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ChernLeeWritten by MikeSmithBased on a tutorial written by MattDillonAlso based on tuning(7) written by Configuration and TuningSynopsissystem configurationsystem optimizationOne of the important aspects of &os; is system configuration.
Correct system configuration will help prevent headaches during future upgrades.
This chapter will explain much of the &os; configuration process,
including some of the parameters which
can be set to tune a &os; system.
After reading this chapter, you will know:How to efficiently work with
file systems and swap partitions.The basics of rc.conf configuration and
/usr/local/etc/rc.d startup systems.How to configure and test a network card.How to configure virtual hosts on your network devices.How to use the various configuration files in
/etc.How to tune &os; using sysctl
variables.How to tune disk performance and modify kernel
limitations.Before reading this chapter, you should:Understand &unix; and &os; basics ().Be familiar with keeping &os; sources up to date
(), and
the basics of kernel configuration/compilation
().Initial ConfigurationPartition Layoutpartition layout/etc/var/usrBase PartitionsWhen laying out file systems with &man.disklabel.8;
or &man.sysinstall.8;, remember that hard
drives transfer data faster from the outer
tracks to the inner.
Thus smaller and heavier-accessed file systems
should be closer to the outside of the drive, while
larger partitions like /usr should be placed
toward the inner. It is a good idea to create
partitions in a similar order to: root, swap,
/var, /usr.The size of /var
reflects the intended machine usage.
/var is used to hold
mailboxes, log files, and printer spools. Mailboxes and log
files can grow to unexpected sizes depending
on how many users exist and how long log
files are kept. Most users would never require a gigabyte,
but remember that /var/tmp
must be large enough to contain packages.
The /usr partition holds much
of the files required to support the system, the &man.ports.7;
collection (recommended) and the source code (optional). Both
of which are optional at install time.
At least 2 gigabytes would be recommended for this partition.When selecting partition sizes, keep the space
requirements in mind. Running out of space in
one partition while barely using another can be a
hassle.Some users have found that &man.sysinstall.8;'s
Auto-defaults partition sizer will
sometimes select smaller than adequate /var
and / partitions. Partition wisely and
generously.Swap Partitionswap sizingswap partitionAs a rule of thumb, the swap partition should be
about double the size of system memory (RAM). For example,
if the machine has 128 megabytes of memory,
the swap file should be 256 megabytes. Systems with
less memory may perform better with more swap.
Less than 256 megabytes of swap is not recommended and
memory expansion should be considered.
The kernel's VM paging algorithms are tuned to
perform best when the swap partition is at least two times the
size of main memory. Configuring too little swap can lead to
inefficiencies in the VM page scanning code and might create
issues later if more memory is added.On larger systems with multiple SCSI disks (or
multiple IDE disks operating on different controllers), it is
recommend that a swap is configured on each drive (up
to four drives). The swap partitions should be
approximately the same size. The kernel can handle arbitrary
sizes but internal data structures scale to 4 times the
largest swap partition. Keeping the swap partitions near the
same size will allow the kernel to optimally stripe swap space
across disks.
Large swap sizes are fine, even if swap is not
used much. It might be easier to recover
from a runaway program before being forced to reboot.Why Partition?Several users think a single large partition will be fine,
but there are several reasons why this is a bad idea.
First, each partition has different operational
characteristics and separating them allows the file system to
tune accordingly. For example, the root
and /usr partitions are read-mostly, without
much writing. While a lot of reading and writing could
occur in /var and
/var/tmp.By properly partitioning a system, fragmentation
introduced in the smaller write heavy partitions
will not bleed over into the mostly-read partitions.
Keeping the write-loaded partitions closer to
the disk's edge,
will
increase I/O performance in the partitions where it occurs
the most. Now while I/O
performance in the larger partitions may be needed,
shifting them more toward the edge of the disk will not
lead to a significant performance improvement over moving
/var to the edge.
Finally, there are safety concerns. A smaller, neater root
partition which is mostly read-only has a greater
chance of surviving a bad crash.Core Configurationrc filesrc.confThe principal location for system configuration information
is within /etc/rc.conf. This file
contains a wide range of configuration information, principally
used at system startup to configure the system. Its name
directly implies this; it is configuration information for the
rc* files.An administrator should make entries in the
rc.conf file to
override the default settings from
/etc/defaults/rc.conf. The defaults file
should not be copied verbatim to /etc - it
contains default values, not examples. All system-specific
changes should be made in the rc.conf
file itself.A number of strategies may be applied in clustered
applications to separate site-wide configuration from
system-specific configuration in order to keep administration
overhead down. The recommended approach is to place site-wide
configuration into another file,
such as /etc/rc.conf.site, and then include
this file into /etc/rc.conf, which will
contain only system-specific information.As rc.conf is read by &man.sh.1; it is
trivial to achieve this. For example:rc.conf: . rc.conf.site
hostname="node15.example.com"
network_interfaces="fxp0 lo0"
ifconfig_fxp0="inet 10.1.1.1"rc.conf.site: defaultrouter="10.1.1.254"
saver="daemon"
blanktime="100"The rc.conf.site file can then be
distributed to every system using rsync or a
similar program, while the rc.conf file
remains unique.Upgrading the system using &man.sysinstall.8;
or make world will not overwrite the
rc.conf
file, so system configuration information will not be lost.Application ConfigurationTypically, installed applications have their own
configuration files, with their own syntax, etc. It is
important that these files be kept separate from the base
system, so that they may be easily located and managed by the
package management tools./usr/local/etcTypically, these files are installed in
/usr/local/etc. In the case where an
application has a large number of configuration files, a
subdirectory will be created to hold them.Normally, when a port or package is installed, sample
configuration files are also installed. These are usually
identified with a .default suffix. If there
are no existing
configuration files for the application, they will be created by
copying the .default files.For example, consider the contents of the directory
/usr/local/etc/apache:-rw-r--r-- 1 root wheel 2184 May 20 1998 access.conf
-rw-r--r-- 1 root wheel 2184 May 20 1998 access.conf.default
-rw-r--r-- 1 root wheel 9555 May 20 1998 httpd.conf
-rw-r--r-- 1 root wheel 9555 May 20 1998 httpd.conf.default
-rw-r--r-- 1 root wheel 12205 May 20 1998 magic
-rw-r--r-- 1 root wheel 12205 May 20 1998 magic.default
-rw-r--r-- 1 root wheel 2700 May 20 1998 mime.types
-rw-r--r-- 1 root wheel 2700 May 20 1998 mime.types.default
-rw-r--r-- 1 root wheel 7980 May 20 1998 srm.conf
-rw-r--r-- 1 root wheel 7933 May 20 1998 srm.conf.defaultThe file sizes show that only the srm.conf
file has been changed. A later update of the Apache port would not
overwrite this changed file.Starting ServicesservicesIt is common for a system to host a number of services.
These may be started in several different fashions, each having
different advantages./usr/local/etc/rc.dSoftware installed from a port or the packages collection
will often place a script in
/usr/local/etc/rc.d which is invoked at
system startup with a argument, and at
system shutdown with a argument.
This is the recommended way for
starting system-wide services that are to be run as
root, or that
expect to be started as root.
These scripts are registered as
part of the installation of the package, and will be removed
when the package is removed.A generic startup script in
/usr/local/etc/rc.d looks like:#!/bin/sh
echo -n ' FooBar'
case "$1" in
start)
/usr/local/bin/foobar
;;
stop)
kill -9 `cat /var/run/foobar.pid`
;;
*)
echo "Usage: `basename $0` {start|stop}" >&2
exit 64
;;
esac
exit 0
The startup scripts of &os; will look in
/usr/local/etc/rc.d for scripts that have an
.sh extension and are executable by
root. Those scripts that are found are called with
an option at startup, and
at shutdown to allow them to carry out their purpose. So if you wanted
the above sample script to be picked up and run at the proper time during
system startup, you should save it to a file called
FooBar.sh in
/usr/local/etc/rc.d and make sure it is
executable. You can make a shell script executable with &man.chmod.1;
as shown below:&prompt.root; chmod 755 FooBar.shSome services expect to be invoked by &man.inetd.8; when a
connection is received on a suitable port. This is common for
mail reader servers (POP and IMAP, etc.). These services are
enabled by editing the file /etc/inetd.conf.
See &man.inetd.8; for details on editing this file.Some additional system services may not be covered by the
toggles in /etc/rc.conf. These are
traditionally enabled by placing the command(s) to invoke them
in /etc/rc.local. As of &os; 3.1 there
is no default /etc/rc.local; if it is
created by the administrator it will however be honored in the
normal fashion. Note that rc.local is
generally regarded as the location of last resort; if there is a
better place to start a service, do it there.Do not place any commands in
/etc/rc.conf. To start daemons, or
run any commands at boot time, place a script in
/usr/local/etc/rc.d instead.It is also possible to use the &man.cron.8; daemon to start
system services. This approach has a number of advantages, not
least being that because &man.cron.8; runs these processes as the
owner of the crontab, services may be started
and maintained by non-root users.This takes advantage of a feature of &man.cron.8;: the
time specification may be replaced by @reboot,
which will
cause the job to be run when &man.cron.8; is started shortly after
system boot.TomRhodesContributed by Configuring the cron UtilitycronconfigurationOne of the most useful utilities in &os; is &man.cron.8;. The
cron utility runs in the background and constantly
checks the /etc/crontab file. The cron
utility also checks the /var/cron/tabs directory, in
search of new crontab files. These
crontab files store information about specific
functions which cron is supposed to perform at
certain times.The cron utility uses two different
types of configuration files, the system crontab and user crontabs. The
only difference between these two formats is the sixth field. In the
system crontab, the sixth field is the name of a user for the command
to run as. This gives the system crontab the ability to run commands
as any user. In a user crontab, the sixth field is the command to run,
and all commands run as the user who created the crontab; this is an
important security feature.User crontabs allow individual users to schedule tasks without the
need for root privileges. Commands in a user's crontab run with the
permissions of the user who owns the crontab.The root user can have a user crontab just like
any other user. This one is different from
/etc/crontab (the system crontab). Because of the
system crontab, there's usually no need to create a user crontab
for root.Let us take a look at the /etc/crontab file
(the system crontab):# /etc/crontab - root's crontab for &os;
#
# $&os;: src/etc/crontab,v 1.32 2002/11/22 16:13:39 tom Exp $
#
#
SHELL=/bin/sh
PATH=/etc:/bin:/sbin:/usr/bin:/usr/sbin
HOME=/var/log
#
#
#minute hour mday month wday who command
#
#
*/5 * * * * root /usr/libexec/atrun Like most &os; configuration files, the #
character represents a comment. A comment can be placed in
the file as a reminder of what and why a desired action is performed.
Comments cannot be on the same line as a command or else they will
be interpreted as part of the command; they must be on a new line.
Blank lines are ignored.First, the environment must be defined. The equals
(=) character is used to define any environment
settings, as with this example where it is used for the SHELL,
PATH, and HOME options. If the shell line is
omitted, cron will use the default, which is
sh. If the PATH variable is
omitted, no default will be used and file locations will need to
be absolute. If HOME is omitted, cron
will use the invoking users home directory.This line defines a total of seven fields. Listed here are the
values minute, hour,
mday, month, wday,
who, and command. These
are almost all self explanatory. minute is the time in minutes the
command will be run. hour is similar to the minute option, just in
hours. mday stands for day of the month. month is similar to hour
and minute, as it designates the month. The wday option stands for
day of the week. All these fields must be numeric values, and follow
the twenty-four hour clock. The who field is special,
and only exists in the /etc/crontab file.
This field specifies which user the command should be run as.
When a user installs his or her crontab file, they
will not have this option. Finally, the command option is listed.
This is the last field, so naturally it should designate the command
to be executed.This last line will define the values discussed above. Notice here
we have a */5 listing, followed by several more
* characters. These * characters
mean first-last, and can be interpreted as
every time. So, judging by this line,
it is apparent that the atrun command is to be invoked by
root every five minutes regardless of what
day or month it is. For more information on the atrun command,
see the &man.atrun.8; manual page.Commands can have any number of flags passed to them; however,
commands which extend to multiple lines need to be broken with the backslash
\ continuation character.This is the basic set up for every
crontab file, although there is one thing
different about this one. Field number six, where we specified
the username, only exists in the system
/etc/crontab file. This field should be
omitted for individual user crontab
files.Installing a CrontabYou must not use the procedure described here to
edit/install the system crontab. Simply use your favorite
editor: the cron utility will notice that the file
has changed and immediately begin using the updated version.
See
this FAQ entry for more information.To install a freshly written user
crontab, first use your favorite editor to create
a file in the proper format, and then use the
crontab utility. The most common usage
is:&prompt.user; crontab crontab-fileIn this example, crontab-file is the filename
of a crontab that was previously created.There is also an option to list installed
crontab files: just pass the
option to crontab and look
over the output.For users who wish to begin their own crontab file from scratch,
without the use of a template, the crontab -e
option is available. This will invoke the selected editor
with an empty file. When the file is saved, it will be
automatically installed by the crontab command.
If you later want to remove your user crontab
completely, use crontab with the
option.
TomRhodesContributed by Using rc under FreeBSD 5.XrcNG&os; has recently integrated the NetBSD
rc.d system for system initialization.
Users should notice the files listed in the
/etc/rc.d directory. Many of these files
are for basic services which can be controlled with the
, ,
and options.
For instance, &man.sshd.8; can be restarted with the following
command:&prompt.root; /etc/rc.d/sshd restartThis procedure is similar for other services. Of course,
services are usually started automatically as specified in
&man.rc.conf.5;. For example, enabling the Network Address
Translation daemon at startup is as simple as adding the
following line to /etc/rc.conf:natd_enable="YES"If a line is already
present, then simply change the to
. The rc scripts will automatically load
any other dependent services during the next reboot, as
described below.Since the rc.d system is primarily
intended to start/stop services at system startup/shutdown time,
the standard ,
and options will only
perform their action if the appropriate
/etc/rc.conf variables are set. For
instance the above sshd restart command will
only work if sshd_enable is set to
in /etc/rc.conf. To
, or
a service regardless of the settings in
/etc/rc.conf, the commands should be
prefixed with force. For instance to restart
sshd regardless of the current
/etc/rc.conf setting, execute the following
command:&prompt.root; /etc/rc.d/sshd forcerestartIt is easy to check if a service is enabled in
/etc/rc.conf by running the appropriate
rc.d script with the option
. Thus, an administrator can check that
sshd is in fact enabled in
/etc/rc.conf by running:&prompt.root; /etc/rc.d/sshd rcvar
# sshd
$sshd_enable=YESThe second line (# sshd) is the output
from the sshd command, not a root
console.To determine if a service is running, a
option is available. For instance to
verify that sshd is actually started:&prompt.root; /etc/rc.d/sshd status
sshd is running as pid 433.It is also possible to a service.
This will attempt to send a signal to an individual service, forcing the
service to reload its configuration files. In most cases this
means sending the service a SIGHUP
signal.The rcNG structure is not only used for network services, it also
contributes to most of the system initialization. For
instance, consider the bgfsck file. When
this script is executed, it will print out the following
message:Starting background file system checks in 60 seconds.Therefore this file is used for background file system
checks, which are done only during system initialization.Many system services depend on other services to function
properly. For example, NIS and other RPC-based services may
fail to start until after the rpcbind
(portmapper) service has started. To resolve this issue,
information about dependencies and other meta-data is included
in the comments at the top of each startup script. The
&man.rcorder.8; program is then used to parse these comments
during system initialization to determine the order in which
system services should be invoked to satisfy the dependencies.
The following words may be included at the top of each startup
file:PROVIDE: Specifies the services this file provides.REQUIRE: Lists services which are required for this
service. This file will run after
the specified services.BEFORE: Lists services which depend on this service.
