diff --git a/en_US.ISO8859-1/books/handbook/mail/chapter.sgml b/en_US.ISO8859-1/books/handbook/mail/chapter.sgml
index ee227ac600..a0eac6b49d 100644
--- a/en_US.ISO8859-1/books/handbook/mail/chapter.sgml
+++ b/en_US.ISO8859-1/books/handbook/mail/chapter.sgml
@@ -1,2284 +1,2283 @@
BillLloydOriginal work by JimMockRewritten by Electronic MailSynopsisemailelectronic mailElectronic Mail, better known as email, is one of the
most widely used forms of communication today. This chapter provides
a basic introduction to running a mail server on &os;, as well as an
introduction to sending and receiving email using &os;; however,
it is not a complete reference and in fact many important
considerations are omitted. For more complete coverage of the
subject, the reader is referred to the many excellent books listed
in .After reading this chapter, you will know:What software components are involved in sending and receiving
electronic mail.Where basic sendmail configuration
files are located in FreeBSD.An understanding of the difference between remote and
local mailboxes.How to block spammers from illegally using your mail server as a
relay.How to install and configure an alternate mail transfer agent on
your system, replacing sendmail.How to troubleshoot common mail server problems.How to use SMTP with UUCP.How to set up the system to send mail only.How to use mail with a dialup connection.How to configure SMTP Authentication for added security.How to install and use a Mail User Agent, such as
mutt to send and receive email.How to download your mail from a remote POP
or IMAP server.How to automatically apply filters and rules to incoming
email.Before reading this chapter, you should:Properly set up your network connection
().Properly set up the DNS information for your mail host
().Know how to install additional third-party software
().Using Electronic MailPOPIMAPDNSThere are five major parts involved in an email exchange. They
are: the user program, the server daemon, DNS, a
remote or local mailbox, and of course, the
mailhost itself.The User ProgramThis includes command line programs such as
mutt,
pine, elm,
and mail, and GUI programs such as
balsa,
xfmail to name a few, and something
more sophisticated like a WWW browser. These
programs simply pass off the email transactions to the local
mailhost, either
by calling one of the server
daemons available, or delivering it over TCP.Mailhost Server Daemonmail server daemonssendmailmail server daemonspostfixmail server daemonsqmailmail server daemonsexim&os; ships with sendmail by
default, but also support numerous other mail server daemons,
just some of which include:exim;postfix;qmail.The server daemon usually has two functions—it is responsible
for receiving incoming mail as well as delivering outgoing mail. It is
not responsible for the collection of mail using protocols
such as POP or IMAP to
read your email, nor does it allow connecting to local
mbox or Maildir mailboxes. You may require
an additional daemon for
that.Older versions of sendmail
have some serious security issues which may result in an
attacker gaining local and/or remote access to your machine.
Make sure that you are running a current version to avoid
these problems. Optionally, install an alternative
MTA from the &os;
Ports Collection.Email and DNSThe Domain Name System (DNS) and its daemon
named play a large role in the delivery of
email. In order to deliver mail from your site to another, the
server daemon will look up the remote site in the DNS to determine the
host that will receive mail for the destination. This process
also occurs when mail is sent from a remote host to your mail
server.DNS is responsible for mapping
hostnames to IP addresses, as well as for storing information
specific to mail delivery, known as MX records. The MX (Mail
eXchanger) record specifies which host, or hosts, will recieve
mail for a particular domain. If you do not have an MX record
for your hostname or domain, the mail will be delivered
directly to your host provided you have an A record pointing
your hostname to your IP address.You may view the MX records for any domain by using the
&man.host.1; command, as seen in the example below:&prompt.user; host -t mx FreeBSD.org
FreeBSD.org mail is handled (pri=10) by mx1.FreeBSD.orgReceiving MailemailreceivingReceiving mail for your domain is done by the mail host. It
will collect all mail sent to your domain and store it
either in mbox (the default method for storing mail) or Maildir format, depending
on your configuration.
Once mail has been stored, it may either be read locally using
applications such as &man.mail.1; or
mutt, or remotely accessed and
collected using protocols such as
POP or IMAP.
This means that should you only
wish to read mail locally, you are not required to install a
POP or IMAP server.Accessing remote mailboxes using POP and IMAPPOPIMAPIn order to access mailboxes remotely, you are required to
have access to a POP or IMAP
server. These protocols allow users to connect to their mailboxes from
remote locations with ease. Though both
POP and IMAP allow users
to remotely access mailboxes, IMAP offers
many advantages, some of which are:IMAP can store messages on a remote
server as well as fetch them.IMAP supports concurrent updates.IMAP can be extremely useful over
low-speed links as it allows users to fetch the structure
of messages without downloading them; it can also
perform tasks such as searching on the server in
order to minimize data transfer between clients and
servers.In order to install a POP or
IMAP server, the following steps should be
performed:Choose an IMAP or
POP server that best suits your needs.
The following POP and
IMAP servers are well known and serve
as some good examples:qpopper;teapop;imap-uw;courier-imap;Install the POP or
IMAP daemon of your choosing from the
ports
collection.Where required, modify /etc/inetd.conf
to load the POP or
IMAP server.It should be noted that both POP and
IMAP transmit information, including
username and password credentials in clear-text. This means
that if you wish to secure the transmission of information
across these protocols, you should consider tunneling
- sessions over &man.ssh.1;. See the &os;
- handbook for more information.
+ sessions over &man.ssh.1;. Tunneling sessions is
+ described in .
Accessing local mailboxesMailboxes may be accessed locally by directly utilizing
MUA's on the server on which the mailbox
resides. This can be done using applications such as
mutt or &man.mail.1;.
The Mail Hostmail hostThe mail host is the name given to a server that is
responsible for delivering and receiving mail for your host, and
possibly your network.ChristopherShumwayContributed by sendmail Configurationsendmail&man.sendmail.8; is the default Mail Transfer Agent (MTA) in
FreeBSD. sendmail's job is to accept
mail from Mail User Agents (MUA) and deliver it
to the appropriate mailer as defined by its configuration file.
sendmail can also accept network
connections and deliver mail to local mailboxes or deliver it to
another program.sendmail uses the following
configuration files:/etc/mail/access/etc/mail/aliases/etc/mail/local-host-names/etc/mail/mailer.conf/etc/mail/mailertable/etc/mail/sendmail.cf/etc/mail/virtusertableFilenameFunction/etc/mail/accesssendmail access database
file/etc/mail/aliasesMailbox aliases/etc/mail/local-host-namesLists of hosts sendmail
accepts mail for/etc/mail/mailer.confMailer program configuration/etc/mail/mailertableMailer delivery table/etc/mail/sendmail.cfsendmail master
configuration file/etc/mail/virtusertableVirtual users and domain tables/etc/mail/accessThe access database defines what host(s) or IP addresses
have access to the local mail server and what kind of access
they have. Hosts can be listed as ,
, or simply passed
to sendmail's error handling routine with a given mailer error.
Hosts that are listed as , which is the
default, are allowed to send mail to this host as long as the
mail's final destination is the local machine. Hosts that are
listed as are rejected for all mail
connections. Hosts that have the option
for their hostname are allowed to send mail for any destination
through this mail server.Configuring the sendmail
Access Databasecyberspammer.com 550 We don't accept mail from spammers
FREE.STEALTH.MAILER@ 550 We don't accept mail from spammers
another.source.of.spam REJECT
okay.cyberspammer.com OK
128.32 RELAYIn this example we have five entries. Mail senders that
match the left hand side of the table are affected by the action
on the right side of the table. The first two examples give an
error code to sendmail's error
handling routine. The message is printed to the remote host when
a mail matches the left hand side of the table. The next entry
rejects mail from a specific host on the Internet,
another.source.of.spam. The next entry accepts
mail connections from a host
okay.cyberspammer.com, which is more exact than
the cyberspammer.com line above. More specific
matches override less exact matches. The last entry allows
relaying of electronic mail from hosts with an IP address that
begins with 128.32. These hosts would be able
to send mail through this mail server that are destined for other
mail servers.When this file is updated, you need to run
make in /etc/mail/ to
update the database./etc/mail/aliasesThe aliases database contains a list of virtual mailboxes
that are expanded to other user(s), files, programs or other
aliases. Here are a few examples that can be used in
/etc/mail/aliases:Mail Aliasesroot: localuser
ftp-bugs: joe,eric,paul
bit.bucket: /dev/null
procmail: "|/usr/local/bin/procmail"The file format is simple; the mailbox name on the left
side of the colon is expanded to the target(s) on the right.
The
first example simply expands the mailbox root
to the mailbox localuser, which is then
looked up again in the aliases database. If no match is found,
then the message is delivered to the local user
localuser. The next example shows a mail
list. Mail to the mailbox ftp-bugs is
expanded to the three local mailboxes joe,
eric, and paul. Note
that a remote mailbox could be specified as user@example.com. The
next example shows writing mail to a file, in this case
/dev/null. The last example shows sending
mail to a program, in this case the mail message is written to the
standard input of /usr/local/bin/procmail
through a &unix; pipe.When this file is updated, you need to run
make in /etc/mail/ to
update the database./etc/mail/local-host-namesThis is a list of hostnames &man.sendmail.8; is to accept as
the local host name. Place any domains or hosts that
sendmail is to be receiving mail for.
For example, if this mail server was to accept mail for the
domain example.com and the host
mail.example.com, its
local-host-names might look something like
this:example.com
mail.example.comWhen this file is updated, &man.sendmail.8; needs to be
restarted to read the changes./etc/mail/sendmail.cfsendmail's master configuration
file, sendmail.cf controls the overall
behavior of sendmail, including everything
from rewriting e-mail addresses to printing rejection messages to
remote mail servers. Naturally, with such a diverse role, this
configuration file is quite complex and its details are a bit
out of the scope of this section. Fortunately, this file rarely
needs to be changed for standard mail servers.The master sendmail configuration
file can be built from &man.m4.1; macros that define the features
and behavior of sendmail. Please see
/usr/src/contrib/sendmail/cf/README for
some of the details.When changes to this file are made,
sendmail needs to be restarted for
the changes to take effect./etc/mail/virtusertableThe virtusertable maps mail addresses for
virtual domains and
mailboxes to real mailboxes. These mailboxes can be local,
remote, aliases defined in
/etc/mail/aliases or files.Example Virtual Domain Mail Maproot@example.com root
postmaster@example.com postmaster@noc.example.net
@example.com joeIn the above example, we have a mapping for a domain
example.com. This file is processed in a
first match order down the file. The first item maps
root@example.com to the local mailbox root. The next entry maps
postmaster@example.com to the mailbox postmaster on the host
noc.example.net. Finally, if nothing from example.com has
matched so far, it will match the last mapping, which matches
every other mail message addressed to someone at
example.com.
This will be mapped to the local mailbox joe.AndrewBoothmanWritten by GregoryNeil ShapiroInformation taken from e-mails written by Changing Your Mail Transfer Agentemailchange mtaAs already mentioned, FreeBSD comes with
sendmail already installed as your
MTA (Mail Transfer Agent). Therefore by default it is
in charge of your outgoing and incoming mail.However, for a variety of reasons, some system
administrators want to change their system's MTA. These
reasons range from simply wanting to try out another MTA to
needing a specific feature or package which relies on another
mailer. Fortunately, whatever the reason, FreeBSD makes it
easy to make the change.Install a New MTAYou have a wide choice of MTAs available. A good
starting point is the
FreeBSD Ports Collection where
you will be able to find many. Of course you are free to use
any MTA you want from any location, as long as you can make
it run under FreeBSD.Start by installing your new MTA. Once it is installed
it gives you a chance to decide if it really fulfills your
needs, and also gives you the opportunity to configure your
new software before getting it to take over from
sendmail. When doing this, you
should be sure that installing the new software will not attempt
to overwrite system binaries such as
/usr/bin/sendmail. Otherwise, your new
mail software has essentially been put into service before
you have configured it.Please refer to your chosen MTA's documentation for
information on how to configure the software you have
chosen.Disable sendmailThe procedure used to start
sendmail changed significantly
between 4.5-RELEASE and 4.6-RELEASE. Therefore, the procedure
used to disable it is subtly different.FreeBSD 4.5-STABLE before 2002/4/4 and Earlier
(Including 4.5-RELEASE and Earlier)Enter:sendmail_enable="NO"into /etc/rc.conf. This will disable
sendmail's incoming mail service,
but if /etc/mail/mailer.conf (see below)
is not changed, sendmail will
still be used to send e-mail.FreeBSD 4.5-STABLE after 2002/4/4
(Including 4.6-RELEASE and Later)In order to completely disable
sendmail you must usesendmail_enable="NONE"in /etc/rc.conf.If you disable sendmail's
outgoing mail service in this way, it is important that you
replace it with a fully working alternative mail delivery
system. If you choose not to, system functions such as
&man.periodic.8; will be unable to deliver their results by
e-mail as they would normally expect to. Many parts of your
system may expect to have a functional
sendmail-compatible system. If
applications continue to use
sendmail's binaries to try to send
e-mail after you have disabled them, mail could go into an
inactive sendmail queue, and never be delivered.If you only want to disable
sendmail's incoming mail service,
you should setsendmail_enable="NO"in /etc/rc.conf. More information on
sendmail's startup options is
available from the &man.rc.sendmail.8; manual page.Running Your New MTA on BootYou may have a choice of two methods for running your
new MTA on boot, again depending on what version of FreeBSD
you are running.FreeBSD 4.5-STABLE before 2002/4/11
(Including 4.5-RELEASE and Earlier)Add a script to
/usr/local/etc/rc.d/ that
ends in .sh and is executable by
root. The script should accept start and
stop parameters. At startup time the
system scripts will execute the command/usr/local/etc/rc.d/supermailer.sh startwhich you can also use to manually start the server. At
shutdown time, the system scripts will use the
stop option, running the command/usr/local/etc/rc.d/supermailer.sh stopwhich you can also use to manually stop the server
while the system is running.FreeBSD 4.5-STABLE after 2002/4/11
(Including 4.6-RELEASE and Later)With later versions of FreeBSD, you can use the
above method or you can setmta_start_script="filename"in /etc/rc.conf, where
filename is the name of some
script that you want executed at boot to start your
MTA.Replacing sendmail as
the System's Default MailerThe program sendmail is so ubiquitous
as standard software on &unix; systems that some software
just assumes it is already installed and configured.
For this reason, many alternative MTA's provide their own compatible
implementations of the sendmail
command-line interface; this facilitates using them as
drop-in replacements for sendmail.Therefore, if you are using an alternative mailer,
you will need to make sure that software trying to execute
standard sendmail binaries such as
/usr/bin/sendmail actually executes
your chosen mailer instead. Fortunately, FreeBSD provides
a system called &man.mailwrapper.8; that does this job for
you.When sendmail is operating as installed, you will
find something like the following
in /etc/mail/mailer.conf:sendmail /usr/libexec/sendmail/sendmail
send-mail /usr/libexec/sendmail/sendmail
mailq /usr/libexec/sendmail/sendmail
newaliases /usr/libexec/sendmail/sendmail
hoststat /usr/libexec/sendmail/sendmail
purgestat /usr/libexec/sendmail/sendmailThis means that when any of these common commands
(such as sendmail itself) are run,
the system actually invokes a copy of mailwrapper named sendmail, which
checks mailer.conf and
executes /usr/libexec/sendmail/sendmail
instead. This system makes it easy to change what binaries
are actually executed when these default sendmail functions
are invoked.Therefore if you wanted
/usr/local/supermailer/bin/sendmail-compat
to be run instead of sendmail, you could change
/etc/mail/mailer.conf to read:sendmail /usr/local/supermailer/bin/sendmail-compat
send-mail /usr/local/supermailer/bin/sendmail-compat
mailq /usr/local/supermailer/bin/mailq-compat
newaliases /usr/local/supermailer/bin/newaliases-compat
hoststat /usr/local/supermailer/bin/hoststat-compat
purgestat /usr/local/supermailer/bin/purgestat-compatFinishingOnce you have everything configured the way you want it, you should
either kill the sendmail processes that
you no longer need and start the processes belonging to your new
software, or simply reboot. Rebooting will also
give you the opportunity to ensure that you have correctly
configured your system to start your new MTA automatically on boot.TroubleshootingemailtroubleshootingWhy do I have to use the FQDN for hosts on my site?You will probably find that the host is actually in a
different domain; for example, if you are in
foo.bar.edu and you wish to reach
a host called mumble in the bar.edu domain, you will have to
refer to it by the fully-qualified domain name, mumble.bar.edu, instead of just
mumble.BINDTraditionally, this was allowed by BSD BIND resolvers.
However the current version of BIND
that ships with FreeBSD no longer provides default abbreviations
for non-fully qualified domain names other than the domain you
are in. So an unqualified host mumble must
either be found as mumble.foo.bar.edu, or it will be searched
for in the root domain.This is different from the previous behavior, where the
search continued across mumble.bar.edu, and mumble.edu. Have a look at RFC 1535
for why this was considered bad practice, or even a security
hole.As a good workaround, you can place the line:
search foo.bar.edu bar.edu
instead of the previous:
domain foo.bar.edu
into your /etc/resolv.conf. However, make
sure that the search order does not go beyond the
boundary between local and public administration,
as RFC 1535 calls it.sendmail says mail
loops back to myselfThis is answered in the
sendmail FAQ as follows:I'm getting these error messages:
553 MX list for domain.net points back to relay.domain.net
554 <user@domain.net>... Local configuration error
How can I solve this problem?
You have asked mail to the domain (e.g., domain.net) to be
forwarded to a specific host (in this case, relay.domain.net)
by using an MX record, but the relay machine does not recognize
itself as domain.net. Add domain.net to /etc/mail/local-host-names
[known as /etc/sendmail.cw prior to version 8.10]
(if you are using FEATURE(use_cw_file)) or add Cw domain.net
to /etc/mail/sendmail.cf.The sendmail FAQ can be found at
and is
recommended reading if you want to do any
tweaking of your mail setup.PPPHow can I run a mail server on a dial-up PPP host?You want to connect a FreeBSD box on a LAN to the
Internet. The FreeBSD box will be a mail gateway for the LAN.
The PPP connection is non-dedicated.UUCPThere are at least two ways to do this. One way is to use
UUCP.Another way is to get a full-time Internet server to provide secondary MX
services for your domain. For example, if your company's domain is
example.com and your Internet service provider has
set example.net up to provide secondary MX services
to your domain:example.com. MX 10 example.com.
MX 20 example.net.Only one host should be specified as the final recipient
(add Cw example.com in
/etc/mail/sendmail.cf on example.com).When the sending sendmail is trying to
deliver the mail it will try to connect to you (example.com) over the modem
link. It will most likely time out because you are not online.
The program sendmail will automatically deliver it to the
secondary MX site, i.e. your Internet provider (example.net). The secondary MX
site will then periodically try to connect to
your host and deliver the mail to the primary MX host (example.com).You might want to use something like this as a login
script:#!/bin/sh
# Put me in /usr/local/bin/pppmyisp
( sleep 60 ; /usr/sbin/sendmail -q ) &
/usr/sbin/ppp -direct pppmyispIf you are going to create a separate login script for a
user you could use sendmail -qRexample.com
instead in the script above. This will force all mail in your
queue for example.com to be processed immediately.A further refinement of the situation is as follows:Message stolen from the &a.isp;.> we provide the secondary MX for a customer. The customer connects to
> our services several times a day automatically to get the mails to
> his primary MX (We do not call his site when a mail for his domains
> arrived). Our sendmail sends the mailqueue every 30 minutes. At the
> moment he has to stay 30 minutes online to be sure that all mail is
> gone to the primary MX.
>
> Is there a command that would initiate sendmail to send all the mails
> now? The user has not root-privileges on our machine of course.
In the privacy flags section of sendmail.cf, there is a
definition Opgoaway,restrictqrun
Remove restrictqrun to allow non-root users to start the queue processing.
You might also like to rearrange the MXs. We are the 1st MX for our
customers like this, and we have defined:
# If we are the best MX for a host, try directly instead of generating
# local config error.
OwTrue
That way a remote site will deliver straight to you, without trying
the customer connection. You then send to your customer. Only works for
hosts, so you need to get your customer to name their mail
machine customer.com as well as
hostname.customer.com in the DNS. Just put an A record in
the DNS for customer.com.Why do I keep getting Relaying
Denied errors when sending mail from other
hosts?In default FreeBSD installations,
sendmail is configured to only
send mail from the host it is running on. For example, if
a POP server is available, then users
will be able to check mail from school, work, or other
remote locations but they still will not be able to send
outgoing emails from outside locations. Typically, a few
moments after the attempt, an email will be sent from
MAILER-DAEMON with a
5.7 Relaying Denied error
message.There are several ways to get around this. The most
straightforward solution is to put your ISP's address in
a relay-domains file at
/etc/mail/relay-domains. A quick way
to do this would be:&prompt.root; echo "your.isp.example.com" > /etc/mail/relay-domainsAfter creating or editing this file you must restart
sendmail. This works great if
you are a server administrator and do not wish to send mail
locally, or would like to use a point and click
client/system on another machine or even another ISP. It
is also very useful if you only have one or two email
accounts set up. If there is a large number of addresses
to add, you can simply open this file in your favorite
text editor and then add the domains, one per line:your.isp.example.com
other.isp.example.net
users-isp.example.org
www.example.orgNow any mail sent through your system, by any host in
this list (provided the user has an account on your
system), will succeed. This is a very nice way to allow
users to send mail from your system remotely without
allowing people to send SPAM through your system.Advanced TopicsThe following section covers more involved topics such as mail
configuration and setting up mail for your entire domain.Basic ConfigurationemailconfigurationOut of the box, you should be able to send email to external
hosts as long as you have set up
/etc/resolv.conf or are running your own
name server. If you would like to have mail for your host
delivered to the MTA (e.g., sendmail) on your own FreeBSD host, there are two methods:Run your own name server and have your own domain. For
example, FreeBSD.orgGet mail delivered directly to your host. This is done by
delivering mail directly to the current DNS name for your
machine. For example, example.FreeBSD.org.SMTPRegardless of which of the above you choose, in order to have
mail delivered directly to your host, it must have a permanent
static IP address (not a dynamic address, as with most PPP dial-up configurations). If you are behind a
firewall, it must pass SMTP traffic on to you. If you want to
receive mail directly at your host, you need to be sure of either of two
things:MX recordMake sure that the (lowest-numbered) MX record in your DNS points to your
host's IP address.Make sure there is no MX entry in your DNS for your
host.Either of the above will allow you to receive mail directly at
your host.Try this:&prompt.root; hostname
example.FreeBSD.org
&prompt.root; host example.FreeBSD.org
example.FreeBSD.org has address 204.216.27.XXIf that is what you see, mail directly to
yourlogin@example.FreeBSD.org should work without
problems (assuming sendmail is
running correctly on example.FreeBSD.org).If instead you see something like this:&prompt.root; host example.FreeBSD.org
example.FreeBSD.org has address 204.216.27.XX
example.FreeBSD.org mail is handled (pri=10) by hub.FreeBSD.orgAll mail sent to your host (example.FreeBSD.org) will end up being
collected on hub under the same username instead
of being sent directly to your host.The above information is handled by your DNS server. The DNS
record that carries mail routing information is the
Mail eXchange entry. If
no MX record exists, mail will be delivered directly to the host by
way of its IP address.The MX entry for freefall.FreeBSD.org at one time looked like
this:freefall MX 30 mail.crl.net
freefall MX 40 agora.rdrop.com
freefall MX 10 freefall.FreeBSD.org
freefall MX 20 who.cdrom.comAs you can see, freefall had many MX entries.
