Techniques for a Posteriori Analysis of Declarative Processes

Andrea Burattin, F. Maggi, Wil M.P. van der Aalst, A. Sperduti
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引用次数: 53

Abstract

The increasing availability of event data recorded by information systems, electronic devices, web services and sensor networks provides detailed information about the actual processes in systems and organizations. Process mining techniques can use such event data to discover processes and check the conformance of process models. For conformance checking, we need to analyze whether the observed behavior matches the modeled behavior. In such settings, it is often desirable to specify the expected behavior in terms of a declarative process model rather than of a detailed procedural model. However, declarative models do not have an explicit notion of state, thus making it more difficult to pinpoint deviations and to explain and quantify discrepancies. This paper focuses on providing high-quality and understandable diagnostics. The notion of activation plays a key role in determining the effect of individual events on a given constraint. Using this notion, we are able to show cause-and-effect relations and measure the healthiness of the process.
陈述性过程的后验分析技术
信息系统、电子设备、网络服务和传感器网络记录的事件数据的可用性日益增加,提供了有关系统和组织中实际过程的详细信息。过程挖掘技术可以使用这些事件数据来发现过程并检查过程模型的一致性。对于一致性检查,我们需要分析观察到的行为是否与建模的行为匹配。在这种设置中,通常希望使用声明性流程模型而不是详细的过程模型来指定预期行为。然而,声明性模型没有明确的状态概念,因此很难查明偏差并解释和量化差异。本文的重点是提供高质量和可理解的诊断。激活的概念在确定单个事件对给定约束的影响方面起着关键作用。使用这个概念,我们能够显示因果关系并度量过程的健康性。
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