cs.AI updates on arXiv.org 11月03日 13:18
基于结果导向的业务流程发现新方法
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本文提出了一种基于结果导向的业务流程发现新方法,通过学习可解释的判别规则,对具有相似期望特征的轨迹进行分组,并分别在每个组内应用流程发现,以揭示高效和低效执行背后的驱动因素。

arXiv:2510.27343v1 Announce Type: new Abstract: Event logs extracted from information systems offer a rich foundation for understanding and improving business processes. In many real-world applications, it is possible to distinguish between desirable and undesirable process executions, where desirable traces reflect efficient or compliant behavior, and undesirable ones may involve inefficiencies, rule violations, delays, or resource waste. This distinction presents an opportunity to guide process discovery in a more outcome-aware manner. Discovering a single process model without considering outcomes can yield representations poorly suited for conformance checking and performance analysis, as they fail to capture critical behavioral differences. Moreover, prioritizing one behavior over the other may obscure structural distinctions vital for understanding process outcomes. By learning interpretable discriminative rules over control-flow features, we group traces with similar desirability profiles and apply process discovery separately within each group. This results in focused and interpretable models that reveal the drivers of both desirable and undesirable executions. The approach is implemented as a publicly available tool and it is evaluated on multiple real-life event logs, demonstrating its effectiveness in isolating and visualizing critical process patterns.

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业务流程发现 结果导向 流程模型 判别规则 性能分析
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