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Dmitry Shmidt8d520ff2011-05-09 14:06:53 -07001##### hostapd configuration file ##############################################
2# Empty lines and lines starting with # are ignored
3
4# AP netdevice name (without 'ap' postfix, i.e., wlan0 uses wlan0ap for
Dmitry Shmidt6c0da2b2015-01-05 13:08:17 -08005# management frames with the Host AP driver); wlan0 with many nl80211 drivers
Dmitry Shmidt8d520ff2011-05-09 14:06:53 -07006interface=wlan0
7
Dmitry Shmidt6c0da2b2015-01-05 13:08:17 -08008# In case of atheros and nl80211 driver interfaces, an additional
Dmitry Shmidt8d520ff2011-05-09 14:06:53 -07009# configuration parameter, bridge, may be used to notify hostapd if the
10# interface is included in a bridge. This parameter is not used with Host AP
11# driver. If the bridge parameter is not set, the drivers will automatically
12# figure out the bridge interface (assuming sysfs is enabled and mounted to
13# /sys) and this parameter may not be needed.
14#
15# For nl80211, this parameter can be used to request the AP interface to be
16# added to the bridge automatically (brctl may refuse to do this before hostapd
17# has been started to change the interface mode). If needed, the bridge
18# interface is also created.
19#bridge=br0
20
Dmitry Shmidt6c0da2b2015-01-05 13:08:17 -080021# Driver interface type (hostap/wired/none/nl80211/bsd);
Dmitry Shmidt8d520ff2011-05-09 14:06:53 -070022# default: hostap). nl80211 is used with all Linux mac80211 drivers.
23# Use driver=none if building hostapd as a standalone RADIUS server that does
24# not control any wireless/wired driver.
25# driver=hostap
26
Dmitry Shmidt6c0da2b2015-01-05 13:08:17 -080027# Driver interface parameters (mainly for development testing use)
28# driver_params=<params>
29
Dmitry Shmidt8d520ff2011-05-09 14:06:53 -070030# hostapd event logger configuration
31#
32# Two output method: syslog and stdout (only usable if not forking to
33# background).
34#
35# Module bitfield (ORed bitfield of modules that will be logged; -1 = all
36# modules):
37# bit 0 (1) = IEEE 802.11
38# bit 1 (2) = IEEE 802.1X
39# bit 2 (4) = RADIUS
40# bit 3 (8) = WPA
41# bit 4 (16) = driver interface
42# bit 5 (32) = IAPP
43# bit 6 (64) = MLME
44#
45# Levels (minimum value for logged events):
46# 0 = verbose debugging
47# 1 = debugging
48# 2 = informational messages
49# 3 = notification
50# 4 = warning
51#
52logger_syslog=-1
53logger_syslog_level=2
54logger_stdout=-1
55logger_stdout_level=2
56
Dmitry Shmidt8d520ff2011-05-09 14:06:53 -070057# Interface for separate control program. If this is specified, hostapd
58# will create this directory and a UNIX domain socket for listening to requests
59# from external programs (CLI/GUI, etc.) for status information and
60# configuration. The socket file will be named based on the interface name, so
61# multiple hostapd processes/interfaces can be run at the same time if more
62# than one interface is used.
63# /var/run/hostapd is the recommended directory for sockets and by default,
64# hostapd_cli will use it when trying to connect with hostapd.
65ctrl_interface=/var/run/hostapd
66
67# Access control for the control interface can be configured by setting the
68# directory to allow only members of a group to use sockets. This way, it is
69# possible to run hostapd as root (since it needs to change network
70# configuration and open raw sockets) and still allow GUI/CLI components to be
71# run as non-root users. However, since the control interface can be used to
72# change the network configuration, this access needs to be protected in many
73# cases. By default, hostapd is configured to use gid 0 (root). If you
74# want to allow non-root users to use the contron interface, add a new group
75# and change this value to match with that group. Add users that should have
76# control interface access to this group.
77#
78# This variable can be a group name or gid.
79#ctrl_interface_group=wheel
80ctrl_interface_group=0
81
82
83##### IEEE 802.11 related configuration #######################################
84
85# SSID to be used in IEEE 802.11 management frames
86ssid=test
Dmitry Shmidt61d9df32012-08-29 16:22:06 -070087# Alternative formats for configuring SSID
88# (double quoted string, hexdump, printf-escaped string)
89#ssid2="test"
90#ssid2=74657374
91#ssid2=P"hello\nthere"
Dmitry Shmidt8d520ff2011-05-09 14:06:53 -070092
Dmitry Shmidta54fa5f2013-01-15 13:53:35 -080093# UTF-8 SSID: Whether the SSID is to be interpreted using UTF-8 encoding
94#utf8_ssid=1
95
Dmitry Shmidt8d520ff2011-05-09 14:06:53 -070096# Country code (ISO/IEC 3166-1). Used to set regulatory domain.
97# Set as needed to indicate country in which device is operating.
98# This can limit available channels and transmit power.
99#country_code=US
100
101# Enable IEEE 802.11d. This advertises the country_code and the set of allowed
102# channels and transmit power levels based on the regulatory limits. The
103# country_code setting must be configured with the correct country for
104# IEEE 802.11d functions.
105# (default: 0 = disabled)
106#ieee80211d=1
107
Dmitry Shmidtea69e842013-05-13 14:52:28 -0700108# Enable IEEE 802.11h. This enables radar detection and DFS support if
109# available. DFS support is required on outdoor 5 GHz channels in most countries
110# of the world. This can be used only with ieee80211d=1.
111# (default: 0 = disabled)
112#ieee80211h=1
113
Dmitry Shmidtf21452a2014-02-26 10:55:25 -0800114# Add Power Constraint element to Beacon and Probe Response frames
115# This config option adds Power Constraint element when applicable and Country
116# element is added. Power Constraint element is required by Transmit Power
117# Control. This can be used only with ieee80211d=1.
118# Valid values are 0..255.
119#local_pwr_constraint=3
120
121# Set Spectrum Management subfield in the Capability Information field.
122# This config option forces the Spectrum Management bit to be set. When this
123# option is not set, the value of the Spectrum Management bit depends on whether
124# DFS or TPC is required by regulatory authorities. This can be used only with
125# ieee80211d=1 and local_pwr_constraint configured.
126#spectrum_mgmt_required=1
127
Dmitry Shmidt8d520ff2011-05-09 14:06:53 -0700128# Operation mode (a = IEEE 802.11a, b = IEEE 802.11b, g = IEEE 802.11g,
Dmitry Shmidta54fa5f2013-01-15 13:53:35 -0800129# ad = IEEE 802.11ad (60 GHz); a/g options are used with IEEE 802.11n, too, to
Dmitry Shmidtb1e52102015-05-29 12:36:29 -0700130# specify band). When using ACS (see channel parameter), a special value "any"
131# can be used to indicate that any support band can be used. This special case
132# is currently supported only with drivers with which offloaded ACS is used.
Dmitry Shmidt8d520ff2011-05-09 14:06:53 -0700133# Default: IEEE 802.11b
Dmitry Shmidt1f69aa52012-01-24 16:10:04 -0800134hw_mode=g
Dmitry Shmidt8d520ff2011-05-09 14:06:53 -0700135
136# Channel number (IEEE 802.11)
137# (default: 0, i.e., not set)
Dmitry Shmidt1f69aa52012-01-24 16:10:04 -0800138# Please note that some drivers do not use this value from hostapd and the
139# channel will need to be configured separately with iwconfig.
Dmitry Shmidt391c59f2013-09-03 12:16:28 -0700140#
141# If CONFIG_ACS build option is enabled, the channel can be selected
142# automatically at run time by setting channel=acs_survey or channel=0, both of
143# which will enable the ACS survey based algorithm.
Dmitry Shmidt1f69aa52012-01-24 16:10:04 -0800144channel=1
Dmitry Shmidt8d520ff2011-05-09 14:06:53 -0700145
Dmitry Shmidt391c59f2013-09-03 12:16:28 -0700146# ACS tuning - Automatic Channel Selection
147# See: http://wireless.kernel.org/en/users/Documentation/acs
148#
149# You can customize the ACS survey algorithm with following variables:
150#
151# acs_num_scans requirement is 1..100 - number of scans to be performed that
152# are used to trigger survey data gathering of an underlying device driver.
153# Scans are passive and typically take a little over 100ms (depending on the
154# driver) on each available channel for given hw_mode. Increasing this value
155# means sacrificing startup time and gathering more data wrt channel
156# interference that may help choosing a better channel. This can also help fine
157# tune the ACS scan time in case a driver has different scan dwell times.
158#
Dmitry Shmidt7f656022015-02-25 14:36:37 -0800159# acs_chan_bias is a space-separated list of <channel>:<bias> pairs. It can be
160# used to increase (or decrease) the likelihood of a specific channel to be
161# selected by the ACS algorithm. The total interference factor for each channel
162# gets multiplied by the specified bias value before finding the channel with
163# the lowest value. In other words, values between 0.0 and 1.0 can be used to
164# make a channel more likely to be picked while values larger than 1.0 make the
165# specified channel less likely to be picked. This can be used, e.g., to prefer
166# the commonly used 2.4 GHz band channels 1, 6, and 11 (which is the default
167# behavior on 2.4 GHz band if no acs_chan_bias parameter is specified).
168#
Dmitry Shmidt391c59f2013-09-03 12:16:28 -0700169# Defaults:
170#acs_num_scans=5
Dmitry Shmidt7f656022015-02-25 14:36:37 -0800171#acs_chan_bias=1:0.8 6:0.8 11:0.8
Dmitry Shmidt391c59f2013-09-03 12:16:28 -0700172
Dmitry Shmidt98660862014-03-11 17:26:21 -0700173# Channel list restriction. This option allows hostapd to select one of the
Dmitry Shmidt2f74e362015-01-21 13:19:05 -0800174# provided channels when a channel should be automatically selected.
Dmitry Shmidtdda10c22015-03-24 16:05:01 -0700175# Channel list can be provided as range using hyphen ('-') or individual
176# channels can be specified by space (' ') seperated values
177# Default: all channels allowed in selected hw_mode
Dmitry Shmidt98660862014-03-11 17:26:21 -0700178#chanlist=100 104 108 112 116
Dmitry Shmidtdda10c22015-03-24 16:05:01 -0700179#chanlist=1 6 11-13
Dmitry Shmidt98660862014-03-11 17:26:21 -0700180
Dmitry Shmidt8d520ff2011-05-09 14:06:53 -0700181# Beacon interval in kus (1.024 ms) (default: 100; range 15..65535)
182beacon_int=100
183
Dmitry Shmidt1f69aa52012-01-24 16:10:04 -0800184# DTIM (delivery traffic information message) period (range 1..255):
Dmitry Shmidt8d520ff2011-05-09 14:06:53 -0700185# number of beacons between DTIMs (1 = every beacon includes DTIM element)
186# (default: 2)
187dtim_period=2
188
189# Maximum number of stations allowed in station table. New stations will be
190# rejected after the station table is full. IEEE 802.11 has a limit of 2007
191# different association IDs, so this number should not be larger than that.
192# (default: 2007)
193max_num_sta=255
194
195# RTS/CTS threshold; 2347 = disabled (default); range 0..2347
196# If this field is not included in hostapd.conf, hostapd will not control
197# RTS threshold and 'iwconfig wlan# rts <val>' can be used to set it.
198rts_threshold=2347
199
200# Fragmentation threshold; 2346 = disabled (default); range 256..2346
201# If this field is not included in hostapd.conf, hostapd will not control
202# fragmentation threshold and 'iwconfig wlan# frag <val>' can be used to set
203# it.
