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514094f9 1<?xml version='1.0'?>
3a54a157 2<!DOCTYPE refentry PUBLIC "-//OASIS//DTD DocBook XML V4.5//EN"
12b42c76 3 "http://www.oasis-open.org/docbook/xml/4.2/docbookx.dtd">
0307f791 4<!-- SPDX-License-Identifier: LGPL-2.1+ -->
eac684ef 5
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6<refentry id="systemd.network" conditional='ENABLE_NETWORKD'
7 xmlns:xi="http://www.w3.org/2001/XInclude">
eac684ef 8
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9 <refentryinfo>
10 <title>systemd.network</title>
11 <productname>systemd</productname>
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12 </refentryinfo>
13
14 <refmeta>
15 <refentrytitle>systemd.network</refentrytitle>
16 <manvolnum>5</manvolnum>
17 </refmeta>
18
19 <refnamediv>
20 <refname>systemd.network</refname>
21 <refpurpose>Network configuration</refpurpose>
22 </refnamediv>
23
24 <refsynopsisdiv>
25 <para><filename><replaceable>network</replaceable>.network</filename></para>
26 </refsynopsisdiv>
27
28 <refsect1>
29 <title>Description</title>
30
31 <para>Network setup is performed by
32 <citerefentry><refentrytitle>systemd-networkd</refentrytitle><manvolnum>8</manvolnum></citerefentry>.
33 </para>
34
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35 <para>The main network file must have the extension <filename>.network</filename>; other
36 extensions are ignored. Networks are applied to links whenever the links appear.</para>
37
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38 <para>The <filename>.network</filename> files are read from the files located in the system network
39 directories <filename>/usr/lib/systemd/network</filename> and
40 <filename>/usr/local/lib/systemd/network</filename>, the volatile runtime network directory
41 <filename>/run/systemd/network</filename> and the local administration network directory
42 <filename>/etc/systemd/network</filename>. All configuration files are collectively sorted and processed
43 in lexical order, regardless of the directories in which they live. However, files with identical
44 filenames replace each other. Files in <filename>/etc</filename> have the highest priority, files in
45 <filename>/run</filename> take precedence over files with the same name under
46 <filename>/usr</filename>. This can be used to override a system-supplied configuration file with a local
47 file if needed. As a special case, an empty file (file size 0) or symlink with the same name pointing to
48 <filename>/dev/null</filename> disables the configuration file entirely (it is "masked").</para>
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49
50 <para>Along with the network file <filename>foo.network</filename>, a "drop-in" directory
51 <filename>foo.network.d/</filename> may exist. All files with the suffix
52 <literal>.conf</literal> from this directory will be parsed after the file itself is
53 parsed. This is useful to alter or add configuration settings, without having to modify the main
54 configuration file. Each drop-in file must have appropriate section headers.</para>
55
56 <para>In addition to <filename>/etc/systemd/network</filename>, drop-in <literal>.d</literal>
57 directories can be placed in <filename>/usr/lib/systemd/network</filename> or
58 <filename>/run/systemd/network</filename> directories. Drop-in files in
59 <filename>/etc</filename> take precedence over those in <filename>/run</filename> which in turn
60 take precedence over those in <filename>/usr/lib</filename>. Drop-in files under any of these
b1e91af8 61 directories take precedence over the main network file wherever located.</para>
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62
63 <para>Note that an interface without any static IPv6 addresses configured, and neither DHCPv6
64 nor IPv6LL enabled, shall be considered to have no IPv6 support. IPv6 will be automatically
65 disabled for that interface by writing "1" to
66 <filename>/proc/sys/net/ipv6/conf/<replaceable>ifname</replaceable>/disable_ipv6</filename>.
82ecb4c3 67 </para>
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68 </refsect1>
69
70 <refsect1>
71 <title>[Match] Section Options</title>
72
73 <para>The network file contains a <literal>[Match]</literal>
74 section, which determines if a given network file may be applied
75 to a given device; and a <literal>[Network]</literal> section
76 specifying how the device should be configured. The first (in
77 lexical order) of the network files that matches a given device
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78 is applied, all later files are ignored, even if they match as
79 well.</para>
798d3a52 80
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81 <para>A network file is said to match a network interface if all matches specified by the
82 <literal>[Match]</literal> section are satisfied. When a network file does not contain valid
83 settings in <literal>[Match]</literal> section, then the file will match all interfaces and
84 <command>systemd-networkd</command> warns about that. Hint: to avoid the warning and to make it
85 clear that all interfaces shall be matched, add the following:
86 <programlisting>Name=*</programlisting>
87 The following keys are accepted:</para>
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88
89 <variablelist class='network-directives'>
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90 <xi:include href="systemd.link.xml" xpointer="mac-address" />
91 <xi:include href="systemd.link.xml" xpointer="permanent-mac-address" />
92 <xi:include href="systemd.link.xml" xpointer="path" />
93 <xi:include href="systemd.link.xml" xpointer="driver" />
94 <xi:include href="systemd.link.xml" xpointer="type" />
95 <xi:include href="systemd.link.xml" xpointer="property" />
9310bf4b 96
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97 <varlistentry>
98 <term><varname>Name=</varname></term>
99 <listitem>
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100 <para>A whitespace-separated list of shell-style globs matching the device name, as exposed
101 by the udev property <literal>INTERFACE</literal>, or device's alternative names. If the
102 list is prefixed with a "!", the test is inverted.</para>
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103 </listitem>
104 </varlistentry>
44005bfb 105
78404d22 106 <varlistentry>
1bcefad9 107 <term><varname>WLANInterfaceType=</varname></term>
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108 <listitem>
109 <para>A whitespace-separated list of wireless network type. Supported values are
110 <literal>ad-hoc</literal>, <literal>station</literal>, <literal>ap</literal>,
111 <literal>ap-vlan</literal>, <literal>wds</literal>, <literal>monitor</literal>,
112 <literal>mesh-point</literal>, <literal>p2p-client</literal>, <literal>p2p-go</literal>,
113 <literal>p2p-device</literal>, <literal>ocb</literal>, and <literal>nan</literal>. If the
114 list is prefixed with a "!", the test is inverted.
115 </para>
116 </listitem>
117 </varlistentry>
d9b20454 118
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119 <varlistentry>
120 <term><varname>SSID=</varname></term>
121 <listitem>
122 <para>A whitespace-separated list of shell-style globs matching the SSID of the currently
123 connected wireless LAN. If the list is prefixed with a "!", the test is inverted.
124 </para>
125 </listitem>
126 </varlistentry>
d9b20454 127
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128 <varlistentry>
129 <term><varname>BSSID=</varname></term>
130 <listitem>
131 <para>A whitespace-separated list of hardware address of the currently connected wireless
132 LAN. Use full colon-, hyphen- or dot-delimited hexadecimal. See the example in
133 <varname>MACAddress=</varname>. This option may appear more than one, in which case the
134 lists are merged. If the empty string is assigned to this option, the list of BSSID defined
135 prior to this is reset.</para>
136 </listitem>
137 </varlistentry>
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138
139 <xi:include href="systemd.link.xml" xpointer="host" />
140 <xi:include href="systemd.link.xml" xpointer="virtualization" />
141 <xi:include href="systemd.link.xml" xpointer="kernel-command-line" />
142 <xi:include href="systemd.link.xml" xpointer="kernel-version" />
143 <xi:include href="systemd.link.xml" xpointer="architecture" />
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144 </variablelist>
145
146 </refsect1>
147
148 <refsect1>
149 <title>[Link] Section Options</title>
150
151 <para> The <literal>[Link]</literal> section accepts the following keys:</para>
152
153 <variablelist class='network-directives'>
154 <varlistentry>
155 <term><varname>MACAddress=</varname></term>
156 <listitem>
de25aae1 157 <para>The hardware address to set for the device.</para>
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158 </listitem>
159 </varlistentry>
160 <varlistentry>
161 <term><varname>MTUBytes=</varname></term>
162 <listitem>
163 <para>The maximum transmission unit in bytes to set for the
164 device. The usual suffixes K, M, G, are supported and are
165 understood to the base of 1024.</para>
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166 <para>Note that if IPv6 is enabled on the interface, and the MTU is chosen
167 below 1280 (the minimum MTU for IPv6) it will automatically be increased to this value.</para>
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168 </listitem>
169 </varlistentry>
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170 <varlistentry>
171 <term><varname>ARP=</varname></term>
172 <listitem>
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173 <para>Takes a boolean. If set to true, the ARP (low-level Address Resolution Protocol)
174 for this interface is enabled. When unset, the kernel's default will be used.</para>
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175 <para> For example, disabling ARP is useful when creating multiple MACVLAN or VLAN virtual
176 interfaces atop a single lower-level physical interface, which will then only serve as a
177 link/"bridge" device aggregating traffic to the same physical link and not participate in
178 the network otherwise.</para>
179 </listitem>
180 </varlistentry>
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181 <varlistentry>
182 <term><varname>Multicast=</varname></term>
183 <listitem>
9b6ffef3 184 <para>Takes a boolean. If set to true, the multicast flag on the device is enabled.</para>
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185 </listitem>
186 </varlistentry>
187 <varlistentry>
188 <term><varname>AllMulticast=</varname></term>
189 <listitem>
9b6ffef3 190 <para>Takes a boolean. If set to true, the driver retrieves all multicast packets from the network.
866e6b7a 191 This happens when multicast routing is enabled.</para>
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192 </listitem>
193 </varlistentry>
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194 <varlistentry>
195 <term><varname>Unmanaged=</varname></term>
196 <listitem>
9b6ffef3 197 <para>Takes a boolean. When <literal>yes</literal>, no attempts are
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198 made to bring up or configure matching links, equivalent to
199 when there are no matching network files. Defaults to
200 <literal>no</literal>.</para>
201 <para>This is useful for preventing later matching network
202 files from interfering with certain interfaces that are fully
203 controlled by other applications.</para>
204 </listitem>
205 </varlistentry>
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206 <varlistentry>
207 <term><varname>RequiredForOnline=</varname></term>
208 <listitem>
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209 <para>Takes a boolean or operational state. Please see
210 <citerefentry><refentrytitle>networkctl</refentrytitle><manvolnum>1</manvolnum></citerefentry>
211 for possible operational states. When <literal>yes</literal>, the network is deemed required when
212 determining whether the system is online when running
213 <command>systemd-networkd-wait-online</command>. When <literal>no</literal>, the network is ignored
214 when checking for online state. When an operational state is set, <literal>yes</literal> is implied,
215 and this controls the operational state required for the network interface to be considered online.
216 Defaults to <literal>yes</literal>.</para>
217
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218 <para>The network will be brought up normally in all cases, but in
219 the event that there is no address being assigned by DHCP or the
220 cable is not plugged in, the link will simply remain offline and be
8d6082e4 221 skipped automatically by <command>systemd-networkd-wait-online</command>
ca92fe36 222 if <literal>RequiredForOnline=no</literal>.</para>
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223 </listitem>
224 </varlistentry>
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225 </variablelist>
226 </refsect1>
227
228 <refsect1>
229 <title>[Network] Section Options</title>
230
231 <para>The <literal>[Network]</literal> section accepts the following keys:</para>
232
233 <variablelist class='network-directives'>
234 <varlistentry>
235 <term><varname>Description=</varname></term>
236 <listitem>
237 <para>A description of the device. This is only used for
238 presentation purposes.</para>
239 </listitem>
240 </varlistentry>
241 <varlistentry>
242 <term><varname>DHCP=</varname></term>
243 <listitem>
ad943783 244 <para>Enables DHCPv4 and/or DHCPv6 client support. Accepts
798d3a52 245 <literal>yes</literal>, <literal>no</literal>,
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246 <literal>ipv4</literal>, or <literal>ipv6</literal>. Defaults
247 to <literal>no</literal>.</para>
e88d8021 248
f5a8c43f 249 <para>Note that DHCPv6 will by default be triggered by Router
7f3fdb7f 250 Advertisement, if that is enabled, regardless of this parameter.
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251 By enabling DHCPv6 support explicitly, the DHCPv6 client will
252 be started regardless of the presence of routers on the link,
253 or what flags the routers pass. See
f921f573 254 <literal>IPv6AcceptRA=</literal>.</para>
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255
256 <para>Furthermore, note that by default the domain name
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257 specified through DHCP is not used for name resolution.
258 See option <option>UseDomains=</option> below.</para>
2ef322fc 259
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260 <para>See the <literal>[DHCPv4]</literal> or <literal>[DHCPv6]</literal> section below for
261 further configuration options for the DHCP client support.</para>
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262 </listitem>
263 </varlistentry>
264 <varlistentry>
265 <term><varname>DHCPServer=</varname></term>
266 <listitem>
68b7f7ac 267 <para>Takes a boolean. If set to <literal>yes</literal>, DHCPv4 server will be started. Defaults
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268 to <literal>no</literal>. Further settings for the DHCP
269 server may be set in the <literal>[DHCPServer]</literal>
270 section described below.</para>
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271 </listitem>
272 </varlistentry>
273 <varlistentry>
56fd6bf7 274 <term><varname>LinkLocalAddressing=</varname></term>
798d3a52 275 <listitem>
85fc09c9 276 <para>Enables link-local address autoconfiguration. Accepts <literal>yes</literal>,
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277 <literal>no</literal>, <literal>ipv4</literal>, <literal>ipv6</literal>,
278 <literal>fallback</literal>, or <literal>ipv4-fallback</literal>. If
279 <literal>fallback</literal> or <literal>ipv4-fallback</literal> is specified, then an IPv4
280 link-local address is configured only when DHCPv4 fails. If <literal>fallback</literal>,
281 an IPv6 link-local address is always configured, and if <literal>ipv4-fallback</literal>,
282 the address is not configured. Note that, the fallback mechanism works only when DHCPv4
283 client is enabled, that is, it requires <literal>DHCP=yes</literal> or
284 <literal>DHCP=ipv4</literal>. If <varname>Bridge=</varname> is set, defaults to
285 <literal>no</literal>, and if not, defaults to <literal>ipv6</literal>.
286 </para>
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287 </listitem>
288 </varlistentry>
289 <varlistentry>
290 <term><varname>IPv4LLRoute=</varname></term>
291 <listitem>
9b6ffef3 292 <para>Takes a boolean. If set to true, sets up the route needed for
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293 non-IPv4LL hosts to communicate with IPv4LL-only hosts. Defaults
294 to false.
295 </para>
296 </listitem>
297 </varlistentry>
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298 <varlistentry>
299 <term><varname>DefaultRouteOnDevice=</varname></term>
300 <listitem>
301 <para>Takes a boolean. If set to true, sets up the default route bound to the interface.
302 Defaults to false. This is useful when creating routes on point-to-point interfaces.
303 This is equivalent to e.g. the following.
304 <programlisting>ip route add default dev veth99</programlisting></para>
305 </listitem>
306 </varlistentry>
798d3a52 307 <varlistentry>
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308 <term><varname>IPv6Token=</varname></term>
309 <listitem>
310 <para>An IPv6 address with the top 64 bits unset. When set, indicates the
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311 64-bit interface part of SLAAC IPv6 addresses for this link. Note that
312 the token is only ever used for SLAAC, and not for DHCPv6 addresses, even
3708bd46 313 in the case DHCP is requested by router advertisement. By default, the
eb142d8e 314 token is autogenerated.</para>
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315 </listitem>
316 </varlistentry>
317 <varlistentry>
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318 <term><varname>LLMNR=</varname></term>
319 <listitem>
9b6ffef3 320 <para>Takes a boolean or <literal>resolve</literal>. When true,
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321 enables <ulink
322 url="https://tools.ietf.org/html/rfc4795">Link-Local
323 Multicast Name Resolution</ulink> on the link. When set to
324 <literal>resolve</literal>, only resolution is enabled,
325 but not host registration and announcement. Defaults to
326 true. This setting is read by
327 <citerefentry><refentrytitle>systemd-resolved.service</refentrytitle><manvolnum>8</manvolnum></citerefentry>.</para>
328 </listitem>
329 </varlistentry>
330 <varlistentry>
331 <term><varname>MulticastDNS=</varname></term>
332 <listitem>
9b6ffef3 333 <para>Takes a boolean or <literal>resolve</literal>. When true,
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334 enables <ulink
335 url="https://tools.ietf.org/html/rfc6762">Multicast
336 DNS</ulink> support on the link. When set to
337 <literal>resolve</literal>, only resolution is enabled,
338 but not host or service registration and
339 announcement. Defaults to false. This setting is read by
340 <citerefentry><refentrytitle>systemd-resolved.service</refentrytitle><manvolnum>8</manvolnum></citerefentry>.</para>
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341 </listitem>
342 </varlistentry>
30e59c84 343 <varlistentry>
c9299be2 344 <term><varname>DNSOverTLS=</varname></term>
30e59c84 345 <listitem>
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346 <para>Takes a boolean or <literal>opportunistic</literal>.
347 When true, enables
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348 <ulink
349 url="https://tools.ietf.org/html/rfc7858">DNS-over-TLS</ulink>
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350 support on the link.
351 When set to <literal>opportunistic</literal>, compatibility with
352 non-DNS-over-TLS servers is increased, by automatically
353 turning off DNS-over-TLS servers in this case.
