Files
android_external_wpa_suppli…/hostapd
Sunil Ravi 036cec531d [wpa_supplicant] cumilative patch from commit bb945b98f
Bug: 275651698
Test: Connect to open, WPA2, WPA3 and passpoint network
Test: Establish P2P connection
Test: Basic SoftAp tests
Test: Regression test (b/275948027)

BYPASS_INCLUSIVE_LANGUAGE_REASON=Merged from opne source
bb945b98f Add 40 and 80 MHz channels 165 and 173 for 5 GHz IBSS/mesh
0059fa5ba 6 GHz: Fix secondary channel setting
744295c8b Add 6 GHz channel validation during channel switching
5349a45d3 Set interface state as inactive if mesh bringup fails
a4af79624 Handle signal termination in hostapd_cli for all cases
cf8f13ac8 Add support to send 320 MHz bandwidth through vendor subcmd
a0403c023 EHT: Validate the puncturing bitmap for ACS
af0f60e7d EHT: Calculate puncturing bitmap for ACS
f3206fbe9 EHT: Configuration option for ACS puncturing threshold
e3621867c EHT: Process puncturing bitmap from channel switch event
e277e577c nl80211: Send EHT puncturing bitmap to the driver for switch command
29a882bed EHT: Configure puncturing bitmap during channel switch
4942b19ff EHT: Send puncturing bitmap to the driver for AP bring up
f9fc2eabb EHT: Add puncturing bitmap to EHT Operation element
46a5d989d EHT: Downgrade bandwidths for VHT and HE when using puncturing
7618269ec EHT: Validate puncturing bitmap
9102fda31 EHT: Add configuration option for puncturing in AP mode
9e79439fc nl80211: Retrieve driver support for EHT puncturing
507be376c Sync with wireless-next.git include/uapi/linux/nl80211.h
591256a8c FILS: 320 MHz support in FD frame
903e3a1e6 FILS: Fix maximum NSS calculation for FD frame
ecae45ff6 FILS: Make HE a requirement for FILS discovery
4e86692ff AP: Fix 6 GHz AP setup after disable-enable
a34b8477a ml80211: Put wiphy idx to obtain correct country code
1491fc64a Define QCA vendor per-enum 64-bit pad attributes
55e31699e qca-vendor: Add QCA_WLAN_VENDOR_ATTR_LL_STATS_IFACE_NF_CAL_VAL
b1f85957c Add QCA vendor commands to set and get MLO links state information
44b32a752 mesh: Add EHT support
c4cb62ca8 WPA_AUTH: MLO: Add functions to get the AA and SPA
cab963e9f AP: Split check_assoc_ies()
7a7a2256c common: Support parsing link specific association request
b39e35693 common: Add support for clearing elements
0b2fc4268 common: Split ieee8021_parse_elems()
df6561ec0 nl80211: AP MLD support for adding multi link stations
b8b4ceb8d nl80211: Properly stop and deinit MLO AP
2f8fc46ed nl80211: Provide link_id in EAPOL_RX and RX_MGMT events
821374d43 nl80211: Introduce and implement a callback to add an MLO link for AP MLD
47269be36 nl80211: Refactor i802_bss to support multiple links
eb146ee80 AP: Add some bridge port attribute settings
f628e6b30 nl80211: Make sure scan frequency debug buffer is NUL terminated
41d23254b nl80211: Fix frequencies array boundary check for scanned frequencies
a9012070a Android: Add wowlan_disconnect_on_deinit to template configuration
e2ea0fd70 EST: Write the RSA private key using the standard PRIVATE KEY format
bfd236df2 webkit2: Avoid deprecated function call
2c3202682 P2P: Filter out 6 GHz frequencies if not allowed for P2P connection
b2bf7e39e Update PMK in wpa_sm when roam+auth event indicated with authorized flag
6b9c86466 nl80211: Replace the channel flags for VHT support
6f63aca7b DPP: Allow both STA and AP configObject to be set
7292e30b7 DPP: Fix @CONF-OBJ-SEP@ parsing for multiple configs
c31600ce1 P2P: Allow GO BSSID to be specified for P2P_GROUP_ADD commands
0430756e6 P2P: Optimize join scan frequency
b3921db42 nl80211: Add frequency info in start AP command
40c139664 macsec_linux: Add support for MACsec hardware offload
6d24673ab mka: Allow configuration of MACsec hardware offload
3081a9cb6 hostapd: Output country_code and country3 when using STATUS
91ad7a309 FT: Store PTKSA entry for the correct BSSID in the FT protocol case
3f3e356fa Mark addr argument to storing PTKSA const
242c3ad99 FT: Store PTKSA from FT protocol
ba6954874 Mark wpa_auth_remove_ptksa() static
3b1ad1334 FT: Include KDK in FT specific PTK derivation on the AP
870a5bdc0 nl80211: Report guard interval and dual carrier modulation
edcad193a dbus: Add inactive time to D-Bus signal info
a678a510f dbus: Add D-Bus signal for PSK mismatch heuristics
691f729d5 P2P: Make invitation flow less aggressive
f4a7e2a07 Rework IBSS/mesh 80 MHz channel selection
f91f971bd Fix creating 6 GHz IBSS/mesh on 5/6 GHz-capable PHYs
c623cee42 Make arrays static const in ibss_mesh_select_*()
64043e615 Split ibss_mesh_setup_freq() into multiple functions
8085a7e65 wpa_supplicant: Add option to explicitly set 4addr mode
1ffc7d1c6 Apply bias towards 6 GHz in roaming
faa410292 WNM: Event report handling for BSS color collision and in-use
97405be96 Small textual improvements to wpa_supplicant man page
ec02a0e93 hostapd: Output hw_mode when using STATUS
390e24c6c EAP-TTLS server: Add Ident field to MS-CHAP-Error
4ae798a22 P2P: Pick the best driver pref freq for invitation process
6c75f1dfa Send broadcast Probe Response frames on the 6 GHz band
edfcb2f1a MLD STA: Indicate MLO support in NL80211_CMD_CONNECT
c91852044 MLD STA: Add support for SAE external authentication offload to userspace
575712450 qca-vendor: Add QCA_WLAN_VENDOR_MCC_QUOTA_TYPE_LOW_LATENCY
ba150059d FT: Store PMK-R0/PMK-R1 after EAPOL-Key msg 2/4 MIC validation
56662f36d Refine vendor subcmd QCA_NL80211_VENDOR_SUBCMD_ROAM_STATS
72b8193f4 MACsec: Remove EAP Session-Id length constraint
3915e8834 hostapd: Report error on unknown ACCEPT_ACL/DENY_ACL commands
2cff340d1 utils: Move log2pcap to python3
12de8112b Fix BSS age underflow
d31c2b43a Fix segfault in case of an invalid configuration
a32b424a3 MLD STA: Use AP MLD address in PMKSA cache attempts for driver-SME case
8c4790cef MLD STA: Store PMKSA with AP MLD address for MLO connection event
bf124a03d SAE: Update PT value at later point for SME cases, if needed
1aadcca0a P2P: Enable SAE-H2E for client when joining a 6 GHz group
37f8257c4 SAE: Extend automatic enabling of H2E on 6 GHz to additional cases
89377c6b9 OCV: Fix build without CONFIG_OCV=y
2e47ea22c P2P: Fix handling Service Discovery Response received by GO device
dc7e330e0 Set OCV capability based on Association Request frame RSNE
831be6514 WPS: Do not indicate incorrect PBC overlap based on partner link
c9fc12425 P2P: Make wpas_p2p_notif_pbc_overlap() static

