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Enhancing heatstroke prediction accuracy with interpretable machine learning: a multi-center data-driven approach

Background Heatstroke poses a significant threat to public health, frequently culminating in fatal outcomes. This study aimed to develop and validate an interpretable machine learning (ML) model to forecast heatstroke using clinical and laboratory data. Methods Data were collated from 24 hospitals s...

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Autors principals: Qingbo Zeng, Xingping Deng, Longping He, Lincui Zhong, Qingwei Lin, Nianqing Zhang, Jingchun Song
Format: Artigo
Idioma:Inglês
Publicat: PeerJ Inc. 2025-11-01
Col·lecció:PeerJ
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Accés en línia:https://peerj.com/articles/20377.pdf
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