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Suppose I have a function, int function(int N, int c[N]){...}, taking as parameters an integer and an array. Suppose now I have a double array **c of size 'N times 2' and suppose, I want to apply the function function to one column of the double arrow, c[i][0], i varying from to N-1. How am I supposed to use this function. Does it looks like something like function(N,*c[0]) ?

Does anyone can help ?

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When you write "double array" I think you mean "two dimensional array". A double array is something entirely different. –  Mark Byers Aug 25 '12 at 16:10
    
Yes sorry, I tought it was the right term. I meant two dimensional array –  user1611830 Aug 25 '12 at 16:12
    
You should definitively read up on pointers and arrays in C. A two dimensional array and a pointer to pointer (your **c) completely different beasts and not compatible. –  Jens Gustedt Aug 25 '12 at 16:19
    
possible duplicate of Passing multidimensional arrays as function arguments in C –  user529758 Sep 22 '12 at 5:31
    
This is far too simple not to look up in a tutorial. And it also has been asked many times here. Voting to close. –  user529758 Sep 22 '12 at 5:32

2 Answers 2

up vote 1 down vote accepted

An array in C always decays to a pointer to its first element when passed into a function. This is good to know in some situations.

As an example, you could write

int list[10];
func (int *x) {
    int i;
    for (i = 0; i < 10; i++) {
         printf("%d", x[i]);
    }
 }

x[i] is really just syntactic sugar. In C, when you use bracket notation to access an element of an array, it gets converted to *(x + i), where x is the name of the array.

This works because of pointer arithmetic. If x is the name for an array of 10 integers, then the value of x in an expression is the address of the first integer of the array.

x + i will always point to the i-th element after x (C takes into account the size of the element type stored in the array, and increments the pointer accordingly).

Thus, when passing 2d arrays, the array decays to a pointer to its first element - which is an array.

A function signature taking a 2d array can be written as

func(int x[][columns] {
      ...
} 
// but could also be written as

func(int (*x)[columns]) {
    ...
}

which indicates that x is a pointer to an array of integers.

Sometimes you need to write a function to accept a 2 dimensional array where the width is not known until run time. In this case, you can pass a pointer to the [0][0] element and also pass the two dimensions, and then use pointer arithmetic to get the right element. For example,

print_2d_array (int *x, height, width) {
    int i, j;
       for (i = 0; i < height; i++) {
         for (j = 0; j < width; j++) {
            printf("%d", x[i * width + j]);
         }
     }
}

int list[10][10];
print_2d_array (&list[0][0], 10, 10);

would work for a dynamically allocated 2d array.

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Wow, really interesting, thanks !! –  user1611830 Aug 26 '12 at 11:05

In c langauge, for single dimentional array you no need to mention the size of the array in the function arguments while passing an array to that function.

If it is a single dimentional array

...
int a[10];
func(10, a);
...
void func(int size, int x[]) //no need to mention like int x[10]
{
    //here x is not an array. Its equivalent to int *
    printf("%d", sizeof(x)); // this will print 4 or 8 not 40
}

If it is 2D array

...
int a[10][5];
func (10, a);
...

void (int rows, int x[][5])   //here int x[][] is invalid
{

}
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Thanks interesting ! –  user1611830 Aug 25 '12 at 16:09
    
You are correct that you don't have to mention the N in the first dimension, but it can be considered being good practice to show the intention of the code. And also for fixed sizes there is the notation int x[static 10] that requires that the array that is passed through the pointer has at least 10 elements. –  Jens Gustedt Aug 25 '12 at 16:23
    
OK, in fact whta I did is not working. if I take the example below abd suppose I call the function 'function' : void function(int rows, int x[][5]), suppose now I call this function later on my code, in I put function(rows,x), where x is the 2D arry you mentionned, it doesn't work.... –  user1611830 Aug 25 '12 at 16:58
    
@user1611830 : 2D array is working for me. codepad.org/uNij4dkf Check this link i have executed my program. –  raja ashok Aug 25 '12 at 20:11

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