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The following code compiles cleanly with GCC:

void func(int arg1, decltype(arg1) arg2)
{
    (void)arg2;
}
int main(){}

I used this command to compile:

g++ -std=c++14 test.cpp -o test -pedantic-errors -Wall -Wextra

But such usage of a parameter in the middle of function declaration seems weird. Is it actually valid in standard C++, or is it a GCC extension?

share|improve this question
    
I assume that the type of arg1 is much more complex in your actual code? And without looking at the specification or any references, but knowing some about parsing, I would guess it's okay, because parsing languages like C++ is very much a top-to-bottom left-to-right affair. When the compiler parses the declaration for arg2 it must have already parsed the declaration of arg1 so it definitely know the type of arg1. If it's really "allowed" I don't know, neither if it will work in the opposite direction (using decltype(arg2) for arg1). – Joachim Pileborg Mar 1 at 13:44
    
@JoachimPileborg of course, actual code has much more complex type for arg1, otherwise I would even think of trying to use decltype on it. – Ruslan Mar 1 at 13:59
    
FWIW, MSVC++2013 and its Intellisense (EDG) both accept it as well. – MSalters Mar 1 at 14:10
1  
The preferred way to match parameter arguments is through a template parameter (though that is not what the question is asking), though I think what you are proposing is valid. – callyalater Mar 1 at 14:13
1  
@callyalater But it's not a function template. OP wants a specific type for arg1, and that same type for arg2 (just that that type is apparently a PITA to spell) – Barry Mar 1 at 17:21
up vote 20 down vote accepted

This is fine. The ISO C++11 Standard even gives your situation as an example.

First the parameter is in scope:

3.3.3 Block scope [ basic.scope.local ]

2 The potential scope of a function parameter name (including one appearing in a lambda-declarator) or of a function-local predefined variable in a function definition (8.4) begins at its point of declaration.

An example can be found here:

8.3.5 Functions [ dcl.fct ]

5 [ Note: This transformation does not affect the types of the parameters. For example, int(*)(const int p, decltype(p)*) and int(*)(int, const int*) are identical types. — end note ]

share|improve this answer
    
Got a link?.321 – Aaron Hall Mar 1 at 19:18
3  
@AaronHall The C++11 Standaard is sold here: webstore.ansi.org/… but you can get a free draft (near identical?) by googling for "n3290.pdf". All drafts up to (but not including) the final are free. – Galik Mar 1 at 19:39

Yes, it's legal. It's basically just a question of scope. From [basic.scope.block]:

The potential scope of a function parameter name (including one appearing in a lambda-declarator) or of a function-local predefined variable in a function definition (8.4) begins at its point of declaration.

The scope of arg1 begins here:

void func(int arg1, decltype(arg1) arg2)
------------------^

Hence arg1 is in scope for the declaration of arg2. I think that's sufficient.

The rule for disallowing defaulting arg2 to arg1 is separate -- which to me suggests that arg1 was in scope and had to be explicitly disallowed.

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If we look in N3979 [dcl.fct.default] we have

Default arguments are evaluated each time the function is called. The order of evaluation of function arguments is unspecified. Consequently, parameters of a function shall not be used in a default argument, even if they are not evaluated. Parameters of a function declared before a default argument are in scope and can hide namespace and class member names. [ Example:

int a;
int f(int a, int b = a);              // error: parameter a
                                      // used as default argument
typedef int I;
int g(float I, int b = I(2));         // error: parameter I found
int h(int a, int b = sizeof(a));      // error, parameter a used
                                      // in default argument

[...]

Emphasis mine

So in the example a is known when we get to b and it hides the a from the calling scope. This leads me to believe each function parameter is known before each subsequent parameter. This means you should be able to use its type. You cannot use its value - as the order of evaluation of the values is unspecified - but the names should be introduced in order from left to right.

share|improve this answer
    
They're definitely in scope, but is that sufficient? – MSalters Mar 1 at 14:03
    
@MSalters to use them with decltype I think so. – NathanOliver Mar 1 at 14:04

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