This file will run before
the specified services.KEYWORD: &os; or NetBSD. This is used for *BSD dependent features.By using this method, an administrator can easily control system
services without the hassle of runlevels like
some other &unix; operating systems.Additional information about the &os; 5.X
rc.d system can be found in the &man.rc.8;
and &man.rc.subr.8; manual pages.MarcFonvieilleContributed by Setting Up Network Interface Cardsnetwork card configurationNowadays we can not think about a computer without thinking
about a network connection. Adding and configuring a network
card is a common task for any &os; administrator.Locating the Correct Drivernetwork card configurationlocating the driverBefore you begin, you should know the model of the card
you have, the chip it uses, and whether it is a PCI or ISA card.
&os; supports a wide variety of both PCI and ISA cards.
Check the Hardware Compatibility List for your release to see
if your card is supported.Once you are sure your card is supported, you need
to determine the proper driver for the card. The file
/usr/src/sys/i386/conf/LINT will give you
the list of network interfaces drivers with some information
about the supported chipsets/cards. If you have doubts about
which driver is the correct one, read the manual page of the
driver. The manual page will give you more information about
the supported hardware and even the possible problems that
could occur.If you own a common card, most of the time you will not
have to look very hard for a driver. Drivers for common
network cards are present in the GENERIC
kernel, so your card should show up during boot, like so:dc0: <82c169 PNIC 10/100BaseTX> port 0xa000-0xa0ff mem 0xd3800000-0xd38
000ff irq 15 at device 11.0 on pci0
dc0: Ethernet address: 00:a0:cc:da:da:da
miibus0: <MII bus> on dc0
ukphy0: <Generic IEEE 802.3u media interface> on miibus0
ukphy0: 10baseT, 10baseT-FDX, 100baseTX, 100baseTX-FDX, auto
dc1: <82c169 PNIC 10/100BaseTX> port 0x9800-0x98ff mem 0xd3000000-0xd30
000ff irq 11 at device 12.0 on pci0
dc1: Ethernet address: 00:a0:cc:da:da:db
miibus1: <MII bus> on dc1
ukphy1: <Generic IEEE 802.3u media interface> on miibus1
ukphy1: 10baseT, 10baseT-FDX, 100baseTX, 100baseTX-FDX, autoIn this example, we see that two cards using the &man.dc.4;
driver are present on the system.To use your network card, you will need to load the proper
driver. This may be accomplished in one of two ways. The
easiest way is to simply load a kernel module for your network
card with &man.kldload.8;. A module is not available for all
network card drivers (ISA cards and cards using the &man.ed.4;
driver, for example). Alternatively, you may statically compile
the support for your card into your kernel. Check
/usr/src/sys/i386/conf/LINT and the
manual page of the driver to know what to add in your kernel
configuration file. For more information about recompiling your
kernel, please see . If your card
was detected at boot by your kernel (GENERIC)
you do not have to build a new kernel.Configuring the Network CardNetwork card configurationconfigurationOnce the right driver is loaded for the network card, the
card needs to be configured. As with many other things, the
network card may have been configured at installation time by
sysinstall.To display the configuration for the network interfaces on
your system, enter the following command:&prompt.user; ifconfig
dc0: flags=8843<UP,BROADCAST,RUNNING,SIMPLEX,MULTICAST> mtu 1500
inet 192.168.1.3 netmask 0xffffff00 broadcast 192.168.1.255
ether 00:a0:cc:da:da:da
media: Ethernet autoselect (100baseTX <full-duplex>)
status: active
dc1: flags=8843<UP,BROADCAST,RUNNING,SIMPLEX,MULTICAST> mtu 1500
inet 10.0.0.1 netmask 0xffffff00 broadcast 10.0.0.255
ether 00:a0:cc:da:da:db
media: Ethernet 10baseT/UTP
status: no carrier
lp0: flags=8810<POINTOPOINT,SIMPLEX,MULTICAST> mtu 1500
lo0: flags=8049<UP,LOOPBACK,RUNNING,MULTICAST> mtu 16384
inet 127.0.0.1 netmask 0xff000000
tun0: flags=8010<POINTOPOINT,MULTICAST> mtu 1500Old versions of &os; may require the
option following &man.ifconfig.8;, for more details about the
correct syntax of &man.ifconfig.8;, please refer to the manual
page. Note also that entries concerning IPv6
(inet6 etc.) were omitted in this
example.In this example, the following devices were
displayed:dc0: The first Ethernet
interfacedc1: The second Ethernet
interfacelp0: The parallel port
interfacelo0: The loopback devicetun0: The tunnel device used by
ppp&os; uses the driver name followed by the order in
which one the card is detected at the kernel boot to name the
network card. For example sis2 would
be the third network card on the system using the &man.sis.4;
driver.In this example, the dc0 device is
up and running. The key indicators are:UP means that the card is configured
and ready.The card has an Internet (inet)
address (in this case
192.168.1.3).It has a valid subnet mask (netmask;
0xffffff00 is the same as
255.255.255.0).It has a valid broadcast address (in this case,
192.168.1.255).The MAC address of the card (ether)
is 00:a0:cc:da:da:daThe physical media selection is on autoselection mode
(media: Ethernet autoselect (100baseTX
<full-duplex>)). We see that
dc1 was configured to run with
10baseT/UTP media. For more
information on available media types for a driver, please
refer to its manual page.The status of the link (status)
is active, i.e. the carrier is detected.
For dc1, we see
status: no carrier. This is normal when
an ethernet cable is not plugged into the card.If the &man.ifconfig.8; output had shown something similar
to:dc0: flags=8843<BROADCAST,SIMPLEX,MULTICAST> mtu 1500
ether 00:a0:cc:da:da:dait would indicate the card has not been configured.To configure your card, you need root
privileges. The network card configuration can be done from the
command line with &man.ifconfig.8; but you would have to do it
after each reboot of the system. The file
/etc/rc.conf is where to add the network
card's configuration.Open /etc/rc.conf in your favorite
editor. You need to add a line for each network card present on
the system, for example in our case, we added these lines:ifconfig_dc0="inet 192.168.1.3 netmask 255.255.255.0"
ifconfig_dc1="inet 10.0.0.1 netmask 255.255.255.0 media 10baseT/UTP"You have to replace dc0,
dc1, and so on, with
the correct device for your cards, and the addresses with the
proper ones. You should read the card driver and
&man.ifconfig.8; manual pages for more details about the allowed
options and also &man.rc.conf.5; manual page for more
information on the syntax of
/etc/rc.conf.If you configured the network during installation, some
lines about the network card(s) may be already present. Double
check /etc/rc.conf before adding any
lines.You will also have to edit the file
/etc/hosts to add the names and the IP
addresses of various machines of the LAN, if they are not already
there. For more information please refer to &man.hosts.5;
and to /usr/share/examples/etc/hosts.Testing and TroubleshootingOnce you have made the necessary changes in
/etc/rc.conf, you should reboot your
system. This will allow the change(s) to the interface(s) to
be applied, and verify that the system restarts without any
configuration errors.Once the system has been rebooted, you should test the
network interfaces.Testing the Ethernet Cardnetwork card configurationtesting the cardTo verify that an Ethernet card is configured correctly,
you have to try two things. First, ping the interface itself,
and then ping another machine on the LAN.First test the local interface:&prompt.user; ping -c5 192.168.1.3
PING 192.168.1.3 (192.168.1.3): 56 data bytes
64 bytes from 192.168.1.3: icmp_seq=0 ttl=64 time=0.082 ms
64 bytes from 192.168.1.3: icmp_seq=1 ttl=64 time=0.074 ms
64 bytes from 192.168.1.3: icmp_seq=2 ttl=64 time=0.076 ms
64 bytes from 192.168.1.3: icmp_seq=3 ttl=64 time=0.108 ms
64 bytes from 192.168.1.3: icmp_seq=4 ttl=64 time=0.076 ms
--- 192.168.1.3 ping statistics ---
5 packets transmitted, 5 packets received, 0% packet loss
round-trip min/avg/max/stddev = 0.074/0.083/0.108/0.013 msNow we have to ping another machine on the LAN:&prompt.user; ping -c5 192.168.1.2
PING 192.168.1.2 (192.168.1.2): 56 data bytes
64 bytes from 192.168.1.2: icmp_seq=0 ttl=64 time=0.726 ms
64 bytes from 192.168.1.2: icmp_seq=1 ttl=64 time=0.766 ms
64 bytes from 192.168.1.2: icmp_seq=2 ttl=64 time=0.700 ms
64 bytes from 192.168.1.2: icmp_seq=3 ttl=64 time=0.747 ms
64 bytes from 192.168.1.2: icmp_seq=4 ttl=64 time=0.704 ms
--- 192.168.1.2 ping statistics ---
5 packets transmitted, 5 packets received, 0% packet loss
round-trip min/avg/max/stddev = 0.700/0.729/0.766/0.025 msYou could also use the machine name instead of
192.168.1.2 if you have set up the
/etc/hosts file.Troubleshootingnetwork card configurationtroubleshootingTroubleshooting hardware and software configurations is always
a pain, and a pain which can be alleviated by checking the simple
things first. Is your network cable plugged in? Have you properly
configured the network services? Did you configure the firewall
correctly? Is the card you are using supported by &os;? Always
check the hardware notes before sending off a bug report. Update
your version of &os; to the latest STABLE version. Check the
mailing list archives, or perhaps search the Internet.If the card works, yet performance is poor, it would be
worthwhile to read over the &man.tuning.7; manual page. You
can also check the network configuration as incorrect network
settings can cause slow connections.Some users experience one or two device
timeouts, which is normal for some cards. If they
continue, or are bothersome, you may wish to be sure the
device is not conflicting with another device. Double check
the cable connections. Perhaps you may just need to get
another card.At times, users see a few watchdog timeout
errors. The first thing to do here is to check your network
cable. Many cards require a PCI slot which supports Bus
Mastering. On some old motherboards, only one PCI slot allows
it (usually slot 0). Check the network card and the
motherboard documentation to determine if that may be the
problem.No route to host messages occur if the
system is unable to route a packet to the destination host.
This can happen if no default route is specified, or if a
cable is unplugged. Check the output of netstat
-rn and make sure there is a valid route to the host
you are trying to reach. If there is not, read on to .ping: sendto: Permission denied error
messages are often caused by a misconfigured firewall. If
ipfw is enabled in the kernel but no rules
have been defined, then the default policy is to deny all
traffic, even ping requests! Read on to for more information.Sometimes performance of the card is poor, or below average.
In these cases it is best to set the media selection mode
from autoselect to the correct media selection.
While this usually works for most hardware, it may not resolve
this issue for everyone. Again, check all the network settings,
and read over the &man.tuning.7; manual page.Virtual Hostsvirtual hostsIP aliasesA very common use of &os; is virtual site hosting, where
one server appears to the network as many servers. This is
achieved by assigning multiple network addresses to a single
interface.A given network interface has one real address,
and may have any number of alias addresses.
These aliases are
normally added by placing alias entries in
/etc/rc.conf.An alias entry for the interface fxp0
looks like:ifconfig_fxp0_alias0="inet xxx.xxx.xxx.xxx netmask xxx.xxx.xxx.xxx"Note that alias entries must start with alias0 and proceed
upwards in order, (for example, _alias1, _alias2, and so on).
The configuration process will stop at the first missing number.
The calculation of alias netmasks is important, but
fortunately quite simple. For a given interface, there must be
one address which correctly represents the network's netmask.
Any other addresses which fall within this network must have a
netmask of all 1s.For example, consider the case where the
fxp0 interface is
connected to two networks, the 10.1.1.0
network with a netmask of 255.255.255.0
and the 202.0.75.16 network with
a netmask of 255.255.255.240.
We want the system to appear at 10.1.1.1
through 10.1.1.5 and at
202.0.75.17 through
202.0.75.20.The following entries configure the adapter correctly for
this arrangement: ifconfig_fxp0="inet 10.1.1.1 netmask 255.255.255.0"
ifconfig_fxp0_alias0="inet 10.1.1.2 netmask 255.255.255.255"
ifconfig_fxp0_alias1="inet 10.1.1.3 netmask 255.255.255.255"
ifconfig_fxp0_alias2="inet 10.1.1.4 netmask 255.255.255.255"
ifconfig_fxp0_alias3="inet 10.1.1.5 netmask 255.255.255.255"
ifconfig_fxp0_alias4="inet 202.0.75.17 netmask 255.255.255.240"
ifconfig_fxp0_alias5="inet 202.0.75.18 netmask 255.255.255.255"
ifconfig_fxp0_alias6="inet 202.0.75.19 netmask 255.255.255.255"
ifconfig_fxp0_alias7="inet 202.0.75.20 netmask 255.255.255.255"Configuration Files/etc LayoutThere are a number of directories in which configuration
information is kept. These include:/etcGeneric system configuration information; data here is
system-specific./etc/defaultsDefault versions of system configuration files./etc/mailExtra &man.sendmail.8; configuration, other
MTA configuration files.
/etc/pppConfiguration for both user- and kernel-ppp programs.
/etc/namedbDefault location for &man.named.8; data. Normally
named.conf and zone files are stored
here./usr/local/etcConfiguration files for installed applications.
May contain per-application subdirectories./usr/local/etc/rc.dStart/stop scripts for installed applications./var/dbAutomatically generated system-specific database files,
such as the package database, the locate database, and so
onHostnameshostnameDNS/etc/resolv.confresolv.conf/etc/resolv.conf dictates how &os;'s
resolver accesses the Internet Domain Name System (DNS).The most common entries to resolv.conf are:
nameserverThe IP address of a name server the resolver
should query. The servers are queried in the order
listed with a maximum of three.searchSearch list for hostname lookup. This is normally
determined by the domain of the local hostname.domainThe local domain name.A typical resolv.conf:search example.com
nameserver 147.11.1.11
nameserver 147.11.100.30Only one of the search and
domain options should be used.If you are using DHCP, &man.dhclient.8; usually rewrites
resolv.conf with information received from the
DHCP server./etc/hostshosts/etc/hosts is a simple text
database reminiscent of the old Internet. It works in
conjunction with DNS and NIS providing name to IP address
mappings. Local computers connected via a LAN can be placed
in here for simplistic naming purposes instead of setting up
a &man.named.8; server. Additionally,
/etc/hosts can be used to provide a
local record of Internet names, reducing the need to query
externally for commonly accessed names.# $&os;$
#
# Host Database
# This file should contain the addresses and aliases
# for local hosts that share this file.
# In the presence of the domain name service or NIS, this file may
# not be consulted at all; see /etc/nsswitch.conf for the resolution order.
#
#
::1 localhost localhost.my.domain myname.my.domain
127.0.0.1 localhost localhost.my.domain myname.my.domain
#
# Imaginary network.
#10.0.0.2 myname.my.domain myname
#10.0.0.3 myfriend.my.domain myfriend
#
# According to RFC 1918, you can use the following IP networks for
# private nets which will never be connected to the Internet:
#
# 10.0.0.0 - 10.255.255.255
# 172.16.0.0 - 172.31.255.255
# 192.168.0.0 - 192.168.255.255
#
# In case you want to be able to connect to the Internet, you need
# real official assigned numbers. PLEASE PLEASE PLEASE do not try
# to invent your own network numbers but instead get one from your
# network provider (if any) or from the Internet Registry (ftp to
# rs.internic.net, directory `/templates').
#/etc/hosts takes on the simple format
of:[Internet address] [official hostname] [alias1] [alias2] ...For example:10.0.0.1 myRealHostname.example.com myRealHostname foobar1 foobar2Consult &man.hosts.5; for more information.Log File Configurationlog filessyslog.confsyslog.confsyslog.conf is the configuration file
for the &man.syslogd.8; program. It indicates which types
of syslog messages are logged to particular
log files.# $&os;$
#
# Spaces ARE valid field separators in this file. However,
# other *nix-like systems still insist on using tabs as field
# separators. If you are sharing this file between systems, you
# may want to use only tabs as field separators here.
# Consult the syslog.conf(5) manual page.
*.err;kern.debug;auth.notice;mail.crit /dev/console
*.notice;kern.debug;lpr.info;mail.crit;news.err /var/log/messages
security.* /var/log/security
mail.info /var/log/maillog
lpr.info /var/log/lpd-errs
cron.* /var/log/cron
*.err root
*.notice;news.err root
*.alert root
*.emerg *
# uncomment this to log all writes to /dev/console to /var/log/console.log
#console.info /var/log/console.log
# uncomment this to enable logging of all log messages to /var/log/all.log
#*.* /var/log/all.log
# uncomment this to enable logging to a remote log host named loghost
#*.* @loghost
# uncomment these if you're running inn
# news.crit /var/log/news/news.crit
# news.err /var/log/news/news.err
# news.notice /var/log/news/news.notice
!startslip
*.* /var/log/slip.log
!ppp
*.* /var/log/ppp.logConsult the &man.syslog.conf.5; manual page for more
information.newsyslog.confnewsyslog.confnewsyslog.conf is the configuration
file for &man.newsyslog.8;, a program that is normally scheduled
to run by &man.cron.8;. &man.newsyslog.8; determines when log
files require archiving or rearranging.
logfile is moved to
logfile.0, logfile.0
is moved to logfile.1, and so on.