Change-Id: I1eb61fc82b98b937a2ff37a30e60e28129fe143d
Merged-In: I1eb61fc82b98b937a2ff37a30e60e28129fe143d
2023-04-12 21:23:46 +00:00
..
2011-05-09 14:24:08 -07:00

hostapd - user space IEEE 802.11 AP and IEEE 802.1X/WPA/WPA2/EAP
	  Authenticator and RADIUS authentication server
================================================================

Copyright (c) 2002-2022, Jouni Malinen <j@w1.fi> and contributors
All Rights Reserved.

This program is licensed under the BSD license (the one with
advertisement clause removed).

If you are submitting changes to the project, please see CONTRIBUTIONS
file for more instructions.



License
-------

This software may be distributed, used, and modified under the terms of
BSD license:

Redistribution and use in source and binary forms, with or without
modification, are permitted provided that the following conditions are
met:

1. Redistributions of source code must retain the above copyright
   notice, this list of conditions and the following disclaimer.

2. Redistributions in binary form must reproduce the above copyright
   notice, this list of conditions and the following disclaimer in the
   documentation and/or other materials provided with the distribution.

3. Neither the name(s) of the above-listed copyright holder(s) nor the
   names of its contributors may be used to endorse or promote products
   derived from this software without specific prior written permission.

