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cs.AI 1

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2026 1

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On-line Learning in Tree MDPs by Treating Policies as Bandit Arms

cs.AI · 2026-05-06 · unverdicted · novelty 7.0

Bandit algorithms can be adapted to Tree MDPs by treating policies as arms with shared-data confidence bounds, achieving polynomial memory and instance-dependent bounds on sample complexity and regret that depend on terminal-state gaps rather than all policies.

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  • On-line Learning in Tree MDPs by Treating Policies as Bandit Arms cs.AI · 2026-05-06 · unverdicted · none · ref 16

    Bandit algorithms can be adapted to Tree MDPs by treating policies as arms with shared-data confidence bounds, achieving polynomial memory and instance-dependent bounds on sample complexity and regret that depend on terminal-state gaps rather than all policies.