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I'm trying to make a program that will prompt the user for a command, then use exec to execute that command.

For instance if they gave me "ls -la" I would have to execute that command. I've tried the following code:

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

int main()
{

    int ret, num_args;

    printf("Enter number of arguments (Example: \"ls -la\" has 1 argument): ");
    scanf("%d", &num_args);

    char *cmd[num_args];

    printf("Enter command name: ");
    scanf("%s", &cmd[0]);

    int i;
    for (i = 0; i < num_args; i++)
    {
            printf("Enter parameter: ");
            scanf("%s", &cmd[i]);
    }

    execvp(cmd[0], cmd);
}

However, when I tried the following run it gave me a "segmentation fault"

$ ./a.out 
Enter number of arguments (Example: "ls -la" has 1 argument): 2
Enter command name: ls
Enter parameter: -la
Enter parameter: .
Segmentation fault
$

Any ideas?

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5 Answers 5

up vote 3 down vote accepted

If your implementation supports it you should use the safer getline() instead on scanf() or fgets(). getline() will safely handle long lines and NULL characters. It will allocate enough memory to fit the entire line. getline() can allocate memory so you will have to free it yourself later on.

Here is the glibc getline() documentation.

Here is a quick modification to use getline (It still needs work, error checking and I haven't fully checked it for correctness yet):

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

int main()
{

    printf("Enter number of arguments (Example: \"ls -la\" has 1 argument): \n");

    char *num = NULL;
    size_t sz = 0;
    getline(&num, &sz, stdin);

    int num_args;
    sscanf(num, "%d", &num_args);

    char *cmd[num_args+2];
    memset(cmd, 0, sizeof(char*) * (num_args+2));

    printf("Enter command name: \n");


    int len = getline(&cmd[0], &sz, stdin); 

    cmd[0][len-1] = '\0';

    int i;
    for (i = 1; i < num_args+1; i++)
    {
        printf("Enter parameter: \n");
        sz = 0;
        len = getline(&cmd[i], &sz, stdin);
        cmd[i][len-1] = '\0';
    }

    return execvp(cmd[0], cmd);

}
share|improve this answer
    
The compiler doesn't seem to know what getline is, is this because of a missing #include line or just the compiler itself? –  Nick Aug 24 '09 at 1:04
    
getline is a GNU function in C: gnu.org/s/libc/manual/html_node/Line-Input.html –  Andrew Keeton Aug 24 '09 at 1:07
    
What compiler and what Operating System? –  Karl Voigtland Aug 24 '09 at 1:07
    
i686-apple-darwin9-gcc-4.0.1 (OS X 10.5.8) –  Nick Aug 24 '09 at 1:08
    
Is it a linker error, or an implicit declaration warning? –  Karl Voigtland Aug 24 '09 at 1:13

You need to allocate memory for your strings. The following line only allocates num_args worth of pointers to char:

char *cmd[num_args];

First of all, you'll be getting num_args + 1 strings (don't forget that the command itself is cmd[0]). The easiest way is to statically allocate the memory as an array of character buffers:

const unsigned int MAX_LEN = 512; // Arbitrary number
char cmd[num_args + 1][MAX_LEN];

However, now you can't use scanf to read in a line because the user could input a string that's longer than your character buffer. Instead, you'll have to use fgets, which can limit the number of characters the user can input:

fgets(cmd[i], MAX_LEN, stdin);

Keep in mind that fgets also reads newline characters, so make sure to strip any stray ones that show up (but don't assume that they're there).

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Trying it that way gave me a bunch of compiler errors. It's saying cmd[num_arghs + 1][MAX_LEN]; isn't right: "syntax error before ';'" –  Nick Aug 24 '09 at 0:55
    
@Nick Double check your code; I wrote a little test program and it compiled fine for me. –  Andrew Keeton Aug 24 '09 at 1:06
    
Woops, I forgot a semicolon on the MAX_LEN = 512 line. Fixed now. –  Andrew Keeton Aug 24 '09 at 1:08
    
scanf can also limit the number of characters the user can input - use "%511s" if your buffer is of size 512, as in your example. –  caf Aug 24 '09 at 4:13
    
Oh, and if you do this you can't directly pass cmd to execvp anymore - it needs an array of pointers to char (terminated by a NULL entry), not an array of arrays of char (this is a good example of a case in which they're not equivalent). –  caf Aug 24 '09 at 4:17

Also, you need one more entry in the argv you pass to execvp, which has to be (char *)NULL to let it know that it's reached the end of the list.

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And another one for argv[0] which is the name of the command (normally). –  Jonathan Leffler Aug 25 '09 at 6:07

You haven't actually allocated any memory for the strings pointed to by the cmd array.

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1  
So how exactly would I do this? –  Nick Aug 24 '09 at 0:30
1  
Look up malloc/free and make sure each pointer in "cmd" is allocated enough space. –  Matthew Iselin Aug 24 '09 at 0:44

Take a look at the man page for scanf(). One of the neatest things it can do is automatically allocate the string buffers on the fly, you need to supply a pointer to a string instead of just passing the string and supply the %as format.

char *my_string;
scanf("%as", &my_string);

Then you don't need to bother with preallocating, don't need to bother with buffer overflows, etc. Just remember to free() it after you're done with it.

share|improve this answer
    
The '%as' specification is not standard C behaviour - useful though it may be. –  Jonathan Leffler Aug 25 '09 at 6:08

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