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I have an API taking some options:

void init_api(const char* options[][2]);

I am allowed to pass a NULL pointer for no options, alternatively, an options array such as this can be passed:

const char* some_options[][2] = { {"opt1", "val1"}, 
                                  {"opt2", "val2"}, 
                                  {0,0} 
                                };

This works without problems:

...
init_api(some_options);
... or ...
init_api(NULL);
...

However, this fails to compile:

const char* my_options[][2] = NULL; // error C2440: 'initializing' : cannot convert from 'int' to 'const char *[][2]'
if(...) {
  my_options = some_options; // error C2440: '=' : cannot convert from 'const char *[4][2]' to 'const char *[][2]'
}
init_api(my_options); // no error here

What is going on here? Can someone explain this?

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4 Answers 4

up vote 3 down vote accepted

To declare an empty array of array of pointers to const char, you should use:

const char* my_options[][2] = {};

You need to declare a pointer to an array of pointers to const char instead. I recommend using a typedef to simplify the syntax.

typedef const char* array_of_two_cstring[2];
array_of_two_cstring* my_options = NULL;
if (...) {
    my_options = some_options;
}
init_api(my_options);

In C++ (it is herited from C), array can be implicitly converted to pointer (only once though, that is char[] is compatible with char* but char[][] is compatible with char*[] but not `char**). However, the variable cannot be reassigned. So here you need to use a pointer instead of an array.

The init_api option accepts NULL as a parameter because for the compiler, its prototype is void init_api(char const* (*)[2]) (the first array degenerated into a pointer), and NULL is a valid pointer.

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2  
Yes, but then how comes the function defined with this same definition accepts NULL values? This is the user's question I guess. –  Rafid Jan 13 '11 at 9:49
    
Updated my answer to explains what the OP issue is and what is the correct syntax to use. –  Sylvain Defresne Jan 13 '11 at 10:02

The compiler must know the array size.

If you omit the size of the array (ie: using []) you need to initialize the array with the definition, in order to let the compiler count how many items that array will contain.

Moreover you are assigning a pointer (NULL) to an array: const char *x[][2] is an array of two pointers to const char.


Edit:

In C++ (as in C), arrays can decay into pointers when you use them (with three exceptions which are not interesting here).

When you pass an array to a function expecting an array, what happens is that you actually pass a pointer to the array, since the array decays; you cannot pass an array by value in C or C++.

For this reason you can pass NULL to your function; the function parameter will be NULL, and if you try to access the array within your function (options[0]) your application will crash: you'll be dereferencing an invalid pointer.

You cannot however set your array variable to NULL, since it's not a pointer, it's an array: it will only decay when you'll use it in an expression.

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That still doesn't answer the user's question I believe. What you all said is true, but no body explained why the compiler (apparently MSVC) accept NULL to be passed for init_api while it basically has the same definition as the other one which the compiler is not accepting NULL for it. –  Rafid Jan 13 '11 at 9:55
    
You're right, will edit my answer –  peoro Jan 13 '11 at 10:01
    
Hmmm... I never knew that! Thanks for the answer. –  Rafid Jan 13 '11 at 10:12
const char* options[][2]  

is an array of const char* pointers. You can't assign a pointer to an array.

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Why? It's just a pointer underneath. And it can be NULL when used as a function parameter. –  Martin Ba Jan 13 '11 at 9:54
    
@Martin - False. Arrays decay to pointers, but a pointer to an array is by definition never NULL. –  Chris Lutz Jan 13 '11 at 9:58
    
@Chris: what exactly is false about the fact that I can pass NULL to a function taking an argument of T[][2] ?? –  Martin Ba Jan 13 '11 at 10:06
1  
@Martin - Nothing. What's false is that an array is a pointer underneath. In func(int arr[N]), arr is a pointer, but in func() { int arr[N]; }, arr is not. You can't assign anything to an array, nor can you initialize one to NULL. You can initialize the elements to NULL if that's what you want to do, but not the array itself in your main function. –  Chris Lutz Jan 13 '11 at 10:18
    
@Chris: See. That nearly would have been a good answer by itself. :-) –  Martin Ba Jan 13 '11 at 10:29

A parameter declared as being an array of type T[N] or T[] becomes actually a parameter of type T*. Same is done for functions (a parameter declared as R(Params) becomes actually a parameter of type R(*)(Params...)).

Such transformation however is not done for other declarations. The reason it's done for function by-value parameters is that there is no way in C to actually copy an array directly (that is, to actually copy its contents) and it doesn't make sense to try and copy a function either, so such parameters are transformed in a way that conveys their purpose in a meaningful way.

So while you are initializing a pointer in the function parameter case, you are trying to initialize an array in the other case.

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