Alternatively, the log files may be archived in &man.gzip.1; format
causing them to be named: logfile.0.gz,
logfile.1.gz, and so on.newsyslog.conf indicates which log
files are to be managed, how many are to be kept, and when
they are to be touched. Log files can be rearranged and/or
archived when they have either reached a certain size, or at a
certain periodic time/date.# configuration file for newsyslog
# $&os;$
#
# filename [owner:group] mode count size when [ZB] [/pid_file] [sig_num]
/var/log/cron 600 3 100 * Z
/var/log/amd.log 644 7 100 * Z
/var/log/kerberos.log 644 7 100 * Z
/var/log/lpd-errs 644 7 100 * Z
/var/log/maillog 644 7 * @T00 Z
/var/log/sendmail.st 644 10 * 168 B
/var/log/messages 644 5 100 * Z
/var/log/all.log 600 7 * @T00 Z
/var/log/slip.log 600 3 100 * Z
/var/log/ppp.log 600 3 100 * Z
/var/log/security 600 10 100 * Z
/var/log/wtmp 644 3 * @01T05 B
/var/log/daily.log 640 7 * @T00 Z
/var/log/weekly.log 640 5 1 $W6D0 Z
/var/log/monthly.log 640 12 * $M1D0 Z
/var/log/console.log 640 5 100 * ZConsult the &man.newsyslog.8; manual page for more
information.sysctl.confsysctl.confsysctlsysctl.conf looks much like
rc.conf. Values are set in a
variable=value
form. The specified values are set after the system goes into
multi-user mode. Not all variables are settable in this mode.A sample sysctl.conf turning off logging
of fatal signal exits and letting Linux programs know they are really
running under &os;:kern.logsigexit=0 # Do not log fatal signal exits (e.g. sig 11)
compat.linux.osname=&os;
compat.linux.osrelease=4.3-STABLETuning with sysctlsysctltuningwith sysctl&man.sysctl.8; is an interface that allows you to make changes
to a running &os; system. This includes many advanced
options of the TCP/IP stack and virtual memory system that can
dramatically improve performance for an experienced system
administrator. Over five hundred system variables can be read
and set using &man.sysctl.8;.At its core, &man.sysctl.8; serves two functions: to read and
to modify system settings.To view all readable variables:&prompt.user; sysctl -aTo read a particular variable, for example,
kern.maxproc:&prompt.user; sysctl kern.maxproc
kern.maxproc: 1044To set a particular variable, use the intuitive
variable=value
syntax:&prompt.root; sysctl kern.maxfiles=5000
kern.maxfiles: 2088 -> 5000Settings of sysctl variables are usually either strings,
numbers, or booleans (a boolean being 1 for yes
or a 0 for no).TomRhodesContributed by &man.sysctl.8; Read-onlyIn some cases it may be desirable to modify read-only &man.sysctl.8;
values. While this is not recommended, it is also sometimes unavoidable.For instance on some laptop models the &man.cardbus.4; device will
not probe memory ranges, and fail with errors which look similar to:cbb0: Could not map register memory
device_probe_and_attach: cbb0 attach returned 12Cases like the one above usually require the modification of some
default &man.sysctl.8; settings which are set read only. To overcome
these situations a user can put &man.sysctl.8; OIDs
in their local /boot/loader.conf. Default
settings are located in the /boot/defaults/loader.conf
file.Fixing the problem mentioned above would require a user to set
in the aforementioned
file. Now &man.cardbus.4; will work properly.Tuning DisksSysctl Variablesvfs.vmiodirenablevfs.vmiodirenableThe vfs.vmiodirenable sysctl variable
may be set to either 0 (off) or 1 (on); it is 1 by default.
This variable controls how directories are cached by the
system. Most directories are small, using just a single
fragment (typically 1 K) in the file system and less
(typically 512 bytes) in the buffer cache.
However, when operating in the default mode the buffer
cache will only cache a fixed number of directories even if
you have a huge amount of memory. Turning on this sysctl
allows the buffer cache to use the VM Page Cache to cache the
directories, making all the memory available for caching
directories. However,
the minimum in-core memory used to cache a directory is the
physical page size (typically 4 K) rather than 512
bytes. We recommend turning this option on if you are running
any services which manipulate large numbers of files. Such
services can include web caches, large mail systems, and news
systems. Turning on this option will generally not reduce
performance even with the wasted memory but you should
experiment to find out.vfs.write_behindvfs.write_behindThe vfs.write_behind sysctl variable
defaults to 1 (on). This tells the file system
to issue media writes as full clusters are collected, which
typically occurs when writing large sequential files. The idea
is to avoid saturating the buffer cache with dirty buffers when
it would not benefit I/O performance. However, this may stall
processes and under certain circumstances you may wish to turn it
off.vfs.hirunningspacevfs.hirunningspaceThe vfs.hirunningspace sysctl variable
determines how much outstanding write I/O may be queued to disk
controllers system-wide at any given instance. The default is
usually sufficient but on machines with lots of disks you may
want to bump it up to four or five megabytes.
Note that setting too high a value (exceeding the buffer cache's
write threshold) can lead to extremely bad clustering
performance. Do not set this value arbitrarily high! Higher
write values may add latency to reads occurring at the same time.
There are various other buffer-cache and VM page cache
related sysctls. We do not recommend modifying these values. As
of &os; 4.3, the VM system does an extremely good job of
automatically tuning itself.vm.swap_idle_enabledvm.swap_idle_enabledThe vm.swap_idle_enabled sysctl variable
is useful in large multi-user systems where you have lots of
users entering and leaving the system and lots of idle processes.
Such systems tend to generate a great deal of continuous pressure
on free memory reserves. Turning this feature on and tweaking
the swapout hysteresis (in idle seconds) via
vm.swap_idle_threshold1 and
vm.swap_idle_threshold2 allows you to depress
the priority of memory pages associated with idle processes more
quickly then the normal pageout algorithm. This gives a helping
hand to the pageout daemon. Do not turn this option on unless
you need it, because the tradeoff you are making is essentially
pre-page memory sooner rather than later; thus eating more swap
and disk bandwidth. In a small system this option will have a
determinable effect but in a large system that is already doing
moderate paging this option allows the VM system to stage whole
processes into and out of memory easily.hw.ata.wchw.ata.wc&os; 4.3 flirted with turning off IDE write caching.
This reduced write bandwidth to IDE disks but was considered
necessary due to serious data consistency issues introduced
by hard drive vendors. The problem is that IDE
drives lie about when a write completes. With IDE write
caching turned on, IDE hard drives not only write data
to disk out of order, but will sometimes delay writing some
blocks indefinitely when under heavy disk loads. A crash or
power failure may cause serious file system corruption.
&os;'s default was changed to be safe. Unfortunately, the
result was such a huge performance loss that we changed
write caching back to on by default after the release. You
should check the default on your system by observing the
hw.ata.wc sysctl variable. If IDE write
caching is turned off, you can turn it back on by setting
the kernel variable back to 1. This must be done from the
boot loader at boot time. Attempting to do it after the
kernel boots will have no effect.For more information, please see &man.ata.4;.
(kern.cam.scsi_delay)kern.cam.scsi_delayThe kernel config may be used to
reduce system boot times. The defaults are fairly high and can be
responsible for 15+ seconds of delay in the
boot process. Reducing it to 5 seconds usually
works (especially with modern drives). Newer versions of &os;
(5.0+) should use the kern.cam.scsi_delay
boot time tunable. The tunable, and kernel config option accept
values in terms of milliseconds and
notseconds.Soft UpdatesSoft UpdatestunefsThe &man.tunefs.8; program can be used to fine-tune a
file system. This program has many different options, but for
now we are only concerned with toggling Soft Updates on and
off, which is done by:&prompt.root; tunefs -n enable /filesystem
&prompt.root; tunefs -n disable /filesystemA filesystem cannot be modified with &man.tunefs.8; while
it is mounted. A good time to enable Soft Updates is before any
partitions have been mounted, in single-user mode.As of &os; 4.5, it is possible to enable Soft Updates
at filesystem creation time, through use of the -U
option to &man.newfs.8;.Soft Updates drastically improves meta-data performance, mainly
file creation and deletion, through the use of a memory cache. We
recommend to use Soft Updates on all of your file systems. There
are two downsides to Soft Updates that you should be aware of: First,
Soft Updates guarantees filesystem consistency in the case of a crash
but could very easily be several seconds (even a minute!) behind
updating the physical disk. If your system crashes you may lose more
work than otherwise. Secondly, Soft Updates delays the freeing of
filesystem blocks. If you have a filesystem (such as the root
filesystem) which is almost full, performing a major update, such as
make installworld, can cause the filesystem to run
out of space and the update to fail.More Details about Soft UpdatesSoft UpdatesdetailsThere are two traditional approaches to writing a file
systems meta-data back to disk. (Meta-data updates are
updates to non-content data like inodes or
directories.)Historically, the default behavior was to write out
meta-data updates synchronously. If a directory had been
changed, the system waited until the change was actually
written to disk. The file data buffers (file contents) were
passed through the buffer cache and backed up
to disk later on asynchronously. The advantage of this
implementation is that it operates safely. If there is
a failure during an update, the meta-data are always in a
consistent state. A file is either created completely
or not at all. If the data blocks of a file did not find
their way out of the buffer cache onto the disk by the time
of the crash, &man.fsck.8; is able to recognize this and
repair the filesystem by setting the file length to
0. Additionally, the implementation is clear and simple.
The disadvantage is that meta-data changes are slow. An
rm -r, for instance, touches all the files
in a directory sequentially, but each directory
change (deletion of a file) will be written synchronously
to the disk. This includes updates to the directory itself,
to the inode table, and possibly to indirect blocks
allocated by the file. Similar considerations apply for
unrolling large hierarchies (tar -x).The second case is asynchronous meta-data updates. This
is the default for Linux/ext2fs and
mount -o async for *BSD ufs. All
meta-data updates are simply being passed through the buffer
cache too, that is, they will be intermixed with the updates
of the file content data. The advantage of this
implementation is there is no need to wait until each
meta-data update has been written to disk, so all operations
which cause huge amounts of meta-data updates work much
faster than in the synchronous case. Also, the
implementation is still clear and simple, so there is a low
risk for bugs creeping into the code. The disadvantage is
that there is no guarantee at all for a consistent state of
the filesystem. If there is a failure during an operation
that updated large amounts of meta-data (like a power
failure, or someone pressing the reset button),
the filesystem
will be left in an unpredictable state. There is no opportunity
to examine the state of the filesystem when the system
comes up again; the data blocks of a file could already have
been written to the disk while the updates of the inode
table or the associated directory were not. It is actually
impossible to implement a fsck which is
able to clean up the resulting chaos (because the necessary
information is not available on the disk). If the
filesystem has been damaged beyond repair, the only choice
is to use &man.newfs.8; on it and restore it from backup.
The usual solution for this problem was to implement
dirty region logging, which is also
referred to as journaling, although that
term is not used consistently and is occasionally applied
to other forms of transaction logging as well. Meta-data
updates are still written synchronously, but only into a
small region of the disk. Later on they will be moved
to their proper location. Because the logging
area is a small, contiguous region on the disk, there
are no long distances for the disk heads to move, even
during heavy operations, so these operations are quicker
than synchronous updates.
Additionally the complexity of the implementation is fairly
limited, so the risk of bugs being present is low. A disadvantage
is that all meta-data are written twice (once into the
logging region and once to the proper location) so for
normal work, a performance pessimization
might result. On the other hand, in case of a crash, all
pending meta-data operations can be quickly either rolled-back
or completed from the logging area after the system comes
up again, resulting in a fast filesystem startup.Kirk McKusick, the developer of Berkeley FFS,
solved this problem with Soft Updates: all pending
meta-data updates are kept in memory and written out to disk
in a sorted sequence (ordered meta-data
updates). This has the effect that, in case of
heavy meta-data operations, later updates to an item
catch the earlier ones if the earlier ones are still in
memory and have not already been written to disk. So all
operations on, say, a directory are generally performed in
memory before the update is written to disk (the data
blocks are sorted according to their position so
that they will not be on the disk ahead of their meta-data).
If the system crashes, this causes an implicit log
rewind: all operations which did not find their way
to the disk appear as if they had never happened. A
consistent filesystem state is maintained that appears to
be the one of 30 to 60 seconds earlier. The
algorithm used guarantees that all resources in use
are marked as such in their appropriate bitmaps: blocks and inodes.
After a crash, the only resource allocation error
that occurs is that resources are
marked as used which are actually free.
&man.fsck.8; recognizes this situation,
and frees the resources that are no longer used. It is safe to
ignore the dirty state of the filesystem after a crash by
forcibly mounting it with mount -f. In
order to free resources that may be unused, &man.fsck.8;
needs to be run at a later time. This is the idea behind
the background fsck: at system startup
time, only a snapshot of the
filesystem is recorded. The fsck can be
run later on. All file systems can then be mounted
dirty, so the system startup proceeds in
multiuser mode. Then, background fscks
will be scheduled for all file systems where this is required, to free
resources that may be unused. (File systems that do not use
Soft Updates still need the usual foreground
fsck though.)The advantage is that meta-data operations are nearly as
fast as asynchronous updates (i.e. faster than with
logging, which has to write the
meta-data twice). The disadvantages are the complexity of
the code (implying a higher risk for bugs in an area that
is highly sensitive regarding loss of user data), and a
higher memory consumption. Additionally there are some
idiosyncrasies one has to get used to.
After a crash, the state of the filesystem appears to be
somewhat older. In situations where
the standard synchronous approach would have caused some
zero-length files to remain after the
fsck, these files do not exist at all
with a Soft Updates filesystem because neither the meta-data
nor the file contents have ever been written to disk.
Disk space is not released until the updates have been
written to disk, which may take place some time after
running rm. This may cause problems
when installing large amounts of data on a filesystem
that does not have enough free space to hold all the files
twice.Tuning Kernel Limitstuningkernel limitsFile/Process Limitskern.maxfileskern.maxfileskern.maxfiles can be raised or
lowered based upon your system requirements. This variable
indicates the maximum number of file descriptors on your
system. When the file descriptor table is full,
file: table is full will show up repeatedly
in the system message buffer, which can be viewed with the
dmesg command.Each open file, socket, or fifo uses one file
descriptor. A large-scale production server may easily
require many thousands of file descriptors, depending on the
kind and number of services running concurrently.kern.maxfile's default value is
dictated by the option in your
kernel configuration file. kern.maxfiles grows
proportionally to the value of . When
compiling a custom kernel, it is a good idea to set this kernel
configuration option according to the uses of your system. From
this number, the kernel is given most of its pre-defined limits.
