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Can anyone explain what variably modified type is?

If we have an array a[n] n is not know at compile time then a is a VLA. b[c][d] c and d are not known until runtime => b is VLA right?

In my book they have said that variably modified type contains VLA. Thats it nothing more.

How do i create a pointer of type variably modified type?

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2 Answers 2

up vote 4 down vote accepted

A variably-modified type is a VLA (variable length array). There's a similar type in a structure with a flexible array member, but I don't plan to discuss flexible array members further.

The key point about a VLA is that the dimension of an array is not known until run-time. Classically, in C89 and before the standard, all dimensions of an array except the first had to be a known constant value at compile time (and the first dimension could be specified as int a[] or int b[][SIZE] or int c[][SIZE1][SIZE2] where the sizes are constants).

void some_function(int n)
{
    int a[n];
    int c = n+1;
    int d = n+2;
    int b[c][d];
    another_function(n, a, c, d, b);
    ...
}

void another_function(int n, int a[n], int c, int d, int b[c][d])
{
    ...
}

Both a and b are variable length arrays. Prior to C99, you could not have written some_function() like that; the size of the arrays would have to be known at compile time as compile-time constants. Similarly, the notation for another_function() would not have been legal before C99.

You could, and still can (for reasons of backwards compatibility, if nothing else) write a moderate simulation of another_function():

enum { FIXED_SIZE = 32 };

void yet_another_function(int a[], int n, int b[][FIXED_SIZE], int c)
{
    ...
}

This isn't a perfect simulation because the FIXED_SIZE is a fixed size, but the pure C99 VLA code has a variable dimension there. Old code would often, therefore, use a FIXED_SIZE that was large enough for the worst case.

Inside another_function(), the names a and b are basically pointers to variably modified types.

Otherwise, you do it the same as for a fixed size array:

int z[FIXED_SIZE];
int (*z_pointer)[FIXED_SIZE] = &z;

int v[n];
int (*v_pointer)[n] = &v;
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1  
A structure with a flexible array member is not a variably modified type. See N1570 6.7.6p3 for the definition. –  Keith Thompson May 7 at 22:10
1  
OK; I'd not checked -- modified to match your comment. Thanks! –  Jonathan Leffler May 7 at 22:13

VLA == Variable Length Array

Variable Length Arrays were introduced in the C99 spec to allow for things like this:

int someArraySize;
int myArray[someArraySize];

Variably Modified type is the type of a Variable Length Array. Thus, a Variably Modified type CONTAINS a VLA. In the case of your example of b[c][d] where c and d are not known until run time, b is a Variably Modified type that happens to be a Variable Length multi-dimensional array. b[c][d] is a variable length array of variable length arrays-- phew, what a mouthful.

Here is a great source I found that describes these VLAs and the Variably Modified type with examples:

http://gustedt.wordpress.com/2011/01/09/dont-be-afraid-of-variably-modified-types/

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