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int (*p) [4] ;

Is "p" pointer to array of 4 integers ?? or what ??

and How can I call "new" for this pointer ??

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As you can see from the answer below. This king of type declaration is confusing and non intuitive and as such best avoided (unless you want to add excessive comments). If you use other constructs you can achieve the same results in a more readable way (such as std::vector<> or boost::array) –  Loki Astari Aug 1 '10 at 17:41
    
@Martin: std::vector<> is an entirely different animal than int (*p)[4]! –  Seth Aug 1 '10 at 17:58
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@Seth: But int (*p)[4] is probably better replaced by a two-dimensional std::vector<std::vector<int> > or a one-dimensional std::vector<int> with manual indexing arithmetic or a boost::multi_array<int, 2>. –  fredoverflow Aug 1 '10 at 18:02
    
@Martin York , @FredOverflow : thanks for your answers but I amn't using this Array to store data in my project . but there is a doctor in our university like this kind of Question very much :( , Althogh its confusing :( –  Farah_online Aug 2 '10 at 13:36

3 Answers 3

up vote 8 down vote accepted

Is "p" pointer to array of 4 integers?

Correct!

How can I call "new" for this pointer?

For example, p = new int[7][4].

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3  
Err.. was +1 until the edit. new int[7][4] gives you a single block 28 ints wide. –  Billy ONeal Aug 1 '10 at 17:18
    
humm .. so that I think p is pointer to 4 pointers of integer each of them points to array of 4 integers , it's right ?? –  Farah_online Aug 1 '10 at 17:20
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@Billy: There is nothing wrong with my example. The type of new int[7][4] is int (*)[4]. Maybe it's more obvious with a typedef? typedef int row[4]; row *p = new row[7]; This is exactly equivalent to my code, just more readable. Would you argue that this is wrong as well? –  fredoverflow Aug 1 '10 at 17:22
    
@Farah: No, it's not a pointer to 4 pointers to integer, it's actually a pointer to 4 integers. Remember that a pointer can point to a single element of an array (just as a char* can point to a character of a C string). –  fredoverflow Aug 1 '10 at 17:26
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@Billy: Welcome to C declarator syntax hell ;-) The best reference I could find was 5.3.4 (§5 and §6). –  fredoverflow Aug 1 '10 at 17:33

int (*p)[4] is, indeed, a pointer to an array of four ints.

You can dynamically allocat an object of type "pointer to array of four int" as follows.

int (**ptr)[4] = new (int (*)[4]);

Note, no space for any ints is allocated; only the pointer itself.

You can allocated an array of 4 ints as follows:

int *ptr = new int[4];

What you can't do (without explicit casting) is assign a pointer to a dynamically allocated array of 4 int to a pointer of type int (*)[4]. Whenever you allocate an array via new, even if you use a typedef, the type of the new expression is a pointer to the first element of the array; the size of the array is not retained in the type of the new expression.

This is because new[] expressions can allocate arrays where the size of the array is chosen at runtime so would not always be possible (or even desirable) to encode the array size into the type of the new expression.

As has been suggested, you can dynamically allocate an array of one array of 4 int. The size of the first array is lost from the type information and what you get is a pointer to the first element of the array (of size 1) of the arrays of four int.

int (*p)[4] = new int[1][4];

Even though it is an array of just 1 (arrays of 4 int), you still need to use delete[] to deallocate p.

delete[] p;
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2  
Of course one should never actually be a position to need to call delete manually. –  GManNickG Aug 1 '10 at 21:16
    
well , what about int (*p)[4] = new int[4][4] ... dow can I call delet on it ?? I try : for (int i=0;i<4;i++) delete[] p[i] ; delete[] p ; but it doesn't work :( –  Farah_online Aug 2 '10 at 13:39
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@Farah_online: It doesn't matter what size the array is, you always delete arrays with delete[] p; So p = new int[1][4]; ... delete[] p and p = new int [4][4]; ... delete[] p. Calling delete on an array member (delete[] p[i] or delete p[i]) is not valid. –  Charles Bailey Aug 2 '10 at 15:30
    
+1 for the size of the array is chosen at runtime so would not always be possible (or even desirable) to encode the array size into the type of the new expression.. –  legends2k Sep 29 '14 at 15:33

The online CDECL evaluator is a helpful resource for questions like this:


cdecl

C gibberish ↔ English

int (*p)[4];

    declare p as pointer to array 4 of int
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+1 That's pretty cool! –  fredoverflow Aug 1 '10 at 18:00
    
...except that int (*p)[4]; doesn't declare p, but defines it. (At least it is in C++, which this question is about. As Johannes once pointed out, in some areas C and C++ differ in what's a definition and what's a declaration.) –  sbi Aug 1 '10 at 18:27
    
@sbi: Okay, but every definition is also a declaration ;) "C declarator syntax" is a well-accepted term. –  fredoverflow Aug 1 '10 at 18:29
    
@FredOverflow; In C and C++, every definition is also a statement. Still, people rarely ever confuse "definition" and "statement", but confuse "definition" and "declaration" all the time. –  sbi Aug 1 '10 at 18:34
    
@sbi: I'm pretty sure the definition int foo() { return 42; } is not a statement ;) –  fredoverflow Aug 1 '10 at 18:45

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