THIS SOFTWARE IS PROVIDED BY THE COPYRIGHT HOLDERS AND CONTRIBUTORS
"AS IS" AND ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT
LIMITED TO, THE IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR
A PARTICULAR PURPOSE ARE DISCLAIMED. IN NO EVENT SHALL THE COPYRIGHT
OWNER OR CONTRIBUTORS BE LIABLE FOR ANY DIRECT, INDIRECT, INCIDENTAL,
SPECIAL, EXEMPLARY, OR CONSEQUENTIAL DAMAGES (INCLUDING, BUT NOT
LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS OR SERVICES; LOSS OF USE,
DATA, OR PROFITS; OR BUSINESS INTERRUPTION) HOWEVER CAUSED AND ON ANY
THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT LIABILITY, OR TORT
(INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY OUT OF THE USE
OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF SUCH DAMAGE.



Introduction
============

Originally, hostapd was an optional user space component for Host AP
driver. It adds more features to the basic IEEE 802.11 management
included in the kernel driver: using external RADIUS authentication
server for MAC address based access control, IEEE 802.1X Authenticator
and dynamic WEP keying, RADIUS accounting, WPA/WPA2 (IEEE 802.11i/RSN)
Authenticator and dynamic TKIP/CCMP keying.

The current version includes support for other drivers, an integrated
EAP server (i.e., allow full authentication without requiring
an external RADIUS authentication server), and RADIUS authentication
server for EAP authentication.


Requirements
------------

Current hardware/software requirements:
- drivers:
	Host AP driver for Prism2/2.5/3.
	(http://w1.fi/hostap-driver.html)
	Please note that station firmware version needs to be 1.7.0 or newer
	to work in WPA mode.

	mac80211-based drivers that support AP mode (with driver=nl80211).
	This includes drivers for Atheros (ath9k) and Broadcom (b43)
	chipsets.

	Any wired Ethernet driver for wired IEEE 802.1X authentication
	(experimental code)

	FreeBSD -current
	BSD net80211 layer (e.g., Atheros driver)


Build configuration
-------------------

In order to be able to build hostapd, you will need to create a build
time configuration file, .config that selects which optional
components are included. See defconfig file for example configuration
and list of available options.



IEEE 802.1X
===========

IEEE Std 802.1X-2001 is a standard for port-based network access
control. In case of IEEE 802.11 networks, a "virtual port" is used
between each associated station and the AP. IEEE 802.11 specifies
minimal authentication mechanism for stations, whereas IEEE 802.1X
introduces a extensible mechanism for authenticating and authorizing
users.

IEEE 802.1X uses elements called Supplicant, Authenticator, Port
Access Entity, and Authentication Server. Supplicant is a component in
a station and it performs the authentication with the Authentication
Server. An access point includes an Authenticator that relays the packets
between a Supplicant and an Authentication Server. In addition, it has a
Port Access Entity (PAE) with Authenticator functionality for
controlling the virtual port authorization, i.e., whether to accept
packets from or to the station.

IEEE 802.1X uses Extensible Authentication Protocol (EAP). The frames
between a Supplicant and an Authenticator are sent using EAP over LAN
(EAPOL) and the Authenticator relays these frames to the Authentication
Server (and similarly, relays the messages from the Authentication
Server to the Supplicant). The Authentication Server can be colocated with the
Authenticator, in which case there is no need for additional protocol
for EAP frame transmission. However, a more common configuration is to
use an external Authentication Server and encapsulate EAP frame in the
frames used by that server. RADIUS is suitable for this, but IEEE
802.1X would also allow other mechanisms.

Host AP driver includes PAE functionality in the kernel driver. It
is a relatively simple mechanism for denying normal frames going to
or coming from an unauthorized port. PAE allows IEEE 802.1X related
frames to be passed between the Supplicant and the Authenticator even
on an unauthorized port.

User space daemon, hostapd, includes Authenticator functionality. It
receives 802.1X (EAPOL) frames from the Supplicant using the wlan#ap
device that is also used with IEEE 802.11 management frames. The
frames to the Supplicant are sent using the same device.

The normal configuration of the Authenticator would use an external
Authentication Server. hostapd supports RADIUS encapsulation of EAP
packets, so the Authentication Server should be a RADIUS server, like
FreeRADIUS (http://www.freeradius.org/). The Authenticator in hostapd
relays the frames between the Supplicant and the Authentication
Server. It also controls the PAE functionality in the kernel driver by
controlling virtual port authorization, i.e., station-AP
connection, based on the IEEE 802.1X state.

