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We are having a lot of trouble interpreting our teacher. We asked for clarification and got the following back from him

  1. For execve, send it a environment you setup with your exported variables and create a builtin command to spawn a subshell of /bin/bash, that way you can see your exported variables using env.

    (He is talking about creating our own environment vars here.)

  2. Yes create your own. You can start by copying environ when your shell starts and add only exported variables

This is related to the following post on Stack Overflow by me (reading this other post will help you understand what I am trying to do):

using a new path with execve to run ls command

We are just very confused about this. One more time I will explain what we are trying to do now. Similar to how your Linux shell does this, we need to write our own program that can set environment variables like PATH and USER and whatever other vars the user wants to define.

An example of how you would call this would be (inside your program at its prompt):

mysetenv dog spike

which would create an environment variable looking like "dog=spike"

More importantly, we need to be able to set our own PATH variable and send it to an exec command. This is the confusing part because, based on all of our questions, we don't understand what we are supposed to do.

3 Answers 3

50

It is actually very simple. You already know that your arguments are a list of char *, terminated by a NULL pointer. Similarly, the environment is simply a list of char *, terminated by a NULL pointer. Conventionally, the values in the list take the form VARNAME=var-value, though you can pass other formats if you wish.

So, to take a simple case:

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

int main(void)
{
    char *argv[] = { "/bin/sh", "-c", "env", 0 };
    char *envp[] =
    {
        "HOME=/",
        "PATH=/bin:/usr/bin",
        "TZ=UTC0",
        "USER=beelzebub",
        "LOGNAME=tarzan",
        0
    };
    execve(argv[0], &argv[0], envp);
    fprintf(stderr, "Oops!\n");
    return -1;
}

In this example, the program will run /bin/sh with arguments -c and env, which means that the shell will run the env program found on its current PATH. The environment here is set to contain 5 values in the orthodox format. If you change env to date (or env; date), you will see the effect of the TZ setting, for example. When I run that on my MacOS X machine, the output is:

USER=beelzebub
PATH=/bin:/usr/bin
PWD=/Users/jleffler/tmp/soq
TZ=UTC0
SHLVL=1
HOME=/
LOGNAME=tarzan
_=/usr/bin/env

The shell has added environment variables SHLVL, _ and PWD to the ones I set explicitly in the execve() call.

You can also do fancier things, such as copy in some of the other environment variables from your genuine environment where they do not conflict with the ones you want to set explicitly. You can also play games like having two values for a single variable in the environment - which one takes effect? And you can play games with variable names that contain spaces (the shell doesn't like that much), or entries that do not match the 'varname=value' notation at all (no equals sign).

1
  • You really cleared that all up for me. I already turned everything in, but thanks! i get it now.
    – james
    Commented Oct 8, 2011 at 17:37
9

I'm a little late to the party here, but if you want to preserve the old environment variables as well as creating your own, use setenv, and then pass environ to execve().

    setenv("dog", "spike", 1);
    extern char** environ;
    execve(argv[0], argv, environ);

environ is a variable defined by the Single Unix Specification, which keeps track of the environment variables during this running process.

setenv() and putenv() modify environ, so when you pass it over execve(), the environment variables will be just as you'd expect.

8
  • Couldn't you just call execv(argv[0], argv); after extending the environment using setenv instead? Commented Feb 15, 2022 at 11:53
  • @ErichKitzmueller as far as I understand, the environ variable itself is not preserved over execve, and if you call execve without passing environ, it will default to the shell's environment variables. I could be wrong, though. I suggest you try it.
    – fpf3
    Commented Feb 15, 2022 at 23:08
  • In my understanding, if you call execve, you must provide an environment (Linux allows NULL, which has the same meaning like a list containing a single NULL pointer; this is non-portable, though). But instead of calling execve, you could call execv (without the e) and that would just as well transfer environ, including the changes you made by calling setenv. Commented Feb 16, 2022 at 13:05
  • AFAIK, environ is not declared in any standard POSIX header. Commented yesterday
  • @JonathanLeffler I wrote this answer while using a Linux machine. Linux=/=POSIX, so you may be right. On Linux, run man 7 environ, or click linux.die.net/man/7/environ . This document claims that it is defined in unistd.h
    – fpf3
    Commented 20 hours ago
2

The code from Jonathan Leffler works great, except if you want to change the PWD (working directory) variable.

What I did, in order to change the working directory, was to put a chdir(..) before execve(..) and call:

chdir("/foo/bar"); 
execve(argv[0], &argv[0], envp);

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