204fragm_threshold=2346
205
206# Rate configuration
207# Default is to enable all rates supported by the hardware. This configuration
208# item allows this list be filtered so that only the listed rates will be left
209# in the list. If the list is empty, all rates are used. This list can have
210# entries that are not in the list of rates the hardware supports (such entries
211# are ignored). The entries in this list are in 100 kbps, i.e., 11 Mbps = 110.
212# If this item is present, at least one rate have to be matching with the rates
213# hardware supports.
214# default: use the most common supported rate setting for the selected
215# hw_mode (i.e., this line can be removed from configuration file in most
216# cases)
217#supported_rates=10 20 55 110 60 90 120 180 240 360 480 540
218
219# Basic rate set configuration
220# List of rates (in 100 kbps) that are included in the basic rate set.
221# If this item is not included, usually reasonable default set is used.
222#basic_rates=10 20
223#basic_rates=10 20 55 110
224#basic_rates=60 120 240
225
226# Short Preamble
227# This parameter can be used to enable optional use of short preamble for
228# frames sent at 2 Mbps, 5.5 Mbps, and 11 Mbps to improve network performance.
229# This applies only to IEEE 802.11b-compatible networks and this should only be
230# enabled if the local hardware supports use of short preamble. If any of the
231# associated STAs do not support short preamble, use of short preamble will be
232# disabled (and enabled when such STAs disassociate) dynamically.
233# 0 = do not allow use of short preamble (default)
234# 1 = allow use of short preamble
235#preamble=1
236
237# Station MAC address -based authentication
238# Please note that this kind of access control requires a driver that uses
239# hostapd to take care of management frame processing and as such, this can be
Dmitry Shmidt6c0da2b2015-01-05 13:08:17 -0800240# used with driver=hostap or driver=nl80211, but not with driver=atheros.
Dmitry Shmidt8d520ff2011-05-09 14:06:53 -0700241# 0 = accept unless in deny list
242# 1 = deny unless in accept list
243# 2 = use external RADIUS server (accept/deny lists are searched first)
244macaddr_acl=0
245
246# Accept/deny lists are read from separate files (containing list of
247# MAC addresses, one per line). Use absolute path name to make sure that the
248# files can be read on SIGHUP configuration reloads.
249#accept_mac_file=/etc/hostapd.accept
250#deny_mac_file=/etc/hostapd.deny
251
252# IEEE 802.11 specifies two authentication algorithms. hostapd can be
253# configured to allow both of these or only one. Open system authentication
254# should be used with IEEE 802.1X.
255# Bit fields of allowed authentication algorithms:
256# bit 0 = Open System Authentication
257# bit 1 = Shared Key Authentication (requires WEP)
258auth_algs=3
259
260# Send empty SSID in beacons and ignore probe request frames that do not
261# specify full SSID, i.e., require stations to know SSID.
262# default: disabled (0)
263# 1 = send empty (length=0) SSID in beacon and ignore probe request for
264# broadcast SSID
265# 2 = clear SSID (ASCII 0), but keep the original length (this may be required
266# with some clients that do not support empty SSID) and ignore probe
267# requests for broadcast SSID
268ignore_broadcast_ssid=0
269
Dmitry Shmidt61d9df32012-08-29 16:22:06 -0700270# Additional vendor specfic elements for Beacon and Probe Response frames
271# This parameter can be used to add additional vendor specific element(s) into
272# the end of the Beacon and Probe Response frames. The format for these
273# element(s) is a hexdump of the raw information elements (id+len+payload for
274# one or more elements)
275#vendor_elements=dd0411223301
276
Dmitry Shmidt8d520ff2011-05-09 14:06:53 -0700277# TX queue parameters (EDCF / bursting)
278# tx_queue_<queue name>_<param>
279# queues: data0, data1, data2, data3, after_beacon, beacon
280# (data0 is the highest priority queue)
281# parameters:
282# aifs: AIFS (default 2)
Dmitry Shmidt41712582015-06-29 11:02:15 -0700283# cwmin: cwMin (1, 3, 7, 15, 31, 63, 127, 255, 511, 1023, 2047, 4095, 8191,
284# 16383, 32767)
285# cwmax: cwMax (same values as cwMin, cwMax >= cwMin)
Dmitry Shmidt8d520ff2011-05-09 14:06:53 -0700286# burst: maximum length (in milliseconds with precision of up to 0.1 ms) for
287# bursting
288#
289# Default WMM parameters (IEEE 802.11 draft; 11-03-0504-03-000e):
290# These parameters are used by the access point when transmitting frames
291# to the clients.
292#
293# Low priority / AC_BK = background
294#tx_queue_data3_aifs=7
295#tx_queue_data3_cwmin=15
296#tx_queue_data3_cwmax=1023
297#tx_queue_data3_burst=0
298# Note: for IEEE 802.11b mode: cWmin=31 cWmax=1023 burst=0
299#
300# Normal priority / AC_BE = best effort
301#tx_queue_data2_aifs=3
302#tx_queue_data2_cwmin=15
303#tx_queue_data2_cwmax=63
304#tx_queue_data2_burst=0
305# Note: for IEEE 802.11b mode: cWmin=31 cWmax=127 burst=0
306#
307# High priority / AC_VI = video
308#tx_queue_data1_aifs=1
309#tx_queue_data1_cwmin=7
310#tx_queue_data1_cwmax=15
311#tx_queue_data1_burst=3.0
312# Note: for IEEE 802.11b mode: cWmin=15 cWmax=31 burst=6.0
313#
314# Highest priority / AC_VO = voice
315#tx_queue_data0_aifs=1
316#tx_queue_data0_cwmin=3
317#tx_queue_data0_cwmax=7
318#tx_queue_data0_burst=1.5
319# Note: for IEEE 802.11b mode: cWmin=7 cWmax=15 burst=3.3
320
321# 802.1D Tag (= UP) to AC mappings
322# WMM specifies following mapping of data frames to different ACs. This mapping
323# can be configured using Linux QoS/tc and sch_pktpri.o module.
324# 802.1D Tag 802.1D Designation Access Category WMM Designation
325# 1 BK AC_BK Background
326# 2 - AC_BK Background
327# 0 BE AC_BE Best Effort
328# 3 EE AC_BE Best Effort
329# 4 CL AC_VI Video
330# 5 VI AC_VI Video
331# 6 VO AC_VO Voice
332# 7 NC AC_VO Voice
333# Data frames with no priority information: AC_BE
334# Management frames: AC_VO
335# PS-Poll frames: AC_BE
336
337# Default WMM parameters (IEEE 802.11 draft; 11-03-0504-03-000e):
338# for 802.11a or 802.11g networks
339# These parameters are sent to WMM clients when they associate.
340# The parameters will be used by WMM clients for frames transmitted to the
341# access point.
342#
343# note - txop_limit is in units of 32microseconds
344# note - acm is admission control mandatory flag. 0 = admission control not
345# required, 1 = mandatory
Dmitry Shmidt41712582015-06-29 11:02:15 -0700346# note - Here cwMin and cmMax are in exponent form. The actual cw value used
347# will be (2^n)-1 where n is the value given here. The allowed range for these
348# wmm_ac_??_{cwmin,cwmax} is 0..15 with cwmax >= cwmin.
Dmitry Shmidt8d520ff2011-05-09 14:06:53 -0700349#
350wmm_enabled=1
351#
352# WMM-PS Unscheduled Automatic Power Save Delivery [U-APSD]
353# Enable this flag if U-APSD supported outside hostapd (eg., Firmware/driver)
354#uapsd_advertisement_enabled=1
355#
356# Low priority / AC_BK = background
357wmm_ac_bk_cwmin=4
358wmm_ac_bk_cwmax=10
359wmm_ac_bk_aifs=7
360wmm_ac_bk_txop_limit=0
361wmm_ac_bk_acm=0
362# Note: for IEEE 802.11b mode: cWmin=5 cWmax=10
363#
364# Normal priority / AC_BE = best effort
365wmm_ac_be_aifs=3
366wmm_ac_be_cwmin=4
367wmm_ac_be_cwmax=10
368wmm_ac_be_txop_limit=0
369wmm_ac_be_acm=0
370# Note: for IEEE 802.11b mode: cWmin=5 cWmax=7
371#
372# High priority / AC_VI = video
373wmm_ac_vi_aifs=2
374wmm_ac_vi_cwmin=3
375wmm_ac_vi_cwmax=4
376wmm_ac_vi_txop_limit=94
377wmm_ac_vi_acm=0
378# Note: for IEEE 802.11b mode: cWmin=4 cWmax=5 txop_limit=188
379#
380# Highest priority / AC_VO = voice
381wmm_ac_vo_aifs=2
382wmm_ac_vo_cwmin=2
383wmm_ac_vo_cwmax=3
384wmm_ac_vo_txop_limit=47
385wmm_ac_vo_acm=0
386# Note: for IEEE 802.11b mode: cWmin=3 cWmax=4 burst=102
387
388# Static WEP key configuration
389#
390# The key number to use when transmitting.
391# It must be between 0 and 3, and the corresponding key must be set.
392# default: not set
393#wep_default_key=0
394# The WEP keys to use.
395# A key may be a quoted string or unquoted hexadecimal digits.
396# The key length should be 5, 13, or 16 characters, or 10, 26, or 32
397# digits, depending on whether 40-bit (64-bit), 104-bit (128-bit), or
398# 128-bit (152-bit) WEP is used.
399# Only the default key must be supplied; the others are optional.
400# default: not set
401#wep_key0=123456789a
402#wep_key1="vwxyz"
403#wep_key2=0102030405060708090a0b0c0d
404#wep_key3=".2.4.6.8.0.23"
405
406# Station inactivity limit
407#
408# If a station does not send anything in ap_max_inactivity seconds, an
409# empty data frame is sent to it in order to verify whether it is
410# still in range. If this frame is not ACKed, the station will be
411# disassociated and then deauthenticated. This feature is used to
412# clear station table of old entries when the STAs move out of the
413# range.
414#
415# The station can associate again with the AP if it is still in range;
416# this inactivity poll is just used as a nicer way of verifying
417# inactivity; i.e., client will not report broken connection because
418# disassociation frame is not sent immediately without first polling
419# the STA with a data frame.
420# default: 300 (i.e., 5 minutes)
421#ap_max_inactivity=300
Dmitry Shmidt1f69aa52012-01-24 16:10:04 -0800422#
423# The inactivity polling can be disabled to disconnect stations based on
424# inactivity timeout so that idle stations are more likely to be disconnected
425# even if they are still in range of the AP. This can be done by setting
426# skip_inactivity_poll to 1 (default 0).
427#skip_inactivity_poll=0
Dmitry Shmidt8d520ff2011-05-09 14:06:53 -0700428
429# Disassociate stations based on excessive transmission failures or other
430# indications of connection loss. This depends on the driver capabilities and
431# may not be available with all drivers.
432#disassoc_low_ack=1
433
434# Maximum allowed Listen Interval (how many Beacon periods STAs are allowed to
435# remain asleep). Default: 65535 (no limit apart from field size)
436#max_listen_interval=100
437
438# WDS (4-address frame) mode with per-station virtual interfaces
439# (only supported with driver=nl80211)
440# This mode allows associated stations to use 4-address frames to allow layer 2
441# bridging to be used.
442#wds_sta=1
443
444# If bridge parameter is set, the WDS STA interface will be added to the same
445# bridge by default. This can be overridden with the wds_bridge parameter to
446# use a separate bridge.
447#wds_bridge=wds-br0
448
Dmitry Shmidtc2ebb4b2013-07-24 12:57:51 -0700449# Start the AP with beaconing disabled by default.
450#start_disabled=0
451
Dmitry Shmidt8d520ff2011-05-09 14:06:53 -0700452# Client isolation can be used to prevent low-level bridging of frames between
453# associated stations in the BSS. By default, this bridging is allowed.
