xref: /openwifi/README.md (revision abdb610f56e6ff7bc54e8ad29637bde718951d91)
1<!--
2Author: Xianjun jiao, Michael Mehari, Wei Liu
3SPDX-FileCopyrightText: 2019 UGent
4SPDX-License-Identifier: AGPL-3.0-or-later
5-->
6
7# openwifi
8<img src="./openwifi-arch.jpg" width="900">
9
10**openwifi:** Linux mac80211 compatible full-stack IEEE802.11/Wi-Fi design based on SDR (Software Defined Radio).
11
12This repository includes Linux driver and software. [openwifi-hw](https://github.com/open-sdr/openwifi-hw) repository has the FPGA design. It is **YOUR RESPONSIBILITY** to follow your **LOCAL SPECTRUM REGULATION** or use **CABLE** to avoid potential interference over the air.
13
14[[Quick start](#Quick-start)]
15[[Project document](doc/README.md)]
16[[Application notes](doc/app_notes/README.md)]
17[[Videos](doc/videos.md)]
18[[Publications and How to Cite](doc/publications.md)]
19[[maillist](https://lists.ugent.be/wws/subscribe/openwifi)]
20
21Openwifi code has dual licenses. [AGPLv3](https://github.com/open-sdr/openwifi/blob/master/LICENSE) is the opensource license. For non-opensource and advanced feature license, please contact [email protected]. Openwifi project also leverages some 3rd party modules. It is user's duty to check and follow licenses of those modules according to the purpose/usage. You can find [an example explanation from Analog Devices](https://github.com/analogdevicesinc/hdl/blob/master/LICENSE) for this compound license conditions. [[How to contribute]](https://github.com/open-sdr/openwifi/blob/master/CONTRIBUTING.md).
22
23**Features:**
24
25- 802.11a/g/n [[IEEE 802.11n (Wi-Fi 4)](doc/app_notes/ieee80211n.md)]
26- 20MHz bandwidth; 70 MHz to 6 GHz frequency range
27- Mode tested: Ad-hoc; Station; AP, Monitor
28- DCF (CSMA/CA) low MAC layer in FPGA (10us SIFS is achieved)
29- [802.11 packet injection and fuzzing](doc/app_notes/inject_80211.md)
30- [CSI](doc/app_notes/csi.md): Channel State Information, freq offset, equalizer to computer
31- [CSI fuzzer](doc/app_notes/csi_fuzzer.md): Create artificial channel response in WiFi transmitter
32- [[IQ capture](doc/app_notes/iq.md)]: real-time AGC, RSSI, IQ sample to computer. [[Dual antenna version](doc/app_notes/iq_2ant.md)]
33- Configurable channel access priority parameters:
34  - duration of RTS/CTS, CTS-to-self
35  - SIFS/DIFS/xIFS/slot-time/CW/etc
36- Time slicing based on MAC address (time gated/scheduled FPGA queues)
37- Easy to change bandwidth and frequency:
38  - 2MHz for 802.11ah in sub-GHz
39  - 10MHz for 802.11p/vehicle in 5.9GHz
40- **802.11ax** under development
41
42**Performance (AP: openwifi at channel 44, client: TL-WDN4200 N900 USB Dongle):**
43- AP --> client: 30.6Mbps(TCP), 38.8Mbps(UDP)
44- client --> AP: 17.0Mbps(TCP), 21.5Mbps(UDP)
45
46**Supported SDR platforms:** (Check [Porting guide](#Porting-guide) for your new board if it isn't in the list)
47
48board_name|board combination|status|SD card img|Vivado license
49-------|-------|----|----|-----
50zc706_fmcs2|[Xilinx ZC706 board](https://www.xilinx.com/products/boards-and-kits/ek-z7-zc706-g.html) + [FMCOMMS2/3/4](https://www.analog.com/en/design-center/evaluation-hardware-and-software/evaluation-boards-kits/eval-ad-fmcomms2.html)|Done|[32bit img](https://users.ugent.be/~xjiao/openwifi-1.2.1-leuven-2-32bit.img.xz)|Need
