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what is the difference between following function declarations, which create and return the array in C/C++? Both methods create the array and fill it with proper values and returns true if everything passed.

bool getArray(int* array);
bool getArray(int* array[]);

Thanks

Best Regards, STeN

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How would the first one return a new array? Have you missed an asterisk when creating the question? –  Georg Fritzsche May 3 '10 at 4:56

4 Answers 4

up vote 3 down vote accepted

If it helps you to think about it you can remember that int foo[] is the same thing as int *foo at one level. So in your example the first is passed a pointer to an int while the second is passed a pointer to a pointer to an int.

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Just to clarify: int foo[] and int *foo are equivalent in the context of function parameters. –  jamesdlin May 3 '10 at 4:34
    
Hi, Thanks - this really help solving my problem. I am normally using only C++ or Objective-C with special container classes for everything and each time I am doing th pure C I fall in troubles for few days until I get on the right path:(( The right questing should be: What is the difference between <code>bool getArray(int** array);</code> and <code>bool getArray(int* array[]);</code> I think (hopefully correctly) there there is no difference... Thanks all you guys for help. Regards –  STeN May 3 '10 at 8:26

bool getArray(int *array); takes a pointer to an int as an argument (effectively an array of ints to fill). bool getArray(int *array[]);takes an array of int pointers. The first one is the one you want, though the caller will need to allocate a sufficiently large output array so getArray() can copy the array elements into it.

One way to understand C pointer/array declarations is to think of them as illustrating how to access the base type. int *array means that if you say *array, you'll get an int. int *array[] means if you say *array[x], you'll get an int. char (*array)[5][2][3] means if you say (*array)[0 thru 4][0 thru 1][0 thru 2], you'll get a char.

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If I were doing it, I'd probably do int *getArray() ;-) –  Joey Adams May 3 '10 at 4:45

On a side note, the code you posted is C++. There's no such thing as "C/C++"... What makes your prototypes recognizable as C++-conformant is the use of the data type "bool" for the functions' return types. Boolean variables aren't defined in C.

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"bool" was added to C in C99, although you have to #include <stdbool.h> to get it. –  Daniel Stutzbach May 3 '10 at 5:25

The second requires a pointer to an array. So if you the array is int *getme; then you call getArray(&getme);

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No, the second requires an array of pointers. A pointer to an array would be int (*array)[]. –  Joey Adams May 3 '10 at 4:23
    
Oops, that's right. Sorry, missed that one. –  anthony-arnold May 3 '10 at 4:56

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