Even though a production machine may not actually have 256 users
connected at once, the resources needed may be similar to a
high-scale web server.As of &os; 4.5, setting to
0 in your kernel configuration file will choose
a reasonable default value based on the amount of RAM present in
your system.kern.ipc.somaxconnkern.ipc.somaxconnThe kern.ipc.somaxconn sysctl variable
limits the size of the listen queue for accepting new TCP
connections. The default value of 128 is
typically too low for robust handling of new connections in a
heavily loaded web server environment. For such environments, it
is recommended to increase this value to 1024 or
higher. The service daemon may itself limit the listen queue size
(e.g. &man.sendmail.8;, or Apache) but
will often have a directive in its configuration file to adjust
the queue size. Large listen queues also do a better job of
avoiding Denial of Service (DoS) attacks.Network LimitsThe kernel configuration
option dictates the amount of network Mbufs available to the
system. A heavily-trafficked server with a low number of Mbufs
will hinder &os;'s ability. Each cluster represents
approximately 2 K of memory, so a value of 1024 represents 2
megabytes of kernel memory reserved for network buffers. A
simple calculation can be done to figure out how many are
needed. If you have a web server which maxes out at 1000
simultaneous connections, and each connection eats a 16 K receive
and 16 K send buffer, you need approximately 32 MB worth of
network buffers to cover the web server. A good rule of thumb is
to multiply by 2, so 2x32 MB / 2 KB =
64 MB / 2 kB = 32768. We recommend
values between 4096 and 32768 for machines with greater amounts
of memory. Under no circumstances should you specify an
arbitrarily high value for this parameter as it could lead to a
boot time crash. The option to
&man.netstat.1; may be used to observe network cluster
use.kern.ipc.nmbclusters loader tunable should
be used to tune this at boot time. Only older versions of &os;
will require you to use the kernel
&man.config.8; option.For busy servers that make extensive use of the
&man.sendfile.2; system call, it may be necessary to increase
the number of &man.sendfile.2; buffers via the
kernel configuration option or by
setting its value in /boot/loader.conf
(see &man.loader.8; for details). A common indicator that
this parameter needs to be adjusted is when processes are seen
in the sfbufa state. The sysctl
variable kern.ipc.nsfbufs is a read-only
glimpse at the kernel configured variable. This parameter
nominally scales with kern.maxusers,
however it may be necessary to tune accordingly.Even though a socket has been marked as non-blocking,
calling &man.sendfile.2; on the non-blocking socket may
result in the &man.sendfile.2; call blocking until enough
struct sf_buf's are made
available.net.inet.ip.portrange.*net.inet.ip.portrange.*The net.inet.ip.portrange.* sysctl
variables control the port number ranges automatically bound to TCP
and UDP sockets. There are three ranges: a low range, a default
range, and a high range. Most network programs use the default
range which is controlled by the
net.inet.ip.portrange.first and
net.inet.ip.portrange.last, which default to
1024 and 5000, respectively. Bound port ranges are used for
outgoing connections, and it is possible to run the system out of
ports under certain circumstances. This most commonly occurs
when you are running a heavily loaded web proxy. The port range
is not an issue when running servers which handle mainly incoming
connections, such as a normal web server, or has a limited number
of outgoing connections, such as a mail relay. For situations
where you may run yourself out of ports, it is recommended to
increase net.inet.ip.portrange.last modestly.
A value of 10000, 20000 or
30000 may be reasonable. You should also
consider firewall effects when changing the port range. Some
firewalls may block large ranges of ports (usually low-numbered
ports) and expect systems to use higher ranges of ports for
outgoing connections — for this reason it is recommended that
net.inet.ip.portrange.first be lowered.TCP Bandwidth Delay ProductTCP Bandwidth Delay Product Limitingnet.inet.tcp.inflight_enableThe TCP Bandwidth Delay Product Limiting is similar to
TCP/Vegas in NetBSD. It can be
enabled by setting net.inet.tcp.inflight_enable
sysctl variable to 1. The system will attempt
to calculate the bandwidth delay product for each connection and
limit the amount of data queued to the network to just the amount
required to maintain optimum throughput.This feature is useful if you are serving data over modems,
Gigabit Ethernet, or even high speed WAN links (or any other link
with a high bandwidth delay product), especially if you are also
using window scaling or have configured a large send window. If
you enable this option, you should also be sure to set
net.inet.tcp.inflight_debug to
0 (disable debugging), and for production use
setting net.inet.tcp.inflight_min to at least
6144 may be beneficial. However, note that
setting high minimums may effectively disable bandwidth limiting
depending on the link. The limiting feature reduces the amount of
data built up in intermediate route and switch packet queues as
well as reduces the amount of data built up in the local host's
interface queue. With fewer packets queued up, interactive
connections, especially over slow modems, will also be able to
operate with lower Round Trip Times. However,
note that this feature only effects data transmission (uploading
/ server side). It has no effect on data reception (downloading).
Adjusting net.inet.tcp.inflight_stab is
not recommended. This parameter defaults to
20, representing 2 maximal packets added to the bandwidth delay
product window calculation. The additional window is required to
stabilize the algorithm and improve responsiveness to changing
conditions, but it can also result in higher ping times over slow
links (though still much lower than you would get without the
inflight algorithm). In such cases, you may wish to try reducing
this parameter to 15, 10, or 5; and may also have to reduce
net.inet.tcp.inflight_min (for example, to
3500) to get the desired effect. Reducing these parameters
should be done as a last resort only.Adding Swap SpaceNo matter how well you plan, sometimes a system does not run
as you expect. If you find you need more swap space, it is
simple enough to add. You have three ways to increase swap
space: adding a new hard drive, enabling swap over NFS, and
creating a swap file on an existing partition.Swap on a New Hard DriveThe best way to add swap, of course, is to use this as an
excuse to add another hard drive. You can always use another
hard drive, after all. If you can do this, go reread the
discussion of swap space
from the Initial Configuration
section of the Handbook for some suggestions on how to best
arrange your swap.Swapping over NFSSwapping over NFS is only recommended if you do not have a
local hard disk to swap to. Swapping over NFS is slow and
inefficient in versions of &os; prior to 4.X. It is
reasonably fast and efficient in 4.0-RELEASE and newer. Even
with newer versions of &os;, NFS swapping will be limited
by the available network bandwidth and puts an additional
burden on the NFS server.SwapfilesYou can create a file of a specified size to use as a swap
file. In our example here we will use a 64MB file called
/usr/swap0. You can use any name you
want, of course.Creating a Swapfile on &os; 4.XBe certain that your kernel configuration includes
the vnode driver. It is not in recent versions of
GENERIC.pseudo-device vn 1 #Vnode driver (turns a file into a device)Create a vn-device:&prompt.root; cd /dev
&prompt.root; sh MAKEDEV vn0Create a swapfile (/usr/swap0):&prompt.root; dd if=/dev/zero of=/usr/swap0 bs=1024k count=64Set proper permissions on (/usr/swap0):&prompt.root; chmod 0600 /usr/swap0Enable the swap file in /etc/rc.conf:swapfile="/usr/swap0" # Set to name of swapfile if aux swapfile desired.Reboot the machine or to enable the swap file immediately,
type:&prompt.root; vnconfig -e /dev/vn0b /usr/swap0 swapCreating a Swapfile on &os; 5.XBe certain that your kernel configuration includes
the memory disk driver (&man.md.4;). It is default in
GENERIC kernel.device md # Memory "disks"Create a swapfile (/usr/swap0):&prompt.root; dd if=/dev/zero of=/usr/swap0 bs=1024k count=64Set proper permissions on (/usr/swap0):&prompt.root; chmod 0600 /usr/swap0Enable the swap file in /etc/rc.conf:swapfile="/usr/swap0" # Set to name of swapfile if aux swapfile desired.Reboot the machine or to enable the swap file immediately,
type:&prompt.root; mdconfig -a -t vnode -f /usr/swap0 -u 0 && swapon /dev/md0HitenPandyaWritten by TomRhodesPower and Resource ManagementIt is very important to utilize hardware resources in an
efficient manner. Before ACPI was introduced,
it was very difficult and inflexible for operating systems to manage
the power usage and thermal properties of a system. The hardware was
controlled by some sort of BIOS embedded
interface, such as Plug and Play BIOS (PNPBIOS), or
Advanced Power Management (APM) and so on.
Power and Resource Management is one of the key components of a modern
operating system. For example, you may want an operating system to
monitor system limits (and possibly alert you) in case your system
temperature increased unexpectedly.In this section of the &os; Handbook, we will provide
comprehensive information about ACPI. References
will be provided for further reading at the end. Please be aware
that ACPI is available on &os; 5.X and
above systems as a default kernel module. For &os; 4.9,
ACPI can be enabled by adding the line
device acpi to a kernel configuration and
rebuilding.What Is ACPI?Advanced Configuration and Power Interface
(ACPI) is a standard written by
an alliance of vendors to provide a standard interface for
hardware resources and power management (hence the name).
It is a key element in Operating System-directed
configuration and Power Management, i.e.: it provides
more control and flexibility to the operating system
(OS).
Modern systems stretched the limits of the
current Plug and Play interfaces (such as APM, which is used in
&os; 4.X), prior to the introduction of
ACPI. ACPI is the direct
successor to APM
(Advanced Power Management).Shortcomings of Advanced Power Management (APM)The Advanced Power Management (APM)
facility control's the power usage of a system based on its
activity. The APM BIOS is supplied by the (system) vendor and
it is specific to the hardware platform. An APM driver in the
OS mediates access to the APM Software Interface,
which allows management of power levels.There are four major problems in APM. Firstly, power
management is done by the (vendor-specific) BIOS, and the OS
does not have any knowledge of it. One example of this, is when
the user sets idle-time values for a hard drive in the APM BIOS,
that when exceeded, it (BIOS) would spin down the hard drive,
without the consent of the OS. Secondly, the APM logic is
embedded in the BIOS, and it operates outside the scope of the
OS. This means users can only fix problems in their APM BIOS by
flashing a new one into the ROM; which, is a very dangerous
procedure, and if it fails, it could leave the system in an
unrecoverable state. Thirdly, APM is a vendor-specific
technology, which, means that there is a lot or parity
(duplication of efforts) and bugs found in one vendor's BIOS,
may not be solved in others. Last but not the least, the APM
BIOS did not have enough room to implement a sophisticated power
policy, or one that can adapt very well to the purpose of the
machine.Plug and Play BIOS (PNPBIOS) was
unreliable in many situations. PNPBIOS is 16-bit technology,
so the OS has to use 16-bit emulation in order to
interface with PNPBIOS methods.The &os; APM driver is documented in
the &man.apm.4; manual page.Configuring ACPIThe acpi.ko driver is loaded by default
at start up by the &man.loader.8; and should not
be compiled into the kernel. The reasoning behind this is that modules
are easier to work with, say if switching to another acpi.ko
without doing a kernel rebuild. This has the advantage of making testing easier.
Another reason is that starting ACPI after a system has been
brought up is not too useful, and in some cases can be fatal. In doubt, just
disable ACPI all together. This driver should not and can not
be unloaded because the system bus uses it for various hardware interactions.
ACPI can be disabled with the &man.acpiconf.8; utility.
In fact most of the interaction with ACPI can be done via
&man.acpiconf.8;. Basically this means, if anything about ACPI
is in the &man.dmesg.8; output, then most likely it is already running.ACPI and APM cannot coexist and
should be used separately. The last one to load will terminate if the driver
notices the other running.In the simplest form, ACPI can be used to put the
system into a sleep mode with &man.acpiconf.8;, the
flag, and a 1-5 option. Most users will only need
1. Option 5 will do a soft-off
which is the same action as:&prompt.root; halt -pThe other options are available. Check out the &man.acpiconf.8;
manual page for more information.NateLawsonWritten by PeterSchultzWith contributions from TomRhodesUsing and Debugging &os; ACPIACPI is a fundamentally new way of
discovering devices, managing power usage, and providing
standardized access to various hardware previously managed
by the BIOS. Progress is being made toward
ACPI working on all systems, but bugs in some
motherboards' AML bytecode, incompleteness in
&os;'s kernel subsystems, and bugs in the Intel
ACPI-CA interpreter continue to appear.This document is intended to help you assist the &os;
ACPI maintainers in identifying the root cause
of problems you observe and debugging and developing a solution.
Thanks for reading this and we hope we can solve your system's
problems.Submitting Debugging InformationBefore submitting a problem, be sure you are running the latest
BIOS version and, if available, embedded
controller firmware version.For those of you that want to submit a problem right away,
please send the following information to
freebsd-acpi@FreeBSD.orgDescription of the buggy behavior, including system type
and model and anything that causes the bug to appear. Also,
please note as accurately as possible when the bug began
occurring if it is new for you.The dmesg output after boot
, including any error messages
generated by you exercising the bug.dmesg output from boot
with ACPI
disabled, if disabling it helps fix the problem.Output from sysctl hw.acpi. This is also
a good way of figuring out what features your system
offers.URL where your ASL
can be found. Do not send the
ASL directly to the list as it can be
very large. Generate a copy of your ASL
by running this command:&prompt.root; acpidump -t -d > name-system.asl(Substitute your login name for
name and manufacturer/model for
system. Example:
njl-FooCo6000.asl)Most of the developers watch the &a.current;
but please submit problems to &a.acpi.name; to be sure it is
seen. Please be patient, all of us have full-time jobs
elsewhere. If your bug is not immediately apparent, we will
probably ask you to submit a PR via
&man.send-pr.1;. When entering a PR, please
include the same information as requested above. This will help
us track the problem and resolve it. Do not send a
PR without emailing &a.acpi.name; first as we use
PRs as reminders of existing problems, not a
reporting mechanism. It is likely that your problem has been
reported by someone before.BackgroundACPI is present in all modern computers
that conform to the ia32 (x86), ia64 (Itanium), and amd64 (AMD)
architectures. The full standard has many features including
CPU performance management, power planes
control, thermal zones, various battery systems, embedded
controllers, and bus enumeration. Most systems implement less
than the full standard. For instance, a desktop system usually
only implements the bus enumeration parts while a laptop might
have cooling and battery management support as well. Laptops
also have suspend and resume, with their own associated
complexity.An ACPI-compliant system has various
components. The BIOS and chipset vendors
provide various fixed tables (e.g., FADT)
in memory that specify things like the APIC
map (used for SMP), config registers, and
simple configuration values. Additionally, a table of bytecode
(the DSDT) is provided that specifies a
tree-like name space of devices and methods.The ACPI driver must parse the fixed
tables, implement an interpreter for the bytecode, and modify
device drivers and the kernel to accept information from the
ACPI subsystem. For &os;, Intel has
provided an interpreter (ACPI-CA) that is
shared with Linux and NetBSD. The path to the
ACPI-CA source code is
src/sys/contrib/dev/acpica.
The glue code that allows ACPI-CA to work on
&os; is in
src/sys/dev/acpica/Osd. Finally, drivers
that implement various ACPI devices are found
in
src/sys/dev/acpica.Common ProblemsFor ACPI to work correctly, all the parts
have to work correctly. Here are some common problems, in order
of frequency of appearance, and some possible workarounds or
fixes.Suspend/ResumeACPI has three suspend to
RAM (STR) states,
S1-S3, and one suspend
to disk state (STD), called
S4. S5 is
soft off and is the normal state your system
is in when plugged in but not powered up.
S4 can actually be implemented two separate
ways. S4BIOS is a
BIOS-assisted suspend to disk.
S4OS is implemented
entirely by the operating system.Start by checking sysctl
for the suspend-related items. Here
are the results for my Thinkpad:hw.acpi.supported_sleep_state: S3 S4 S5hw.acpi.s4bios: 0This means that I can use acpiconf
-s to test S3,
S4OS, and
S5. If was one
(1), I would have S4BIOS
support instead of S4
OS.When testing suspend/resume, start with
S1, if supported. This state is most
likely to work since it doesn't require much driver support.
