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New research · Pulmonology & Critical Care
NPJ digital medicine · 2d
Cohort studyNPJ digital medicine · 2026

Expert Augmented Prediction of Circulatory and Respiratory Instability from High Resolution Vital Signs.

Luhao Wang, Bin Gu, Yao Nie … Xiangdong Guan
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Pulmonology & Critical CareCohort study

Machine learning models accurately predict circulatory and respiratory instability in ICUs.

Expert Augmented Prediction of Circulatory and Respiratory Instability from High Resolution Vital Signs.

Luhao Wang et al. · NPJ digital medicine · 2026
Methods

Machine‑learning models were trained on 627,958 h of continuous vital‑sign data from 1702 ICU patients at the First Affiliated Hospital of Sun Yat‑sen University and externally validated in the MIMIC‑III cohort.

n = 1702 ICU patients
Results
The models were highly accurate at predicting circulatory and respiratory instability
n = 1702 ICU patients
More results

Leveraging routinely collected high-frequency vital-sign monitoring, we developed an interpretable, expert-augmented early warning system based on 1-second-resolution heart rate, blood pressure, respiratory rate, and oxygen saturation data.

More results

Increasing temporal resolution improved predictive accuracy, with trend-based features contributing most strongly to model predictions.

“
Conclusion

EAEWS generated accurate, low-frequency alerts with transparent explanations aligned with bedside monitoring, and may provide a scalable framework for real-time CRI detection in ICUs.

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