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3 results for “Open Source Hardware”
Covert Communication Channels based on Hardware Trojans: open-source dataset
<h1>Dataset of Hardware-Trojan (HT) based Covert Channels (HT-CCs) for the IEEE 802.11 (WiFi) standard</h1> <div> <h2>Datasets arhitecture</h2> <ul> <li>The dataset has 80 dataset elements organized in 5 classes, namely CC-free (HT0-CC) and CC-infected (HTX-CC, X={1, · · · , 4}), each class has 16 elements.</li> <li>Those 16 elements are 8 acquisitions for different SNR values ranging from 1dB to 29dB with a step of 4dB, 2 acquisitions for each SNR value. The second acquisition was obtained immediately after the first one, with no other parameters changing between one acquisition and the other. The second acquisition is marked with an underscore in the naming of the file.</li> <li>Each dataset element has 2000 frames and it is the concatenation of ten 200-frames sub-acquisitions.</li> </ul> </div> <div> <h3>Naming convention</h3> </div> <p>Files are named according to the following convention:</p> <p>First acquisition:</p> <div> <pre><code>rxSig_<SNR value>dB_HT<HT-CC attack>.mat </code></pre> <div> </div> </div> <p>Second acquisition:</p> <div> <pre><code>rxSig_<SNR value>dB_HT<HT-CC attack>_.mat </code></pre> <div> </div> </div> <ul> <li>SNR value: ranging from 1dB to 29dB with a step of 4dB, i.e., <1>=SNR of 1db, <2>=SNR of 5db, <3>=SNR of 9dB, <4>=SNR of 13dB, <5>=SNR of 17dB, <6>=SNR of 21dB, <7>=SNR of 25dB, <8>=SNR of 29dB.</li> <li>HT-CC attack: CC-free (HT0-CC) and CC-infected (HTX-CC, X={1, · · · , 4}).</li> </ul> <div> <h3>HT0-CC</h3> </div> <p>The HT0-CC is the benchmark CC-free transmission according to the WiFi standard.</p> <div> <h3>HT1-CC</h3> </div> <p>The HT1-CC is the Amplitude Modulation (AM) Short Training Sequence (STS) HT attak based on the paper</p> <blockquote> <p>A. R. Díaz-Rizo, H. Aboushady and H.-G. Stratigopoulos, "Leaking Wireless ICs via Hardware Trojan-Infected Synchronization," in IEEE Transactions on Dependable and Secure Computing, vol. 20, no. 5, pp. 3845-3859, 1 Sept.-Oct. 2023, doi: 10.1109/TDSC.2022.3218507.</p> </blockquote> <p>The amplitude modulation value alpha is set to 10%.</p> <div> <h3>HT2-CC</h3> </div> <p>The HT2-CC is the PSK STF HT attack based on the paper</p> <blockquote> <p>J. Classen, M. Schulz and M. Hollick, "Practical covert channels for WiFi systems," 2015 IEEE Conference on Communications and Network Security (CNS), Florence, Italy, 2015, pp. 209-217, doi: 10.1109/CNS.2015.7346830.</p> </blockquote> <p>The implemented version is leaking 8 bits per OFDM PPDU.</p> <div> <h3>HT3-CC</h3> </div> <p>The HT3-CC is the Dirty Constellation attack based on paper</p> <blockquote> <p>A. Dutta, D. Saha, D. Grunwald and D. Sicker, "Secret Agent Radio: Covert Communication through Dirty Constellations," in Proceedings of the 14th international conference on Information Hiding (IH'12). Springer-Verlag, Berlin, Heidelberg, 160–175, doi: 10.1007/978-3-642-36373-3_11.</p> </blockquote> <p>The implemented version of this attack has an embedding frequency of 5 subcarriers per OFDM symbol, where each OFDM symbol comprises 48 data subcarriers. Each dirty subcarrier is leaking 2 bits; therefore, we are leaking 10 bits per OFDM symbol,</p> <div> <h3>HT4-CC</h3> </div> <p>The HT4-CC is the AM analog/RF attack based on paper</p> <blockquote> <p>K. S. Subramani, N. Helal, A. Antonopoulos, A. Nosratinia and Y. Makris, "Amplitude-Modulating Analog/RF Hardware Trojans in Wireless Networks: Risks and Remedies," in IEEE Transactions on Information Forensics and Security, vol. 15, pp. 3497-3510, 2020, doi: 10.1109/TIFS.2020.2990792.</p> </blockquote> <p>Due to SPI limitations, the implemented version of the attack is a digitally-emulated version of the AM analog/RF attack. It leaks 8 bits per transmitted frame.</p> <div> <h2>Hardware Platform</h2> </div> <p>Acquisitions are received downconverted IQ samples using a Software Defined Radio (SDR) board bladeRF xA9.</p>
Open source and open hardware: developing tools that are accessible and customisable
<p><strong>The following video describes how ROMI uses open source hardware to support communities through customisation and adaptation. Funded by EU Grant 773875.</strong></p> <p><em>Videos are available in:</em></p> <ul> <li>Hi-res (1080p Apple ProRes)</li> <li>Mid-res (1080p H265)</li> </ul> <p><strong>Video script:</strong></p> <p>(MINCHIN) A key aspect and component of the ROMI project is that it should be open source so there is no proprietary software there's no ownership over the designs in fact it's created to be hacked customised and adapted to any farm.