454#ap_isolate=1
455
Dmitry Shmidt6c0da2b2015-01-05 13:08:17 -0800456# BSS Load update period (in BUs)
457# This field is used to enable and configure adding a BSS Load element into
458# Beacon and Probe Response frames.
459#bss_load_update_period=50
460
Dmitry Shmidt051af732013-10-22 13:52:46 -0700461# Fixed BSS Load value for testing purposes
462# This field can be used to configure hostapd to add a fixed BSS Load element
463# into Beacon and Probe Response frames for testing purposes. The format is
464# <station count>:<channel utilization>:<available admission capacity>
465#bss_load_test=12:80:20000
466
Dmitry Shmidt8d520ff2011-05-09 14:06:53 -0700467##### IEEE 802.11n related configuration ######################################
468
469# ieee80211n: Whether IEEE 802.11n (HT) is enabled
470# 0 = disabled (default)
471# 1 = enabled
472# Note: You will also need to enable WMM for full HT functionality.
473#ieee80211n=1
474
475# ht_capab: HT capabilities (list of flags)
476# LDPC coding capability: [LDPC] = supported
477# Supported channel width set: [HT40-] = both 20 MHz and 40 MHz with secondary
478# channel below the primary channel; [HT40+] = both 20 MHz and 40 MHz
Dmitry Shmidtd11f0192014-03-24 12:09:47 -0700479# with secondary channel above the primary channel
Dmitry Shmidt8d520ff2011-05-09 14:06:53 -0700480# (20 MHz only if neither is set)
481# Note: There are limits on which channels can be used with HT40- and
482# HT40+. Following table shows the channels that may be available for
483# HT40- and HT40+ use per IEEE 802.11n Annex J:
484# freq HT40- HT40+
485# 2.4 GHz 5-13 1-7 (1-9 in Europe/Japan)
486# 5 GHz 40,48,56,64 36,44,52,60
487# (depending on the location, not all of these channels may be available
488# for use)
489# Please note that 40 MHz channels may switch their primary and secondary
490# channels if needed or creation of 40 MHz channel maybe rejected based
491# on overlapping BSSes. These changes are done automatically when hostapd
492# is setting up the 40 MHz channel.
493# Spatial Multiplexing (SM) Power Save: [SMPS-STATIC] or [SMPS-DYNAMIC]
494# (SMPS disabled if neither is set)
495# HT-greenfield: [GF] (disabled if not set)
496# Short GI for 20 MHz: [SHORT-GI-20] (disabled if not set)
497# Short GI for 40 MHz: [SHORT-GI-40] (disabled if not set)
498# Tx STBC: [TX-STBC] (disabled if not set)
499# Rx STBC: [RX-STBC1] (one spatial stream), [RX-STBC12] (one or two spatial
500# streams), or [RX-STBC123] (one, two, or three spatial streams); Rx STBC
501# disabled if none of these set
502# HT-delayed Block Ack: [DELAYED-BA] (disabled if not set)
503# Maximum A-MSDU length: [MAX-AMSDU-7935] for 7935 octets (3839 octets if not
504# set)
505# DSSS/CCK Mode in 40 MHz: [DSSS_CCK-40] = allowed (not allowed if not set)
Dmitry Shmidtd11f0192014-03-24 12:09:47 -0700506# 40 MHz intolerant [40-INTOLERANT] (not advertised if not set)
Dmitry Shmidt8d520ff2011-05-09 14:06:53 -0700507# L-SIG TXOP protection support: [LSIG-TXOP-PROT] (disabled if not set)
508#ht_capab=[HT40-][SHORT-GI-20][SHORT-GI-40]
509
510# Require stations to support HT PHY (reject association if they do not)
511#require_ht=1
512
Dmitry Shmidt54605472013-11-08 11:10:19 -0800513# If set non-zero, require stations to perform scans of overlapping
514# channels to test for stations which would be affected by 40 MHz traffic.
Dmitry Shmidt216983b2015-02-06 10:50:36 -0800515# This parameter sets the interval in seconds between these scans. Setting this
516# to non-zero allows 2.4 GHz band AP to move dynamically to a 40 MHz channel if
517# no co-existence issues with neighboring devices are found.
Dmitry Shmidt54605472013-11-08 11:10:19 -0800518#obss_interval=0
519
Dmitry Shmidt04949592012-07-19 12:16:46 -0700520##### IEEE 802.11ac related configuration #####################################
521
522# ieee80211ac: Whether IEEE 802.11ac (VHT) is enabled
523# 0 = disabled (default)
524# 1 = enabled
525# Note: You will also need to enable WMM for full VHT functionality.
526#ieee80211ac=1
527
528# vht_capab: VHT capabilities (list of flags)
529#
530# vht_max_mpdu_len: [MAX-MPDU-7991] [MAX-MPDU-11454]
531# Indicates maximum MPDU length
532# 0 = 3895 octets (default)
533# 1 = 7991 octets
534# 2 = 11454 octets
535# 3 = reserved
536#
537# supported_chan_width: [VHT160] [VHT160-80PLUS80]
538# Indicates supported Channel widths
539# 0 = 160 MHz & 80+80 channel widths are not supported (default)
540# 1 = 160 MHz channel width is supported
541# 2 = 160 MHz & 80+80 channel widths are supported
542# 3 = reserved
543#
544# Rx LDPC coding capability: [RXLDPC]
545# Indicates support for receiving LDPC coded pkts
546# 0 = Not supported (default)
547# 1 = Supported
548#
549# Short GI for 80 MHz: [SHORT-GI-80]
550# Indicates short GI support for reception of packets transmitted with TXVECTOR
551# params format equal to VHT and CBW = 80Mhz
552# 0 = Not supported (default)
553# 1 = Supported
554#
555# Short GI for 160 MHz: [SHORT-GI-160]
556# Indicates short GI support for reception of packets transmitted with TXVECTOR
557# params format equal to VHT and CBW = 160Mhz
558# 0 = Not supported (default)
559# 1 = Supported
560#
561# Tx STBC: [TX-STBC-2BY1]
562# Indicates support for the transmission of at least 2x1 STBC
563# 0 = Not supported (default)
564# 1 = Supported
565#
566# Rx STBC: [RX-STBC-1] [RX-STBC-12] [RX-STBC-123] [RX-STBC-1234]
567# Indicates support for the reception of PPDUs using STBC
568# 0 = Not supported (default)
569# 1 = support of one spatial stream
570# 2 = support of one and two spatial streams
571# 3 = support of one, two and three spatial streams
572# 4 = support of one, two, three and four spatial streams
573# 5,6,7 = reserved
574#
575# SU Beamformer Capable: [SU-BEAMFORMER]
576# Indicates support for operation as a single user beamformer
577# 0 = Not supported (default)
578# 1 = Supported
579#
580# SU Beamformee Capable: [SU-BEAMFORMEE]
581# Indicates support for operation as a single user beamformee
582# 0 = Not supported (default)
583# 1 = Supported
584#
585# Compressed Steering Number of Beamformer Antennas Supported: [BF-ANTENNA-2]
586# Beamformee's capability indicating the maximum number of beamformer
587# antennas the beamformee can support when sending compressed beamforming
588# feedback
589# If SU beamformer capable, set to maximum value minus 1
590# else reserved (default)
591#
592# Number of Sounding Dimensions: [SOUNDING-DIMENSION-2]
Dmitry Shmidt61d9df32012-08-29 16:22:06 -0700593# Beamformer's capability indicating the maximum value of the NUM_STS parameter
Dmitry Shmidt04949592012-07-19 12:16:46 -0700594# in the TXVECTOR of a VHT NDP
595# If SU beamformer capable, set to maximum value minus 1
596# else reserved (default)
597#
598# MU Beamformer Capable: [MU-BEAMFORMER]
599# Indicates support for operation as an MU beamformer
600# 0 = Not supported or sent by Non-AP STA (default)
601# 1 = Supported
602#
Dmitry Shmidt04949592012-07-19 12:16:46 -0700603# VHT TXOP PS: [VHT-TXOP-PS]
604# Indicates whether or not the AP supports VHT TXOP Power Save Mode
605# or whether or not the STA is in VHT TXOP Power Save mode
606# 0 = VHT AP doesnt support VHT TXOP PS mode (OR) VHT Sta not in VHT TXOP PS
607# mode
608# 1 = VHT AP supports VHT TXOP PS mode (OR) VHT Sta is in VHT TXOP power save
609# mode
610#
611# +HTC-VHT Capable: [HTC-VHT]
612# Indicates whether or not the STA supports receiving a VHT variant HT Control
613# field.
614# 0 = Not supported (default)
615# 1 = supported
616#
617# Maximum A-MPDU Length Exponent: [MAX-A-MPDU-LEN-EXP0]..[MAX-A-MPDU-LEN-EXP7]
618# Indicates the maximum length of A-MPDU pre-EOF padding that the STA can recv
619# This field is an integer in the range of 0 to 7.
620# The length defined by this field is equal to
Dmitry Shmidt61d9df32012-08-29 16:22:06 -0700621# 2 pow(13 + Maximum A-MPDU Length Exponent) -1 octets
Dmitry Shmidt04949592012-07-19 12:16:46 -0700622#
623# VHT Link Adaptation Capable: [VHT-LINK-ADAPT2] [VHT-LINK-ADAPT3]
624# Indicates whether or not the STA supports link adaptation using VHT variant
625# HT Control field
626# If +HTC-VHTcapable is 1
627# 0 = (no feedback) if the STA does not provide VHT MFB (default)
628# 1 = reserved
629# 2 = (Unsolicited) if the STA provides only unsolicited VHT MFB
630# 3 = (Both) if the STA can provide VHT MFB in response to VHT MRQ and if the
631# STA provides unsolicited VHT MFB
632# Reserved if +HTC-VHTcapable is 0
633#
634# Rx Antenna Pattern Consistency: [RX-ANTENNA-PATTERN]
635# Indicates the possibility of Rx antenna pattern change
636# 0 = Rx antenna pattern might change during the lifetime of an association
637# 1 = Rx antenna pattern does not change during the lifetime of an association
638#
639# Tx Antenna Pattern Consistency: [TX-ANTENNA-PATTERN]
640# Indicates the possibility of Tx antenna pattern change
641# 0 = Tx antenna pattern might change during the lifetime of an association
642# 1 = Tx antenna pattern does not change during the lifetime of an association
643#vht_capab=[SHORT-GI-80][HTC-VHT]
Dmitry Shmidt61d9df32012-08-29 16:22:06 -0700644#
645# Require stations to support VHT PHY (reject association if they do not)
646#require_vht=1
647
648# 0 = 20 or 40 MHz operating Channel width
649# 1 = 80 MHz channel width
650# 2 = 160 MHz channel width
651# 3 = 80+80 MHz channel width
Dmitry Shmidt04949592012-07-19 12:16:46 -0700652#vht_oper_chwidth=1
Dmitry Shmidt61d9df32012-08-29 16:22:06 -0700653#
654# center freq = 5 GHz + (5 * index)
655# So index 42 gives center freq 5.210 GHz
656# which is channel 42 in 5G band
657#
658#vht_oper_centr_freq_seg0_idx=42
Dmitry Shmidtd5e49232012-12-03 15:08:10 -0800659#
660# center freq = 5 GHz + (5 * index)
661# So index 159 gives center freq 5.795 GHz
662# which is channel 159 in 5G band
663#
664#vht_oper_centr_freq_seg1_idx=159
Dmitry Shmidt04949592012-07-19 12:16:46 -0700665
Dmitry Shmidt8d520ff2011-05-09 14:06:53 -0700666##### IEEE 802.1X-2004 related configuration ##################################
667
668# Require IEEE 802.1X authorization
669#ieee8021x=1
670
671# IEEE 802.1X/EAPOL version
672# hostapd is implemented based on IEEE Std 802.1X-2004 which defines EAPOL
673# version 2. However, there are many client implementations that do not handle
674# the new version number correctly (they seem to drop the frames completely).
