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How do I list all members of a group in Linux (and possibly other unices)?

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8  
This question belongs on serverFault – Silmaril89 May 14 '10 at 15:33
    
@Silmari89, Not if he wants to do it programmatically. – Paul Tomblin May 14 '10 at 15:40
8  
Questions related to just using an operating system belong on superuser. Questions related to configuring an operating system that is intended to serve stuff to the masses belong on serverfault. We're sending a lot of stuff to SF that really belongs on SU, which ends up in a double migration, which does nothing but really confuse the OP. – Tim Post May 14 '10 at 18:43
2  
I'm new here, I found out that SF exists right after I posted the question. I agree it belongs either to SF or SO. – user323094 May 16 '10 at 10:42
4  
Heh, of course, now it has a programmatic solution, so it could be justified here as well. – Zed May 17 '10 at 18:41

15 Answers 15

up vote 82 down vote accepted

Unfortunately, there is no good, portable way to do this that I know of. If you attempt to parse /etc/group, as others are suggesting, you will miss users who have that group as their primary group and anyone who has been added to that group via a mechanism other than UNIX flat files (i.e. LDAP, NIS, pam-pgsql, etc.).

If I absolutely had to do this myself, I'd probably do it in reverse: use id to get the groups of every user on the system (which will pull all sources visible to NSS), and use Perl or something similar to maintain a hash table for each group discovered noting the membership of that user.

Edit: Of course, this leaves you with a similar problem: how to get a list of every user on the system. Since my location uses only flat files and LDAP, I can just get a list from both locations, but that may or may not be true for your environment.

Edit 2: Someone in passing reminded me that getent passwd will return a list of all users on the system including ones from LDAP/NIS/etc., but getent group still will still miss users that are members only via the default group entry, so that inspired me to write this quick hack.


#!/usr/bin/perl -T
#
# Lists members of all groups, or optionally just the group
# specified on the command line
#
# Copyright © 2010-2013 by Zed Pobre (zed@debian.org or zed@resonant.org)
#
# Permission to use, copy, modify, and/or distribute this software for any
# purpose with or without fee is hereby granted, provided that the above
# copyright notice and this permission notice appear in all copies.
#

use strict; use warnings;

$ENV{"PATH"} = "/usr/bin:/bin";

my $wantedgroup = shift;

my %groupmembers;
my $usertext = `getent passwd`;

my @users = $usertext =~ /^([a-zA-Z0-9_-]+):/gm;

foreach my $userid (@users)
{
    my $usergrouptext = `id -Gn $userid`;
    my @grouplist = split(' ',$usergrouptext);

    foreach my $group (@grouplist)
    {
        $groupmembers{$group}->{$userid} = 1;
    }
}

if($wantedgroup)
{
    print_group_members($wantedgroup);
}
else
{
    foreach my $group (sort keys %groupmembers)
    {
        print "Group ",$group," has the following members:\n";
        print_group_members($group);
        print "\n";
    }
}

sub print_group_members
{
    my ($group) = @_;
    return unless $group;

    foreach my $member (sort keys %{$groupmembers{$group}})
    {
        print $member,"\n";
    }
}
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3  
Thanks to all who answered. I was looking for a portable way to do it. Your information that there's not an easy and portable way was helpful. You also detailed the most on the circumstances which helped me understand the problem more deeply, I appreciate that and I chose your answer as the accepted one. – user323094 May 16 '10 at 10:45
2  
Would it be possible for you to donate your script to the Linux foundation? It is 2012 and there are still no easy way to get the members of a group. That is the thing that frustrate me about Linux. – winteck Jul 19 '12 at 13:51
6  
I added an ISC-like license for you, which should be compatible with just about any group. Feel free to submit it anywhere you think it will be accepted. – Zed Aug 24 '12 at 23:59
    
PAM does not supply account information. It is the Name Service Switch (nsswitch) which does that. Not all 'databases' (data providers) will support enumeration so getent passwd may not work (if for example you are using sssd). – user2272996 Apr 12 '13 at 5:13
    
Valid point about PAM vs NSS -- I changed the reference. Although I haven't used it, sssd looks like a nscd replacement at first glance rather than a proper data provider, and if it breaks getent passwd I would consider that a bug in sssd. – Zed Apr 12 '13 at 15:51
getent group <groupname>;

It is portable across both Linux and Solaris, and it works with local group/password files, NIS, and LDAP configurations.

