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Transforming unstructured natural language descriptions into measurable process performance indicators using Hidden Markov Models

机译:使用隐马尔可夫模型将非结构化自然语言描述转换为可衡量的过程绩效指标

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摘要

Monitoring process performance is an important means for organizations to identify opportunities to improve their operations. The definition of suitable Process Performance Indicators (PPIs) is a crucial task in this regard. Because PPIs need to be in line with strategic business objectives, the formulation of PPIs is a managerial concern. Managers typically start out to provide relevant indicators in the form of natural language PPI descriptions. Therefore, considerable time and effort have to be invested to transform these descriptions into PPI definitions that can actually be monitored. This work presents an approach that automates this task. The presented approach transforms an unstructured natural language PPI description into a structured notation that is aligned with the implementation underlying a business process. To do so, we combine Hidden Markov Models and semantic matching techniques. A quantitative evaluation on the basis of a data collection obtained from practice demonstrates that our approach works accurately. Therefore, it represents a viable automated alternative to an otherwise laborious manual endeavor. (C) 2017 Elsevier Ltd. All rights reserved.
机译:监视流程绩效是组织发现机会以改善其运营的重要手段。在这方面,合适的过程绩效指标(PPI)的定义是至关重要的任务。由于PPI必须与战略业务目标保持一致,因此PPI的制定是管理层的关注点。管理人员通常开始以自然语言PPI描述的形式提供相关指标。因此,必须花费大量时间和精力将这些描述转换为可以实际监控的PPI定义。这项工作提出了一种自动化此任务的方法。所提出的方法将非结构化自然语言PPI描述转换为与业务流程基础实现一致的结构化表示法。为此,我们结合了隐马尔可夫模型和语义匹配技术。根据从实践中获得的数据进行的定量评估表明,我们的方法是正确的。因此,它代表了一种可行的自动化替代方法,可以替代费力的手动方法。 (C)2017 Elsevier Ltd.保留所有权利。

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