Showing posts with label Linux Users & Groups. Show all posts
Showing posts with label Linux Users & Groups. Show all posts

Linux Users and Groups | Linux File Permissions

If you are new to Linux/Unix the concept of permissions may be confusing. This guide will provide you with an explanation of what permissions are, how they work, and how to manage them. A number of examples will be provided to illustrate how to set and change permissions for both users and groups.

What are User and Group Permissions?

Linux/Unix operating systems have the ability to multitask in a manner similar to other operating systems. However, Linux's major difference from other operating systems is its ability to have multiple users. Linux was designed to allow more than one user access to the system at the same time. In order for this multiuser design to work properly, there needs to be a method to protect users from each other. This is where permissions come in to play.

Read, Write & Execute Permissions

Permissions are the "rights" to act on a file or directory. The basic rights are read, write, and execute.
  • Read - A readable permission allows the contents of the file to be viewed. A read permission on a directory allows you to list the contents of a directory.
  • Write - A write permission on a file allows you to modify the contents of that file. For a directory, the write permission allows you to edit the contents of a directory (e.g. add/delete files).
  • Execute - For a file the executable permission allows you to run the file and execute a program or script. For a directory, the execute permission allows you to change to a different directory and make it your current working directory. Users usually have a default group, but they may belong to several additional groups.

Viewing File Permissions

To view the permissions on a file or directory, issue the command ls -l <directory/file>. Remember to replace the information in the < > with the actual file or directory name. Below is sample output for the ls command:
-rw-r--r-- 1 root root 1031 Nov 18 09:22 /etc/passwd
The first ten characters show the access permissions. The first dash (-) indicates the type of file (d for directory, s for special file, and - for a regular file). The next three characters (rw-) define the owner's permission to the file. In this example, the file owner has read and write permissions only.

The next three characters (r--) are the permissions for the members of the same group as the file owner (which in this example is read only). The last three characters (r--) show the permissions for all other users and in this example it is read only.

Working with Users, Groups, and Directories

The following sections will go over the commands needed to create, delete, and modify user accounts. Groups will be covered, as well as commands for creating and deleting directories. You will be provided with the commands and descriptions needed for working with users, groups, and directories.

Creating and Deleting User Accounts

To create a new standard user, use the useradd command. The syntax is as follows:
useradd <name>
The useradd command utilizes a variety of variables, some of which are shown in the table below:
Option Description Example
-d <home_dir> home_dir will be used as the value for the user's login directory useradd <name> -d /home/<user's home>
-e <date> the date when the account will expire user add <name>** -e <YYYY-MM-DD>
-f <inactive> the number of days before the account expires useradd <name> -f <0 or -1>
-s <shell> sets the default shell type useradd <name> -s /bin/<shell>
You will need to set a password for the new user by using the passwd command. Note you will need root privileges to change a user password. The syntax is as follows:

passwd <username>
The user will be able to change their password at any time using the passwd command with the syntax. Below is an example:
$ passwd
Changing password for lmartin.
(current) UNIX password:
Enter new UNIX password:
Retype new UNIX password:
passwd: password updated successfully
There is another way of creating user accounts that might be easier for first-time administrators. However, you may need to install the package (if it is not already installed). The installation command for Debian/Ubuntu is as follows:
apt-get install adduser
The adduser command automatically creates a home directory and sets the default group, shell, etc. To create a new standard user with the adduser command the syntax is as follows:
adduser <name>
Once you enter the command you will receive a series of prompts; most of this information is optional. However, you should include at least the user's name (for this example the user name is cjones) and of course a password.
root@localhost:~# adduser cjones
  Adding user `cjones' ...
  Adding new group `cjones' (1001) ...
  Adding new user `cjones' (1001) with group `cjones' ...
  Creating home directory `/home/cjones' ...
  Copying files from `/etc/skel' ...
  Enter new UNIX password:
  Retype new UNIX password:
  passwd: password updated successfully
  Changing the user information for cjones
  Enter the new value, or press ENTER for the default
      Full Name []: Chuck Jones
      Room Number []: 213
      Work Phone []: 856-555-1212
      Home Phone []:
      Other []:
  Is the information correct? [Y/n] Y
It is important to note that security should always be taken very seriously. Therefore, it is strongly recommended to use unique passwords for each account. Never share or give your password to other users.
To remove a user account, enter the following command:
userdel <name>
Issuing the command above will only delete the user's account. Their files and home directory will not be deleted.
To remove the user, their home folder, and their files, use this command:
userdel -r <name>

