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Byzantine-Robust Federated Fire Detection with a Rotating Coordinator

arXiv · AI, language, vision and robotics · article · Sep 9, 2026 · UTC

We study the application of federated learning (FL) to indoor fire detection. Such fire-detection systems use edge cameras that record sensitive footage which cannot easily be collected at a central server. Existing federated solutions leave three practical obstacles unaddressed: limited uplink bandwidth, Byzantine (malicious or faulty) clients, and unconditional trust in a single, permanently fixed aggregation server. Our main contributions address all three. In particular, we provide (i) a curated indoor fire-detection dataset assembled from eight public sources; (ii) an edge-deployable dete

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First collected: 2026-09-20T19:32:24.350Z. This is not the publication date.