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Thanks, but this was already mentioned in Zed's post. – user323094 Nov 20 '11 at 13:29
22  
Doesn't show users that have the group as their default group. – rlpowell Jun 25 '13 at 0:34
lid -g groupname | cut -f1 -d'(' 
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6  
This would be the nicest way, except that lid is not in a standard Debian installation. In Ubuntu it's in the libuser optional package (it's not the one in id-utils with the same name). I didn't find it in Debian :( – user323094 Aug 16 '11 at 8:18
    
Worked for me on Scientific Linux – blong Jul 27 '12 at 15:30
    
on Debian Wheezy, lid is on libuser package too – lluis Jul 12 '13 at 9:32
1  
works on CentOS 7 – GianPaJ Jul 13 '15 at 21:32
    
Installed lid on Jessie with apt-get but then got lid: command not found.. – geotheory May 16 at 0:22

Use Python to list groupmembers:

python -c "import grp; print grp.getgrnam('GROUP_NAME')[3]"

See https://docs.python.org/2/library/grp.html

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(+1 upvote) And pwd can also be useful pymotw.com/2/pwd – Céline Aussourd Oct 21 '14 at 13:50
awk -F: '/^groupname/ {print $4;}' /etc/group
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6  
Doesn't show users that have the group as their default group. – rlpowell Jun 25 '13 at 0:35
3  
Doesn't check NIS and LDAP. – Paweł Nadolski Jun 25 '13 at 10:11

cat /etc/group | grep [your_group_name]

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It worked! Thank you! – plkmthr May 27 '14 at 17:31
    
Worked on OSX! Yay – pal4life Aug 11 '14 at 22:05
4  
You can grep directly to that file like grep <username> /etc/group. Faster and less overhead. – paintbox Aug 26 '14 at 7:50
2  
Doesn't work for NIS, LDAP etc. – Yinon Ehrlich Dec 10 '14 at 6:31

The following shell snippet will iterate through all users and print only those user names which belong to given $group.

getent passwd | while IFS=: read name trash
do
    groups $name | cut -f2 -d: | grep -q -w "$group" && echo $name
done

Note: This solution will check NIS and LDAP for users and groups (not only passwd and group files). It will also take into account users not added to a group but having group set as primary group.

Edit: Added fix for rare scenario where user does not belong to group with the same name.

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This is great, and very concise, but it prints the group name as well as the user names – andrew lorien Dec 16 '13 at 1:57
    
@andrewlorien, I hope I fixed the issue you mention, if not please provide more details. – Paweł Nadolski Dec 16 '13 at 7:35
    
This snippet is good, but it returns exit code 1, any reason why it doesn't return 0? Easy fix perhaps? – hakunin Jul 8 '14 at 1:18
    
@hakunin, it doesn't return 0 when last user name does not belong to group. You can append "|| true" at the end statement to always get 0 if this is what you want. You can check then output to see if any user was found. – Paweł Nadolski Jul 8 '14 at 10:17
    
@PawełNadolski I realized, so ended up adding ; true. Returning 0 is good to avoid tripping up your configuration management system (Chef, Ansible, etc). – hakunin Jul 8 '14 at 14:18

just a little grep and tr:

$ grep ^$GROUP /etc/group | grep -o '[^:]*$' | tr ',' '\n'
user1
user2
user3
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2  
Doesn't show users that have the group as their default group. – rlpowell Jun 25 '13 at 0:35

I've done this similar to the perl code above, but replaced getent and id with native perl functions. It is much faster and should work across different *nix flavors.