The lowest MX number is the host that receives mail directly if
available; if it is not accessible for some reason, the others
(sometimes called backup MXes) accept messages
temporarily, and pass it along when a lower-numbered host becomes
available, eventually to the lowest-numbered host.Alternate MX sites should have separate Internet connections
from your own in order to be most useful. Your ISP or another
friendly site should have no problem providing this service for
you.Mail for Your DomainIn order to set up a mailhost (a.k.a. mail
server) you need to have any mail sent to various workstations
directed to it. Basically, you want to claim any
mail for any hostname in your domain (in this case *.FreeBSD.org) and divert it to your mail
server so your users can receive their mail on
the master mail server.DNSTo make life easiest, a user account with the same
username should exist on both machines. Use
&man.adduser.8; to do this.The mailhost you will be using must be the designated mail
exchanger for each workstation on the network. This is done in
your DNS configuration like so:example.FreeBSD.org A 204.216.27.XX ; Workstation
MX 10 hub.FreeBSD.org ; MailhostThis will redirect mail for the workstation to the mailhost no
matter where the A record points. The mail is sent to the MX
host.You cannot do this yourself unless you are running a DNS
server. If you are not, or cannot run your own DNS server, talk
to your ISP or whoever provides your DNS.If you are doing virtual email hosting, the following
information will come in handy. For this example, we
will assume you have a customer with his own domain, in this
case customer1.org, and you want
all the mail for customer1.org
sent to your mailhost, mail.myhost.com. The entry in your DNS
should look like this:customer1.org MX 10 mail.myhost.comYou do not need an A record for customer1.org if you only
want to handle email for that domain.Be aware that pinging customer1.org will not work unless
an A record exists for it.The last thing that you must do is tell
sendmail on your mailhost what domains
and/or hostnames it should be accepting mail for. There are a few
different ways this can be done. Either of the following will
work:Add the hosts to your
/etc/mail/local-host-names file if you are using the
FEATURE(use_cw_file). If you are using
a version of sendmail earlier than 8.10, the file is
/etc/sendmail.cw.Add a Cwyour.host.com line to your
/etc/sendmail.cf or
/etc/mail/sendmail.cf if you are using
sendmail 8.10 or higher.SMTP with UUCPThe sendmail configuration that ships with FreeBSD is
designed for sites that connect directly to the Internet. Sites
that wish to exchange their mail via UUCP must install another
sendmail configuration file.Tweaking /etc/mail/sendmail.cf manually
is an advanced topic. sendmail version 8 generates config files
via &man.m4.1; preprocessing, where the actual configuration
occurs on a higher abstraction level. The &man.m4.1;
configuration files can be found under
/usr/src/usr.sbin/sendmail/cf.If you did not install your system with full sources, the
sendmail configuration set has been broken out into a separate source
distribution tarball. Assuming you have your FreeBSD source code
CDROM mounted, do:&prompt.root; cd /cdrom/src
&prompt.root; cat scontrib.?? | tar xzf - -C /usr/src/contrib/sendmailThis extracts to only a few hundred kilobytes. The file
README in the cf
directory can serve as a basic introduction to &man.m4.1;
configuration.The best way to support UUCP delivery is to use the
mailertable feature. This creates a database
that sendmail can use to make routing decisions.First, you have to create your .mc
file. The directory
/usr/src/usr.sbin/sendmail/cf/cf contains a
few examples. Assuming you have named your file
foo.mc, all you need to do in order to
convert it into a valid sendmail.cf
is:&prompt.root; cd /usr/src/usr.sbin/sendmail/cf/cf
&prompt.root; make foo.cf
&prompt.root; cp foo.cf /etc/mail/sendmail.cfA typical .mc file might look
like:VERSIONID(`Your version number') OSTYPE(bsd4.4)
FEATURE(accept_unresolvable_domains)
FEATURE(nocanonify)
FEATURE(mailertable, `hash -o /etc/mail/mailertable')
define(`UUCP_RELAY', your.uucp.relay)
define(`UUCP_MAX_SIZE', 200000)
define(`confDONT_PROBE_INTERFACES')
MAILER(local)
MAILER(smtp)
MAILER(uucp)
Cw your.alias.host.name
Cw youruucpnodename.UUCPThe lines containing
accept_unresolvable_domains,
nocanonify, and
confDONT_PROBE_INTERFACES features will
prevent any usage of the DNS during mail delivery. The
UUCP_RELAY clause is needed to support UUCP
delivery. Simply put an Internet hostname there that is able to
handle .UUCP pseudo-domain addresses; most likely, you will
enter the mail relay of your ISP there.Once you have this, you need an
/etc/mail/mailertable file. If you have
only one link to the outside that is used for all your mails,
the following file will suffice:#
# makemap hash /etc/mail/mailertable.db < /etc/mail/mailertable
. uucp-dom:your.uucp.relayA more complex example might look like this:#
# makemap hash /etc/mail/mailertable.db < /etc/mail/mailertable
#
horus.interface-business.de uucp-dom:horus
.interface-business.de uucp-dom:if-bus
interface-business.de uucp-dom:if-bus
.heep.sax.de smtp8:%1
horus.UUCP uucp-dom:horus
if-bus.UUCP uucp-dom:if-bus
. uucp-dom:The first three lines handle special cases where
domain-addressed mail should not be sent out to the default
route, but instead to some UUCP neighbor in order to
shortcut the delivery path. The next line handles
mail to the local Ethernet domain that can be delivered using
SMTP. Finally, the UUCP neighbors are mentioned in the .UUCP
pseudo-domain notation, to allow for a
uucp-neighbor
!recipient
override of the default rules. The last line is always a single
dot, matching everything else, with UUCP delivery to a UUCP
neighbor that serves as your universal mail gateway to the
world. All of the node names behind the
uucp-dom: keyword must be valid UUCP
neighbors, as you can verify using the command
uuname.As a reminder that this file needs to be converted into a
DBM database file before use. The command line to accomplish
this is best placed as a comment at the top of the mailertable file.
You always have to execute this command each time you change
your mailertable file.Final hint: if you are uncertain whether some particular
mail routing would work, remember the
option to sendmail. It starts sendmail in address test
mode; simply enter 3,0, followed
by the address you wish to test for the mail routing. The last
line tells you the used internal mail agent, the destination
host this agent will be called with, and the (possibly
translated) address. Leave this mode by typing CtrlD.&prompt.user; sendmail -bt
ADDRESS TEST MODE (ruleset 3 NOT automatically invoked)
Enter <ruleset> <address>
>3,0 foo@example.com
canonify input: foo @ example . com
...
parse returns: $# uucp-dom $@ your.uucp.relay $: foo < @ example . com . >
>^DBillMoranContributed by Setting up to send onlyThere are many instances where you may only want to send
mail through a relay. Some examples are:Your computer is a desktop machine, but you want
to use programs such as &man.send-pr.1;. To do so, you should use
your ISP's mail relay.The computer is a server that does not handle mail
locally, but needs to pass off all mail to a relay for
processing.Just about any MTA is capable of filling
this particular niche. Unfortunately, it can be very difficult
to properly configure a full-featured MTA
just to handle offloading mail. Programs such as
sendmail and
postfix are largely overkill for
this use.Additionally, if you are using a typical Internet access
service, your agreement may forbid you from running a
mail server.The easiest way to fulfill those needs is to install the
mail/ssmtp port. Execute
the following commands as root:&prompt.root; cd /usr/ports/mail/ssmtp
&prompt.root; make install replace cleanOnce installed,
mail/ssmtp can be configured
with a four-line file located at
/usr/local/etc/ssmtp/ssmtp.conf:root=yourrealemail@example.com
mailhub=mail.example.com
rewriteDomain=example.com
hostname=_HOSTNAME_Make sure you use your real email address for
root. Enter your ISP's outgoing mail relay
in place of mail.example.com (some ISPs call
this the outgoing mail server or
SMTP server).Make sure you disable sendmail by
setting sendmail_enable="NONE"
in /etc/rc.conf.mail/ssmtp has some
other options available. See the example configuration file in
/usr/local/etc/ssmtp or the manual page of
ssmtp for some examples and more
information.Setting up ssmtp in this manner
will allow any software on your computer that needs to send
mail to function properly, while not violating your ISP's usage
policy or allowing your computer to be hijacked for spamming.Using Mail with a Dialup ConnectionIf you have a static IP address, you should not need to
adjust anything from the defaults. Set your host name to your
assigned Internet name and sendmail will do the rest.If you have a dynamically assigned IP number and use a
dialup PPP connection to the Internet, you will probably have a
mailbox on your ISPs mail server. Let's assume your ISP's domain
is example.net, and that your
user name is user, you have called your
machine bsd.home, and your ISP has
told you that you may use relay.example.net as a mail relay.In order to retrieve mail from your mailbox, you must
install a retrieval agent. The
fetchmail utility is a good choice as
it supports many different protocols. This program is available
as a package or from the ports collection (mail/fetchmail). Usually, your ISP will
provide POP. If you are using user PPP, you can
automatically fetch your mail when an Internet connection is
established with the following entry in
/etc/ppp/ppp.linkup:MYADDR:
!bg su user -c fetchmailIf you are using sendmail (as
shown below) to deliver mail to non-local accounts, you probably
want to have sendmail process your
mailqueue as soon as your Internet connection is established.
To do this, put this command after the
fetchmail command in
/etc/ppp/ppp.linkup: !bg su user -c "sendmail -q"Assume that you have an account for
user on bsd.home. In the home directory of
user on bsd.home, create a
.fetchmailrc file:poll example.net protocol pop3 fetchall pass MySecretThis file should not be readable by anyone except
user as it contains the password
MySecret.In order to send mail with the correct
from: header, you must tell
sendmail to use
user@example.net rather than
user@bsd.home. You may also wish to tell
sendmail to send all mail via relay.example.net, allowing quicker mail
transmission.The following .mc file should
suffice:VERSIONID(`bsd.home.mc version 1.0')
OSTYPE(bsd4.4)dnl
FEATURE(nouucp)dnl
MAILER(local)dnl
MAILER(smtp)dnl
Cwlocalhost
Cwbsd.home
MASQUERADE_AS(`example.net')dnl
FEATURE(allmasquerade)dnl
FEATURE(masquerade_envelope)dnl
FEATURE(nocanonify)dnl
FEATURE(nodns)dnl
define(`SMART_HOST', `relay.example.net')
Dmbsd.home
define(`confDOMAIN_NAME',`bsd.home')dnl
define(`confDELIVERY_MODE',`deferred')dnlRefer to the previous section for details of how to turn
this .mc file into a
sendmail.cf file. Also, do not forget to
restart sendmail after updating
sendmail.cf.JamesGorhamWritten by SMTP AuthenticationHaving SMTP Authentication in place on
your mail server has a number of benefits.
SMTP Authentication can add another layer
of security to sendmail, and has the benefit of giving mobile
users who switch hosts the ability to use the same mail server
without the need to reconfigure their mail client settings
each time.Install security/cyrus-sasl
from the ports. You can find this port in
security/cyrus-sasl.
security/cyrus-sasl has
a number of compile time options to choose from and, for
the method we will be using here, make sure to select the
option.After installing security/cyrus-sasl,
edit /usr/local/lib/sasl/Sendmail.conf
(or create it if it does not exist) and add the following
line:pwcheck_method: passwdThis method will enable sendmail
to authenticate against your FreeBSD passwd
database. This saves the trouble of creating a new set of usernames
and passwords for each user that needs to use
SMTP authentication, and keeps the login
and mail password the same.Now edit /etc/make.conf and add the
following lines:SENDMAIL_CFLAGS=-I/usr/local/include/sasl1 -DSASL
SENDMAIL_LDFLAGS=-L/usr/local/lib
SENDMAIL_LDADD=-lsaslThese lines will give sendmail
the proper configuration options for linking
to cyrus-sasl at compile time.
Make sure that cyrus-sasl
has been installed before recompiling
sendmail.Recompile sendmail by executing the following commands:&prompt.root; cd /usr/src/usr.sbin/sendmail
&prompt.root; make cleandir
&prompt.root; make obj
&prompt.root; make
&prompt.root; make installThe compile of sendmail should not have any problems
if /usr/src has not been changed extensively
and the shared libraries it needs are available.After sendmail has been compiled
and reinstalled, edit your /etc/mail/freebsd.mc
file (or whichever file you use as your .mc file. Many administrators
choose to use the output from &man.hostname.1; as the .mc file for
uniqueness). Add these lines to it:dnl set SASL options
TRUST_AUTH_MECH(`GSSAPI DIGEST-MD5 CRAM-MD5 LOGIN')dnl
define(`confAUTH_MECHANISMS', `GSSAPI DIGEST-MD5 CRAM-MD5 LOGIN')dnl
define(`confDEF_AUTH_INFO', `/etc/mail/auth-info')dnlThese options configure the different methods available to
sendmail for authenticating users.
If you would like to use a method other than
pwcheck, please see the
included documentation.Finally, run &man.make.1; while in /etc/mail.
That will run your new .mc file and create a .cf file named
freebsd.cf (or whatever name you have used
for your .mc file). Then use the
command make install restart, which will
copy the file to sendmail.cf, and will
properly restart sendmail.
For more information about this process, you should refer
to /etc/mail/Makefile.If all has gone correctly, you should be able to enter your login
information into the mail client and send a test message.
For further investigation, set the of
sendmail to 13 and watch
/var/log/maillog for any errors.You may wish to add the following lines to /etc/rc.conf
so this service will be available after every system boot:sasl_pwcheck_enable="YES"
sasl_pwcheck_program="/usr/local/sbin/pwcheck"This will ensure the initialization of SMTP_AUTH upon system
boot.For more information, please see the sendmail
page regarding
SMTP authentication.MarcSilverContributed by Mail User AgentsMail User AgentsA Mail User Agent (MUA) is an application
that is used to send and receive email. Furthermore, as email
evolves and becomes more complex,
MUA's are becoming increasingly powerful in the
way they interact with email; this gives users increased
functionality and flexibility. &os; contains support for
numerous mail user agents, all of which can be easily installed
using the FreeBSD Ports Collection.
Users may choose between graphical email clients such as
evolution or
balsa; console based clients such as
mutt, pine
or mail; or the web interfaces used by some
large organizations.mail&man.mail.1; is the default Mail User Agent
(MUA) in &os;. It's a
console based MUA that offers all the basic
functionality required to send and receive text-based email,
though it is limited in interaction abilities with attachments
and can only support local mailboxes.Although mail does not natively support
interaction with POP or
IMAP servers, these mailboxes may be
downloaded to a local mbox file using an
application such as fetchmail, which
will be discussed later in this chapter.In order to send and receive email, simply invoke the
mail command as per the following
example:&prompt.user; mailThe contents of the user mailbox in
/var/mail/ are
automatically read by the mail utility.
Should the mailbox be empty, the utility exits with a
message indicating that no mails could be found. Once the
mailbox has been read, the application interface is started, and
a list of messages will be displayed. Messages are automatically
numbered, as can be seen in the following example:Mail version 8.1 6/6/93. Type ? for help.
"/var/mail/marcs": 3 messages 3 new
>N 1 root@localhost Mon Mar 8 14:05 14/510 "test"
N 2 root@localhost Mon Mar 8 14:05 14/509 "user account"
N 3 root@localhost Mon Mar 8 14:05 14/509 "sample"Messages can now be read by using the tmail command, suffixed by the message number
that should be displayed. In this example, we will read the
first email:& t 1
Message 1:
From root@localhost Mon Mar 8 14:05:52 2004
X-Original-To: marcs@localhost
Delivered-To: marcs@localhost
To: marcs@localhost
Subject: test
Date: Mon, 8 Mar 2004 14:05:52 +0200 (SAST)
From: root@localhost (Charlie Root)
This is a test message, please reply if you receive it.As can be seen in the example above, the t
key will cause the message to be displayed with full headers.
To display the list of messages again, the h
key should be used.If the email requires a response, you may use
mail to reply, by using either the
R or rmail
keys. The R key instructs
mail to reply only to the sender of the
email, while r replies not only to the sender,
but also to other recipients of the message. You may also
suffix these commands with the mail number which you would like
make a reply to. Once this has been done, the response should
be entered, and the end of the message should be marked by a
single . on a new line. An example can be seen
below:& R 1 To: root@localhost Subject: Re: test
Thank you, I did get your email.
.
EOTIn order to send new email, the m
key should be used, followed by the
recipient email address. Multiple recipients may also be
specified by separating each address with the ,
delimiter. The subject of the message may then be entered,
followed by the message contents. The end of the message should
be specified by putting a single . on a new
line.& mail root@localhost
Subject: I mastered mail
Now I can send and receive email using mail ... :)
.
EOTWhile inside the mail utility, the
? command may be used to display help at any
time. The &man.mail.1; manual page should also be consulted for
more help with mail.As previously mentioned, the &man.mail.1; command was not
originally designed to handle attachments, and thus deals with
them very poorly. Newer MUA's such as
mutt handle attachments in a much
more intelligent way. But should you still wish to use the
mail command, the converters/mpack port may be of
considerable use.muttmutt is a small yet very
powerful Mail User Agent, with excellent features,
just some of which include:The ability to thread messages;PGP support for digital signing and encryption of
email;MIME Support;Maildir Support;Highly customizable.All of these features help to make
mutt one of the most advanced mail
user agents available. See http://www.mutt.org for more
information on mutt.The stable version of mutt may be
installed using the mail/mutt port, while the current
development version may be installed via the mail/mutt-devel port. After the port
has been installed, mutt can be
started by issuing the following command:&prompt.user; muttmutt will automatically read the
contents of the user mailbox in /var/mail and display the contents
if applicable. If no mails are found in the user mailbox, then
mutt will wait for commands from the
user. The example below shows mutt
displaying a list of messages.In order to read an email, simply select it using the cursor
keys, and press the Enter key. An example of
mutt displaying email can be seen
below:As with the &man.mail.1; command,
mutt allows users to reply only to
the sender of the message as well as to all recipients. To
reply only to the sender of the email, use the
r keyboard shortcut. To send a group reply,
which will be sent to the original sender as well as all the
message recipients, use the g shortcut.mutt makes use of the
&man.vi.1; command as an editor for creating and replying to
emails. This may be customized by the user by creating or
editing their own .muttrc and setting the
variable.In order to compose a new mail message, press
m. After a valid subject has been given,
mutt will start &man.vi.1; and the
mail can be written. Once the contents of the mail are
complete, save and quit from vi and
mutt will resume, displaying a
summary screen of the mail that is to be delivered. In order to
send the mail, press y. An example of the
summary screen can be seen below:mutt also contains extensive
help, which can be accessed from most of the menus by pressing
the ? key. The top line also displays the
keyboard shortcuts where appropriate.pinepine is aimed at a beginner
user, but also includes some advanced features.The pine software has had several remote vulnerabilities
discovered in the past, which allowed remote attackers to
execute arbitrary code as users on the local system, by the
action of sending a specially-prepared email. All such
known problems have been fixed, but the
pine code is written in a very insecure style and the &os;
Security Officer believes there are likely to be other
undiscovered vulnerabilities. You install
pine at your own risk.The current version of pine may
be installed using the mail/pine4 port. Once the port has
installed, pine can be started by
issuing the following command:&prompt.user; pineThe first time that pine is run
it displays a greeting page with a brief introduction, as well
as a request from the pine
development team to send an anonymous email message allowing
them to judge how many users are using their client. To send
this anonymous message, press Enter, or
alternatively press E to exit the greeting
without sending an anonymous message. An example of the
greeting page can be seen below:Users are then presented with the main menu, which can be
easily navigated using the cursor keys. This main menu provides
shortcuts for the composing new mails, browsing of mail directories,
and even the administration of address book entries. Below the
main menu, relevant keyboard shortcuts to perform functions
specific to the task at hand are shown.The default directory opened by pine
is the inbox. To view the message index, press
I, or select the MESSAGE INDEX
option as seen below:The message index shows messages in the current directory,
and can be navigated by using the cursor keys. Highlighted
messages can be read by pressing the
Enter key.In the screenshot below, a sample message is displayed by
pine. Keyboard shortcuts are
displayed as a reference at the bottom of the screen. An
example of one of these shortcuts is the r key,
which tells the MUA to reply to the current
message being displayed.Replying to an email in pine is
done using the pico editor, which is
installed by default with pine.
The pico utility makes it easy to
navigate around the message and is slightly more forgiving on
novice users than &man.vi.1; or &man.mail.1;. Once the reply
is complete, the message can be sent by pressing
CtrlX. The pine application
will ask for confirmation.The pine application can be
customized using the option from the main
menu. Consult
http://www.washington.edu/pine/
for more information.MarcSilverContributed by Using fetchmailUsing fetchmailfetchmail is a full-featured
IMAP and POP client which
allows users to automatically download mail from remote
IMAP and POP servers and
into local mailboxes; there it can be accessed more easily.
fetchmail can be installed using the
mail/fetchmail port, and
offers various features, some of which include:Support of POP3,
APOP, KPOP,
IMAP, ETRN and
ODMR protocols.Ability to forward mail using SMTP, which
allows filtering, forwarding, and aliasing to function
normally.May be run in daemon mode to check periodically for new
messages.Can retrieve multiple mailboxes and forward them based
on configuration, to different local users.While it is outside the scope of this document to explain
all of fetchmail's features, some
basic features will be explained. The
fetchmail utility requires a
configuration file known as .fetchmailrc,
in order to run correctly. This file includes server information
as well as login credentials. Due to the sensitive nature of the
contents of this file, it is advisable to make it read-only, by
issuing the following command:&prompt.user; chmod 600 .fetchmailrcThe following .fetchmailrc serves as an
example for downloading a single user mailbox using
POP. It tells
fetchmail to connect to example.com using a username of
joesoap and a password of
XXX. This example assumes that the user
joesoap is also a user on the local
system.poll example.com protocol pop3 username "joesoap" password "XXX"The next example connects to multiple POP
and IMAP servers and redirects to different
local usernames where applicable.poll example.com proto pop3:
user "joesoap", with password "XXX", is "jsoap" here;
user "andrea", with password "XXXX";
poll example2.net proto imap:
user "john", with password "XXXXX", is "myth" here;The fetchmail utility can be run in daemon
mode by running it with the flag, followed
by the interval (in seconds) that
fetchmail should poll servers listed
in the .fetchmailrc file. The following
example would cause fetchmail to poll
every 60 seconds:&prompt.user; fetchmail -d 60More information on fetchmail can
be found at
http://www.catb.org/~esr/fetchmail/.MarcSilverContributed by Using procmailUsing procmailThe procmail utility is an
incredibly powerful application used to filter incoming mail.