354 This option defines a per-interface setting for
30e59c84 355 <citerefentry><refentrytitle>resolved.conf</refentrytitle><manvolnum>5</manvolnum></citerefentry>'s
c9299be2 356 global <varname>DNSOverTLS=</varname> option. Defaults to
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357 false. This setting is read by
358 <citerefentry><refentrytitle>systemd-resolved.service</refentrytitle><manvolnum>8</manvolnum></citerefentry>.</para>
359 </listitem>
360 </varlistentry>
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361 <varlistentry>
362 <term><varname>DNSSEC=</varname></term>
363 <listitem>
9b6ffef3 364 <para>Takes a boolean. or
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365 <literal>allow-downgrade</literal>. When true, enables
366 <ulink
367 url="https://tools.ietf.org/html/rfc4033">DNSSEC</ulink>
368 DNS validation support on the link. When set to
369 <literal>allow-downgrade</literal>, compatibility with
370 non-DNSSEC capable networks is increased, by automatically
785889e5 371 turning off DNSSEC in this case. This option defines a
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372 per-interface setting for
373 <citerefentry><refentrytitle>resolved.conf</refentrytitle><manvolnum>5</manvolnum></citerefentry>'s
374 global <varname>DNSSEC=</varname> option. Defaults to
375 false. This setting is read by
376 <citerefentry><refentrytitle>systemd-resolved.service</refentrytitle><manvolnum>8</manvolnum></citerefentry>.</para>
377 </listitem>
378 </varlistentry>
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379 <varlistentry>
380 <term><varname>DNSSECNegativeTrustAnchors=</varname></term>
381 <listitem><para>A space-separated list of DNSSEC negative
382 trust anchor domains. If specified and DNSSEC is enabled,
383 look-ups done via the interface's DNS server will be subject
384 to the list of negative trust anchors, and not require
385 authentication for the specified domains, or anything below
386 it. Use this to disable DNSSEC authentication for specific
387 private domains, that cannot be proven valid using the
388 Internet DNS hierarchy. Defaults to the empty list. This
389 setting is read by
390 <citerefentry><refentrytitle>systemd-resolved.service</refentrytitle><manvolnum>8</manvolnum></citerefentry>.</para>
391 </listitem>
392 </varlistentry>
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393 <varlistentry>
394 <term><varname>LLDP=</varname></term>
395 <listitem>
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396 <para>Controls support for Ethernet LLDP packet reception. LLDP is a link-layer protocol commonly
397 implemented on professional routers and bridges which announces which physical port a system is connected
398 to, as well as other related data. Accepts a boolean or the special value
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399 <literal>routers-only</literal>. When true, incoming LLDP packets are accepted and a database of all LLDP
400 neighbors maintained. If <literal>routers-only</literal> is set only LLDP data of various types of routers
401 is collected and LLDP data about other types of devices ignored (such as stations, telephones and
7cececb2 402 others). If false, LLDP reception is disabled. Defaults to <literal>routers-only</literal>. Use
34437b4f 403 <citerefentry><refentrytitle>networkctl</refentrytitle><manvolnum>1</manvolnum></citerefentry> to query the
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404 collected neighbor data. LLDP is only available on Ethernet links. See <varname>EmitLLDP=</varname> below
405 for enabling LLDP packet emission from the local system.
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406 </para>
407 </listitem>
408 </varlistentry>
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409 <varlistentry>
410 <term><varname>EmitLLDP=</varname></term>
411 <listitem>
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412 <para>Controls support for Ethernet LLDP packet emission. Accepts a boolean parameter or the special values
413 <literal>nearest-bridge</literal>, <literal>non-tpmr-bridge</literal> and
414 <literal>customer-bridge</literal>. Defaults to false, which turns off LLDP packet emission. If not false,
415 a short LLDP packet with information about the local system is sent out in regular intervals on the
416 link. The LLDP packet will contain information about the local host name, the local machine ID (as stored
417 in <citerefentry><refentrytitle>machine-id</refentrytitle><manvolnum>5</manvolnum></citerefentry>) and the
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418 local interface name, as well as the pretty hostname of the system (as set in
419 <citerefentry><refentrytitle>machine-info</refentrytitle><manvolnum>5</manvolnum></citerefentry>). LLDP
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420 emission is only available on Ethernet links. Note that this setting passes data suitable for
421 identification of host to the network and should thus not be enabled on untrusted networks, where such
422 identification data should not be made available. Use this option to permit other systems to identify on
423 which interfaces they are connected to this system. The three special values control propagation of the
424 LLDP packets. The <literal>nearest-bridge</literal> setting permits propagation only to the nearest
425 connected bridge, <literal>non-tpmr-bridge</literal> permits propagation across Two-Port MAC Relays, but
426 not any other bridges, and <literal>customer-bridge</literal> permits propagation until a customer bridge
427 is reached. For details about these concepts, see <ulink
6a1bae83 428 url="https://standards.ieee.org/findstds/standard/802.1AB-2016.html">IEEE 802.1AB-2016</ulink>. Note that
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429 configuring this setting to true is equivalent to <literal>nearest-bridge</literal>, the recommended and
430 most restricted level of propagation. See <varname>LLDP=</varname> above for an option to enable LLDP
431 reception.</para>
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432 </listitem>
433 </varlistentry>
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434 <varlistentry>
435 <term><varname>BindCarrier=</varname></term>
436 <listitem>
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437 <para>A link name or a list of link names. When set, controls the behavior of the current
438 link. When all links in the list are in an operational down state, the current link is brought
439 down. When at least one link has carrier, the current interface is brought up.
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440 </para>
441 </listitem>
442 </varlistentry>
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443 <varlistentry>
444 <term><varname>Address=</varname></term>
445 <listitem>
446 <para>A static IPv4 or IPv6 address and its prefix length,
447 separated by a <literal>/</literal> character. Specify
448 this key more than once to configure several addresses.
449 The format of the address must be as described in
3ba3a79d 450 <citerefentry project='man-pages'><refentrytitle>inet_pton</refentrytitle><manvolnum>3</manvolnum></citerefentry>.
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451 This is a short-hand for an [Address] section only
452 containing an Address key (see below). This option may be
453 specified more than once.
454 </para>
455
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456 <para>If the specified address is <literal>0.0.0.0</literal> (for IPv4) or <literal>::</literal>
457 (for IPv6), a new address range of the requested size is automatically allocated from a
458 system-wide pool of unused ranges. Note that the prefix length must be equal or larger than 8 for
459 IPv4, and 64 for IPv6. The allocated range is checked against all current network interfaces and
460 all known network configuration files to avoid address range conflicts. The default system-wide
461 pool consists of 192.168.0.0/16, 172.16.0.0/12 and 10.0.0.0/8 for IPv4, and fd00::/8 for IPv6.
462 This functionality is useful to manage a large number of dynamically created network interfaces
463 with the same network configuration and automatic address range assignment.</para>
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464
465 </listitem>
466 </varlistentry>
467 <varlistentry>
468 <term><varname>Gateway=</varname></term>
469 <listitem>
470 <para>The gateway address, which must be in the format
471 described in
3ba3a79d 472 <citerefentry project='man-pages'><refentrytitle>inet_pton</refentrytitle><manvolnum>3</manvolnum></citerefentry>.
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473 This is a short-hand for a [Route] section only containing
474 a Gateway key. This option may be specified more than
475 once.</para>
476 </listitem>
477 </varlistentry>
478 <varlistentry>
479 <term><varname>DNS=</varname></term>
480 <listitem>
481 <para>A DNS server address, which must be in the format
482 described in
3ba3a79d 483 <citerefentry project='man-pages'><refentrytitle>inet_pton</refentrytitle><manvolnum>3</manvolnum></citerefentry>.
f41b446a 484 This option may be specified more than once. This setting is read by
3df9bec5 485 <citerefentry><refentrytitle>systemd-resolved.service</refentrytitle><manvolnum>8</manvolnum></citerefentry>.</para>
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486 </listitem>
487 </varlistentry>
488 <varlistentry>
489 <term><varname>Domains=</varname></term>
490 <listitem>
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491 <para>A list of domains which should be resolved using the DNS servers on this link. Each item in the list
492 should be a domain name, optionally prefixed with a tilde (<literal>~</literal>). The domains with the
493 prefix are called "routing-only domains". The domains without the prefix are called "search domains" and
494 are first used as search suffixes for extending single-label host names (host names containing no dots) to
495 become fully qualified domain names (FQDNs). If a single-label host name is resolved on this interface,
496 each of the specified search domains are appended to it in turn, converting it into a fully qualified
497 domain name, until one of them may be successfully resolved.</para>
498
499 <para>Both "search" and "routing-only" domains are used for routing of DNS queries: look-ups for host names
500 ending in those domains (hence also single label names, if any "search domains" are listed), are routed to
501 the DNS servers configured for this interface. The domain routing logic is particularly useful on
502 multi-homed hosts with DNS servers serving particular private DNS zones on each interface.</para>
503
504 <para>The "routing-only" domain <literal>~.</literal> (the tilde indicating definition of a routing domain,
505 the dot referring to the DNS root domain which is the implied suffix of all valid DNS names) has special
506 effect. It causes all DNS traffic which does not match another configured domain routing entry to be routed
507 to DNS servers specified for this interface. This setting is useful to prefer a certain set of DNS servers
508 if a link on which they are connected is available.</para>
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509
510 <para>This setting is read by
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511 <citerefentry><refentrytitle>systemd-resolved.service</refentrytitle><manvolnum>8</manvolnum></citerefentry>.
512 "Search domains" correspond to the <varname>domain</varname> and <varname>search</varname> entries in
98e9d710 513 <citerefentry project='man-pages'><refentrytitle>resolv.conf</refentrytitle><manvolnum>5</manvolnum></citerefentry>.
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514 Domain name routing has no equivalent in the traditional glibc API, which has no concept of domain
515 name servers limited to a specific link.</para>
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516 </listitem>
517 </varlistentry>
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518 <varlistentry>
519 <term><varname>DNSDefaultRoute=</varname></term>
520 <listitem>
521 <para>Takes a boolean argument. If true, this link's configured DNS servers are used for resolving domain
522 names that do not match any link's configured <varname>Domains=</varname> setting. If false, this link's
523 configured DNS servers are never used for such domains, and are exclusively used for resolving names that
524 match at least one of the domains configured on this link. If not specified defaults to an automatic mode:
525 queries not matching any link's configured domains will be routed to this link if it has no routing-only
526 domains configured.</para>
527 </listitem>
528 </varlistentry>
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529 <varlistentry>
530 <term><varname>NTP=</varname></term>
531 <listitem>
f41b446a 532 <para>An NTP server address. This option may be specified more than once. This setting is read by
3df9bec5 533 <citerefentry><refentrytitle>systemd-timesyncd.service</refentrytitle><manvolnum>8</manvolnum></citerefentry>.</para>
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534 </listitem>
535 </varlistentry>
536 <varlistentry>
537 <term><varname>IPForward=</varname></term>
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538 <listitem><para>Configures IP packet forwarding for the
539 system. If enabled, incoming packets on any network
540 interface will be forwarded to any other interfaces
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541 according to the routing table. Takes a boolean,
542 or the values <literal>ipv4</literal> or
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543 <literal>ipv6</literal>, which only enable IP packet
544 forwarding for the specified address family. This controls
545 the <filename>net.ipv4.ip_forward</filename> and
546 <filename>net.ipv6.conf.all.forwarding</filename> sysctl
547 options of the network interface (see <ulink
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548 url="https://www.kernel.org/doc/Documentation/networking/ip-sysctl.txt">ip-sysctl.txt</ulink>
549 for details about sysctl options). Defaults to
550 <literal>no</literal>.</para>
551
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552 <para>Note: this setting controls a global kernel option,
553 and does so one way only: if a network that has this setting
554 enabled is set up the global setting is turned on. However,
555 it is never turned off again, even after all networks with
556 this setting enabled are shut down again.</para>
557
558 <para>To allow IP packet forwarding only between specific
559 network interfaces use a firewall.</para>
4046d836 560 </listitem>
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561 </varlistentry>
562 <varlistentry>
563 <term><varname>IPMasquerade=</varname></term>
564 <listitem><para>Configures IP masquerading for the network
b938cb90 565 interface. If enabled, packets forwarded from the network
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566 interface will be appear as coming from the local host.
567 Takes a boolean argument. Implies
5c82dd13 568 <varname>IPForward=ipv4</varname>. Defaults to
4046d836 569 <literal>no</literal>.</para></listitem>
798d3a52 570 </varlistentry>
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571 <varlistentry>
572 <term><varname>IPv6PrivacyExtensions=</varname></term>
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573 <listitem><para>Configures use of stateless temporary
574 addresses that change over time (see <ulink
575 url="https://tools.ietf.org/html/rfc4941">RFC 4941</ulink>,
576 Privacy Extensions for Stateless Address Autoconfiguration
577 in IPv6). Takes a boolean or the special values
578 <literal>prefer-public</literal> and
b938cb90 579 <literal>kernel</literal>. When true, enables the privacy
1f0d9695 580 extensions and prefers temporary addresses over public
b938cb90 581 addresses. When <literal>prefer-public</literal>, enables the
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582 privacy extensions, but prefers public addresses over
583 temporary addresses. When false, the privacy extensions
b938cb90 584 remain disabled. When <literal>kernel</literal>, the kernel's
1f0d9695 585 default setting will be left in place. Defaults to
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586 <literal>no</literal>.</para></listitem>
587 </varlistentry>
941d0aa8 588 <varlistentry>
f921f573 589 <term><varname>IPv6AcceptRA=</varname></term>
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590 <listitem><para>Takes a boolean. Controls IPv6 Router Advertisement (RA) reception support
591 for the interface. If true, RAs are accepted; if false, RAs are ignored, independently of the
592 local forwarding state. When RAs are accepted, they may trigger the start of the DHCPv6
593 client if the relevant flags are set in the RA data, or if no routers are found on the link.</para>
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594
595 <para>Further settings for the IPv6 RA support may be configured in the
f921f573 596 <literal>[IPv6AcceptRA]</literal> section, see below.</para>
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597
598 <para>Also see <ulink
599 url="https://www.kernel.org/doc/Documentation/networking/ip-sysctl.txt">ip-sysctl.txt</ulink> in the kernel
600 documentation regarding <literal>accept_ra</literal>, but note that systemd's setting of
601 <constant>1</constant> (i.e. true) corresponds to kernel's setting of <constant>2</constant>.</para>
c4a05aa1 602
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603 <para>Note that kernel's implementation of the IPv6 RA protocol is always disabled,
604 regardless of this setting. If this option is enabled, a userspace implementation of the IPv6
605 RA protocol is used, and the kernel's own implementation remains disabled, since
606 <command>systemd-networkd</command> needs to know all details supplied in the advertisements,
607 and these are not available from the kernel if the kernel's own implementation is used.</para>
ebf98081 608 </listitem>
941d0aa8 609 </varlistentry>
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610 <varlistentry>
611 <term><varname>IPv6DuplicateAddressDetection=</varname></term>
a8eaaee7 612 <listitem><para>Configures the amount of IPv6 Duplicate
025314d9 613 Address Detection (DAD) probes to send. When unset, the kernel's default will be used.
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614 </para></listitem>
615 </varlistentry>
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616 <varlistentry>
617 <term><varname>IPv6HopLimit=</varname></term>
618 <listitem><para>Configures IPv6 Hop Limit. For each router that
619 forwards the packet, the hop limit is decremented by 1. When the
620 hop limit field reaches zero, the packet is discarded.
025314d9 621 When unset, the kernel's default will be used.
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622 </para></listitem>
623 </varlistentry>
23d8b221 624 <varlistentry>
8f9a206b 625 <term><varname>IPv4ProxyARP=</varname></term>
9b6ffef3 626 <listitem><para>Takes a boolean. Configures proxy ARP for IPv4. Proxy ARP is the technique in which one host,
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627 usually a router, answers ARP requests intended for another machine. By "faking" its identity,
628 the router accepts responsibility for routing packets to the "real" destination. (see <ulink
629 url="https://tools.ietf.org/html/rfc1027">RFC 1027</ulink>.
025314d9 630 When unset, the kernel's default will be used.
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631 </para></listitem>
632 </varlistentry>
a0e5c15d 633 <varlistentry>
465dfe59 634 <term><varname>IPv6ProxyNDP=</varname></term>
9b6ffef3 635 <listitem><para>Takes a boolean. Configures proxy NDP for IPv6. Proxy NDP (Neighbor Discovery
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636 Protocol) is a technique for IPv6 to allow routing of addresses to a different
637 destination when peers expect them to be present on a certain physical link.
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638 In this case a router answers Neighbour Advertisement messages intended for
639 another machine by offering its own MAC address as destination.
465dfe59 640 Unlike proxy ARP for IPv4, it is not enabled globally, but will only send Neighbour
a0e5c15d 641 Advertisement messages for addresses in the IPv6 neighbor proxy table,
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642 which can also be shown by <command>ip -6 neighbour show proxy</command>.
643 systemd-networkd will control the per-interface `proxy_ndp` switch for each configured
644 interface depending on this option.
025314d9 645 When unset, the kernel's default will be used.
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646 </para></listitem>
647 </varlistentry>
648 <varlistentry>
649 <term><varname>IPv6ProxyNDPAddress=</varname></term>
650 <listitem><para>An IPv6 address, for which Neighbour Advertisement messages will be
651 proxied. This option may be specified more than once. systemd-networkd will add the
652 <option>IPv6ProxyNDPAddress=</option> entries to the kernel's IPv6 neighbor proxy table.