Understanding Sudo

Root is the super user and has the ability to do anything on a system. Therefore, in order to have protection against potential damage sudo is used in place of root. Sudo allows users and groups access to commands they normally would not be able to use. Sudo will allow a user to have administration privileges without logging in as root. The sample of the sudo command is as follows:
sudo apt-get install <package>
Before using sudo, it may need to be installed if it is not part of your distribution. The command for Debian is as follows:
apt-get install sudo
For CentOS the command is as follows:
yum install sudo
In order to provide a user with sudo ability, their name will need to be added to the sudoers file. This file is very important and should not be edited directly with a text editor. If the sudoers file is edited incorrectly it could result in preventing access to the system.
Therefore the visudo command should be used to edit the sudoers file. At a command line log into your system as root and enter the command visudo.
Below is the portion of the sudoers file that shows the users with sudo access.
# User privilege specification
root    ALL=(ALL:ALL) ALL
cjones  ALL=(ALL:ALL) ALL
kbrown  ALL=(ALL:ALL) ALL
lmartin ALL=(ALL:ALL) ALL
After you have given your user account sudo privileges, save the sudoers file and log out as root. Now log in as your user and test the privileges as your user with sudo access. When a new user needs sudo access, you will now be able to edit the sudoers file with your own login using the following command:
sudo visudo

Working with Groups

Linux uses groups as a way to organize users. Groups organize collections of accounts, primarily as a security measure. Control of group membership is administered through the /etc/group file, which shows a list of groups and its members. Every user has a default or primary group. When a user logs in, the group membership is set for their primary group.

This means that when a user launches a program or creates a file, both the file and the running program will be associated with the user's current group membership. A user may access other files in other groups, as long as they are also a member of that group and the access permissions are set. To run programs or create a file in a different group, the user must run the newgrp command to switch their current group. A sample of the newgrp command is as follows:
$ newgrp <marketing>  
If the user entering the above-referenced command is a member of the marketing group in the /etc/group file, then the current group membership will change. It is important to note that any files created will now be associated with the marketing group rather then the user's primary group. Users may also change their group by using the chgrp command. The syntax for the chgrp command is as follows:
$ chgrp <newgroup> 

Creating and Removing Directories

To make a directory use the command:
mkdir <directory name>
To make a directory and set the permissions at the same time, use the following option and syntax:
mkdir -m a=rwx <directory name>
The -m option is short for mode and a=rwx means that all users have read, write, and execute permissions on the directory. To see a complete list of all options for the mkdir command enter man mkdir at a command prompt.
To remove a file use the following:
rm <file>
To remove a directory:
rm -r <directory name>
It is important to note that if you remove a directory all the files inside will be deleted, as well.

Changing Directory and File Permissions

To view file permissions and ownership on files and directories, use the ls -al command. The a option is to show hidden files and the l options is for long listing. The output will be similar to the following:
drwxr-xr-x 2 user user 4096 Jan  9 10:11 documents
-rw-r--r-- 1 user user  675 Jan  7 12:05 .profile
drwxr-xr-x 4 user user 4096 Jan  7 14:55 public
The first column with the ten letters and dashes shows the permissions of the file or directory. The second column (with the single number) indicates the number of files or directories contained in the directory. The next column indicates the owner, followed by the group name, the size, date and time of last access, and finally the name of the file . For example, using the first line from the output above, the details are as follows:
``drwxr-xr-x`` are the permissions
``2`` is the number of files or directories
``user`` is the owner
``user`` is the group
``4096`` is the size
``Jan  9 10:11`` is the date/time of last access
``documents`` is the directory
Note
Since a directory itself is a file, any directory will always show 4096 as it's size. This does not reflect the size of the contents of the directory.