It allows users to define rules which can be
matched to incoming mails to perform specific functions or to
reroute mail to alternative mailboxes and/or email addresses.
procmail can be installed using the
mail/procmail port. Once
installed, it can be directly integrated into most
MTA's; consult your MTA
documentation for more information. Alternatively,
procmail can be integrated by adding
the following line to a .forward in the home
directory of the user utilizing
procmail features."|exec /usr/local/bin/procmail || exit 75"The following section will display some basic
procmail rules, as well as brief
descriptions on what they do. These rules, and others must be
inserted into a .procmailrc file, which
must reside in a user's the home directory.The majority of these rules can also be found in the
&man.procmailex.5; manual page.Forward all mail from user@example.com to an
external address of goodmail@example2.com::0
* ^From.*user@example.com
! goodmail@example2.comForward all mails shorter than 1000 bytes to an external
address of goodmail@example2.com::0
* < 1000
! goodmail@example2.comSend all mail sent to alternate@example.com
into a mailbox called alternate::0
* ^TOalternate@example.com
alternateSend all mail with a subject of Spam to
/dev/null::0
^Subject:.*Spam
/dev/nullA useful recipe that parses incoming &os;.org mailing lists
and places each list in its own mailbox::0
* ^Sender:.owner-freebsd-\/[^@]+@FreeBSD.ORG
{
LISTNAME=${MATCH}
:0
* LISTNAME??^\/[^@]+
FreeBSD-${MATCH}
}
diff --git a/en_US.ISO8859-1/books/handbook/security/chapter.sgml b/en_US.ISO8859-1/books/handbook/security/chapter.sgml
index d5d184ed07..4803a57d1c 100644
--- a/en_US.ISO8859-1/books/handbook/security/chapter.sgml
+++ b/en_US.ISO8859-1/books/handbook/security/chapter.sgml
@@ -1,5583 +1,5583 @@
MatthewDillonMuch of this chapter has been taken from the
security(7) manual page by SecuritysecuritySynopsisThis chapter will provide a basic introduction to system security
concepts, some general good rules of thumb, and some advanced topics
under &os;. A lot of the topics covered here can be applied
to system and Internet security in general as well. The Internet
is no longer a friendly place in which everyone
wants to be your kind neighbor. Securing your system is imperative
to protect your data, intellectual property, time, and much more
from the hands of hackers and the like.FreeBSD provides an array of utilities and mechanisms to
ensure the integrity and security of your system and
network.After reading this chapter, you will know:Basic system security concepts, in respect to &os;.About the various crypt mechanisms available in &os;,
such as DES and MD5.How to set up one-time password authentication.How to set up KerberosIV on &os;
releases prior to 5.0.How to set up Kerberos5 on
post &os; 5.0 releases.How to create firewalls using IPFW.How to configure IPsec and create a VPN between
&os;/&windows; machines.How to configure and use OpenSSH, &os;'s SSH
implementation.How to configure and load access control extension
modules using the TrustedBSD MAC Framework.What file system ACLs are and how to use them.How to utililize the &os; security advisories
publications.Before reading this chapter, you should:Understand basic &os; and Internet concepts.IntroductionSecurity is a function that begins and ends with the system
administrator. While all BSD &unix; multi-user systems have some
inherent security, the job of building and maintaining additional
security mechanisms to keep those users honest is
probably one of the single largest undertakings of the sysadmin.
Machines are only as secure as you make them, and security concerns
are ever competing with the human necessity for convenience. &unix;
systems, in general, are capable of running a huge number of
simultaneous processes and many of these processes operate as
servers – meaning that external entities can connect and talk
to them. As yesterday's mini-computers and mainframes become
today's desktops, and as computers become networked and
internetworked, security becomes an even bigger issue.Security is best implemented through a layered
onion approach. In a nutshell, what you want to do is
to create as many layers of security as are convenient and then
carefully monitor the system for intrusions. You do not want to
overbuild your security or you will interfere with the detection
side, and detection is one of the single most important aspects of
any security mechanism. For example, it makes little sense to set
the schg flags (see &man.chflags.1;) on every
system binary because
while this may temporarily protect the binaries, it prevents an
attacker who has broken in from making an easily detectable change
that may result in your security mechanisms not detecting the attacker
at all.System security also pertains to dealing with various forms of
attack, including attacks that attempt to crash, or otherwise make a
system unusable, but do not attempt to compromise the
root account (break root).
Security concerns
can be split up into several categories:Denial of service attacks.User account compromises.Root compromise through accessible servers.Root compromise via user accounts.Backdoor creation.DoS attacksDenial of Service (DoS)securityDoS attacksDenial of Service (DoS)Denial of Service (DoS)A denial of service attack is an action that deprives the
machine of needed resources. Typically, DoS attacks are
brute-force mechanisms that attempt to crash or otherwise make a
machine unusable by overwhelming its servers or network stack. Some
DoS attacks try to take advantage of bugs in the networking
stack to crash a machine with a single packet. The latter can only
be fixed by applying a bug fix to the kernel. Attacks on servers
can often be fixed by properly specifying options to limit the load
the servers incur on the system under adverse conditions.
Brute-force network attacks are harder to deal with. A
spoofed-packet attack, for example, is nearly impossible to stop,
short of cutting your system off from the Internet. It may not be
able to take your machine down, but it can saturate your
Internet connection.securityaccount compromisesA user account compromise is even more common than a DoS
attack. Many sysadmins still run standard
telnetd, rlogind,
rshd,
and ftpd servers on their machines.
These servers, by default, do
not operate over encrypted connections. The result is that if you
have any moderate-sized user base, one or more of your users logging
into your system from a remote location (which is the most common
and convenient way to login to a system) will have his or her
password sniffed. The attentive system admin will analyze his
remote access logs looking for suspicious source addresses even for
successful logins.One must always assume that once an attacker has access to a
user account, the attacker can break root.
However, the reality is that in a well secured and maintained system,
access to a user account does not necessarily give the attacker
access to root. The distinction is important
because without access to root the attacker
cannot generally hide his tracks and may, at best, be able to do
nothing more than mess with the user's files, or crash the machine.
User account compromises are very common because users tend not to
take the precautions that sysadmins take.securitybackdoorsSystem administrators must keep in mind that there are
potentially many ways to break root on a machine.
The attacker may know the root password,
the attacker may find a bug in a root-run server and be able
to break root over a network
connection to that server, or the attacker may know of a bug in
a suid-root program that allows the attacker to break
root once he has broken into a user's account.
If an attacker has found a way to break root
on a machine, the attacker may not have a need
to install a backdoor. Many of the root holes
found and closed to date involve a considerable amount of work
by the attacker to cleanup after himself, so most attackers install
backdoors. A backdoor provides the attacker with a way to easily
regain root access to the system, but it
also gives the smart system administrator a convenient way
to detect the intrusion.
Making it impossible for an attacker to install a backdoor may
actually be detrimental to your security, because it will not
close off the hole the attacker found to break in the first
place.Security remedies should always be implemented with a
multi-layered onion peel approach and can be
categorized as follows:Securing root and staff accounts.Securing root – root-run servers
and suid/sgid binaries.Securing user accounts.Securing the password file.Securing the kernel core, raw devices, and
filesystems.Quick detection of inappropriate changes made to the
system.Paranoia.The next section of this chapter will cover the above bullet
items in greater depth.Securing FreeBSDsecuritysecuring FreeBSDCommand vs. ProtocolThroughout this document, we will use
bold text to refer to a command or
application. This is used for instances such as ssh, since it is
a protocol as well as command.The sections that follow will cover the methods of securing your
FreeBSD system that were mentioned in the last section of this chapter.Securing the root Account and
Staff AccountssuFirst off, do not bother securing staff accounts if you have
not secured the root account.
Most systems have a password assigned to the root
account. The first thing you do is assume
that the password is always compromised.
This does not mean that you should remove the password. The
password is almost always necessary for console access to the
machine. What it does mean is that you should not make it
possible to use the password outside of the console or possibly
even with the &man.su.1; command. For example, make sure that
your pty's are specified as being insecure in the
/etc/ttys file so that direct
root logins
via telnet or rlogin are
disallowed. If using other login services such as
sshd, make sure that direct
root logins are disabled there as well.
You can do this by editing
your /etc/ssh/sshd_config file, and making
sure that PermitRootLogin is set to
NO. Consider every access method –
services such as FTP often fall through the cracks.
Direct root logins should only be allowed
via the system console.wheelOf course, as a sysadmin you have to be able to get to
root, so we open up a few holes.
But we make sure these holes require additional password
verification to operate. One way to make root
accessible is to add appropriate staff accounts to the
wheel group (in
/etc/group). The staff members placed in the
wheel group are allowed to
su to root.
You should never give staff
members native wheel access by putting them in the
wheel group in their password entry. Staff
accounts should be placed in a staff group, and
then added to the wheel group via the
/etc/group file. Only those staff members
who actually need to have root access
should be placed in the
wheel group. It is also possible, when using
an authentication method such as Kerberos, to use Kerberos'
.k5login file in the root
account to allow a &man.ksu.1; to root
without having to place anyone at all in the
wheel group. This may be the better solution
since the wheel mechanism still allows an
intruder to break root if the intruder
has gotten hold of your
password file and can break into a staff account. While having
the wheel mechanism is better than having
nothing at all, it is not necessarily the safest option.An indirect way to secure staff accounts, and ultimately
root access is to use an alternative
login access method and
do what is known as starring out the encrypted
password for the staff accounts. Using the &man.vipw.8;
command, one can replace each instance of an encrypted password
with a single * character.
This command will update the /etc/master.passwd
file and user/password database to disable password-authenticated
logins.A staff account entry such as:foobar:R9DT/Fa1/LV9U:1000:1000::0:0:Foo Bar:/home/foobar:/usr/local/bin/tcshShould be changed to this:foobar:*:1000:1000::0:0:Foo Bar:/home/foobar:/usr/local/bin/tcshThis change will prevent normal logins from occurring,
since the encrypted password will never match
*. With this done,
staff members must use
another mechanism to authenticate themselves such as
&man.kerberos.1; or &man.ssh.1; using a public/private key
pair. When using something like Kerberos, one generally must
secure the machines which run the Kerberos servers and your
desktop workstation. When using a public/private key pair
with ssh, one must generally secure
the machine used to login from (typically
one's workstation). An additional layer of protection can be
added to the key pair by password protecting the key pair when
creating it with &man.ssh-keygen.1;. Being able to
star out the passwords for staff accounts also
guarantees that staff members can only login through secure
access methods that you have set up. This forces all staff
members to use secure, encrypted connections for all of their
sessions, which closes an important hole used by many
intruders: sniffing the network from an unrelated,
less secure machine.The more indirect security mechanisms also assume that you are
logging in from a more restrictive server to a less restrictive
server. For example, if your main box is running all sorts of
servers, your workstation should not be running any. In order for
your workstation to be reasonably secure you should run as few
servers as possible, up to and including no servers at all, and
you should run a password-protected screen blanker. Of course,
given physical access to a workstation an attacker can break any
sort of security you put on it. This is definitely a problem that
you should consider, but you should also consider the fact that the
vast majority of break-ins occur remotely, over a network, from
people who do not have physical access to your workstation or
servers.KerberosIVUsing something like Kerberos also gives you the ability to
disable or change the password for a staff account in one place,
and have it immediately effect all the machines on which the staff
member may have an account. If a staff member's account gets
compromised, the ability to instantly change his password on all
machines should not be underrated. With discrete passwords,
changing a password on N machines can be a mess. You can also
impose re-passwording restrictions with Kerberos: not only can a
Kerberos ticket be made to timeout after a while, but the Kerberos
system can require that the user choose a new password after a
certain period of time (say, once a month).Securing Root-run Servers and SUID/SGID BinariesntalkcomsatfingersandboxessshdtelnetdrshdrlogindThe prudent sysadmin only runs the servers he needs to, no
more, no less. Be aware that third party servers are often the
most bug-prone. For example, running an old version of
imapd or
popper is like giving a universal
root ticket out to the entire world.
Never run a server that you have not checked out carefully.
Many servers do not need to be run as root.
For example, the ntalk,
comsat, and
finger daemons can be run in special
user sandboxes. A sandbox is not perfect,
unless you go through a large amount of trouble, but the onion
approach to security still stands: If someone is able to break
in through a server running in a sandbox, they still have to
break out of the sandbox. The more layers the attacker must
break through, the lower the likelihood of his success. Root
holes have historically been found in virtually every server
ever run as root, including basic system servers.
If you are running a machine through which people only login via
sshd and never login via
telnetd or
rshd or
rlogind, then turn off those
services!FreeBSD now defaults to running
ntalkd,
comsat, and
finger in a sandbox. Another program
which may be a candidate for running in a sandbox is &man.named.8;.
/etc/defaults/rc.conf includes the arguments
necessary to run named in a sandbox in a
commented-out form. Depending on whether you are installing a new
system or upgrading an existing system, the special user accounts
used by these sandboxes may not be installed. The prudent
sysadmin would research and implement sandboxes for servers
whenever possible.sendmailThere are a number of other servers that typically do not run
in sandboxes: sendmail,
popper,
imapd, ftpd,
and others. There are alternatives to some of these, but
installing them may require more work than you are willing to
perform (the convenience factor strikes again). You may have to
run these servers as root and rely on other
mechanisms to detect break-ins that might occur through them.The other big potential root holes in a
system are the
suid-root and sgid binaries installed on the system. Most of
these binaries, such as rlogin, reside
in /bin, /sbin,
/usr/bin, or /usr/sbin.
While nothing is 100% safe, the system-default suid and sgid
binaries can be considered reasonably safe. Still,
root holes are occasionally found in these
binaries. A root hole was found in
Xlib in 1998 that made
xterm (which is typically suid)
vulnerable. It is better to be safe than sorry and the prudent
sysadmin will restrict suid binaries, that only staff should run,
to a special group that only staff can access, and get rid of
(chmod 000) any suid binaries that nobody uses.
A server with no display generally does not need an
xterm binary. Sgid binaries can be
almost as dangerous. If an intruder can break an sgid-kmem binary,
the intruder might be able to read /dev/kmem
and thus read the encrypted password file, potentially compromising
any passworded account. Alternatively an intruder who breaks
group kmem can monitor keystrokes sent through
pty's, including pty's used by users who login through secure
methods. An intruder that breaks the tty
group can write to
almost any user's tty. If a user is running a terminal program or
emulator with a keyboard-simulation feature, the intruder can
potentially generate a data stream that causes the user's terminal
to echo a command, which is then run as that user.Securing User AccountsUser accounts are usually the most difficult to secure. While
you can impose Draconian access restrictions on your staff and
star out their passwords, you may not be able to
do so with any general user accounts you might have. If you do
have sufficient control, then you may win out and be able to secure
the user accounts properly. If not, you simply have to be more
vigilant in your monitoring of those accounts. Use of
ssh and Kerberos for user accounts is
more problematic, due to the extra administration and technical
support required, but still a very good solution compared to a
crypted password file.Securing the Password FileThe only sure fire way is to * out as many
passwords as you can and use ssh or
Kerberos for access to those accounts. Even though the encrypted
password file (/etc/spwd.db) can only be read
by root, it may be possible for an intruder
to obtain read access to that file even if the attacker cannot
obtain root-write access.Your security scripts should always check for and report
changes to the password file (see the Checking file integrity section
below).Securing the Kernel Core, Raw Devices, and
FilesystemsIf an attacker breaks root he can do
just about anything, but
there are certain conveniences. For example, most modern kernels
have a packet sniffing device driver built in. Under FreeBSD it
is called the bpf device. An intruder
will commonly attempt to run a packet sniffer on a compromised
machine. You do not need to give the intruder the capability and
most systems do not have the need for the
bpf device compiled in.sysctlBut even if you turn off the bpf
device, you still have
/dev/mem and
/dev/kmem
to worry about. For that matter, the intruder can still write to
raw disk devices. Also, there is another kernel feature called
the module loader, &man.kldload.8;. An enterprising intruder can
use a KLD module to install his own bpf
device, or other sniffing
device, on a running kernel. To avoid these problems you have to
run the kernel at a higher secure level, at least securelevel 1.
The securelevel can be set with a sysctl on
the kern.securelevel variable. Once you have
set the securelevel to 1, write access to raw devices will be
denied and special chflags flags,
such as schg,
will be enforced. You must also ensure that the
schg flag is set on critical startup binaries,
directories, and script files – everything that gets run up
to the point where the securelevel is set. This might be overdoing
it, and upgrading the system is much more difficult when you
operate at a higher secure level. You may compromise and run the
system at a higher secure level but not set the
schg flag for every system file and directory
under the sun. Another possibility is to simply mount
/ and /usr read-only.
It should be noted that being too Draconian in what you attempt to
protect may prevent the all-important detection of an
intrusion.Checking File Integrity: Binaries, Configuration Files,
Etc.When it comes right down to it, you can only protect your core
system configuration and control files so much before the
convenience factor rears its ugly head. For example, using
chflags to set the schg bit
on most of the files in / and
/usr is probably counterproductive, because
while it may protect the files, it also closes a detection window.
The last layer of your security onion is perhaps the most
important – detection. The rest of your security is pretty
much useless (or, worse, presents you with a false sense of
safety) if you cannot detect potential incursions. Half the job
of the onion is to slow down the attacker, rather than stop him, in
order to give the detection side of the equation a chance to catch
him in the act.The best way to detect an incursion is to look for modified,
missing, or unexpected files. The best way to look for modified
files is from another (often centralized) limited-access system.
Writing your security scripts on the extra-secure limited-access
system makes them mostly invisible to potential attackers, and this
is important. In order to take maximum advantage you generally
have to give the limited-access box significant access to the
other machines in the business, usually either by doing a
read-only NFS export of the other machines to the limited-access
box, or by setting up ssh key-pairs to
allow the limited-access box to ssh to
the other machines. Except for its network traffic, NFS is the
least visible method – allowing you to monitor the
filesystems on each client box virtually undetected. If your
limited-access server is connected to the client boxes through a
switch, the NFS method is often the better choice. If your
limited-access server is connected to the client boxes through a
hub, or through several layers of routing, the NFS method may be
too insecure (network-wise) and using
ssh may be the better choice even with
the audit-trail tracks that ssh
lays.Once you give a limited-access box, at least read access to the
client systems it is supposed to monitor, you must write scripts
to do the actual monitoring. Given an NFS mount, you can write
scripts out of simple system utilities such as &man.find.1; and
&man.md5.1;. It is best to physically md5 the client-box files
at least once a day, and to test control files such as those
found in /etc and
/usr/local/etc even more often. When
mismatches are found, relative to the base md5 information the
limited-access machine knows is valid, it should scream at a
sysadmin to go check it out. A good security script will also
check for inappropriate suid binaries and for new or deleted files
on system partitions such as / and
/usr.When using ssh rather than NFS,
writing the security script is much more difficult. You
essentially have to scp the scripts to the client
box in order to
run them, making them visible, and for safety you also need to
scp the binaries (such as find) that those
scripts use. The ssh client on the
client box may already be compromised. All in all, using
ssh may be necessary when running over
insecure links, but it is also a lot harder to deal with.A good security script will also check for changes to user and
staff members access configuration files:
.rhosts, .shosts,
.ssh/authorized_keys and so forth…
files that might fall outside the purview of the
MD5 check.If you have a huge amount of user disk space, it may take too
long to run through every file on those partitions. In this case,
setting mount flags to disallow suid binaries and devices on those
partitions is a good idea. The nodev and
nosuid options (see &man.mount.8;) are what you
want to look into. You should probably scan them anyway, at least
once a week, since the object of this layer is to detect a break-in
whether or not the break-in is effective.Process accounting (see &man.accton.8;) is a relatively
low-overhead feature of the operating system which might help
as a post-break-in evaluation mechanism. It is especially
useful in tracking down how an intruder has actually broken into
a system, assuming the file is still intact after the break-in
occurs.Finally, security scripts should process the log files, and the
logs themselves should be generated in as secure a manner as
possible – remote syslog can be very useful. An intruder
tries to cover his tracks, and log files are critical to the
sysadmin trying to track down the time and method of the initial
break-in. One way to keep a permanent record of the log files is
to run the system console to a serial port and collect the
information on a continuing basis through a secure machine
monitoring the consoles.ParanoiaA little paranoia never hurts. As a rule, a sysadmin can add
any number of security features, as long as they do not effect
convenience, and can add security features that
do effect convenience with some added thought.
Even more importantly, a security administrator should mix it up a
bit – if you use recommendations such as those given by this
document verbatim, you give away your methodologies to the
prospective attacker who also has access to this document.Denial of Service AttacksDenial of Service (DoS)This section covers Denial of Service attacks. A DoS attack
is typically a packet attack. While there is not much you can do
about modern spoofed packet attacks that saturate your network,
you can generally limit the damage by ensuring that the attacks
cannot take down your servers.Limiting server forks.Limiting springboard attacks (ICMP response attacks, ping
broadcast, etc.).Kernel Route Cache.A common DoS attack is against a forking server that attempts
to cause the server to eat processes, file descriptors, and memory,
until the machine dies. inetd
(see &man.inetd.8;) has several
options to limit this sort of attack. It should be noted that
while it is possible to prevent a machine from going down, it is
not generally possible to prevent a service from being disrupted
by the attack. Read the inetd manual
page carefully and pay
specific attention to the , ,
and options. Note that spoofed-IP attacks
will circumvent the option to
inetd, so
typically a combination of options must be used. Some standalone
servers have self-fork-limitation parameters.Sendmail has its
option, which tends to work
much better than trying to use sendmail's load limiting options
due to the load lag. You should specify a
MaxDaemonChildren parameter, when you start
sendmail, high enough to handle your
expected load, but not so high that the computer cannot handle that
number of sendmails without falling on
its face. It is also prudent to run sendmail in queued mode
() and to run the daemon
(sendmail -bd) separate from the queue-runs
(sendmail -q15m). If you still want real-time
delivery you can run the queue at a much lower interval, such as
, but be sure to specify a reasonable
MaxDaemonChildren option for
that sendmail to prevent cascade failures.Syslogd can be attacked directly
and it is strongly recommended that you use the
option whenever possible, and the option
otherwise.You should also be fairly careful with connect-back services
such as tcpwrapper's reverse-identd,
which can be attacked directly. You generally do not want to use
the reverse-ident feature of
tcpwrappers for this reason.It is a very good idea to protect internal services from
external access by firewalling them off at your border routers.
The idea here is to prevent saturation attacks from outside your
LAN, not so much to protect internal services from network-based
root compromise.
