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Could someone please explain how to correctly allocate memory for for a pointer to an array of pointer of characters in c? For example:

char *(*t)[];

I try to do it like this:

*t = malloc( 5 * sizeof(char*));

This gives me a compile error:

error: invalid use of array with unspecified bounds

Any assistance on this would be great! Thanks

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Think of the array as a pointer as well - so you end up allocating memory for pointer to a pointer. ie allocate space for the array of pointers then allocate each 'string' in turn – Adrian Cornish Jan 20 '12 at 4:40
up vote 3 down vote accepted

What you can do is:

char **t = (char**)malloc( <no of elements> * sizeof(char*));

That allocates the array of pointers.

for (i = 0 ; i< <no of elements> ; i++)
{
    t[i] = (char*)malloc( <length of text> * sizeof(char));
}

That allocates memory for the text that each element of the array points to.

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I think this is more along the lines of what I am trying to do, however coding it gives me an error. wouldn't it be: (*t)[i] = malloc( <length of text> * sizeof(char); Which, please correct me If I am wrong but is saying allocate space for an array of pointers at the address t points to. – icedTea Jan 20 '12 at 16:48
    
I think you should add the definition of t to complete your example. – Dusty Campbell Jan 20 '12 at 19:22
    
@DustyCampbell Have edited my answer. It wasn't complete and i had left out the type-casting and the definition of t. Thank you – Jan S Jan 24 '12 at 6:50

When people say "a pointer to an array of X", usually they really mean a pointer to the first element of an array of X. Pointer-to-array types are very clunky to use in C, and usually only come up in multi-dimensional array usage.

With that said, the type you want is simply char **:

char **t = malloc(num_elems * sizeof *t);

Using a pointer-to-array type, it would look like:

char *(*t)[num_elems] = malloc(sizeof *t);

Note that this will be a C99 variable-length array type unless num_elems is an integer constant expression in the formal sense of the term.

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The second statement "char (*t)[num_elems] = malloc(sizeof *t)" doesn't seem to make sense to me, could u explain it further. When you dereference the memory for the allocation, it wouldn't return the memory space allocated with num_elements. What effect does is have by using that extra syntax? – rubixibuc Jan 20 '12 at 5:04
    
What do you mean by "when you dereference the memory for the allocation"? There's no dereferencing in any of the code I gave. – R.. Jan 20 '12 at 5:19
    
Oh, there is one mistake I'll fix right now. – R.. Jan 20 '12 at 5:20
    
I still don't understand why you would allocated memory in this way :-(, Why would u say char *(*t)[num_elems] dereferencing aside. – rubixibuc Jan 20 '12 at 5:39
    
sizeof is an operator and doesn't it need a parenthesis after it? sizeof ( type-name ). – dicaprio Jan 20 '12 at 5:41

Well it depends how you want it to be allocated, but here is one way.

char** myPointer = malloc(sizeof(char *) * number_Of_char_pointers)
int i;
for(i = 0; i <  number_Of_char_pointers; i++)
{
     myPointer[i] = malloc(sizeof(char) * number_of_chars);
}

something to note is that myPointer[i] is almost exactly identical to saying *(myPointer + i), when being used to dereference a variable, not during initialization.

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Try this:

int main()
{
    char** a = new char* [100];
    delete []a;
    return 0;
}
share|improve this answer
1  
-1 for void main, and another -1 for a C++ answer to a C question, if I could... – R.. Jan 20 '12 at 4:47

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