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2024 | OriginalPaper | Buchkapitel

Public Blockchain-Based Data Integrity Protection for Federated Learning in UAV Networks Using MAVLink Protocol

verfasst von : Jing Huey Khor, Michail Sidorov, Shaw Zuan Law, Sui Yuan Tan, Peh Yee Woon

Erschienen in: Artificial Intelligence for Sustainable Energy

Verlag: Springer Nature Singapore

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Abstract

The utilization of federated learning in unmanned aerial vehicle (UAV) networks facilitates collaborative training of machine learning models by multiple UAVs while ensuring privacy preservation. However, the existing solutions for securing local model updates, such as heavy computation homomorphic encryption, secure multiparty computation, and differential privacy, are not feasible for UAV networks with limited computational resources and data capacity. To address this issue, a new lightweight protocol has been proposed, which protects the integrity of non-privacy sensitive local model updates in UAV networks using the MAVLink protocol over WiFi and LoRa communication technologies. The lightweight protocol has been designed using the SHA256 hash function and integrated with a public blockchain for integrity verification purposes. A proof of concept has been presented to demonstrate the proposed protocol’s capability of protecting the integrity of local model updates in UAV networks. Furthermore, the security of the proposed protocol has been analyzed and shown to be secure against adversary-in-the-middle and replay attacks. The computation cost of the proposed protocol has also been evaluated and found to be supported by UAV networks.

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Literatur
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Zurück zum Zitat Hosseinalipour, S., Brinton, C.G., Aggarwal, V., Dai, H., Chiang, M.: From federated to fog learning: distributed machine learning over heterogeneous wireless networks. IEEE Commun. Mag. 58, 41–47 (2020)CrossRef Hosseinalipour, S., Brinton, C.G., Aggarwal, V., Dai, H., Chiang, M.: From federated to fog learning: distributed machine learning over heterogeneous wireless networks. IEEE Commun. Mag. 58, 41–47 (2020)CrossRef
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Zurück zum Zitat Khor, J., Masama, M.A., Sidorov, M., Leong, W., Lim, J.: An improved gas efficient library for securing IoT smart contracts against arithmetic vulnerabilities. In: Proceedings of the 2020 9th International Conference on Software and Computer Applications. ICSCA 2020, pp. 326-330. Association for Computing Machinery, New York, NY, USA (2020). https://doi.org/10.1145/3384544.3384577 Khor, J., Masama, M.A., Sidorov, M., Leong, W., Lim, J.: An improved gas efficient library for securing IoT smart contracts against arithmetic vulnerabilities. In: Proceedings of the 2020 9th International Conference on Software and Computer Applications. ICSCA 2020, pp. 326-330. Association for Computing Machinery, New York, NY, USA (2020). https://​doi.​org/​10.​1145/​3384544.​3384577
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Zurück zum Zitat Wander, A., Gura, N., Eberle, H., Gupta, V., Shantz, S.C., Sun: Energy analysis of public-key cryptography on small wireless devices (2004) Wander, A., Gura, N., Eberle, H., Gupta, V., Shantz, S.C., Sun: Energy analysis of public-key cryptography on small wireless devices (2004)
Metadaten
Titel
Public Blockchain-Based Data Integrity Protection for Federated Learning in UAV Networks Using MAVLink Protocol
verfasst von
Jing Huey Khor
Michail Sidorov
Shaw Zuan Law
Sui Yuan Tan
Peh Yee Woon
Copyright-Jahr
2024
Verlag
Springer Nature Singapore
DOI
https://doi.org/10.1007/978-981-99-9833-3_23