Always configure an exclusive firewall, i.e.,
firewall everything except ports A, B,
C, D, and M-Z. This way you can firewall off all of your
low ports except for certain specific services such as
named (if you are primary for a zone),
ntalkd,
sendmail, and other Internet-accessible
services. If you try to configure the firewall the other way
– as an inclusive or permissive firewall, there is a good
chance that you will forget to close a couple of
services, or that you will add a new internal service and forget
to update the firewall. You can still open up the high-numbered
port range on the firewall, to allow permissive-like operation,
without compromising your low ports. Also take note that FreeBSD
allows you to control the range of port numbers used for dynamic
binding, via the various net.inet.ip.portrangesysctl's (sysctl -a | fgrep
portrange), which can also ease the complexity of your
firewall's configuration. For example, you might use a normal
first/last range of 4000 to 5000, and a hiport range of 49152 to
65535, then block off everything under 4000 in your firewall
(except for certain specific Internet-accessible ports, of
course).ICMP_BANDLIMAnother common DoS attack is called a springboard attack
– to attack a server in a manner that causes the server to
generate responses which overloads the server, the local
network, or some other machine. The most common attack of this
nature is the ICMP ping broadcast attack.
The attacker spoofs ping packets sent to your LAN's broadcast
address with the source IP address set to the actual machine they
wish to attack. If your border routers are not configured to
stomp on ping's to broadcast addresses, your LAN winds up
generating sufficient responses to the spoofed source address to
saturate the victim, especially when the attacker uses the same
trick on several dozen broadcast addresses over several dozen
different networks at once. Broadcast attacks of over a hundred
and twenty megabits have been measured. A second common
springboard attack is against the ICMP error reporting system.
By constructing packets that generate ICMP error responses, an
attacker can saturate a server's incoming network and cause the
server to saturate its outgoing network with ICMP responses. This
type of attack can also crash the server by running it out of
mbuf's, especially if the server cannot drain the ICMP responses
it generates fast enough. The FreeBSD kernel has a new kernel
compile option called
which limits the effectiveness
of these sorts of attacks. The last major class of springboard
attacks is related to certain internal
inetd services such as the
udp echo service. An attacker simply spoofs a UDP packet with the
source address being server A's echo port, and the destination
address being server B's echo port, where server A and B are both
on your LAN. The two servers then bounce this one packet back and
forth between each other. The attacker can overload both servers
and their LANs simply by injecting a few packets in this manner.
Similar problems exist with the internal
chargen port. A
competent sysadmin will turn off all of these inetd-internal test
services.Spoofed packet attacks may also be used to overload the kernel
route cache. Refer to the net.inet.ip.rtexpire,
rtminexpire, and rtmaxcachesysctl parameters. A spoofed packet attack
that uses a random source IP will cause the kernel to generate a
temporary cached route in the route table, viewable with
netstat -rna | fgrep W3. These routes
typically timeout in 1600 seconds or so. If the kernel detects
that the cached route table has gotten too big it will dynamically
reduce the rtexpire but will never decrease it
to less than rtminexpire. There are two
problems:The kernel does not react quickly enough when a lightly
loaded server is suddenly attacked.The rtminexpire is not low enough for
the kernel to survive a sustained attack.If your servers are connected to the Internet via a T3 or
better, it may be prudent to manually override both
rtexpire and rtminexpire
via &man.sysctl.8;. Never set either parameter to zero (unless
you want to crash the machine). Setting both
parameters to 2 seconds should be sufficient to protect the route
table from attack.Access Issues with Kerberos and SSHsshKerberosIVThere are a few issues with both Kerberos and
ssh that need to be addressed if
you intend to use them. Kerberos V is an excellent
authentication protocol, but there are bugs in the kerberized
telnet and
rlogin applications that make them
unsuitable for dealing with binary streams. Also, by default
Kerberos does not encrypt a session unless you use the
option. ssh
encrypts everything by default.ssh works quite well in every
respect except that it forwards encryption keys by default. What
this means is that if you have a secure workstation holding keys
that give you access to the rest of the system, and you
ssh to an insecure machine, your keys
are usable. The actual keys themselves are not exposed, but
ssh installs a forwarding port for the
duration of your login, and if an attacker has broken
root on the
insecure machine he can utilize that port to use your keys to gain
access to any other machine that your keys unlock.We recommend that you use ssh in
combination with Kerberos whenever possible for staff logins.
ssh can be compiled with Kerberos
support. This reduces your reliance on potentially exposable
ssh keys while at the same time
protecting passwords via Kerberos. ssh
keys should only be used for automated tasks from secure machines
(something that Kerberos is unsuited to do). We also recommend that
you either turn off key-forwarding in the
ssh configuration, or that you make use
of the from=IP/DOMAIN option that
ssh allows in its
authorized_keys file to make the key only
usable to entities logging in from specific machines.BillSwingleParts rewritten and updated by DES, MD5, and CryptsecuritycryptcryptDESMD5Every user on a &unix; system has a password associated with
their account. It seems obvious that these passwords need to be
known only to the user and the actual operating system. In
order to keep these passwords secret, they are encrypted with
what is known as a one-way hash, that is, they can
only be easily encrypted but not decrypted. In other words, what
we told you a moment ago was obvious is not even true: the
operating system itself does not really know
the password. It only knows the encrypted
form of the password. The only way to get the
plain-text password is by a brute force search of the
space of possible passwords.Unfortunately the only secure way to encrypt passwords when
&unix; came into being was based on DES, the Data Encryption
Standard. This was not such a problem for users resident in
the US, but since the source code for DES could not be exported
outside the US, FreeBSD had to find a way to both comply with
US law and retain compatibility with all the other &unix;
variants that still used DES.The solution was to divide up the encryption libraries
so that US users could install the DES libraries and use
DES but international users still had an encryption method
that could be exported abroad. This is how FreeBSD came to
use MD5 as its default encryption method. MD5 is believed to
be more secure than DES, so installing DES is offered primarily
for compatibility reasons.Recognizing Your Crypt MechanismBefore FreeBSD 4.4 libcrypt.a was a
symbolic link pointing to the library which was used for
encryption. FreeBSD 4.4 changed libcrypt.a to
provide a configurable password authentication hash library.
Currently the library supports DES, MD5 and Blowfish hash
functions. By default FreeBSD uses MD5 to encrypt
passwords.It is pretty easy to identify which encryption method
FreeBSD is set up to use. Examining the encrypted passwords in
the /etc/master.passwd file is one way.
Passwords encrypted with the MD5 hash are longer than those
encrypted with the DES hash and also begin with the characters
$1$. Passwords starting with
$2$ are encrypted with the
Blowfish hash function. DES password strings do not
have any particular identifying characteristics, but they are
shorter than MD5 passwords, and are coded in a 64-character
alphabet which does not include the $
character, so a relatively short string which does not begin with
a dollar sign is very likely a DES password.The password format used for new passwords is controlled
by the passwd_format login capability in
/etc/login.conf, which takes values of
des, md5 or
blf. See the &man.login.conf.5; manual page
for more information about login capabilities.One-time Passwordsone-time passwordssecurityone-time passwordsS/Key is a one-time password scheme based on a one-way hash
function. FreeBSD uses the MD4 hash for compatibility but other
systems have used MD5 and DES-MAC. S/Key has been part of the
FreeBSD base system since version 1.1.5 and is also used on a
growing number of other operating systems. S/Key is a registered
trademark of Bell Communications Research, Inc.From version 5.0 of FreeBSD, S/Key has been replaced with
the functionally equivalent OPIE (One-time Passwords In
Everything). OPIE uses the MD5 hash by default.There are three different sorts of passwords which we will discuss
below. The first is your usual &unix; style or
Kerberos password; we will call this a &unix; password.
The second sort is the one-time password which is generated by the
S/Key key program or the OPIE
&man.opiekey.1; program and accepted by the
keyinit or &man.opiepasswd.1; programs
and the login prompt; we will
call this a one-time password. The final sort of
password is the secret password which you give to the
key/opiekey programs (and
sometimes the
keyinit/opiepasswd programs)
which it uses to generate
one-time passwords; we will call it a secret password
or just unqualified password.The secret password does not have anything to do with your &unix;
password; they can be the same but this is not recommended. S/Key
and OPIE secret passwords are not limited to 8 characters like old
&unix; passwordsUnder &os; the standard login
password may be up to 128 characters in length.,
they can be as long as you like. Passwords of six or
seven word long phrases are fairly common. For the most part, the
S/Key or OPIE system operates completely independently of the &unix;
password system.Besides the password, there are two other pieces of data that
are important to S/Key and OPIE. One is what is known as the
seed or key, consisting of two letters
and five digits. The other is what is called the iteration
count, a number between 1 and 100. S/Key creates the
one-time password by concatenating the seed and the secret password,
then applying the MD4/MD5 hash as many times as specified by the
iteration count and turning the result into six short English words.
These six English words are your one-time password. The
authentication system (primarily PAM) keeps
track of the last one-time password used, and the user is
authenticated if the hash of the user-provided password is equal to
the previous password. Because a one-way hash is used it is
impossible to generate future one-time passwords if a successfully
used password is captured; the iteration count is decremented after
each successful login to keep the user and the login program in
sync. When the iteration count gets down to 1, S/Key and OPIE must be
reinitialized.There are three programs involved in each system
which we will discuss below. The key and
opiekey programs accept an iteration
count, a seed, and a secret password, and generate a one-time
password or a consecutive list of one-time passwords. The
keyinit and opiepasswd
programs are used to initialize S/Key and OPIE respectively,
and to change passwords, iteration counts, or seeds; they
take either a secret passphrase, or an iteration count,
seed, and one-time password. The keyinfo
and opieinfo programs examine the
relevant credentials files (/etc/skeykeys or
/etc/opiekeys) and print out the invoking user's
current iteration count and seed.There are four different sorts of operations we will cover. The
first is using keyinit or
opiepasswd over a secure connection to set up
one-time-passwords for the first time, or to change your password
or seed. The second operation is using keyinit
or opiepasswd over an insecure connection, in
conjunction with key or opiekey
over a secure connection, to do the same. The third is using
key/opiekey to log in over
an insecure connection. The fourth is using key
or opiekey to generate a number of keys which
can be written down or printed out to carry with you when going to
some location without secure connections to anywhere.Secure Connection InitializationTo initialize S/Key for the first time, change your password,
or change your seed while logged in over a secure connection
(e.g., on the console of a machine or via ssh), use the
keyinit command without any parameters while
logged in as yourself:&prompt.user; keyinit
Adding unfurl:
Reminder - Only use this method if you are directly connected.
If you are using telnet or rlogin exit with no password and use keyinit -s.
Enter secret password:
Again secret password:
ID unfurl s/key is 99 to17757
DEFY CLUB PRO NASH LACE SOFTFor OPIE, opiepasswd is used instead:&prompt.user; opiepasswd -c
[grimreaper] ~ $ opiepasswd -f -c
Adding unfurl:
Only use this method from the console; NEVER from remote. If you are using
telnet, xterm, or a dial-in, type ^C now or exit with no password.
Then run opiepasswd without the -c parameter.
Using MD5 to compute responses.
Enter new secret pass phrase:
Again new secret pass phrase:
ID unfurl OTP key is 499 to4268
MOS MALL GOAT ARM AVID COED
At the Enter new secret pass phrase: or
Enter secret password: prompts, you
should enter a password or phrase. Remember, this is not the
password that you will use to login with, this is used to generate
your one-time login keys. The ID line gives the
parameters of your particular instance: your login name, the
iteration count, and seed. When logging in the system
will remember these parameters and present them back to you so you
do not have to remember them. The last line gives the particular
one-time password which corresponds to those parameters and your
secret password; if you were to re-login immediately, this
one-time password is the one you would use.Insecure Connection InitializationTo initialize or change your secret password over an
insecure connection, you will need to already have a secure
connection to some place where you can run key
or opiekey; this might be in the form of a
desk accessory on a &macintosh;, or a shell prompt on a machine you
trust. You will also need to make up an iteration count (100 is
probably a good value), and you may make up your own seed or use a
randomly-generated one. Over on the insecure connection (to the
machine you are initializing), use the keyinit
-s command:&prompt.user; keyinit -s
Updating unfurl:
Old key: to17758
Reminder you need the 6 English words from the key command.
Enter sequence count from 1 to 9999: 100
Enter new key [default to17759]:
s/key 100 to 17759
s/key access password:
s/key access password:CURE MIKE BANE HIM RACY GOREFor OPIE, you need to use opiepasswd:&prompt.user; opiepasswd
Updating unfurl:
You need the response from an OTP generator.
Old secret pass phrase:
otp-md5 498 to4268 ext
Response: GAME GAG WELT OUT DOWN CHAT
New secret pass phrase:
otp-md5 499 to4269
Response: LINE PAP MILK NELL BUOY TROY
ID mark OTP key is 499 gr4269
LINE PAP MILK NELL BUOY TROY
To accept the default seed (which the
keyinit program confusingly calls a
key), press Return.
Then before entering an
access password, move over to your secure connection or S/Key desk
accessory, and give it the same parameters:&prompt.user; key 100 to17759
Reminder - Do not use this program while logged in via telnet or rlogin.
Enter secret password: <secret password>
CURE MIKE BANE HIM RACY GOREOr for OPIE:&prompt.user; opiekey 498 to4268
Using the MD5 algorithm to compute response.
Reminder: Don't use opiekey from telnet or dial-in sessions.
Enter secret pass phrase:
GAME GAG WELT OUT DOWN CHAT
Now switch back over to the insecure connection, and copy the
one-time password generated over to the relevant program.Generating a Single One-time PasswordOnce you have initialized S/Key or OPIE, when you login you will be
presented with a prompt like this:&prompt.user; telnet example.com
Trying 10.0.0.1...
Connected to example.com
Escape character is '^]'.
FreeBSD/i386 (example.com) (ttypa)
login: <username>
s/key 97 fw13894
Password: Or for OPIE:&prompt.user; telnet example.com
Trying 10.0.0.1...
Connected to example.com
Escape character is '^]'.
FreeBSD/i386 (example.com) (ttypa)
login: <username>
otp-md5 498 gr4269 ext
Password: As a side note, the S/Key and OPIE prompts have a useful feature
(not shown here): if you press Return
at the password prompt, the
prompter will turn echo on, so you can see what you are
typing. This can be extremely useful if you are attempting to
type in a password by hand, such as from a printout.MS-DOSWindowsMacOSAt this point you need to generate your one-time password to
answer this login prompt. This must be done on a trusted system
that you can run key or
opiekey on. (There are versions of these for DOS,
&windows; and &macos; as well.) They need both the iteration count and
the seed as command line options. You can cut-and-paste these
right from the login prompt on the machine that you are logging
in to.On the trusted system:&prompt.user; key 97 fw13894
Reminder - Do not use this program while logged in via telnet or rlogin.
Enter secret password:
WELD LIP ACTS ENDS ME HAAGFor OPIE:&prompt.user; opiekey 498 to4268
Using the MD5 algorithm to compute response.
Reminder: Don't use opiekey from telnet or dial-in sessions.
Enter secret pass phrase:
GAME GAG WELT OUT DOWN CHATNow that you have your one-time password you can continue
logging in:login: <username>
s/key 97 fw13894
Password: <return to enable echo>
s/key 97 fw13894
Password [echo on]: WELD LIP ACTS ENDS ME HAAG
Last login: Tue Mar 21 11:56:41 from 10.0.0.2 ... Generating Multiple One-time PasswordsSometimes you have to go places where you do not have
access to a trusted machine or secure connection. In this case,
it is possible to use the key and
opiekey commands to
generate a number of one-time passwords beforehand to be printed
out and taken with you. For example:&prompt.user; key -n 5 30 zz99999
Reminder - Do not use this program while logged in via telnet or rlogin.
Enter secret password: <secret password>
26: SODA RUDE LEA LIND BUDD SILT
27: JILT SPY DUTY GLOW COWL ROT
28: THEM OW COLA RUNT BONG SCOT
29: COT MASH BARR BRIM NAN FLAG
30: CAN KNEE CAST NAME FOLK BILKOr for OPIE:&prompt.user; opiekey -n 5 30 zz99999
Using the MD5 algorithm to compute response.
Reminder: Don't use opiekey from telnet or dial-in sessions.
Enter secret pass phrase: <secret password>
26: JOAN BORE FOSS DES NAY QUIT
27: LATE BIAS SLAY FOLK MUCH TRIG
28: SALT TIN ANTI LOON NEAL USE
29: RIO ODIN GO BYE FURY TIC
30: GREW JIVE SAN GIRD BOIL PHIThe requests five keys in sequence, the
specifies what the last iteration number
should be. Note that these are printed out in
reverse order of eventual use. If you are
really paranoid, you might want to write the results down by hand;
otherwise you can cut-and-paste into lpr. Note
that each line shows both the iteration count and the one-time
password; you may still find it handy to scratch off passwords as
you use them.Restricting Use of &unix; PasswordsS/Key can place restrictions on the use of &unix; passwords based
on the host name, user name, terminal port, or IP address of a
login session. These restrictions can be found in the
configuration file /etc/skey.access. The
&man.skey.access.5; manual page has more information on the complete
format of the file and also details some security cautions to be
aware of before depending on this file for security.If there is no /etc/skey.access file
(this is the default on FreeBSD 4.X systems), then all users will
be allowed to use &unix; passwords. If the file exists, however,
then all users will be required to use S/Key unless explicitly
permitted to do otherwise by configuration statements in the
skey.access file. In all cases, &unix;
passwords are permitted on the console.Here is a sample skey.access configuration
file which illustrates the three most common sorts of configuration
statements:permit internet 192.168.0.0 255.255.0.0
permit user fnord
permit port ttyd0The first line (permit internet) allows
users whose IP source address (which is vulnerable to spoofing)
matches the specified value and mask, to use &unix; passwords. This
should not be considered a security mechanism, but rather, a means
to remind authorized users that they are using an insecure network
and need to use S/Key for authentication.The second line (permit user) allows the
specified username, in this case fnord, to use
&unix; passwords at any time. Generally speaking, this should only
be used for people who are either unable to use the
key program, like those with dumb terminals, or
those who are uneducable.The third line (permit port) allows all
users logging in on the specified terminal line to use &unix;
passwords; this would be used for dial-ups.OPIE can restrict the use of &unix; passwords based on the IP
address of a login session just like S/Key does. The relevant file
is /etc/opieaccess, which is present by default
on FreeBSD 5.0 and newer systems. Please check &man.opieaccess.5;
for more information on this file and which security considerations
you should be aware of when using it.Here is a sample opieaccess file:permit 192.168.0.0 255.255.0.0This line allows users whose IP source address (which is
vulnerable to spoofing) matches the specified value and mask,
to use &unix; passwords at any time.If no rules in opieaccess are matched,
the default is to deny non-OPIE logins.MarkMurrayContributed by MarkDapozBased on a contribution by KerberosIVKerberos is a network add-on system/protocol that allows users to
authenticate themselves through the services of a secure server.
Services such as remote login, remote copy, secure inter-system file
copying and other high-risk tasks are made considerably safer and more
controllable.The following instructions can be used as a guide on how to set up
Kerberos as distributed for FreeBSD. However, you should refer to the
relevant manual pages for a complete description.Installing KerberosIVMITKerberosIVInstallingKerberos is an optional component of &os;. The easiest
way to install this software is by selecting the krb4 or
krb5 distribution in sysinstall
during the initial installation of FreeBSD. This will install
the eBones (KerberosIV) or Heimdal (Kerberos5)
implementation of Kerberos. These implementations are
included because they are developed outside the USA/Canada and
were thus available to system owners outside those countries
during the era of restrictive export controls on cryptographic
code from the USA.Alternatively, the MIT implementation of Kerberos is
available from the ports collection as
security/krb5.Creating the Initial DatabaseThis is done on the Kerberos server only. First make sure that
you do not have any old Kerberos databases around. You should change
to the directory /etc/kerberosIV and check that
only the following files are present:&prompt.root; cd /etc/kerberosIV
&prompt.root; ls
README krb.conf krb.realmsIf any additional files (such as principal.*
or master_key) exist, then use the
kdb_destroy command to destroy the old Kerberos
database, or if Kerberos is not running, simply delete the extra
files.You should now edit the krb.conf and
krb.realms files to define your Kerberos realm.
In this case the realm will be EXAMPLE.COM and the
server is grunt.example.com. We edit
or create the krb.conf file:&prompt.root; cat krb.conf
EXAMPLE.COM
EXAMPLE.COM grunt.example.com admin server
CS.BERKELEY.EDU okeeffe.berkeley.edu
ATHENA.MIT.EDU kerberos.mit.edu
ATHENA.MIT.EDU kerberos-1.mit.edu
ATHENA.MIT.EDU kerberos-2.mit.edu
ATHENA.MIT.EDU kerberos-3.mit.edu
LCS.MIT.EDU kerberos.lcs.mit.edu
TELECOM.MIT.EDU bitsy.mit.edu
ARC.NASA.GOV trident.arc.nasa.govIn this case, the other realms do not need to be there. They are
here as an example of how a machine may be made aware of multiple
realms. You may wish to not include them for simplicity.The first line names the realm in which this system works. The
other lines contain realm/host entries. The first item on a line is a
realm, and the second is a host in that realm that is acting as a
key distribution center. The words admin
server following a host's name means that host also
provides an administrative database server. For further explanation
of these terms, please consult the Kerberos manual pages.Now we have to add grunt.example.com
to the EXAMPLE.COM realm and also add an entry to
put all hosts in the .example.com
domain in the EXAMPLE.COM realm. The
krb.realms file would be updated as
follows:&prompt.root; cat krb.realms
grunt.example.com EXAMPLE.COM
.example.com EXAMPLE.COM
.berkeley.edu CS.BERKELEY.EDU
.MIT.EDU ATHENA.MIT.EDU
.mit.edu ATHENA.MIT.EDUAgain, the other realms do not need to be there. They are here as
an example of how a machine may be made aware of multiple realms. You
may wish to remove them to simplify things.The first line puts the specific system into
the named realm. The rest of the lines show how to default systems of
a particular subdomain to a named realm.Now we are ready to create the database. This only needs to run
on the Kerberos server (or Key Distribution Center). Issue the
kdb_init command to do this:&prompt.root; kdb_initRealm name [default ATHENA.MIT.EDU ]:EXAMPLE.COM
You will be prompted for the database Master Password.
It is important that you NOT FORGET this password.
Enter Kerberos master key:Now we have to save the key so that servers on the local machine
can pick it up. Use the kstash command to do
this:&prompt.root; kstashEnter Kerberos master key:
Current Kerberos master key version is 1.
Master key entered. BEWARE!This saves the encrypted master password in
/etc/kerberosIV/master_key.Making It All RunKerberosIVInital StartupTwo principals need to be added to the database for
each system that will be secured with Kerberos.
Their names are kpasswd and rcmd.
These two principals are made for each system, with the instance being
the name of the individual system.These daemons, kpasswd and
rcmd allow other systems to change Kerberos
passwords and run commands like &man.rcp.1;,
&man.rlogin.1; and &man.rsh.1;.Now let us add these entries:&prompt.root; kdb_edit
Opening database...
Enter Kerberos master key:
Current Kerberos master key version is 1.
Master key entered. BEWARE!
Previous or default values are in [brackets] ,
enter return to leave the same, or new value.