675# In order to make hostapd interoperate with these clients, the version number
676# can be set to the older version (1) with this configuration value.
677#eapol_version=2
678
679# Optional displayable message sent with EAP Request-Identity. The first \0
680# in this string will be converted to ASCII-0 (nul). This can be used to
681# separate network info (comma separated list of attribute=value pairs); see,
682# e.g., RFC 4284.
683#eap_message=hello
684#eap_message=hello\0networkid=netw,nasid=foo,portid=0,NAIRealms=example.com
685
686# WEP rekeying (disabled if key lengths are not set or are set to 0)
687# Key lengths for default/broadcast and individual/unicast keys:
688# 5 = 40-bit WEP (also known as 64-bit WEP with 40 secret bits)
689# 13 = 104-bit WEP (also known as 128-bit WEP with 104 secret bits)
690#wep_key_len_broadcast=5
691#wep_key_len_unicast=5
692# Rekeying period in seconds. 0 = do not rekey (i.e., set keys only once)
693#wep_rekey_period=300
694
695# EAPOL-Key index workaround (set bit7) for WinXP Supplicant (needed only if
696# only broadcast keys are used)
697eapol_key_index_workaround=0
698
699# EAP reauthentication period in seconds (default: 3600 seconds; 0 = disable
700# reauthentication).
701#eap_reauth_period=3600
702
703# Use PAE group address (01:80:c2:00:00:03) instead of individual target
704# address when sending EAPOL frames with driver=wired. This is the most common
705# mechanism used in wired authentication, but it also requires that the port
706# is only used by one station.
707#use_pae_group_addr=1
708
Dmitry Shmidt6c0da2b2015-01-05 13:08:17 -0800709# EAP Re-authentication Protocol (ERP) authenticator (RFC 6696)
710#
711# Whether to initiate EAP authentication with EAP-Initiate/Re-auth-Start before
712# EAP-Identity/Request
713#erp_send_reauth_start=1
714#
715# Domain name for EAP-Initiate/Re-auth-Start. Omitted from the message if not
716# set (no local ER server). This is also used by the integrated EAP server if
717# ERP is enabled (eap_server_erp=1).
718#erp_domain=example.com
719
Dmitry Shmidt8d520ff2011-05-09 14:06:53 -0700720##### Integrated EAP server ###################################################
721
722# Optionally, hostapd can be configured to use an integrated EAP server
723# to process EAP authentication locally without need for an external RADIUS
724# server. This functionality can be used both as a local authentication server
725# for IEEE 802.1X/EAPOL and as a RADIUS server for other devices.
726
727# Use integrated EAP server instead of external RADIUS authentication
728# server. This is also needed if hostapd is configured to act as a RADIUS
729# authentication server.
730eap_server=0
731
732# Path for EAP server user database
Dmitry Shmidtd5e49232012-12-03 15:08:10 -0800733# If SQLite support is included, this can be set to "sqlite:/path/to/sqlite.db"
734# to use SQLite database instead of a text file.
Dmitry Shmidt8d520ff2011-05-09 14:06:53 -0700735#eap_user_file=/etc/hostapd.eap_user
736
737# CA certificate (PEM or DER file) for EAP-TLS/PEAP/TTLS
738#ca_cert=/etc/hostapd.ca.pem
739
740# Server certificate (PEM or DER file) for EAP-TLS/PEAP/TTLS
741#server_cert=/etc/hostapd.server.pem
742
743# Private key matching with the server certificate for EAP-TLS/PEAP/TTLS
744# This may point to the same file as server_cert if both certificate and key
745# are included in a single file. PKCS#12 (PFX) file (.p12/.pfx) can also be
746# used by commenting out server_cert and specifying the PFX file as the
747# private_key.
748#private_key=/etc/hostapd.server.prv
749
750# Passphrase for private key
751#private_key_passwd=secret passphrase
752
Dmitry Shmidt34af3062013-07-11 10:46:32 -0700753# Server identity
754# EAP methods that provide mechanism for authenticated server identity delivery
755# use this value. If not set, "hostapd" is used as a default.
756#server_id=server.example.com
757
Dmitry Shmidt8d520ff2011-05-09 14:06:53 -0700758# Enable CRL verification.
759# Note: hostapd does not yet support CRL downloading based on CDP. Thus, a
760# valid CRL signed by the CA is required to be included in the ca_cert file.
761# This can be done by using PEM format for CA certificate and CRL and
762# concatenating these into one file. Whenever CRL changes, hostapd needs to be
763# restarted to take the new CRL into use.
764# 0 = do not verify CRLs (default)
765# 1 = check the CRL of the user certificate
766# 2 = check all CRLs in the certificate path
767#check_crl=1
768
Dmitry Shmidt34af3062013-07-11 10:46:32 -0700769# Cached OCSP stapling response (DER encoded)
770# If set, this file is sent as a certificate status response by the EAP server
771# if the EAP peer requests certificate status in the ClientHello message.
772# This cache file can be updated, e.g., by running following command
773# periodically to get an update from the OCSP responder:
774# openssl ocsp \
775# -no_nonce \
776# -CAfile /etc/hostapd.ca.pem \
777# -issuer /etc/hostapd.ca.pem \
778# -cert /etc/hostapd.server.pem \
779# -url http://ocsp.example.com:8888/ \
780# -respout /tmp/ocsp-cache.der
781#ocsp_stapling_response=/tmp/ocsp-cache.der
782
Dmitry Shmidt8d520ff2011-05-09 14:06:53 -0700783# dh_file: File path to DH/DSA parameters file (in PEM format)
784# This is an optional configuration file for setting parameters for an
785# ephemeral DH key exchange. In most cases, the default RSA authentication does
786# not use this configuration. However, it is possible setup RSA to use
787# ephemeral DH key exchange. In addition, ciphers with DSA keys always use
788# ephemeral DH keys. This can be used to achieve forward secrecy. If the file
789# is in DSA parameters format, it will be automatically converted into DH
790# params. This parameter is required if anonymous EAP-FAST is used.
791# You can generate DH parameters file with OpenSSL, e.g.,
Dmitry Shmidt8bd70b72015-05-26 16:02:19 -0700792# "openssl dhparam -out /etc/hostapd.dh.pem 2048"
Dmitry Shmidt8d520ff2011-05-09 14:06:53 -0700793#dh_file=/etc/hostapd.dh.pem
794
Dmitry Shmidt6c0da2b2015-01-05 13:08:17 -0800795# OpenSSL cipher string
796#
797# This is an OpenSSL specific configuration option for configuring the default
798# ciphers. If not set, "DEFAULT:!EXP:!LOW" is used as the default.
799# See https://www.openssl.org/docs/apps/ciphers.html for OpenSSL documentation
800# on cipher suite configuration. This is applicable only if hostapd is built to
801# use OpenSSL.
802#openssl_ciphers=DEFAULT:!EXP:!LOW
803
Dmitry Shmidt8d520ff2011-05-09 14:06:53 -0700804# Fragment size for EAP methods
805#fragment_size=1400
806
Dmitry Shmidt1f69aa52012-01-24 16:10:04 -0800807# Finite cyclic group for EAP-pwd. Number maps to group of domain parameters
808# using the IANA repository for IKE (RFC 2409).
809#pwd_group=19
810
Dmitry Shmidt8d520ff2011-05-09 14:06:53 -0700811# Configuration data for EAP-SIM database/authentication gateway interface.
812# This is a text string in implementation specific format. The example
813# implementation in eap_sim_db.c uses this as the UNIX domain socket name for
814# the HLR/AuC gateway (e.g., hlr_auc_gw). In this case, the path uses "unix:"
Dmitry Shmidt4530cfd2012-09-09 15:20:40 -0700815# prefix. If hostapd is built with SQLite support (CONFIG_SQLITE=y in .config),
816# database file can be described with an optional db=<path> parameter.
Dmitry Shmidt8d520ff2011-05-09 14:06:53 -0700817#eap_sim_db=unix:/tmp/hlr_auc_gw.sock
Dmitry Shmidt4530cfd2012-09-09 15:20:40 -0700818#eap_sim_db=unix:/tmp/hlr_auc_gw.sock db=/tmp/hostapd.db
Dmitry Shmidt8d520ff2011-05-09 14:06:53 -0700819
820# Encryption key for EAP-FAST PAC-Opaque values. This key must be a secret,
821# random value. It is configured as a 16-octet value in hex format. It can be
822# generated, e.g., with the following command:
823# od -tx1 -v -N16 /dev/random | colrm 1 8 | tr -d ' '
824#pac_opaque_encr_key=000102030405060708090a0b0c0d0e0f
825
826# EAP-FAST authority identity (A-ID)
827# A-ID indicates the identity of the authority that issues PACs. The A-ID
828# should be unique across all issuing servers. In theory, this is a variable
829# length field, but due to some existing implementations requiring A-ID to be
830# 16 octets in length, it is strongly recommended to use that length for the
831# field to provid interoperability with deployed peer implementations. This
832# field is configured in hex format.
833#eap_fast_a_id=101112131415161718191a1b1c1d1e1f
834
835# EAP-FAST authority identifier information (A-ID-Info)
836# This is a user-friendly name for the A-ID. For example, the enterprise name
837# and server name in a human-readable format. This field is encoded as UTF-8.
838#eap_fast_a_id_info=test server
839
840# Enable/disable different EAP-FAST provisioning modes:
841#0 = provisioning disabled
842#1 = only anonymous provisioning allowed
843#2 = only authenticated provisioning allowed
844#3 = both provisioning modes allowed (default)
845#eap_fast_prov=3
846
847# EAP-FAST PAC-Key lifetime in seconds (hard limit)
848#pac_key_lifetime=604800
849
850# EAP-FAST PAC-Key refresh time in seconds (soft limit on remaining hard
851# limit). The server will generate a new PAC-Key when this number of seconds
852# (or fewer) of the lifetime remains.
853#pac_key_refresh_time=86400
854
855# EAP-SIM and EAP-AKA protected success/failure indication using AT_RESULT_IND
856# (default: 0 = disabled).
857#eap_sim_aka_result_ind=1
858
859# Trusted Network Connect (TNC)
860# If enabled, TNC validation will be required before the peer is allowed to
861# connect. Note: This is only used with EAP-TTLS and EAP-FAST. If any other
862# EAP method is enabled, the peer will be allowed to connect without TNC.
863#tnc=1
864
Dmitry Shmidt6c0da2b2015-01-05 13:08:17 -0800865# EAP Re-authentication Protocol (ERP) - RFC 6696
866#
867# Whether to enable ERP on the EAP server.
868#eap_server_erp=1
Dmitry Shmidt8d520ff2011-05-09 14:06:53 -0700869
870##### IEEE 802.11f - Inter-Access Point Protocol (IAPP) #######################
871
872# Interface to be used for IAPP broadcast packets
873#iapp_interface=eth0
874
875
876##### RADIUS client configuration #############################################
877# for IEEE 802.1X with external Authentication Server, IEEE 802.11
878# authentication with external ACL for MAC addresses, and accounting
879
880# The own IP address of the access point (used as NAS-IP-Address)
881own_ip_addr=127.0.0.1
882
883# Optional NAS-Identifier string for RADIUS messages. When used, this should be
884# a unique to the NAS within the scope of the RADIUS server. For example, a
885# fully qualified domain name can be used here.
886# When using IEEE 802.11r, nas_identifier must be set and must be between 1 and
887# 48 octets long.
