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Editorial Team
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Asked: 2026-05-31T09:00:32+00:00

I wrote a function which takes a pointer to an array to initialize its

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I wrote a function which takes a pointer to an array to initialize its values:

#define FIXED_SIZE 256
int Foo(int *pArray[FIXED_SIZE])
{
/*...*/
}

//Call:

int array[FIXED_SIZE];
Foo(&array);

And it doesn’t compile:

error C2664: ‘Foo’ : cannot convert parameter 1 from ‘int (*__w64 )[256]’ to ‘int *[]’

However, I hacked this together:

typedef int FixedArray[FIXED_SIZE];
int Foo(FixedArray *pArray)
{
/*...*/
}

//Call:

FixedArray array;
Foo(&array);

And it works. What am I missing in the first definition? I thought the two would be equivalent…

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1 Answer

  1. Editorial Team
    int Foo(int *pArray[FIXED_SIZE])
{
/*...*/
}

    In the first case, pArray is an array of pointers, not a pointer to an array.

    You need parentheses to use a pointer to an array:

    int Foo(int (*pArray)[FIXED_SIZE])

    You get this for free with the typedef (since it’s already a type, the * has a different meaning). Put differently, the typedef sort of comes with its own parentheses.

    Note: experience shows that in 99% of the cases where someone uses a pointer to an array, they could and should actually just use a pointer to the first element.

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