51zed_fmcs2|[Xilinx zed board](https://www.xilinx.com/products/boards-and-kits/1-8dyf-11.html) + [FMCOMMS2/3/4](https://www.analog.com/en/design-center/evaluation-hardware-and-software/evaluation-boards-kits/eval-ad-fmcomms2.html)|Done|[32bit img](https://users.ugent.be/~xjiao/openwifi-1.2.1-leuven-2-32bit.img.xz)|**NO** need
52adrv9364z7020|[ADRV9364-Z7020 + ADRV1CRR-BOB](https://www.analog.com/en/design-center/evaluation-hardware-and-software/evaluation-boards-kits/adrv9364-z7020.html)|Done|[32bit img](https://users.ugent.be/~xjiao/openwifi-1.2.1-leuven-2-32bit.img.xz)|**NO** need
53adrv9361z7035|[ADRV9361-Z7035 + ADRV1CRR-BOB/FMC](https://www.analog.com/en/design-center/evaluation-hardware-and-software/evaluation-boards-kits/ADRV9361-Z7035.html)|Done|[32bit img](https://users.ugent.be/~xjiao/openwifi-1.2.1-leuven-2-32bit.img.xz)|Need
54zc702_fmcs2|[Xilinx ZC702 board](https://www.xilinx.com/products/boards-and-kits/ek-z7-zc702-g.html) + [FMCOMMS2/3/4](https://www.analog.com/en/design-center/evaluation-hardware-and-software/evaluation-boards-kits/eval-ad-fmcomms2.html)|Done|[32bit img](https://users.ugent.be/~xjiao/openwifi-1.2.1-leuven-2-32bit.img.xz)|**NO** need
55antsdr|[MicroPhase](https://github.com/MicroPhase/) enhanced ADALM-PLUTO [Notes](kernel_boot/boards/antsdr/notes.md)|Done|[32bit img](https://users.ugent.be/~xjiao/openwifi-1.2.1-leuven-2-32bit.img.xz)|**NO** need
56zcu102_fmcs2|[Xilinx ZCU102 board](https://www.xilinx.com/products/boards-and-kits/ek-u1-zcu102-g.html) + [FMCOMMS2/3/4](https://www.analog.com/en/design-center/evaluation-hardware-and-software/evaluation-boards-kits/eval-ad-fmcomms2.html)|Done|[64bit img](https://users.ugent.be/~xjiao/openwifi-1.2.0-leuven-2-64bit.img.xz)|Need
57zcu102_9371|[Xilinx ZCU102 board](https://www.xilinx.com/products/boards-and-kits/ek-u1-zcu102-g.html) + [ADRV9371](https://www.analog.com/en/design-center/evaluation-hardware-and-software/evaluation-boards-kits/eval-adrv9371.html)|Future|Future|Need
58
59- board_name is used to identify FPGA design in openwifi-hw/boards/
60- Don't have any boards? Or you like JTAG boot instead of SD card? Check our test bed [w-iLab.t](https://doc.ilabt.imec.be/ilabt/wilab/tutorials/openwifi.html) tutorial.
61
62[[Quick start](#Quick-start)]
63[[Basic operations](#Basic-operations)]
64[[Update FPGA](#Update-FPGA)]
65[[Update Driver](#Update-Driver)]
66[[Update sdrctl](#Update-sdrctl)]
67[[Easy Access and etc](#Easy-Access-and-etc)]
68
69[[Build openwifi Linux img from scratch](#Build-openwifi-Linux-img-from-scratch)]
70[[Special note for 11b](#Special-note-for-11b)]
71[[Porting guide](#Porting-guide)]
72[[Project document](doc/README.md)]
73[[Application notes](doc/app_notes/README.md)]
74
75## Quick start
76- Burn openwifi board specific img file (from the table) into a SD card ("Open With Disk Image Writer". Or "dd" command after unzip). The SD card has two partitions: BOOT and rootfs. You need to config the **correct files in the BOOT partition** according to the **board you have** by operation on your computer:
77  - Copy files in **openwifi/board_name** to the base directory of BOOT partition.