888#nas_identifier=ap.example.com
889
Dmitry Shmidt203eadb2015-03-05 14:16:04 -0800890# RADIUS client forced local IP address for the access point
891# Normally the local IP address is determined automatically based on configured
892# IP addresses, but this field can be used to force a specific address to be
893# used, e.g., when the device has multiple IP addresses.
894#radius_client_addr=127.0.0.1
895
Dmitry Shmidt8d520ff2011-05-09 14:06:53 -0700896# RADIUS authentication server
897#auth_server_addr=127.0.0.1
898#auth_server_port=1812
899#auth_server_shared_secret=secret
900
901# RADIUS accounting server
902#acct_server_addr=127.0.0.1
903#acct_server_port=1813
904#acct_server_shared_secret=secret
905
906# Secondary RADIUS servers; to be used if primary one does not reply to
907# RADIUS packets. These are optional and there can be more than one secondary
908# server listed.
909#auth_server_addr=127.0.0.2
910#auth_server_port=1812
911#auth_server_shared_secret=secret2
912#
913#acct_server_addr=127.0.0.2
914#acct_server_port=1813
915#acct_server_shared_secret=secret2
916
917# Retry interval for trying to return to the primary RADIUS server (in
918# seconds). RADIUS client code will automatically try to use the next server
919# when the current server is not replying to requests. If this interval is set,
920# primary server will be retried after configured amount of time even if the
921# currently used secondary server is still working.
922#radius_retry_primary_interval=600
923
924
925# Interim accounting update interval
926# If this is set (larger than 0) and acct_server is configured, hostapd will
927# send interim accounting updates every N seconds. Note: if set, this overrides
928# possible Acct-Interim-Interval attribute in Access-Accept message. Thus, this
929# value should not be configured in hostapd.conf, if RADIUS server is used to
930# control the interim interval.
931# This value should not be less 600 (10 minutes) and must not be less than
932# 60 (1 minute).
933#radius_acct_interim_interval=600
934
Dmitry Shmidt04949592012-07-19 12:16:46 -0700935# Request Chargeable-User-Identity (RFC 4372)
936# This parameter can be used to configure hostapd to request CUI from the
937# RADIUS server by including Chargeable-User-Identity attribute into
938# Access-Request packets.
939#radius_request_cui=1
940
Dmitry Shmidt8d520ff2011-05-09 14:06:53 -0700941# Dynamic VLAN mode; allow RADIUS authentication server to decide which VLAN
942# is used for the stations. This information is parsed from following RADIUS
943# attributes based on RFC 3580 and RFC 2868: Tunnel-Type (value 13 = VLAN),
944# Tunnel-Medium-Type (value 6 = IEEE 802), Tunnel-Private-Group-ID (value
Dmitry Shmidt4b060592013-04-29 16:42:49 -0700945# VLANID as a string). Optionally, the local MAC ACL list (accept_mac_file) can
946# be used to set static client MAC address to VLAN ID mapping.
Dmitry Shmidt8d520ff2011-05-09 14:06:53 -0700947# 0 = disabled (default)
948# 1 = option; use default interface if RADIUS server does not include VLAN ID
949# 2 = required; reject authentication if RADIUS server does not include VLAN ID
950#dynamic_vlan=0
951
952# VLAN interface list for dynamic VLAN mode is read from a separate text file.
953# This list is used to map VLAN ID from the RADIUS server to a network
954# interface. Each station is bound to one interface in the same way as with
955# multiple BSSIDs or SSIDs. Each line in this text file is defining a new
956# interface and the line must include VLAN ID and interface name separated by
957# white space (space or tab).
Dmitry Shmidt4b060592013-04-29 16:42:49 -0700958# If no entries are provided by this file, the station is statically mapped
959# to <bss-iface>.<vlan-id> interfaces.
Dmitry Shmidt8d520ff2011-05-09 14:06:53 -0700960#vlan_file=/etc/hostapd.vlan
961
962# Interface where 802.1q tagged packets should appear when a RADIUS server is
963# used to determine which VLAN a station is on. hostapd creates a bridge for
964# each VLAN. Then hostapd adds a VLAN interface (associated with the interface
965# indicated by 'vlan_tagged_interface') and the appropriate wireless interface
966# to the bridge.
967#vlan_tagged_interface=eth0
968
Dmitry Shmidt34af3062013-07-11 10:46:32 -0700969# Bridge (prefix) to add the wifi and the tagged interface to. This gets the
970# VLAN ID appended. It defaults to brvlan%d if no tagged interface is given
971# and br%s.%d if a tagged interface is given, provided %s = tagged interface
972# and %d = VLAN ID.
973#vlan_bridge=brvlan
974
Dmitry Shmidt61d9df32012-08-29 16:22:06 -0700975# When hostapd creates a VLAN interface on vlan_tagged_interfaces, it needs
976# to know how to name it.
977# 0 = vlan<XXX>, e.g., vlan1
978# 1 = <vlan_tagged_interface>.<XXX>, e.g. eth0.1
979#vlan_naming=0
980
Dmitry Shmidt04949592012-07-19 12:16:46 -0700981# Arbitrary RADIUS attributes can be added into Access-Request and
982# Accounting-Request packets by specifying the contents of the attributes with
983# the following configuration parameters. There can be multiple of these to
984# add multiple attributes. These parameters can also be used to override some
985# of the attributes added automatically by hostapd.
986# Format: <attr_id>[:<syntax:value>]
987# attr_id: RADIUS attribute type (e.g., 26 = Vendor-Specific)
988# syntax: s = string (UTF-8), d = integer, x = octet string
989# value: attribute value in format indicated by the syntax
990# If syntax and value parts are omitted, a null value (single 0x00 octet) is
991# used.
992#
993# Additional Access-Request attributes
994# radius_auth_req_attr=<attr_id>[:<syntax:value>]
995# Examples:
996# Operator-Name = "Operator"
997#radius_auth_req_attr=126:s:Operator
998# Service-Type = Framed (2)
999#radius_auth_req_attr=6:d:2
1000# Connect-Info = "testing" (this overrides the automatically generated value)
1001#radius_auth_req_attr=77:s:testing
1002# Same Connect-Info value set as a hexdump
1003#radius_auth_req_attr=77:x:74657374696e67
1004
1005#
1006# Additional Accounting-Request attributes
1007# radius_acct_req_attr=<attr_id>[:<syntax:value>]
1008# Examples:
1009# Operator-Name = "Operator"
1010#radius_acct_req_attr=126:s:Operator
1011
1012# Dynamic Authorization Extensions (RFC 5176)
1013# This mechanism can be used to allow dynamic changes to user session based on
1014# commands from a RADIUS server (or some other disconnect client that has the
1015# needed session information). For example, Disconnect message can be used to
1016# request an associated station to be disconnected.
1017#
1018# This is disabled by default. Set radius_das_port to non-zero UDP port
1019# number to enable.
1020#radius_das_port=3799
1021#
1022# DAS client (the host that can send Disconnect/CoA requests) and shared secret
1023#radius_das_client=192.168.1.123 shared secret here
1024#
1025# DAS Event-Timestamp time window in seconds
1026#radius_das_time_window=300
1027#
1028# DAS require Event-Timestamp
1029#radius_das_require_event_timestamp=1
Dmitry Shmidt8d520ff2011-05-09 14:06:53 -07001030
1031##### RADIUS authentication server configuration ##############################
1032
1033# hostapd can be used as a RADIUS authentication server for other hosts. This
1034# requires that the integrated EAP server is also enabled and both
1035# authentication services are sharing the same configuration.
1036
1037# File name of the RADIUS clients configuration for the RADIUS server. If this
1038# commented out, RADIUS server is disabled.
1039#radius_server_clients=/etc/hostapd.radius_clients
1040
1041# The UDP port number for the RADIUS authentication server
1042#radius_server_auth_port=1812
1043
Dmitry Shmidtbd14a572014-02-18 10:33:49 -08001044# The UDP port number for the RADIUS accounting server
1045# Commenting this out or setting this to 0 can be used to disable RADIUS
1046# accounting while still enabling RADIUS authentication.
1047#radius_server_acct_port=1813
1048
Dmitry Shmidt8d520ff2011-05-09 14:06:53 -07001049# Use IPv6 with RADIUS server (IPv4 will also be supported using IPv6 API)
1050#radius_server_ipv6=1
1051
1052
1053##### WPA/IEEE 802.11i configuration ##########################################
1054
1055# Enable WPA. Setting this variable configures the AP to require WPA (either
1056# WPA-PSK or WPA-RADIUS/EAP based on other configuration). For WPA-PSK, either
1057# wpa_psk or wpa_passphrase must be set and wpa_key_mgmt must include WPA-PSK.
Dmitry Shmidt1f69aa52012-01-24 16:10:04 -08001058# Instead of wpa_psk / wpa_passphrase, wpa_psk_radius might suffice.
Dmitry Shmidt8d520ff2011-05-09 14:06:53 -07001059# For WPA-RADIUS/EAP, ieee8021x must be set (but without dynamic WEP keys),
1060# RADIUS authentication server must be configured, and WPA-EAP must be included
1061# in wpa_key_mgmt.
1062# This field is a bit field that can be used to enable WPA (IEEE 802.11i/D3.0)
1063# and/or WPA2 (full IEEE 802.11i/RSN):
1064# bit0 = WPA
1065# bit1 = IEEE 802.11i/RSN (WPA2) (dot11RSNAEnabled)
1066#wpa=1
1067
1068# WPA pre-shared keys for WPA-PSK. This can be either entered as a 256-bit
1069# secret in hex format (64 hex digits), wpa_psk, or as an ASCII passphrase
1070# (8..63 characters) that will be converted to PSK. This conversion uses SSID
1071# so the PSK changes when ASCII passphrase is used and the SSID is changed.
1072# wpa_psk (dot11RSNAConfigPSKValue)
1073# wpa_passphrase (dot11RSNAConfigPSKPassPhrase)
1074#wpa_psk=0123456789abcdef0123456789abcdef0123456789abcdef0123456789abcdef
1075#wpa_passphrase=secret passphrase
1076
1077# Optionally, WPA PSKs can be read from a separate text file (containing list
1078# of (PSK,MAC address) pairs. This allows more than one PSK to be configured.
1079# Use absolute path name to make sure that the files can be read on SIGHUP
1080# configuration reloads.
1081#wpa_psk_file=/etc/hostapd.wpa_psk
1082
Dmitry Shmidt1f69aa52012-01-24 16:10:04 -08001083# Optionally, WPA passphrase can be received from RADIUS authentication server
1084# This requires macaddr_acl to be set to 2 (RADIUS)
1085# 0 = disabled (default)
1086# 1 = optional; use default passphrase/psk if RADIUS server does not include
1087# Tunnel-Password
1088# 2 = required; reject authentication if RADIUS server does not include
1089# Tunnel-Password
1090#wpa_psk_radius=0
1091
Dmitry Shmidt8d520ff2011-05-09 14:06:53 -07001092# Set of accepted key management algorithms (WPA-PSK, WPA-EAP, or both). The
1093# entries are separated with a space. WPA-PSK-SHA256 and WPA-EAP-SHA256 can be
1094# added to enable SHA256-based stronger algorithms.
1095# (dot11RSNAConfigAuthenticationSuitesTable)
1096#wpa_key_mgmt=WPA-PSK WPA-EAP
1097
1098# Set of accepted cipher suites (encryption algorithms) for pairwise keys
1099# (unicast packets). This is a space separated list of algorithms:
1100# CCMP = AES in Counter mode with CBC-MAC [RFC 3610, IEEE 802.11i/D7.0]
1101# TKIP = Temporal Key Integrity Protocol [IEEE 802.11i/D7.0]
1102# Group cipher suite (encryption algorithm for broadcast and multicast frames)
1103# is automatically selected based on this configuration. If only CCMP is
1104# allowed as the pairwise cipher, group cipher will also be CCMP. Otherwise,
1105# TKIP will be used as the group cipher.