<br> <br> (HANAPPE) One of the aspects of the ROMI project is open hardware and we started from scratch like buying a motor buying a motor-controller programming the motor controller and which is maybe different than many of the projects you might see more industrial projects who might rely more on say high-end standard components from from the industry but i think there's a real advantage in trying to build everything up is that first you understand everything you can explain everything you can fix anything you can you know document anything for you know DIY farmers that they you know if they want to replace one motor with another and understanding that all allows you to quickly experiment stuff without having to depend on someone else who's working with say a closed source component and it allows you to be quite reactive and of course in the end allows you to be fairly cost effective.<br> <br> (BAORI) One of the things we set out to do with this project was to make it accessible and the idea is that at the end of the project everything will be open source so from the frame to the software the designs the cad everything will be open source so if you're a maker if you're somebody who is an engineer and wants to build one of these robots yourself you'll be able to download everything including the software to be able to make it run and because we wanted it to be accessible we started out with one thought that was everything that we put into this rover should also be accessible.<br> <br> (CAMPRODON) So we are trying to bring that philosophy that is embedded within Fab Labs slash (/) maker movement at large the open hardware movement, of how you design for distributed manufacturing. Which means that you take design decisions on the way that you build things which are meant for others replicated in new laboratories using new machines and you do that on top of a network such as a Fab Lab network which is a robust yet heterogeneous.<br> <br> (BARBERAN) It seems like someone tinkered with it. The idea when we design this is to constrain ourselves to do it in a way that anyone else can build it easily. So we try to keep the type and the complexity of the tools we use as small and simple as we can, so we use 3d printers that today are really accessible, we use CNC machines that's maybe the the most complex machine we use but it was it was needed because we need to build something that can stand the weather in a harsh environment in a farm. So we use aluminium and plastic and the rest of the components are mostly commercial components so the the process of designing it is a common go between the computer and the farm and the fab lab we tried here with the cable on the office to hang the first versions of the of the cable bot then we come back to redesign the pieces and then we adjust the sizes of the pulleys and the springs and then we do another model. And so this ability to reiterate so fast is also provided by the simplicity of the tools we use. Using a really simple 3d printer to build a robot is allows you to do in one month several versions and iterations of the same robot.<br> <br> (HANAPPE) In the end our goal is sustainability it's not technology, and what is the best way for whatever we build to have an impact on on say farmers in Europe or wider, and if if what we do is good then we would like them to have access to these tools, and there's some sort of a confidence that then there will be some financing flowing back to us.<br> <br> (MINCHIN) When we open source this knowledge and these tools it allows for an abundance of researchers of practitioners to come together to find the solutions, we don't have to depend on a small development team so the the library of tools that are developed are really a public library for others to to use and to adapt.<br> <br> (BARBERAN) At the end I think the the most important part that we don't even realise because we just do it because we are on the on the inertia of doing it is that we are setting rocks for the future. At the end we are not making right now the the the best robot the best tool what we are doing is setting ground to build on the future the best robot and the best thing built by people not by us because we don't we are not farmers we are not going to design the best robot and we are not a big company with resources as crazy to to make the ultra high-tech thing. But we are able to do something to share with people and a lot of heads think better than a couple of heads you know. The the model that that linux a lot of people in the linux community use is we are dumber than them but we are hundreds of thousands. Hundreds of thousands of heads think better than 10 heads so being able to share that knowledge and to include people in in the development of their own tools i think is the best part on a mid and long term way of seeing this.</p>
An open-source and easily replicable hardware for Electrical Impedance Tomography
<p>Supplementary materials of the paper.</p>
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