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In C++, I have been told that Foo** foo; is a pointer to a pointer and also an array of arrays?

Would someone elaborate on why it is an array of arrays or how it could be construed as such?

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7  
Pointers are not arrays, they can just be used like one. –  chris Jun 18 '12 at 19:24
    
How is Foo** an array of arrays? It is not. –  David Rodríguez - dribeas Jun 18 '12 at 19:57

4 Answers 4

It's not really an array of arrays. However, you can access the individual elements with the same syntax as you would a real 2D array.

int x[5][7];   // A real 2D array

// Dynamically-allocated memory, accessed through pointer to pointer
// (remember that all of this needs to be deallocated with symmetric delete[] at some point)
int **y = new int*[5];
for (int i = 0; i < 7; i++) {
    y[i] = new int[7];
}

// Both can be accessed with the same syntax
x[3][4] = 42;
y[3][4] = 42;

// But they're not identical.  For example:

void my_function(int **p) { /* ... blah ... */ }

my_function(x);  // Compiler error!
my_function(y);  // Fine

There are plenty of other subtleties. For more in-depth discussion, I strongly suggest reading through all of the section of the C FAQ on this topic: Arrays and pointers (pretty much all of it is equally valid in C++).

However, in C++, there is usually very little reason to use raw pointers like this. Most of your needs can be handled better with container classes, such as std::vector, std::array or boost::multi_array.

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And boost::multi_array –  Mooing Duck Jun 18 '12 at 19:35
    
@MooingDuck: Indeed. Thanks! –  Oliver Charlesworth Jun 18 '12 at 19:39
    
For every new there should be a delete! :) Never can say this my students enough. :) –  aoeu Jun 18 '12 at 19:47

It's not the array of arrays but you can construct Foo** as array of arrays in the following way:

Foo** arr = new Foo*[height];
for (int i = 0; i < height; ++i)
    arr[i] = new Foo[width]; // in case of Foo has default constructor

To access individual elements you can use

arr[i][j].some_method();

Also it can be just pointer to pointer of type Foo.

Foo* fooPointer = &fooInstance;
Foo** fooPointerPointer = &fooPointer;
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What syntax would you use to access individual elements of arr? –  Paul Jun 18 '12 at 19:27
    
@Paul just as to 2d array (name[index1][index2]) - i've updated the answer –  Ribtoks Jun 18 '12 at 19:29

It's not an array of arrays - pointers are not arrays and hence pointers to pointers are not arrays to arrays.

They can be similarly indexed into to store and retrieve information though...and thus functionally they act a lot like an array would.

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Simple answer: In C++ a (variable sized, i.e. no fixed size like int[5]) array is simply a pointer to the first element of that array. Therefore, the compiler cannot distinguish if a pointer points to the beginning of an array or to a single instance. So, the compiler always allows you to treat a pointer as an array. If however, the pointer does not point to a memory block that is large enough to be used as an array, using it as such will result in some kind of memory failure (segmentation fault or silent failure).

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