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Pure Exploration in Asynchronous Federated Bandits

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arxiv 2310.11015 v2 pith:NEOJP5NN submitted 2023-10-17 cs.LG

classification cs.LG
keywords algorithmsasynchronousbanditsexplorationfederatedpureagentsbandit
verification ladder T0 review T1 audit T2 compute T3 formal
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abstract

We study the federated pure exploration problem of multi-armed bandits and linear bandits, where $M$ agents cooperatively identify the best arm via communicating with the central server. To enhance the robustness against latency and unavailability of agents that are common in practice, we propose the first federated asynchronous multi-armed bandit and linear bandit algorithms for pure exploration with fixed confidence. Our theoretical analysis shows the proposed algorithms achieve near-optimal sample complexities and efficient communication costs in a fully asynchronous environment. Moreover, experimental results based on synthetic and real-world data empirically elucidate the effectiveness and communication cost-efficiency of the proposed algorithms.

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  1. Provably Efficient Algorithm for Best Scoring Rule Identification in Online Principal-Agent Information Acquisition

    cs.LG 2025-05 conditional novelty 6.0 of 10

    OIAFC and OIAFB identify an (epsilon, delta)-optimal scoring rule in online principal-agent information acquisition with instance-dependent sample complexity, but the proven rate differs from the advertised rate.

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