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Prime Miner - Process Discovery using Prime Event Structures

机译:Prime Miner-使用Prime事件结构进行流程发现

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We present a new region-based approach to process discovery using prime event structures as an intermediate model. We use the prime event structure to generate precise models of the most frequent use-cases captured by an event-log. We start with an event log, apply a concurrency oracle to construct a partial language, and fold the language into prime event structures. We apply the theory of compact tokenflow regions to these structures to synthesize a sequence of Petri nets representing the most frequent partially ordered runs of the recorded behavior. The sequence of Petri nets has increasing fitness but decreasing precision. To highlight the benefits of such an approach, we introduce a plug-in for the tool ProM called Prime Miner, implementing the new concepts.
机译:我们提出了一种使用主要事件结构作为中间模型的,基于区域的新方法来进行过程发现。我们使用主要事件结构来生成事件日志捕获的最常见用例的精确模型。我们从事件日志开始,应用并发Oracle来构造部分语言,并将该语言折叠为主要的事件结构。我们将紧凑令牌流区域的理论应用于这些结构,以合成表示记录行为最频繁的部分有序运行的Petri网序列。 Petri网的序列具有增加的适应性但降低的精度。为了突出这种方法的好处,我们为ProM工具引入了称为Prime Miner的插件,实现了新概念。

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