#!/usr/bin/env perl

use strict;
my $arg=shift;
my %groupMembers; # defining outside of function so that hash is only built once for multiple function calls

sub expandGroupMembers{
my $groupQuery=shift;
unless (%groupMembers){
    while (my($name,$pass,$uid,$gid,$quota,$comment,$gcos,$dir,$shell,$expire)=getpwent()) {
            my $primaryGroup=getgrgid($gid);
            $groupMembers{$primaryGroup}->{$name}=1;
    }
    while (my($gname,$gpasswd,$gid,$members)=getgrent()) {
            foreach my $member (split / /, $members){
                    $groupMembers{$gname}->{$member}=1;
            }
    }
}
my $membersConcat=join(",",sort keys %{$groupMembers{$groupQuery}});
return "$membersConcat" || "$groupQuery Does have any members";
}
print &expandGroupMembers($arg)."\n";
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An answer with a link only is not consider a good answer on Stack Overflow. Please consider deleting this as this does not provide an answer to the question or elaborate more on how this answer is better than the accepted answer. Or you can add this as a comment once you have enough reputation. You can always comment on your own posts. – Dipen Shah Jul 13 '15 at 20:17
    
I have replaced the link with the code. – soinkleined Jul 18 '15 at 4:48

Zed's implementation should probably be expanded to work on some of the other major UNIX.

Someone have access to Solaris or HP-UX hardware?; did not test those cases.

#!/usr/bin/perl
#
# Lists members of all groups, or optionally just the group
# specified on the command line
#
# Date:         12/30/2013
# Author:       William H. McCloskey, Jr.
# Changes:      Added logic to detect host type & tailor subset of getent (OSX)
# Attribution:
#   The logic for this script was directly lifted from Zed Pobre's work.
#     See below for Copyright notice.
#   The idea to use dscl to emulate a subset of the now defunct getent on OSX
#     came from
#       http://zzamboni.org/\
#         brt/2008/01/21/how-to-emulate-unix-getent-with-macosxs-dscl/
#     with an example implementation lifted from
#       https://github.com/petere/getent-osx/blob/master/getent
#
# Copyright © 2010-2013 by Zed Pobre (zed@debian.org or zed@resonant.org)
#
# Permission to use, copy, modify, and/or distribute this software for any
# purpose with or without fee is hereby granted, provided that the above
# copyright notice and this permission notice appear in all copies.
#

use strict; use warnings;

$ENV{"PATH"} = "/usr/bin:/bin";

# Only run on supported $os:
my $os;
($os)=(`uname -a` =~ /^([\w-]+)/);
unless ($os =~ /(HU-UX|SunOS|Linux|Darwin)/)
    {die "\$getent or equiv. does not exist:  Cannot run on $os\n";}

my $wantedgroup = shift;

my %groupmembers;

my @users;

# Acquire the list of @users based on what is available on this OS:
if ($os =~ /(SunOS|Linux|HP-UX)/) {
    #HP-UX & Solaris assumed to be like Linux; they have not been tested.
    my $usertext = `getent passwd`;
    @users = $usertext =~ /^([a-zA-Z0-9_-]+):/gm;
};
if ($os =~ /Darwin/) {
    @users = `dscl . -ls /Users`;
    chop @users;
}

# Now just do what Zed did - thanks Zed.
foreach my $userid (@users)
{
    my $usergrouptext = `id -Gn $userid`;
    my @grouplist = split(' ',$usergrouptext);

    foreach my $group (@grouplist)
    {
        $groupmembers{$group}->{$userid} = 1;
    }
}

if($wantedgroup)
{
    print_group_members($wantedgroup);
}
else
{
    foreach my $group (sort keys %groupmembers)
    {
        print "Group ",$group," has the following members:\n";
        print_group_members($group);
        print "\n";
    }
}

sub print_group_members
{
    my ($group) = @_;
    return unless $group;

    foreach my $member (sort keys %{$groupmembers{$group}})
    {
        print $member,"\n";
    }
}

If there is a better way to share this suggestion, please let me know; I considered many ways, and this is what I came up with.