78  - Copy **openwifi/zynqmp-common/Image** (zcu102 board) or **openwifi/zynq-common/uImage** (other boards) to the base directory of BOOT partition
79- Connect two antennas to RXA/TXA ports. Config the board to SD card boot mode (check the board manual). Insert the SD card to the board. Power on.
80- Login to the board from your PC (PC Ethernet should have IP 192.168.10.1) with password **openwifi**.
81  ```
82  ssh [email protected]
83  ```
84- On board, run openwifi AP and the on board webserver
85  ```
86  ~/openwifi/fosdem-11ag.sh
87  ```
88  **NOTE** adrv9361z7035 has ultra low TX power in 5GHz. Move **CLOSER** when you use that board in 5GHz!!!
89- After you see the "openwifi" SSID on your device (Phone/Laptop/etc), connect it. Browser to 192.168.13.1 on your device, you should see the webpage hosted by the webserver on board.
90  - Note 1: If your device doesn't support 5GHz (ch44), please change the **hostapd-openwifi.conf** on board and re-run fosdem.sh.
91  - Note 2: After ~2 hours, the Viterbi decoder will halt (Xilinx Evaluation License). Just power cycle the board if it happens. (If output of "./sdrctl dev sdr0 get reg rx 20" is always the same, it means the decoder halts)
92- To give the Wi-Fii client internet access, configure routing/NAT **on the PC**:
93  ```
94  sudo sysctl -w net.ipv4.ip_forward=1
95  sudo iptables -t nat -A POSTROUTING -o NICY -j MASQUERADE
96  sudo ip route add 192.168.13.0/24 via 192.168.10.122 dev ethX
97  ```
98  **ethX** is the PC NIC name connecting the board ethernet. **NICY** is the PC NIC name connecting internet (WiFi or another ethernet).
99
100  If you want, uncommenting "net.ipv4.ip_forward=1" in /etc/sysctl.conf to make IP forwarding persistent on PC.
101- To monitor **real-time CSI (Chip State Information)**, such as timestamp, frequency offset, channel state, equalizer, please refer to [[CSI notes](doc/app_notes/csi.md)].
102
103## Basic operations
104The board actually is an Linux/Ubuntu computer which is running **hostapd** to offer Wi-Fi AP functionality over the Wi-Fi Network Interface (NIC). The NIC is implemented by openwifi-hw FPGA design. We use the term **"On board"** to indicate that the commands should be executed after ssh login to the board. **"On PC"** means the commands should run on PC.
105- Bring up the openwifi NIC sdr0:
106  ```
107  service network-manager stop
108  cd ~/openwifi && ./wgd.sh
109  ```
110- Use openwifi as client to connect other AP (Change wpa-connect.conf on board firstly):
111  ```
112  route del default gw 192.168.10.1
113  wpa_supplicant -i sdr0 -c wpa-connect.conf &
114  dhclient sdr0
115  ```
116- Use openwifi in ad-hoc mode: Please check **sdr-ad-hoc-up.sh** and **sdr-ad-hoc-join.sh**.
117- Use openwifi in monitor mode: Please check **monitor_ch.sh**.
118- The Linux native Wi-Fi tools/Apps (iwconfig/ifconfig/iwlist/iw/hostapd/wpa_supplicant/etc) can run over openwifi NIC in the same way as commercial Wi-Fi chip.
119- **sdrctl** is a dedicated tool to access openwifi driver/FPGA, please check doc directory for more information.
120
121## Update FPGA
122
123Since the pre-built SD card image might not have the latest bug-fixes/updates, it is recommended to update the fpga bitstream on board.
