基于机器学习构建中国公立医院财务风险预警模型

Xi Zhao, Bing Lu
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引用次数: 0

摘要

在医疗环境日益复杂的今天,中国公立医院面临着巨大的财务挑战。财务风险的高度不确定性和突发性,使得公立医院需要更加完善和实时的财务风险预警机制。本论文旨在总结近年来基于机器学习算法构建中国公立医院财务风险预警模型的研究进展。财务风险预警模型的建立不仅能帮助医院管理层更好地了解财务状况,还能提前识别潜在风险,为及时调整策略和对策提供有力支持。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Constructing a Financial Risk Early Warning Model for Chinese Public Hospitals Based on Machine Learning
In today’s increasingly complex healthcare environment, China’s public hospitals face enormous financial challenges. The high degree of uncertainty and suddenness of financial risks make public hospitals need more sophisticated and real-time financial risk early warning mechanisms. To address this challenge, machine learning algorithms are introduced as a powerful tool to construct more accurate and efficient financial risk early warning models.the purpose of this dissertation is to summarize the recent research progress in constructing financial risk early warning models for Chinese public hospitals based on machine learning algorithms. The establishment of financial risk early warning models can not only help hospital management better understand the financial situation, but also identify potential risks in advance, which can provide powerful support for timely adjustment of strategies and countermeasures.
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