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Confirmed working on Solaris 10 after changing id -Gn to /usr/xpg4/bin/id -G -n – user667489 Jun 9 '15 at 9:35

There is a handy Debian and Ubuntu package called 'members' that provides this functionality:

Description: Shows the members of a group; by default, all members members is the complement of groups: whereas groups shows the groups a specified user belongs to, members shows users belonging to a specified group.

... You can ask for primary members, secondary members, both on one line, each on separate lines.

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What if the op use openwrt ? – user2284570 Dec 13 '15 at 14:09

Here is a script which returns a list of users from /etc/passwd and /etc/group it doesn't check NIS or LDAP, but it does show users who have the group as their default group Tested on Debian 4.7 and solaris 9

#!/bin/bash

MYGROUP="user"

# get the group ID
MYGID=`grep $MYGROUP /etc/group | cut -d ":" -f3`
if [[ $MYGID != "" ]]
then
  # get a newline-separated list of users from /etc/group 
  MYUSERS=`grep $MYGROUP /etc/group | cut -d ":" -f4| tr "," "\n"`
  # add a newline
  MYUSERS=$MYUSERS$'\n'
  # add the users whose default group is MYGROUP from /etc/passwod 
  MYUSERS=$MYUSERS`cat /etc/passwd |grep $MYGID | cut -d ":" -f1`

  #print the result as a newline-separated list with no duplicates (ready to pass into a bash FOR loop)
  printf '%s\n' $MYUSERS  | sort | uniq
fi

or as a one-liner you can cut and paste straight from here (change the group name in the first variable)

MYGROUP="user";MYGID=`grep $MYGROUP /etc/group | cut -d ":" -f3`;printf '%s\n' `grep $MYGROUP /etc/group | cut -d ":" -f4| tr "," "\n"`$'\n'`cat /etc/passwd |grep $MYGID | cut -d ":" -f1`  | sort | uniq
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In UNIX (as opposed to GNU/Linux), there's the listusers command. See the Solaris man page for listusers.

Note that this command is part of the open-source Heirloom Project. I assume that it's missing from GNU/Linux because RMS doesn't believe in groups and permissions. :-)

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1  
While this link may answer the question, it is better to include the essential parts of the answer here and provide the link for reference. Link-only answers can become invalid if the linked page changes. - From Review – Akarienta Nov 11 '15 at 9:03
    
NAME listusers - print a list of user logins SYNOPSIS listusers [-g groups] [-l logins] DESCRIPTION Listusers prints the name and the gecos information of all users known to the system, sorted by username. Valid options are: -g groups Only print the names of users that belong to the given group. Multiple groups are accepted if separated by commas. -l logins Print only user names that match logins. Multiple user names are accepted if separated by commas. – Alun Carr Nov 12 '15 at 13:11
    
From the Heirloom Project web site: The Heirloom Project provides traditional implementations of standard Unix utilities. In many cases, they have been derived from original Unix material released as Open Source by Caldera and Sun. Interfaces follow traditional practice; they remain generally compatible with System V, although extensions that have become common use over the course of time are sometimes provided. Most utilities are also included in a variant that aims at POSIX conformance. – Alun Carr Nov 12 '15 at 13:16

Here's a very simple awk script that takes into account all common pitfalls listed in the other answers:

getent passwd | awk -F: -v group_name="wheel" '
  BEGIN {
    "getent group " group_name | getline groupline;
    if (!groupline) exit 1;
    split(groupline, groupdef, ":");
    guid = groupdef[3];
    split(groupdef[4], users, ",");
    for (k in users) print users[k]
  }
  $4 == guid {print $1}'

I'm using this with my ldap-enabled setup, runs on anything with standards-compliant getent & awk, including solaris 8+ and hpux.

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I have tried grep 'sample-group-name' /etc/group,that will list all the member of the group you specified based on the example here

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