Chmod Command

The command chmod is short for change mode. Chmod is used to change permissions on files and directories. The command chmod may be used with either letters or numbers (a.k.a octal) to set the permissions. The letters used with chmod are in the table below:
Letter Permission
r Read
w Write
x Execute
X Execute (only if file is a directory)
s Set user or group ID on execution
t Save program text on swap device
u Current permissions the file has for owner
g Current permissions the file has for users in the same group
o Current permissions the file has for others not in the group
It is important to remember that the first character of the first column of a file listing denotes whether it is a directory or a file. The other nine characters are the permissions for the file/directory. The first three characters are for the user; the next three are for the group, and the last three are for others. The example drwxrw-r-- is broken down as follows:
d is a directory
rwx the user has read, write, and execute permissions
rw- the group has read and write permissions
r-- all others have read only permissions
Note that the dash (-) denotes permissions are removed. Therefore, with the others group r-- translates to read permission only, the write and execute permissions were removed.
Conversely, the plus sign (+) is equivalent to granting permissions: chmod u+r,g+x <filename>
The example above translates as follows:
u is for user
r is for read
g is for group
x is for execute
In other words, the user was given read permission and the group was given execute permission for the file. Note, when setting multiple permissions for a set, a comma is required between sets.

Chmod Octal Format

To use the octal format, you have to calculate the permissions for each portion of the file or directory. The first ten characters mentioned above will correspond to a four digit numbers in octal. The execute permission is equal to the number one (1), the write permission is equal to the number two (2), and the read permission is equal to the number four (4). Therefore, when you use the octal format, you will need to calculate a number between 0 and 7 for each portion of the permission. A table has been provided below for clarification.
Although octal format may seem difficult to understand, it is easy to use once you get the gist of it. However, setting permissions with r, w, and x may be easier. Below are examples of how to use both letters and octal format to set permissions on a file or directory.
Sample syntax: chmod <octal or letters> <file/directory name>
Letter format: chmod go-rwx Work (Deny rwx permission for the group and others)
The output of ls -al after the chmod command above would looks as follows:
dr-------- 2 user user 4096 Dec 17 14:38 Work
Octal format: chmod 444 Work
The output of ls -al after the chmod command above would look as follows:
dr--r--r-- 2 user user 4096 Dec 17 14:38 Work
An octal table showing the numeric equivalent for permissions is provided below.

Additional File Permissions

In addition to the most common read/write/execute file permissions, there are some additional modes that you might find useful, specifically the +t mode (sticky bit) and the +s mode (setuid bit). These functions describe the behavior of files and executables in multi-user situations.
When set on a file or directory, the sticky bit, or +t mode, means that only the owner (or root) can delete the file, regardless of which users have write access to this file/directory by way of group membership or ownership. This is useful when a file or directory is owned by a group through which a number of users share write access to a given set of files.
To set the sticky bit on a file named /root/sticky.txt, issue the following command:
chmod +t /root/sticky.txt
To remove the sticky bit from a file, use the "chmod -t" command. Note that to change the sticky bit, you need to be either root or the file owner. The root user will be able to delete files regardless of the status of the sticky bit.
The setuid bit, or +s, when set on files allows users with permissions to execute a given file the ability to run that file with the permissions of file owner. For instance, if the file work was owned by the root user and the marketing group, members of the marketing group could run the work program as if they were the root user. This may pose potential security risks in some cases and executables should be properly evaluated before receiving the +s flag. To set the +s bit on a file named /usr/bin/work, issue the following command:
chmod g+s /usr/bin/work
In contrast to the +s mode for the ownership of a file, the effect of the +s mode on a directory is somewhat different. Files created in +s directories receive the ownership of that directory's user and group, rather than the ownership of the user that created the file and their default group. To set the setguid (group id) option on a directory, use the following command:
chmod g+s /var/doc-store/
To set the setuid (user id) for a directory named /var/doc-store, issue the following command:
chmod o+s /var/doc-store/

