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Deep Reinforcement Learning for Clinical Decision Support: A Brief Survey

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abstract

Owe to the recent advancements in Artificial Intelligence especially deep learning, many data-driven decision support systems have been implemented to facilitate medical doctors in delivering personalized care. We focus on the deep reinforcement learning (DRL) models in this paper. DRL models have demonstrated human-level or even superior performance in the tasks of computer vision and game playings, such as Go and Atari game. However, the adoption of deep reinforcement learning techniques in clinical decision optimization is still rare. We present the first survey that summarizes reinforcement learning algorithms with Deep Neural Networks (DNN) on clinical decision support. We also discuss some case studies, where different DRL algorithms were applied to address various clinical challenges. We further compare and contrast the advantages and limitations of various DRL algorithms and present a preliminary guide on how to choose the appropriate DRL algorithm for particular clinical applications.

fields

cs.AI 1

years

2026 1

verdicts

UNVERDICTED 1

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  • Human Decision-Making with AI Assistance under Correlated Features cs.AI · 2026-05-27 · unverdicted · none · ref 18 · internal anchor

    Optimal AI recommendation policies under correlated features require an explore-then-commit structure rather than stationary policies, with NP-hard computation and a DP algorithm for finite horizons.