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When passing an Array Argument to a Function, it's memory address is copied into an Array Parameter. Because of this:

  • sizeof() returns the size of the entire array for the Array Argument (inside caller)
  • sizeof() returns the size of a pointer for the Array Parameter (inside called Function)

My question is, what type is the Array Parameter inside the Function? And more specifically, what type is returned when using the & Operator on an Array Parameter? It's not a Pointer to Array of Type, nor is it a Pointer to Type, as shown in this code (labeled BAD):

void doSomething(int arrayParam[10]);

int main()
{
    int array[10] = { 0 };
    int (*arrayPtr)[] = &array;         // OK
    printf("%p\n", array);              // 0x7fff5fbff790
    doSomething(array);

    return 0;
}

void doSomething(int arrayParam[10])
{
    printf("%p\n", arrayParam);         // 0x7fff5fbff790

    int (*arrayPtr)[] = &arrayParam;    // BAD: Initialization from incompatible pointer type
    int * element0Ptr = &arrayParam;    // BAD: Initialization from incompatible pointer type

    element0Ptr = arrayParam;           // OK
    element0Ptr = &arrayParam[0];       // OK
}

Thanks for any help you can offer! :)

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1 Answer 1

up vote 3 down vote accepted

Most of the time, when you use an array, it decays to a pointer to its initial element. So, if you have:

void f(int* x);

int array[10];
int* initial_element_of_array = array; // array decays to a pointer to initial element
f(array);                              // same here

f() gets a pointer to the initial element of array.

Something that is rather confusing at first is that if a function has a parameter that is of an array type (like if you had void f(int x[])), this is actually converted such that it is exactly the same as void f(int* x). There is no difference between them: array type parameters are the same as pointer type parameters.

Once you pass an array to a function, all you have is a pointer to its initial element, so if you apply the & operator to the int*, you get an int** (a pointer to an int*).

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Awesome James, thanks for the super-clear answer! :) –  Dave Gallagher Nov 1 '10 at 18:42
    
Note this can get really horrible with things like typedef int foo[1]; void f(foo x); Now someone reasonable would expect &x to have type foo *, but it actually has an extra level of indirection (it's int ** instead of int (*)[1]). A very practical version of this problem arises with va_list, which is often defined as an array type... –  R.. Jun 9 '11 at 13:53
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