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Reducing Annotation Effort in Patient-Ventilator Asynchrony Detection With Distance-Based Clustering

Objective: This study aims to reduce expert annotation effort in detecting patient–ventilator asynchrony (PVA) by introducing a semi-supervised learning framework for time series classification. Methods and procedures: We propose a model-independent framework that integrates hierarchical clus...

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Principais autores: Lars van de Kamp, Dolf Weller, Rick Thijssen, Bram Hunnekens, Tom Bakkes, Simona Turco, Corstiaan den Uil, Tom Oomen, Nathan van de Wouw
Formato: Artigo
Idioma:Inglês
Publicado: IEEE 2026-01-01
Series:IEEE Open Journal of Control Systems
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Acceso en liña:https://ieeexplore.ieee.org/document/11482846/
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