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Real-time detection of respiratory circuit events in mechanical ventilation using deep learning
Qian He1,2, Tingting Pan1, Haiyang Hou3
1Department of Critical Care Medicine, Ruijin Hospital, Shanghai Jiao Tong University School of Medicine, Shanghai, China.
None:
Respiratory circuit events, including fluid accumulation and circuit or cuff leakage during mechanical ventilation, increase ventilator-associated event risks but often go undetected. We developed a convolutional neural network analyzing 57,296 annotated breaths (26,768 training/internal validation; 30,528 external validation) from 48 patients. The algorithm detected fluid-accumulation-like patterns with an F1-score of 99.90% internally and 92.35% externally, while leakage detection exceeded 99% accuracy. Clinically, 91.7% of patients exhibited circuit events, with fluid-accumulation-like patterns observed in 77.1% of cases and associated with measurable airway pressure increases (median ΔPaw = 2 cmH₂O). The algorithm demonstrated high accuracy and generalizability in detecting respiratory circuit events from waveform data and may allow earlier intervention to reduce ventilator-associated complications through real-time detection.
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