964c4eda 653 This option implies <option>IPv6ProxyNDP=yes</option> but has no effect if
025314d9 654 <option>IPv6ProxyNDP</option> has been set to false. When unset, the kernel's default will be used.
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655 </para></listitem>
656 </varlistentry>
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657 <varlistentry>
658 <term><varname>IPv6PrefixDelegation=</varname></term>
659 <listitem><para>Whether to enable or disable Router Advertisement sending on a link.
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660 Allowed values are <literal>static</literal> which distributes prefixes as defined in
661 the <literal>[IPv6PrefixDelegation]</literal> and any <literal>[IPv6Prefix]</literal>
662 sections, <literal>dhcpv6</literal> which requests prefixes using a DHCPv6 client
663 configured for another link and any values configured in the
664 <literal>[IPv6PrefixDelegation]</literal> section while ignoring all static prefix
665 configuration sections, <literal>yes</literal> which uses both static configuration
666 and DHCPv6, and <literal>false</literal> which turns off IPv6 prefix delegation
667 altogether. Defaults to <literal>false</literal>. See the
668 <literal>[IPv6PrefixDelegation]</literal> and the <literal>[IPv6Prefix]</literal>
669 sections for more configuration options.
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670 </para></listitem>
671 </varlistentry>
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672 <varlistentry>
673 <term><varname>IPv6MTUBytes=</varname></term>
674 <listitem><para>Configures IPv6 maximum transmission unit (MTU).
025314d9 675 An integer greater than or equal to 1280 bytes. When unset, the kernel's default will be used.
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676 </para></listitem>
677 </varlistentry>
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678 <varlistentry>
679 <term><varname>Bridge=</varname></term>
680 <listitem>
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681 <para>The name of the bridge to add the link to. See
682 <citerefentry><refentrytitle>systemd.netdev</refentrytitle><manvolnum>5</manvolnum></citerefentry>.
683 </para>
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684 </listitem>
685 </varlistentry>
686 <varlistentry>
687 <term><varname>Bond=</varname></term>
688 <listitem>
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689 <para>The name of the bond to add the link to. See
690 <citerefentry><refentrytitle>systemd.netdev</refentrytitle><manvolnum>5</manvolnum></citerefentry>.
691 </para>
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692 </listitem>
693 </varlistentry>
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694 <varlistentry>
695 <term><varname>VRF=</varname></term>
696 <listitem>
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697 <para>The name of the VRF to add the link to. See
698 <citerefentry><refentrytitle>systemd.netdev</refentrytitle><manvolnum>5</manvolnum></citerefentry>.
699 </para>
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700 </listitem>
701 </varlistentry>
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702 <varlistentry>
703 <term><varname>VLAN=</varname></term>
704 <listitem>
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705 <para>The name of a VLAN to create on the link. See
706 <citerefentry><refentrytitle>systemd.netdev</refentrytitle><manvolnum>5</manvolnum></citerefentry>.
707 This option may be specified more than once.</para>
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708 </listitem>
709 </varlistentry>
2479c4fe 710 <varlistentry>
711 <term><varname>IPVLAN=</varname></term>
712 <listitem>
713 <para>The name of a IPVLAN to create on the link. See
714 <citerefentry><refentrytitle>systemd.netdev</refentrytitle><manvolnum>5</manvolnum></citerefentry>.
715 This option may be specified more than once.</para>
716 </listitem>
717 </varlistentry>
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718 <varlistentry>
719 <term><varname>MACVLAN=</varname></term>
720 <listitem>
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721 <para>The name of a MACVLAN to create on the link. See
722 <citerefentry><refentrytitle>systemd.netdev</refentrytitle><manvolnum>5</manvolnum></citerefentry>.
723 This option may be specified more than once.</para>
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724 </listitem>
725 </varlistentry>
726 <varlistentry>
727 <term><varname>VXLAN=</varname></term>
728 <listitem>
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729 <para>The name of a VXLAN to create on the link. See
730 <citerefentry><refentrytitle>systemd.netdev</refentrytitle><manvolnum>5</manvolnum></citerefentry>.
731 This option may be specified more than once.</para>
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732 </listitem>
733 </varlistentry>
734 <varlistentry>
735 <term><varname>Tunnel=</varname></term>
736 <listitem>
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737 <para>The name of a Tunnel to create on the link. See
738 <citerefentry><refentrytitle>systemd.netdev</refentrytitle><manvolnum>5</manvolnum></citerefentry>.
739 This option may be specified more than once.</para>
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740 </listitem>
741 </varlistentry>
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742 <varlistentry>
743 <term><varname>MACsec=</varname></term>
744 <listitem>
745 <para>The name of a MACsec device to create on the link. See
746 <citerefentry><refentrytitle>systemd.netdev</refentrytitle><manvolnum>5</manvolnum></citerefentry>.
747 This option may be specified more than once.</para>
748 </listitem>
749 </varlistentry>
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750 <varlistentry>
751 <term><varname>ActiveSlave=</varname></term>
752 <listitem>
9b6ffef3 753 <para>Takes a boolean. Specifies the new active slave. The <literal>ActiveSlave=</literal>
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754 option is only valid for following modes:
755 <literal>active-backup</literal>,
756 <literal>balance-alb</literal> and
757 <literal>balance-tlb</literal>. Defaults to false.
758 </para>
759 </listitem>
760 </varlistentry>
761 <varlistentry>
762 <term><varname>PrimarySlave=</varname></term>
763 <listitem>
9b6ffef3 764 <para>Takes a boolean. Specifies which slave is the primary device. The specified
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765 device will always be the active slave while it is available. Only when the
766 primary is off-line will alternate devices be used. This is useful when
767 one slave is preferred over another, e.g. when one slave has higher throughput
768 than another. The <literal>PrimarySlave=</literal> option is only valid for
769 following modes:
770 <literal>active-backup</literal>,
771 <literal>balance-alb</literal> and
772 <literal>balance-tlb</literal>. Defaults to false.
773 </para>
774 </listitem>
775 </varlistentry>
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776 <varlistentry>
777 <term><varname>ConfigureWithoutCarrier=</varname></term>
778 <listitem>
9b6ffef3 779 <para>Takes a boolean. Allows networkd to configure a specific link even if it has no carrier.
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780 Defaults to false.
781 </para>
782 </listitem>
783 </varlistentry>
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784 <varlistentry>
785 <term><varname>IgnoreCarrierLoss=</varname></term>
786 <listitem>
787 <para>A boolean. Allows networkd to retain both the static and dynamic configuration of the
788 interface even if its carrier is lost. Defaults to false.
789 </para>
790 </listitem>
791 </varlistentry>
98d20a17 792 <varlistentry>
793 <term><varname>Xfrm=</varname></term>
794 <listitem>
795 <para>The name of the xfrm to create on the link. See
796 <citerefentry><refentrytitle>systemd.netdev</refentrytitle><manvolnum>5</manvolnum></citerefentry>.
797 This option may be specified more than once.</para>
798 </listitem>
799 </varlistentry>
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800 <varlistentry>
801 <term><varname>KeepConfiguration=</varname></term>
802 <listitem>
803 <para>Takes a boolean or one of <literal>static</literal>, <literal>dhcp-on-stop</literal>,
804 <literal>dhcp</literal>. When <literal>static</literal>, <command>systemd-networkd</command>
805 will not drop static addresses and routes on starting up process. When set to
806 <literal>dhcp-on-stop</literal>, <command>systemd-networkd</command> will not drop addresses
807 and routes on stopping the daemon. When <literal>dhcp</literal>,
808 the addresses and routes provided by a DHCP server will never be dropped even if the DHCP
809 lease expires. This is contrary to the DHCP specification, but may be the best choice if,
810 e.g., the root filesystem relies on this connection. The setting <literal>dhcp</literal>
811 implies <literal>dhcp-on-stop</literal>, and <literal>yes</literal> implies
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812 <literal>dhcp</literal> and <literal>static</literal>. Defaults to <literal>no</literal>.
813 </para>
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814 </listitem>
815 </varlistentry>
93b4dab5 816
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817 </variablelist>
818
819 </refsect1>
820
821 <refsect1>
822 <title>[Address] Section Options</title>
823
824 <para>An <literal>[Address]</literal> section accepts the
825 following keys. Specify several <literal>[Address]</literal>
826 sections to configure several addresses.</para>
827
828 <variablelist class='network-directives'>
829 <varlistentry>
830 <term><varname>Address=</varname></term>
831 <listitem>
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832 <para>As in the <literal>[Network]</literal> section. This key is mandatory. Each
833 <literal>[Address]</literal> section can contain one <varname>Address=</varname> setting.</para>
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834 </listitem>
835 </varlistentry>
836 <varlistentry>
837 <term><varname>Peer=</varname></term>
838 <listitem>
839 <para>The peer address in a point-to-point connection.
4e68898e 840 Accepts the same format as the <varname>Address=</varname>
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841 key.</para>
842 </listitem>
843 </varlistentry>
844 <varlistentry>
845 <term><varname>Broadcast=</varname></term>
846 <listitem>
847 <para>The broadcast address, which must be in the format
848 described in
3ba3a79d 849 <citerefentry project='man-pages'><refentrytitle>inet_pton</refentrytitle><manvolnum>3</manvolnum></citerefentry>.
798d3a52 850 This key only applies to IPv4 addresses. If it is not
4e68898e 851 given, it is derived from the <varname>Address=</varname>
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852 key.</para>
853 </listitem>
854 </varlistentry>
855 <varlistentry>
856 <term><varname>Label=</varname></term>
857 <listitem>
858 <para>An address label.</para>
859 </listitem>
860 </varlistentry>
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861 <varlistentry>
862 <term><varname>PreferredLifetime=</varname></term>
863 <listitem>
864 <para>Allows the default "preferred lifetime" of the address to be overridden.
865 Only three settings are accepted: <literal>forever</literal> or <literal>infinity</literal>
866 which is the default and means that the address never expires, and <literal>0</literal> which means
867 that the address is considered immediately "expired" and will not be used,
868 unless explicitly requested. A setting of PreferredLifetime=0 is useful for
869 addresses which are added to be used only by a specific application,
870 which is then configured to use them explicitly.</para>
871 </listitem>
872 </varlistentry>
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873 <varlistentry>
874 <term><varname>Scope=</varname></term>
875 <listitem>
876 <para>The scope of the address, which can be <literal>global</literal>,
877 <literal>link</literal> or <literal>host</literal> or an unsigned integer ranges 0 to 255.
878 Defaults to <literal>global</literal>.</para>
879 </listitem>
880 </varlistentry>
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881 <varlistentry>
882 <term><varname>HomeAddress=</varname></term>
883 <listitem>
9b6ffef3 884 <para>Takes a boolean. Designates this address the "home address" as defined in
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885 <ulink url="https://tools.ietf.org/html/rfc6275">RFC 6275</ulink>.
886 Supported only on IPv6. Defaults to false.</para>
887 </listitem>
888 </varlistentry>
889 <varlistentry>
890 <term><varname>DuplicateAddressDetection=</varname></term>
891 <listitem>
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892 <para>Takes one of <literal>ipv4</literal>, <literal>ipv6</literal>,
893 <literal>both</literal>, <literal>none</literal>. When <literal>ipv4</literal>,
894 performs IPv4 Duplicate Address Detection. See
895 <ulink url="https://tools.ietf.org/html/rfc5227">RFC 5224</ulink>.
896 When <literal>ipv6</literal>, performs IPv6 Duplicate Address Detection. See
897 <ulink url="https://tools.ietf.org/html/rfc4862">RFC 4862</ulink>.
898 Defaults to <literal>ipv6</literal>.</para>
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899 </listitem>
900 </varlistentry>
901 <varlistentry>
902 <term><varname>ManageTemporaryAddress=</varname></term>
903 <listitem>
9b6ffef3 904 <para>Takes a boolean. If true the kernel manage temporary addresses created
e63be084
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905 from this one as template on behalf of Privacy Extensions
906 <ulink url="https://tools.ietf.org/html/rfc3041">RFC 3041</ulink>. For this to become
907 active, the use_tempaddr sysctl setting has to be set to a value greater than zero.
11fcfc53 908 The given address needs to have a prefix length of 64. This flag allows using privacy
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909 extensions in a manually configured network, just like if stateless auto-configuration
910 was active. Defaults to false. </para>
911 </listitem>
912 </varlistentry>
913 <varlistentry>
de697db0 914 <term><varname>AddPrefixRoute=</varname></term>
e63be084 915 <listitem>
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916 <para>Takes a boolean. When true, the prefix route for the address is automatically added.
917 Defaults to true.</para>
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918 </listitem>
919 </varlistentry>
920 <varlistentry>
921 <term><varname>AutoJoin=</varname></term>
922 <listitem>
9b6ffef3 923 <para>Takes a boolean. Joining multicast group on ethernet level via
e63be084
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924 <command>ip maddr</command> command would not work if we have an Ethernet switch that does
925 IGMP snooping since the switch would not replicate multicast packets on ports that did not
926 have IGMP reports for the multicast addresses. Linux vxlan interfaces created via
927 <command>ip link add vxlan</command> or networkd's netdev kind vxlan have the group option
928 that enables then to do the required join. By extending ip address command with option
929 <literal>autojoin</literal> we can get similar functionality for openvswitch (OVS) vxlan
930 interfaces as well as other tunneling mechanisms that need to receive multicast traffic.
931 Defaults to <literal>no</literal>.</para>
932 </listitem>
933 </varlistentry>
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934 </variablelist>
935 </refsect1>
936
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WKI
937 <refsect1>
938 <title>[Neighbor] Section Options</title>
939 <para>A <literal>[Neighbor]</literal> section accepts the
940 following keys. The neighbor section adds a permanent, static
941 entry to the neighbor table (IPv6) or ARP table (IPv4) for
942 the given hardware address on the links matched for the network.
943 Specify several <literal>[Neighbor]</literal> sections to configure
944 several static neighbors.</para>
945
946 <variablelist class='network-directives'>
947 <varlistentry>
948 <term><varname>Address=</varname></term>
949 <listitem>
950 <para>The IP address of the neighbor.</para>
951 </listitem>
952 </varlistentry>
953 <varlistentry>
b956364d 954 <term><varname>LinkLayerAddress=</varname></term>
e4a71bf3 955 <listitem>
b956364d 956 <para>The link layer address (MAC address or IP address) of the neighbor.</para>
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957 </listitem>
958 </varlistentry>
959 </variablelist>
960 </refsect1>
961
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962 <refsect1>
963 <title>[IPv6AddressLabel] Section Options</title>
964
965 <para>An <literal>[IPv6AddressLabel]</literal> section accepts the
966 following keys. Specify several <literal>[IPv6AddressLabel]</literal>
785889e5 967 sections to configure several address labels. IPv6 address labels are
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968 used for address selection. See <ulink url="https://tools.ietf.org/html/rfc3484">RFC 3484</ulink>.
969 Precedence is managed by userspace, and only the label itself is stored in the kernel</para>
970
971 <variablelist class='network-directives'>
972 <varlistentry>
973 <term><varname>Label=</varname></term>
974 <listitem>
975 <para> The label for the prefix (an unsigned integer) ranges 0 to 4294967294.
976 0xffffffff is reserved. This key is mandatory.</para>
977 </listitem>
978 </varlistentry>
979 <varlistentry>
980 <term><varname>Prefix=</varname></term>
981 <listitem>
982 <para>IPv6 prefix is an address with a prefix length, separated by a slash <literal>/</literal> character.
983 This key is mandatory. </para>
984 </listitem>
985 </varlistentry>
986 </variablelist>
987 </refsect1>
988
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989 <refsect1>
990 <title>[RoutingPolicyRule] Section Options</title>
991
992 <para>An <literal>[RoutingPolicyRule]</literal> section accepts the
993 following keys. Specify several <literal>[RoutingPolicyRule]</literal>
994 sections to configure several rules.</para>
995
996 <variablelist class='network-directives'>
997 <varlistentry>
998 <term><varname>TypeOfService=</varname></term>
999 <listitem>
1000 <para>Specifies the type of service to match a number between 0 to 255.</para>
1001 </listitem>
1002 </varlistentry>
1003 <varlistentry>
1004 <term><varname>From=</varname></term>
1005 <listitem>
1006 <para>Specifies the source address prefix to match. Possibly followed by a slash and the prefix length.</para>
1007 </listitem>
1008 </varlistentry>
1009 <varlistentry>
1010 <term><varname>To=</varname></term>
1011 <listitem>
1012 <para>Specifies the destination address prefix to match. Possibly followed by a slash and the prefix length.</para>
1013 </listitem>
1014 </varlistentry>
1015 <varlistentry>
1016 <term><varname>FirewallMark=</varname></term>
1017 <listitem>
1018 <para>Specifies the iptables firewall mark value to match (a number between 1 and 4294967295).</para>
1019 </listitem>
1020 </varlistentry>
1021 <varlistentry>
1022 <term><varname>Table=</varname></term>
1023 <listitem>
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1024 <para>Specifies the routing table identifier to lookup if the rule selector matches. Takes
1025 one of <literal>default</literal>, <literal>main</literal>, and <literal>local</literal>,
1026 or a number between 1 and 4294967295. Defaults to <literal>main</literal>.</para>
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1027 </listitem>
1028 </varlistentry>
1029 <varlistentry>
1030 <term><varname>Priority=</varname></term>
1031 <listitem>
1032 <para>Specifies the priority of this rule. <varname>Priority=</varname> is an unsigned
1033 integer. Higher number means lower priority, and rules get processed in order of increasing number.</para>
1034 </listitem>
1035 </varlistentry>
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1036 <varlistentry>
1037 <term><varname>IncomingInterface=</varname></term>
1038 <listitem>
1039 <para>Specifies incoming device to match. If the interface is loopback, the rule only matches packets originating from this host.</para>
1040 </listitem>
1041 </varlistentry>
1042 <varlistentry>
1043 <term><varname>OutgoingInterface=</varname></term>
1044 <listitem>
1045 <para>Specifies the outgoing device to match. The outgoing interface is only available for packets originating from local sockets that are bound to a device.</para>
1046 </listitem>
1047 </varlistentry>
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SS
1048 <varlistentry>
1049 <term><varname>SourcePort=</varname></term>
1050 <listitem>
1051 <para>Specifies the source IP port or IP port range match in forwarding information base (FIB) rules.