When a station would like to use the services of an access point, it
will first perform IEEE 802.11 authentication. This is normally done
with open systems authentication, so there is no security. After
this, IEEE 802.11 association is performed. If IEEE 802.1X is
configured to be used, the virtual port for the station is set in
Unauthorized state and only IEEE 802.1X frames are accepted at this
point. The Authenticator will then ask the Supplicant to authenticate
with the Authentication Server. After this is completed successfully,
the virtual port is set to Authorized state and frames from and to the
station are accepted.

Host AP configuration for IEEE 802.1X
-------------------------------------

The user space daemon has its own configuration file that can be used to
define AP options. Distribution package contains an example
configuration file (hostapd/hostapd.conf) that can be used as a basis
for configuration. It includes examples of all supported configuration
options and short description of each option. hostapd should be started
with full path to the configuration file as the command line argument,
e.g., './hostapd /etc/hostapd.conf'. If you have more that one wireless
LAN card, you can use one hostapd process for multiple interfaces by
giving a list of configuration files (one per interface) in the command
line.

hostapd includes a minimal co-located IEEE 802.1X server which can be
used to test IEEE 802.1X authentication. However, it should not be
used in normal use since it does not provide any security. This can be
configured by setting ieee8021x and minimal_eap options in the
configuration file.

An external Authentication Server (RADIUS) is configured with
auth_server_{addr,port,shared_secret} options. In addition,
ieee8021x and own_ip_addr must be set for this mode. With such
configuration, the co-located Authentication Server is not used and EAP
frames will be relayed using EAPOL between the Supplicant and the
Authenticator and RADIUS encapsulation between the Authenticator and
the Authentication Server. Other than this, the functionality is similar
to the case with the co-located Authentication Server.

Authentication Server
---------------------

Any RADIUS server supporting EAP should be usable as an IEEE 802.1X
Authentication Server with hostapd Authenticator. FreeRADIUS
(http://www.freeradius.org/) has been successfully tested with hostapd
Authenticator.

Automatic WEP key configuration
-------------------------------

EAP/TLS generates a session key that can be used to send WEP keys from
an AP to authenticated stations. The Authenticator in hostapd can be
configured to automatically select a random default/broadcast key
(shared by all authenticated stations) with wep_key_len_broadcast
option (5 for 40-bit WEP or 13 for 104-bit WEP). In addition,
wep_key_len_unicast option can be used to configure individual unicast
keys for stations. This requires support for individual keys in the
station driver.

WEP keys can be automatically updated by configuring rekeying. This
will improve security of the network since same WEP key will only be
used for a limited period of time. wep_rekey_period option sets the
interval for rekeying in seconds.


WPA/WPA2
========

Features
--------

Supported WPA/IEEE 802.11i features:
- WPA-PSK ("WPA-Personal")
- WPA with EAP (e.g., with RADIUS authentication server) ("WPA-Enterprise")
- key management for CCMP, TKIP, WEP104, WEP40
- RSN/WPA2 (IEEE 802.11i), including PMKSA caching and pre-authentication

WPA
---

The original security mechanism of IEEE 802.11 standard was not
designed to be strong and has proved to be insufficient for most
networks that require some kind of security. Task group I (Security)
of IEEE 802.11 working group (http://www.ieee802.org/11/) has worked
to address the flaws of the base standard and has in practice
completed its work in May 2004. The IEEE 802.11i amendment to the IEEE
802.11 standard was approved in June 2004 and this amendment was
published in July 2004.

Wi-Fi Alliance (http://www.wi-fi.org/) used a draft version of the
IEEE 802.11i work (draft 3.0) to define a subset of the security
enhancements that can be implemented with existing wlan hardware. This
is called Wi-Fi Protected Access<TM> (WPA). This has now become a
mandatory component of interoperability testing and certification done
by Wi-Fi Alliance.

IEEE 802.11 standard defined wired equivalent privacy (WEP) algorithm
for protecting wireless networks. WEP uses RC4 with 40-bit keys,
24-bit initialization vector (IV), and CRC32 to protect against packet
forgery. All these choices have proven to be insufficient: key space is
too small against current attacks, RC4 key scheduling is insufficient
(beginning of the pseudorandom stream should be skipped), IV space is
too small and IV reuse makes attacks easier, there is no replay
protection, and non-keyed authentication does not protect against bit
flipping packet data.

WPA is an intermediate solution for the security issues. It uses
Temporal Key Integrity Protocol (TKIP) to replace WEP. TKIP is a
compromise on strong security and possibility to use existing
hardware. It still uses RC4 for the encryption like WEP, but with
per-packet RC4 keys. In addition, it implements replay protection,
keyed packet authentication mechanism (Michael MIC).

