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Resolving inconsistencies and redundancies in declarative process models

机译:解决声明性流程模型中的不一致和冗余

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摘要

Declarative process models define the behaviour of business processes as a set of constraints. Declarative process discovery aims at inferring such constraints from event logs. Existing discovery techniques verify the satisfaction of candidate constraints over the log, but completely neglect their interactions. As a result, the inferred constraints can be mutually contradicting and their interplay may lead to an inconsistent process model that does not accept any trace. In such a case, the output turns out to be unusable for enactment, simulation or verification purposes. In addition, the discovered model contains, in general, redundancies that are due to complex interactions of several constraints and that cannot be cured using existing pruning approaches. We address these problems by proposing a technique that automatically resolves conflicts within the discovered models and is more powerful than existing pruning techniques to eliminate redundancies. First, we formally define the problems of constraint redundancy and conflict resolution. Second, we introduce techniques based on the notion of automata-product monoid, which guarantees the consistency of the discovered models and, at the same time, keeps the most interesting constraints in the pruned set. The level of interestingness is dictated by user-specified prioritisation criteria. We evaluate the devised techniques on a set of real-world event logs.
机译:声明性流程模型将业务流程的行为定义为一组约束。声明式过程发现旨在从事件日志中推断出此类约束。现有的发现技术验证了日志中候选约束的满足,但完全忽略了它们的交互。结果,推断出的约束条件可能相互矛盾,并且它们之间的相互作用可能导致不一致的过程模型,该过程模型不接受任何跟踪。在这种情况下,输出结果无法用于制定,模拟或验证目的。此外,发现的模型通常包含冗余,这些冗余是由于多个约束的复杂相互作用而导致的,并且无法使用现有的修剪方法来解决。我们通过提出一种自动解决发现的模型中的冲突的技术来解决这些问题,并且该技术比现有的修剪技术更强大,可以消除冗余。首先,我们正式定义约束冗余和冲突解决的问题。其次,我们介绍基于自动机积monoid概念的技术,该技术可确保发现的模型的一致性,同时将最有趣的约束保留在修剪集中。有趣程度由用户指定的优先级标准决定。我们在一组现实事件日志中评估设计的技术。

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