1052 A port range is specified by the lower and upper port separated by a dash. Defaults to unset.</para>
1053 </listitem>
1054 </varlistentry>
1055 <varlistentry>
1056 <term><varname>DestinationPort=</varname></term>
1057 <listitem>
1058 <para>Specifies the destination IP port or IP port range match in forwarding information base (FIB) rules.
1059 A port range is specified by the lower and upper port separated by a dash. Defaults to unset.</para>
1060 </listitem>
1061 </varlistentry>
1062 <varlistentry>
97f9df9e 1063 <term><varname>IPProtocol=</varname></term>
926062f0 1064 <listitem>
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1065 <para>Specifies the IP protocol to match in forwarding information base (FIB) rules. Takes IP protocol name such as <literal>tcp</literal>,
1066 <literal>udp</literal> or <literal>sctp</literal>, or IP protocol number such as <literal>6</literal> for <literal>tcp</literal> or
1067 <literal>17</literal> for <literal>udp</literal>.
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1068 Defaults to unset.</para>
1069 </listitem>
1070 </varlistentry>
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1071 <varlistentry>
1072 <term><varname>InvertRule=</varname></term>
1073 <listitem>
5238e957 1074 <para>A boolean. Specifies whether the rule to be inverted. Defaults to false.</para>
8b220643
SS
1075 </listitem>
1076 </varlistentry>
f6c6ff97
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1077 <varlistentry>
1078 <term><varname>Family=</varname></term>
1079 <listitem>
1080 <para>Takes a special value <literal>ipv4</literal>, <literal>ipv6</literal>, or
1081 <literal>both</literal>. By default, the address family is determined by the address
1082 specified in <varname>To=</varname> or <varname>From=</varname>. If neither
1083 <varname>To=</varname> nor <varname>From=</varname> are specified, then defaults to
1084 <literal>ipv4</literal>.</para>
1085 </listitem>
1086 </varlistentry>
bce67bbe 1087 </variablelist>
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SS
1088 </refsect1>
1089
1090 <refsect1>
1091 <title>[NextHop] Section Options</title>
1092 <para>The <literal>[NextHop]</literal> section accepts the
1093 following keys. Specify several <literal>[NextHop]</literal>
1094 sections to configure several nexthop. Nexthop is used to manipulate entries in the kernel's nexthop
1095 tables.</para>
1096
1097 <variablelist class='network-directives'>
1098 <varlistentry>
1099 <term><varname>Gateway=</varname></term>
1100 <listitem>
1101 <para>As in the <literal>[Network]</literal> section. This is mandatory.</para>
1102 </listitem>
1103 </varlistentry>
1104 <varlistentry>
1105 <term><varname>Id=</varname></term>
1106 <listitem>
1107 <para>The id of the nexthop (an unsigned integer). If unspecified or '0' then automatically chosen by kernel.</para>
1108 </listitem>
1109 </varlistentry>
1110 </variablelist>
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SS
1111 </refsect1>
1112
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1113 <refsect1>
1114 <title>[Route] Section Options</title>
1115 <para>The <literal>[Route]</literal> section accepts the
1116 following keys. Specify several <literal>[Route]</literal>
1117 sections to configure several routes.</para>
1118
1119 <variablelist class='network-directives'>
1120 <varlistentry>
1121 <term><varname>Gateway=</varname></term>
1122 <listitem>
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YW
1123 <para>Takes the gateway address or special value <literal>dhcp</literal>. If
1124 <literal>dhcp</literal>, then the gateway address provided by DHCP (or in the IPv6 case,
1125 provided by IPv6 RA) is used.</para>
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1126 </listitem>
1127 </varlistentry>
28959f7d 1128 <varlistentry>
9cb8c559 1129 <term><varname>GatewayOnLink=</varname></term>
28959f7d 1130 <listitem>
9b6ffef3 1131 <para>Takes a boolean. If set to true, the kernel does not have
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SS
1132 to check if the gateway is reachable directly by the current machine (i.e., the kernel does
1133 not need to check if the gateway is attached to the local network), so that we can insert the
9b6ffef3 1134 route in the kernel table without it being complained about. Defaults to <literal>no</literal>.
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1135 </para>
1136 </listitem>
1137 </varlistentry>
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1138 <varlistentry>
1139 <term><varname>Destination=</varname></term>
1140 <listitem>
1141 <para>The destination prefix of the route. Possibly
b938cb90 1142 followed by a slash and the prefix length. If omitted, a
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1143 full-length host route is assumed.</para>
1144 </listitem>
1145 </varlistentry>
1146 <varlistentry>
1147 <term><varname>Source=</varname></term>
1148 <listitem>
1149 <para>The source prefix of the route. Possibly followed by
b938cb90 1150 a slash and the prefix length. If omitted, a full-length
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1151 host route is assumed.</para>
1152 </listitem>
1153 </varlistentry>
1154 <varlistentry>
1155 <term><varname>Metric=</varname></term>
1156 <listitem>
b938cb90 1157 <para>The metric of the route (an unsigned integer).</para>
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1158 </listitem>
1159 </varlistentry>
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1160 <varlistentry>
1161 <term><varname>IPv6Preference=</varname></term>
1162 <listitem>
1163 <para>Specifies the route preference as defined in <ulink
1164 url="https://tools.ietf.org/html/rfc4191">RFC4191</ulink> for Router Discovery messages.
1165 Which can be one of <literal>low</literal> the route has a lowest priority,
1166 <literal>medium</literal> the route has a default priority or
1167 <literal>high</literal> the route has a highest priority.</para>
1168 </listitem>
1169 </varlistentry>
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TG
1170 <varlistentry>
1171 <term><varname>Scope=</varname></term>
1172 <listitem>
f5c38922
YW
1173 <para>The scope of the route, which can be <literal>global</literal>, <literal>site</literal>,
1174 <literal>link</literal>, <literal>host</literal>, or <literal>nowhere</literal>. For IPv4 route,
1175 defaults to <literal>host</literal> if <varname>Type=</varname> is <literal>local</literal>
1176 or <literal>nat</literal>, and <literal>link</literal> if <varname>Type=</varname> is
1177 <literal>broadcast</literal>, <literal>multicast</literal>, or <literal>anycast</literal>.
1178 In other cases, defaults to <literal>global</literal>.</para>
769b56a3 1179 </listitem>
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1180 </varlistentry>
1181 <varlistentry>
1182 <term><varname>PreferredSource=</varname></term>
1183 <listitem>
1184 <para>The preferred source address of the route. The address
1185 must be in the format described in
1186 <citerefentry project='man-pages'><refentrytitle>inet_pton</refentrytitle><manvolnum>3</manvolnum></citerefentry>.</para>
1187 </listitem>
769b56a3 1188 </varlistentry>
c953b24c 1189 <varlistentry>
f5c38922 1190 <term><varname>Table=</varname></term>
c953b24c 1191 <listitem>
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YW
1192 <para>The table identifier for the route. Takes <literal>default</literal>,
1193 <literal>main</literal>, <literal>local</literal> or a number between 1 and 4294967295.
1194 The table can be retrieved using <command>ip route show table <replaceable>num</replaceable></command>.
1195 If unset and <varname>Type=</varname> is <literal>local</literal>, <literal>broadcast</literal>,
1196 <literal>anycast</literal>, or <literal>nat</literal>, then <literal>local</literal> is used.
1197 In other cases, defaults to <literal>main</literal>.
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1198 </para>
1199 </listitem>
1200 </varlistentry>
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1201 <varlistentry>
1202 <term><varname>Protocol=</varname></term>
1203 <listitem>
88925d2f 1204 <para>The protocol identifier for the route. Takes a number between 0 and 255 or the special values
ca420b62
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1205 <literal>kernel</literal>, <literal>boot</literal>, <literal>static</literal>,
1206 <literal>ra</literal> and <literal>dhcp</literal>. Defaults to <literal>static</literal>.
c83ecc04
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1207 </para>
1208 </listitem>
1209 </varlistentry>
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1210 <varlistentry>
1211 <term><varname>Type=</varname></term>
1212 <listitem>
94d6e299
YW
1213 <para>Specifies the type for the route. Takes one of <literal>unicast</literal>,
1214 <literal>local</literal>, <literal>broadcast</literal>, <literal>anycast</literal>,
1215 <literal>multicast</literal>, <literal>blackhole</literal>, <literal>unreachable</literal>,
1216 <literal>prohibit</literal>, <literal>throw</literal>, <literal>nat</literal>, and
1217 <literal>xresolve</literal>. If <literal>unicast</literal>, a regular route is defined, i.e. a
66d7235e
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1218 route indicating the path to take to a destination network address. If <literal>blackhole</literal>, packets
1219 to the defined route are discarded silently. If <literal>unreachable</literal>, packets to the defined route
1220 are discarded and the ICMP message "Host Unreachable" is generated. If <literal>prohibit</literal>, packets
1221 to the defined route are discarded and the ICMP message "Communication Administratively Prohibited" is
1222 generated. If <literal>throw</literal>, route lookup in the current routing table will fail and the route
1223 selection process will return to Routing Policy Database (RPDB). Defaults to <literal>unicast</literal>.
983226f3
SS
1224 </para>
1225 </listitem>
1226 </varlistentry>
323d9329
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1227 <varlistentry>
1228 <term><varname>InitialCongestionWindow=</varname></term>
1229 <listitem>
6b21ad33
SS
1230 <para>The TCP initial congestion window is used during the start of a TCP connection. During the start of a TCP
1231 session, when a client requests a resource, the server's initial congestion window determines how many data bytes
1232 will be sent during the initial burst of data. Takes a size in bytes between 1 and 4294967295 (2^32 - 1). The usual
025314d9 1233 suffixes K, M, G are supported and are understood to the base of 1024. When unset, the kernel's default will be used.
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1234 </para>
1235 </listitem>
1236 </varlistentry>
1237 <varlistentry>
1238 <term><varname>InitialAdvertisedReceiveWindow=</varname></term>
1239 <listitem>
5238e957 1240 <para>The TCP initial advertised receive window is the amount of receive data (in bytes) that can initially be buffered at one time
6b21ad33
SS
1241 on a connection. The sending host can send only that amount of data before waiting for an acknowledgment and window update
1242 from the receiving host. Takes a size in bytes between 1 and 4294967295 (2^32 - 1). The usual suffixes K, M, G are supported
025314d9 1243 and are understood to the base of 1024. When unset, the kernel's default will be used.
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1244 </para>
1245 </listitem>
1246 </varlistentry>
09f5dfad
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1247 <varlistentry>
1248 <term><varname>QuickAck=</varname></term>
1249 <listitem>
9b6ffef3 1250 <para>Takes a boolean. When true enables TCP quick ack mode for the route. When unset, the kernel's default will be used.
09f5dfad
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1251 </para>
1252 </listitem>
1253 </varlistentry>
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1254 <varlistentry>
1255 <term><varname>FastOpenNoCookie=</varname></term>
1256 <listitem>
1257 <para>Takes a boolean. When true enables TCP fastopen without a cookie on a per-route basis.
1258 When unset, the kernel's default will be used.
1259 </para>
1260 </listitem>
09f5dfad 1261 </varlistentry>
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1262 <varlistentry>
1263 <term><varname>TTLPropagate=</varname></term>
1264 <listitem>
1265 <para>Takes a boolean. When true enables TTL propagation at Label Switched Path (LSP) egress.
1266 When unset, the kernel's default will be used.
1267 </para>
1268 </listitem>
1269 </varlistentry>
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1270 <varlistentry>
1271 <term><varname>MTUBytes=</varname></term>
1272 <listitem>
1273 <para>The maximum transmission unit in bytes to set for the
1274 route. The usual suffixes K, M, G, are supported and are
1275 understood to the base of 1024.</para>
1276 <para>Note that if IPv6 is enabled on the interface, and the MTU is chosen
1277 below 1280 (the minimum MTU for IPv6) it will automatically be increased to this value.</para>
1278 </listitem>
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SC
1279 </varlistentry>
1280 <varlistentry>
1281 <term><varname>IPServiceType=</varname></term>
1282 <listitem>
e681a2ee
YW
1283 <para>Takes string; <literal>CS6</literal> or <literal>CS4</literal>. Used to set IP
1284 service type to CS6 (network control) or CS4 (Realtime). Defaults to CS6.</para>
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SC
1285 </listitem>
1286 </varlistentry>
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1287 <varlistentry>
1288 <term><varname>MultiPathRoute=<replaceable>address</replaceable>[@<replaceable>name</replaceable>] [<replaceable>weight</replaceable>]</varname></term>
1289 <listitem>
1290 <para>Configures multipath route. Multipath routing is the technique of using multiple
1291 alternative paths through a network. Takes gateway address. Optionally, takes a network
1292 interface name or index separated with <literal>@</literal>, and a weight in 1..256 for
1293 this multipath route separated with whitespace. This setting can be specified multiple
1294 times. If an empty string is assigned, then the all previous assignments are cleared.</para>
1295 </listitem>
1296 </varlistentry>
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1297 </variablelist>
1298 </refsect1>
1299
1300 <refsect1>
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YW
1301 <title>[DHCPv4] Section Options</title>
1302 <para>The <literal>[DHCPv4]</literal> section configures the
caa8ca42 1303 DHCPv4 client, if it is enabled with the
ad943783 1304 <varname>DHCP=</varname> setting described above:</para>
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1305
1306 <variablelist class='network-directives'>
1307 <varlistentry>
1308 <term><varname>UseDNS=</varname></term>
1309 <listitem>
1310 <para>When true (the default), the DNS servers received
1311 from the DHCP server will be used and take precedence over
1312 any statically configured ones.</para>
e88d8021
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1313
1314 <para>This corresponds to the <option>nameserver</option>
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1315 option in <citerefentry
1316 project='man-pages'><refentrytitle>resolv.conf</refentrytitle><manvolnum>5</manvolnum></citerefentry>.</para>
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1317 </listitem>
1318 </varlistentry>
a24e12f0
YW
1319 <varlistentry>
1320 <term><varname>RoutesToDNS=</varname></term>
1321 <listitem>
1322 <para>When true, the routes to the DNS servers received from the DHCP server will be
1323 configured. When <varname>UseDNS=</varname> is disabled, this setting is ignored.
f7e7bb65 1324 Defaults to false.</para>
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1325 </listitem>
1326 </varlistentry>
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MM
1327 <varlistentry>
1328 <term><varname>UseNTP=</varname></term>
1329 <listitem>
1330 <para>When true (the default), the NTP servers received
1331 from the DHCP server will be used by systemd-timesyncd
1332 and take precedence over any statically configured ones.</para>
1333 </listitem>
1334 </varlistentry>
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1335 <varlistentry>
1336 <term><varname>UseSIP=</varname></term>
1337 <listitem>
1338 <para>When true (the default), the SIP servers received
1339 from the DHCP server will be saved at the state files and can be
1340 read via <function>sd_network_link_get_sip_servers()</function> function.</para>
1341 </listitem>
1342 </varlistentry>
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1343 <varlistentry>
1344 <term><varname>UseMTU=</varname></term>
1345 <listitem>
1346 <para>When true, the interface maximum transmission unit
1347 from the DHCP server will be used on the current link.
7169cdc8 1348 If <varname>MTUBytes=</varname> is set, then this setting is ignored.
95ab9eff 1349 Defaults to false.</para>
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1350 </listitem>
1351 </varlistentry>
7585baa0 1352 <varlistentry>
1353 <term><varname>Anonymize=</varname></term>
1354 <listitem>
9b6ffef3 1355 <para>Takes a boolean. When true, the options sent to the DHCP server will
7585baa0 1356 follow the <ulink url="https://tools.ietf.org/html/rfc7844">RFC 7844</ulink>
1357 (Anonymity Profiles for DHCP Clients) to minimize disclosure of identifying information.
1358 Defaults to false.</para>
1359
1360 <para>This option should only be set to true when
1361 <varname>MACAddressPolicy=</varname> is set to <literal>random</literal>
1362 (see <citerefentry
1363 project='man-pages'><refentrytitle>systemd.link</refentrytitle><manvolnum>5</manvolnum></citerefentry>).</para>
1364
1365 <para>Note that this configuration will overwrite others.
