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◆ Life (Basel, Switzerland)2026-07-29

Physiological Data Integration and Predictive Modeling in Intensive Care.

Bianca Liana Grigorescu, Leonard Azamfirei, Sânziana Bora, Dorin Bica, Irina Săplăcan, Raduly Gergo, Mihaly Veres

原始摘要(英文原文)· Original abstract
Intensive care medicine represents one of the most challenging setting in modern healthcare, where specific mechanisms intertwine and form a dynamic biological model, where organ dysfunction can easily evolve to multi-organ dysfunction, continuously reshaping the patient's clinical course. The critically ill patient represents a biological system resulted from interaction between maladaptive and adaptative mechanisms, therefore generates a large volume of data that can exceeds human cognitive capacity. Artificial intelligence can integrate multimodal physiological, laboratory, and clinical data into a dynamic representation of the patient's biological trajectory. AI-tools and machine learning technologies have evolved to potential clinical support tools, with great perspectives for future implementation, but currently with limited use in clinical practice. This article is a narrative review of artificial intelligence in ICU, aiming to present current evidence and limitations.
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Physiological Data Integration and Predictive Modeling in Intensive Care. — 科研速览 Science Skim