINT() compiles correctly for me with g++ -Wall -ansi -pedantic for the same reason.

But g++ will complain for the sizeof with the following error error: invalid application of "sizeof" to a function type because it interprets MYINT() as "a call to a default constructor for int" (EDIT: this is not correct) "a function type returning MYINT which is not allowed" (EDIT: this is the correct answer, see Mike's). But this a nothing to do with the typedef.

Summary:

#include <iostream>
typedef int myint;
int main()
{
int y = myint();
int z = myint(0);
std::cout << y << z; // Will output 0 0
std::cout << std::endl << myint(0) << myint(); // Will output 0 0
std::cout << sizeof(int()); // The error is here; same with sizeof(myint())
}

Edit (again)

As said in the comment is the cout lines doesn't work for you, this is because you probably forgot to include <iostream>.

Edit Look also the answer of Mike Seymour for an explanation of the ambiguity with sizeof.

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You need to explain why a value initialized temporary isn't valid (if it isn't) in the other two lines. –  Charles Bailey Sep 3 '10 at 12:37
    
@Charles: Edited my post. –  Cedric H. Sep 3 '10 at 12:39
    
Why sizeof interpret int() as a function, but not a temporary valuable? –  Baiyan Huang Sep 3 '10 at 12:43
    
See the answer of Mike Seymour. –  Cedric H. Sep 3 '10 at 12:48
2  
Ints do not have a "default constructor". So this is a wrong answer, but delegates to the correct answer by @Mike. Yet, it's upvoted to +7 while @Mike's answer is at +3. Weird! –  Johannes Schaub - litb Sep 3 '10 at 14:06
// OK. Implicit conversion to int.
int y = MYINT();          

// OK. Implicit conversion again. Which compiler do you use?
cout << MYINT();          

// Invalid. Tries to get size of a function that returns MYINT,
// because sizeof expects a type-id and according to 8.2/2,
// which is forbidden according to the C++ Standard 5.3.3/1
cout << sizeof(MYINT());  
// Do you want this instead?
cout << sizeof(MYINT);  
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Why the last two lines in the main function before the closing brace give error?

cout << MYINT(); doesn't work because cout is not defined. Once you do #include <iostream> and using std::cout, it will work fine.

sizeof(MYINT()) does indeed not work, but sizeof(int()) doesn't work either, so that's to be expected. sizeof(MYINT) will work just fine.

Why is the expression MYINT() treated differently in different contexts?

It's not. In every case MYINT() behaves exactly like int().

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+1 for there is no need to define MYINT to show the same results –  Baiyan Huang Sep 3 '10 at 12:41

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