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Discovery of temporal patterns from process instances

机译:从流程实例中发现时间模式

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摘要

Existing work in process mining focuses on the discovery of the underlying process model from their instances. In this paper, we do not assume the existence of a single process model to which all process instances comply, and the goal is to discover a set of frequently occurring temporal patterns. Discovery of temporal patterns can be applied to various application domains to support crucial business decision-making. In this study, we formally defined the temporal pattern discovery problem, and developed and evaluated three different temporal pattern discovery algorithms, namely TP-Graph, TP-Itemset and TP-Sequence. Their relative performances are reported.
机译:流程挖掘中的现有工作着重于从实例中发现基础流程模型。在本文中,我们不假设所有流程实例都遵循单个流程模型,而目标是发现一组频繁发生的时间模式。可以将时间模式的发现应用于各种应用程序域,以支持关键的业务决策。在这项研究中,我们正式定义了时间模式发现问题,并开发和评估了三种不同的时间模式发现算法,即TP-Graph,TP-Itemset和TP-Sequence。报告了它们的相对性能。

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