从事件日志中发现和评估工作流组织模式:一种基于代理的方法

M. Abdelkafi, W. Chtourou, L. Bouzguenda
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引用次数: 0

摘要

本文致力于解决工作流挖掘中的一个重要问题:组织模式挖掘问题。首先,对三个代表性的工作流挖掘系统(InWolve, WorkflowMiner和ProM)进行了批判性和比较研究。这些系统的主要缺点是它们无法处理组织模式挖掘。这项工作将组织模式视为定义工作流中涉及的参与者之间的活动分布的社会结构,以及控制它们之间通信的交互协议。为了弥补之前的缺点,本文提出了一种基于代理的方法,该方法包括一个事件日志模型,该模型使用基于执行的事件日志丰富来集成参与者之间的交互。本文还给出了组织模式挖掘的原理,并展示了如何评估发现的模式的质量,特别是组织结构的灵活性、效率和鲁棒性。最后,介绍了实现危机案例研究以验证贡献的DiscoopFlow。从事件日志中发现和评估工作流组织模式:一种基于代理的方法
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Discovering and Evaluating Workflow Organizational Patterns from Events Log: An Agent based Approach
This paper contributes to address an important issue in Workflow mining: organizational patterns mining issue. First, it reveals a critical and comparative study of three representative Workflow mining systems (InWolve, WorkflowMiner and ProM). The major drawback of these systems is their inability to deal with organizational patterns mining. This work considers organizational patterns as being social structures defining the activity distribution among actors involved in the Workflow, as well as the interaction protocols ruling the communications between them. To compensate the previous drawback, the paper proposes an agent based approach that includes an Events Log model integrating the interactions among actors using a performativebased enrichment of Events Log. This paper also gives the principles of organizational patterns mining and shows how evaluate the quality of discovered patterns and notably the organizational structures in terms of flexibility, efficiency and robustness. Finally, it describes DiscoopFlow that implements a crisis case study to validate the contributions. Discovering and Evaluating Workflow Organizational Patterns from Events Log: An Agent based Approach
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