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Run-time prediction of business process indicators using evolutionary decision rules

机译:使用进化决策规则的业务流程指标的运行时预测

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Predictive monitoring of business processes is a challenging topic of process mining which is concerned with the prediction of process indicators of running process instances. The main value of predictive monitoring is to provide information in order to take proactive and corrective actions to improve process performance and mitigate risks in real time. In this paper, we present an approach for predictive monitoring based on the use of evolutionary algorithms. Our method provides a novel event window-based encoding and generates a set of decision rules for the run-time prediction of process indicators according to event log properties. These rules can be interpreted by users to extract further insight of the business processes while keeping a high level of accuracy. Furthermore, a full software stack consisting of a tool to support the training phase and a framework that enables the integration of run-time predictions with business process management systems, has been developed. Obtained results show the validity of our proposal for two large real-life datasets: BPI Challenge 2013 and IT Department of Andalusian Health Service (SAS). (C) 2017 Elsevier Ltd. All rights reserved.
机译:业务流程的预测监视是流程挖掘中一个具有挑战性的主题,它与正在运行的流程实例的流程指标的预测有关。预测性监视的主要价值是提供信息,以便采取主动和纠正措施来实时改进过程性能和降低风险。在本文中,我们提出了一种基于进化算法的预测监视方法。我们的方法提供了一种新颖的基于事件窗口的编码,并根据事件日志属性为过程指示器的运行时预测生成了一组决策规则。用户可以解释这些规则,以进一步了解业务流程,同时保持较高的准确性。此外,已经开发了一个完整的软件堆栈,该软件堆栈由支持培训阶段的工具和使运行时预测与业务流程管理系统集成在一起的框架组成。获得的结果表明我们的建议对于两个大型现实数据集的有效性:BPI Challenge 2013和安达卢西亚卫生服务(SAS)的IT部门。 (C)2017 Elsevier Ltd.保留所有权利。

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