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Scalable Discovery of Hybrid Process Models in a Cloud Computing Environment

机译:云计算环境中的混合过程模型的可扩展发现

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摘要

Process descriptions are used to create products and deliver services. To lead better processes and services, the first step is to learn a process model. Process discovery is such a technique which can automatically extract process models from event logs. Although various discovery techniques have been proposed, they focus on either constructing formal models which are very powerful but complex, or creating informal models which are intuitive but lack semantics. In this work, we introduce a novel method that returns hybrid process models to bridge this gap. Moreover, to cope with today's big event logs, we propose an efficient method, called f-HMD, aims at scalable hybrid model discovery in a cloud computing environment. We present the detailed implementation of our approach over the Spark framework, and our experimental results demonstrate that the proposed method is efficient and scalable.
机译:流程描述用于创建产品和提供服务。为了领导更好的流程和服务,第一步是学习进程模型。进程发现是这样的技术,可以从事件日志中自动提取过程模型。虽然已经提出了各种发现技术,但他们专注于构建非常强大但复杂的正式模型,或者创建直观但缺乏语义的非正式模型。在这项工作中,我们介绍了一种新的方法,返回混合过程模型以弥合这种差距。此外,为了应对当今的大事件日志,我们提出了一种称为F-HMD的有效方法,旨在在云计算环境中进行可扩展的混合模型发现。我们介绍了我们对Spark框架的方法的详细实施,我们的实验结果表明,所提出的方法是有效和可扩展的。

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