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The Ethereal
Channel-Adaptive Robust Aggregation for Over-the-Air Federated Learning in Heterogeneous Networks
July 05, 2026 ยท Grace Period ยท ๐ IEEE International Conference on Acoustics, Speech and Signal Processing (ICASSP) 2026, pp. 1161-1165 (2026)
Authors
Zubaida Fatima, Zubair Shaban, Yusuf Jamal, Nazreen Shah, Ranjitha Prasad, B. N. Bharath
arXiv ID
2607.04218
Category
cs.LG: Machine Learning
Citations
0
Venue
IEEE International Conference on Acoustics, Speech and Signal Processing (ICASSP) 2026, pp. 1161-1165 (2026)
Abstract
The growing demand for privacy-preserving, data-intensive applications such as IoT, augmented reality, and autonomous systems positions Federated Learning (FL) as a key enabler in 6G networks. Over-the-Air FL (OTA-FL) leverages the superposition property of the wireless multiple access channel for efficient aggregation via simultaneous transmissions. Existing methods rely on fixed aggregation schedules and do not jointly address noise, fading, and client heterogeneity. We propose CHARGE-FL (CHannel-Adaptive Robust agGrEgation), a framework that adaptively schedules aggregation based on channel dynamics and application readiness. By combining a tailored optimization strategy with a dual-purpose precoding mechanism, CHARGE-FL mitigates channel distortion and bias from partial updates, achieving superior accuracy, stability, and convergence under realistic wireless conditions. Empirical results under realistic wireless conditions show that CHARGE-FL significantly improves accuracy, stability, and convergence over state-of-the-art OTA-FL methods, particularly in straggler-prone and noisy scenarios.
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