No one has implemented S2 but if you have
it, it's similar to S1. The next thing
to try is S3. This is the deepest
STR state and requires a lot of driver
support to properly reinitialize your hardware. If you have
problems resuming, feel free to email the &a.acpi.name; list but
do not expect the problem to be resolved since there are a lot
of drivers/hardware that need more testing and work.To help isolate the problem, remove as many drivers from
your kernel as possible. If it works, you can narrow down
which driver is the problem by loading drivers until it fails
again. Typically binary drivers like
nvidia.ko, X11
display drivers, and USB will have the most
problems while Ethernet interfaces usually work fine. If you
can load/unload the drivers ok, you can automate this by
putting the appropriate commands in
/etc/rc.suspend and
/etc/rc.resume. There is a
commented-out example for unloading and loading a driver. Try
setting to zero (0) if
your display is messed up after resume. Try setting longer or
shorter values for to see
if that helps.Another thing to try is load a recent Linux distribution
with ACPI support and test their
suspend/resume support on the same hardware. If it works
on Linux, it's likely a &os; driver problem and narrowing down
which driver causes the problems will help us fix the problem.
Note that the ACPI maintainers do not
usually maintain other drivers (e.g sound,
ATA, etc.) so any work done on tracking
down a driver problem should probably eventually be posted
to the &a.current.name; list and mailed to the driver
maintainer. If you are feeling adventurous, go ahead and
start putting some debugging &man.printf.3;s in a problematic
driver to track down where in its resume function it
hangs.Finally, try disabling ACPI and
enabling APM instead. If suspend/resume
works with APM, you may be better off
sticking with APM, especially on older
hardware (pre-2000). It took vendors a while to get
ACPI support correct and older hardware is
more likely to have BIOS problems with
ACPI.System Hangs (temporary or permanent)Most system hangs are a result of lost interrupts or an
interrupt storm. Chipsets have a lot of problems based on how
the BIOS configures interrupts before boot,
correctness of the APIC
(MADT) table, and routing of the
SCI.Interrupt storms can be distinguished from lost interrupts
by checking the output of vmstat -i
and looking at the line that has
acpi0. If the counter is increasing at more
than a couple per second, you have an interrupt storm. If the
system appears hung, try breaking to DDB
(CTRLALTESC on
console) and type .Your best hope when dealing with interrupt problems is to
try disabling APIC support with
hint.apic.0.disabled="1" in
loader.conf.PanicsPanics are relatively rare for ACPI and
are the top priority to be fixed. The first step is to
isolate the steps to reproduce the panic (if possible)
and get a backtrace. Follow the advice for enabling
and setting up a serial console
+ (see )
or setting up a &man.dump.8; partition. You can get a
backtrace in DDB with
. If you have to handwrite the
backtrace, be sure to at least get the lowest five (5) and top
five (5) lines in the trace.Then, try to isolate the problem by booting with
ACPI disabled. If that works, you can
isolate the ACPI subsystem by using various
values of . See the
&man.acpi.4; manual page for some examples.System Powers Up After Suspend or ShutdownFirst, try setting
0
in &man.loader.conf.5;. This keeps ACPI
from disabling various events during the shutdown process.
Some systems need this value set to 1 (the
default) for the same reason. This usually fixes
the problem of a system powering up spontaneously after a
suspend or poweroff.Other ProblemsIf you have other problems with ACPI
(working with a docking station, devices not detected, etc.),
please email a description to the mailing list as well;
however, some of these issues may be related to unfinished
parts of the ACPI subsystem so they might
take a while to be implemented. Please be patient and
prepared to test patches we may send you.ASL, acpidump, and
IASLThe most common problem is the BIOS
vendors providing incorrect (or outright buggy!) bytecode. This
is usually manifested by kernel console messages like
this:ACPI-1287: *** Error: Method execution failed [\\_SB_.PCI0.LPC0.FIGD._STA] (Node 0xc3f6d160), AE_NOT_FOUNDOften, you can resolve these problems by updating your
BIOS to the latest revision. Most console
messages are harmless but if you have other problems like
battery status not working, they're a good place to start
looking for problems in the AML. The
bytecode, known as AML, is compiled from a
source language called ASL. The
AML is found in the table known as the
DSDT. To get a copy of your
ASL, use &man.acpidump.8;. You should use
both the (show contents of the fixed tables)
and (disassemble AML to
ASL) options. See the
Submitting Debugging
Information section for an example syntax.The simplest first check you can do is to recompile your
ASL to check for errors. Warnings can
usually be ignored but errors are bugs that will usually prevent
ACPI from working correctly. To recompile
your ASL, issue the following command:&prompt.root; iasl your.aslFixing Your ASLIn the long run, our goal is for almost everyone to have
ACPI work without any user intervention. At
this point, however, we are still developing workarounds for
common mistakes made by the BIOS vendors.
The Microsoft interpreter (acpi.sys and
acpiec.sys) does not strictly check for
adherence to the standard, and thus many BIOS
vendors who only test ACPI under Windows
never fix their ASL. We hope to continue to
identify and document exactly what non-standard behavior is
allowed by Microsoft's interpreter and replicate it so &os; can
work without forcing users to fix the ASL.
As a workaround and to help us identify behavior, you can fix
the ASL manually. If this works for you,
please send a &man.diff.1; of the old and new
ASL so we can possibly work around the buggy
behavior in ACPI-CA and thus make your fix
unnecessary.Here is a list of common error messages, their cause, and
how to fix them:_OS dependenciesSome AML assumes the world consists of
various Windows versions. You can tell &os; to claim it is
any OS to see if this fixes problems you
may have. An easy way to override this is to set
=Windows 2001
in /boot/loader.conf or other similar
strings you find in the ASL.Missing Return statementsSome methods do not explicitly return a value as the
standard requires. While ACPI-CA
does not handle this, &os; has a workaround that allows it to
return the value implicitly. You can also add explicit
Return statements where required if you know what value should
be returned. To force iasl to compile the
ASL, use the
flag.Overriding the Default AMLAfter you customize your.asl, you
will want to compile it, run:&prompt.root; iasl your.aslYou can add the flag to force creation
of the AML, even if there are errors during
compilation. Remember that some errors (e.g., missing Return
statements) are automatically worked around by the
interpreter.DSDT.aml is the default output
filename for iasl. You can load this
instead of your BIOS's buggy copy (which
is still present in flash memory) by editing
/boot/loader.conf as
follows:acpi_dsdt_load="YES"
acpi_dsdt_name="/boot/DSDT.aml"Be sure to copy your DSDT.aml to the
/boot directory.Getting Debugging Output From
ACPIThe ACPI driver has a very flexible
debugging facility. It allows you to specify a set of subsystems
as well as the level of verbosity. The subsystems you wish to
debug are specified as layers and are broken down
into ACPI-CA components (ACPI_ALL_COMPONENTS)
and ACPI hardware support (ACPI_ALL_DRIVERS).
The verbosity of debugging output is specified as the
level and ranges from ACPI_LV_ERROR (just report
errors) to ACPI_LV_VERBOSE (everything). The
level is a bitmask so multiple options can be set
at once, separated by spaces. In practice, you will want to use
a serial console to log the output if it is so long
it flushes the console message buffer. A full list of the
individual layers and levels is found in the &man.acpi.4; manual
page.Debugging output is not enabled by default. To enable it,
add to your kernel config
if ACPI is compiled into the kernel. You can
add to your
/etc/make.conf to enable it globally. If
it is a module, you can recompile just your
acpi.ko module as follows:&prompt.root; cd /sys/modules/acpi/acpi
&& make clean &&
make ACPI_DEBUG=1Install acpi.ko in
/boot/kernel and add your
desired level and layer to loader.conf.
This example enables debug messages for all
ACPI-CA components and all
ACPI hardware drivers
(CPU, LID, etc.) It will
only output error messages, the least verbose level.debug.acpi.layer="ACPI_ALL_COMPONENTS ACPI_ALL_DRIVERS"
debug.acpi.level="ACPI_LV_ERROR"If the information you want is triggered by a specific event
(say, a suspend and then resume), you can leave out changes to
loader.conf and instead use
sysctl to specify the layer and level after
booting and preparing your system for the specific event. The
sysctls are named the same as the tunables
in loader.conf.ReferencesMore information about ACPI may be found
in the following locations:The &a.acpi;The ACPI Mailing List Archives
The old ACPI Mailing List Archives
The ACPI 2.0 Specification
&os; Manual pages: &man.acpi.4;,
&man.acpi.thermal.4;, &man.acpidump.8;, &man.iasl.8;,
&man.acpidb.8;
DSDT debugging resource.
(Uses Compaq as an example but generally useful.)
diff --git a/en_US.ISO8859-1/books/handbook/serialcomms/chapter.sgml b/en_US.ISO8859-1/books/handbook/serialcomms/chapter.sgml
index e295332c9c..722f66d509 100644
--- a/en_US.ISO8859-1/books/handbook/serialcomms/chapter.sgml
+++ b/en_US.ISO8859-1/books/handbook/serialcomms/chapter.sgml
@@ -1,2664 +1,2664 @@
Serial CommunicationsSynopsisserial communications&unix; has always had support for serial communications. In fact,
the very first &unix; machines relied on serial lines for user input
and output. Things have changed a lot from the days when the average
terminal consisted of a 10-character-per-second serial
printer and a keyboard. This chapter will cover some of the ways in
which FreeBSD uses serial communications.After reading this chapter, you will know:How to connect terminals to your FreeBSD
system.How to use a modem to dial out to remote
hosts.How to allow remote users to login to your
system with a modem.How to boot your system from a serial
console.Before reading this chapter, you should:Know how to configure and install a new kernel ().Understand &unix; permissions and processes ().Have access to the technical manual for the
serial hardware (modem or multi-port card) that you would like
to use with FreeBSD.IntroductionTerminologybits-per-secondbpsBits per Second — the rate at which data is
transmittedDTEDTEData Terminal Equipment — for example, your
computerDCEDCEData Communications Equipment — your modemRS-232RS-232C cablesEIA standard for hardware serial communicationsWhen talking about communications data rates, this section
does not use the term baud. Baud refers to the
number of electrical state transitions that may be made in a
period of time, while bps (bits per second) is
the correct term to use (at least it does not
seem to bother the curmudgeons quite as much).Cables and PortsTo connect a modem or terminal to your FreeBSD system, you
will need a serial port on your computer and the proper cable to connect
to your serial device. If you are already familiar with your
hardware and the cable it requires, you can safely skip this
section.CablesThere are several different kinds of serial cables. The
two most common types for our purposes are null-modem cables
and standard (straight) RS-232 cables. The documentation
for your hardware should describe the type of cable
required.Null-modem Cablesnull-modem cableA null-modem cable passes some signals, such as signal
ground, straight through, but switches other signals. For
example, the send data pin on one end goes to the
receive data pin on the other end.If you like making your own cables, you can construct
a null-modem cable for use with
terminals. This table shows the RS-232C signal names and the pin
numbers on a DB-25 connector.SignalPin #Pin #SignalSG7connects to7SGTxD2connects to3RxDRxD3connects to2TxDRTS4connects to5CTSCTS5connects to4RTSDTR20connects to6DSRDCD86DSRDSR6connects to20DTRConnect Data Set Ready (DSR) and
Data Carrier Detect (DCD) internally in the
connector hood, and then to Data Terminal
Ready (DTR) in the remote hood.Standard RS-232C CablesRS-232C cablesA standard serial cable passes all the RS-232C signals
straight-through. That is, the send data pin on one
end of the cable goes to the send data pin on the
other end. This is the type of cable to use to connect a modem to your
FreeBSD system, and is also appropriate for some
terminals.PortsSerial ports are the devices through which data is transferred
between the FreeBSD host computer and the terminal. This section
describes the kinds of ports that exist and how they are addressed
in FreeBSD.Kinds of PortsSeveral kinds of serial ports exist. Before you purchase or
construct a cable, you need to make sure it will fit the ports on
your terminal and on the FreeBSD system.Most terminals will have DB25 ports. Personal computers,
including PCs running FreeBSD, will have DB25 or DB9 ports. If you
have a multiport serial card for your PC, you may have RJ-12 or
RJ-45 ports.See the documentation that accompanied the hardware for
specifications on the kind of port in use. A visual inspection of
the port often works too.Port NamesIn FreeBSD, you access each serial port through an entry in
the /dev directory. There are two different
kinds of entries:Call-in ports are named
/dev/ttydN
where N is the port number,
starting from zero. Generally, you use the call-in port for
terminals. Call-in ports require that the serial line assert
the data carrier detect (DCD) signal to work correctly.Call-out ports are named
/dev/cuaaN.
You usually do not use the call-out port for terminals, just
for modems. You may use the call-out port if the serial cable
or the terminal does not support the carrier detect
signal.If you have connected a terminal to the first serial port
(COM1 in &ms-dos;), then you will
use /dev/ttyd0 to refer to the terminal. If
the terminal is on the second serial port (also known as
COM2), use
/dev/ttyd1, and so forth.Kernel ConfigurationFreeBSD supports four serial ports by default. In the
&ms-dos; world, these are known as
COM1,
COM2,
COM3, and
COM4. FreeBSD currently supports
dumb multiport serial interface cards, such as
the BocaBoard 1008 and 2016, as well as more
intelligent multi-port cards such as those made by Digiboard
and Stallion Technologies. However, the default kernel only looks
for the standard COM ports.To see if your kernel recognizes any of your serial ports, watch
for messages while the kernel is booting, or use the
/sbin/dmesg command to replay the kernel's boot
messages. In particular, look for messages that start with the
characters sio.To view just the messages that have the word
sio, use the command:&prompt.root; /sbin/dmesg | grep 'sio'For example, on a system with four serial ports, these are the
serial-port specific kernel boot messages:sio0 at 0x3f8-0x3ff irq 4 on isa
sio0: type 16550A
sio1 at 0x2f8-0x2ff irq 3 on isa
sio1: type 16550A
sio2 at 0x3e8-0x3ef irq 5 on isa
sio2: type 16550A
sio3 at 0x2e8-0x2ef irq 9 on isa
sio3: type 16550AIf your kernel does not recognize all of your serial
ports, you will probably need to configure a custom FreeBSD
kernel for your system. For detailed information on
configuring your kernel, please see .The relevant device lines for your kernel configuration
file would look like this, for FreeBSD 4.X:device sio0 at isa? port IO_COM1 irq 4
device sio1 at isa? port IO_COM2 irq 3
device sio2 at isa? port IO_COM3 irq 5
device sio3 at isa? port IO_COM4 irq 9and like this, for FreeBSD 5.X:device sioYou can comment-out or completely remove lines for devices
you do not have in the case of FreeBSD 4.X; for
FreeBSD 5.X you have to edit your
/boot/device.hints file to configure your
serial ports. Please refer to the &man.sio.4; manual page for
more information on serial ports and multiport boards configuration.