Principal name:passwdInstance:grunt
<Not found>, Create [y] ?y
Principal: passwd, Instance: grunt, kdc_key_ver: 1
New Password: <---- enter RANDOM here
Verifying password
New Password: <---- enter RANDOM here
Random password [y] ?y
Principal's new key version = 1
Expiration date (enter yyyy-mm-dd) [ 2000-01-01 ] ?Max ticket lifetime (*5 minutes) [ 255 ] ?Attributes [ 0 ] ?
Edit O.K.
Principal name:rcmdInstance:grunt
<Not found>, Create [y] ?
Principal: rcmd, Instance: grunt, kdc_key_ver: 1
New Password: <---- enter RANDOM here
Verifying password
New Password: <---- enter RANDOM here
Random password [y] ?
Principal's new key version = 1
Expiration date (enter yyyy-mm-dd) [ 2000-01-01 ] ?Max ticket lifetime (*5 minutes) [ 255 ] ?Attributes [ 0 ] ?
Edit O.K.
Principal name: <---- null entry here will cause an exitCreating the Server FileWe now have to extract all the instances which define the
services on each machine. For this we use the
ext_srvtab command. This will create a file
which must be copied or moved by secure
means to each Kerberos client's
/etc/kerberosIV directory. This file must
be present on each server and client, and is crucial to the
operation of Kerberos.&prompt.root; ext_srvtab gruntEnter Kerberos master key:
Current Kerberos master key version is 1.
Master key entered. BEWARE!
Generating 'grunt-new-srvtab'....Now, this command only generates a temporary file which must be
renamed to srvtab so that all the servers can pick
it up. Use the &man.mv.1; command to move it into place on
the original system:&prompt.root; mv grunt-new-srvtab srvtabIf the file is for a client system, and the network is not deemed
safe, then copy the
client-new-srvtab to
removable media and transport it by secure physical means. Be sure to
rename it to srvtab in the client's
/etc/kerberosIV directory, and make sure it is
mode 600:&prompt.root; mv grumble-new-srvtab srvtab
&prompt.root; chmod 600 srvtabPopulating the DatabaseWe now have to add some user entries into the database. First
let us create an entry for the user jane. Use the
kdb_edit command to do this:&prompt.root; kdb_edit
Opening database...
Enter Kerberos master key:
Current Kerberos master key version is 1.
Master key entered. BEWARE!
Previous or default values are in [brackets] ,
enter return to leave the same, or new value.
Principal name:janeInstance:
<Not found>, Create [y] ?y
Principal: jane, Instance: , kdc_key_ver: 1
New Password: <---- enter a secure password here
Verifying password
New Password: <---- re-enter the password here
Principal's new key version = 1
Expiration date (enter yyyy-mm-dd) [ 2000-01-01 ] ?Max ticket lifetime (*5 minutes) [ 255 ] ?Attributes [ 0 ] ?
Edit O.K.
Principal name: <---- null entry here will cause an exitTesting It All OutFirst we have to start the Kerberos daemons. Note that if you
have correctly edited your /etc/rc.conf then this
will happen automatically when you reboot. This is only necessary on
the Kerberos server. Kerberos clients will automatically get what
they need from the /etc/kerberosIV
directory.&prompt.root; kerberos &
Kerberos server starting
Sleep forever on error
Log file is /var/log/kerberos.log
Current Kerberos master key version is 1.
Master key entered. BEWARE!
Current Kerberos master key version is 1
Local realm: EXAMPLE.COM
&prompt.root; kadmind -n &
KADM Server KADM0.0A initializing
Please do not use 'kill -9' to kill this job, use a
regular kill instead
Current Kerberos master key version is 1.
Master key entered. BEWARE!Now we can try using the kinit command to get a
ticket for the ID jane that we created
above:&prompt.user; kinit jane
MIT Project Athena (grunt.example.com)
Kerberos Initialization for "jane"
Password:Try listing the tokens using klist to see if we
really have them:&prompt.user; klist
Ticket file: /tmp/tkt245
Principal: jane@EXAMPLE.COM
Issued Expires Principal
Apr 30 11:23:22 Apr 30 19:23:22 krbtgt.EXAMPLE.COM@EXAMPLE.COMNow try changing the password using &man.passwd.1; to
check if the kpasswd daemon can get
authorization to the Kerberos database:&prompt.user; passwd
realm EXAMPLE.COM
Old password for jane:New Password for jane:
Verifying password
New Password for jane:
Password changed.Adding su PrivilegesKerberos allows us to give each user
who needs root privileges their own
separate &man.su.1; password.
We could now add an ID which is authorized to
&man.su.1; to root. This is
controlled by having an instance of root
associated with a principal. Using kdb_edit
we can create the entry jane.root in the
Kerberos database:&prompt.root; kdb_edit
Opening database...
Enter Kerberos master key:
Current Kerberos master key version is 1.
Master key entered. BEWARE!
Previous or default values are in [brackets] ,
enter return to leave the same, or new value.
Principal name:janeInstance:root
<Not found>, Create [y] ? y
Principal: jane, Instance: root, kdc_key_ver: 1
New Password: <---- enter a SECURE password here
Verifying password
New Password: <---- re-enter the password here
Principal's new key version = 1
Expiration date (enter yyyy-mm-dd) [ 2000-01-01 ] ?Max ticket lifetime (*5 minutes) [ 255 ] ?12 <--- Keep this short!
Attributes [ 0 ] ?
Edit O.K.
Principal name: <---- null entry here will cause an exitNow try getting tokens for it to make sure it works:&prompt.root; kinit jane.root
MIT Project Athena (grunt.example.com)
Kerberos Initialization for "jane.root"
Password:Now we need to add the user to root's
.klogin file:&prompt.root; cat /root/.klogin
jane.root@EXAMPLE.COMNow try doing the &man.su.1;:&prompt.user; suPassword:and take a look at what tokens we have:&prompt.root; klist
Ticket file: /tmp/tkt_root_245
Principal: jane.root@EXAMPLE.COM
Issued Expires Principal
May 2 20:43:12 May 3 04:43:12 krbtgt.EXAMPLE.COM@EXAMPLE.COMUsing Other CommandsIn an earlier example, we created a principal called
jane with an instance root.
This was based on a user with the same name as the principal, and this
is a Kerberos default; that a
<principal>.<instance> of the form
<username>.root will allow
that <username> to &man.su.1; to
root if the necessary entries are in the
.klogin file in root's
home directory:&prompt.root; cat /root/.klogin
jane.root@EXAMPLE.COMLikewise, if a user has in their own home directory lines of the
form:&prompt.user; cat ~/.klogin
jane@EXAMPLE.COM
jack@EXAMPLE.COMThis allows anyone in the EXAMPLE.COM realm
who has authenticated themselves as jane or
jack (via kinit, see above)
to access to jane's
account or files on this system (grunt) via
&man.rlogin.1;, &man.rsh.1; or
&man.rcp.1;.For example, jane now logs into another system using
Kerberos:&prompt.user; kinit
MIT Project Athena (grunt.example.com)
Password:
&prompt.user; rlogin grunt
Last login: Mon May 1 21:14:47 from grumble
Copyright (c) 1980, 1983, 1986, 1988, 1990, 1991, 1993, 1994
The Regents of the University of California. All rights reserved.
FreeBSD BUILT-19950429 (GR386) #0: Sat Apr 29 17:50:09 SAT 1995Or jack logs into jane's account on the same machine
(jane having
set up the .klogin file as above, and the person
in charge of Kerberos having set up principal
jack with a null instance):&prompt.user; kinit
&prompt.user; rlogin grunt -l jane
MIT Project Athena (grunt.example.com)
Password:
Last login: Mon May 1 21:16:55 from grumble
Copyright (c) 1980, 1983, 1986, 1988, 1990, 1991, 1993, 1994
The Regents of the University of California. All rights reserved.
FreeBSD BUILT-19950429 (GR386) #0: Sat Apr 29 17:50:09 SAT 1995TillmanHodgsonContributed by MarkMurrayBased on a contribution by Kerberos5Every &os; release beyond &os;-5.1 includes support
only for Kerberos5. Hence
Kerberos5 is the only version
included, and its configuration is similar in many aspects
to that of KerberosIV. The following
information only applies to
Kerberos5 in post &os;-5.0
releases. Users who wish to use the
KerberosIV package may install the
security/krb4 port.Kerberos is a network add-on
system/protocol that allows users to authenticate themselves
through the services of a secure server. Services such as remote
login, remote copy, secure inter-system file copying and other
high-risk tasks are made considerably safer and more
controllable.Kerberos can be described as an
identity-verifying proxy system. It can also be described as a
trusted third-party authentication system.
Kerberos provides only one
function — the secure authentication of users on the network.
It does not provide authorization functions (what users are
allowed to do) or auditing functions (what those users did).
After a client and server have used
Kerberos to prove their identity, they
can also encrypt all of their communications to assure privacy
and data integrity as they go about their business.Therefore it is highly recommended that
Kerberos be used with other security
methods which provide authorization and audit services.The following instructions can be used as a guide on how to set
up Kerberos as distributed for &os;.
However, you should refer to the relevant manual pages for a complete
description.For purposes of demonstrating a Kerberos
installation, the various namespaces will be handled as follows:The DNS domain (zone)
will be example.org.The Kerberos realm will be
EXAMPLE.ORG.Please use real domain names when setting up
Kerberos even if you intend to run
it internally. This avoids DNS problems
and assures inter-operation with other
Kerberos realms.HistoryKerberos5HistoryKerberos was created by
MIT as a solution to network security problems.
The Kerberos protocol uses strong
cryptography so that a client can prove its identity to a server
(and vice versa) across an insecure network connection.Kerberos is both the name of a
network authentication protocol and an adjective to describe
programs that implement the program
(Kerberos telnet, for example). The
current version of the protocol is version 5, described in
RFC 1510.Several free implementations of this protocol are available,
covering a wide range of operating systems. The Massachusetts
Institute of Technology (MIT), where
Kerberos was originally developed,
continues to develop their Kerberos
package. It is commonly used in the US
as a cryptography product, as such it
has historically been affected by US export
regulations. The MIT
Kerberos is available as a port
(security/krb5). Heimdal
Kerberos is another version 5
implementation, and was explicitly developed outside of the
US to avoid export
regulations (and is thus often included in non-commercial &unix;
variants). The Heimdal Kerberos
distribution is available as a port
(security/heimdal), and a
minimal installation of it is included in the base &os;
install.In order to reach the widest audience, these instructions assume
the use of the Heimdal distribution included in &os;.Setting up a Heimdal KDCKerberos5Key Distribution Center ConfigurationThe Key Distribution Center (KDC) is the
centralized authentication service that
Kerberos provides — it is the
computer that issues Kerberos tickets.
The KDC is considered trusted by
all other computers in the Kerberos
realm, and thus has heightened security concerns.Note that while running the Kerberos
server requires very few computing resources, a dedicated machine
acting only as a KDC is recommended for security
reasons.To begin setting up a KDC, ensure that your
/etc/rc.conf file contains the correct
settings to act as a KDC (you may need to adjust
paths to reflect your own system):kerberos5_server_enable="YES"
kadmind5_server_enable="YES"
kerberos_stash="YES"The is only available in
&os; 4.X.Next we will set up your Kerberos
config file, /etc/krb5.conf:[libdefaults]
default_realm = EXAMPLE.ORG
[realms]
EXAMPLE.ORG = {
kdc = kerberos.example.org
}
[domain_realm]
.example.org = EXAMPLE.ORGNote that this /etc/krb5.conf file implies
that your KDC will have the fully-qualified
hostname of kerberos.example.org.
You will need to add a CNAME (alias) entry to your zone file to
accomplish this if your KDC has a different
hostname.For large networks with a properly configured
BIND DNS server, the
above example could be trimmed to:[libdefaults]
default_realm = EXAMPLE.ORGWith the following lines being appended to the
example.org zonefile:_kerberos._udp IN SRV 01 00 88 kerberos.example.org.
_kerberos._tcp IN SRV 01 00 88 kerberos.example.org.
_kpasswd._udp IN SRV 01 00 464 kerberos.example.org.
_kerberos-adm._tcp IN SRV 01 00 749 kerberos.example.org.
_kerberos IN TXT EXAMPLE.ORG.Next we will create the Kerberos
database. This database contains the keys of all principals encrypted
with a master password. You are not
required to remember this password, it will be stored in a file
(/var/heimdal/m-key). To create the master
key, run kstash and enter a password.Once the master key has been created, you can initialize the
database using the kadmin program with the
-l option (standing for local).
This option instructs kadmin to modify the
database files directly rather than going through the
kadmind network service. This handles the
chicken-and-egg problem of trying to connect to the database
before it is created. Once you have the kadmin
prompt, use the init command to create your
realms initial database.Lastly, while still in kadmin, create your
first principal using the add command. Stick
to the defaults options for the principal for now, you can always
change them later with the modify command.
Note that you can use the ? command at any
prompt to see the available options.A sample database creation session is shown below:&prompt.root; kstash
Master key: xxxxxxxx
Verifying password - Master key: xxxxxxxx
&prompt.root; kadmin -l
kadmin> init EXAMPLE.ORG
Realm max ticket life [unlimited]:
kadmin> add tillman
Max ticket life [unlimited]:
Max renewable life [unlimited]:
Attributes []:
Password: xxxxxxxx
Verifying password - Password: xxxxxxxxNow it is time to start up the KDC services.
Run /etc/rc.d/kerberos start and
/etc/rc.d/kadmind start to bring up the
services. Note that you won't have any kerberized daemons running
at this point but you should be able to confirm the that the
KDC is functioning by obtaining and listing a
ticket for the principal (user) that you just created from the
command-line of the KDC itself:&prompt.user; k5init tillman
tillman@EXAMPLE.ORG's Password:
&prompt.user; k5list
Credentials cache: FILE:/tmp/krb5cc_500
Principal: tillman@EXAMPLE.ORG
Issued Expires Principal
Aug 27 15:37:58 Aug 28 01:37:58 krbtgt/EXAMPLE.ORG@EXAMPLE.ORGKerberos enabling a server with
Heimdal servicesKerberos5Enabling ServicesFirst, we need a copy of the Kerberos
configuration file, /etc/krb5.conf. To do
so, simply copy it over to the client computer from the
KDC in a secure fashion (using network utilities,
such as &man.scp.1;, or physically via a
floppy disk).Next you need a /etc/krb5.keytab file.
This is the major difference between a server providing
Kerberos enabled daemons and a
workstation — the server must have a
keytab file. This file
contains the servers host key, which allows it and the
KDC to verify each others identity. It
must be transmitted to the server in a secure fashion, as the
security of the server can be broken if the key is made public.
This explicitly means that transferring it via a clear text
channel, such as FTP, is a very bad idea.Typically, you transfer to the keytab
to the server using the kadmin program.
This is handy because you also need to create the host principal
(the KDC end of the
krb5.keytab) using
kadmin.Note that you must have already obtained a ticket and that this
ticket must be allowed to use the kadmin
interface in the kadmind.acl. See the section
titled Remote administration in the Heimdal info
pages (info heimdal) for details on designing
access control lists. If you do not want to enable remote
kadmin access, you can simply securely connect
to the KDC (via local console,
&man.ssh.1; or Kerberos
&man.telnet.1;) and perform administration locally
using kadmin -l.After installing the /etc/krb5.conf file,
you can use kadmin from the
Kerberos server. The
add --random-key command will let you add the
servers host principal, and the ext command
will allow you to extract the servers host principal to its own
keytab. For example:&prompt.root; kadmin
kadmin> add --random-key host/myserver.example.org
Max ticket life [unlimited]:
Max renewable life [unlimited]:
Attributes []:
kadmin> ext host/myserver.example.org
kadmin> exitNote that the ext command (short for
extract) stores the extracted key in
/etc/krb5.keytab by default.If you do not have kadmind running on the
KDC (possibly for security reasons) and thus
do not have access to kadmin remotely, you
can add the host principal
(host/myserver.EXAMPLE.ORG) directly on the
KDC and then extract it to a temporary file
(to avoid over-writing the /etc/krb5.keytab
on the KDC) using something like this:&prompt.root; kadmin
kadmin> ext --keytab=/tmp/example.keytab host/myserver.example.org
kadmin> exitYou can then securely copy the keytab to the server
computer (using scp or a floppy, for
example). Be sure to specify a non-default keytab name
to avoid over-writing the keytab on the
KDC.At this point your server can communicate with the
KDC (due to its krb5.conf
file) and it can prove its own identity (due to the
krb5.keytab file). It is now ready for
you to enable some Kerberos services.
For this example we will enable the telnet
service by putting a line like this into your
/etc/inetd.conf and then restarting the
&man.inetd.8; service with
/etc/rc.d/inetd restart:telnet stream tcp nowait root /usr/libexec/telnetd telnetd -a userThe critical bit is that the -a
(for authentication) type is set to user. Consult the
&man.telnetd.8; manual page for more details.Kerberos enabling a client with HeimdalKerberos5Client ConfigurationSetting up a client computer is almost trivially easy. As
far as Kerberos configuration goes,
you only need the Kerberos
configuration file, located at /etc/krb5.conf.
Simply securely copy it over to the client computer from the
KDC.Test your client computer by attempting to use
kinit, klist, and
kdestroy from the client to obtain, show, and
then delete a ticket for the principal you created above. You
should also be able to use Kerberos
applications to connect to Kerberos
enabled servers, though if that does not work and obtaining a
ticket does the problem is likely with the server and not with
the client or the KDC.When testing an application like telnet,
try using a packet sniffer (such as &man.tcpdump.1;)
to confirm that your password is not sent in the clear. Try
using telnet with the -x
option, which encrypts the entire data stream (similar to
ssh).The core Kerberos client applications
(traditionally named kinit,
klist, kdestroy, and
kpasswd) are installed in
the base &os; install. Note that &os; versions prior to 5.0
renamed them to k5init,
k5list, k5destroy,
k5passwd, and k5stash
(though it is typically only used once).Various non-core Kerberos client
applications are also installed by default. This is where the
minimal nature of the base Heimdal installation is
felt: telnet is the only
Kerberos enabled service.The Heimdal port adds some of the missing client applications:
Kerberos enabled versions of
ftp, rsh,
rcp, rlogin, and a few
other less common programs. The MIT port also
contains a full suite of Kerberos
client applications.User configuration files: .k5login and .k5usersKerberos5User Configuration FilesUsers within a realm typically have their
Kerberos principal (such as
tillman@EXAMPLE.ORG) mapped to a local
user account (such as a local account named
tillman). Client applications such as
telnet usually do not require a user name
or a principal.Occasionally, however, you want to grant access to a local
user account to someone who does not have a matching
Kerberos principal. For example,
tillman@EXAMPLE.ORG may need access to the
local user account webdevelopers. Other
principals may also need access to that local account.The .k5login and
.k5users files, placed in a users home
directory, can be used similar to a powerful combination of
.hosts and .rhosts,
solving this problem. For example, if a
.k5login with the following
contents:tillman@example.org
jdoe@example.orgWere to be placed into the home directory of the local user
webdevelopers then both principals listed
would have access to that account without requiring a shared
password.Reading the man pages for these commands is recommended.
Note that the ksu man page covers
.k5users.Kerberos Tips, Tricks, and TroubleshootingKerberos5TroubleshootingWhen using either the Heimdal or MIT
Kerberos ports ensure that your
PATH environment variable lists the
Kerberos versions of the client
applications before the system versions.Is your time in sync? Are you sure? If the time is not in
sync (typically within five minutes) authentication will
fail.MIT and Heimdal inter-operate nicely.
Except for kadmin, the protocol for
which is not standardized.If you change your hostname, you also need to change your
host/ principal and update your keytab.
This also applies to special keytab entries like the
www/ principal used for Apache's
www/mod_auth_kerb.All hosts in your realm must be resolvable (both forwards
and reverse) in DNS (or
/etc/hosts as a minimum). CNAMEs
will work, but the A and PTR records must be correct and in
place. The error message isn't very intuitive:
Kerberos5 refuses authentication because Read req
failed: Key table entry not found.Some operating systems that may being acting as clients
to your KDC do not set the permissions
for ksu to be setuid
root. This means that
ksu does not work, which is a good
security idea but annoying. This is not a
KDC error.With MIT
Kerberos, if you want to allow a
principal to have a ticket life longer than the default ten
hours, you must use modify_principal in
kadmin to change the maxlife of both the
principal in question and the krbtgt
principal. Then the principal can use the
-l option with kinit
to request a ticket with a longer lifetime.If you run a packet sniffer on your
KDC to add in troubleshooting and then
run kinit from a workstation, you will
notice that your TGT is sent
immediately upon running kinit —
even before you type your password! The explanation is
that the Kerberos server freely
transmits a TGT (Ticket Granting
Ticket) to any unauthorized request; however, every
TGT is encrypted in a key derived from
the user's password. Therefore, when a user types their
password it is not being sent to the KDC,
it is being used to decrypt the TGT that
kinit already obtained. If the decryption
process results in a valid ticket with a valid time stamp,
the user has valid Kerberos
credentials. These credentials include a session key for
establishing secure communications with the
Kerberos server in the future, as
well as the actual ticket-granting ticket, which is actually
encrypted with the Kerberos
server's own key. This second layer of encryption is
unknown to the user, but it is what allows the
Kerberos server to verify
the authenticity of each TGT.You have to keep the time in sync between all the
computers in your realm. NTP is
perfect for this. For more information on
NTP, see
.If you want to use long ticket lifetimes (a week, for
example) and you are using OpenSSH
to connect to the machine where your ticket is stored, make
sure that Kerberos
is set to no
in your sshd_config or else your tickets
will be deleted when you log out.Remember that host principals can have a longer ticket
lifetime as well. If your user principal has a lifetime of a
week but the host you are connecting to has a lifetime of nine
hours, you will have an expired host principal in your cache
and the ticket cache will not work as expected.When setting up a krb5.dict file to
prevent specific bad passwords from being used (the manual page
for kadmind covers this briefly), remember
that it only applies to principals that have a password policy
assigned to them. The krb5.dict files
format is simple: one string per line. Creating a symbolic
link to /usr/share/dict/words might be
useful.Differences with the MIT portThe major difference between the MIT
and Heimdal installs relates to the kadmin
program which has a different (but equivalent) set of commands
and uses a different protocol. This has a large implications
if your KDC is MIT as you
will not be able to use the Heimdal kadmin
program to administer your KDC remotely
(or vice versa, for that matter).The client applications may also take slightly different
command line options to accomplish the same tasks. Following
the instructions on the MIT
Kerberos web site
()
is recommended. Be careful of path issues: the
MIT port installs into
/usr/local/ by default, and the
normal system applications may be run instead
of MIT if your PATH
environment variable lists the system directories first.With the MIT
security/krb5 port
that is provided by &os;, be sure to read the
/usr/local/share/doc/krb5/README.FreeBSD
file installed by the port if you want to understand why logins
via telnetd and klogind
behave somewhat oddly. Most importantly, correcting the
incorrect permissions on cache file behavior
requires that the login.krb5 binary be used
for authentication so that it can properly change ownership for
the forwarded credentials.Mitigating limitations found in KerberosKerberos5Limitations and ShortcomingsKerberos is an all-or-nothing approachEvery service enabled on the network must be modified to
work with Kerberos (or be otherwise
secured against network attacks) or else the users credentials
could be stolen and re-used. An example of this would be
Kerberos enabling all remote shells
(via rsh and telnet, for
example) but not converting the POP3 mail
server which sends passwords in plaintext.Kerberos is intended for single-user workstationsIn a multi-user environment,
Kerberos is less secure.
