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I implemented a generic quick sort and now I want to accept the array from command line. Following is a function that is supposed to copy character pointers from array argv to base. I am getting segmentation fault. The copy is working fine when I pass address of two integers.

#include<stdio.h>

void copy(void *src, void *dest, int size)
{
    char *s, *d;
    int i;

    s = src;
    d = dest;

    for(i = 0; i < size; i++)
        d[i] = s[i];
}

int main(int argc, char *argv[])
{
    void *base;
    int i = 10;
    int j = 20;

    printf("%d, %d\n", i, j);
    copy(&i, &j, sizeof(int));
    printf("%d, %d\n", i, j);

    copy(argv, base, sizeof(char *));

    return 0;
}

Output

10, 20
10, 10
Segmentation fault (core dumped)
share|improve this question
1  
Base has no space allocated for it... you're trying to squeeze all of argv into nothing. You need to malloc. –  George Mitchell Sep 19 '13 at 14:08

4 Answers 4

argv is a pointer array. If you just want to copy the pointers you can do it like that:

 base = calloc( argc, sizeof(char *) );
 copy( argv, base, argc * sizeof(char *) );

Now you have copy of the pointer array argv, but that still contains pointers to the original arguments argv[i]. If you want to create copies of argv[i] too, dont use copy() but:

 char **base = calloc( argc, sizeof(char *) );
 int  i;

 for( i=0; i<argc; i++ )
     base[i] = strdup( argv[i] );

But remember: argv[0] is the program's name and I would bet you don't want that to be part of the array. To avoid it:

 base = calloc( argc-1, sizeof(char *) );
 copy( argv+1, base, (argc-1) * sizeof(char *) );

or

 char **base = calloc( argc, sizeof(char *) );
 int  i;

 for( i=1; i<argc; i++ )
     base[i-1] = strdup( argv[i] );
share|improve this answer

You are trying to copy sizeof(char*) bytes to where base is pointing to. But you did not allocate any memory to base so the program invokes undefined behaviour.

share|improve this answer
void *base = malloc(strlen(argv[0])+1);

then

copy(argv[0], base, strlen(argv[0])+1);

at the end

free(base);

sizeof(char*) will return a size of a single pointer, not the whole path

Edit:

void *base;
int i;

if (argc>0)
{
   base = malloc(argc+1);// we have enough pointers for copying args (+1 to null terminat it)

   for(i=0; i < argc; i++)
   {
      base[i] = malloc(strlen(argv[i])+1);
      copy(argv[i], base[i], strlen(argv[i])+1);
   }
   base[i] = NULL;
}

base will be a double pointer holding all arguments

you may do memset(...) and memcopy(...) btw

share|improve this answer
    
using strlen(argv[0]) will effectively get you the name of your program, not the arguments following (from argv[1] to argv[argc-1]). –  George Mitchell Sep 19 '13 at 14:27
    
you just like to downvote everyone, plus he want to test the copying function he made. argv[0] has a pinter to a string with the application name. I didnt care of your assumption -> "argv[1] to argv[argc-1]" –  aah134 Sep 19 '13 at 14:31
1  
"I want to accept the array from command line.", "...is supposed to copy character pointers from array argv to base". He already tested his copy function with the int swapping (and it is also trivial to check its correctness). "you just like to downvote everyone": you're aware that a downvote on an answer costs rep, right? Your answer and John's answer are incorrect with respect to the OP. Edit to correct or clarify your answer and I will remove the downvote. In all actuality, I give upvotes more freely than I give downvotes :p (the ratio is about 1:4 downvotes to upvotes) –  George Mitchell Sep 19 '13 at 14:45
    
ok thanks, I am just answering one part of the problem, which is allocating memory for a copy to not get a memory fault. –  aah134 Sep 19 '13 at 14:49
1  
and a typo I've seen just now: in base[i] = malloc(strlen(argv[0])+1); it must be argv[i] of course –  Ingo Leonhardt Sep 19 '13 at 15:21

Argv is not a single pointer, its a double pointer,

you should be doing like this:

base = calloc(1, sizeof(char *));
copy(argv[1], base, sizeof(char *));

if you really want to copy the full argv, you have to replace the sizeof(char *) with strlen(argv[0]) and have to allocate base with the length of the argv[0].

share|improve this answer
1  
using strlen(argv[0]) will effectively get you the name of your program, not the arguments following (from argv[1] to argv[argc-1]). –  George Mitchell Sep 19 '13 at 14:19
    
you are correct, i was wrong! thanks for spotting it –  John Sep 19 '13 at 17:00

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