2020
DOI: 10.1109/jiot.2020.2977383
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Decentralized Privacy Using Blockchain-Enabled Federated Learning in Fog Computing

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Cited by 340 publications
(143 citation statements)
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References 32 publications
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“…An adaptation of the FedAvg algorithm for distributed consensus paradigms is proposed. Qu et al [68] use a blockchain-based approach to achieve decentralized privacy protection for FL. A similar block-chain based approach is also discussed in [69] for enabling on-device FL without any central servers.…”
Section: B Technologies For Enabling Fl In Wireless Iotmentioning
confidence: 99%
“…An adaptation of the FedAvg algorithm for distributed consensus paradigms is proposed. Qu et al [68] use a blockchain-based approach to achieve decentralized privacy protection for FL. A similar block-chain based approach is also discussed in [69] for enabling on-device FL without any central servers.…”
Section: B Technologies For Enabling Fl In Wireless Iotmentioning
confidence: 99%
“…In the same context, Lu et al [32] suggested the blockchain empowered asynchronous federated learning-based solution for secure data sharing in Internet of vehicles. Qu et al [39] introduced a new federated learning strategy allowed by blockchain, enabling local learning updates of terminal devices to exchange with a global learning model based on blockchain. It also allowed autonomous machine learning to sustain the global model without centralized authority.…”
Section: Blockchain Learningmentioning
confidence: 99%
“…Some of the popular training approaches in this direction that may be useful for fog nodes can be transfer learning and knowledge distillation [54], [55]. In addition, to ensure the privacy protection and single point of failure at the fog networks, federated learning emerges as one of the promising solutions for the fog based IIoT networks [56].…”
Section: B Requirements For Fog Networkmentioning
confidence: 99%