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I don't quite understand where the error is here:

int *parr[22];  // Array of int* pointers
parr[0] = ptr1;
parr[1] = ptr2;
//... 

int *(*pparr)[22]; // A pointer to a int* array[22]
pparr = parr; // ERROR

the error tells me error C2440: '=' : cannot convert from 'int *[22]' to 'int *(*)[22]'

how come that the types are not equal? The name of the array should be equal to a reference to the first element of the array, something like

parr => &parr[0]

so the line seems right to me

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1  
You want stackoverflow.com/a/6130884/315052 –  jxh Nov 10 '12 at 13:17
    
Must be pparr = &parr; for the types to be compatible. –  Daniel Fischer Nov 10 '12 at 13:17

3 Answers 3

up vote 1 down vote accepted

As pparr is A pointer to a int* array[22] so you need to write

pparr = &parr;

You need to store address in the pointer and not the pointer itself.

It is same like when you have

int a=3;
int *b;
b=&a;

You are storing address of a in b, similarly you need to store address of parr in pparr

EDIT: To clarify OP's comment

You can't assign the address of the first element, but the address of the pointer that is pointing to first element.(therefore pparr = &parr;)

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Yes but the name of the array should be equal to a reference to the first element of the array, so I should already have the address –  Johnny Pauling Nov 10 '12 at 13:27
    
ya thats why we are not writing pparr = &parr[0] we are writing pparr=&parr –  Ankur Nov 10 '12 at 13:57

An int*[22] can decay to an int**, but you cannot assign an int** to an int*(*)[22].

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int *(*pparr)[22];  //This one is an array of function-pointers returning an int pointer. 

int **pptr;  //Points to an array of pointer

So you can write

pptr = parr;
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