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I don't know the array size when compiling so I declared a variable count and created an array arr[count][count], I will incrase this count variable while program is running and I will reallocate it's memory before doing that. But I couldn't create a function that takes this arr[count][count]. How can i do that ? When i did this like:

void add_friend(int friends[][*count], int p1, int p2)
{

}

compiler gives an error: count undeclared here.

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3  
The common pattern is passing the dimensions as parameters to the function. –  millimoose Jan 7 at 1:17
    
Actually, you only need the number of columns (unless you want to do bounds checking, in which case you also need rows). –  Scott Hunter Jan 7 at 1:22
    
You might want to have a look at this. –  kuroi neko Jan 7 at 1:46

5 Answers 5

You can't do what you are asking directly at least not in C. But as @millimoose suggests, if you know the dimensions (which can be passed as ints), you can do a little arithmetic to figure out where friends[p1][p2] is. If there are C elements per row, then you know that friends[r][0] is C*r ints from the start of friends, and can treat that row as a simple int array.

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This can be done directly in C, with variable-length arrays. –  Eric Postpischil Jan 7 at 1:41

Well, here is a way to do what you want with a 1 dimensional array in c/c++:

void ff(int *arr_2d, int s1, int s2)
{
    for(int i=0;i<s1;i++ )
    {
        for(int j=0;j<s2;j++ )
            printf("f[%d][%d] = %d\t",i,j, *(arr_2d+i*s2+j));

        printf("\n");
    }
}

And you can use this function as:

int *f = new int[100];
int s1,s2;
s1 = s2 = 10;
for(int i=0; i<s1; i++)
    for(int j=0; j<s2; j++)
        *(f+i*s2+j) = (i*s2+j);

ff(f,10,10);
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In C 1999 and in C 2011 implementations that support variable-length arrays, you can declare a function this way:

void add_friend(int count, int friends[][count], int p1, int p2) …
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The count should be accessible by friends, to do that you can either declare it as a global variable or as an argument of the function.

void add_friend(int count, int friends[][count], int p1, int p2)
{
    // ...
}

int main(void)
{
    int a[25][10];
    count = 10;
    add_friend(10, a);

    // ...        

    return 0;
}
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count does not need to be global; it just needs to be in scope when it is used. It suffices to declare it as a parameter before the array parameter that uses it. –  Eric Postpischil Jan 7 at 1:42
    
@EricPostpischil i just mensioned why he gets the undeclared variable error! –  rullof Jan 7 at 1:45

you can do it like:

1.void add_friend(int count, int friends[count][count], int p1, int p2)
2.void add_friend(int count, int friends[][count], int p1, int p2)
3.void add_friend(int count, int (*friends)[count], int p1, int p2)
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thanks for point,i will fix it –  Nibnat Jan 7 at 12:38

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