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I tried everything and from what I understood, this code is correct but it still gives my Segmentation Fault. Help?

#include <stdio.h>
#include<malloc.h>

void da(int ***array, int row, int col){
    int i;
    *array=(int **)malloc(sizeof(int *)*row);
    for (i=0; i<row; i++)
        *array[i]=(int *)malloc(sizeof(int)*col);   
}

main(){
    int **array;
    int i,n,m;
    printf("Input number of rows: ");
    scanf("%d",&n);
    printf("Input number of columns: ");
    scanf("%d",&m);
    da(&array,n,m);
    for (i=0; i<n; i++)
        free(array[i]);
    free(array);
}
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Where does it segfault? What have you tried so far to fix it? –  Tim Kemp Jul 7 '11 at 15:04
    
Don't cast the return value of malloc. Casting is, at best, redundant and (as in your code) may hide errors; namely the failure to include the header where malloc is declared making the compiler assume the return type is int instead of void*. –  pmg Jul 7 '11 at 15:14

2 Answers 2

Operator [] has more priority than operator *. Put brackets on: (*array)[i]=(int *)malloc(sizeof(int)*col);

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The code seems OK. My guess is that one of the mallocs is failing (return NULL) since you are not checking the response. The the free on NULL obviously fails. This could be a matter of memory left. What numbers for rows and columns are you using?

Other advice. This code is overcomplicated. Since you are creating a regular matrix, it is simpler and more efficient to create a single dimension array.

void da(int **array, int row, int col){
    int i;
    *array=(int *)malloc(sizeof(int)*row*col);
    return; }
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