On the Comparison of Markov Chains-based Models in Process Mining for Healthcare: A Case Study

M. Vallati, S. Orini, Mariagrazia Lorusso, Mariachiara Savino, R. Gatta, M. Filosto
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Abstract

In the last decade, Process Mining has become a significant field to help healthcare process experts understand and gain relevant insights about the processes they execute. One of the most challenging questions in Process Mining, and particularly in healthcare, typically is: how good are the discovered models? Previous studies have suggested approaches for comparing the (few) available discovery algorithms and measure their quality. However, a general and clear comparison framework is missing, and none of the analyzed algorithms exploits Markov Chains-based Models. In this paper, we propose and discuss effective ways for assessing both quality and performance of discovered models. This is done by focusing on a case study, where the pMiner tool is used for generating Markov Chains-based models, on a large set of real Clinical Guidelines and workflows.
基于马尔可夫链的医疗流程挖掘模型比较研究——以实例为例
在过去的十年中,流程挖掘已经成为一个重要的领域,可以帮助医疗保健流程专家了解并获得有关他们执行的流程的相关见解。流程挖掘中最具挑战性的问题之一,特别是在医疗保健领域,通常是:发现的模型有多好?以前的研究已经提出了比较(少数)可用的发现算法并衡量其质量的方法。然而,缺乏一个通用的、清晰的比较框架,并且所分析的算法都没有利用基于马尔可夫链的模型。在本文中,我们提出并讨论了评估已发现模型的质量和性能的有效方法。这是通过专注于一个案例研究来完成的,其中pMiner工具用于生成基于马尔可夫链的模型,基于大量真实的临床指南和工作流程。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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