124
125- Install Vivado/SDK 2018.3 (If you don't need to generate new FPGA bitstream, WebPack version without license is enough)
126- Setup environment variables (use absolute path):
127  ```
128  export XILINX_DIR=your_Xilinx_directory
129  export OPENWIFI_HW_DIR=your_openwifi-hw_directory
130  export BOARD_NAME=your_board_name
131  ```
132- Pick the FPGA bitstream from openwifi-hw, and generate BOOT.BIN and transfer it on board via ssh channel:
133  ```
134  For Zynq 7000:
135
136  cd openwifi/user_space; ./boot_bin_gen.sh $OPENWIFI_HW_DIR $XILINX_DIR $BOARD_NAME
137
138  For Zynq MPSoC (like zcu102 board):
139  cd openwifi/user_space; ./boot_bin_gen_zynqmp.sh $OPENWIFI_HW_DIR $XILINX_DIR $BOARD_NAME
140
141  cd openwifi/kernel_boot/boards/$BOARD_NAME/output_boot_bin; scp ./BOOT.BIN [email protected]:
142  ```
143- On board: Put the BOOT.BIN into the BOOT partition.
144  ```
145  mount /dev/mmcblk0p1 /mnt
146  cp ~/BOOT.BIN /mnt
147  umount /mnt
148  ```
149  **Power cycle** the board to load new FPGA bitstream.
150
151## Update Driver
152
153Since the pre-built SD card image might not have the latest bug-fixes/updates, it is recommended to update the driver on board.
154- Prepare Analog Devices Linux kernel source code (only need to run once):
155  ```
156  cd openwifi/user_space; ./prepare_kernel.sh $XILINX_DIR ARCH_BIT build
157  (For Zynq 7000, ARCH_BIT should be 32, for Zynq MPSoC, ARCH_BIT should be 64)
158  ```
159  **Note**: In Ubuntu, gcc-10 might have issue ('yylloc' error), so use gcc-9 if you encounter error.
160- Compile the latest openwifi driver
161  ```
162  cd openwifi/driver; ./make_all.sh $XILINX_DIR ARCH_BIT
163  (For Zynq 7000, ARCH_BIT should be 32, for Zynq MPSoC, ARCH_BIT should be 64)
164  ```
165- Copy the driver files to the board via ssh channel
166  ```
167  cd openwifi/driver; scp `find ./ -name \*.ko` [email protected]:openwifi/
168  ```
169  Now you can use **wgd.sh** on board to load the new openwifi driver.
170  **Note**: If you have symbol or version error while loadng the driver, it could be because the kernel in the SD card image is too old. In this case, you need to follow [[Build openwifi Linux img from scratch](#Build-openwifi-Linux-img-from-scratch)] to generate your new SD card image.
171
172## Update sdrctl
173- Copy the sdrctl source files to the board via ssh channel
174  ```
175  cd openwifi/user_space/sdrctl_src; scp `find ./ -name \*` [email protected]:openwifi/sdrctl_src/
176  ```
177- Compile the sdrctl **on board**:
178  ```
179  cd ~/openwifi/sdrctl_src/ && make && cp sdrctl ../ && cd ..
180  ```
181## Easy Access and etc
182
183- FPGA and driver on board update scripts
184  - Setup [ftp server](https://help.ubuntu.com/lts/serverguide/ftp-server.html) on PC, allow anonymous and change ftp root directory to the openwifi directory.
185  - On board:
186  ```
187  ./sdcard_boot_update.sh $BOARD_NAME
188  (Above command downloads uImage, BOOT.BIN and devicetree.dtb, then copy them into boot partition. Remember to power cycle)
189  ./wgd.sh remote
190  (Above command downloads driver files, and brings up sdr0)
191  ```
192- Access the board disk/rootfs like a disk:
193   - On PC: "File manager --> Connect to Server...", input: sftp://[email protected]/root
194   - Input password "openwifi"
195
196## Build openwifi Linux img from scratch
197- Download [2019_R1-2020_02_04.img.xz](https://swdownloads.analog.com/cse/2019_R1-2020_02_04.img.xz) from [Analog Devices Wiki](https://wiki.analog.com/resources/tools-software/linux-software/zynq_images). Burn it to a SD card.
198- Insert the SD card to your Linux PC. Find out the mount point (that has two sub directories BOOT and rootfs), and setup environment variables (use absolute path):
199  ```
200  export SDCARD_DIR=sdcard_mount_point
201  export XILINX_DIR=your_Xilinx_directory
202  export OPENWIFI_HW_DIR=your_openwifi-hw_directory
203  export BOARD_NAME=your_board_name
204  ```
205- Run script to update SD card:
206  ```
207  cd openwifi/user_space; ./update_sdcard.sh $OPENWIFI_HW_DIR $XILINX_DIR $BOARD_NAME $SDCARD_DIR
208  ```
209- Config your board to SD card boot mode (check the board manual). Insert the SD card to the board. Power on.
