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Learning to Specialize: Joint Gating-Expert Training for Adaptive MoEs in Decentralized Settings

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arxiv 2306.08586 v3 pith:N7PGIIWX submitted 2023-06-14 cs.LG cs.AImath.OC

classification cs.LGcs.AImath.OC
keywords ddometexttttrainingdecentralizeddynamicallyjointdataexpert
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Mixture-of-Experts (MoEs) achieve scalability by dynamically activating subsets of their components. Yet, understanding how expertise emerges through joint training of gating mechanisms and experts remains incomplete, especially in scenarios without clear task partitions. Motivated by inference costs and data heterogeneity, we study how joint training of gating functions and experts can dynamically allocate domain-specific expertise across multiple underlying data distributions. As an outcome of our framework, we develop an instance tailored specifically to decentralized training scenarios, introducing \textit{Dynamically Decentralized Orchestration of MoEs} or \texttt{DDOME}. \texttt{DDOME} leverages heterogeneity emerging from distributional shifts across decentralized data sources to specialize experts dynamically. By integrating a pretrained common expert to inform a gating function, \texttt{DDOME} achieves personalized expert subset selection on-the-fly, facilitating just-in-time personalization. We empirically validate \texttt{DDOME} within a Federated Learning (FL) context: \texttt{DDOME} attains from 4\% up to an 24\% accuracy improvement over state-of-the-art FL baselines in image and text classification tasks, while maintaining competitive zero-shot generalization capabilities. Furthermore, we provide theoretical insights confirming that the joint gating-experts training is critical for achieving meaningful expert specialization.

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Cited by 1 Pith paper

Reviewed papers in the Pith corpus that reference this work. Sorted by Pith novelty score. Full citation record

  1. Efficient Training of Large-Scale AI Models Through Federated Mixture-of-Experts: A System-Level Approach

    cs.LG 2025-07 reject novelty 4.0 of 10

    A position paper proposing a conceptual client-expert alignment and load-balancing system for federated MoE, without experimental validation.

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