1106# (dot11RSNAConfigPairwiseCiphersTable)
1107# Pairwise cipher for WPA (v1) (default: TKIP)
1108#wpa_pairwise=TKIP CCMP
1109# Pairwise cipher for RSN/WPA2 (default: use wpa_pairwise value)
1110#rsn_pairwise=CCMP
1111
1112# Time interval for rekeying GTK (broadcast/multicast encryption keys) in
1113# seconds. (dot11RSNAConfigGroupRekeyTime)
1114#wpa_group_rekey=600
1115
1116# Rekey GTK when any STA that possesses the current GTK is leaving the BSS.
1117# (dot11RSNAConfigGroupRekeyStrict)
1118#wpa_strict_rekey=1
1119
1120# Time interval for rekeying GMK (master key used internally to generate GTKs
1121# (in seconds).
1122#wpa_gmk_rekey=86400
1123
1124# Maximum lifetime for PTK in seconds. This can be used to enforce rekeying of
1125# PTK to mitigate some attacks against TKIP deficiencies.
1126#wpa_ptk_rekey=600
1127
1128# Enable IEEE 802.11i/RSN/WPA2 pre-authentication. This is used to speed up
1129# roaming be pre-authenticating IEEE 802.1X/EAP part of the full RSN
1130# authentication and key handshake before actually associating with a new AP.
1131# (dot11RSNAPreauthenticationEnabled)
1132#rsn_preauth=1
1133#
1134# Space separated list of interfaces from which pre-authentication frames are
1135# accepted (e.g., 'eth0' or 'eth0 wlan0wds0'. This list should include all
1136# interface that are used for connections to other APs. This could include
1137# wired interfaces and WDS links. The normal wireless data interface towards
1138# associated stations (e.g., wlan0) should not be added, since
1139# pre-authentication is only used with APs other than the currently associated
1140# one.
1141#rsn_preauth_interfaces=eth0
1142
1143# peerkey: Whether PeerKey negotiation for direct links (IEEE 802.11e) is
1144# allowed. This is only used with RSN/WPA2.
1145# 0 = disabled (default)
1146# 1 = enabled
1147#peerkey=1
1148
1149# ieee80211w: Whether management frame protection (MFP) is enabled
1150# 0 = disabled (default)
1151# 1 = optional
1152# 2 = required
1153#ieee80211w=0
1154
Dmitry Shmidtb36ed7c2014-03-17 10:57:26 -07001155# Group management cipher suite
1156# Default: AES-128-CMAC (BIP)
1157# Other options (depending on driver support):
1158# BIP-GMAC-128
1159# BIP-GMAC-256
1160# BIP-CMAC-256
1161# Note: All the stations connecting to the BSS will also need to support the
1162# selected cipher. The default AES-128-CMAC is the only option that is commonly
1163# available in deployed devices.
1164#group_mgmt_cipher=AES-128-CMAC
1165
Dmitry Shmidt8d520ff2011-05-09 14:06:53 -07001166# Association SA Query maximum timeout (in TU = 1.024 ms; for MFP)
1167# (maximum time to wait for a SA Query response)
1168# dot11AssociationSAQueryMaximumTimeout, 1...4294967295
1169#assoc_sa_query_max_timeout=1000
1170
1171# Association SA Query retry timeout (in TU = 1.024 ms; for MFP)
1172# (time between two subsequent SA Query requests)
1173# dot11AssociationSAQueryRetryTimeout, 1...4294967295
1174#assoc_sa_query_retry_timeout=201
1175
Dmitry Shmidtc55524a2011-07-07 11:18:38 -07001176# disable_pmksa_caching: Disable PMKSA caching
1177# This parameter can be used to disable caching of PMKSA created through EAP
1178# authentication. RSN preauthentication may still end up using PMKSA caching if
1179# it is enabled (rsn_preauth=1).
1180# 0 = PMKSA caching enabled (default)
1181# 1 = PMKSA caching disabled
1182#disable_pmksa_caching=0
Dmitry Shmidt8d520ff2011-05-09 14:06:53 -07001183
1184# okc: Opportunistic Key Caching (aka Proactive Key Caching)
1185# Allow PMK cache to be shared opportunistically among configured interfaces
1186# and BSSes (i.e., all configurations within a single hostapd process).
1187# 0 = disabled (default)
1188# 1 = enabled
1189#okc=1
1190
Dmitry Shmidta54fa5f2013-01-15 13:53:35 -08001191# SAE threshold for anti-clogging mechanism (dot11RSNASAEAntiCloggingThreshold)
1192# This parameter defines how many open SAE instances can be in progress at the
1193# same time before the anti-clogging mechanism is taken into use.
1194#sae_anti_clogging_threshold=5
1195
1196# Enabled SAE finite cyclic groups
1197# SAE implementation are required to support group 19 (ECC group defined over a
1198# 256-bit prime order field). All groups that are supported by the
1199# implementation are enabled by default. This configuration parameter can be
1200# used to specify a limited set of allowed groups. The group values are listed
1201# in the IANA registry:
1202# http://www.iana.org/assignments/ipsec-registry/ipsec-registry.xml#ipsec-registry-9
1203#sae_groups=19 20 21 25 26
Dmitry Shmidt8d520ff2011-05-09 14:06:53 -07001204
1205##### IEEE 802.11r configuration ##############################################
1206
1207# Mobility Domain identifier (dot11FTMobilityDomainID, MDID)
1208# MDID is used to indicate a group of APs (within an ESS, i.e., sharing the
1209# same SSID) between which a STA can use Fast BSS Transition.
1210# 2-octet identifier as a hex string.
1211#mobility_domain=a1b2
1212
1213# PMK-R0 Key Holder identifier (dot11FTR0KeyHolderID)
1214# 1 to 48 octet identifier.
1215# This is configured with nas_identifier (see RADIUS client section above).
1216
1217# Default lifetime of the PMK-RO in minutes; range 1..65535
1218# (dot11FTR0KeyLifetime)
1219#r0_key_lifetime=10000
1220
1221# PMK-R1 Key Holder identifier (dot11FTR1KeyHolderID)
1222# 6-octet identifier as a hex string.
1223#r1_key_holder=000102030405
1224
1225# Reassociation deadline in time units (TUs / 1.024 ms; range 1000..65535)
1226# (dot11FTReassociationDeadline)
1227#reassociation_deadline=1000
1228
1229# List of R0KHs in the same Mobility Domain
1230# format: <MAC address> <NAS Identifier> <128-bit key as hex string>
1231# This list is used to map R0KH-ID (NAS Identifier) to a destination MAC
1232# address when requesting PMK-R1 key from the R0KH that the STA used during the
1233# Initial Mobility Domain Association.
1234#r0kh=02:01:02:03:04:05 r0kh-1.example.com 000102030405060708090a0b0c0d0e0f
1235#r0kh=02:01:02:03:04:06 r0kh-2.example.com 00112233445566778899aabbccddeeff
1236# And so on.. One line per R0KH.
1237
1238# List of R1KHs in the same Mobility Domain
1239# format: <MAC address> <R1KH-ID> <128-bit key as hex string>
1240# This list is used to map R1KH-ID to a destination MAC address when sending
1241# PMK-R1 key from the R0KH. This is also the list of authorized R1KHs in the MD
1242# that can request PMK-R1 keys.
1243#r1kh=02:01:02:03:04:05 02:11:22:33:44:55 000102030405060708090a0b0c0d0e0f
1244#r1kh=02:01:02:03:04:06 02:11:22:33:44:66 00112233445566778899aabbccddeeff
1245# And so on.. One line per R1KH.
1246
1247# Whether PMK-R1 push is enabled at R0KH
1248# 0 = do not push PMK-R1 to all configured R1KHs (default)
1249# 1 = push PMK-R1 to all configured R1KHs whenever a new PMK-R0 is derived
1250#pmk_r1_push=1
1251
1252##### Neighbor table ##########################################################
1253# Maximum number of entries kept in AP table (either for neigbor table or for
1254# detecting Overlapping Legacy BSS Condition). The oldest entry will be
1255# removed when adding a new entry that would make the list grow over this
1256# limit. Note! WFA certification for IEEE 802.11g requires that OLBC is
1257# enabled, so this field should not be set to 0 when using IEEE 802.11g.
1258# default: 255
1259#ap_table_max_size=255
1260
1261# Number of seconds of no frames received after which entries may be deleted
1262# from the AP table. Since passive scanning is not usually performed frequently
1263# this should not be set to very small value. In addition, there is no
1264# guarantee that every scan cycle will receive beacon frames from the
1265# neighboring APs.
1266# default: 60
1267#ap_table_expiration_time=3600
1268
1269
1270##### Wi-Fi Protected Setup (WPS) #############################################
1271
1272# WPS state
1273# 0 = WPS disabled (default)
1274# 1 = WPS enabled, not configured
1275# 2 = WPS enabled, configured
1276#wps_state=2
1277
Dmitry Shmidt444d5672013-04-01 13:08:44 -07001278# Whether to manage this interface independently from other WPS interfaces
1279# By default, a single hostapd process applies WPS operations to all configured
1280# interfaces. This parameter can be used to disable that behavior for a subset
1281# of interfaces. If this is set to non-zero for an interface, WPS commands
1282# issued on that interface do not apply to other interfaces and WPS operations
1283# performed on other interfaces do not affect this interface.
1284#wps_independent=0
1285
Dmitry Shmidt8d520ff2011-05-09 14:06:53 -07001286# AP can be configured into a locked state where new WPS Registrar are not
1287# accepted, but previously authorized Registrars (including the internal one)
1288# can continue to add new Enrollees.
1289#ap_setup_locked=1
1290
1291# Universally Unique IDentifier (UUID; see RFC 4122) of the device
1292# This value is used as the UUID for the internal WPS Registrar. If the AP
1293# is also using UPnP, this value should be set to the device's UPnP UUID.
1294# If not configured, UUID will be generated based on the local MAC address.
1295#uuid=12345678-9abc-def0-1234-56789abcdef0
1296
1297# Note: If wpa_psk_file is set, WPS is used to generate random, per-device PSKs
1298# that will be appended to the wpa_psk_file. If wpa_psk_file is not set, the
1299# default PSK (wpa_psk/wpa_passphrase) will be delivered to Enrollees. Use of
1300# per-device PSKs is recommended as the more secure option (i.e., make sure to
1301# set wpa_psk_file when using WPS with WPA-PSK).
1302
1303# When an Enrollee requests access to the network with PIN method, the Enrollee
1304# PIN will need to be entered for the Registrar. PIN request notifications are
1305# sent to hostapd ctrl_iface monitor. In addition, they can be written to a
1306# text file that could be used, e.g., to populate the AP administration UI with
1307# pending PIN requests. If the following variable is set, the PIN requests will
1308# be written to the configured file.