210- Login to the board from your PC (PC Ethernet should have IP 192.168.10.1) with one time password **analog**.
211  ```
212  ssh [email protected]
213  ```
214- Setup routing/NAT **on the PC** for your board -- this internet connection is **important** for post installation/config.
215  ```
216  sudo sysctl -w net.ipv4.ip_forward=1
217  sudo iptables -t nat -A POSTROUTING -o NICY -j MASQUERADE
218  sudo ip route add 192.168.13.0/24 via 192.168.10.122 dev ethX
219  ```
220  **ethX** is the PC NIC name connecting the board ethernet. **NICY** is the PC NIC name connecting internet (WiFi or another ethernet).
221
222  If you want, uncommenting "net.ipv4.ip_forward=1" in /etc/sysctl.conf to make IP forwarding persistent on PC.
223- Run **one time** script on board to complete post installation/config (After this, password becomes **openwifi**)
224  ```
225  cd ~/openwifi && ./post_config.sh
226  ```
227- Now you can start from [Quick start](#Quick-start) (Skip the image download and burn step)
228
229## Special note for 11b
230
231Openwifi only applies OFDM as its modulation scheme and as a result, it is not backward compatible with 802.11b clients or modes of operation. This is usually the case during beacon transmission, connection establishment, and robust communication.
232
233As a solution to this problem, openwifi can be fully controlled only if communicating with APs/clients instantiated using hostapd/wpa_supplicant userspace programs respectively.
234
235For hostapd program, 802.11b rates can be suppressed using configuration commands (i.e. supported_rates, basic_rates) and an example configuration file is provided (i.e. hostapd-openwifi.conf). One small caveat to this one comes from fullMAC Wi-Fi cards as they must implement the *NL80211_TXRATE_LEGACY* NetLink handler at the device driver level.
236
237On the other hand, the wpa_supplicant program on the client side (commercial Wi-Fi dongle/board) cannot suppress 802.11b rates out of the box in 2.4GHz band, so there will be an issue when connecting openwifi (OFDM only). A patched wpa_supplicant should be used at the client side.
238```
239sudo apt-get install libssl1.0-dev
240cd openwifi/user_space; ./build_wpa_supplicant_wo11b.sh
241```
242## Porting guide
243
244This section explains the porting work by showing the differences between openwifi and Analog Devices reference design. openwifi is based on 2019_R1 of [HDL Reference Designs](https://github.com/analogdevicesinc/hdl).
245- Open the fmcomms2 + zc706 reference design at hdl/projects/fmcomms2/zc706 (Please read Analog Devices help)
246- Open the openwifi design zc706_fmcs2 at openwifi-hw/boards/zc706_fmcs2 (Please read openwifi-hw repository)
247- "Open Block Design", you will see the differences between openwifi and the reference design. Both in "diagram" and in "Address Editor".
248- The address/interrupts of FPGA blocks hooked to the ARM bus should be put/aligned to the devicetree file openwifi/kernel_boot/boards/zc706_fmcs2/devicetree.dts. Linux will parse the devicetree.dtb when booting to know information of attached device (FPGA blocks in our case).
249- We use dtc command to get devicetree.dts converted from devicetree.dtb in [Analog Devices Linux image](https://wiki.analog.com/resources/tools-software/linux-software/zynq_images), then do modification according to what we have added/modified to the reference design.
250- Please learn the script in [[Build openwifi Linux img from scratch](#Build-openwifi-Linux-img-from-scratch)] to understand how we generate devicetree.dtb, BOOT.BIN and Linux kernel uImage and put them together to build the full SD card image.
251
252## License
253
254This project is available as open source under the terms of the AGPL 3.0 Or later. However, some elements are being licensed under GPL 2-0 or later and BSD 3 license . For accurate information, please check individual files.
255