A Real-time Contribution Measurement Method for Participants in Federated Learning

Liu, Boyi, Yan, Bingjie, Zhou, Yize, Wang, Jun, Liu, Li, Zhang, Yuhan, Nie, Xiaolan

arXiv.org Machine Learning 

In recent years, individuals, business organizations or the country have paid more and more attention to their data privacy. At the same time, with the rise of federated learning, federated learning is involved in more and more fields. However, there is no good evaluation standard for each agent participating in federated learning. This paper proposes an online evaluation method for federated learning and compares it with the results obtained by Shapley Value in game theory. The method proposed in this paper is more sensitive to data quality and quantity.

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