1366 In concrete, the following variables will be ignored:
1367 <varname>SendHostname=</varname>, <varname>ClientIdentifier=</varname>,
1368 <varname>UseRoutes=</varname>, <varname>SendHostname=</varname>,
1369 <varname>UseMTU=</varname>, <varname>VendorClassIdentifier=</varname>,
1370 <varname>UseTimezone=</varname>.</para>
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1371
1372 <para>With this option enabled DHCP requests will mimic those generated by Microsoft Windows, in
1373 order to reduce the ability to fingerprint and recognize installations. This means DHCP request
1374 sizes will grow and lease data will be more comprehensive than normally, though most of the
1375 requested data is not actually used.</para>
7585baa0 1376 </listitem>
1377 </varlistentry>
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1378 <varlistentry>
1379 <term><varname>SendHostname=</varname></term>
1380 <listitem>
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1381 <para>When true (the default), the machine's hostname will be sent to the DHCP server.
1382 Note that the machine's hostname must consist only of 7-bit ASCII lower-case characters and
1383 no spaces or dots, and be formatted as a valid DNS domain name. Otherwise, the hostname is not
cad8d671 1384 sent even if this is set to true.</para>
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1385 </listitem>
1386 </varlistentry>
1387 <varlistentry>
1388 <term><varname>UseHostname=</varname></term>
1389 <listitem>
1390 <para>When true (the default), the hostname received from
31ee3973 1391 the DHCP server will be set as the transient hostname of the system.
d59be2cf 1392 </para>
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1393 </listitem>
1394 </varlistentry>
1adc5d0b 1395 <varlistentry>
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1396 <term><varname>Hostname=</varname></term>
1397 <listitem>
1398 <para>Use this value for the hostname which is sent to the DHCP server, instead of machine's hostname.
1399 Note that the specified hostname must consist only of 7-bit ASCII lower-case characters and
1400 no spaces or dots, and be formatted as a valid DNS domain name.</para>
1401 </listitem>
1402 </varlistentry>
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1403 <varlistentry>
1404 <term><varname>UseDomains=</varname></term>
1405 <listitem>
9b6ffef3 1406 <para>Takes a boolean, or the special value <literal>route</literal>. When true, the domain name
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1407 received from the DHCP server will be used as DNS search domain over this link, similar to the effect of
1408 the <option>Domains=</option> setting. If set to <literal>route</literal>, the domain name received from
1409 the DHCP server will be used for routing DNS queries only, but not for searching, similar to the effect of
1410 the <option>Domains=</option> setting when the argument is prefixed with <literal>~</literal>. Defaults to
1411 false.</para>
1412
1413 <para>It is recommended to enable this option only on trusted networks, as setting this affects resolution
1e7a0e21 1414 of all host names, in particular of single-label names. It is generally safer to use the supplied domain
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1415 only as routing domain, rather than as search domain, in order to not have it affect local resolution of
1416 single-label names.</para>
1417
1418 <para>When set to true, this setting corresponds to the <option>domain</option> option in <citerefentry
1419 project='man-pages'><refentrytitle>resolv.conf</refentrytitle><manvolnum>5</manvolnum></citerefentry>.</para>
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1420 </listitem>
1421 </varlistentry>
1422 <varlistentry>
1423 <term><varname>UseRoutes=</varname></term>
1424 <listitem>
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1425 <para>When true (the default), the static routes will be requested from the DHCP server and added to the
1426 routing table with a metric of 1024, and a scope of "global", "link" or "host", depending on the route's
1427 destination and gateway. If the destination is on the local host, e.g., 127.x.x.x, or the same as the
1428 link's own address, the scope will be set to "host". Otherwise if the gateway is null (a direct route), a
1429 "link" scope will be used. For anything else, scope defaults to "global".</para>
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1430 </listitem>
1431 </varlistentry>
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1432
1433 <varlistentry>
1434 <term><varname>UseTimezone=</varname></term>
1435
1436 <listitem><para>When true, the timezone received from the
7f3fdb7f 1437 DHCP server will be set as timezone of the local
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1438 system. Defaults to <literal>no</literal>.</para></listitem>
1439 </varlistentry>
1440
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1441 <varlistentry>
1442 <term><varname>ClientIdentifier=</varname></term>
1443 <listitem>
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1444 <para>The DHCPv4 client identifier to use. Takes one of <literal>mac</literal>, <literal>duid</literal> or <literal>duid-only</literal>.
1445 If set to <literal>mac</literal>, the MAC address of the link is used.
1446 If set to <literal>duid</literal>, an RFC4361-compliant Client ID, which is the combination of IAID and DUID (see below), is used.
1447 If set to <literal>duid-only</literal>, only DUID is used, this may not be RFC compliant, but some setups may require to use this.
1448 Defaults to <literal>duid</literal>.</para>
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1449 </listitem>
1450 </varlistentry>
e2e08e77 1451
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1452 <varlistentry>
1453 <term><varname>VendorClassIdentifier=</varname></term>
1454 <listitem>
1455 <para>The vendor class identifier used to identify vendor
1456 type and configuration.</para>
1457 </listitem>
1458 </varlistentry>
076ea6f6 1459
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1460 <varlistentry>
1461 <term><varname>UserClass=</varname></term>
1462 <listitem>
1463 <para>A DHCPv4 client can use UserClass option to identify the type or category of user or applications
1464 it represents. The information contained in this option is a string that represents the user class of which
1465 the client is a member. Each class sets an identifying string of information to be used by the DHCP
1466 service to classify clients. Takes a whitespace-separated list of strings.</para>
1467 </listitem>
1468 </varlistentry>
1469
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1470 <varlistentry>
1471 <term><varname>MaxAttempts=</varname></term>
1472 <listitem>
1473 <para>Specifies how many times the DHCPv4 client configuration should be attempted. Takes a
1474 number or <literal>infinity</literal>. Defaults to <literal>infinity</literal>.
1475 Note that the time between retries is increased exponentially, so the network will not be
1476 overloaded even if this number is high.</para>
1477 </listitem>
1478 </varlistentry>
1479
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1480 <varlistentry>
1481 <term><varname>DUIDType=</varname></term>
1482 <listitem>
1483 <para>Override the global <varname>DUIDType</varname> setting for this network. See
1484 <citerefentry><refentrytitle>networkd.conf</refentrytitle><manvolnum>5</manvolnum></citerefentry>
1485 for a description of possible values.</para>
1486 </listitem>
1487 </varlistentry>
076ea6f6 1488
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1489 <varlistentry>
1490 <term><varname>DUIDRawData=</varname></term>
1491 <listitem>
1492 <para>Override the global <varname>DUIDRawData</varname> setting for this network. See
1493 <citerefentry><refentrytitle>networkd.conf</refentrytitle><manvolnum>5</manvolnum></citerefentry>
1494 for a description of possible values.</para>
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1495 </listitem>
1496 </varlistentry>
e2e08e77 1497
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1498 <varlistentry>
1499 <term><varname>IAID=</varname></term>
1500 <listitem>
1501 <para>The DHCP Identity Association Identifier (IAID) for the interface, a 32-bit unsigned integer.</para>
1502 </listitem>
1503 </varlistentry>
1504
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1505 <varlistentry>
1506 <term><varname>RequestBroadcast=</varname></term>
1507 <listitem>
1508 <para>Request the server to use broadcast messages before
1509 the IP address has been configured. This is necessary for
1510 devices that cannot receive RAW packets, or that cannot
1511 receive packets at all before an IP address has been
1512 configured. On the other hand, this must not be enabled on
1513 networks where broadcasts are filtered out.</para>
1514 </listitem>
1515 </varlistentry>
e2e08e77 1516
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1517 <varlistentry>
1518 <term><varname>RouteMetric=</varname></term>
1519 <listitem>
1520 <para>Set the routing metric for routes specified by the
1521 DHCP server.</para>
1522 </listitem>
1523 </varlistentry>
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1524
1525 <varlistentry>
1526 <term><varname>RouteTable=<replaceable>num</replaceable></varname></term>
1527 <listitem>
d11e656a 1528 <para>The table identifier for DHCP routes (a number between 1 and 4294967295, or 0 to unset).
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1529 The table can be retrieved using <command>ip route show table <replaceable>num</replaceable></command>.
1530 </para>
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1531 <para>When used in combination with <varname>VRF=</varname> the
1532 VRF's routing table is used unless this parameter is specified.
1533 </para>
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1534 </listitem>
1535 </varlistentry>
9faed222 1536
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1537 <varlistentry>
1538 <term><varname>RouteMTUBytes=</varname></term>
1539 <listitem>
1540 <para>Specifies the MTU for the DHCP routes. Please see the [Route] section for further details.</para>
1541 </listitem>
1542 </varlistentry>
1543
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1544 <varlistentry>
1545 <term><varname>ListenPort=</varname></term>
1546 <listitem>
1547 <para>Allow setting custom port for the DHCP client to listen on.</para>
1548 </listitem>
1549 </varlistentry>
fb5c8216 1550
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1551 <varlistentry>
1552 <term><varname>SendRelease=</varname></term>
1553 <listitem>
1554 <para>When true, the DHCPv4 client sends a DHCP release packet when it stops.
5f3b5f19 1555 Defaults to true.</para>
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1556 </listitem>
1557 </varlistentry>
1558
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1559 <varlistentry>
1560 <term><varname>SendDecline=</varname></term>
1561 <listitem>
1562 <para>A boolen. When <literal>true</literal>, DHCPv4 clients receives IP address from DHCP server.
1563 After new IP is received, DHCPv4 performs IPv4 Duplicate Address Detection. If duplicate use of IP is detected
1564 the DHCPv4 client rejects the IP by sending a DHCPDECLINE packet DHCP clients try to obtain an IP address again.
1565 See <ulink url="https://tools.ietf.org/html/rfc5227">RFC 5224</ulink>.
1566 Defaults to <literal>unset</literal>.</para>
1567 </listitem>
1568 </varlistentry>
1569
caa8ca42 1570 <varlistentry>
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1571 <term><varname>BlackList=</varname></term>
1572 <listitem>
1573 <para>A whitespace-separated list of IPv4 addresses. DHCP offers from servers in the list are rejected.</para>
1574 </listitem>
1575 </varlistentry>
1576
1577 <varlistentry>
1578 <term><varname>RequestOptions=</varname></term>
caa8ca42 1579 <listitem>
5bc945be 1580 <para>A whitespace-separated list of integers in the range 1–254.</para>
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1581 </listitem>
1582 </varlistentry>
1583
cb29c156 1584 <varlistentry>
864edb39 1585 <term><varname>SendOption=</varname></term>
cb29c156 1586 <listitem>
586ec936 1587 <para>Send an arbitrary option in the DHCPv4 request. Takes a DHCP option number, data type
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1588 and data separated with a colon
1589 (<literal><replaceable>option</replaceable>:<replaceable>type</replaceable>:<replaceable>value</replaceable></literal>).
11fcfc53 1590 The option number must be an integer in the range 1..254. The type takes one of <literal>uint8</literal>,
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1591 <literal>uint16</literal>, <literal>uint32</literal>, <literal>ipv4address</literal>, or
1592 <literal>string</literal>. Special characters in the data string may be escaped using
a2cc708a 1593 <ulink url="https://en.wikipedia.org/wiki/Escape_sequences_in_C#Table_of_escape_sequences">C-style
d8b736bd 1594 escapes</ulink>. This setting can be specified multiple times. If an empty string is specified,
a2cc708a 1595 then all options specified earlier are cleared. Defaults to unset.</para>
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1596 </listitem>
1597 </varlistentry>
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1598 </variablelist>
1599 </refsect1>
1600
1601 <refsect1>
1602 <title>[DHCPv6] Section Options</title>
1603 <para>The <literal>[DHCPv6]</literal> section configures the DHCPv6 client, if it is enabled with the
4f7331a8 1604 <varname>DHCP=</varname> setting described above, or invoked by the IPv6 Router Advertisement:</para>
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1605
1606 <variablelist class='network-directives'>
1607 <varlistentry>
1608 <term><varname>UseDNS=</varname></term>
1609 <term><varname>UseNTP=</varname></term>
1610 <listitem>
9fdae8d5 1611 <para>As in the <literal>[DHCPv4]</literal> section.</para>
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1612 </listitem>
1613 </varlistentry>
1614
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1615 <varlistentry>
1616 <term><varname>RapidCommit=</varname></term>
1617 <listitem>
9b6ffef3 1618 <para>Takes a boolean. The DHCPv6 client can obtain configuration parameters from a DHCPv6 server through
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1619 a rapid two-message exchange (solicit and reply). When the rapid commit option is enabled by both
1620 the DHCPv6 client and the DHCPv6 server, the two-message exchange is used, rather than the default
1621 four-method exchange (solicit, advertise, request, and reply). The two-message exchange provides
1622 faster client configuration and is beneficial in environments in which networks are under a heavy load.
1623 See <ulink url="https://tools.ietf.org/html/rfc3315#section-17.2.1">RFC 3315</ulink> for details.
1624 Defaults to true.</para>
1625 </listitem>
1626 </varlistentry>
1627
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1628 <varlistentry>
1629 <term><varname>ForceDHCPv6PDOtherInformation=</varname></term>
1630 <listitem>
9b6ffef3 1631 <para>Takes a boolean that enforces DHCPv6 stateful mode when the 'Other information' bit is set in
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1632 Router Advertisement messages. By default setting only the 'O' bit in Router Advertisements
1633 makes DHCPv6 request network information in a stateless manner using a two-message Information
1634 Request and Information Reply message exchange.
1635 <ulink url="https://tools.ietf.org/html/rfc7084">RFC 7084</ulink>, requirement WPD-4, updates
1636 this behavior for a Customer Edge router so that stateful DHCPv6 Prefix Delegation is also
1637 requested when only the 'O' bit is set in Router Advertisements. This option enables such a CE
1638 behavior as it is impossible to automatically distinguish the intention of the 'O' bit otherwise.
1639 By default this option is set to 'false', enable it if no prefixes are delegated when the device
1640 should be acting as a CE router.</para>
1641 </listitem>
1642 </varlistentry>
1643
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1644 <varlistentry>
1645 <term><varname>PrefixDelegationHint=</varname></term>
1646 <listitem>
48daf510 1647 <para>Takes an IPv6 address with prefix length as <varname>Address=</varname> in
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1648 the "[Network]" section. Specifies the DHCPv6 client for the requesting router to include
1649 a prefix-hint in the DHCPv6 solicitation. Prefix ranges 1-128. Defaults to unset.</para>
1650 </listitem>
1651 </varlistentry>
ad943783 1652 </variablelist>
caa8ca42 1653 </refsect1>
413708d1 1654
1e7a0e21 1655 <refsect1>
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1656 <title>[IPv6AcceptRA] Section Options</title>
1657 <para>The <literal>[IPv6AcceptRA]</literal> section configures the IPv6 Router Advertisement
1658 (RA) client, if it is enabled with the <varname>IPv6AcceptRA=</varname> setting described
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1659 above:</para>
1660
1661 <variablelist class='network-directives'>
1662 <varlistentry>
1663 <term><varname>UseDNS=</varname></term>
1664 <listitem>
1665 <para>When true (the default), the DNS servers received in the Router Advertisement will be used and take
1666 precedence over any statically configured ones.</para>
1667
1668 <para>This corresponds to the <option>nameserver</option> option in <citerefentry
1669 project='man-pages'><refentrytitle>resolv.conf</refentrytitle><manvolnum>5</manvolnum></citerefentry>.</para>
1670 </listitem>
1671 </varlistentry>
1672
1673 <varlistentry>
1674 <term><varname>UseDomains=</varname></term>
1675 <listitem>
9b6ffef3 1676 <para>Takes a boolean, or the special value <literal>route</literal>. When true, the domain name
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1677 received via IPv6 Router Advertisement (RA) will be used as DNS search domain over this link, similar to
1678 the effect of the <option>Domains=</option> setting. If set to <literal>route</literal>, the domain name
1679 received via IPv6 RA will be used for routing DNS queries only, but not for searching, similar to the
1680 effect of the <option>Domains=</option> setting when the argument is prefixed with
1681 <literal>~</literal>. Defaults to false.</para>
1682
1683 <para>It is recommended to enable this option only on trusted networks, as setting this affects resolution
1684 of all host names, in particular of single-label names. It is generally safer to use the supplied domain
1685 only as routing domain, rather than as search domain, in order to not have it affect local resolution of
1686 single-label names.</para>
1687
1688 <para>When set to true, this setting corresponds to the <option>domain</option> option in <citerefentry
1689 project='man-pages'><refentrytitle>resolv.conf</refentrytitle><manvolnum>5</manvolnum></citerefentry>.</para>
1690 </listitem>
1691 </varlistentry>
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1692
1693 <varlistentry>
1694 <term><varname>RouteTable=<replaceable>num</replaceable></varname></term>
1695 <listitem>
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1696 <para>The table identifier for the routes received in the Router Advertisement
1697 (a number between 1 and 4294967295, or 0 to unset).
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1698 The table can be retrieved using <command>ip route show table <replaceable>num</replaceable></command>.