Changing File Ownership

By default, all files are "owned" by the user who creates them and by that user's default group. To change the ownership of a file, use the chown command in the "chown user:group /path/to/file" format. In the following example, the ownership of the "list.html" file will be changed to the "cjones" user in the "marketing" group:
chown cjones:marketing list.html
To change the ownership of a directory and all the files contained inside, use the recursive option with the -R flag. In the following example change the ownership of /srv/smb/leadership/ to the "cjones" user in the "marketing" group:

chown -R cjones:marketing /srv/smb/leadership/

Leveraging Users and Groups

In many cases user permissions are used to provide your system with greater security without any direct interaction, as packages for many operating systems create specific system user accounts during the installation process.

The best practice is to give each user their own login to your system. This protects each user's files from all other users. Furthermore, using specific accounts for users allows more accurate system logging, particularly when combined with tools like sudo. We recommend avoiding situations where more than one individual knows the password for a user account for maximum security.

In contrast, groups are useful for allowing multiple independent user accounts to collaborate and share files. If you create groups on a machine for common tasks on a per-task basis (e.g. web editors, contributors, content submitters, support) and add relevant users to the relevant groups, these users can all edit and run the same set of files without sharing these files with the world.

Use of the chown command with file permissions of 770 and 740 would help accomplish this goal.

File Permissions - chmod , su , chown , chgrp

The Unix operating system (and likewise, Linux) differs from other computing environments in that it is not only a multitasking system but it is also a multi-user system as well.

What exactly does this mean? It means that more than one user can be operating the computer at the same time. While your computer will only have one keyboard and monitor, it can still be used by more than one user. For example, if your computer is attached to a network, or the Internet, remote users can log in via telnet or ssh (secure shell) and operate the computer. In fact, remote users can execute X applications and have the graphical output displayed on a remote computer. The X Windows system supports this.

The multi-user capability of Unix is not a recent "innovation," but rather a feature that is deeply ingrained into the design of the operating system. If you remember the environment in which Unix was created, this makes perfect sense. Years ago before computers were "personal," they were large, expensive, and centralized.

A typical university computer system consisted of a large mainframe computer located in some building on campus and terminals were located throughout the campus, each connected to the large central computer. The computer would support many users at the same time.

In order to make this practical, a method had to be devised to protect the users from each other. After all, you could not allow the actions of one user to crash the computer, nor could you allow one user to interfere with the files belonging to another user.
This lesson will cover the following commands:
  • chmod - modify file access rights
  • su - temporarily become the superuser
  • chown - change file ownership
  • chgrp - change a file's group ownership

File permissions

Linux uses the same permissions scheme as Unix. Each file and directory on your system is assigned access rights for the owner of the file, the members of a group of related users, and everybody else. Rights can be assigned to read a file, to write a file, and to execute a file (i.e., run the file as a program).
To see the permission settings for a file, we can use the ls command as follows:
[me@linuxbox me]$ ls -l some_file 

-rw-rw-r-- 1 me me 1097374 Sep 26 18:48 some_file
We can determine a lot from examining the results of this command:
  • The file "some_file" is owned by user "me"
  • User "me" has the right to read and write this file
  • The file is owned by the group "me"
  • Members of the group "me" can also read and write this file
  • Everybody else can read this file
Let's try another example. We will look at the bash program which is located in the /bin directory:
[me@linuxbox me]$ ls -l /bin/bash 

-rwxr-xr-x 1 root root 316848 Feb 27 2000 /bin/bash
Here we can see:
  • The file "/bin/bash" is owned by user "root"
  • The superuser has the right to read, write, and execute this file
  • The file is owned by the group "root"
  • Members of the group "root" can also read and execute this file
  • Everybody else can read and execute this file
In the diagram below, we see how the first portion of the listing is interpreted. It consists of a character indicating the file type, followed by three sets of three characters that convey the reading, writing and execution permission for the owner, group, and everybody else.