Keys can be managed using two different mechanisms. WPA can either use
an external authentication server (e.g., RADIUS) and EAP just like
IEEE 802.1X is using or pre-shared keys without need for additional
servers. Wi-Fi calls these "WPA-Enterprise" and "WPA-Personal",
respectively. Both mechanisms will generate a master session key for
the Authenticator (AP) and Supplicant (client station).

WPA implements a new key handshake (4-Way Handshake and Group Key
Handshake) for generating and exchanging data encryption keys between
the Authenticator and Supplicant. This handshake is also used to
verify that both Authenticator and Supplicant know the master session
key. These handshakes are identical regardless of the selected key
management mechanism (only the method for generating master session
key changes).


IEEE 802.11i / WPA2
-------------------

The design for parts of IEEE 802.11i that were not included in WPA has
finished (May 2004) and this amendment to IEEE 802.11 was approved in
June 2004. Wi-Fi Alliance is using the final IEEE 802.11i as a new
version of WPA called WPA2. This includes, e.g., support for more
robust encryption algorithm (CCMP: AES in Counter mode with CBC-MAC)
to replace TKIP and optimizations for handoff (reduced number of
messages in initial key handshake, pre-authentication, and PMKSA caching).

Some wireless LAN vendors are already providing support for CCMP in
their WPA products. There is no "official" interoperability
certification for CCMP and/or mixed modes using both TKIP and CCMP, so
some interoperability issues can be expected even though many
combinations seem to be working with equipment from different vendors.
Testing for WPA2 is likely to start during the second half of 2004.

hostapd configuration for WPA/WPA2
----------------------------------

TODO

# Enable WPA. Setting this variable configures the AP to require WPA (either
# WPA-PSK or WPA-RADIUS/EAP based on other configuration). For WPA-PSK, either
# wpa_psk or wpa_passphrase must be set and wpa_key_mgmt must include WPA-PSK.
# For WPA-RADIUS/EAP, ieee8021x must be set (but without dynamic WEP keys),
# RADIUS authentication server must be configured, and WPA-EAP must be included
# in wpa_key_mgmt.
# This field is a bit field that can be used to enable WPA (IEEE 802.11i/D3.0)
# and/or WPA2 (full IEEE 802.11i/RSN):
# bit0 = WPA
# bit1 = IEEE 802.11i/RSN (WPA2)
#wpa=1

# WPA pre-shared keys for WPA-PSK. This can be either entered as a 256-bit
# secret in hex format (64 hex digits), wpa_psk, or as an ASCII passphrase
# (8..63 characters) that will be converted to PSK. This conversion uses SSID
# so the PSK changes when ASCII passphrase is used and the SSID is changed.
#wpa_psk=0123456789abcdef0123456789abcdef0123456789abcdef0123456789abcdef
#wpa_passphrase=secret passphrase

# Set of accepted key management algorithms (WPA-PSK, WPA-EAP, or both). The
# entries are separated with a space.
#wpa_key_mgmt=WPA-PSK WPA-EAP

# Set of accepted cipher suites (encryption algorithms) for pairwise keys
# (unicast packets). This is a space separated list of algorithms:
# CCMP = AES in Counter mode with CBC-MAC [RFC 3610, IEEE 802.11i]
# TKIP = Temporal Key Integrity Protocol [IEEE 802.11i]
# Group cipher suite (encryption algorithm for broadcast and multicast frames)
# is automatically selected based on this configuration. If only CCMP is
# allowed as the pairwise cipher, group cipher will also be CCMP. Otherwise,
# TKIP will be used as the group cipher.
#wpa_pairwise=TKIP CCMP

# Time interval for rekeying GTK (broadcast/multicast encryption keys) in
# seconds.
#wpa_group_rekey=600

# Time interval for rekeying GMK (master key used internally to generate GTKs
# (in seconds).
#wpa_gmk_rekey=86400

# Enable IEEE 802.11i/RSN/WPA2 pre-authentication. This is used to speed up
# roaming be pre-authenticating IEEE 802.1X/EAP part of the full RSN
# authentication and key handshake before actually associating with a new AP.
#rsn_preauth=1
#
# Space separated list of interfaces from which pre-authentication frames are
# accepted (e.g., 'eth0' or 'eth0 wlan0wds0'. This list should include all
# interface that are used for connections to other APs. This could include
# wired interfaces and WDS links. The normal wireless data interface towards
# associated stations (e.g., wlan0) should not be added, since
# pre-authentication is only used with APs other than the currently associated
# one.
#rsn_preauth_interfaces=eth0