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I was wondering if it was possible to programmatically get the number of users logged in on a Linux machine in C? I did some researching and found out about utmp.h but since not all programs use utmp logging, I did not think it would be accurate enough. Thanks in advance to anyone willing to help.

EDIT: I apologize guys for not being more specific but when I say logged in users, I am referring to any logged in via shell. Basically what you get when you run the who command with no command line arguments.

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2  
Are ftp users considered "logged in?" How about HTML sessions on the web server? Define what you consider "logged in," since utmp isn't good for you. If it's shells, you may want to look for login shells (e.g., -bash instead of bash). – mpez0 Nov 18 '10 at 21:33

You're targeting Linux, and you say you want to do what who does. If your software is not going to be distributed or is GPL licensed, you can just crib from the open source implementation of who that is running on your system.

But those are quite the restrictions. So, how can you find where to start without consulting source code? You can get a pretty good idea of where to look by running nm on the binary using nm `which who`. who calls very few external functions (34 under Mac OS X 10.6.4). The functions you are looking for must be among these. Likely candidates are getutxent, utmpxname, and getpwuid. You can check the man pages to validate this guess.

But first, why not try apropos/man -k? A quick search for "users" shows up the users utility, which just lists the logged-in users. (Note: This seems to be a BSDism, so you might not have it under Linux. Quick searches with apropos for relevant tools and functions are still a good idea.) users calls even fewer external functions (only 15), and of those, the only interesting one that overlaps with the interesting functions called by who is getutxent.

So, how about trying getutxent?

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"You're targeting Linux, and you say you want to do what who does." Not exactly while who does provide some useful information, I am only interested in the number of users logged in. – Error1f1f Nov 18 '10 at 22:11
    
@Error1f1f But you can derive that information from the information that who provides, so who exemplifies getting your hands on the information needed. If you can do what who does, you can do what you want to do, as demonstrated by @Alison R's shell pipeline that grabs the usernames, uniques them, and counts the unique results. – Jeremy W. Sherman Nov 18 '10 at 22:15
    
Also strace who. – Dennis Williamson Nov 19 '10 at 1:37
up vote 2 down vote accepted
#include <utmp.h>
#include <err.h>

#define NAME_WIDTH  8

    FILE *ufp;
    int numberOfUsers = 0;
    struct utmp usr;
    ufp = file(_PATH_UTMP);
    while (fread((char *)&usr, sizeof(usr), 1, ufp) == 1) {
    if (*usr.ut_name && *usr.ut_line && *usr.ut_line != '~') {
         numberOfUsers++;
        }
    }

    FILE *file(char *name)
    {
        FILE *ufp;

        if (!(ufp = fopen(name, "r"))) {
            err(1, "%s", name);
        }
        return(ufp);
    }

After a couple of days playing around with utmp, I figured it out. Thanks for the help guys.

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Can you tell me, how to get logged out user count as well. i just want to get last logon time of all user. thanks in advance :) – Ravi Bhushan Oct 29 '15 at 10:34

The system call getutent is guaranteed to return a utmp like record regardless of the internal implementation. So you can rely upon that api.

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utmp is your friend.

man 5 utmp

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Not a C programmer, so I can't help in that arena, but can you have your program execute shell commands?

who | awk -F' ' '{print $1}' | sort -u | wc -l
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No I can not have my program execute shell commands but this does produced the desired result. – Error1f1f Nov 18 '10 at 22:09

I'm pretty sure that regardless of utmp logging, you'll still have all the user information you want from that call.

What programs are you concerned about that don't use utmp logging as your linux may (or may not) use utmp logging.

And, as a commenter noted, what do you call 'logged in'?

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In bash:

$ ps aux | cut -d' ' -f1 | sort -d | uniq | wc -l
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linux shell command "who" maybe help you.

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This is really a comment, not an answer to the question. You can always comment on your own posts, and once you have sufficient reputation you will be able to comment on any post. – Rostyslav Dzinko Aug 18 '12 at 9:31

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