This is because it stores the tickets in the
/tmp directory, which is readable by all
users. If a user is sharing a computer with several other
people simultaneously (i.e. multi-user), it is possible that
the user's tickets can be stolen (copied) by another
user.This can be overcome with the -c
filename command-line option or (preferably) the
KRB5CCNAME environment variable, but this
is rarely done. In principal, storing the ticket in the users
home directory and using simple file permissions can mitigate
this problem.The KDC is a single point of failureBy design, the KDC must be as secure as
the master password database is contained on it. The
KDC should have absolutely no other
services running on it and should be physically secured. The
danger is high because Kerberos
stores all passwords encrypted with the same key (the
master key), which in turn is stored as a file
on the KDC.As a side note, a compromised master key is not quite as
bad as one might normally fear. The master key is only used
to encrypt the Kerberos database
and as a seed for the random number generator. As long as
access to your KDC is secure, an attacker
cannot do much with the master key.Additionally, if the KDC is unavailable
(perhaps due to a denial of service attack or network problems)
the network services are unusable as authentication can not be
performed, a recipe for a denial-of-service attack. This can
alleviated with multiple KDCs (a single
master and one or more slaves) and with careful implementation
of secondary or fall-back authentication
(PAM is excellent for this).Kerberos ShortcomingsKerberos allows users, hosts
and services to authenticate between themselves. It does not
have a mechanism to authenticate the KDC
to the users, hosts or services. This means that a trojanned
kinit (for example) could record all user
names and passwords. Something like
security/tripwire or
other file system integrity checking tools can alleviate
this.Resources and further informationKerberos5External Resources
The Kerberos FAQDesigning
an Authentication System: a Dialogue in Four ScenesRFC 1510,
The Kerberos Network Authentication Service
(V5)MIT
Kerberos home pageHeimdal
Kerberos home pageGaryPalmerContributed by AlexNashFirewallsfirewallsecurityfirewallsFirewalls are an area of increasing interest for people who are
connected to the Internet, and are even finding applications on private
networks to provide enhanced security. This section will hopefully
explain what firewalls are, how to use them, and how to use the
facilities provided in the FreeBSD kernel to implement them.People often think that having a firewall between your
internal network and the Big Bad Internet will solve all
your security problems. It may help, but a poorly set up firewall
system is more of a security risk than not having one at all. A
firewall can add another layer of security to your systems, but it
cannot stop a really determined cracker from penetrating your internal
network. If you let internal security lapse because you believe your
firewall to be impenetrable, you have just made the crackers job that
much easier.What Is a Firewall?There are currently two distinct types of firewalls in common use
on the Internet today. The first type is more properly called a
packet filtering router. This type of
firewall utilizes a multi-homed machine and a set of rules to
determine whether to forward or block individual packets. A
multi-homed machine is simply a device with multiple network
interfaces.
The second type, known as a proxy
server, relies on daemons to provide authentication and to
forward packets, possibly on a multi-homed machine which has kernel
packet forwarding disabled.Sometimes sites combine the two types of firewalls, so that only a
certain machine (known as a bastion host) is
allowed to send packets through a packet filtering router onto an
internal network. Proxy services are run on the bastion host, which
are generally more secure than normal authentication
mechanisms.FreeBSD comes with a kernel packet filter (known as
IPFW), which is what the rest of this
section will concentrate on. Proxy servers can be built on FreeBSD
from third party software, but there is such a variety of proxy
servers available that it would be impossible to cover them in this
section.Packet Filtering RoutersA router is a machine which forwards packets between two or more
networks. A packet filtering router is programmed to
compare each packet to a list of rules before
deciding if it should be forwarded or not. Most modern IP routing
software includes packet filtering functionality that defaults to
forwarding all packets. To enable the filters, you need to define a
set of rules.To decide whether a packet should be passed on, the firewall looks
through its set of rules for a rule which matches the contents of
the packet's headers. Once a match is found, the rule action is
obeyed. The rule action could be to drop the packet, to forward the
packet, or even to send an ICMP message back to the originator.
Only the first match counts, as the rules are searched in order.
Hence, the list of rules can be referred to as a rule
chain.The packet-matching criteria varies depending on the software
used, but typically you can specify rules which depend on the source
IP address of the packet, the destination IP address, the source
port number, the destination port number (for protocols which
support ports), or even the packet type (UDP, TCP, ICMP,
etc).Proxy ServersProxy servers are machines which have had the normal system
daemons (telnetd,
ftpd, etc) replaced with special servers.
These
servers are called proxy servers, as they
normally only allow onward connections to be made. This enables you
to run (for example) a proxy telnet server on your firewall host,
and people can telnet in to your firewall from the outside, go
through some authentication mechanism, and then gain access to the
internal network (alternatively, proxy servers can be used for
signals coming from the internal network and heading out).Proxy servers are normally more secure than normal servers, and
often have a wider variety of authentication mechanisms available,
including one-shot password systems so that even if
someone manages to discover what password you used, they will not be
able to use it to gain access to your systems as the password
expires immediately after the first use. As they do not actually give users access to the
host machine, it becomes a lot more difficult for someone to install
backdoors around your security system.Proxy servers often have ways of restricting access further, so
that only certain hosts can gain access to the servers.
Most will also allow the administrator to specify which
users can talk to which destination machines.
Again, what facilities are available
depends largely on what proxy software you choose.What Does IPFW Allow Me to Do?ipfwIPFW, the software supplied with
FreeBSD, is a packet filtering and accounting system which resides in
the kernel, and has a user-land control utility,
&man.ipfw.8;. Together, they allow you to define and query the
rules used by the kernel in its routing decisions.There are two related parts to IPFW.
The firewall section performs packet filtering. There is
also an IP accounting section which tracks usage of the
router, based on rules similar to those used in the firewall
section. This allows
the administrator to monitor how much traffic the router is
getting from a certain machine, or how much WWW traffic it is
forwarding, for example.As a result of the way that IPFW is
designed, you can use IPFW on non-router
machines to perform packet filtering on incoming and outgoing
connections. This is a special case of the more general use of
IPFW, and the same commands and techniques
should be used in this situation.Enabling IPFW on FreeBSDipfwenablingAs the main part of the IPFW system
lives in the kernel, you will need to add one or more options to your
kernel configuration file, depending on what facilities you want, and
recompile your kernel. See "Reconfiguring your Kernel" ()
for more details on how to recompile your
kernel.IPFW defaults to a policy of deny ip from any to
any. If you do not add other rules during startup to
allow access, you will lock yourself out of the
server upon rebooting into a firewall-enabled kernel. We suggest
that you set firewall_type=open in your
/etc/rc.conf file when first enabling this
feature, then refining the firewall rules in
/etc/rc.firewall after you have tested that the
new kernel feature works properly. To be on the safe side, you may
wish to consider performing the initial firewall configuration from
the local console rather than via
ssh. Another option is to build a kernel
using both the IPFIREWALL and
IPFIREWALL_DEFAULT_TO_ACCEPT options. This will
change the default rule of IPFW to allow ip from any to
any and avoid the possibility of a lockout.There are currently four kernel configuration options relevant to
IPFW:options IPFIREWALLCompiles into the kernel the code for packet
filtering.options IPFIREWALL_VERBOSEEnables code to allow logging of packets through
&man.syslogd.8;. Without this option, even if you specify
that packets should be logged in the filter rules, nothing will
happen.options IPFIREWALL_VERBOSE_LIMIT=10Limits the number of packets logged through
&man.syslogd.8; on a per entry basis. You may wish to use
this option in hostile environments in which you want to log
firewall activity, but do not want to be open to a denial of
service attack via syslog flooding.When a chain entry reaches the packet limit specified,
logging is turned off for that particular entry. To resume
logging, you will need to reset the associated counter using the
&man.ipfw.8; utility:&prompt.root; ipfw zero 4500Where 4500 is the chain entry you wish to continue
logging.options IPFIREWALL_DEFAULT_TO_ACCEPTThis changes the default rule action from deny
to allow. This avoids the possibility of locking
yourself out if you happen to boot a kernel with
IPFIREWALL support but have not configured
your firewall yet. It is also very useful if you often use
&man.ipfw.8; as a filter for specific problems as they arise.
Use with care though, as this opens up the firewall and changes
the way it works.Previous versions of FreeBSD contained an
IPFIREWALL_ACCT option. This is now obsolete as
the firewall code automatically includes accounting
facilities.Configuring IPFWipfwconfiguringThe configuration of the IPFW software
is done through the &man.ipfw.8; utility. The syntax for this
command looks quite complicated, but it is relatively simple once you
understand its structure.There are currently four different command categories used by the
utility: addition/deletion, listing, flushing, and clearing.
Addition/deletion is used to build the rules that control how packets
are accepted, rejected, and logged. Listing is used to examine the
contents of your rule set (otherwise known as the chain) and packet
counters (accounting). Flushing is used to remove all entries from
the chain. Clearing is used to zero out one or more accounting
entries.Altering the IPFW RulesThe syntax for this form of the command is:
ipfw-NcommandindexactionlogprotocoladdressesoptionsThere is one valid flag when using this form of the
command:-NResolve addresses and service names in output.The command given can be shortened to the
shortest unique form. The valid commands
are:addAdd an entry to the firewall/accounting rule listdeleteDelete an entry from the firewall/accounting rule
listPrevious versions of IPFW used
separate firewall and accounting entries. The present version
provides packet accounting with each firewall entry.If an index value is supplied, it is used to
place the entry at a specific point in the chain. Otherwise, the
entry is placed at the end of the chain at an index 100 greater than
the last chain entry (this does not include the default policy, rule
65535, deny).The log option causes matching rules to be
output to the system console if the kernel was compiled with
IPFIREWALL_VERBOSE.Valid actions are:rejectDrop the packet, and send an ICMP host or port unreachable
(as appropriate) packet to the source.allowPass the packet on as normal. (aliases:
pass, permit, and
accept)denyDrop the packet. The source is not notified via an
ICMP message (thus it appears that the packet never
arrived at the destination).countUpdate packet counters but do not allow/deny the packet
based on this rule. The search continues with the next chain
entry.Each action will be recognized by the
shortest unambiguous prefix.The protocols which can be specified
are:allMatches any IP packeticmpMatches ICMP packetstcpMatches TCP packetsudpMatches UDP packetsThe address specification is:fromaddress/maskporttoaddress/maskportvia interfaceYou can only specify port in
conjunction with protocols which support ports
(UDP and TCP).The is optional and may specify the IP
address or domain name of a local IP interface, or an interface name
(e.g. ed0) to match only packets coming
through this interface. Interface unit numbers can be specified
with an optional wildcard. For example, ppp*
would match all kernel PPP interfaces.The syntax used to specify an
address/mask is:
address
or
address/mask-bits
or
address:mask-patternA valid hostname may be specified in place of the IP address.
is a decimal
number representing how many bits in the address mask should be set.
e.g. specifying 192.216.222.1/24
will create a
mask which will allow any address in a class C subnet (in this case,
192.216.222) to be matched.
is an IP
address which will be logically AND'ed with the address given. The
keyword any may be used to specify any IP
address.The port numbers to be blocked are specified as:
port,port,port…
to specify either a single port or a list of ports, or
port-port
to specify a range of ports. You may also combine a single range
with a list, but the range must always be specified first.The options available are:fragMatches if the packet is not the first fragment of the
datagram.inMatches if the packet is on the way in.outMatches if the packet is on the way out.ipoptions specMatches if the IP header contains the comma separated list
of options specified in spec. The
supported IP options are: ssrr
(strict source route), lsrr (loose source
route), rr (record packet route), and
ts (time stamp). The absence of a
particular option may be specified with a leading
!.establishedMatches if the packet is part of an already established
TCP connection (i.e. it has the RST or ACK bits set). You can
optimize the performance of the firewall by placing
established rules early in the
chain.setupMatches if the packet is an attempt to establish a TCP
connection (the SYN bit is set but the ACK bit is
not).tcpflags flagsMatches if the TCP header contains the comma separated
list of flags. The supported flags
are fin, syn,
rst, psh,
ack, and urg. The
absence of a particular flag may be indicated by a leading
!.icmptypes typesMatches if the ICMP type is present in the list
types. The list may be specified
as any combination of ranges and/or individual types separated
by commas. Commonly used ICMP types are: 0
echo reply (ping reply), 3 destination
unreachable, 5 redirect,
8 echo request (ping request), and
11 time exceeded (used to indicate TTL
expiration as with &man.traceroute.8;).Listing the IPFW RulesThe syntax for this form of the command is:
ipfw-a-c-d-e-t-N-SlistThere are seven valid flags when using this form of the
command:-aWhile listing, show counter values. This option is the
only way to see accounting counters.-cList rules in compact form.-dShow dynamic rules in addition to static rules.-eIf was specified, also show expired
dynamic rules.-tDisplay the last match times for each chain entry. The
time listing is incompatible with the input syntax used by the
&man.ipfw.8; utility.-NAttempt to resolve given addresses and service
names.-SShow the set each rule belongs to. If this flag is not
specified, disabled rules will not be listed.Flushing the IPFW RulesThe syntax for flushing the chain is:
ipfwflushThis causes all entries in the firewall chain to be removed
except the fixed default policy enforced by the kernel (index
65535). Use caution when flushing rules; the default deny policy
will leave your system cut off from the network until allow entries
are added to the chain.Clearing the IPFW Packet CountersThe syntax for clearing one or more packet counters is:
ipfwzeroindexWhen used without an index argument,
all packet counters are cleared. If an
index is supplied, the clearing operation
only affects a specific chain entry.Example Commands for ipfwThis command will deny all packets from the host evil.crackers.org to the telnet port of the
host nice.people.org:&prompt.root; ipfw add deny tcp from evil.crackers.org to nice.people.org 23The next example denies and logs any TCP traffic from the entire
crackers.org network (a class C) to
the nice.people.org machine (any
port).&prompt.root; ipfw add deny log tcp from evil.crackers.org/24 to nice.people.orgIf you do not want people sending X sessions to your internal
network (a subnet of a class C), the following command will do the
necessary filtering:&prompt.root; ipfw add deny tcp from any to my.org/28 6000 setupTo see the accounting records:
&prompt.root; ipfw -a list
or in the short form
&prompt.root; ipfw -a lYou can also see the last time a chain entry was matched
with:&prompt.root; ipfw -at lBuilding a Packet Filtering FirewallThe following suggestions are just that: suggestions. The
requirements of each firewall are different and we cannot tell you
how to build a firewall to meet your particular requirements.When initially setting up your firewall, unless you have a test
bench setup where you can configure your firewall host in a controlled
environment, it is strongly recommend you use the logging version of the
commands and enable logging in the kernel. This will allow you to
quickly identify problem areas and cure them without too much
disruption. Even after the initial setup phase is complete, I
recommend using the logging for `deny' as it allows tracing of
possible attacks and also modification of the firewall rules if your
requirements alter.If you use the logging versions of the accept
command, be aware that it can generate
large amounts of log data. One log
entry will be generated for every packet that passes
through the firewall, so large FTP/http transfers, etc, will really
slow the system down. It also increases the latencies on those
packets as it requires more work to be done by the kernel before the
packet can be passed on. syslogd will
also start using up a lot
more processor time as it logs all the extra data to disk, and it
could quite easily fill the partition /var/log
is located on.You should enable your firewall from
/etc/rc.conf.local or
/etc/rc.conf. The associated manual page explains
which knobs to fiddle and lists some preset firewall configurations.
If you do not use a preset configuration, ipfw list
will output the current ruleset into a file that you can
pass to rc.conf. If you do not use
/etc/rc.conf.local or
/etc/rc.conf to enable your firewall,
it is important to make sure your firewall is enabled before
any IP interfaces are configured.The next problem is what your firewall should actually
do! This is largely dependent on what access to
your network you want to allow from the outside, and how much access
to the outside world you want to allow from the inside. Some general
rules are:Block all incoming access to ports below 1024 for TCP. This is
where most of the security sensitive services are, like finger,
SMTP (mail) and telnet.Block all incoming UDP traffic. There
are very few useful services that travel over UDP, and what useful
traffic there is, is normally a security threat (e.g. Suns RPC and
NFS protocols). This has its disadvantages also, since UDP is a
connectionless protocol, denying incoming UDP traffic also blocks
the replies to outgoing UDP traffic. This can cause a problem for
people (on the inside) using external archie (prospero) servers.
If you want to allow access to archie, you will have to allow
packets coming from ports 191 and 1525 to any internal UDP port
through the firewall. ntp is another
service you may consider allowing through, which comes from port
123.Block traffic to port 6000 from the outside. Port 6000 is the
port used for access to X11 servers, and can be a security threat
(especially if people are in the habit of doing xhost
+ on their workstations). X11 can actually use a
range of ports starting at 6000, the upper limit being how many X
displays you can run on the machine. The upper limit as defined
by RFC 1700 (Assigned Numbers) is 6063.Check what ports any internal servers use (e.g. SQL servers,
etc). It is probably a good idea to block those as well, as they
normally fall outside the 1-1024 range specified above.Another checklist for firewall configuration is available from
CERT at As stated above, these are only guidelines.
You will have to decide what filter rules you want to use on your
firewall yourself. We cannot accept ANY responsibility if someone
breaks into your network, even if you follow the advice given
above.IPFW Overhead and OptimizationMany people want to know how much overhead IPFW adds to a
system. The answer to this depends mostly on your rule set and
processor speed. For most applications dealing with Ethernet
and small rule sets, the answer is
negligible. For those of you that need actual
measurements to satisfy your curiosity, read on.The following measurements were made using 2.2.5-STABLE on
a 486-66. (While IPFW has changed slightly in later releases
of FreeBSD, it still performs with similar speed.) IPFW was
modified to measure the time spent within the
ip_fw_chk routine, displaying the results
to the console every 1000 packets.Two rule sets, each with 1000 rules, were tested. The
first set was designed to demonstrate a worst case scenario by
repeating the rule:&prompt.root; ipfw add deny tcp from any to any 55555This demonstrates a worst case scenario by causing most of IPFW's
packet check routine to be executed before finally deciding
that the packet does not match the rule (by virtue of the port
number). Following the 999th iteration of this rule was an
allow ip from any to any.The second set of rules were designed to abort the rule
check quickly:&prompt.root; ipfw add deny ip from 1.2.3.4 to 1.2.3.4The non-matching source IP address for the above rule
causes these rules to be skipped very quickly. As before, the
1000th rule was an allow ip from any to
any.The per-packet processing overhead in the former case was
approximately 2.703 ms/packet, or roughly 2.7 microseconds per
rule. Thus the theoretical packet processing limit with these
rules is around 370 packets per second. Assuming 10 Mbps
Ethernet and a ~1500 byte packet size, we would only be able
to achieve 55.5% bandwidth utilization.For the latter case each packet was processed in
approximately 1.172 ms, or roughly 1.2 microseconds per rule.
The theoretical packet processing limit here would be about
853 packets per second, which could consume 10 Mbps Ethernet
bandwidth.The excessive number of rules tested and the nature of
those rules do not provide a real-world scenario -- they were
used only to generate the timing information presented here.
Here are a few things to keep in mind when building an
efficient rule set:Place an established rule early on
to handle the majority of TCP traffic. Do not put any
allow tcp statements before this
rule.Place heavily triggered rules earlier in the rule set
than those rarely used (without changing the
permissiveness of the firewall, of course).
You can see which rules are used most often by examining
the packet counting statistics with ipfw -a
l.OpenSSLsecurityOpenSSLOpenSSLAs of FreeBSD 4.0, the OpenSSL toolkit is a part of the base
system. OpenSSL
provides a general-purpose cryptography library, as well as the
Secure Sockets Layer v2/v3 (SSLv2/SSLv3) and Transport Layer
Security v1 (TLSv1) network security protocols.However, one of the algorithms (specifically IDEA)
included in OpenSSL is protected by patents in the USA and
elsewhere, and is not available for unrestricted use.
IDEA is included in the OpenSSL sources in FreeBSD, but it is not
built by default. If you wish to use it, and you comply with the
license terms, enable the MAKE_IDEA switch in
/etc/make.conf and
rebuild your sources using make world.Today, the RSA algorithm is free for use in USA and other
countries. In the past it was protected by a patent.OpenSSLinstallSource Code InstallationsOpenSSL is part of the src-crypto and
src-secureCVSup collections. See the Obtaining FreeBSD section for more
information about obtaining and updating FreeBSD source
code.NikClaytonnik@FreeBSD.orgWritten by VPN over IPsecCreating a VPN between two networks, separated by the
Internet, using FreeBSD gateways.Hiten M.Pandyahmp@FreeBSD.orgWritten by Understanding IPsecThis section will guide you through the process of setting
up IPsec, and to use it in an environment which consists of
FreeBSD and µsoft.windows; 2000/XP
machines, to make them communicate securely. In order to set up
IPsec, it is necessary that you are familiar with the concepts
of building a custom kernel (see
).IPsec is a protocol which sits on top
of the Internet Protocol (IP) layer. It allows two or more
hosts to communicate in a secure manner (hence the name). The
FreeBSD IPsec network stack is based on the
KAME implementation,
which has support for both protocol families, IPv4 and
IPv6.FreeBSD 5.X contains a hardware
accelerated IPsec stack, known as Fast
IPsec, that was obtained from OpenBSD. It employs
cryptographic hardware (whenever possible) via the
&man.crypto.4; subsystem to optimize the performance of IPsec.
This subsystem is new, and does not support all the features
that are available in the KAME version of IPsec. However, in
order to enable hardware-accelerated IPsec, the following
kernel option has to be added to your kernel configuration
file:
options FAST_IPSEC # new IPsec (cannot define w/ IPSEC)
Note, that it is not currently possible to use the
Fast IPsec subsystem in lue with the KAME
implementation of IPsec. Consult the &man.fast.ipsec.4;
manual page for more information.IPsec consists of two sub-protocols:Encapsulated Security Payload
(ESP), protects the IP packet data from third
party interference, by encrypting the contents using
symmetric cryptography algorithms (like Blowfish,
3DES).Authentication Header (AH),
protects the IP packet header from third party interference
and spoofing, by computing a cryptographic checksum and
hashing the IP packet header fields with a secure hashing
function. This is then followed by an additional header
that contains the hash, to allow the information in the
packet to be authenticated.ESP and AH can
either be used together or separately, depending on the
environment.IPsec can either be used to directly encrypt the traffic
between two hosts (known as Transport
Mode); or to build virtual tunnels
between two subnets, which could be used for secure
communication between two corporate networks (known as
Tunnel Mode). The latter is more commonly
known as a Virtual Private Network (VPN).
