基于业务对齐的临床路径偏差检测

Sci. Program. Pub Date : 2022-01-06 DOI:10.1155/2022/6993449
Yinhua Tian, Xinran Li, Man Qi, Dong Han, Yuyue Du
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引用次数: 0

摘要

在临床路径的实际治疗过程中,可能会出现一些意想不到的行为,对临床路径的实施和未来的工作产生负面影响。为提高现有偏差检测算法的性能,提出了一种基于业务对齐的偏差检测方法,能够有效检测临床路径执行过程中的异常,为临床路径执行过程中的干预提供判断依据,对临床路径的完善起到至关重要的作用。首先,去除临床路径诊疗日志中的噪声;然后,构建同步构成模型来体现实际过程与理论模型之间的偏差。最后,选择A *算法来搜索最优对齐。以COVID-19下st段抬高型心肌梗死(STEMI)的临床路径为例,实验结果说明了该方法在偏差检测中的优越性和有效性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Deviation Detection in Clinical Pathways Based on Business Alignment
Several unexpected behaviors may occur during actual treatment of clinical pathways, which will have negative impact on the implementation and the future work. To increase the performance of current deviation detection algorithms, a method is presented according to business alignment, which can effectively detect the anomaly in the implementation of the clinical pathways, provide judgment basis for the intervention in the process of the clinical pathway implementation, and play a crucial role in improving the clinical pathways. Firstly, the noise in diagnosis and treatment logs of clinical pathways will be removed. Then, the synchronous composition model is constructed to embody the deviations between the actual process and the theoretical model. Finally, A ∗ algorithm is selected to search for optimal alignment. A clinical pathway for ST-Elevation Myocardial Infarction (STEMI) under COVID-19 is used as a case study, and the superiority and effectiveness of this method in deviation detection are illustrated in the result of experiments.
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