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i'm dealing with memcpy to copy one array into another: here is the code, (i gave also the declarations)

.... /* s is a struct with int *t_con_cust;  */
/* bad to use an equivalent name i guess ..*/
s.t_con_cust = malloc(nb_cust*sizeof(*s.t_con_cust));
int *t_con_cust = malloc(nb_cust*sizeof(*t_con_cust));
...    
t_con_cust[0] = 1;
memcpy(s.t_con_cust, t_con_cust, nb_cust*sizeof(int));

fprintf(stdout, "s.t_con_cust[0] -> %d \n", s.t_con_cust[0]);
t_con_cust[0] = 0;
fprintf(stdout, "s.t_con_cust[0] -> %d \n", s.t_con_cust[0]);

The execution gave me :

s.t_con_cust[0] -> 1

s.t_con_cust[0] -> 0

which is beyond me, because when I tried with "sample code" like that

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

typedef struct { 
    int *dest;
} lambda_struct;


int main(void) { 
    lambda_struct s;
    s.dest = malloc(10*sizeof(*s.dest)); 
    int *src  = malloc(10*sizeof(*src));
    int i;

    for(i = 0; i < 10; ++i) 
        src[i] = 1;

    memcpy(s.dest, src, 10);

    fprintf(stdout, "dest[0] -> %d \n", s.dest[0]);
    src[0] = 0;
    fprintf(stdout, "dest[0] -> %d \n", s.dest[0]);

    free(src);
    free(s.dest);

    return 0;
}

The execution give me the expected result, -> 1 and 1.

Any ideas ? Thanks

share|improve this question
    
Are you sure nb_cust is not 0 (or negative)? –  pmg Jan 22 '12 at 20:07
    
Could it be that at some point you assign s.t_con_cust to t_con_cust (or vice versa) and they start pointing to the same memory?.. –  mike.dld Jan 22 '12 at 20:10
    
Is there something in ... that could be changing one or both pointers? –  Michael Burr Jan 22 '12 at 20:12
    
The code you provide runs as expected. Your bug is somewhere else. –  Drew Dormann Jan 22 '12 at 20:19
    
Actually, yes.. I assigned t_con_cust == s.t_con_cust somewhere else in my code. So I was searching in the wrong way. Thanks for your help –  roro Jan 22 '12 at 20:23

1 Answer 1

up vote 2 down vote accepted

If this code

fprintf(stdout, "s.t_con_cust[0] -> %d \n", s.t_con_cust[0]);
t_con_cust[0] = 0;
fprintf(stdout, "s.t_con_cust[0] -> %d \n", s.t_con_cust[0]);

results in

s.t_con_cust[0] -> 1
s.t_con_cust[0] -> 0

then the only explanation that makes sense is that

t_con_cust == s.t_con_cust

If that condition was not true then how could assignment to t_con_cust[0] affect s.t_con_cust[0]?

I predict that when you test the two pointers for equality you will find that they are indeed equal. And then you just need to find the part of the code that assigns the two pointers to the same value.

share|improve this answer
    
indeed.. it was later in my (big) loop, so I didn't search in this way .. Thanks ! –  roro Jan 22 '12 at 20:17

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