Be careful if you are using a configuration
file that was previously used for a different version of
FreeBSD because the device flags and the syntax have changed between
versions.port IO_COM1 is a substitution for
port 0x3f8, IO_COM2 is
0x2f8, IO_COM3 is
0x3e8, and IO_COM4 is
0x2e8, which are fairly common port addresses for
their respective serial ports; interrupts 4, 3, 5, and 9 are fairly
common interrupt request lines. Also note that regular serial ports
cannot share interrupts on ISA-bus PCs
(multiport boards have on-board electronics that allow all the
16550A's on the board to share one or two interrupt request
lines).Device Special FilesMost devices in the kernel are accessed through device
special files, which are located in the
/dev directory. The sio
devices are accessed through the
/dev/ttydN (dial-in)
and /dev/cuaaN
(call-out) devices. FreeBSD also provides initialization devices
(/dev/ttyidN and
/dev/cuaiaN) and
locking devices
(/dev/ttyldN and
/dev/cualaN). The
initialization devices are used to initialize communications port
parameters each time a port is opened, such as
crtscts for modems which use
RTS/CTS signaling for flow control. The locking
devices are used to lock flags on ports to prevent users or programs
changing certain parameters; see the manual pages &man.termios.4;,
&man.sio.4;, and &man.stty.1; for
information on the terminal settings, locking and initializing
devices, and setting terminal options, respectively.Making Device Special FilesFreeBSD 5.0 includes the &man.devfs.5;
filesystem which automatically creates device nodes as
needed. If you are running a version of FreeBSD with
devfs enabled then you can safely skip
this section.A shell script called MAKEDEV in the
/dev directory manages the device special
files. To use MAKEDEV to make dial-up device
special files for COM1 (port 0),
cd to /dev and issue the
command MAKEDEV ttyd0. Likewise, to make dial-up
device special files for COM2 (port 1),
use MAKEDEV ttyd1.MAKEDEV not only creates the
/dev/ttydN device
special files, but also the
/dev/cuaaN,
/dev/cuaiaN,
/dev/cualaN,
/dev/ttyldN,
and
/dev/ttyidN
nodes.After making new device special files, be sure to check the
permissions on the files (especially the
/dev/cua* files) to make sure that only users
who should have access to those device special files can read and
write on them — you probably do not want to allow your average
user to use your modems to dial-out. The default permissions on the
/dev/cua* files should be sufficient:crw-rw---- 1 uucp dialer 28, 129 Feb 15 14:38 /dev/cuaa1
crw-rw---- 1 uucp dialer 28, 161 Feb 15 14:38 /dev/cuaia1
crw-rw---- 1 uucp dialer 28, 193 Feb 15 14:38 /dev/cuala1These permissions allow the user uucp and
users in the group dialer to use the call-out
devices.Serial Port ConfigurationttydcuaaThe ttydN (or
cuaaN) device is the
regular device you will want to open for your applications. When a
process opens the device, it will have a default set of terminal I/O
settings. You can see these settings with the command&prompt.root; stty -a -f /dev/ttyd1When you change the settings to this device, the settings are in
effect until the device is closed. When it is reopened, it goes back to
the default set. To make changes to the default set, you can open and
adjust the settings of the initial state device. For
example, to turn on mode, 8 bit communication,
and flow control by default for
ttyd5, type:&prompt.root; stty -f /dev/ttyid5 clocal cs8 ixon ixoffrc filesrc.serialSystem-wide initialization of the serial devices is
controlled in /etc/rc.serial. This file
affects the default settings of serial devices.To prevent certain settings from being changed by an
application, make adjustments to the lock state
device. For example, to lock the speed of
ttyd5 to 57600 bps, type:&prompt.root; stty -f /dev/ttyld5 57600Now, an application that opens
ttyd5 and tries to change the speed of
the port will be stuck with 57600 bps.MAKEDEVNaturally, you should make the initial state and lock state devices
writable only by the root account.SeanKellyContributed by TerminalsterminalsTerminals provide a convenient and low-cost way to access
your FreeBSD system when you are not at the computer's console or on
a connected network. This section describes how to use terminals with
FreeBSD.Uses and Types of TerminalsThe original &unix; systems did not have consoles. Instead, people
logged in and ran programs through terminals that were connected to
the computer's serial ports. It is quite similar to using a modem and
terminal software to dial into a remote system to do text-only
work.Today's PCs have consoles capable of high quality graphics, but
the ability to establish a login session on a serial port still exists
in nearly every &unix; style operating system today; FreeBSD is no
exception. By using a terminal attached to an unused serial port, you
can log in and run any text program that you would normally run on the
console or in an xterm window in the X Window
System.For the business user, you can attach many terminals to a FreeBSD
system and place them on your employees' desktops. For a home user, a
spare computer such as an older IBM PC or a &macintosh; can be a
terminal wired into a more powerful computer running FreeBSD. You can
turn what might otherwise be a single-user computer into a powerful
multiple user system.For FreeBSD, there are three kinds of terminals:Dumb terminalsPCs acting as terminalsX terminalsThe remaining subsections describe each kind.Dumb TerminalsDumb terminals are specialized pieces of hardware that let you
connect to computers over serial lines. They are called
dumb because they have only enough computational power
to display, send, and receive text. You cannot run any programs on
them. It is the computer to which you connect them that has all the
power to run text editors, compilers, email, games, and so
forth.There are hundreds of kinds of dumb terminals made by many
manufacturers, including Digital Equipment Corporation's VT-100 and
Wyse's WY-75. Just about any kind will work with FreeBSD. Some
high-end terminals can even display graphics, but only certain
software packages can take advantage of these advanced
features.Dumb terminals are popular in work environments where workers do
not need access to graphical applications such as those provided by
the X Window System.PCs Acting as TerminalsIf a dumb terminal has just
enough ability to display, send, and receive text, then certainly
any spare personal computer can be a dumb terminal. All you need is
the proper cable and some terminal emulation
software to run on the computer.Such a configuration is popular in homes. For example, if your
spouse is busy working on your FreeBSD system's console, you can do
some text-only work at the same time from a less powerful personal
computer hooked up as a terminal to the FreeBSD system.X TerminalsX terminals are the most sophisticated kind of terminal
available. Instead of connecting to a serial port, they usually
connect to a network like Ethernet. Instead of being relegated to
text-only applications, they can display any X application.We introduce X terminals just for the sake of completeness.
However, this chapter does not cover setup,
configuration, or use of X terminals.ConfigurationThis section describes what you need to configure on your FreeBSD
system to enable a login session on a terminal. It assumes you have
already configured your kernel to support the serial port to which the
terminal is connected—and that you have connected it.Recall from that the
init process is responsible for all process
control and initialization at system startup. One of the
tasks performed by init is to read the
/etc/ttys file and start a
getty process on the available terminals.
The getty process is responsible for
reading a login name and starting the login
program.Thus, to configure terminals for your FreeBSD system the
following steps should be taken as root:Add a line to /etc/ttys for the entry in
the /dev directory for the serial port if it
is not already there.Specify that /usr/libexec/getty be run on
the port, and specify the appropriate
getty type from the
/etc/gettytab file.Specify the default terminal type.Set the port to on.Specify whether the port should be
secure.Force init to reread the
/etc/ttys file.As an optional step, you may wish to create a custom
getty type for use in step 2 by making an
entry in /etc/gettytab. This chapter does
not explain how to do so; you are encouraged to see the
&man.gettytab.5; and the &man.getty.8; manual pages for more
information.Adding an Entry to /etc/ttysThe /etc/ttys file lists all of the ports
on your FreeBSD system where you want to allow logins. For example,
the first virtual console ttyv0 has an entry in
this file. You can log in on the console using this entry. This
file also contains entries for the other virtual consoles, serial ports,
and pseudo-ttys. For a hardwired terminal, just list the serial
port's /dev entry without the
/dev part (for example,
/dev/ttyv0 would be listed as
ttyv0).A default FreeBSD install includes an
/etc/ttys file with support for the first
four serial ports: ttyd0 through
ttyd3. If you are attaching a terminal
to one of those ports, you do not need to add another entry.Adding Terminal Entries to
/etc/ttysSuppose we would like to connect two terminals to the
system: a Wyse-50 and an old 286 IBM PC running
Procomm terminal software
emulating a VT-100 terminal. We connect the Wyse to the
second serial port and the 286 to the sixth serial port (a
port on a multiport serial card). The corresponding
entries in the /etc/ttys file would
look like this:ttyd1 "/usr/libexec/getty std.38400" wy50 on insecure
ttyd5 "/usr/libexec/getty std.19200" vt100 on insecure
The first field normally specifies the name of
the terminal special file as it is found in
/dev.The second field is the command to execute for
this line, which is usually &man.getty.8;.
getty initializes and opens the
line, sets the speed, prompts for a user name and then
executes the &man.login.1; program.The getty program accepts one
(optional) parameter on its command line, the
getty type. A
getty type configures
characteristics on the terminal line, like bps rate
and parity. The getty program reads
these characteristics from the file
/etc/gettytab.The file /etc/gettytab
contains lots of entries for terminal lines both old
and new. In almost all cases, the entries that start
with the text std will work for
hardwired terminals. These entries ignore parity.
There is a std entry for each bps
rate from 110 to 115200. Of course, you can add your
own entries to this file. The &man.gettytab.5; manual
page provides more information.When setting the getty
type in the /etc/ttys file, make
sure that the communications settings on the terminal
match.For our example, the Wyse-50 uses no parity and
connects at 38400 bps. The 286 PC uses no parity and
connects at 19200 bps.The third field is the type of terminal usually
connected to that tty line. For dial-up ports,
unknown or
dialup is typically used in this
field since users may dial up with practically any
type of terminal or software. For hardwired
terminals, the terminal type does not change, so you
can put a real terminal type from the &man.termcap.5;
database file in this field.For our example, the Wyse-50 uses the real
terminal type while the 286 PC running
Procomm will be set to
emulate at VT-100. The fourth field specifies if the port should be
enabled. Putting on here will have
the init process start the program
in the second field, getty. If you
put off in this field, there will
be no getty, and hence no logins on
the port.The final field is used to specify whether the
port is secure. Marking a port as secure means that
you trust it enough to allow the
root account (or any account with
a user ID of 0) to login from that port. Insecure
ports do not allow root logins.
On an insecure port, users must login from
unprivileged accounts and then use &man.su.1; or a
similar mechanism to gain superuser privileges.It is highly recommended that you use
insecure
even for terminals that are behind locked doors. It
is quite easy to login and use su
if you need superuser privileges.Force init to Reread
/etc/ttysAfter making the necessary changes to the
/etc/ttys file you should send a SIGHUP
(hangup) signal to the init process to
force it to re-read its configuration file. For example:&prompt.root; kill -HUP 1init is always the first process run
on a system, therefore it will always have PID 1.If everything is set up correctly, all cables are in
place, and the terminals are powered up, then a
getty process should be running on each
terminal and you should see login prompts on your terminals
at this point.Troubleshooting Your ConnectionEven with the most meticulous attention to detail, something could
still go wrong while setting up a terminal. Here is a list of
symptoms and some suggested fixes.No Login Prompt AppearsMake sure the terminal is plugged in and powered up. If it
is a personal computer acting as a terminal, make sure it is
running terminal emulation software on the correct serial
port.Make sure the cable is connected firmly to both the terminal
and the FreeBSD computer. Make sure it is the right kind of
cable.Make sure the terminal and FreeBSD agree on the bps rate and
parity settings. If you have a video display terminal, make
sure the contrast and brightness controls are turned up. If it
is a printing terminal, make sure paper and ink are in good
supply.Make sure that a getty process is running
and serving the terminal. For example, to get a list of
running getty processes with
ps, type:&prompt.root; ps -axww|grep gettyYou should see an entry for the terminal. For
example, the following display shows that a
getty is running on the second serial
port ttyd1 and is using the
std.38400 entry in
/etc/gettytab:22189 d1 Is+ 0:00.03 /usr/libexec/getty std.38400 ttyd1If no getty process is running, make sure
you have enabled the port in /etc/ttys.
Also remember to run kill -HUP 1
after modifying the ttys file.If the getty process is running
but the terminal still does not display a login prompt,
or if it displays a prompt but will not allow you to
type, your terminal or cable may not support hardware
handshaking. Try changing the entry in
/etc/ttys from
std.38400 to
3wire.38400 remember to run
kill -HUP 1 after modifying
/etc/ttys). The
3wire entry is similar to
std, but ignores hardware
handshaking. You may need to reduce the baud rate or
enable software flow control when using
3wire to prevent buffer
overflows.If Garbage Appears Instead of a Login PromptMake sure the terminal and FreeBSD agree on the bps rate and
parity settings. Check the getty processes
to make sure the
correct getty type is in use. If
not, edit /etc/ttys and run kill
-HUP 1.Characters Appear Doubled; the Password Appears When TypedSwitch the terminal (or the terminal emulation software)
from half duplex or local echo to
full duplex.GuyHelmerContributed by SeanKellyAdditions by Dial-in Servicedial-in serviceConfiguring your FreeBSD system for dial-in service is very
similar to connecting terminals except that you are dealing with
modems instead of terminals.External vs. Internal ModemsExternal modems seem to be more convenient for dial-up, because
external modems often can be semi-permanently configured via
parameters stored in non-volatile RAM and they usually provide
lighted indicators that display the state of important RS-232
signals. Blinking lights impress visitors, but lights are also very
useful to see whether a modem is operating properly.Internal modems usually lack non-volatile RAM, so their
configuration may be limited only to setting DIP switches. If your
internal modem has any signal indicator lights, it is probably
difficult to view the lights when the system's cover is in
place.Modems and CablesmodemIf you are using an external modem, then you will of
course need the proper cable. A standard RS-232C serial
cable should suffice as long as all of the normal signals
are wired:Transmitted Data (SD)Received Data (RD)Request to Send (RTS)Clear to Send (CTS)Data Set Ready (DSR)Data Terminal Ready (DTR)Carrier Detect (CD)Signal Ground (SG)FreeBSD needs the RTS and
CTS signals for flow-control at speeds above
2400 bps, the CD signal to detect when a call has
been answered or the line has been hung up, and the
DTR signal to reset the modem after a session is
complete. Some cables are wired without all of the needed signals,
so if you have problems, such as a login session not going away when
the line hangs up, you may have a problem with your cable.Like other &unix; like operating systems, FreeBSD uses the
hardware signals to find out when a call has been answered
or a line has been hung up and to hangup and reset the modem
after a call. FreeBSD avoids sending commands to the modem
or watching for status reports from the modem. If you are
familiar with connecting modems to PC-based bulletin board
systems, this may seem awkward.Serial Interface ConsiderationsFreeBSD supports NS8250-, NS16450-, NS16550-, and NS16550A-based
EIA RS-232C (CCITT V.24) communications interfaces. The 8250 and
16450 devices have single-character buffers. The 16550 device
provides a 16-character buffer, which allows for better system
performance. (Bugs in plain 16550's prevent the use of the
16-character buffer, so use 16550A's if possible). Because
single-character-buffer devices require more work by the operating
system than the 16-character-buffer devices, 16550A-based serial
interface cards are much preferred. If the system has many active
serial ports or will have a heavy load, 16550A-based cards are
better for low-error-rate communications.Quick OverviewgettyAs with terminals, init spawns a
getty process for each configured serial
port for dial-in connections. For example, if a modem is
attached to /dev/ttyd0, the command
ps ax might show this: 4850 ?? I 0:00.09 /usr/libexec/getty V19200 ttyd0When a user dials the modem's line and the modems connect, the
CD (Carrier Detect) line is reported by the modem.
The kernel
notices that carrier has been detected and completes
getty's open of the port. getty
sends a login: prompt at the specified initial line
speed. getty watches to see if legitimate
characters are received, and, in a typical configuration, if it finds
junk (probably due to the modem's connection speed being different
than getty's speed), getty tries
adjusting the line speeds until it receives reasonable
characters./usr/bin/loginAfter the user enters his/her login name,
getty executes
/usr/bin/login, which completes the login
by asking for the user's password and then starting the user's
shell.Configuration FilesThere are three system configuration files in the
/etc directory that you will probably need to
edit to allow dial-up access to your FreeBSD system. The first,
/etc/gettytab, contains configuration information
for the /usr/libexec/getty daemon. Second,
/etc/ttys holds information that tells
/sbin/init what tty devices
should have getty processes running on them.
Lastly, you can place port initialization commands in the
/etc/rc.serial script.There are two schools of thought regarding dial-up modems on &unix;.
