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I need the arguments that were passed to my process when it was started. This means, of argv[] i need all but the first (which is my proccess' name).

I am having trouble copying it, because of it being type char * argv[]. Can anyone give me the gist of how to do it properly, or perhaps a small code snippet. I'd prefer that to banging my head on the wall.

Thanks,

EDIT: Clarifying my problem:

The key thing is I need all but the first argument of argv. So i can't just send it off to other processes, as I am actually using it as an argument to execv.

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Then just pass argv + 1 to execv. That is the array of arguments minus the first. –  fizzer Mar 5 '11 at 21:36
    
execv takes the same argument list, including argv[0]. The only reason you would need to copy it is if you need to change argv[0]. –  Jim Balter Mar 5 '11 at 21:37
    
@fizzer That's wrong -- execv needs the 0th argument. –  Jim Balter Mar 5 '11 at 21:39
    
Hmmm - on reflection, he can't assume argv ends with a null pointer, as required by execv –  fizzer Mar 5 '11 at 21:40
    
Yes - he needs to make a copy. –  fizzer Mar 5 '11 at 21:41
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8 Answers

up vote 1 down vote accepted

You wrote in a comment "My first program would have the argument list 'pname otherpname -arg1 -arg2 -arg3', and I want to use execv to call otherpname with -arg1 -arg2 -arg3." In that case, the argument list you want to pass to execv is [otherpname -arg1 -arg2 -arg3] ... the argument list passed to execv is exactly what otherpname's main routine will see as argv, and it must include argv[0] which is conventionally the program name. Conveniently, that list is exactly what argv + 1 points to ... no need to copy anything.

[edit] However, you do have the problem of what to pass to execv as its first argument -- the file name of the program to exec. Either otherpname needs to be a fully qualified path or you should use execvp, which searches PATH for the program.

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I appreciate all the help (seriously,you've been helping for almost an hour). You right, the trick was using execvp. I think my biggest hurdle was realizing that regardless of which part of argv i point to, it contains the rest of the list. So argv+5 contains all arguments after 5. Thanks. –  Blackbinary Mar 5 '11 at 22:30
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There's no point copying the strings - they will persist for the lifetime of the program and you aren't allowed to modify them. Just pass argc and argv around to whoever needs them, or copy them to global variables.

#include <stdio.h>

int myargc;
char **myargv;

void print_args()
{
    int i;
    for (i = 1; i < myargc; ++i) {
        puts(myargv[i]);
    }
}    


int main(int argc, char **argv)
{
    myargc = argc;
    myargv = argv;

    print_args();

    return 0;
}    
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Note that argv is a char **, if necessary you could just store the argv pointer to a global variable of this type.

Otherwise, to copy it you need to allocate an array and copy the pointers. If you don't need to copy the strings themselves too, something like this should work:

char **copy_of_argv = malloc(sizeof(char *) * (argc-1));
memcpy(copy_of_argv, argv + 1, sizeof(char *) * (argc - 1));

(although you may or may not want to allocate an extra slot in copy_of_argv for a terminiating NULL pointer as a sentinel).

If you need to copy the strings too for some unknown reason, it's a little more complicated:

int i;
char **copy_of_argv = malloc(sizeof(char *) * (argc-1));
for (i = 0; i < argc - 1; i++) {
    copy_of_argv[i] = strdup(argv[i + 1]);
}

(again, you may want to allocate an extra slot for a sentinel).

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I did this: pastebin.com/UAeRuS10 But i get a segfault on the memcopy :(. Any ideas why? –  Blackbinary Mar 5 '11 at 21:48
    
For one, you are probably accessing beyond the end of argv unless nArgs is less than argc-5. For another, you forgot the parentheses in the malloc, so you wound up allocating space for nArgs char *s plus 1 byte rather than space for (nAgrs+1) char *s. And for a third, to set args[nArgs+1] you would have to malloc at least sizeof(char *)*(nArgs+2) bytes. –  Anomie Mar 5 '11 at 22:05
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If you want to access one of the argv strings do this:

printf("%s", argv[0]);

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What exactly you need to do with the arguments?

arg1, arg[2], arg[3]... etc are simple C strings (char*).

If you need to copy them to another array, you can use strcpy function (e.g. strcpy(destination,arg[1]), but since the values of the parameters are not going to change, you most likely do not have to copy it.

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If you want a modifyable copy of the arguments do this:

    #include <stdio.h>

    void main(int argc, char** argv) {
            int myargc = argc;
            char** myargv = malloc( (argc-1)*sizeof(void*));
            int i;
            for(i=1; i<argc; i++) {
                    int len = strlen(argv[i]);
                    myargv[i-1] = malloc(len+1);
                    memcpy(myargv[i-1], argv[i], len);
            }               
            getch();
    }
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For execv, something like this, then

#include <stdlib.h>
#include <unistd.h>

int main(int argc, char **argv)
{
    int i;
    char** myargs;

    if (argc <= 0)
    {
        return EXIT_FAILURE;
    }

    myargs = malloc(sizeof *myargs * (argc + 1));

    myargs[0] = "your_program_name_here"; 
    for (i = 1; i < argc; ++i)
    {
        myargs[i] = argv[i];
    }
    myargs[argc] = 0;
    execv("/your/program/here", myargs);
    return EXIT_FAILURE;
}
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Interesting that you should say :

The key thing is I need all but the first argument of argv. So i can't just send it off to other processes, as I am actually using it as an argument to execv

This sounds a lot like what I am doing where I want to set LD_LIBRARY_PATH and then run a binary using my own copy of ld.so so that no default system shared libraries are used at all. The arg to execve is my copy of ld.so but once the real binary starts I want its argv to look normal (and environ). Here's how I did it on Linux:

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

#define PYBINARY "/data1/packages/python272/bin/python"
#define LDSO "/data1/packages/python272/lib/ld-linux-x86-64.so.2"
#define MYLIBS "/data1/packages/python272/lib"

extern char **environ;

main(int argc, char **argv, char **envp)
{
  int retcode;
  char **e;
  char **myargv;

  setenv("LD_LIBRARY_PATH",MYLIBS,1);
  setenv("_",PYBINARY,1);

  /* copy argv */
  int i = 0;
  myargv = (char **)malloc(sizeof(char *) * 100);
  for(;argv[i] != NULL; i++) {
    myargv[i+1] = (char *)malloc(sizeof(char) * (strlen(argv[i]) + 1));
    memcpy(myargv[i+1], argv[i], strlen(argv[i]));
  }
  myargv[i+1] = NULL;
  myargv[0] = LDSO;
  myargv[1] = PYBINARY;

  e = myargv;
  while (*e != NULL){
    printf("arg: %s\n",*e++);
  }

  retcode = execve(LDSO, myargv, environ);
  perror("exec2: execve() failed");
  exit(1);
}

If you put this in test.py:

import sys
print sys.argv
import os
print os.environ["_"]

and run it with python -i test.py you will get the same results as ./mypy -i test.py so anything dependent on the argv or envp will not break.

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sizeof(char) is always 1, by definition. –  luser droog Jul 23 '11 at 4:36
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