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Recurrent Early Exits for Federated Learning with Heterogeneous Clients

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arxiv 2405.14791 v2 pith:WNQW2XNX submitted 2024-05-23 cs.LG cs.CVcs.DC

classification cs.LGcs.CVcs.DC
keywords classifiersclientslearningearlyfederatedmultiplesub-modelsacross
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Federated learning (FL) has enabled distributed learning of a model across multiple clients in a privacy-preserving manner. One of the main challenges of FL is to accommodate clients with varying hardware capacities; clients have differing compute and memory requirements. To tackle this challenge, recent state-of-the-art approaches leverage the use of early exits. Nonetheless, these approaches fall short of mitigating the challenges of joint learning multiple exit classifiers, often relying on hand-picked heuristic solutions for knowledge distillation among classifiers and/or utilizing additional layers for weaker classifiers. In this work, instead of utilizing multiple classifiers, we propose a recurrent early exit approach named ReeFL that fuses features from different sub-models into a single shared classifier. Specifically, we use a transformer-based early-exit module shared among sub-models to i) better exploit multi-layer feature representations for task-specific prediction and ii) modulate the feature representation of the backbone model for subsequent predictions. We additionally present a per-client self-distillation approach where the best sub-model is automatically selected as the teacher of the other sub-models at each client. Our experiments on standard image and speech classification benchmarks across various emerging federated fine-tuning baselines demonstrate ReeFL's effectiveness over previous works.

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  1. SpeechLLM Meets Federated Learning for End-to-End ASR: English and Italian Case Studies

    cs.CL 2026-07 conditional novelty 4.0 of 10

    A SpeechLLM-based ASR system can be fine-tuned with federated learning and LoRA adapters, reaching word error rates close to centralized training on English and Italian while transmitting only a small fraction of the model.

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