chmod

The chmod command is used to change the permissions of a file or directory. To use it, you specify the desired permission settings and the file or files that you wish to modify. There are two ways to specify the permissions, but I am only going to teach one way.
It is easy to think of the permission settings as a series of bits (which is how the computer thinks about them). Here's how it works:
rwx rwx rwx = 111 111 111
rw- rw- rw- = 110 110 110
rwx --- --- = 111 000 000

and so on...

rwx = 111 in binary = 7
rw- = 110 in binary = 6
r-x = 101 in binary = 5
r-- = 100 in binary = 4

Now, if you represent each of the three sets of permissions (owner, group, and other) as a single digit, you have a pretty convenient way of expressing the possible permissions settings. For example, if we wanted to set some_file to have read and write permission for the owner, but wanted to keep the file private from others, we would:
[me@linuxbox me]$ chmod 600 some_file
Here is a table of numbers that covers all the common settings. The ones beginning with "7" are used with programs (since they enable execution) and the rest are for other kinds of files.

Value Meaning
777 (rwxrwxrwx) No restrictions on permissions. Anybody may do anything. Generally not a desirable setting.
755 (rwxr-xr-x) The file's owner may read, write, and execute the file. All others may read and execute the file. This setting is common for programs that are used by all users.
700 (rwx------) The file's owner may read, write, and execute the file. Nobody else has any rights. This setting is useful for programs that only the owner may use and must be kept private from others.
666 (rw-rw-rw-) All users may read and write the file.
644 (rw-r--r--) The owner may read and write a file, while all others may only read the file. A common setting for data files that everybody may read, but only the owner may change.
600 (rw-------) The owner may read and write a file. All others have no rights. A common setting for data files that the owner wants to keep private.

Directory permissions

The chmod command can also be used to control the access permissions for directories. In most ways, the permissions scheme for directories works the same way as they do with files. However, the execution permission is used in a different way. It provides control for access to file listing and other things. Here are some useful settings for directories:

Value Meaning
777 (rwxrwxrwx) No restrictions on permissions. Anybody may list files, create new files in the directory and delete files in the directory. Generally not a good setting.
755 (rwxr-xr-x) The directory owner has full access. All others may list the directory, but cannot create files nor delete them. This setting is common for directories that you wish to share with other users.
700 (rwx------) The directory owner has full access. Nobody else has any rights. This setting is useful for directories that only the owner may use and must be kept private from others.

Becoming the superuser for a short while

It is often useful to become the superuser to perform important system administration tasks, but as you have been warned (and not just by me!), you should not stay logged on as the superuser. In most distributions, there is a program that can give you temporary access to the superuser's privileges. This program is called su (short for substitute user) and can be used in those cases when you need to be the superuser for a small number of tasks. To become the superuser, simply type the su command. You will be prompted for the superuser's password:
[me@linuxbox me]$ su
Password:
[root@linuxbox me]#
After executing the su command, you have a new shell session as the superuser. To exit the superuser session, type exit and you will return to your previous session.
In some distributions, most notably Ubuntu, an alternate method is used. Rather than using su, these systems employ the sudo command instead. With sudo, one or more users are granted superuser privileges on an as needed basis. To execute a command as the superuser, the desired command is simply preceeded with the sudo command. After the command is entered, the user is prompted for the user's password rather than the superuser's:
[me@linuxbox me]$ sudo some_command
Password:
[me@linuxbox me]$

Changing file ownership

You can change the owner of a file by using the chown command. Here's an example: Suppose I wanted to change the owner of some_file from "me" to "you". I could:
[me@linuxbox me]$ su
Password:
[root@linuxbox me]# chown you some_file
[root@linuxbox me]# exit
[me@linuxbox me]$

Notice that in order to change the owner of a file, you must be the superuser. To do this, our example employed the su command, then we executed chown, and finally we typed exit to return to our previous session.
chown works the same way on directories as it does on files.

Changing group ownership

The group ownership of a file or directory may be changed with chgrp. This command is used like this:
[me@linuxbox me]$ chgrp new_group some_file

In the example above, we changed the group ownership of some_file from its previous group to "new_group". You must be the owner of the file or directory to perform a chgrp.