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May 18, 2021IEEE Internet of Things Journal89 citationsOpen Access

Cross-Cluster Federated Learning and Blockchain for Internet of Medical Things

HJHai JinWuhan University of TechnologyXDXiaohai DaiHuazhong University of Science and TechnologyJXJiang XiaoNational University of Science and Technology

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Abstract

Federated learning (FL) has been gaining popularity as a way to provide privacy-preserving data sharing for the Internet of Medical Things (IoMT). As a complementary, blockchain technology is used in recent literature to make FL secure. However, existing blockchain-based FL (BFL) solutions do not perform well when data in a BFL cluster are sparse. A direct solution is to collect as many devices as possible to establish a large BFL cluster. However, these devices may locate in geographically distant areas and be separated by great distance, which further results in high communication latency. The high latency will lead to BFL’s low system efficiency due to frequent communications in the blockchain consensus. In this article, we propose that the large cluster should be divided into multiple smaller clusters, each in its own geographical area and organized with a BFL. In this context, we propose CFL, a cross-cluster FL system facilitated by the cross-chain technique. CFL connects multiple BFL clusters, where only a few aggregated updates are transmitted over long distances across clusters, thus improving the system efficiency. The design of CFL focuses on a cross-chain consensus protocol, which guarantees the model updates to be exchanged securely across clusters. We carry out extensive experiments to evaluate CFL in comparison with BFL, and show both CFL’s feasibility and efficiency.

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Cite This Study

Jin et al. (2021) studied this question.

synapsesocial.com/papers/69db786cf7e0c66ced835af7https://doi.org/10.1109/jiot.2021.3081578
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