One group likes to configure their modems and systems so that no matter
at what speed a remote user dials in, the local computer-to-modem
RS-232 interface runs at a locked speed. The benefit of this
configuration is that the remote user always sees a system login
prompt immediately. The downside is that the system does not know
what a user's true data rate is, so full-screen programs like Emacs
will not adjust their screen-painting methods to make their response
better for slower connections.The other school configures their modems' RS-232 interface to vary
its speed based on the remote user's connection speed. For example,
V.32bis (14.4 Kbps) connections to the modem might make the modem run
its RS-232 interface at 19.2 Kbps, while 2400 bps connections make the
modem's RS-232 interface run at 2400 bps. Because
getty does not understand any particular modem's
connection speed reporting, getty gives a
login: message at an initial speed and watches the
characters that come back in response. If the user sees junk, it is
assumed that they know they should press the
Enter key until they see a recognizable
prompt. If the data rates do not match, getty sees
anything the user types as junk, tries going to the next
speed and gives the login: prompt again. This
procedure can continue ad nauseam, but normally only takes a keystroke
or two before the user sees a good prompt. Obviously, this login
sequence does not look as clean as the former
locked-speed method, but a user on a low-speed
connection should receive better interactive response from full-screen
programs.This section will try to give balanced configuration information,
but is biased towards having the modem's data rate follow the
connection rate./etc/gettytab/etc/gettytab/etc/gettytab is a &man.termcap.5;-style
file of configuration information for &man.getty.8;. Please see the
&man.gettytab.5; manual page for complete information on the
format of the file and the list of capabilities.Locked-speed ConfigIf you are locking your modem's data communications rate at a
particular speed, you probably will not need to make any changes
to /etc/gettytab.Matching-speed ConfigYou will need to set up an entry in
/etc/gettytab to give
getty information about the speeds you wish to
use for your modem. If you have a 2400 bps modem, you can
probably use the existing D2400 entry.#
# Fast dialup terminals, 2400/1200/300 rotary (can start either way)
#
D2400|d2400|Fast-Dial-2400:\
:nx=D1200:tc=2400-baud:
3|D1200|Fast-Dial-1200:\
:nx=D300:tc=1200-baud:
5|D300|Fast-Dial-300:\
:nx=D2400:tc=300-baud:If you have a higher speed modem, you will probably need to
add an entry in /etc/gettytab; here is an
entry you could use for a 14.4 Kbps modem with a top interface
speed of 19.2 Kbps:#
# Additions for a V.32bis Modem
#
um|V300|High Speed Modem at 300,8-bit:\
:nx=V19200:tc=std.300:
un|V1200|High Speed Modem at 1200,8-bit:\
:nx=V300:tc=std.1200:
uo|V2400|High Speed Modem at 2400,8-bit:\
:nx=V1200:tc=std.2400:
up|V9600|High Speed Modem at 9600,8-bit:\
:nx=V2400:tc=std.9600:
uq|V19200|High Speed Modem at 19200,8-bit:\
:nx=V9600:tc=std.19200:This will result in 8-bit, no parity connections.The example above starts the communications rate at 19.2 Kbps
(for a V.32bis connection), then cycles through 9600 bps (for
V.32), 2400 bps, 1200 bps, 300 bps, and back to 19.2 Kbps.
Communications rate cycling is implemented with the
nx= (next table) capability.
Each of the lines uses a tc= (table
continuation) entry to pick up the rest of the
standard settings for a particular data rate.If you have a 28.8 Kbps modem and/or you want to take
advantage of compression on a 14.4 Kbps modem, you need to use a
higher communications rate than 19.2 Kbps. Here is an example of
a gettytab entry starting a 57.6 Kbps:#
# Additions for a V.32bis or V.34 Modem
# Starting at 57.6 Kbps
#
vm|VH300|Very High Speed Modem at 300,8-bit:\
:nx=VH57600:tc=std.300:
vn|VH1200|Very High Speed Modem at 1200,8-bit:\
:nx=VH300:tc=std.1200:
vo|VH2400|Very High Speed Modem at 2400,8-bit:\
:nx=VH1200:tc=std.2400:
vp|VH9600|Very High Speed Modem at 9600,8-bit:\
:nx=VH2400:tc=std.9600:
vq|VH57600|Very High Speed Modem at 57600,8-bit:\
:nx=VH9600:tc=std.57600:If you have a slow CPU or a heavily loaded system and do
not have 16550A-based serial ports, you may receive
siosilo errors at 57.6 Kbps./etc/ttys/etc/ttysConfiguration of the /etc/ttys file
was covered in .
Configuration for modems is similar but we must pass a
different argument to getty and specify a
different terminal type. The general format for both
locked-speed and matching-speed configurations is:ttyd0 "/usr/libexec/getty xxx" dialup onThe first item in the above line is the device special file for
this entry — ttyd0 means
/dev/ttyd0 is the file that this
getty will be watching. The second item,
"/usr/libexec/getty
xxx"
(xxx will be replaced by the initial
gettytab capability) is the process
init will run on the device. The third item,
dialup, is the default terminal type. The fourth
parameter, on, indicates to
init that the line is operational. There can be
a fifth parameter, secure, but it should only be
used for terminals which are physically secure (such as the system
console).The default terminal type (dialup in the
example above) may depend on local preferences.
dialup is the traditional default terminal type
on dial-up lines so that users may customize their login scripts to
notice when the terminal is dialup and
automatically adjust their terminal type. However, the author finds
it easier at his site to specify vt102 as the
default terminal type, since the users just use VT102 emulation on
their remote systems.After you have made changes to /etc/ttys,
you may send the init process a
HUP signal to re-read the file. You can use the
command
&prompt.root; kill -HUP 1
to send the signal. If this is your first time setting up the
system, you may want to wait until your modem(s) are properly
configured and connected before signaling init.
Locked-speed ConfigFor a locked-speed configuration, your
ttys entry needs to have a fixed-speed entry
provided to getty. For a modem whose port
speed is locked at 19.2 Kbps, the ttys entry
might look like this:ttyd0 "/usr/libexec/getty std.19200" dialup onIf your modem is locked at a different data rate,
substitute the appropriate value for
std.speed
instead of std.19200. Make sure that
you use a valid type listed in
/etc/gettytab.Matching-speed ConfigIn a matching-speed configuration, your
ttys entry needs to reference the appropriate
beginning auto-baud (sic) entry in
/etc/gettytab. For example, if you added the
above suggested entry for a matching-speed modem that starts at
19.2 Kbps (the gettytab entry containing the
V19200 starting point), your
ttys entry might look like this:ttyd0 "/usr/libexec/getty V19200" dialup on/etc/rc.serialrc filesrc.serialHigh-speed modems, like V.32, V.32bis, and V.34 modems,
need to use hardware (RTS/CTS) flow
control. You can add stty commands to
/etc/rc.serial to set the hardware flow
control flag in the FreeBSD kernel for the modem
ports.For example to set the termios flag
crtscts on serial port #1's
(COM2) dial-in and dial-out initialization
devices, the following lines could be added to
/etc/rc.serial:# Serial port initial configuration
stty -f /dev/ttyid1 crtscts
stty -f /dev/cuaia1 crtsctsModem SettingsIf you have a modem whose parameters may be permanently set in
non-volatile RAM, you will need to use a terminal program (such as
Telix under &ms-dos; or tip under FreeBSD) to set the
parameters. Connect to the modem using the same communications speed
as the initial speed getty will use and configure
the modem's non-volatile RAM to match these requirements:CD asserted when connectedDTR asserted for operation; dropping DTR
hangs up line and resets modemCTS transmitted data flow controlDisable XON/XOFF flow controlRTS received data flow controlQuiet mode (no result codes)No command echoPlease read the documentation for your modem to find out what
commands and/or DIP switch settings you need to give it.For example, to set the above parameters on a &usrobotics;
&sportster; 14,400 external modem, one could give these commands to
the modem:ATZ
AT&C1&D2&H1&I0&R2&WYou might also want to take this opportunity to adjust other
settings in the modem, such as whether it will use V.42bis and/or MNP5
compression.The &usrobotics; &sportster; 14,400 external modem also has some DIP switches
that need to be set; for other modems, perhaps you can use these
settings as an example:Switch 1: UP — DTR NormalSwitch 2: N/A (Verbal Result Codes/Numeric Result
Codes)Switch 3: UP — Suppress Result CodesSwitch 4: DOWN — No echo, offline commandsSwitch 5: UP — Auto AnswerSwitch 6: UP — Carrier Detect NormalSwitch 7: UP — Load NVRAM DefaultsSwitch 8: N/A (Smart Mode/Dumb Mode)Result codes should be disabled/suppressed for dial-up modems to
avoid problems that can occur if getty mistakenly
gives a login: prompt to a modem that is in command
mode and the modem echoes the command or returns a result
code. This sequence can result in a extended, silly conversation
between getty and the modem.Locked-speed ConfigFor a locked-speed configuration, you will need to configure the
modem to maintain a constant modem-to-computer data rate independent
of the communications rate. On a &usrobotics; &sportster; 14,400 external
modem, these commands will lock the modem-to-computer data rate at
the speed used to issue the commands:ATZ
AT&B1&WMatching-speed ConfigFor a variable-speed configuration, you will need to configure
your modem to adjust its serial port data rate to match the incoming
call rate. On a &usrobotics; &sportster; 14,400 external modem, these commands
will lock the modem's error-corrected data rate to the speed used to
issue the commands, but allow the serial port rate to vary for
non-error-corrected connections:ATZ
AT&B2&WChecking the Modem's ConfigurationMost high-speed modems provide commands to view the modem's
current operating parameters in a somewhat human-readable fashion.
On the &usrobotics; &sportster; 14,400 external modems, the command
ATI5 displays the settings that are stored in the
non-volatile RAM. To see the true operating parameters of the modem
(as influenced by the modem's DIP switch settings), use the commands
ATZ and then ATI4.If you have a different brand of modem, check your modem's
manual to see how to double-check your modem's configuration
parameters.TroubleshootingHere are a few steps you can follow to check out the dial-up modem
on your system.Checking Out the FreeBSD SystemHook up your modem to your FreeBSD system, boot the system, and,
if your modem has status indication lights, watch to see whether the
modem's DTR indicator lights when the
login: prompt appears on the system's console
— if it lights up, that should mean that FreeBSD has started a
getty process on the appropriate communications
port and is waiting for the modem to accept a call.If the DTR indicator does not light, login to
the FreeBSD system through the console and issue a ps
ax to see if FreeBSD is trying to run a
getty process on the correct port. You should see
lines like these among the processes displayed: 114 ?? I 0:00.10 /usr/libexec/getty V19200 ttyd0
115 ?? I 0:00.10 /usr/libexec/getty V19200 ttyd1If you see something different, like this: 114 d0 I 0:00.10 /usr/libexec/getty V19200 ttyd0and the modem has not accepted a call yet, this means that
getty has completed its open on the
communications port. This could indicate a problem with the cabling
or a mis-configured modem, because getty should
not be able to open the communications port until
CD (carrier detect) has been asserted by the
modem.If you do not see any getty processes waiting
to open the desired
ttydN port,
double-check your entries in /etc/ttys to see
if there are any mistakes there. Also, check the log file
/var/log/messages to see if there are any log
messages from init or getty
regarding any problems. If there are any messages, triple-check the
configuration files /etc/ttys and
/etc/gettytab, as well as the appropriate
device special files /dev/ttydN, for any
mistakes, missing entries, or missing device special files.Try Dialing InTry dialing into the system; be sure to use 8 bits, no parity,
and 1
stop bit on the remote system. If you do not get a prompt right
away, or get garbage, try pressing Enter
about once per second. If you still do not see a
login: prompt after a while, try sending a
BREAK. If you are using a high-speed modem to do
the dialing, try dialing again after locking the dialing modem's
interface speed (via AT&B1 on a &usrobotics;
&sportster; modem, for example).If you still cannot get a login: prompt, check
/etc/gettytab again and double-check
thatThe initial capability name specified in
/etc/ttys for the line matches a name of a
capability in /etc/gettytabEach nx= entry matches another
gettytab capability nameEach tc= entry matches another
gettytab capability nameIf you dial but the modem on the FreeBSD system will not answer,
make sure that the modem is configured to answer the phone when
DTR is asserted. If the modem seems to be
configured correctly, verify that the DTR line is
asserted by checking the modem's indicator lights (if it has
any).If you have gone over everything several times and it still does
not work, take a break and come back to it later. If it still does
not work, perhaps you can send an electronic mail message to the
&a.questions; describing your modem and your problem, and the good
folks on the list will try to help.Dial-out Servicedial-out serviceThe following are tips for getting your host to be able to connect
over the modem to another computer. This is appropriate for
establishing a terminal session with a remote host.This is useful to log onto a BBS.This kind of connection can be extremely helpful to get a file on
the Internet if you have problems with PPP. If you need to FTP
something and PPP is broken, use the terminal session to FTP it. Then
use zmodem to transfer it to your machine.My Stock Hayes Modem Is Not Supported, What Can I Do?Actually, the manual page for tip is out of date.
There is a generic Hayes dialer already built in. Just use
at=hayes in your /etc/remote
file.The Hayes driver is not smart enough to recognize some of the
advanced features of newer modems—messages like
BUSY, NO DIALTONE, or
CONNECT 115200 will just confuse it. You should
turn those messages off when you use tip (using
ATX0&W).Also, the dial timeout for tip is 60 seconds.
Your modem should use something less, or else tip will think there is
a communication problem. Try ATS7=45&W.As shipped, tip does not yet support
Hayes modems fully. The solution is to edit the file
tipconf.h in the directory
/usr/src/usr.bin/tip/tip. Obviously you need the
source distribution to do this.Edit the line #define HAYES 0 to
#define HAYES 1. Then make and
make install. Everything works nicely after
that.How Am I Expected to Enter These AT Commands?/etc/remoteMake what is called a direct entry in your
/etc/remote file. For example, if your modem is
hooked up to the first serial port, /dev/cuaa0,
then put in the following line:cuaa0:dv=/dev/cuaa0:br#19200:pa=noneUse the highest bps rate your modem supports in the br capability.
Then, type tip cuaa0 and you will be connected to
your modem.If there is no /dev/cuaa0 on your system, do
this:&prompt.root; cd /dev
&prompt.root; sh MAKEDEV cuaa0Or use cu as root with the
following command:&prompt.root; cu -lline -sspeedline is the serial port
(e.g./dev/cuaa0) and
speed is the speed
(e.g.57600). When you are done entering the AT
commands hit ~. to exit.The @ Sign for the pn Capability Does Not
Work!The @ sign in the phone number capability tells
tip to look in /etc/phones for a phone number.
But the @ sign is also a special character in
capability files like /etc/remote. Escape it
with a backslash:pn=\@How Can I Dial a Phone Number on the Command Line?Put what is called a generic entry in your
/etc/remote file. For example:tip115200|Dial any phone number at 115200 bps:\
:dv=/dev/cuaa0:br#115200:at=hayes:pa=none:du:
tip57600|Dial any phone number at 57600 bps:\
:dv=/dev/cuaa0:br#57600:at=hayes:pa=none:du:Then you can do things like:&prompt.root; tip -115200 5551234If you prefer cu over tip,
use a generic cu entry:cu115200|Use cu to dial any number at 115200bps:\
:dv=/dev/cuaa1:br#57600:at=hayes:pa=none:du:and type:&prompt.root; cu 5551234 -s 115200Do I Have to Type in the bps Rate Every Time I Do That?Put in an entry for tip1200 or
cu1200, but go ahead and use whatever bps rate is
appropriate with the br capability. tip thinks a
good default is 1200 bps which is why it looks for a
tip1200 entry. You do not have to use 1200 bps,
though.I Access a Number of Hosts Through a Terminal ServerRather than waiting until you are connected and typing
CONNECT <host> each time, use tip's
cm capability. For example, these entries in
/etc/remote:pain|pain.deep13.com|Forrester's machine:\
:cm=CONNECT pain\n:tc=deep13:
muffin|muffin.deep13.com|Frank's machine:\
:cm=CONNECT muffin\n:tc=deep13:
deep13:Gizmonics Institute terminal server:\
:dv=/dev/cuaa2:br#38400:at=hayes:du:pa=none:pn=5551234:will let you type tip pain or tip
muffin to connect to the hosts pain or muffin, and
tip deep13 to get to the terminal server.Can Tip Try More Than One Line for Each Site?This is often a problem where a university has several modem lines
and several thousand students trying to use them.Make an entry for your university in
/etc/remote and use @ for the
pn capability:big-university:\
:pn=\@:tc=dialout
dialout:\
:dv=/dev/cuaa3:br#9600:at=courier:du:pa=none:Then, list the phone numbers for the university in
/etc/phones:big-university 5551111
big-university 5551112
big-university 5551113
big-university 5551114tip will try each one in the listed order, then
give up. If you want to keep retrying, run tip in
a while loop.Why Do I Have to Hit
CtrlP
Twice to Send
CtrlP
Once?CtrlP is the default force character, used to tell
tip that the next character is literal data. You
can set the force character to any other character with the
~s escape, which means set a
variable.Type
~sforce=single-char
followed by a newline. single-char is any
single character. If you leave out
single-char, then the force character is
the nul character, which you can get by typing
Ctrl2
or
CtrlSpace.
