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An Evolutionary Technique to Approximate Multiple Optimal Alignments

机译:近似多重最优路线的进化技术

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The alignment of observed and modeled behavior is an essential aid for organizations, since it opens the door for root-cause analysis and enhancement of processes. The state-of-the-art technique for computing alignments has exponential time and space complexity, hindering its applicability for medium and large instances. Moreover, the fact that there may be multiple optimal alignments is perceived as a negative situation, while in reality it may provide a more comprehensive picture of the model's explanation of observed behavior, from which other techniques may benefit. This paper presents a novel evolutionary technique for approximating multiple optimal alignments. Remarkably, the memory footprint of the proposed technique is bounded, representing an unprecedented guarantee with respect to the state-of-the-art methods for the same task. The technique is implemented into a tool, and experiments on several benchmarks are provided.
机译:观察到的行为和建模行为的一致性对组织至关重要,因为它为根本原因分析和流程增强打开了大门。用于计算路线的最新技术具有指数级的时间和空间复杂性,从而阻碍了其在大中型实例中的适用性。此外,可能存在多个最佳对齐的事实被认为是不利的情况,而实际上,它可以提供模型对观察到的行为的解释的更全面的描述,其他技术也可以从中受益。本文提出了一种新的进化技术,用于近似多个最优比对。显着地,所提出的技术的存储器占用空间是有界的,相对于用于同一任务的最新方法,这代表了前所未有的保证。将该技术实施到工具中,并提供了一些基准测试。

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