2022
DOI: 10.48550/arxiv.2205.09330
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CHARLES: Channel-Quality-Adaptive Over-the-Air Federated Learning over Wireless Networks

Abstract: Over-the-air federated learning (OTA-FL) has emerged as an efficient mechanism that exploits the superposition property of the wireless medium and performs model aggregation for federated learning in the air. OTA-FL is naturally sensitive to wireless channel fading, which could significantly diminish its learning accuracy. To address this challenge, in this paper, we propose an OTA-FL algorithm called CHARLES (channelquality-aware over-the-air local estimating and scaling). Our CHARLES algorithm performs chann… Show more

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