1309#wps_pin_requests=/var/run/hostapd_wps_pin_requests
1310
1311# Device Name
1312# User-friendly description of device; up to 32 octets encoded in UTF-8
1313#device_name=Wireless AP
1314
1315# Manufacturer
1316# The manufacturer of the device (up to 64 ASCII characters)
1317#manufacturer=Company
1318
1319# Model Name
1320# Model of the device (up to 32 ASCII characters)
1321#model_name=WAP
1322
1323# Model Number
1324# Additional device description (up to 32 ASCII characters)
1325#model_number=123
1326
1327# Serial Number
1328# Serial number of the device (up to 32 characters)
1329#serial_number=12345
1330
1331# Primary Device Type
1332# Used format: <categ>-<OUI>-<subcateg>
1333# categ = Category as an integer value
1334# OUI = OUI and type octet as a 4-octet hex-encoded value; 0050F204 for
1335# default WPS OUI
1336# subcateg = OUI-specific Sub Category as an integer value
1337# Examples:
1338# 1-0050F204-1 (Computer / PC)
1339# 1-0050F204-2 (Computer / Server)
1340# 5-0050F204-1 (Storage / NAS)
1341# 6-0050F204-1 (Network Infrastructure / AP)
1342#device_type=6-0050F204-1
1343
1344# OS Version
1345# 4-octet operating system version number (hex string)
1346#os_version=01020300
1347
1348# Config Methods
1349# List of the supported configuration methods
1350# Available methods: usba ethernet label display ext_nfc_token int_nfc_token
1351# nfc_interface push_button keypad virtual_display physical_display
1352# virtual_push_button physical_push_button
1353#config_methods=label virtual_display virtual_push_button keypad
1354
Jouni Malinen87fd2792011-05-16 18:35:42 +03001355# WPS capability discovery workaround for PBC with Windows 7
1356# Windows 7 uses incorrect way of figuring out AP's WPS capabilities by acting
1357# as a Registrar and using M1 from the AP. The config methods attribute in that
1358# message is supposed to indicate only the configuration method supported by
1359# the AP in Enrollee role, i.e., to add an external Registrar. For that case,
1360# PBC shall not be used and as such, the PushButton config method is removed
1361# from M1 by default. If pbc_in_m1=1 is included in the configuration file,
1362# the PushButton config method is left in M1 (if included in config_methods
1363# parameter) to allow Windows 7 to use PBC instead of PIN (e.g., from a label
1364# in the AP).
1365#pbc_in_m1=1
1366
Dmitry Shmidt8d520ff2011-05-09 14:06:53 -07001367# Static access point PIN for initial configuration and adding Registrars
1368# If not set, hostapd will not allow external WPS Registrars to control the
1369# access point. The AP PIN can also be set at runtime with hostapd_cli
1370# wps_ap_pin command. Use of temporary (enabled by user action) and random
1371# AP PIN is much more secure than configuring a static AP PIN here. As such,
1372# use of the ap_pin parameter is not recommended if the AP device has means for
1373# displaying a random PIN.
1374#ap_pin=12345670
1375
1376# Skip building of automatic WPS credential
1377# This can be used to allow the automatically generated Credential attribute to
1378# be replaced with pre-configured Credential(s).
1379#skip_cred_build=1
1380
1381# Additional Credential attribute(s)
1382# This option can be used to add pre-configured Credential attributes into M8
1383# message when acting as a Registrar. If skip_cred_build=1, this data will also
1384# be able to override the Credential attribute that would have otherwise been
1385# automatically generated based on network configuration. This configuration
1386# option points to an external file that much contain the WPS Credential
1387# attribute(s) as binary data.
1388#extra_cred=hostapd.cred
1389
1390# Credential processing
1391# 0 = process received credentials internally (default)
1392# 1 = do not process received credentials; just pass them over ctrl_iface to
1393# external program(s)
1394# 2 = process received credentials internally and pass them over ctrl_iface
1395# to external program(s)
1396# Note: With wps_cred_processing=1, skip_cred_build should be set to 1 and
1397# extra_cred be used to provide the Credential data for Enrollees.
1398#
1399# wps_cred_processing=1 will disabled automatic updates of hostapd.conf file
1400# both for Credential processing and for marking AP Setup Locked based on
1401# validation failures of AP PIN. An external program is responsible on updating
1402# the configuration appropriately in this case.
1403#wps_cred_processing=0
1404
1405# AP Settings Attributes for M7
1406# By default, hostapd generates the AP Settings Attributes for M7 based on the
1407# current configuration. It is possible to override this by providing a file
1408# with pre-configured attributes. This is similar to extra_cred file format,
1409# but the AP Settings attributes are not encapsulated in a Credential
1410# attribute.
1411#ap_settings=hostapd.ap_settings
1412
1413# WPS UPnP interface
1414# If set, support for external Registrars is enabled.
1415#upnp_iface=br0
1416
1417# Friendly Name (required for UPnP)
1418# Short description for end use. Should be less than 64 characters.
1419#friendly_name=WPS Access Point
1420
1421# Manufacturer URL (optional for UPnP)
1422#manufacturer_url=http://www.example.com/
1423
1424# Model Description (recommended for UPnP)
1425# Long description for end user. Should be less than 128 characters.
1426#model_description=Wireless Access Point
1427
1428# Model URL (optional for UPnP)
1429#model_url=http://www.example.com/model/
1430
1431# Universal Product Code (optional for UPnP)
1432# 12-digit, all-numeric code that identifies the consumer package.
1433#upc=123456789012
1434
Dmitry Shmidt1d755d02015-04-28 10:34:29 -07001435# WPS RF Bands (a = 5G, b = 2.4G, g = 2.4G, ag = dual band, ad = 60 GHz)
Dmitry Shmidt1f69aa52012-01-24 16:10:04 -08001436# This value should be set according to RF band(s) supported by the AP if
1437# hw_mode is not set. For dual band dual concurrent devices, this needs to be
1438# set to ag to allow both RF bands to be advertized.
1439#wps_rf_bands=ag
1440
Dmitry Shmidt04949592012-07-19 12:16:46 -07001441# NFC password token for WPS
1442# These parameters can be used to configure a fixed NFC password token for the
1443# AP. This can be generated, e.g., with nfc_pw_token from wpa_supplicant. When
1444# these parameters are used, the AP is assumed to be deployed with a NFC tag
1445# that includes the matching NFC password token (e.g., written based on the
1446# NDEF record from nfc_pw_token).
1447#
1448#wps_nfc_dev_pw_id: Device Password ID (16..65535)
1449#wps_nfc_dh_pubkey: Hexdump of DH Public Key
1450#wps_nfc_dh_privkey: Hexdump of DH Private Key
1451#wps_nfc_dev_pw: Hexdump of Device Password
1452
Dmitry Shmidt8d520ff2011-05-09 14:06:53 -07001453##### Wi-Fi Direct (P2P) ######################################################
1454
1455# Enable P2P Device management
1456#manage_p2p=1
1457
1458# Allow cross connection
1459#allow_cross_connection=1
1460
1461#### TDLS (IEEE 802.11z-2010) #################################################
1462
1463# Prohibit use of TDLS in this BSS
1464#tdls_prohibit=1
1465
1466# Prohibit use of TDLS Channel Switching in this BSS
1467#tdls_prohibit_chan_switch=1
1468
Dmitry Shmidt1f69aa52012-01-24 16:10:04 -08001469##### IEEE 802.11v-2011 #######################################################
1470
1471# Time advertisement
1472# 0 = disabled (default)
1473# 2 = UTC time at which the TSF timer is 0
1474#time_advertisement=2
1475
1476# Local time zone as specified in 8.3 of IEEE Std 1003.1-2004:
1477# stdoffset[dst[offset][,start[/time],end[/time]]]
1478#time_zone=EST5
1479
Dmitry Shmidta54fa5f2013-01-15 13:53:35 -08001480# WNM-Sleep Mode (extended sleep mode for stations)
1481# 0 = disabled (default)
1482# 1 = enabled (allow stations to use WNM-Sleep Mode)
1483#wnm_sleep_mode=1
1484
1485# BSS Transition Management
1486# 0 = disabled (default)
1487# 1 = enabled
1488#bss_transition=1
1489
Dmitry Shmidt6c0da2b2015-01-05 13:08:17 -08001490# Proxy ARP
1491# 0 = disabled (default)
1492# 1 = enabled
1493#proxy_arp=1
1494
Dmitry Shmidt1d755d02015-04-28 10:34:29 -07001495# IPv6 Neighbor Advertisement multicast-to-unicast conversion
1496# This can be used with Proxy ARP to allow multicast NAs to be forwarded to
1497# associated STAs using link layer unicast delivery.
1498# 0 = disabled (default)
1499# 1 = enabled
1500#na_mcast_to_ucast=0
1501
Dmitry Shmidt1f69aa52012-01-24 16:10:04 -08001502##### IEEE 802.11u-2011 #######################################################
1503
1504# Enable Interworking service
1505#interworking=1
1506
1507# Access Network Type
1508# 0 = Private network
1509# 1 = Private network with guest access
1510# 2 = Chargeable public network
1511# 3 = Free public network
1512# 4 = Personal device network
1513# 5 = Emergency services only network
1514# 14 = Test or experimental
1515# 15 = Wildcard
1516#access_network_type=0
1517
1518# Whether the network provides connectivity to the Internet
1519# 0 = Unspecified
1520# 1 = Network provides connectivity to the Internet
1521#internet=1
1522
1523# Additional Step Required for Access
1524# Note: This is only used with open network, i.e., ASRA shall ne set to 0 if
1525# RSN is used.
1526#asra=0
1527
1528# Emergency services reachable
1529#esr=0
1530
1531# Unauthenticated emergency service accessible
1532#uesa=0
1533
1534# Venue Info (optional)
1535# The available values are defined in IEEE Std 802.11u-2011, 7.3.1.34.
1536# Example values (group,type):
1537# 0,0 = Unspecified
1538# 1,7 = Convention Center
1539# 1,13 = Coffee Shop
1540# 2,0 = Unspecified Business
1541# 7,1 Private Residence
1542#venue_group=7
1543#venue_type=1
1544
1545# Homogeneous ESS identifier (optional; dot11HESSID)
1546# If set, this shall be identifical to one of the BSSIDs in the homogeneous
1547# ESS and this shall be set to the same value across all BSSs in homogeneous
1548# ESS.
1549#hessid=02:03:04:05:06:07
1550
1551# Roaming Consortium List
1552# Arbitrary number of Roaming Consortium OIs can be configured with each line
1553# adding a new OI to the list. The first three entries are available through
1554# Beacon and Probe Response frames. Any additional entry will be available only
Dmitry Shmidt61d9df32012-08-29 16:22:06 -07001555# through ANQP queries. Each OI is between 3 and 15 octets and is configured as
Dmitry Shmidt1f69aa52012-01-24 16:10:04 -08001556# a hexstring.
1557#roaming_consortium=021122
1558#roaming_consortium=2233445566
1559
Dmitry Shmidt04949592012-07-19 12:16:46 -07001560# Venue Name information
1561# This parameter can be used to configure one or more Venue Name Duples for
1562# Venue Name ANQP information. Each entry has a two or three character language
1563# code (ISO-639) separated by colon from the venue name string.
1564# Note that venue_group and venue_type have to be set for Venue Name
1565# information to be complete.
1566#venue_name=eng:Example venue
1567#venue_name=fin:Esimerkkipaikka
Dmitry Shmidt56052862013-10-04 10:23:25 -07001568# Alternative format for language:value strings:
1569# (double quoted string, printf-escaped string)
1570#venue_name=P"eng:Example\nvenue"
Dmitry Shmidt04949592012-07-19 12:16:46 -07001571
Dmitry Shmidt61d9df32012-08-29 16:22:06 -07001572# Network Authentication Type
1573# This parameter indicates what type of network authentication is used in the
1574# network.