The &man.ipsec.4; manual page should be consulted for detailed
information on the IPsec subsystem in FreeBSD.To add IPsec support to your kernel, add the following
options to your kernel configuration file:
options IPSEC #IP security
options IPSEC_ESP #IP security (crypto; define w/ IPSEC)
If IPsec debugging support is desired, the following
kernel option should also be added:
options IPSEC_DEBUG #debug for IP security
The ProblemThere's no standard for what constitutes a VPN. VPNs can
be implemented using a number of different technologies, each of
which have their own strengths and weaknesses. This article
presents a number of scenarios, and strategies for implementing a
VPN for each scenario.Scenario #1: Two networks, connected to the Internet, to
behave as oneThis is the scenario that caused me to first investigating
VPNs. The premise is as follows:You have at least two sitesBoth sites are using IP internallyBoth sites are connected to the Internet, through a
gateway that is running FreeBSD.The gateway on each network has at least one public IP
address.The internal addresses of the two networks can be
public or private IP addresses, it doesn't matter. You can
be running NAT on the gateway machine if necessary.The internal IP addresses of the two networks
do not collide. While I expect it is
theoretically possible to use a combination of VPN
technology and NAT to get this to work, I expect it to be a
configuration nightmare.If you find that you are trying to connect two networks,
both of which, internally, use the same private IP address range
(e.g., both of them use 192.168.1.x), then one of the networks will
have to be renumbered.The network topology might look something like this:Network #1 [ Internal Hosts ] Private Net, 192.168.1.2-254
[ Win9x/NT/2K ]
[ UNIX ]
|
|
.---[fxp1]---. Private IP, 192.168.1.1
| FreeBSD |
`---[fxp0]---' Public IP, A.B.C.D
|
|
-=-=- Internet -=-=-
|
|
.---[fxp0]---. Public IP, W.X.Y.Z
| FreeBSD |
`---[fxp1]---' Private IP, 192.168.2.1
|
|
Network #2 [ Internal Hosts ]
[ Win9x/NT/2K ] Private Net, 192.168.2.2-254
[ UNIX ]Notice the two public IP addresses. I'll use the letters to
refer to them in the rest of this article. Anywhere you see those
letters in this article, replace them with your own public IP
addresses. Note also that internally, the two gateway
machines have .1 IP addresses, and that the two networks have
different private IP addresses (192.168.1.x and 192.168.2.x respectively). All the
machines on the private networks have been configured to use the
.1 machine as their default
gateway.The intention is that, from a network point of view, each
network should view the machines on the other network as though
they were directly attached the same router -- albeit a slightly
slow router with an occasional tendency to drop packets.This means that (for example), machine 192.168.1.20 should be able to runping 192.168.2.34and have it work, transparently. &windows; machines should
be able to see the machines on the other network, browse file
shares, and so on, in exactly the same way that they can browse
machines on the local network.And the whole thing has to be secure. This means that
traffic between the two networks has to be encrypted.Creating a VPN between these two networks is a multi-step
process. The stages are as follows:Create a virtual network link between the two
networks, across the Internet. Test it, using tools like
&man.ping.8;, to make sure it works.Apply security policies to ensure that traffic between
the two networks is transparently encrypted and decrypted as
necessary. Test this, using tools like &man.tcpdump.1;, to
ensure that traffic is encrypted.Configure additional software on the FreeBSD gateways,
to allow &windows; machines to see one another across the
VPN.Step 1: Creating and testing a virtual
network linkSuppose that you were logged in to the gateway machine on
network #1 (with public IP address A.B.C.D, private IP address 192.168.1.1), and you ran ping
192.168.2.1, which is the private address of the machine
with IP address W.X.Y.Z. What
needs to happen in order for this to work?The gateway machine needs to know how to reach 192.168.2.1. In other words, it needs
to have a route to 192.168.2.1.Private IP addresses, such as those in the 192.168.x range are not supposed to
appear on the Internet at large. Instead, each packet you
send to 192.168.2.1 will need
to be wrapped up inside another packet. This packet will need
to appear to be from A.B.C.D,
and it will have to be sent to W.X.Y.Z. This process is called
encapsulation.Once this packet arrives at W.X.Y.Z it will need to
unencapsulated, and delivered to 192.168.2.1.You can think of this as requiring a tunnel
between the two networks. The two tunnel mouths are the IP
addresses A.B.C.D and W.X.Y.Z, and the tunnel must be told the
addresses of the private IP addresses that will be allowed to pass
through it. The tunnel is used to transfer traffic with private
IP addresses across the public Internet.This tunnel is created by using the generic interface, or
gif devices on FreeBSD. As you can
imagine, the gif interface on each
gateway host must be configured with four IP addresses; two for
the public IP addresses, and two for the private IP
addresses.Support for the gif device must be compiled in to the
FreeBSD kernel on both machines. You can do this by adding the
line:pseudo-device gifto the kernel configuration files on both machines, and
then compile, install, and reboot as normal.Configuring the tunnel is a two step process. First the
tunnel must be told what the outside (or public) IP addresses
are, using &man.gifconfig.8;. Then the private IP addresses must be
configured using &man.ifconfig.8;.On the gateway machine on network #1 you would run the
following two commands to configure the tunnel.gifconfig gif0 A.B.C.D W.X.Y.Z
ifconfig gif0 inet 192.168.1.1 192.168.2.1 netmask 0xffffffff
On the other gateway machine you run the same commands,
but with the order of the IP addresses reversed.gifconfig gif0 W.X.Y.Z A.B.C.D
ifconfig gif0 inet 192.168.2.1 192.168.1.1 netmask 0xffffffff
You can then run:gifconfig gif0to see the configuration. For example, on the network #1
gateway, you would see this:&prompt.root; gifconfig gif0
gif0: flags=8011<UP,POINTTOPOINT,MULTICAST> mtu 1280
inet 192.168.1.1 --> 192.168.2.1 netmask 0xffffffff
physical address inet A.B.C.D --> W.X.Y.Z
As you can see, a tunnel has been created between the
physical addresses A.B.C.D and
W.X.Y.Z, and the traffic allowed
through the tunnel is that between 192.168.1.1 and 192.168.2.1.This will also have added an entry to the routing table
on both machines, which you can examine with the command netstat -rn.
This output is from the gateway host on network #1.&prompt.root; netstat -rn
Routing tables
Internet:
Destination Gateway Flags Refs Use Netif Expire
...
192.168.2.1 192.168.1.1 UH 0 0 gif0
...
As the Flags value indicates, this is a
host route, which means that each gateway knows how to reach the
other gateway, but they do not know how to reach the rest of
their respective networks. That problem will be fixed
shortly.It is likely that you are running a firewall on both
machines. This will need to be circumvented for your VPN
traffic. You might want to allow all traffic between both
networks, or you might want to include firewall rules that
protect both ends of the VPN from one another.It greatly simplifies testing if you configure the
firewall to allow all traffic through the VPN. You can always
tighten things up later. If you are using &man.ipfw.8; on the
gateway machines then a command likeipfw add 1 allow ip from any to any via gif0will allow all traffic between the two end points of the
VPN, without affecting your other firewall rules. Obviously
you will need to run this command on both gateway hosts.This is sufficient to allow each gateway machine to ping
the other. On 192.168.1.1, you
should be able to runping 192.168.2.1and get a response, and you should be able to do the same
thing on the other gateway machine.However, you will not be able to reach internal machines
on either network yet. This is because of the routing --
although the gateway machines know how to reach one another,
they do not know how to reach the network behind each one.To solve this problem you must add a static route on each
gateway machine. The command to do this on the first gateway
would be:route add 192.168.2.0 192.168.2.1 netmask 0xffffff00
This says In order to reach the hosts on the
network 192.168.2.0, send the
packets to the host 192.168.2.1. You will need to
run a similar command on the other gateway, but with the
192.168.1.x addresses
instead.IP traffic from hosts on one network will now be able to
reach hosts on the other network.That has now created two thirds of a VPN between the two
networks, in as much as it is virtual and it is a
network. It is not private yet. You can test
this using &man.ping.8; and &man.tcpdump.1;. Log in to the
gateway host and runtcpdump dst host 192.168.2.1In another log in session on the same host runping 192.168.2.1You will see output that looks something like this:
16:10:24.018080 192.168.1.1 > 192.168.2.1: icmp: echo request
16:10:24.018109 192.168.1.1 > 192.168.2.1: icmp: echo reply
16:10:25.018814 192.168.1.1 > 192.168.2.1: icmp: echo request
16:10:25.018847 192.168.1.1 > 192.168.2.1: icmp: echo reply
16:10:26.028896 192.168.1.1 > 192.168.2.1: icmp: echo request
16:10:26.029112 192.168.1.1 > 192.168.2.1: icmp: echo reply
As you can see, the ICMP messages are going back and forth
unencrypted. If you had used the parameter to
&man.tcpdump.1; to grab more bytes of data from the packets you
would see more information.Obviously this is unacceptable. The next section will
discuss securing the link between the two networks so that it
all traffic is automatically encrypted.Summary:Configure both kernels with pseudo-device
gif.Edit /etc/rc.conf on gateway host
#1 and add the following lines (replacing IP addresses as
necessary).gifconfig_gif0="A.B.C.D W.X.Y.Z"
ifconfig_gif0="inet 192.168.1.1 192.168.2.1 netmask 0xffffffff"
static_routes="vpn"
route_vpn="192.168.2.0 192.168.2.1 netmask 0xffffff00"
Edit your firewall script
(/etc/rc.firewall, or similar) on both
hosts, and addipfw add 1 allow ip from any to any via gif0Make similar changes to
/etc/rc.conf on gateway host #2,
reversing the order of IP addresses.Step 2: Securing the linkTo secure the link we will be using IPsec. IPsec provides
a mechanism for two hosts to agree on an encryption key, and to
then use this key in order to encrypt data between the two
hosts.The are two areas of configuration to be considered here.There must be a mechanism for two hosts to agree on the
encryption mechanism to use. Once two hosts have agreed on
this mechanism there is said to be a security association
between them.There must be a mechanism for specifying which traffic
should be encrypted. Obviously, you don't want to encrypt
all your outgoing traffic -- you only want to encrypt the
traffic that is part of the VPN. The rules that you put in
place to determine what traffic will be encrypted are called
security policies.Security associations and security policies are both
maintained by the kernel, and can be modified by userland
programs. However, before you can do this you must configure the
kernel to support IPsec and the Encapsulated Security Payload
(ESP) protocol. This is done by configuring a kernel with:options IPSEC
options IPSEC_ESP
and recompiling, reinstalling, and rebooting. As before
you will need to do this to the kernels on both of the gateway
hosts.You have two choices when it comes to setting up security
associations. You can configure them by hand between two hosts,
which entails choosing the encryption algorithm, encryption keys,
and so forth, or you can use daemons that implement the Internet
Key Exchange protocol (IKE) to do this for you.I recommend the latter. Apart from anything else, it is
easier to set up.Editing and displaying security policies is carried out
using &man.setkey.8;. By analogy, setkey is
to the kernel's security policy tables as &man.route.8; is to
the kernel's routing tables. setkey can
also display the current security associations, and to continue
the analogy further, is akin to netstat -r
in that respect.There are a number of choices for daemons to manage
security associations with FreeBSD. This article will describe
how to use one of these, racoon. racoon is in the FreeBSD ports
collection, in the security/ category, and is installed in the
usual way.racoon must be run on both gateway hosts. On each host it
is configured with the IP address of the other end of the VPN,
and a secret key (which you choose, and must be the same on both
gateways).The two daemons then contact one another, confirm that they
are who they say they are (by using the secret key that you
configured). The daemons then generate a new secret key, and use
this to encrypt the traffic over the VPN. They periodically
change this secret, so that even if an attacker were to crack one
of the keys (which is as theoretically close to unfeasible as it
gets) it won't do them much good -- by the time they've cracked
the key the two daemons have chosen another one.racoon's configuration is stored in
${PREFIX}/etc/racoon. You should find a
configuration file there, which should not need to be changed
too much. The other component of racoon's configuration,
which you will need to change, is the pre-shared
key.The default racoon configuration expects to find this in
the file ${PREFIX}/etc/racoon/psk.txt. It is important to note
that the pre-shared key is not the key that will be used to
encrypt your traffic across the VPN link, it is simply a token
that allows the key management daemons to trust one another.psk.txt contains a line for each
remote site you are dealing with. In this example, where there
are two sites, each psk.txt file will contain one line (because
each end of the VPN is only dealing with one other end).On gateway host #1 this line should look like this:W.X.Y.Z secretThat is, the public IP address of the remote end,
whitespace, and a text string that provides the secret.
Obviously, you shouldn't use secret as your key -- the normal
rules for choosing a password apply.On gateway host #2 the line would look like thisA.B.C.D secretThat is, the public IP address of the remote end, and the
same secret key. psk.txt must be mode
0600 (i.e., only read/write to
root) before racoon will run.You must run racoon on both gateway machines. You will
also need to add some firewall rules to allow the IKE traffic,
which is carried over UDP to the ISAKMP (Internet Security Association
Key Management Protocol) port. Again, this should be fairly early in
your firewall ruleset.ipfw add 1 allow udp from A.B.C.D to W.X.Y.Z isakmp
ipfw add 1 allow udp from W.X.Y.Z to A.B.C.D isakmp
Once racoon is running you can try pinging one gateway host
from the other. The connection is still not encrypted, but
racoon will then set up the security associations between the two
hosts -- this might take a moment, and you may see this as a
short delay before the ping commands start responding.Once the security association has been set up you can
view it using &man.setkey.8;. Runsetkey -Don either host to view the security association information.That's one half of the problem. They other half is setting
your security policies.To create a sensible security policy, let's review what's
been set up so far. This discussions hold for both ends of the
link.Each IP packet that you send out has a header that contains
data about the packet. The header includes the IP addresses of
both the source and destination. As we already know, private IP
addresses, such as the 192.168.x.y
range are not supposed to appear on the public Internet.
Instead, they must first be encapsulated inside another packet.
This packet must have the public source and destination IP
addresses substituted for the private addresses.So if your outgoing packet started looking like this:
.----------------------.
| Src: 192.168.1.1 |
| Dst: 192.168.2.1 |
| <other header info> |
+----------------------+
| <packet data> |
`----------------------'Then it will be encapsulated inside another packet, looking
something like this:
.--------------------------.
| Src: A.B.C.D |
| Dst: W.X.Y.Z |
| <other header info> |
+--------------------------+
| .----------------------. |
| | Src: 192.168.1.1 | |
| | Dst: 192.168.2.1 | |
| | <other header info> | |
| +----------------------+ |
| | <packet data> | |
| `----------------------' |
`--------------------------'This encapsulation is carried out by the
gif device. As
you can see, the packet now has real IP addresses on the outside,
and our original packet has been wrapped up as data inside the
packet that will be put out on the Internet.Obviously, we want all traffic between the VPNs to be
encrypted. You might try putting this in to words, as:If a packet leaves from A.B.C.D, and it is destined for W.X.Y.Z, then encrypt it, using the
necessary security associations.If a packet arrives from W.X.Y.Z, and it is destined for A.B.C.D, then decrypt it, using the
necessary security associations.That's close, but not quite right. If you did this, all
traffic to and from W.X.Y.Z, even
traffic that was not part of the VPN, would be encrypted. That's
not quite what you want. The correct policy is as followsIf a packet leaves from A.B.C.D, and that packet is encapsulating
another packet, and it is destined for W.X.Y.Z, then encrypt it, using the
necessary security associations.If a packet arrives from W.X.Y.Z, and that packet is encapsulating
another packet, and it is destined for A.B.C.D, then encrypt it, using the
necessary security associations.A subtle change, but a necessary one.Security policies are also set using &man.setkey.8;.
&man.setkey.8; features a configuration language for defining the
policy. You can either enter configuration instructions via
stdin, or you can use the option to specify a
filename that contains configuration instructions.The configuration on gateway host #1 (which has the public
IP address A.B.C.D) to force all
outbound traffic to W.X.Y.Z to be
encrypted is:
spdadd A.B.C.D/32 W.X.Y.Z/32 ipencap -P out ipsec esp/tunnel/A.B.C.D-W.X.Y.Z/require;
Put these commands in a file (e.g.,
/etc/ipsec.conf) and then run&prompt.root; setkey -f /etc/ipsec.conf tells &man.setkey.8; that we want
to add a rule to the secure policy database. The rest of this
line specifies which packets will match this policy. A.B.C.D/32 and W.X.Y.Z/32 are the IP addresses and
netmasks that identify the network or hosts that this policy will
apply to. In this case, we want it to apply to traffic between
these two hosts. tells the kernel that
this policy should only apply to packets that encapsulate other
packets. says that this policy applies
to outgoing packets, and says that the
packet will be secured.The second line specifies how this packet will be
encrypted. is the protocol that will be
used, while indicates that the packet
will be further encapsulated in an IPsec packet. The repeated
use of A.B.C.D and W.X.Y.Z is used to select the security
association to use, and the final
mandates that packets must be encrypted if they match this
rule.This rule only matches outgoing packets. You will need a
similar rule to match incoming packets.spdadd W.X.Y.Z/32 A.B.C.D/32 ipencap -P in ipsec esp/tunnel/W.X.Y.Z-A.B.C.D/require;Note the instead of
in this case, and the necessary reversal of
the IP addresses.The other gateway host (which has the public IP address
W.X.Y.Z) will need similar rules.spdadd W.X.Y.Z/32 A.B.C.D/32 ipencap -P out ipsec esp/tunnel/W.X.Y.Z-A.B.C.D/require;
spdadd A.B.C.D/32 W.X.Y.Z/32 ipencap -P in ipsec esp/tunnel/A.B.C.D-W.X.Y.Z/require;Finally, you need to add firewall rules to allow ESP and
IPENCAP packets back and forth. These rules will need to be
added to both hosts.ipfw add 1 allow esp from A.B.C.D to W.X.Y.Z
ipfw add 1 allow esp from W.X.Y.Z to A.B.C.D
ipfw add 1 allow ipencap from A.B.C.D to W.X.Y.Z
ipfw add 1 allow ipencap from W.X.Y.Z to A.B.C.D
Because the rules are symmetric you can use the same rules
on each gateway host.Outgoing packets will now look something like this:
.------------------------------. --------------------------.
| Src: A.B.C.D | |
| Dst: W.X.Y.Z | |
| <other header info> | | Encrypted
+------------------------------+ | packet.
| .--------------------------. | -------------. | contents
| | Src: A.B.C.D | | | | are
| | Dst: W.X.Y.Z | | | | completely
| | <other header info> | | | |- secure
| +--------------------------+ | | Encap'd | from third
| | .----------------------. | | -. | packet | party
| | | Src: 192.168.1.1 | | | | Original |- with real | snooping
| | | Dst: 192.168.2.1 | | | | packet, | IP addr |
| | | <other header info> | | | |- private | |
| | +----------------------+ | | | IP addr | |
| | | <packet data> | | | | | |
| | `----------------------' | | -' | |
| `--------------------------' | -------------' |
`------------------------------' --------------------------'
When they are received by the far end of the VPN they will
first be decrypted (using the security associations that have
been negotiated by racoon). Then they will enter the
gif interface, which will unwrap
the second layer, until you are left with the innermost
packet, which can then travel in to the inner network.You can check the security using the same &man.ping.8; test from
earlier. First, log in to the
A.B.C.D gateway machine, and
run:tcpdump dst host 192.168.2.1In another log in session on the same host runping 192.168.2.1This time you should see output like the following:XXX tcpdump outputNow, as you can see, &man.tcpdump.1; shows the ESP packets. If
you try to examine them with the option you will see
(apparently) gibberish, because of the encryption.Congratulations. You have just set up a VPN between two
remote sites.SummaryConfigure both kernels with:options IPSEC
options IPSEC_ESP
Install security/racoon. Edit
${PREFIX}/etc/racoon/psk.txt on both
gateway hosts, adding an entry for the remote host's IP
address and a secret key that they both know. Make sure
this file is mode 0600.Add the following lines to
/etc/rc.conf on each host:ipsec_enable="YES"
ipsec_file="/etc/ipsec.conf"
Create an /etc/ipsec.conf on each
host that contains the necessary spdadd lines. On gateway
host #1 this would be:
spdadd A.B.C.D/32 W.X.Y.Z/32 ipencap -P out ipsec
esp/tunnel/A.B.C.D-W.X.Y.Z/require;
spdadd W.X.Y.Z/32 A.B.C.D/32 ipencap -P in ipsec
esp/tunnel/W.X.Y.Z-A.B.C.D/require;
On gateway host #2 this would be:
spdadd W.X.Y.Z/32 A.B.C.D/32 ipencap -P out ipsec
esp/tunnel/W.X.Y.Z-A.B.C.D/require;
spdadd A.B.C.D/32 W.X.Y.Z/32 ipencap -P in ipsec
esp/tunnel/A.B.C.D-W.X.Y.Z/require;
Add firewall rules to allow IKE, ESP, and IPENCAP
traffic to both hosts:
ipfw add 1 allow udp from A.B.C.D to W.X.Y.Z isakmp
ipfw add 1 allow udp from W.X.Y.Z to A.B.C.D isakmp
ipfw add 1 allow esp from A.B.C.D to W.X.Y.Z
ipfw add 1 allow esp from W.X.Y.Z to A.B.C.D
ipfw add 1 allow ipencap from A.B.C.D to W.X.Y.Z
ipfw add 1 allow ipencap from W.X.Y.Z to A.B.C.D
The previous two steps should suffice to get the VPN up and
running. Machines on each network will be able to refer to one
another using IP addresses, and all traffic across the link will
be automatically and securely encrypted.ChernLeeContributed by OpenSSHOpenSSHsecurityOpenSSHOpenSSH is a set of network connectivity tools used to
access remote machines securely. It can be used as a direct
replacement for rlogin,
rsh, rcp, and
telnet. Additionally, any other TCP/IP
connections can be tunneled/forwarded securely through SSH.
OpenSSH encrypts all traffic to effectively eliminate eavesdropping,
connection hijacking, and other network-level attacks.OpenSSH is maintained by the OpenBSD project, and is based
upon SSH v1.2.12 with all the recent bug fixes and updates. It
is compatible with both SSH protocols 1 and 2. OpenSSH has been
in the base system since FreeBSD 4.0.Advantages of Using OpenSSHNormally, when using &man.telnet.1; or &man.rlogin.1;,
data is sent over the network in an clear, un-encrypted form.
Network sniffers anywhere in between the client and server can
steal your user/password information or data transferred in
your session. OpenSSH offers a variety of authentication and
encryption methods to prevent this from happening.Enabling sshdOpenSSHenablingBe sure to make the following addition to your
rc.conf file:sshd_enable="YES"This will load &man.sshd.8;, the daemon program for OpenSSH,
the next time your system initializes. Alternatively, you can
simply run directly the sshd daemon by typing sshd on the command line.SSH ClientOpenSSHclientThe &man.ssh.1; utility works similarly to
&man.rlogin.1;.&prompt.root; ssh user@example.com
Host key not found from the list of known hosts.
