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I can do the following:

#define myInt(x) int* x = new int[5]

...

myInt(dog);

dog[1] = 3;
dog[2] = 5;

But I want something like:

#define myInt x  int* x = new int[5]

so I can do

myInt dog;

dog[1] = 3;
dog[2] = 5;

What is the proper way to set this up to remove the the function setup??

I was trying to understand how Visual C++ 2010 got away from using pointers in declaring a class... cMy *my = new cMy(); --> cMy my;

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7  
You don't. There's no reason for such a construct. –  GManNickG Jan 31 '12 at 8:34
1  
I don't think you can do that. You need to pass the arguments to an macro expansion in brackets. Also I would not recommend using macro expansion for something like that - this will probably lead to memory leaks and obscure code. –  Ivaylo Strandjev Jan 31 '12 at 8:37
2  
why not std::array<int,5> x;? –  justin Jan 31 '12 at 8:40
    
#define macros can't be proper. Exceptions arise only a few times in your whole career. –  phresnel Jan 31 '12 at 8:50
    
cMy my; creates a cMy on the stack, whereas new cMy allocates one on the heap. This is standard C++, not specific to Visual C++. –  James Hopkin Jan 31 '12 at 9:15

3 Answers 3

up vote 3 down vote accepted

You can't do this with a macro. You could do this:

typedef int myInt[5];

myInt dog;
dog[1] = 3;
dog[2] = 5;

But that means that dog is an array, not a pointer.

I'm not sure whether hiding an array type behind a typedef is a good idea, though.

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"I'm not sure whether hiding an array type behind a typedef is a good idea, though" - I think experience with va_list proves that it isn't. The reason it's a bad idea is that if someone uses myInt as a function parameter then they pretty much need to know whether or not it's an array type, because if it is then weird stuff happens (their function takes a pointer and loses the size information). Since they have to know that really it's an array, not just any old type, you're losing a lot of the benefit of a type alias since you only partly hide the underlying type. –  Steve Jessop Jan 31 '12 at 9:56

You can't. Macros always use parentheses for their parameters. What you are defining with your:

#define myInt x  int* x = new int[5]

is a replacement from myInt to x int* x = new int[5], and that's hardly what you want.

Stick with the first variant.

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Depending on what you want to do, you could also create a class and overload the subscript ([ ]) operator, for instance:

class myInt
{
private:
   int m_List[5];

public:
   int& operator[] (const int nIndex)
   {
     return m_List[nIndex];
   }
};

Then you could also write:

myInt dog;
dog[1] = 3;
dog[2] = 5;
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