1699 </para>
1700 </listitem>
1701 </varlistentry>
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1702
1703 <varlistentry>
1704 <term><varname>UseAutonomousPrefix=</varname></term>
1705 <listitem>
1706 <para>When true (the default), the autonomous prefix received in the Router Advertisement will be used and take
1707 precedence over any statically configured ones.</para>
1708 </listitem>
1709 </varlistentry>
1710
1711 <varlistentry>
1712 <term><varname>UseOnLinkPrefix=</varname></term>
1713 <listitem>
1714 <para>When true (the default), the onlink prefix received in the Router Advertisement will be used and take
1715 precedence over any statically configured ones.</para>
1716 </listitem>
1717 </varlistentry>
1718
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1719 <varlistentry>
1720 <term><varname>BlackList=</varname></term>
1721 <listitem>
1722 <para>A whitespace-separated list of IPv6 prefixes. IPv6 prefixes supplied via router advertisements in the list are ignored.</para>
1723 </listitem>
1724 </varlistentry>
1725
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1726 </variablelist>
1727 </refsect1>
1728
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1729 <refsect1>
1730 <title>[DHCPServer] Section Options</title>
1731 <para>The <literal>[DHCPServer]</literal> section contains
1732 settings for the DHCP server, if enabled via the
1733 <varname>DHCPServer=</varname> option described above:</para>
1734
1735 <variablelist class='network-directives'>
1736
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1737 <varlistentry>
1738 <term><varname>PoolOffset=</varname></term>
1739 <term><varname>PoolSize=</varname></term>
1740
1741 <listitem><para>Configures the pool of addresses to hand out. The pool
1742 is a contiguous sequence of IP addresses in the subnet configured for
1743 the server address, which does not include the subnet nor the broadcast
1744 address. <varname>PoolOffset=</varname> takes the offset of the pool
1745 from the start of subnet, or zero to use the default value.
1746 <varname>PoolSize=</varname> takes the number of IP addresses in the
b938cb90 1747 pool or zero to use the default value. By default, the pool starts at
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1748 the first address after the subnet address and takes up the rest of
1749 the subnet, excluding the broadcast address. If the pool includes
1750 the server address (the default), this is reserved and not handed
1751 out to clients.</para></listitem>
1752 </varlistentry>
1753
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1754 <varlistentry>
1755 <term><varname>DefaultLeaseTimeSec=</varname></term>
1756 <term><varname>MaxLeaseTimeSec=</varname></term>
1757
1758 <listitem><para>Control the default and maximum DHCP lease
1759 time to pass to clients. These settings take time values in seconds or
1760 another common time unit, depending on the suffix. The default
1761 lease time is used for clients that did not ask for a specific
1762 lease time. If a client asks for a lease time longer than the
b938cb90 1763 maximum lease time, it is automatically shortened to the
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1764 specified time. The default lease time defaults to 1h, the
1765 maximum lease time to 12h. Shorter lease times are beneficial
1766 if the configuration data in DHCP leases changes frequently
1767 and clients shall learn the new settings with shorter
1768 latencies. Longer lease times reduce the generated DHCP
1769 network traffic.</para></listitem>
1770 </varlistentry>
1771
1772 <varlistentry>
1773 <term><varname>EmitDNS=</varname></term>
1774 <term><varname>DNS=</varname></term>
1775
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1776 <listitem><para>Takes a boolean. Configures whether the DHCP leases handed out
1777 to clients shall contain DNS server information. Defaults to <literal>yes</literal>.
1778 The DNS servers to pass to clients may be configured with the
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1779 <varname>DNS=</varname> option, which takes a list of IPv4
1780 addresses. If the <varname>EmitDNS=</varname> option is
b938cb90 1781 enabled but no servers configured, the servers are
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1782 automatically propagated from an "uplink" interface that has
1783 appropriate servers set. The "uplink" interface is determined
1784 by the default route of the system with the highest
1785 priority. Note that this information is acquired at the time
1786 the lease is handed out, and does not take uplink interfaces
1787 into account that acquire DNS or NTP server information at a
1788 later point. DNS server propagation does not take
1789 <filename>/etc/resolv.conf</filename> into account. Also, note
a8eaaee7 1790 that the leases are not refreshed if the uplink network
ad943783 1791 configuration changes. To ensure clients regularly acquire the
b938cb90 1792 most current uplink DNS server information, it is thus
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1793 advisable to shorten the DHCP lease time via
1794 <varname>MaxLeaseTimeSec=</varname> described
1795 above.</para></listitem>
1796 </varlistentry>
1797
1798 <varlistentry>
1799 <term><varname>EmitNTP=</varname></term>
1800 <term><varname>NTP=</varname></term>
1801
1802 <listitem><para>Similar to the <varname>EmitDNS=</varname> and
b938cb90 1803 <varname>DNS=</varname> settings described above, these
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1804 settings configure whether and what NTP server information
1805 shall be emitted as part of the DHCP lease. The same syntax,
1806 propagation semantics and defaults apply as for
1807 <varname>EmitDNS=</varname> and
1808 <varname>DNS=</varname>.</para></listitem>
1809 </varlistentry>
1810
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1811 <varlistentry>
1812 <term><varname>EmitSIP=</varname></term>
1813 <term><varname>SIP=</varname></term>
1814
1815 <listitem><para>Similar to the <varname>EmitDNS=</varname> and
1816 <varname>DNS=</varname> settings described above, these
1817 settings configure whether and what SIP server information
1818 shall be emitted as part of the DHCP lease. The same syntax,
1819 propagation semantics and defaults apply as for
1820 <varname>EmitDNS=</varname> and
1821 <varname>DNS=</varname>.</para></listitem>
1822 </varlistentry>
1823
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1824 <varlistentry>
1825 <term><varname>EmitRouter=</varname></term>
1826
1827 <listitem><para>Similar to the <varname>EmitDNS=</varname>
1828 setting described above, this setting configures whether the
1829 DHCP lease should contain the router option. The same syntax,
1830 propagation semantics and defaults apply as for
1831 <varname>EmitDNS=</varname>.</para></listitem>
1832 </varlistentry>
1833
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1834 <varlistentry>
1835 <term><varname>EmitTimezone=</varname></term>
1836 <term><varname>Timezone=</varname></term>
1837
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1838 <listitem><para>Takes a boolean. Configures whether the DHCP leases handed out
1839 to clients shall contain timezone information. Defaults to <literal>yes</literal>. The
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1840 <varname>Timezone=</varname> setting takes a timezone string
1841 (such as <literal>Europe/Berlin</literal> or
1842 <literal>UTC</literal>) to pass to clients. If no explicit
b938cb90 1843 timezone is set, the system timezone of the local host is
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1844 propagated, as determined by the
1845 <filename>/etc/localtime</filename> symlink.</para></listitem>
1846 </varlistentry>
1847
564ca984 1848 <varlistentry>
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1849 <term><varname>SendOption=</varname></term>
1850 <listitem>
1851 <para>Send a raw option with value via DHCPv4 server. Takes a DHCP option number, data type
1852 and data (<literal><replaceable>option</replaceable>:<replaceable>type</replaceable>:<replaceable>value</replaceable></literal>).
1853 The option number is an integer in the range 1..254. The type takes one of <literal>uint8</literal>,
1854 <literal>uint16</literal>, <literal>uint32</literal>, <literal>ipv4address</literal>, or
1855 <literal>string</literal>. Special characters in the data string may be escaped using
1856 <ulink url="https://en.wikipedia.org/wiki/Escape_sequences_in_C#Table_of_escape_sequences">C-style
1857 escapes</ulink>. This setting can be specified multiple times. If an empty string is specified,
1858 then all options specified earlier are cleared. Defaults to unset.</para>
1859 </listitem>
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1860 </varlistentry>
1861
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1862 </variablelist>
1863 </refsect1>
1864
798d3a52 1865 <refsect1>
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1866 <title>[IPv6PrefixDelegation] Section Options</title>
1867 <para>The <literal>[IPv6PrefixDelegation]</literal> section contains
1868 settings for sending IPv6 Router Advertisements and whether to act as
1869 a router, if enabled via the <varname>IPv6PrefixDelegation=</varname>
1870 option described above. IPv6 network prefixes are defined with one or
1871 more <literal>[IPv6Prefix]</literal> sections.</para>
1872
1873 <variablelist class='network-directives'>
1874
1875 <varlistentry>
1876 <term><varname>Managed=</varname></term>
1877 <term><varname>OtherInformation=</varname></term>
1878
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1879 <listitem><para>Takes a boolean. Controls whether a DHCPv6 server is used to acquire IPv6
1880 addresses on the network link when <varname>Managed=</varname>
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1881 is set to <literal>true</literal> or if only additional network
1882 information can be obtained via DHCPv6 for the network link when
9b6ffef3 1883 <varname>OtherInformation=</varname> is set to
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1884 <literal>true</literal>. Both settings default to
1885 <literal>false</literal>, which means that a DHCPv6 server is not being
1886 used.</para></listitem>
1887 </varlistentry>
1888
1889 <varlistentry>
1890 <term><varname>RouterLifetimeSec=</varname></term>
1891
9b6ffef3 1892 <listitem><para>Takes a timespan. Configures the IPv6 router lifetime in seconds. If set,
3f9e0236 1893 this host also announces itself in Router Advertisements as an IPv6
025314d9 1894 router for the network link. When unset, the host is not acting as a router.</para>
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1895 </listitem>
1896 </varlistentry>
1897
1898 <varlistentry>
1899 <term><varname>RouterPreference=</varname></term>
1900
1901 <listitem><para>Configures IPv6 router preference if
1902 <varname>RouterLifetimeSec=</varname> is non-zero. Valid values are
1903 <literal>high</literal>, <literal>medium</literal> and
1904 <literal>low</literal>, with <literal>normal</literal> and
1905 <literal>default</literal> added as synonyms for
1906 <literal>medium</literal> just to make configuration easier. See
1907 <ulink url="https://tools.ietf.org/html/rfc4191">RFC 4191</ulink>
1908 for details. Defaults to <literal>medium</literal>.</para></listitem>
1909 </varlistentry>
1910
1911 <varlistentry>
4cb8478c 1912 <term><varname>EmitDNS=</varname></term>
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1913 <term><varname>DNS=</varname></term>
1914
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1915 <listitem><para><varname>DNS=</varname> specifies a list of recursive
1916 DNS server IPv6 addresses that distributed via Router Advertisement
1917 messages when <varname>EmitDNS=</varname> is true. If <varname>DNS=
1918 </varname> is empty, DNS servers are read from the
1919 <literal>[Network]</literal> section. If the
1920 <literal>[Network]</literal> section does not contain any DNS servers
1921 either, DNS servers from the uplink with the highest priority default
1922 route are used. When <varname>EmitDNS=</varname> is false, no DNS server
1923 information is sent in Router Advertisement messages.
1924 <varname>EmitDNS=</varname> defaults to true.
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1925 </para></listitem>
1926 </varlistentry>
1927
760021c0 1928 <varlistentry>
4cb8478c 1929 <term><varname>EmitDomains=</varname></term>
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1930 <term><varname>Domains=</varname></term>
1931
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1932 <listitem><para>A list of DNS search domains distributed via Router
1933 Advertisement messages when <varname>EmitDomains=</varname> is true. If
1934 <varname>Domains=</varname> is empty, DNS search domains are read from the
1935 <literal>[Network]</literal> section. If the <literal>[Network]</literal>
1936 section does not contain any DNS search domains either, DNS search
1937 domains from the uplink with the highest priority default route are
1938 used. When <varname>EmitDomains=</varname> is false, no DNS search domain
1939 information is sent in Router Advertisement messages.
1940 <varname>EmitDomains=</varname> defaults to true.
1941 </para></listitem>
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1942 </varlistentry>
1943
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1944 <varlistentry>
1945 <term><varname>DNSLifetimeSec=</varname></term>
1946
1947 <listitem><para>Lifetime in seconds for the DNS server addresses listed
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1948 in <varname>DNS=</varname> and search domains listed in
1949 <varname>Domains=</varname>.</para></listitem>
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1950 </varlistentry>
1951
1952 </variablelist>
1953 </refsect1>
1954
203d4df5 1955 <refsect1>
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1956 <title>[IPv6Prefix] Section Options</title>
1957 <para>One or more <literal>[IPv6Prefix]</literal> sections contain the IPv6
1958 prefixes that are announced via Router Advertisements. See
1959 <ulink url="https://tools.ietf.org/html/rfc4861">RFC 4861</ulink>
1960 for further details.</para>
1961
1962 <variablelist class='network-directives'>
1963
1964 <varlistentry>
1965 <term><varname>AddressAutoconfiguration=</varname></term>
1966 <term><varname>OnLink=</varname></term>
1967
9b6ffef3 1968 <listitem><para>Takes a boolean to specify whether IPv6 addresses can be
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1969 autoconfigured with this prefix and whether the prefix can be used for
1970 onlink determination. Both settings default to <literal>true</literal>
1971 in order to ease configuration.
1972 </para></listitem>
1973 </varlistentry>
1974
1975 <varlistentry>
1976 <term><varname>Prefix=</varname></term>
1977
1978 <listitem><para>The IPv6 prefix that is to be distributed to hosts.
1979 Similarly to configuring static IPv6 addresses, the setting is
1980 configured as an IPv6 prefix and its prefix length, separated by a
1981 <literal>/</literal> character. Use multiple
1982 <literal>[IPv6Prefix]</literal> sections to configure multiple IPv6
1983 prefixes since prefix lifetimes, address autoconfiguration and onlink
1984 status may differ from one prefix to another.</para></listitem>
1985 </varlistentry>
1986
1987 <varlistentry>
1988 <term><varname>PreferredLifetimeSec=</varname></term>
1989 <term><varname>ValidLifetimeSec=</varname></term>
1990
1991 <listitem><para>Preferred and valid lifetimes for the prefix measured in
1992 seconds. <varname>PreferredLifetimeSec=</varname> defaults to 604800
1993 seconds (one week) and <varname>ValidLifetimeSec=</varname> defaults
1994 to 2592000 seconds (30 days).</para></listitem>
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1995 </varlistentry>
1996
1997 </variablelist>
1998 </refsect1>
1999
2000 <refsect1>
2001 <title>[IPv6RoutePrefix] Section Options</title>
2002 <para>One or more <literal>[IPv6RoutePrefix]</literal> sections contain the IPv6
2003 prefix routes that are announced via Router Advertisements. See
2004 <ulink url="https://tools.ietf.org/html/rfc4191">RFC 4191</ulink>
2005 for further details.</para>
2006
2007 <variablelist class='network-directives'>
2008
2009 <varlistentry>
2010 <term><varname>Route=</varname></term>
2011
2012 <listitem><para>The IPv6 route that is to be distributed to hosts.
2013 Similarly to configuring static IPv6 routes, the setting is
2014 configured as an IPv6 prefix routes and its prefix route length,
2015 separated by a<literal>/</literal> character. Use multiple
2016 <literal>[IPv6PrefixRoutes]</literal> sections to configure multiple IPv6
2017 prefix routes.</para></listitem>
2018 </varlistentry>
2019
2020 <varlistentry>
2021 <term><varname>LifetimeSec=</varname></term>
2022
2023 <listitem><para>Lifetime for the route prefix measured in
2024 seconds. <varname>LifetimeSec=</varname> defaults to 604800 seconds (one week).
2025 </para></listitem>
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2026 </varlistentry>
2027
2028 </variablelist>
2029 </refsect1>
2030
2031 <refsect1>
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2032 <title>[Bridge] Section Options</title>
2033 <para>The <literal>[Bridge]</literal> section accepts the
2034 following keys.</para>
2035 <variablelist class='network-directives'>
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2036 <varlistentry>
2037 <term><varname>UnicastFlood=</varname></term>
2038 <listitem>
9b6ffef3 2039 <para>Takes a boolean. Controls whether the bridge should flood
072f9e4a 2040 traffic for which an FDB entry is missing and the destination
025314d9 2041 is unknown through this port. When unset, the kernel's default will be used.
47c7dfe2 2042 </para>
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2043 </listitem>
2044 </varlistentry>
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TJ
2045 <varlistentry>
2046 <term><varname>MulticastFlood=</varname></term>
2047 <listitem>
2048 <para>Takes a boolean. Controls whether the bridge should flood
2049 traffic for which an MDB entry is missing and the destination
2050 is unknown through this port. When unset, the kernel's default will be used.
2051 </para>
2052 </listitem>
2053 </varlistentry>
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2054 <varlistentry>
2055 <term><varname>MulticastToUnicast=</varname></term>
2056 <listitem>
2057 <para>Takes a boolean. Multicast to unicast works on top of the multicast snooping feature of
2058 the bridge. Which means unicast copies are only delivered to hosts which are interested in it.
2059 When unset, the kernel's default will be used.
2060 </para>
2061 </listitem>
2062 </varlistentry>
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2063 <varlistentry>
2064 <term><varname>NeighborSuppression=</varname></term>
2065 <listitem>
2066 <para>Takes a boolean. Configures whether ARP and ND neighbor suppression is enabled for
2067 this port. When unset, the kernel's default will be used.
2068 </para>
2069 </listitem>
2070 </varlistentry>
2071 <varlistentry>
2072 <term><varname>Learning=</varname></term>
2073 <listitem>
2074 <para>Takes a boolean. Configures whether MAC address learning is enabled for
2075 this port. When unset, the kernel's default will be used.
2076 </para>
2077 </listitem>
2078 </varlistentry>
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2079 <varlistentry>
2080 <term><varname>HairPin=</varname></term>
2081 <listitem>
9b6ffef3 2082 <para>Takes a boolean. Configures whether traffic may be sent back
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2083 out of the port on which it was received. When this flag is false, and the bridge
2084 will not forward traffic back out of the receiving port.
