Improving Effectiveness of Process Model Matchers Using Wordnet Glosses

M. Abdelkader
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引用次数: 1

Abstract

Process model matching is a key activity in many business process management tasks. It is an activity that consists of detecting an alignment between process models by finding similar activities in two process models. This article proposes a method based on WordNet glosses to improve the effectiveness of process model matchers. The proposed method is composed of three steps. In the first step, all activities of the two BPs are extracted. Second, activity labels are expanded using word glosses and finally, similar activities are detected using the cosine similarity metric. Two experiments were conducted on well-known datasets to validate the effectiveness of the proposed approach. In the first one, an alignment is computed using the cosine similarity metric only and without a process of expansion. While, in the second experiment, the cosine similarity metric is applied to the expanded activities using glosses. The results of the experiments were promising and show that expanding activities using WordNet glosses improves the effectiveness of process model matchers.
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使用Wordnet Glosses提高进程模型匹配器的有效性
流程模型匹配是许多业务流程管理任务中的关键活动。它是一种活动,通过在两个流程模型中找到相似的活动来检测流程模型之间的一致性。本文提出了一种基于WordNet注释的方法来提高过程模型匹配器的有效性。该方法分为三个步骤。在第一步中,提取两个bp的所有活动。其次,使用单词光泽扩展活动标签,最后使用余弦相似度度量检测相似活动。在已知的数据集上进行了两个实验来验证所提出方法的有效性。在第一种方法中,只使用余弦相似度度量来计算对齐,而不需要展开过程。而在第二个实验中,余弦相似度度量被应用于使用光泽的扩展活动。实验结果表明,使用WordNet gloss扩展活动可以提高过程模型匹配器的有效性。
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