22

How do I cast or convert an int* into an int[x]?

As an example I tried to cast pointer int* c = new int[x] to an array int b[2]

int b[2] = { 2, 3 };
int* c = new int[b[1]];

c[0] = b[0];
c[1] = b[1];
c[2] = a;

First of all, I know that I can loop through the pointer and array. Thus convert the pointer to an array with [] operators to index the pointer and array, assigning pointer elements to array elements as I iterate (eg. arr[i] = p[i]). I want to know if the same result can be achieved in fewer lines of code.

I tried to figure it out on my own, so I made a quick program to make sure I knew exactly what I am trying to put and where. The output is just below:

Address of {type: int} &a =             0031FEF4; a = 1
Address of {type: int[2]} &b =          0031FEE4; b = 0031FEE4
Address of {type: int[2]} &b[0] =       0031FEE4; b[0] = 2
Address of {type: int[2]} &b[1] =       0031FEE8; b[1] = 3
Address of {type: int*} &c =            0031FED8; c = 008428C8
Address of {type: int*} &c[0] =         008428C8; c[0] = 2
Address of {type: int*} &c[2] =         008428D0; c[2] = 1

Once I made sure I knew what was where I tried a few things. The first idea that came to mind was to get the address of the second element to the pointer's allocation, then replace the array's memory address with it (see the code just below). Everything I did try ultimately failed, usually with syntax errors.

This is what I tried. I really want this to work, since it would be the simplest solution.

b = &c[1];

This did not work obviously.

Edit: Solution: Don't do it! If it's necessary create a pointer to an array and then point to the array; this is pointless for any purposes I can fathom. For more detailed information see the answer by rodrigo below.

  • 4
    First, why would you need that ? Hint: int* and int [2] have different purposes (though the second one can decay into the first). – JBL Nov 18 '13 at 11:17
  • I am trying to simplify a file reading function. This is the concept I am grappling with in order to do said simplification. – Josh C Nov 18 '13 at 11:34
  • 2
    Things never get simpler with pointers-to-arrays. Just use plain pointers and sizes. – rodrigo Nov 18 '13 at 11:36
  • @rodrigo Things never get simpler with arrays. Just use std::vector – Caleth Jan 11 at 13:36
  • @Caleth Indeed! That was exactly my conclusion in my answer below ;-). – rodrigo Jan 11 at 14:41
27

First of all b is an array, not a pointer, so it is not assignable.

Also, you cannot cast anything to an array type. You can, however, cast to pointer-to-array. Note that in C and C++ pointer-to-arrays are rather uncommon. It is almost always better to use plain pointers, or pointer-to-pointers and avoid pointer-to-arrays.

Anyway, what you ask can be done, more or less:

int (*c)[2] = (int(*)[2])new int[2];

But a typedef will make it easier:

typedef int ai[2];
ai *c = (ai*)new int[2];

And to be safe, the delete should be done using the original type:

delete [](int*)c;

Which is nice if you do it just for fun. For real life, it is usually better to use std::vector.

  • So this is the only way to take a memory address and make it the start of an array? By changing the way I define said array; turning it into a pointer to an array and then casting to that? – Josh C Nov 18 '13 at 11:53
  • 5
    Actually the C way is to use the pointer as-is: remember that you can subscript a pointer just fine. The cast to pointer-to-array is mostly useless, except maybe in multi-dimension arrays. I mean, you can think of a int* as pointing to a single integer, or as pointing to the first of an array of integers. – rodrigo Nov 18 '13 at 11:54
  • 1
    This undefined behavior in C++. int* and int(*)[2] are two different pointer types. You are essentially doing an illegal reinterpret_case from one type to another and violating the strict aliasing rule. – ThomasMcLeod Oct 28 '18 at 3:22
  • @ThomasMcLeod No time to look it up in the standard, but I believe that an aggregate type and the type of its first element are not unrelated and that pointers to each can be cast between. – Peter A. Schneider Aug 20 at 12:23
  • @PeterA.Schneider § 6.9.2(4) of the C++17 standard: "An array object and its first element are not pointer-interconvertible, even though they have the same address." – ThomasMcLeod Aug 21 at 19:59
1

First of all casting pointer to C-style array it is a very bad practice in general.

But you can decay temporary array ("rvalue array") to address/pointer. Just write something like this

#include <stdio.h>

int main()
{
    int *array  = (int[2]){1, 2};
    printf("%d", array[0]); /* array[0] contains 1 now */

    return 0;
} 

Although I emphase again: when you doing so, you should have good reasons for such kind of tricks.

P.S. Code listed above valid only for C99/C11 not for modern C++ compilers.

  • You aren't casting a pointer to a C-style array as mentioned in your answer. You're decaying a temporary array to an address/pointer. A temporary array like this should not have an address in the first place, which must have been an oversight in older compilers. – Josh C Jan 10 at 22:48
  • @JoshC, thanks. I made correction according to your remark. – Twissell Jan 11 at 12:06
-2

To index an array via a pointer:

int* arr;
int x = arr[2];  // Pointers can be subscripted

Note, this is not casting, but often times is the simplest way to do what you really need.

  • This is lacking. The question was on casting/converting a pointer to an array, not using it like one. – Josh C Jul 7 '15 at 18:27
  • Thanks @JoshC. Edited the answer for clarification. – crizCraig Jul 7 '15 at 18:50

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