A pretty good value for single-char is
ShiftCtrl6, which is only used on some terminal
servers.You can have the force character be whatever you want by
specifying the following in your $HOME/.tiprc
file:force=<single-char>Suddenly Everything I Type Is in Upper Case??You must have pressed
CtrlA, tip's
raise character, specially designed for people with
broken caps-lock keys. Use ~s as above and set the
variable raisechar to something reasonable. In
fact, you can set it to the same as the force character, if you never
expect to use either of these features.Here is a sample .tiprc file perfect for
Emacs users who need to type
Ctrl2
and
CtrlA
a lot:force=^^
raisechar=^^The ^^ is
ShiftCtrl6.How Can I Do File Transfers with tip?If you are talking to another &unix; system, you can send and
receive files with ~p (put) and
~t (take). These commands run
cat and echo on the remote
system to accept and send files. The syntax is:~plocal-fileremote-file~tremote-filelocal-fileThere is no error checking, so you probably should use another
protocol, like zmodem.How Can I Run zmodem with tip?To receive files, start the sending program on the remote end.
Then, type ~C rz to begin receiving them
locally.To send files, start the receiving program on the remote end.
Then, type ~C sz files
to send them to the remote system.KazutakaYOKOTAContributed by BillPaulBased on a document by Setting Up the Serial Consoleserial consoleIntroductionFreeBSD has the ability to boot on a system with only
a dumb terminal on a serial port as a console. Such a configuration
should be useful for two classes of people: system administrators who
wish to install FreeBSD on machines that have no keyboard or monitor
attached, and developers who want to debug the kernel or device
drivers.As described in , FreeBSD employs a three stage
bootstrap. The first two stages are in the boot block code which is
stored at the beginning of the FreeBSD slice on the boot disk. The
boot block will then load and run the boot loader
(/boot/loader) as the third stage code.In order to set up the serial console you must configure the boot
block code, the boot loader code and the kernel.Serial Console Configuration, Terse VersionThis section assumes that you are using the default setup,
know how to connect serial ports and just want a fast overview
of a serial console. If you encounter difficulty with these
steps, please see the more extensive explaination of all the
options and advanced settings in
.Connect the serial port. The serial console will be
on COM1.echo -h > /boot.config to enable
the serial console for the boot loader and kernel.Edit /etc/ttys and change
off to on for the
ttyd0 entry. This enables a login
prompt on the serial console, which mirrors how video
consoles are typically setup.shutdown -r now will reboot the
system with the serial console.Serial Console ConfigurationPrepare a serial cable.null-modem cableYou will need either a null-modem cable or a standard serial
cable and a null-modem adapter. See for
a discussion on serial cables.Unplug your keyboard.Most PC systems probe for the keyboard during the Power-On
Self-Test (POST) and will generate an error if the keyboard is not
detected. Some machines complain loudly about the lack of a
keyboard and will not continue to boot until it is plugged
in.If your computer complains about the error, but boots anyway,
then you do not have to do anything special. (Some machines with
Phoenix BIOS installed merely say Keyboard
failed and continue to boot normally.)If your computer refuses to boot without a keyboard attached
then you will have to configure the BIOS so that it ignores this
error (if it can). Consult your motherboard's manual for details
on how to do this.Setting the keyboard to Not installed in the
BIOS setup does not mean that you will not
be able to use your keyboard. All this does is tell the BIOS
not to probe for a keyboard at power-on, so it will not
complain if the keyboard is not plugged in. You can leave the
keyboard plugged in even with this flag set to Not
installed and the keyboard will still work.If your system has a &ps2; mouse, chances are very good that
you may have to unplug your mouse as well as your keyboard.
This is because &ps2; mice share some hardware with the keyboard
and leaving the mouse plugged in can fool the keyboard probe
into thinking the keyboard is still there. It is said that a
Gateway 2000 Pentium 90 MHz system with an AMI BIOS that behaves
this way. In general, this is not a problem since the mouse is
not much good without the keyboard anyway.Plug a dumb terminal into COM1
(sio0).If you do not have a dumb terminal, you can use an old PC/XT
with a modem program, or the serial port on another &unix; box. If
you do not have a COM1
(sio0), get one. At this time, there is
no way to select a port other than COM1
for the boot blocks without recompiling the boot blocks. If you
are already using COM1 for another
device, you will have to temporarily remove that device and
install a new boot block and kernel once you get FreeBSD up and
running. (It is assumed that COM1 will
be available on a file/compute/terminal server anyway; if you
really need COM1 for something else
(and you cannot switch that something else to
COM2 (sio1)),
then you probably should not even be bothering with all this in
the first place.)Make sure the configuration file of your kernel has
appropriate flags set for COM1
(sio0).Relevant flags are:0x10Enables console support for this unit. The other
console flags are ignored unless this is set. Currently, at
most one unit can have console support; the first one (in
config file order) with this flag set is preferred. This
option alone will not make the serial port the console. Set
the following flag or use the option
described below, together with this flag.0x20Forces this unit to be the console (unless there is
another higher priority console), regardless of the
option discussed below. This flag
replaces the COMCONSOLE option in FreeBSD
versions 2.X. The flag 0x20 must be used
together with the flag.0x40Reserves this unit (in conjunction with
0x10) and makes the unit
unavailable for normal access. You should not set
this flag to the serial port unit which you want to
use as the serial console. The only use of this
flag is to designate the unit for kernel remote
debugging. See The
Developer's Handbook for more information on
remote debugging.In FreeBSD 4.0 or later the semantics of the
flag 0x40 are slightly different and
there is another flag to specify a serial port for remote
debugging.Example:device sio0 at isa? port IO_COM1 flags 0x10 irq 4See the &man.sio.4; manual page for more details.If the flags were not set, you need to run UserConfig (on a
different console) or recompile the kernel.Create boot.config in the root directory
of the a partition on the boot drive.This file will instruct the boot block code how you would like
to boot the system. In order to activate the serial console, you
need one or more of the following options—if you want
multiple options, include them all on the same line:Toggles internal and serial consoles. You can use this
to switch console devices. For instance, if you boot from
the internal (video) console, you can use
to direct the boot loader and the kernel
to use the serial port as its console device. Alternatively,
if you boot from the serial port, you can use the
to tell the boot loader and the kernel
to use the video display as the console instead.Toggles single and dual console configurations. In the
single configuration the console will be either the internal
console (video display) or the serial port, depending on the
state of the option above. In the dual
console configuration, both the video display and the
serial port will become the console at the same time,
regardless of the state of the option.
However, note that the dual console configuration takes effect
only during the boot block is running. Once the boot loader
gets control, the console specified by the
option becomes the only console.Makes the boot block probe the keyboard. If no keyboard
is found, the and
options are automatically set.Due to space constraints in the current version of the
boot blocks, the option is capable of
detecting extended keyboards only. Keyboards with less
than 101 keys (and without F11 and F12 keys) may not be
detected. Keyboards on some laptop computers may not be
properly found because of this limitation. If this is
the case with your system, you have to abandon using
the option. Unfortunately there is no
workaround for this problem.Use either the option to select the
console automatically, or the option to
activate the serial console.You may include other options described in &man.boot.8; as
well.The options, except for , will be passed to
the boot loader (/boot/loader). The boot
loader will determine which of the internal video or the serial
port should become the console by examining the state of the
option alone. This means that if you specify
the option but not the
option in /boot.config, you can use the
serial port as the console only during the boot block; the boot
loader will use the internal video display as the console.Boot the machine.When you start your FreeBSD box, the boot blocks will echo the
contents of /boot.config to the console. For
example:/boot.config: -P
Keyboard: noThe second line appears only if you put in
/boot.config and indicates presence/absence
of the keyboard. These messages go to either serial or internal
console, or both, depending on the option in
/boot.config.OptionsMessage goes tononeinternal consoleserial consoleserial and internal consolesserial and internal consoles, keyboard presentinternal console, keyboard absentserial consoleAfter the above messages, there will be a small pause before
the boot blocks continue loading the boot loader and before any
further messages printed to the console. Under normal
circumstances, you do not need to interrupt the boot blocks, but
you may want to do so in order to make sure things are set up
correctly.Hit any key, other than Enter, at the console to
interrupt the boot process. The boot blocks will then prompt you
for further action. You should now see something like:>> FreeBSD/i386 BOOT
Default: 0:ad(0,a)/boot/loader
boot:Verify the above message appears on either the serial or
internal console or both, according to the options you put in
/boot.config. If the message appears in the
correct console, hit Enter to continue the boot
process.If you want the serial console but you do not see the prompt
on the serial terminal, something is wrong with your settings. In
the meantime, you enter and hit Enter/Return
(if possible) to tell the boot block (and then the boot loader and
the kernel) to choose the serial port for the console. Once the
system is up, go back and check what went wrong.After the boot loader is loaded and you are in the third stage of
the boot process you can still switch between the internal console and
the serial console by setting appropriate environment variables in the
boot loader. See .SummaryHere is the summary of various settings discussed in this section
and the console eventually selected.Case 1: You Set the Flags to 0x10 for
sio0device sio0 at isa? port IO_COM1 flags 0x10 irq 4Options in /boot.configConsole during boot blocksConsole during boot loaderConsole in kernelnothinginternalinternalinternalserialserialserialserial and internalinternalinternalserial and internalserialserial, keyboard presentinternalinternalinternal, keyboard absentserial and internalserialserialCase 2: You Set the Flags to 0x30 for sio0device sio0 at isa? port IO_COM1 flags 0x30 irq 4Options in /boot.configConsole during boot blocksConsole during boot loaderConsole in kernelnothinginternalinternalserialserialserialserialserial and internalinternalserialserial and internalserialserial, keyboard presentinternalinternalserial, keyboard absentserial and internalserialserialTips for the Serial ConsoleSetting a Faster Serial Port SpeedBy default, the serial port settings are: 9600 baud, 8
bits, no parity, and 1 stop bit. If you wish to change the speed, you
need to recompile at least the boot blocks. Add the following line
to /etc/make.conf and compile new boot
blocks:BOOT_COMCONSOLE_SPEED=19200If the serial console is configured in some other way than by
booting with , or if the serial console used by
the kernel is different from the one used by the boot blocks, then
you must also add the following option to the kernel configuration
file and compile a new kernel:options CONSPEED=19200Using Serial Port Other Than sio0 for
the ConsoleUsing a port other than sio0 as the
console requires some recompiling. If you want to use another
serial port for whatever reasons, recompile the boot blocks, the
boot loader and the kernel as follows.Get the kernel source. (See )Edit /etc/make.conf and set
BOOT_COMCONSOLE_PORT to the address of the
port you want to use (0x3F8, 0x2F8, 0x3E8 or 0x2E8). Only
sio0 through
sio3 (COM1
through COM4) can be used; multiport
serial cards will not work. No interrupt setting is
needed.Create a custom kernel configuration file and add
appropriate flags for the serial port you want to use. For
example, if you want to make sio1
(COM2) the console:device sio1 at isa? port IO_COM2 flags 0x10 irq 3ordevice sio1 at isa? port IO_COM2 flags 0x30 irq 3The console flags for the other serial ports should not be
set.Recompile and install the boot blocks and the boot loader:&prompt.root; cd /sys/boot
&prompt.root; make
&prompt.root; make installRebuild and install the kernel.Write the boot blocks to the boot disk with
&man.disklabel.8; and boot from the new kernel.
-
+ Entering the DDB Debugger from the Serial LineIf you wish to drop into the kernel debugger from the serial
console (useful for remote diagnostics, but also dangerous if you
generate a spurious BREAK on the serial port!) then you should
compile your kernel with the following options:options BREAK_TO_DEBUGGER
options DDBGetting a Login Prompt on the Serial ConsoleWhile this is not required, you may wish to get a
login prompt over the serial line, now that you
can see boot messages and can enter the kernel debugging session
through the serial console. Here is how to do it.Open the file /etc/ttys with an editor
and locate the lines:ttyd0 "/usr/libexec/getty std.9600" unknown off secure
ttyd1 "/usr/libexec/getty std.9600" unknown off secure
ttyd2 "/usr/libexec/getty std.9600" unknown off secure
ttyd3 "/usr/libexec/getty std.9600" unknown off securettyd0 through ttyd3
corresponds to COM1 through
COM4. Change off to
on for the desired port. If you have changed the
speed of the serial port, you need to change
std.9600 to match the current setting, e.g.
std.19200.You may also want to change the terminal type from
unknown to the actual type of your serial
terminal.After editing the file, you must kill -HUP 1
to make this change take effect.Changing Console from the Boot LoaderPrevious sections described how to set up the serial console by
tweaking the boot block. This section shows that you can specify the
console by entering some commands and environment variables in the
boot loader. As the boot loader is invoked at the third stage of the
boot process, after the boot block, the settings in the boot loader
will override the settings in the boot block.Setting Up the Serial ConsoleYou can easily specify the boot loader and the kernel to use the
serial console by writing just one line in
/boot/loader.rc:set console=comconsoleThis will take effect regardless of the settings in the boot
block discussed in the previous section.You had better put the above line as the first line of
/boot/loader.rc so as to see boot messages on
the serial console as early as possible.Likewise, you can specify the internal console as:set console=vidconsoleIf you do not set the boot loader environment variable
console, the boot loader, and subsequently the
kernel, will use whichever console indicated by the
option in the boot block.In versions 3.2 or later, you may specify the console in
/boot/loader.conf.local or
/boot/loader.conf, rather than in
/boot/loader.rc. In this method your
/boot/loader.rc should look like:include /boot/loader.4th
startThen, create /boot/loader.conf.local and
put the following line there.console=comconsoleorconsole=vidconsoleSee &man.loader.conf.5; for more information.At the moment, the boot loader has no option equivalent to the
option in the boot block, and there is no
provision to automatically select the internal console and the
serial console based on the presence of the keyboard.Using a Serial Port Other Than sio0 for
the ConsoleYou need to recompile the boot loader to use a serial port other
than sio0 for the serial console. Follow the
procedure described in .CaveatsThe idea here is to allow people to set up dedicated servers that
require no graphics hardware or attached keyboards. Unfortunately,
while most systems will let you boot without a keyboard, there
are quite a few that will not let you boot without a graphics adapter.
Machines with AMI BIOSes can be configured to boot with no graphics
adapter installed simply by changing the graphics adapter setting in
the CMOS configuration to Not installed.However, many machines do not support this option and will refuse
to boot if you have no display hardware in the system. With these
machines, you will have to leave some kind of graphics card plugged in,
(even if it is just a junky mono board) although you will not have to
attach a monitor. You might also try installing an AMI
BIOS.