肾脏替代疗法
医学
随机对照试验
重症监护室
人口
重症监护医学
集合(抽象数据类型)
临床试验
强化学习
急诊医学
计算机科学
人工智能
内科学
环境卫生
程序设计语言
作者
François Grolleau,François Petit,Stéphane Gaudry,Theodoros Evrenoglou,Jean‐Pierre Quenot,Didier Dreyfuss,Viet-Thi Tran,Raphaël Porcher
标识
DOI:10.1093/jamia/ocae004
摘要
The timely initiation of renal replacement therapy (RRT) for acute kidney injury (AKI) requires sequential decision-making tailored to individuals' evolving characteristics. To learn and validate optimal strategies for RRT initiation, we used reinforcement learning on clinical data from routine care and randomized controlled trials.
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