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I have an array of int pointers int* arr[MAX]; and I want to store its address in another variable. How do I define a pointer to an array of pointers? i.e.:

int* arr[MAX];
int (what here?) val = &arr;
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4 Answers 4

up vote 6 down vote accepted

Should just be:

int* array[SIZE];
int** val = array;  

There's no need to use an address-of operator on array since arrays decay into implicit pointers on the right-hand side of the assignment operator.

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But I want a pointer to array, not array itself. –  moteutsch May 25 '11 at 20:57
    
@moteustch Well, you got a pointer to the array's data, which is almost the same. –  Etienne de Martel May 25 '11 at 20:58
2  
Yes, val is a pointer to the array of int pointers (semantically speaking) ... if you dereferenced val, you'll end up with your array of pointers again, i.e., you can do (*val)[INDEX] . So since val is holding the address to the start of an array of int*, then it's a pointer to an array of pointers. –  Jason May 25 '11 at 21:01

The correct answer is:

int* arr[MAX];
int* (*pArr)[MAX] = &arr;

Or just:

        int* arr  [MAX];
typedef int* arr_t[MAX];

arr_t* pArr = &arr;

The last part reads as "pArr is a pointer to array of MAX elements of type pointer to int".

In C the size of array is stored in the type, not in the value. If you want this pointer to correctly handle pointer arithmetic on the arrays (in case you'd want to make a 2-D array out of those and use this pointer to iterate over it), you - often unfortunately - need to have the array size embedded in the pointer type.

Luckily, since C99 and VLAs (maybe even earlier than C99?) MAX can be specified in run-time, not compile time.

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IIRC, arrays are implicitly convertible to pointers, so it would be:

int ** val = arr;
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I believe that's going to throw and error in the complier for mis-matched type since arr is actually of type "array-of-pointers-to-int` rather than "pointer-to-int" –  Jason May 25 '11 at 20:53
    
Arrays ARE convertible to pointers... But not the other way round. And also Pointers-to-arrays are not implicitly convertible to pointers-to-pointers. Et cetera, et cetera. –  Kos May 25 '11 at 20:55
    
But if an array is convertible to a pointer wouldn't the original arr the same as int** arr? So &arr would be int ***, no? –  moteutsch May 25 '11 at 20:56
    
Damn, it's been a while since I've done C. –  Etienne de Martel May 25 '11 at 20:56
    
@moteutsch: No, because array is considered in the C-type system to be of type "array-of-int-pointers". Written out in C, that would be of type int* ()[]. Now if you took the &array, you'd end up with the C-type int* (*)[] which says that array is a pointer to an array of int*. This is NOT the same as int** or any other pointer-to-pointer type. For instance, if you added a value of 1 to a type of int* (*)[], you'd increment that pointer by the whole value of the array, where-as if you incremented a int** by 1, you'd only increment the size of a int pointer. –  Jason May 25 '11 at 21:12

As far as I know there is no specific type "array of integers" in c, thus it's impossible to have a specific pointer to it. The only thing you can do is to use a pointer to the int: int*, but you should take into account a size of int and your array length.

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int [] is an array of integers and it is different from int *, but will implicitly decay to int * when used as a function argument or in a context where pointer arithmetic is done. –  dmckee May 25 '11 at 20:53
    
C certainly has array types and they are not equal to pointer types, if that's what you're thinking. Try compiling int main() { int a[1] = {0}; int i; a = &i; return 0; } –  larsmans May 25 '11 at 20:54
    
Most important difference between array types and pointer types is how they respond to sizeof. –  Kos May 25 '11 at 21:02

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