2022
DOI: 10.48550/arxiv.2201.08786
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FedComm: Federated Learning as a Medium for Covert Communication

Abstract: Proposed as a solution to mitigate the privacy implications related to the adoption of deep learning solutions, Federated Learning (FL) enables large numbers of participants to successfully train deep neural networks without having to reveal the actual private training data. To date, a substantial amount of research has investigated the security and privacy properties of FL, resulting in a plethora of innovative attack and defense strategies.This paper thoroughly investigates the communication capabilities of … Show more

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“…There is little amount of work that couples spread-spectrum channel coding with machine learning, and particularly deep learning applications. Prior work uses such techniques to build a covert communication channel on top of federated learning schemes [23], a topic which is different to the one discussed in this paper. To the best of our knowledge, this is the first work that makes use of spread-spectrum channel coding for watermarking DNN models.…”
Section: Andrej Karpathy Director Of Ai At Teslamentioning
confidence: 99%
“…There is little amount of work that couples spread-spectrum channel coding with machine learning, and particularly deep learning applications. Prior work uses such techniques to build a covert communication channel on top of federated learning schemes [23], a topic which is different to the one discussed in this paper. To the best of our knowledge, this is the first work that makes use of spread-spectrum channel coding for watermarking DNN models.…”
Section: Andrej Karpathy Director Of Ai At Teslamentioning
confidence: 99%