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A High-fidelity, Machine-learning Enhanced Queueing Network Simulation Model for Hospital Ultrasound Operations

Authors :
Pan, Yihan
Xu, Zhenghang
Guang, Jin
Sun, Jingjing
Wang, Chengwenjian
Zhang, Xuanming
Chen, Xinyun
Dai, J. G.
Ding, Yichuan
Shi, Pengyi
Pan, Hongxin
Yang, Kai
Wu, Song
Publication Year :
2021

Abstract

We collaborate with a large teaching hospital in Shenzhen, China and build a high-fidelity simulation model for its ultrasound center to predict key performance metrics, including the distributions of queue length, waiting time and sojourn time, with high accuracy. The key challenge to build an accurate simulation model is to understanding the complicated patient routing at the ultrasound center. To address the issue, we propose a novel two-level routing component to the queueing network model. We apply machine learning tools to calibrate the key components of the queueing model from data with enhanced accuracy.<br />Comment: 21 pages, 15 figures

Details

Database :
arXiv
Publication Type :
Report
Accession number :
edsarx.2104.07451
Document Type :
Working Paper