Are you sure you want to continue connecting (yes/no)? yes
Host 'example.com' added to the list of known hosts.
user@example.com's password: *******The login will continue just as it would have if a session was
created using rlogin or
telnet. SSH utilizes a key fingerprint
system for verifying the authenticity of the server when the
client connects. The user is prompted to enter
yes only when
connecting for the first time. Future attempts to login are all
verified against the saved fingerprint key. The SSH client
will alert you if the saved fingerprint differs from the
received fingerprint on future login attempts. The fingerprints
are saved in ~/.ssh/known_hosts, or
~/.ssh/known_hosts2 for SSH v2
fingerprints.By default, OpenSSH servers are configured to accept both
SSH v1 and SSH v2 connections. The client, however, can choose
between the two. Version 2 is known to be more robust and
secure than its predecessor.The &man.ssh.1; command can be forced to use either protocol
by passing it the or argument
for v1 and v2, respectively.Secure CopyOpenSSHsecure copyscpThe &man.scp.1; command works similarly to
&man.rcp.1;; it copies a file to or from a remote machine,
except in a secure fashion.&prompt.root; scp user@example.com:/COPYRIGHT COPYRIGHT
user@example.com's password: *******
COPYRIGHT 100% |*****************************| 4735
00:00
&prompt.root;Since the fingerprint was already saved for this host in the
previous example, it is verified when using &man.scp.1;
here.The arguments passed to &man.scp.1; are similar
to &man.cp.1;, with the file or files in the first
argument, and the destination in the second. Since the file is
fetched over the network, through SSH, one or more of the file
arguments takes on the form
.ConfigurationOpenSSHconfigurationThe system-wide configuration files for both the OpenSSH
daemon and client reside within the /etc/ssh
directory.ssh_config configures the client
settings, while sshd_config configures the
daemon.Additionally, the
(/usr/sbin/sshd by default), and
rc.conf
options can provide more levels of configuration.ssh-keygenInstead of using passwords, &man.ssh-keygen.1; can
be used to generate RSA keys to authenticate a user:&prompt.user; ssh-keygen -t rsa1
Initializing random number generator...
Generating p: .++ (distance 66)
Generating q: ..............................++ (distance 498)
Computing the keys...
Key generation complete.
Enter file in which to save the key (/home/user/.ssh/identity):
Enter passphrase:
Enter the same passphrase again:
Your identification has been saved in /home/user/.ssh/identity.
...&man.ssh-keygen.1; will create a public and private
key pair for use in authentication. The private key is stored in
~/.ssh/identity, whereas the public key is
stored in ~/.ssh/identity.pub. The public
key must be placed in ~/.ssh/authorized_keys
of the remote machine in order for the setup to work.This will allow connection to the remote machine based upon
RSA authentication instead of passwords.The option will create RSA
keys for use by SSH protocol version 1. If you want to use
RSA keys with the SSH protocol version 2, you have to use the
command ssh-keygen -t rsa.If a passphrase is used in &man.ssh-keygen.1;, the user
will be prompted for a password each time in order to use the private
key.A SSH protocol version 2 DSA key can be created for the same purpose by using
the ssh-keygen -t dsa command.
This will
create a public/private DSA key for use in SSH protocol version 2 sessions only.
The public key is stored in ~/.ssh/id_dsa.pub,
while the private key is in ~/.ssh/id_dsa.DSA public keys are also placed in
~/.ssh/authorized_keys on the remote
machine.&man.ssh-agent.1; and &man.ssh-add.1; are
utilities used in managing multiple passworded private keys.The various options and files can be different
according to the OpenSSH version you have on your system, to
avoid problems you should consult the &man.ssh-keygen.1;
manual page.
-
+ SSH TunnelingOpenSSHtunnelingOpenSSH has the ability to create a tunnel to encapsulate
another protocol in an encrypted session.The following command tells &man.ssh.1; to create a tunnel
for telnet:&prompt.user; ssh -2 -N -f -L 5023:localhost:23 user@foo.example.com
&prompt.user;The ssh command is used with the
following options:Forces ssh to use version 2 of
the protocol. (Do not use if you are working with older
SSH servers)Indicates no command, or tunnel only. If omitted,
ssh would initiate a normal
session.Forces ssh to run in the
background.Indicates a local tunnel in
localport:remotehost:remoteport
fashion.The remote SSH server.An SSH tunnel works by creating a listen socket on
localhost on the specified port.
It then forwards any connection received
on the local host/port via the SSH connection to the specified
remote host and port.In the example, port 5023 on
localhost is being forwarded to port
23 on localhost
of the remote machine. Since 23 is telnet,
this would create a secure telnet session through an SSH tunnel.This can be used to wrap any number of insecure TCP protocols
such as SMTP, POP3, FTP, etc.Using SSH to Create a Secure Tunnel for SMTP&prompt.user; ssh -2 -N -f -L 5025:localhost:25 user@mailserver.example.com
user@mailserver.example.com's password: *****
&prompt.user; telnet localhost 5025
Trying 127.0.0.1...
Connected to localhost.
Escape character is '^]'.
220 mailserver.example.com ESMTPThis can be used in conjunction with an
&man.ssh-keygen.1; and additional user accounts to create a
more seamless/hassle-free SSH tunneling environment. Keys
can be used in place of typing a password, and the tunnels
can be run as a separate user.Practical SSH Tunneling ExamplesSecure Access of a POP3 ServerAt work, there is an SSH server that accepts
connections from the outside. On the same office network
resides a mail server running a POP3 server. The network,
or network path between your home and office may or may not
be completely trustable. Because of this, you need to check
your e-mail in a secure manner. The solution is to create
an SSH connection to your office's SSH server, and tunnel
through to the mail server.&prompt.user; ssh -2 -N -f -L 2110:mail.example.com:110 user@ssh-server.example.com
user@ssh-server.example.com's password: ******When the tunnel is up and running, you can point your
mail client to send POP3 requests to localhost
port 2110. A connection here will be forwarded securely across
the tunnel to mail.example.com.Bypassing a Draconian FirewallSome network administrators impose extremely draconian
firewall rules, filtering not only incoming connections,
but outgoing connections. You may be only given access
to contact remote machines on ports 22 and 80 for SSH
and web surfing.You may wish to access another (perhaps non-work
related) service, such as an Ogg Vorbis server to stream
music. If this Ogg Vorbis server is streaming on some other
port than 22 or 80, you will not be able to access it.The solution is to create an SSH connection to a machine
outside of your network's firewall, and use it to tunnel to
the Ogg Vorbis server.&prompt.user; ssh -2 -N -f -L 8888:music.example.com:8000 user@unfirewalled-system.example.org
user@unfirewalled-system.example.org's password: *******Your streaming client can now be pointed to
localhost port 8888, which will be
forwarded over to music.example.com port
8000, successfully evading the firewall.Further ReadingOpenSSH&man.ssh.1; &man.scp.1; &man.ssh-keygen.1;
&man.ssh-agent.1; &man.ssh-add.1;&man.sshd.8; &man.sftp-server.8;RobertWatsonSponsored by DARPA and Network Associates Laboratories.
Contributed by MACMandatory Access Control (MAC)FreeBSD 5.0 includes a new kernel security framework, the
TrustedBSD MAC Framework. The MAC Framework permits compile-time,
boot-time, and run-time extension of the kernel access control
policy, and can be used to load support for Mandatory Access
Control (MAC), and custom security modules
such as hardening modules. The MAC Framework is currently
considered to be an experimental feature, and should not yet
be used in production environments without careful consideration.
It is anticipated that the MAC Framework will be appropriate for
more widespread production use by FreeBSD 5.2.When configured into a kernel, the MAC Framework permits
security modules to augment the existing kernel access control
model, restricting access to system services and objects. For
example, the &man.mac.bsdextended.4; module augments file system
access control, permitting administrators to provide a
firewall-like ruleset constraining access to file system objects
based on user ids and group membership. Some modules require
little or no configuration, such as &man.mac.seeotheruids.4,
whereas others perform ubiquitous object labeling, such as
&man.mac.biba.4; and &man.mac.mls.4;, and require extensive
configuration.To enable the MAC Framework in your system kernel, you must
add the following entry to your kernel configuration:options MACSecurity policy modules shipped with the base system may
be loaded using &man.kldload.8; or in the boot &man.loader.8;
They may also be compiled directly into the kernel using the
following options, if the use of modules is not desired.Different MAC policies may be configured in different ways;
frequently, MAC policy modules export configuration parameters
using the &man.sysctl.8; MIB using the
security.mac namespace. Policies relying on
file system or other labels may require a configuration step
that involves assigning initial labels to system objects or
creating a policy configuration file. For information on how to
configure and use each policy module, see its man page.A variety of tools are available to configure the MAC Framework
and labels maintained by various policies. Extensions have been
made to the login and credential management mechanisms
(&man.setusercontext.3;) to support initial user labeling using
&man.login.conf.5;. In addition, modifications have been made
to &man.su.1;, &man.ps.1;, &man.ls.1;, and &man.ifconfig.8; to
inspect and set labels on processes, files, and interfaces. In
addition, several new tools have been added to manage labels
on objects, including &man.getfmac.8;, &man.setfmac.8;, and
&man.setfsmac.8; to manage labels on files, and &man.getpmac.8; and
&man.setpmac.8;.What follows is a list of policy modules shipped with FreeBSD
5.0.Biba Integrity Policy (mac_biba)Biba Integrity PolicyVendor: TrustedBSD ProjectModule name: mac_biba.koKernel option: MAC_BIBATCBThe Biba Integrity Policy (&man.mac.biba.4;) provides
for hierarchical and non-hierarchical labeling of all system
objects with integrity data, and the strict enforcement of
an information flow policy to prevent corruption of high
integrity subjects and data by low-integrity subjects.
Integrity is enforced by preventing high integrity
subjects (generally processes) from reading low integrity
objects (often files), and preventing low integrity
subjects from writing to high integrity objects.
This security policy is frequently used in commercial
trusted systems to provide strong protection for the
Trusted Code Base (TCB). Because it
provides ubiquitous labeling, the Biba integrity policy
must be compiled into the kernel or loaded at boot.File System Firewall Policy (mac_bsdextended)File System Firewall PolicyVendor: TrustedBSD ProjectModule name: mac_bsdextended.koKernel option: MAC_BSDEXTENDED The File System Firewall Policy (&man.mac.bsdextended.4;)
provides an extension to the BSD file system permission model,
permitting the administrator to define a set of firewall-like
rules for limiting access to file system objects owned by
other users and groups. Managed using &man.ugidfw.8;, rules
may limit access to files and directories based on the uid
and gids of the process attempting the access, and the owner
and group of the target of the access attempt. All rules
are restrictive, so they may be placed in any order. This policy
requires no prior configuration or labeling, and may be
appropriate in multi-user environments where mandatory limits
on inter-user data exchange are required. Caution should be
exercised in limiting access to files owned by the super-user or
other system user ids, as many useful programs and directories
are owned by these users. As with a network firewall,
improper application of file system firewall rules may render
the system unusable. New tools to manage the rule set may be
easily written using the &man.libugidfw.3; library.Interface Silencing Policy (mac_ifoff)Interface Silencing PolicyVendor: TrustedBSD ProjectModule name: mac_ifoff.koKernel option: MAC_IFOFFThe interface silencing policy (&man.mac.ifoff.4;)
prohibits the use of network interfaces during the boot
until explicitly enabled, preventing spurious stack output
stack response to incoming packets. This is appropriate
for use in environments where the monitoring of packets
is required, but no traffic may be generated.Low-Watermark Mandatory Access Control (LOMAC)
(mac_lomac)MACLow-WatermarkLOMACVendor: Network Associates LaboratoriesModule name: mac_lomac.koKernel option: MAC_LOMACSimilar to the Biba Integrity Policy, the LOMAC
policy (&man.mac.lomac.4;) relies on the ubiquitous
labeling of all system objects with integrity labels.
Unlike Biba, LOMAC permits high integrity subjects to
read from low integrity objects, but then downgrades the
label on the subject to prevent future writes to high
integrity objects. This policy may provide for greater
compatibility, as well as require less initial
configuration than Biba. However, as with Biba, it
ubiquitously labels objects and must therefore be
compiled into the kernel or loaded at boot.Multi-Level Security Policy (MLS) (mac_mls)Multi-Level Security PolicyMACMulti-LevelVendor: TrustedBSD ProjectModule name: mac_mls.koKernel option: MAC_MLSMulti-Level Security (MLS)
(&man.mac.mls.4;) provides for hierarchical and non-hierarchical
labeling of all system objects with sensitivity data, and the
strict enforcement of an information flow policy to prevent
the leakage of confidential data to untrusted parties. The
logical conjugate of the Biba Integrity Policy,
MLS is frequently shipped in commercial
trusted operating systems to protect data secrecy in
multi-user environments. Hierarchal labels provide support
for the notion of clearances and classifications in
traditional parlance; non-hierarchical labels provide support
for need-to-know. As with Biba, ubiquitous
labeling of objects occurs, and it must therefore be compiled
into the kernel or loaded at boot. As with Biba, extensive
initial configuration may be required.MAC Stub Policy (mac_none)MAC Stub PolicyVendor: TrustedBSD ProjectModule name: mac_none.koKernel option: MAC_NONEThe None policy (&man.mac.none.4;) provides a stub
sample policy for developers, implementing all entry
points, but not changing the system access control
policy. Running this on a production system would
not be highly beneficial.Process Partition Policy (mac_partition)Process Partition PolicyVendor: TrustedBSD ProjectModule name: mac_partition.koKernel option: MAC_PARTITIONThe Partition policy (&man.mac.partition.4;) provides for a
simple process visibility limitation, assigning labels to
processes identifying what numeric system partition they
are present in. If none, all other processes are visible
using standard monitoring tools; if a partition identifier
is present, then only other processes in the same
partition are visible. This policy may be compiled into
the kernel, loaded at boot, or loaded at run-time.See Other Uids Policy (mac_seeotheruids)See Other Uids PolicyVendor: TrustedBSD ProjectModule name: mac_seeotheruids.koKernel option: MAC_SEEOTHERUIDSThe See Other Uids policy (&man.mac.seeotheruids.4;)
implements a similar process visibility model to
mac_partition, except that it relies on process credentials to
control visibility of processes, rather than partition labels.
This policy may be configured to exempt certain users and
groups, including permitting system operators to view all
processes without special privilege. This policy may be
compiled into the kernel, loaded at boot, or loaded at
run-time.MAC Framework Test Policy (mac_test)MAC Framework Test PolicyVendor: TrustedBSD ProjectModule name: mac_test.koKernel option: MAC_TESTThe Test policy (&man.mac.test.4;) provides a regression
test environment for the MAC Framework, and will cause a
fail-stop in the event that internal MAC Framework assertions
about proper data labeling fail. This module can be used to
detect failures to properly label system objects in the kernel
implementation. This policy may be compiled into the kernel,
loaded at boot, or loaded at run-time.TomRhodesContributed by ACLFile System Access Control ListsIn conjunction with file system enhancements like snapshots, FreeBSD 5.0
and later offers the security of File System Access Control Lists
(ACLs).Access Control Lists extend the standard &unix;
permission model in a highly compatible (&posix;.1e) way. This feature
permits an administrator to make use of and take advantage of a
more sophisticated security model.To enable ACL support for UFS
file systems, the following:options UFS_ACLmust be compiled into the kernel. If this option has
not been compiled in, a warning message will be displayed
when attempting to mount a file system supporting ACLs.
This option is included in the GENERIC kernel.
ACLs rely on extended attributes being enabled on
the file system. Extended attributes are natively supported in the next generation
&unix; file system, UFS2.A higher level of administrative overhead is required to
configure extended attributes on UFS1 than on
UFS2. The performance of extended attributes
on UFS2 is also substantially higher. As a
result, UFS2 is generally recommended in preference
to UFS1 for use with access control lists.ACLs are enabled by the mount-time administrative
flag, , which may be added to /etc/fstab.
The mount-time flag can also be automatically set in a persistent manner using
&man.tunefs.8; to modify a superblock ACLs flag in the
file system header. In general, it is preferred to use the superblock flag
for several reasons:The mount-time ACLs flag cannot be changed by a
remount (&man.mount.8; ), only by means of a complete
&man.umount.8; and fresh &man.mount.8;. This means that
ACLs cannot be enabled on the root file system after boot.
It also means that you cannot change the disposition of a file system once
it is in use.Setting the superblock flag will cause the file system to always be
mounted with ACLs enabled even if there is not an
fstab entry or if the devices re-order. This prevents
accidental mounting of the file system without ACLs
enabled, which can result in ACLs being improperly enforced,
and hence security problems.We may change the ACLs behavior to allow the flag to
be enabled without a complete fresh &man.mount.8;, but we consider it desirable to
discourage accidental mounting without ACLs enabled, because you
can shoot your feet quite nastily if you enable ACLs, then disable
them, then re-enable them without flushing the extended attributes. In general, once
you have enabled ACLs on a file system, they should not be disabled,
as the resulting file protections may not be compatible with those intended by the
users of the system, and re-enabling ACLs may re-attach the previous
ACLs to files that have since had their permissions changed,
resulting in other unpredictable behavior.File systems with ACLs enabled will show a +
(plus) sign in their permission settings when viewed. For example:drwx------ 2 robert robert 512 Dec 27 11:54 private
drwxrwx---+ 2 robert robert 512 Dec 23 10:57 directory1
drwxrwx---+ 2 robert robert 512 Dec 22 10:20 directory2
drwxrwx---+ 2 robert robert 512 Dec 27 11:57 directory3
drwxr-xr-x 2 robert robert 512 Nov 10 11:54 public_htmlHere we see that the directory1,
directory2, and directory3
directories are all taking advantage of ACLs. The
public_html directory is not.Making Use of ACLsThe file system ACLs can be viewed by the
&man.getfacl.1; utility. For instance, to view the
ACL settings on the test
file, one would use the command:&prompt.user; getfacl test
#file:test
#owner:1001
#group:1001
user::rw-
group::r--
other::r--To change the ACL settings on this file,
invoke the &man.setfacl.1; utility. Observe:&prompt.user; setfacl -k testThe flag will remove all of the
currently defined ACLs from a file or file
system. The more preferable method would be to use
as it leaves the basic fields required for
ACLs to work.&prompt.user; setfacl -m u:trhodes:rwx,group:web:r--,o::--- testIn the aforementioned command, the
option was used to modify the default ACL
entries. Since there were no pre-defined entries, as they were
removed by the previous command, this will restore the default
options and assign the options listed. Take care to notice that
if you add a user or group which does not exist on the system,
an Invalid argument error will be printed
to stdout.TomRhodesContributed by FreeBSD Security Advisories&os; Security AdvisoriesLike many production quality operating systems, &os; publishes
Security Advisories. These advisories are usually
mailed to the security lists and noted in the Errata only
after the appropriate releases have been patched. This section
will work to explain what an advisory is, how to understand it,
and what measures to take in order to patch a system.What does an advisory look like?The &os; security advisories look similar to the one below,
taken from the &a.security-notifications.name; mailing list.=============================================================================
&os;-SA-XX:XX.UTIL Security Advisory
The &os; Project
Topic: denial of service due to some problem
Category: core
Module: sys
Announced: 2003-09-23
Credits: Person@EMAIL-ADDRESS
Affects: All releases of &os;
&os; 4-STABLE prior to the correction date
Corrected: 2003-09-23 16:42:59 UTC (RELENG_4, 4.9-PRERELEASE)
2003-09-23 20:08:42 UTC (RELENG_5_1, 5.1-RELEASE-p6)
2003-09-23 20:07:06 UTC (RELENG_5_0, 5.0-RELEASE-p15)
2003-09-23 16:44:58 UTC (RELENG_4_8, 4.8-RELEASE-p8)
2003-09-23 16:47:34 UTC (RELENG_4_7, 4.7-RELEASE-p18)
2003-09-23 16:49:46 UTC (RELENG_4_6, 4.6-RELEASE-p21)
2003-09-23 16:51:24 UTC (RELENG_4_5, 4.5-RELEASE-p33)
2003-09-23 16:52:45 UTC (RELENG_4_4, 4.4-RELEASE-p43)
2003-09-23 16:54:39 UTC (RELENG_4_3, 4.3-RELEASE-p39)
&os; only: NO
For general information regarding FreeBSD Security Advisories,
including descriptions of the fields above, security branches, and the
following sections, please visit
http://www.FreeBSD.org/security/.
I. Background
II. Problem Description
III. Impact
IV. Workaround
V. Solution
VI. Correction details
VII. ReferencesThe Topic field indicates exactly what the problem is.
It is basically an introduction to the current security
advisory and notes the utility with the
vulnerability.The Category refers to the affected part of the system
which may be one of core, contrib, or ports. The core
category means that the vulnerability affects a core
component of the &os; operating system. The contrib
category means that the vulnerability affects software
contributed to the &os; Project, such as
sendmail. Finally the ports
category indicates that the vulnerability affects add on
software available as part of the ports collection.The Module field refers to the component location, for
instance sys. In this example, we see that the module,
sys, is affected; therefore, this vulnerability
affects a component used within the kernel.The Announced field reflects the date said security
advisory was published, or announced to the world. This
means that the security team has verified that the problem
does exist and that a patch has been committed to the &os;
source code repository.The Credits field gives credit to the individual or
organization who noticed the vulnerability and reported
it.The Affects field explains which releases of &os; are
affected by this vulnerability. For the kernel, a quick
look over the output from ident on the
affected files will help in determining the revision.
For ports, the version number is listed after the port name
in /var/db/pkg. If the system does not
sync with the &os; CVS repository and rebuild
daily, chances are that it is affected.The Corrected field indicates the date, time, time
offset, and release that was corrected.The &os; only field indicates whether this vulnerability
affects just &os;, or if it affects other operating systems
as well.The Background field gives information on exactly what
the affected utility is. Most of the time this is why
the utility exists in &os;, what it is used for, and a bit
of information on how the utility came to be.The Problem Description field explains the security hole
in depth. This can include information on flawed code, or
even how the utility could be maliciously used to open
a security hole.The Impact field describes what type of impact the
problem could have on a system. For example, this could
be anything from a denial of service attack, to extra
privileges available to users, or even giving the attacker
superuser access.The Workaround field offers a feasible workaround to
system administrators who may be incapable of upgrading
the system. This may be due to time constraints, network
availability, or a slew of other reasons. Regardless,
security should not be taken lightly, and an affected system
should either be patched or the security hole workaround
should be implemented.The Solution field offers instructions on patching the
affected system. This is a step by step tested and verified
method for getting a system patched and working
securely.The Correction Details field displays the
CVS branch or release name with the
periods changed to underscore characters. It also shows
the revision number of the affected files within each
branch.The References field usually offers sources of other
information. This can included web URLs,
books, mailing lists, and newsgroups.