2085 When unset, the kernel's default will be used.</para>
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SS
2086 </listitem>
2087 </varlistentry>
2088 <varlistentry>
84c34096 2089 <term><varname>UseBPDU=</varname></term>
165c41a9 2090 <listitem>
9b6ffef3 2091 <para>Takes a boolean. Configures whether STP Bridge Protocol Data Units will be
025314d9 2092 processed by the bridge port. When unset, the kernel's default will be used.</para>
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SS
2093 </listitem>
2094 </varlistentry>
2095 <varlistentry>
2096 <term><varname>FastLeave=</varname></term>
2097 <listitem>
9b6ffef3 2098 <para>Takes a boolean. This flag allows the bridge to immediately stop multicast
a8eaaee7 2099 traffic on a port that receives an IGMP Leave message. It is only used with
025314d9 2100 IGMP snooping if enabled on the bridge. When unset, the kernel's default will be used.</para>
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2101 </listitem>
2102 </varlistentry>
2103 <varlistentry>
23da66bb 2104 <term><varname>AllowPortToBeRoot=</varname></term>
165c41a9 2105 <listitem>
9b6ffef3 2106 <para>Takes a boolean. Configures whether a given port is allowed to
47c7dfe2 2107 become a root port. Only used when STP is enabled on the bridge.
025314d9 2108 When unset, the kernel's default will be used.</para>
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2109 </listitem>
2110 </varlistentry>
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2111 <varlistentry>
2112 <term><varname>ProxyARP=</varname></term>
2113 <listitem>
2114 <para>Takes a boolean. Configures whether proxy ARP to be enabled on this port.
2115 When unset, the kernel's default will be used.</para>
2116 </listitem>
2117 </varlistentry>
2118 <varlistentry>
2119 <term><varname>ProxyARPWiFi=</varname></term>
2120 <listitem>
2121 <para>Takes a boolean. Configures whether proxy ARP to be enabled on this port
2122 which meets extended requirements by IEEE 802.11 and Hotspot 2.0 specifications.
2123 When unset, the kernel's default will be used.</para>
2124 </listitem>
2125 </varlistentry>
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2126 <varlistentry>
2127 <term><varname>MulticastRouter=</varname></term>
2128 <listitem>
2129 <para>Configures this port for having multicast routers attached. A port with a multicast
2130 router will receive all multicast traffic. Takes one of <literal>no</literal>
2131 to disable multicast routers on this port, <literal>query</literal> to let the system detect
2132 the presence of routers, <literal>permanent</literal> to permanently enable multicast traffic
2133 forwarding on this port, or <literal>temporary</literal> to enable multicast routers temporarily
2134 on this port, not depending on incoming queries. When unset, the kernel's default will be used.</para>
2135 </listitem>
2136 </varlistentry>
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2137 <varlistentry>
2138 <term><varname>Cost=</varname></term>
2139 <listitem>
47c7dfe2 2140 <para>Sets the "cost" of sending packets of this interface.
a8eaaee7 2141 Each port in a bridge may have a different speed and the cost
798d3a52 2142 is used to decide which link to use. Faster interfaces
785889e5 2143 should have lower costs. It is an integer value between 1 and
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DJL
2144 65535.</para>
2145 </listitem>
2146 </varlistentry>
2147 <varlistentry>
2148 <term><varname>Priority=</varname></term>
2149 <listitem>
2150 <para>Sets the "priority" of sending packets on this interface.
2151 Each port in a bridge may have a different priority which is used
2152 to decide which link to use. Lower value means higher priority.
785889e5 2153 It is an integer value between 0 to 63. Networkd does not set any
b56be296 2154 default, meaning the kernel default value of 32 is used.</para>
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2155 </listitem>
2156 </varlistentry>
2157 </variablelist>
2158 </refsect1>
798d3a52
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2159 <refsect1>
2160 <title>[BridgeFDB] Section Options</title>
2161 <para>The <literal>[BridgeFDB]</literal> section manages the
2162 forwarding database table of a port and accepts the following
2163 keys. Specify several <literal>[BridgeFDB]</literal> sections to
2164 configure several static MAC table entries.</para>
2165
2166 <variablelist class='network-directives'>
2167 <varlistentry>
2168 <term><varname>MACAddress=</varname></term>
2169 <listitem>
2170 <para>As in the <literal>[Network]</literal> section. This
2171 key is mandatory.</para>
2172 </listitem>
2173 </varlistentry>
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2174 <varlistentry>
2175 <term><varname>Destination=</varname></term>
2176 <listitem>
2177 <para>Takes an IP address of the destination VXLAN tunnel endpoint.</para>
2178 </listitem>
2179 </varlistentry>
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2180 <varlistentry>
2181 <term><varname>VLANId=</varname></term>
2182 <listitem>
a8eaaee7 2183 <para>The VLAN ID for the new static MAC table entry. If
db9b9fb9 2184 omitted, no VLAN ID information is appended to the new static MAC
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2185 table entry.</para>
2186 </listitem>
2187 </varlistentry>
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2188 <varlistentry>
2189 <term><varname>VNI=</varname></term>
2190 <listitem>
2191 <para>The VXLAN Network Identifier (or VXLAN Segment ID) to use to connect to
2192 the remote VXLAN tunnel endpoint. Takes a number in the range 1-16777215.
2193 Defaults to unset.</para>
2194 </listitem>
2195 </varlistentry>
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2196 <varlistentry>
2197 <term><varname>AssociatedWith=</varname></term>
2198 <listitem>
2199 <para>Specifies where the address is associated with. Takes one of <literal>use</literal>,
2200 <literal>self</literal>, <literal>master</literal> or <literal>router</literal>.
2201 <literal>use</literal> means the address is in use. User space can use this option to
2202 indicate to the kernel that the fdb entry is in use. <literal>self</literal> means
2203 the address is associated with the port drivers fdb. Usually hardware. <literal>master</literal>
2204 means the address is associated with master devices fdb. <literal>router</literal> means
2205 the destination address is associated with a router. Note that it's valid if the referenced
2206 device is a VXLAN type device and has route shortcircuit enabled. Defaults to <literal>self</literal>.</para>
2207 </listitem>
2208 </varlistentry>
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2209 </variablelist>
2210 </refsect1>
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2211
2212 <refsect1>
2213 <title>[CAN] Section Options</title>
2214 <para>The <literal>[CAN]</literal> section manages the Controller Area Network (CAN bus) and accepts the
2215 following keys.</para>
2216 <variablelist class='network-directives'>
2217 <varlistentry>
2218 <term><varname>BitRate=</varname></term>
2219 <listitem>
2220 <para>The bitrate of CAN device in bits per second. The usual SI prefixes (K, M) with the base of 1000 can
2221 be used here.</para>
2222 </listitem>
2223 </varlistentry>
2224 <varlistentry>
2225 <term><varname>SamplePoint=</varname></term>
2226 <listitem>
2227 <para>Optional sample point in percent with one decimal (e.g. <literal>75%</literal>,
2228 <literal>87.5%</literal>) or permille (e.g. <literal>875‰</literal>).</para>
2229 </listitem>
2230 </varlistentry>
2231 <varlistentry>
2232 <term><varname>RestartSec=</varname></term>
2233 <listitem>
2234 <para>Automatic restart delay time. If set to a non-zero value, a restart of the CAN controller will be
2235 triggered automatically in case of a bus-off condition after the specified delay time. Subsecond delays can
2236 be specified using decimals (e.g. <literal>0.1s</literal>) or a <literal>ms</literal> or
2237 <literal>us</literal> postfix. Using <literal>infinity</literal> or <literal>0</literal> will turn the
2238 automatic restart off. By default automatic restart is disabled.</para>
2239 </listitem>
2240 </varlistentry>
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2241 <varlistentry>
2242 <term><varname>TripleSampling=</varname></term>
2243 <listitem>
2244 <para>Takes a boolean. When <literal>yes</literal>, three samples (instead of one) are used to determine
2245 the value of a received bit by majority rule. When unset, the kernel's default will be used.</para>
2246 </listitem>
2247 </varlistentry>
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2248 </variablelist>
2249 </refsect1>
2250
0f5bd7fe
SS
2251 <refsect1>
2252 <title>[TrafficControlQueueingDiscipline] Section Options</title>
2253 <para>The <literal>[TrafficControlQueueingDiscipline]</literal> section manages the Traffic control. It can be used
2254 to configure the kernel packet scheduler and simulate packet delay and loss for UDP or TCP applications,
2255 or limit the bandwidth usage of a particular service to simulate internet connections.</para>
2256
2257 <variablelist class='network-directives'>
2258 <varlistentry>
2259 <term><varname>Parent=</varname></term>
2260 <listitem>
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2261 <para>Specifies the parent Queueing Discipline (qdisc). Takes one of <literal>root</literal>,
2262 <literal>clsact</literal> or <literal>ingress</literal>. Defaults to <literal>root</literal>.</para>
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2263 </listitem>
2264 </varlistentry>
2265
2266 <varlistentry>
2267 <term><varname>NetworkEmulatorDelaySec=</varname></term>
2268 <listitem>
2269 <para>Specifies the fixed amount of delay to be added to all packets going out of the
2270 interface. Defaults to unset.</para>
2271 </listitem>
2272 </varlistentry>
2273
2274 <varlistentry>
2275 <term><varname>NetworkEmulatorDelayJitterSec=</varname></term>
2276 <listitem>
2277 <para>Specifies the chosen delay to be added to the packets outgoing to the network
2278 interface. Defaults to unset.</para>
2279 </listitem>
2280 </varlistentry>
2281
2282 <varlistentry>
2283 <term><varname>NetworkEmulatorPacketLimit=</varname></term>
2284 <listitem>
2285 <para>Specifies the maximum number of packets the qdisc may hold queued at a time.
2286 An unsigned integer ranges 0 to 4294967294. Defaults to 1000.</para>
2287 </listitem>
2288 </varlistentry>
2289
2290 <varlistentry>
2291 <term><varname>NetworkEmulatorLossRate=</varname></term>
2292 <listitem>
2293 <para>Specifies an independent loss probability to be added to the packets outgoing from the
2294 network interface. Takes a percentage value, suffixed with "%". Defaults to unset.</para>
2295 </listitem>
2296 </varlistentry>
2297
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2298 <varlistentry>
2299 <term><varname>NetworkEmulatorDuplicateRate=</varname></term>
2300 <listitem>
2301 <para>Specifies that the chosen percent of packets is duplicated before queuing them.
2302 Takes a percentage value, suffixed with "%". Defaults to unset.</para>
2303 </listitem>
2304 </varlistentry>
2305
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2306 <varlistentry>
2307 <term><varname>TokenBufferFilterLatencySec=</varname></term>
2308 <listitem>
2309 <para>Specifies the latency parameter, which specifies the maximum amount of time a
2310 packet can sit in the Token Buffer Filter (TBF). Defaults to unset.</para>
2311 </listitem>
2312 </varlistentry>
2313
dcfc23ae
YW
2314 <varlistentry>
2315 <term><varname>TokenBufferFilterLimitSize=</varname></term>
2316 <listitem>
2317 <para>Takes the number of bytes that can be queued waiting for tokens to become available.
2318 When the size is suffixed with K, M, or G, it is parsed as Kilobytes, Megabytes, or Gigabytes,
2319 respectively, to the base of 1000. Defaults to unset.</para>
2320 </listitem>
2321 </varlistentry>
2322
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2323 <varlistentry>
2324 <term><varname>TokenBufferFilterBurst=</varname></term>
2325 <listitem>
2326 <para>Specifies the size of the bucket. This is the maximum amount of bytes that tokens
2327 can be available for instantaneous transfer. When the size is suffixed with K, M, or G, it is
2328 parsed as Kilobytes, Megabytes, or Gigabytes, respectively, to the base of 1000. Defaults to
2329 unset.</para>
2330 </listitem>
2331 </varlistentry>
2332
2333 <varlistentry>
2334 <term><varname>TokenBufferFilterRate=</varname></term>
2335 <listitem>
2336 <para>Specifies the device specific bandwidth. When suffixed with K, M, or G, the specified
2337 bandwidth is parsed as Kilobytes, Megabytes, or Gigabytes, respectively, to the base of 1000.
2338 Defaults to unset.</para>
2339 </listitem>
2340 </varlistentry>
2341
dcfc23ae
YW
2342 <varlistentry>
2343 <term><varname>TokenBufferFilterMPUBytes=</varname></term>
2344 <listitem>
2345 <para>The Minimum Packet Unit (MPU) determines the minimal token usage (specified in bytes)
2346 for a packet. When suffixed with K, M, or G, the specified size is parsed as Kilobytes,
2347 Megabytes, or Gigabytes, respectively, to the base of 1000. Defaults to zero.</para>
2348 </listitem>
2349 </varlistentry>
2350
2351 <varlistentry>
2352 <term><varname>TokenBufferFilterPeakRate=</varname></term>
2353 <listitem>
2354 <para>Takes the maximum depletion rate of the bucket. When suffixed with K, M, or G, the
2355 specified size is parsed as Kilobytes, Megabytes, or Gigabytes, respectively, to the base of
2356 1000. Defaults to unset.</para>
2357 </listitem>
2358 </varlistentry>
2359
2360 <varlistentry>
2361 <term><varname>TokenBufferFilterMTUBytes=</varname></term>
2362 <listitem>
2363 <para>Specifies the size of the peakrate bucket. When suffixed with K, M, or G, the specified
2364 size is parsed as Kilobytes, Megabytes, or Gigabytes, respectively, to the base of 1000.
2365 Defaults to unset.</para>
2366 </listitem>
2367 </varlistentry>
2368
9942b710
SS
2369 <varlistentry>
2370 <term><varname>StochasticFairnessQueueingPerturbPeriodSec=</varname></term>
2371 <listitem>
2372 <para>Specifies the interval in seconds for queue algorithm perturbation. Defaults to unset.</para>
2373 </listitem>
2374 </varlistentry>
2375
a9a5d632
SS
2376 <varlistentry>
2377 <term><varname>ControlledDelayPacketLimit=</varname></term>
2378 <listitem>
2379 <para>Specifies the hard lmit on the queue size in number of packets. When this limit is reached, incoming packets are
2380 dropped. An unsigned integer ranges 0 to 4294967294. Defaults to unset and kernel's default is used.</para>
2381 </listitem>
2382 </varlistentry>
2383
b078e528
YW
2384 <varlistentry>
2385 <term><varname>ControlledDelayTargetSec=</varname></term>
2386 <listitem>
2387 <para>Takes a timespan. Specifies the acceptable minimum standing/persistent queue delay.
2388 Defaults to unset and kernel's default is used.</para>
2389 </listitem>
2390 </varlistentry>
2391
2392 <varlistentry>
2393 <term><varname>ControlledDelayIntervalSec=</varname></term>
2394 <listitem>
2395 <para>Takes a timespan. This is used to ensure that the measured minimum delay does not
2396 become too stale. Defaults to unset and kernel's default is used.</para>
2397 </listitem>
2398 </varlistentry>
2399
2400 <varlistentry>
2401 <term><varname>ControlledDelayECN=</varname></term>
2402 <listitem>
2403 <para>Takes a boolean. This can be used to mark packets instead of dropping them. Defaults to
2404 unset and kernel's default is used.</para>
2405 </listitem>
2406 </varlistentry>
2407
2408 <varlistentry>
2409 <term><varname>ControlledDelayCEThresholdSec=</varname></term>
2410 <listitem>
2411 <para>Takes a timespan. This sets a threshold above which all packets are marked with ECN
2412 Congestion Experienced (CE). Defaults to unset and kernel's default is used.</para>
2413 </listitem>
2414 </varlistentry>
2415
4e5ef149
SS
2416 <varlistentry>
2417 <term><varname>FairQueuingControlledDelayPacketLimit=</varname></term>
2418 <listitem>
2419 <para>Specifies the hard limit on the real queue size. When this limit is reached, incoming packets are
2420 dropped. Defaults to unset and kernel's default is used.</para>
2421 </listitem>
2422 </varlistentry>
2423
ac810b75
YW
2424 <varlistentry>
2425 <term><varname>FairQueuingControlledDelayMemoryLimit=</varname></term>
2426 <listitem>
2427 <para>Specifies the limit on the total number of bytes that can be queued in this FQ-CoDel instance.
2428 When suffixed with K, M, or G, the specified size is parsed as Kilobytes, Megabytes, or Gigabytes,
2429 respectively, to the base of 1024. Defaults to unset and kernel's default is used.</para>
2430 </listitem>
2431 </varlistentry>
2432
2433 <varlistentry>
2434 <term><varname>FairQueuingControlledDelayFlows=</varname></term>
2435 <listitem>
2436 <para>Specifies the number of flows into which the incoming packets are classified.
2437 Defaults to unset and kernel's default is used.</para>
2438 </listitem>
2439 </varlistentry>
2440
2441 <varlistentry>
2442 <term><varname>FairQueuingControlledDelayTargetSec=</varname></term>
2443 <listitem>
2444 <para>Takes a timespan. Specifies the acceptable minimum standing/persistent queue delay.
2445 Defaults to unset and kernel's default is used.</para>
2446 </listitem>
2447 </varlistentry>
2448
2449 <varlistentry>
2450 <term><varname>FairQueuingControlledDelayIntervalSec=</varname></term>
2451 <listitem>
2452 <para>Takes a timespan. This is used to ensure that the measured minimum delay does not
2453 become too stale. Defaults to unset and kernel's default is used.</para>
2454 </listitem>
2455 </varlistentry>
2456
2457 <varlistentry>
2458 <term><varname>FairQueuingControlledDelayQuantum=</varname></term>
2459 <listitem>
2460 <para>Specifies the number of bytes used as 'deficit' in the fair queuing algorithmtimespan.
