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Research on Self-perception and Active Warning Model of Medical Equipment Operation and Maintenance Status Based on Machine Learning Algorithm / 中国医疗器械杂志
Chinese Journal of Medical Instrumentation ; (6): 580-584, 2021.
Article in Chinese | WPRIM | ID: wpr-922063
ABSTRACT
The panoramic perception of medical equipment operation and maintenance status is the basic guarantee for the implementation of smart medical care, the machine learning algorithm-based autonomous perception and active early warning model of medical equipment operation and maintenance status is proposed. Introduce deep learning multi-dimensional perception of medical equipment multi-source heterogeneous fault data training sample characteristics to realize autonomous perception of medical equipment operation and maintenance status, introduce reinforcement learning to realize autonomous decision-making of test sample fault characteristics, and build the active early warning mechanism for medical equipment faults. Taking the equipment department of hospital as the carrier of model effectiveness verification, the effectiveness simulation of the model was carried out, the results show that the model has the advantages of comprehensive fault information perception, strong compatibility of medical equipment, high efficiency of active early warning.
Subject(s)

Full text: Available Index: WPRIM (Western Pacific) Main subject: Self Concept / Surgical Equipment / Algorithms / Computer Simulation / Machine Learning Type of study: Prognostic study Language: Chinese Journal: Chinese Journal of Medical Instrumentation Year: 2021 Type: Article

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Full text: Available Index: WPRIM (Western Pacific) Main subject: Self Concept / Surgical Equipment / Algorithms / Computer Simulation / Machine Learning Type of study: Prognostic study Language: Chinese Journal: Chinese Journal of Medical Instrumentation Year: 2021 Type: Article