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I have a struct wich has 2 dimentional array how can i refrence this array to another array when i create an object from it ? after this refrencing i want to change the values of res array by changing the value of array in the created object

#include <stdio.h>
#include <stdlib.h>

typedef struct{  
int result[10][10];  
}fun ;

int main()
{   
int res[10][10];  
fun *f;  
//my problem is in next line  
f->result = &res;  
exit(0);  
}
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closed as too localized by WhozCraig, Jonathan Leffler, Mark, Moritz Bunkus, Mario Dec 8 '12 at 22:01

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3  
C arrays are not assignable (since that doesn't make any sense). –  user529758 Dec 6 '12 at 20:52
    
"//my problem is in next line" Your immediate problem is dereferencing an indeterminate pointer because f was never assigned a valid address. Fix that, then your array-copy issue. –  WhozCraig Dec 6 '12 at 21:00

3 Answers 3

There are two problems here: 1. Like someone previously stated, you cannot assign arrays like that, you will have to either copy the array manually with for loops (this means changing one won't change the other) or make it a pointer instead (then they can share an array) 2. You did not actually allocate an object of type fun, you just created a pointer to it. You need to allocate one with something like

fun * fun = (fun*) malloc(sizeof(fun))
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You can't assign an array the way you did. I believe you will get what you want using:

memcpy(f->result, &res, sizeof(f->result));
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To start: why would you do this? I can't think of a good reason to have one array "reference" another's elements...

Anyway... The only way I can think of to reference elements as you're talking about from another array is to make an array of pointers and assign them one at a time.

int main()
{
    int d[5] = {1, 2, 3, 4, 5};
    int *c[5];

    c[0] = d;
    c[1] = d+1;
    //...

    *(c[1]) = 9;

    printf("%d %d %d\n", d[0], d[1], d[2]);
}

Gives:

1 9 3

You see how this could be applied to a n dimensional array if you really wanted to...

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