2461 When suffixed with K, M, or G, the specified size is parsed as Kilobytes, Megabytes, or Gigabytes,
2462 respectively, to the base of 1024. Defaults to unset and kernel's default is used.</para>
2463 </listitem>
2464 </varlistentry>
2465
2466 <varlistentry>
2467 <term><varname>FairQueuingControlledDelayECN=</varname></term>
2468 <listitem>
2469 <para>Takes a boolean. This can be used to mark packets instead of dropping them. Defaults to
2470 unset and kernel's default is used.</para>
2471 </listitem>
2472 </varlistentry>
2473
2474 <varlistentry>
2475 <term><varname>FairQueuingControlledDelayCEThresholdSec=</varname></term>
2476 <listitem>
2477 <para>Takes a timespan. This sets a threshold above which all packets are marked with ECN
2478 Congestion Experienced (CE). Defaults to unset and kernel's default is used.</para>
2479 </listitem>
2480 </varlistentry>
2481
7234b915
SS
2482 <varlistentry>
2483 <term><varname>FairQueueTrafficPolicingPacketLimit=</varname></term>
2484 <listitem>
2485 <para>Specifies the hard limit on the real queue size. When this limit is reached, incoming packets are
2486 dropped. Defaults to unset and kernel's default is used.</para>
2487 </listitem>
2488 </varlistentry>
2489
e83562e5
YW
2490 <varlistentry>
2491 <term><varname>FairQueueTrafficPolicingFlowLimit=</varname></term>
2492 <listitem>
2493 <para>Specifies the hard limit on the maximum number of packets queued per flow. Defaults to
2494 unset and kernel's default is used.</para>
2495 </listitem>
2496 </varlistentry>
2497
2498 <varlistentry>
2499 <term><varname>FairQueueTrafficPolicingQuantum=</varname></term>
2500 <listitem>
2501 <para>Specifies the credit per dequeue RR round, i.e. the amount of bytes a flow is allowed
2502 to dequeue at once. When suffixed with K, M, or G, the specified size is parsed as Kilobytes,
2503 Megabytes, or Gigabytes, respectively, to the base of 1024. Defaults to unset and kernel's
2504 default is used.</para>
2505 </listitem>
2506 </varlistentry>
2507
2508 <varlistentry>
2509 <term><varname>FairQueueTrafficPolicingInitialQuantum=</varname></term>
2510 <listitem>
2511 <para>Specifies the initial sending rate credit, i.e. the amount of bytes a new flow is
2512 allowed to dequeue initially. When suffixed with K, M, or G, the specified size is parsed as
2513 Kilobytes, Megabytes, or Gigabytes, respectively, to the base of 1024. Defaults to unset and
2514 kernel's default is used.</para>
2515 </listitem>
2516 </varlistentry>
2517
2518 <varlistentry>
2519 <term><varname>FairQueueTrafficPolicingMaximumRate=</varname></term>
2520 <listitem>
2521 <para>Specifies the maximum sending rate of a flow. When suffixed with K, M, or G, the
2522 specified size is parsed as Kilobytes, Megabytes, or Gigabytes, respectively, to the base of
2523 1000. Defaults to unset and kernel's default is used.</para>
2524 </listitem>
2525 </varlistentry>
2526
2527 <varlistentry>
2528 <term><varname>FairQueueTrafficPolicingBuckets=</varname></term>
2529 <listitem>
2530 <para>Specifies the size of the hash table used for flow lookups. Defaults to unset and
2531 kernel's default is used.</para>
2532 </listitem>
2533 </varlistentry>
2534
2535 <varlistentry>
2536 <term><varname>FairQueueTrafficPolicingOrphanMask=</varname></term>
2537 <listitem>
2538 <para>Takes an unsigned integer. For packets not owned by a socket, fq is able to mask a part
2539 of hash and reduce number of buckets associated with the traffic. Defaults to unset and
2540 kernel's default is used.</para>
2541 </listitem>
2542 </varlistentry>
2543
2544 <varlistentry>
2545 <term><varname>FairQueueTrafficPolicingPacing=</varname></term>
2546 <listitem>
2547 <para>Takes a boolean, and enables or disables flow pacing. Defaults to unset and kernel's
2548 default is used.</para>
2549 </listitem>
2550 </varlistentry>
2551
2552 <varlistentry>
2553 <term><varname>FairQueueTrafficPolicingCEThresholdSec=</varname></term>
2554 <listitem>
2555 <para>Takes a timespan. This sets a threshold above which all packets are marked with ECN
2556 Congestion Experienced (CE). Defaults to unset and kernel's default is used.</para>
2557 </listitem>
2558 </varlistentry>
2559
0f5bd7fe
SS
2560 </variablelist>
2561 </refsect1>
2562
13b498f9
TJ
2563 <refsect1>
2564 <title>[BridgeVLAN] Section Options</title>
2565 <para>The <literal>[BridgeVLAN]</literal> section manages the VLAN ID configuration of a bridge port and accepts
2566 the following keys. Specify several <literal>[BridgeVLAN]</literal> sections to configure several VLAN entries.
2567 The <varname>VLANFiltering=</varname> option has to be enabled, see <literal>[Bridge]</literal> section in
2568 <citerefentry><refentrytitle>systemd.netdev</refentrytitle><manvolnum>5</manvolnum></citerefentry>.</para>
2569
2570 <variablelist class='network-directives'>
2571 <varlistentry>
2572 <term><varname>VLAN=</varname></term>
2573 <listitem>
2574 <para>The VLAN ID allowed on the port. This can be either a single ID or a range M-N. VLAN IDs are valid
2575 from 1 to 4094.</para>
2576 </listitem>
2577 </varlistentry>
2578 <varlistentry>
2579 <term><varname>EgressUntagged=</varname></term>
2580 <listitem>
2581 <para>The VLAN ID specified here will be used to untag frames on egress. Configuring
2582 <varname>EgressUntagged=</varname> implicates the use of <varname>VLAN=</varname> above and will enable the
2583 VLAN ID for ingress as well. This can be either a single ID or a range M-N.</para>
2584 </listitem>
2585 </varlistentry>
2586 <varlistentry>
2587 <term><varname>PVID=</varname></term>
2588 <listitem>
2589 <para>The Port VLAN ID specified here is assigned to all untagged frames at ingress.
2590 <varname>PVID=</varname> can be used only once. Configuring <varname>PVID=</varname> implicates the use of
2591 <varname>VLAN=</varname> above and will enable the VLAN ID for ingress as well.</para>
2592 </listitem>
2593 </varlistentry>
2594 </variablelist>
2595 </refsect1>
798d3a52
ZJS
2596
2597 <refsect1>
9e35b3de 2598 <title>Examples</title>
798d3a52 2599 <example>
9e35b3de 2600 <title>Static network configuration</title>
798d3a52 2601
9e35b3de
ZJS
2602 <programlisting># /etc/systemd/network/50-static.network
2603[Match]
eac684ef
TG
2604Name=enp2s0
2605
2606[Network]
2607Address=192.168.0.15/24
2608Gateway=192.168.0.1</programlisting>
9e35b3de
ZJS
2609
2610 <para>This brings interface <literal>enp2s0</literal> up with a static address. The
2611 specified gateway will be used for a default route.</para>
798d3a52 2612 </example>
eac684ef 2613
798d3a52 2614 <example>
9e35b3de 2615 <title>DHCP on ethernet links</title>
eac684ef 2616
9e35b3de
ZJS
2617 <programlisting># /etc/systemd/network/80-dhcp.network
2618[Match]
eac684ef
TG
2619Name=en*
2620
2621[Network]
9c8ca3f7 2622DHCP=yes</programlisting>
9e35b3de
ZJS
2623
2624 <para>This will enable DHCPv4 and DHCPv6 on all interfaces with names starting with
2625 <literal>en</literal> (i.e. ethernet interfaces).</para>
798d3a52 2626 </example>
eac684ef 2627
4c94a4c2 2628 <example>
2629 <title>IPv6 Prefix Delegation</title>
2630
2631 <programlisting># /etc/systemd/network/55-ipv6-pd-upstream.network
2632[Match]
2633Name=enp1s0
2634
2635[Network]
2636DHCP=ipv6</programlisting>
2637
2638 <programlisting># /etc/systemd/network/56-ipv6-pd-downstream.network
2639[Match]
2640Name=enp2s0
2641
2642[Network]
2643IPv6PrefixDelegation=dhcpv6</programlisting>
2644
2645 <para>This will enable IPv6 PD on the interface enp1s0 as an upstream interface where the
2646 DHCPv6 client is running and enp2s0 as a downstream interface where the prefix is delegated to.</para>
2647 </example>
2648
798d3a52 2649 <example>
9e35b3de 2650 <title>A bridge with two enslaved links</title>
f47c5c47 2651
9e35b3de
ZJS
2652 <programlisting># /etc/systemd/network/25-bridge-static.network
2653[Match]
f47c5c47 2654Name=bridge0
2655
2656[Network]
2657Address=192.168.0.15/24
2658Gateway=192.168.0.1
2659DNS=192.168.0.1</programlisting>
f47c5c47 2660
9e35b3de
ZJS
2661 <programlisting># /etc/systemd/network/25-bridge-slave-interface-1.network
2662[Match]
f47c5c47 2663Name=enp2s0
2664
2665[Network]
2666Bridge=bridge0</programlisting>
9e35b3de
ZJS
2667
2668 <programlisting># /etc/systemd/network/25-bridge-slave-interface-2.network
2669[Match]
2670Name=wlp3s0
2671
2672[Network]
2673Bridge=bridge0</programlisting>
2674
2675 <para>This creates a bridge and attaches devices <literal>enp2s0</literal> and
2676 <literal>wlp3s0</literal> to it. The bridge will have the specified static address
2677 and network assigned, and a default route via the specified gateway will be
2678 added. The specified DNS server will be added to the global list of DNS resolvers.
2679 </para>
13b498f9 2680 </example>
9e35b3de 2681
13b498f9 2682 <example>
9e35b3de 2683 <title></title>
13b498f9 2684
9e35b3de
ZJS
2685 <programlisting>
2686# /etc/systemd/network/20-bridge-slave-interface-vlan.network
2687[Match]
13b498f9
TJ
2688Name=enp2s0
2689
2690[Network]
2691Bridge=bridge0
2692
2693[BridgeVLAN]
2694VLAN=1-32
2695PVID=42
2696EgressUntagged=42
2697
2698[BridgeVLAN]
2699VLAN=100-200
2700
2701[BridgeVLAN]
2702EgressUntagged=300-400</programlisting>
0a8a0fad 2703
9e35b3de
ZJS
2704 <para>This overrides the configuration specified in the previous example for the
2705 interface <literal>enp2s0</literal>, and enables VLAN on that bridge port. VLAN IDs
2706 1-32, 42, 100-400 will be allowed. Packets tagged with VLAN IDs 42, 300-400 will be
2707 untagged when they leave on this interface. Untagged packets which arrive on this
2708 interface will be assigned VLAN ID 42.</para>
798d3a52 2709 </example>
0a8a0fad 2710
798d3a52 2711 <example>
9e35b3de 2712 <title>Various tunnels</title>
0a8a0fad 2713
9e35b3de
ZJS
2714 <programlisting>/etc/systemd/network/25-tunnels.network
2715[Match]
2716Name=ens1
0a8a0fad
TG
2717
2718[Network]
9e35b3de
ZJS
2719Tunnel=ipip-tun
2720Tunnel=sit-tun
2721Tunnel=gre-tun
2722Tunnel=vti-tun
2723 </programlisting>
2724
2725 <programlisting>/etc/systemd/network/25-tunnel-ipip.netdev
2726[NetDev]
2727Name=ipip-tun
2728Kind=ipip
2729 </programlisting>
2730
2731 <programlisting>/etc/systemd/network/25-tunnel-sit.netdev
2732[NetDev]
2733Name=sit-tun
2734Kind=sit
2735 </programlisting>
2736
2737 <programlisting>/etc/systemd/network/25-tunnel-gre.netdev
2738[NetDev]
2739Name=gre-tun
2740Kind=gre
2741 </programlisting>
2742
2743 <programlisting>/etc/systemd/network/25-tunnel-vti.netdev
2744[NetDev]
2745Name=vti-tun
2746Kind=vti
2747 </programlisting>
2748
2749 <para>This will bring interface <literal>ens1</literal> up and create an IPIP tunnel,
2750 a SIT tunnel, a GRE tunnel, and a VTI tunnel using it.</para>
798d3a52 2751 </example>
0a8a0fad 2752
798d3a52 2753 <example>
9e35b3de 2754 <title>A bond device</title>
0a8a0fad 2755
9e35b3de
ZJS
2756 <programlisting># /etc/systemd/network/30-bond1.network
2757[Match]
2758Name=bond1
0a8a0fad
TG
2759
2760[Network]
9e35b3de
ZJS
2761DHCP=ipv6
2762</programlisting>
0a8a0fad 2763
9e35b3de
ZJS
2764 <programlisting># /etc/systemd/network/30-bond1.netdev
2765[NetDev]
2766Name=bond1
2767Kind=bond
2768</programlisting>
0a8a0fad 2769
301a21a8 2770 <programlisting># /etc/systemd/network/30-bond1-dev1.network
9e35b3de
ZJS
2771[Match]
2772MACAddress=52:54:00:e9:64:41
0a8a0fad
TG
2773
2774[Network]
9e35b3de
ZJS
2775Bond=bond1
2776</programlisting>
d94facdc 2777
301a21a8 2778 <programlisting># /etc/systemd/network/30-bond1-dev2.network
9e35b3de
ZJS
2779[Match]
2780MACAddress=52:54:00:e9:64:42
d94facdc
MH
2781
2782[Network]
9e35b3de 2783Bond=bond1
6cb955c6 2784</programlisting>
9e35b3de
ZJS
2785
2786 <para>This will create a bond device <literal>bond1</literal> and enslave the two
2787 devices with MAC addresses 52:54:00:e9:64:41 and 52:54:00:e9:64:42 to it. IPv6 DHCP
2788 will be used to acquire an address.</para>
6cb955c6
AR
2789 </example>
2790
2791 <example>
9e35b3de
ZJS
2792 <title>Virtual Routing and Forwarding (VRF)</title>
2793 <para>Add the <literal>bond1</literal> interface to the VRF master interface
2794 <literal>vrf1</literal>. This will redirect routes generated on this interface to be
11d38b90
AR
2795 within the routing table defined during VRF creation. For kernels before 4.8 traffic
2796 won't be redirected towards the VRFs routing table unless specific ip-rules are added.
2797 </para>
9e35b3de
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2798 <programlisting># /etc/systemd/network/25-vrf.network
2799[Match]
6cb955c6
AR
2800Name=bond1
2801
2802[Network]
9e35b3de 2803VRF=vrf1
d94facdc
MH
2804</programlisting>
2805 </example>
2806
42125eda
SS
2807 <example>
2808 <title>MacVTap</title>
2809 <para>This brings up a network interface <literal>macvtap-test</literal>
2810 and attaches it to <literal>enp0s25</literal>.</para>
83ddf5d3 2811 <programlisting># /usr/lib/systemd/network/25-macvtap.network
42125eda
SS
2812[Match]
2813Name=enp0s25
2814
2815[Network]
2816MACVTAP=macvtap-test
2817</programlisting>
2818 </example>
98d20a17 2819
2820 <example>
2821 <title>A Xfrm interface with physical underlying device.</title>
2822
2823 <programlisting># /etc/systemd/network/27-xfrm.netdev
2824[NetDev]
2825Name=xfrm0
2826
2827[Xfrm]
2828InterfaceId=7</programlisting>
2829
2830 <programlisting># /etc/systemd/network/27-eth0.network
2831[Match]
2832Name=eth0
2833
2834[Network]
2835Xfrm=xfrm0</programlisting>
2836
2837 <para>This creates a <literal>xfrm0</literal> interface and binds it to the <literal>eth0</literal> device.
2838 This allows hardware based ipsec offloading to the <literal>eth0</literal> nic.
2839 If offloading is not needed, xfrm interfaces can be assigned to the <literal>lo</literal> device.
2840 </para>
2841 </example>
798d3a52
ZJS
2842 </refsect1>
2843
2844 <refsect1>
2845 <title>See Also</title>
2846 <para>
2847 <citerefentry><refentrytitle>systemd</refentrytitle><manvolnum>1</manvolnum></citerefentry>,
f41b446a 2848 <citerefentry><refentrytitle>systemd-networkd.service</refentrytitle><manvolnum>8</manvolnum></citerefentry>,
798d3a52 2849 <citerefentry><refentrytitle>systemd.link</refentrytitle><manvolnum>5</manvolnum></citerefentry>,
aaa297d4
LP
2850 <citerefentry><refentrytitle>systemd.netdev</refentrytitle><manvolnum>5</manvolnum></citerefentry>,
2851 <citerefentry><refentrytitle>systemd-resolved.service</refentrytitle><manvolnum>8</manvolnum></citerefentry>
798d3a52
ZJS
2852 </para>
2853 </refsect1>
eac684ef
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2854
2855</refentry>