1575# format: <network auth type indicator (1-octet hex str)> [redirect URL]
1576# Network Authentication Type Indicator values:
1577# 00 = Acceptance of terms and conditions
1578# 01 = On-line enrollment supported
1579# 02 = http/https redirection
1580# 03 = DNS redirection
1581#network_auth_type=00
1582#network_auth_type=02http://www.example.com/redirect/me/here/
1583
1584# IP Address Type Availability
1585# format: <1-octet encoded value as hex str>
1586# (ipv4_type & 0x3f) << 2 | (ipv6_type & 0x3)
1587# ipv4_type:
1588# 0 = Address type not available
1589# 1 = Public IPv4 address available
1590# 2 = Port-restricted IPv4 address available
1591# 3 = Single NATed private IPv4 address available
1592# 4 = Double NATed private IPv4 address available
1593# 5 = Port-restricted IPv4 address and single NATed IPv4 address available
1594# 6 = Port-restricted IPv4 address and double NATed IPv4 address available
1595# 7 = Availability of the address type is not known
1596# ipv6_type:
1597# 0 = Address type not available
1598# 1 = Address type available
1599# 2 = Availability of the address type not known
1600#ipaddr_type_availability=14
1601
1602# Domain Name
1603# format: <variable-octet str>[,<variable-octet str>]
1604#domain_name=example.com,another.example.com,yet-another.example.com
1605
1606# 3GPP Cellular Network information
1607# format: <MCC1,MNC1>[;<MCC2,MNC2>][;...]
1608#anqp_3gpp_cell_net=244,91;310,026;234,56
1609
1610# NAI Realm information
1611# One or more realm can be advertised. Each nai_realm line adds a new realm to
1612# the set. These parameters provide information for stations using Interworking
1613# network selection to allow automatic connection to a network based on
1614# credentials.
1615# format: <encoding>,<NAI Realm(s)>[,<EAP Method 1>][,<EAP Method 2>][,...]
1616# encoding:
1617# 0 = Realm formatted in accordance with IETF RFC 4282
1618# 1 = UTF-8 formatted character string that is not formatted in
1619# accordance with IETF RFC 4282
1620# NAI Realm(s): Semi-colon delimited NAI Realm(s)
1621# EAP Method: <EAP Method>[:<[AuthParam1:Val1]>][<[AuthParam2:Val2]>][...]
Dmitry Shmidt98660862014-03-11 17:26:21 -07001622# EAP Method types, see:
1623# http://www.iana.org/assignments/eap-numbers/eap-numbers.xhtml#eap-numbers-4
Dmitry Shmidt61d9df32012-08-29 16:22:06 -07001624# AuthParam (Table 8-188 in IEEE Std 802.11-2012):
1625# ID 2 = Non-EAP Inner Authentication Type
1626# 1 = PAP, 2 = CHAP, 3 = MSCHAP, 4 = MSCHAPV2
1627# ID 3 = Inner authentication EAP Method Type
1628# ID 5 = Credential Type
1629# 1 = SIM, 2 = USIM, 3 = NFC Secure Element, 4 = Hardware Token,
1630# 5 = Softoken, 6 = Certificate, 7 = username/password, 9 = Anonymous,
1631# 10 = Vendor Specific
1632#nai_realm=0,example.com;example.net
1633# EAP methods EAP-TLS with certificate and EAP-TTLS/MSCHAPv2 with
1634# username/password
1635#nai_realm=0,example.org,13[5:6],21[2:4][5:7]
1636
Dmitry Shmidt051af732013-10-22 13:52:46 -07001637# QoS Map Set configuration
1638#
1639# Comma delimited QoS Map Set in decimal values
1640# (see IEEE Std 802.11-2012, 8.4.2.97)
1641#
1642# format:
1643# [<DSCP Exceptions[DSCP,UP]>,]<UP 0 range[low,high]>,...<UP 7 range[low,high]>
1644#
1645# There can be up to 21 optional DSCP Exceptions which are pairs of DSCP Value
1646# (0..63 or 255) and User Priority (0..7). This is followed by eight DSCP Range
1647# descriptions with DSCP Low Value and DSCP High Value pairs (0..63 or 255) for
1648# each UP starting from 0. If both low and high value are set to 255, the
1649# corresponding UP is not used.
1650#
1651# default: not set
1652#qos_map_set=53,2,22,6,8,15,0,7,255,255,16,31,32,39,255,255,40,47,255,255
1653
Dmitry Shmidt61d9df32012-08-29 16:22:06 -07001654##### Hotspot 2.0 #############################################################
1655
1656# Enable Hotspot 2.0 support
1657#hs20=1
1658
1659# Disable Downstream Group-Addressed Forwarding (DGAF)
1660# This can be used to configure a network where no group-addressed frames are
1661# allowed. The AP will not forward any group-address frames to the stations and
1662# random GTKs are issued for each station to prevent associated stations from
1663# forging such frames to other stations in the BSS.
1664#disable_dgaf=1
1665
Dmitry Shmidtf21452a2014-02-26 10:55:25 -08001666# OSU Server-Only Authenticated L2 Encryption Network
1667#osen=1
1668
1669# ANQP Domain ID (0..65535)
1670# An identifier for a set of APs in an ESS that share the same common ANQP
1671# information. 0 = Some of the ANQP information is unique to this AP (default).
1672#anqp_domain_id=1234
1673
1674# Deauthentication request timeout
1675# If the RADIUS server indicates that the station is not allowed to connect to
1676# the BSS/ESS, the AP can allow the station some time to download a
1677# notification page (URL included in the message). This parameter sets that
1678# timeout in seconds.
1679#hs20_deauth_req_timeout=60
1680
Dmitry Shmidt61d9df32012-08-29 16:22:06 -07001681# Operator Friendly Name
1682# This parameter can be used to configure one or more Operator Friendly Name
1683# Duples. Each entry has a two or three character language code (ISO-639)
1684# separated by colon from the operator friendly name string.
1685#hs20_oper_friendly_name=eng:Example operator
1686#hs20_oper_friendly_name=fin:Esimerkkioperaattori
1687
1688# Connection Capability
1689# This can be used to advertise what type of IP traffic can be sent through the
1690# hotspot (e.g., due to firewall allowing/blocking protocols/ports).
1691# format: <IP Protocol>:<Port Number>:<Status>
1692# IP Protocol: 1 = ICMP, 6 = TCP, 17 = UDP
1693# Port Number: 0..65535
1694# Status: 0 = Closed, 1 = Open, 2 = Unknown
1695# Each hs20_conn_capab line is added to the list of advertised tuples.
1696#hs20_conn_capab=1:0:2
1697#hs20_conn_capab=6:22:1
1698#hs20_conn_capab=17:5060:0
1699
1700# WAN Metrics
1701# format: <WAN Info>:<DL Speed>:<UL Speed>:<DL Load>:<UL Load>:<LMD>
1702# WAN Info: B0-B1: Link Status, B2: Symmetric Link, B3: At Capabity
1703# (encoded as two hex digits)
1704# Link Status: 1 = Link up, 2 = Link down, 3 = Link in test state
1705# Downlink Speed: Estimate of WAN backhaul link current downlink speed in kbps;
1706# 1..4294967295; 0 = unknown
1707# Uplink Speed: Estimate of WAN backhaul link current uplink speed in kbps
1708# 1..4294967295; 0 = unknown
1709# Downlink Load: Current load of downlink WAN connection (scaled to 255 = 100%)
1710# Uplink Load: Current load of uplink WAN connection (scaled to 255 = 100%)
1711# Load Measurement Duration: Duration for measuring downlink/uplink load in
1712# tenths of a second (1..65535); 0 if load cannot be determined
1713#hs20_wan_metrics=01:8000:1000:80:240:3000
1714
1715# Operating Class Indication
1716# List of operating classes the BSSes in this ESS use. The Global operating
1717# classes in Table E-4 of IEEE Std 802.11-2012 Annex E define the values that
1718# can be used in this.
1719# format: hexdump of operating class octets
1720# for example, operating classes 81 (2.4 GHz channels 1-13) and 115 (5 GHz
1721# channels 36-48):
1722#hs20_operating_class=5173
1723
Dmitry Shmidtf21452a2014-02-26 10:55:25 -08001724# OSU icons
1725# <Icon Width>:<Icon Height>:<Language code>:<Icon Type>:<Name>:<file path>
1726#hs20_icon=32:32:eng:image/png:icon32:/tmp/icon32.png
1727#hs20_icon=64:64:eng:image/png:icon64:/tmp/icon64.png
1728
1729# OSU SSID (see ssid2 for format description)
1730# This is the SSID used for all OSU connections to all the listed OSU Providers.
1731#osu_ssid="example"
1732
1733# OSU Providers
1734# One or more sets of following parameter. Each OSU provider is started by the
1735# mandatory osu_server_uri item. The other parameters add information for the
1736# last added OSU provider.
1737#
1738#osu_server_uri=https://example.com/osu/
1739#osu_friendly_name=eng:Example operator
1740#osu_friendly_name=fin:Esimerkkipalveluntarjoaja
1741#osu_nai=anonymous@example.com
1742#osu_method_list=1 0
1743#osu_icon=icon32
1744#osu_icon=icon64
1745#osu_service_desc=eng:Example services
1746#osu_service_desc=fin:Esimerkkipalveluja
1747#
1748#osu_server_uri=...
1749
Dmitry Shmidt8da800a2013-04-24 12:57:01 -07001750##### TESTING OPTIONS #########################################################
1751#
1752# The options in this section are only available when the build configuration
1753# option CONFIG_TESTING_OPTIONS is set while compiling hostapd. They allow
1754# testing some scenarios that are otherwise difficult to reproduce.
1755#
1756# Ignore probe requests sent to hostapd with the given probability, must be a
1757# floating point number in the range [0, 1).
1758#ignore_probe_probability=0.0
1759#
1760# Ignore authentication frames with the given probability
1761#ignore_auth_probability=0.0
1762#
1763# Ignore association requests with the given probability
1764#ignore_assoc_probability=0.0
1765#
1766# Ignore reassociation requests with the given probability
1767#ignore_reassoc_probability=0.0
Dmitry Shmidt51b6ea82013-05-08 10:42:09 -07001768#
1769# Corrupt Key MIC in GTK rekey EAPOL-Key frames with the given probability
1770#corrupt_gtk_rekey_mic_probability=0.0
Dmitry Shmidt8da800a2013-04-24 12:57:01 -07001771
Dmitry Shmidt8d520ff2011-05-09 14:06:53 -07001772##### Multiple BSSID support ##################################################
1773#
1774# Above configuration is using the default interface (wlan#, or multi-SSID VLAN
1775# interfaces). Other BSSIDs can be added by using separator 'bss' with
1776# default interface name to be allocated for the data packets of the new BSS.
1777#
1778# hostapd will generate BSSID mask based on the BSSIDs that are
1779# configured. hostapd will verify that dev_addr & MASK == dev_addr. If this is
1780# not the case, the MAC address of the radio must be changed before starting
1781# hostapd (ifconfig wlan0 hw ether <MAC addr>). If a BSSID is configured for
1782# every secondary BSS, this limitation is not applied at hostapd and other
1783# masks may be used if the driver supports them (e.g., swap the locally
1784# administered bit)
1785#
1786# BSSIDs are assigned in order to each BSS, unless an explicit BSSID is
1787# specified using the 'bssid' parameter.
1788# If an explicit BSSID is specified, it must be chosen such that it:
1789# - results in a valid MASK that covers it and the dev_addr
1790# - is not the same as the MAC address of the radio
1791# - is not the same as any other explicitly specified BSSID
1792#
Dmitry Shmidtdf5a7e42014-04-02 12:59:59 -07001793# Not all drivers support multiple BSSes. The exact mechanism for determining
1794# the driver capabilities is driver specific. With the current (i.e., a recent
1795# kernel) drivers using nl80211, this information can be checked with "iw list"
1796# (search for "valid interface combinations").
1797#
Dmitry Shmidt8d520ff2011-05-09 14:06:53 -07001798# Please note that hostapd uses some of the values configured for the first BSS
1799# as the defaults for the following BSSes. However, it is recommended that all
1800# BSSes include explicit configuration of all relevant configuration items.
1801#
1802#bss=wlan0_0
1803#ssid=test2
1804# most of the above items can be used here (apart from radio interface specific
1805# items, like channel)
1806
1807#bss=wlan0_1
1808#bssid=00:13:10:95:fe:0b
1809# ...