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Data-Intensive Computing Modules for Teaching Parallel and Distributed Computing

机译:用于教学并行和分布式计算的数据密集型计算模块

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Parallel and distributed computing (PDC) has found a broad audience that exceeds the traditional fields of computer science. This is largely due to the increasing computational demands of many engineering and domain science research objectives. Thus, there is a demonstrated need to train students with and without computer science backgrounds in core PDC concepts. Given the rise of data science and other data-enabled computational fields, we propose several data-intensive pedagogic modules that are used to teach PDC using message-passing programming with the Message Passing Interface (MPI). These modules employ activities that are common in database systems and scientific workflows that are likely to be employed by domain scientists. Our hypothesis is that using application-driven pedagogic materials facilitates student learning by providing the context needed to fully appreciate the goals of the activities.We evaluated the efficacy of using the data-intensive pedagogic modules to teach core PDC concepts using a sample of graduate students enrolled in a high performance computing course at Northern Arizona University. In the sample, only 30% of students have a traditional computer science background. We found that the hands-on application-driven approach was generally successful at helping students learn core PDC concepts.
机译:并行和分布式计算(PDC)发现广泛的受众超过了计算机科学传统领域。这主要是由于许多工程和域科学研究目标的计算需求增加。因此,有一个人可以在核心PDC概念中训练有和没有计算机科学背景的学生。鉴于数据科学的兴起和其他支持数据的计算字段,我们提出了几种数据密集型教学模块,用于使用具有消息传递接口(MPI)的消息传递编程来教授PDC。这些模块采用了域科学家可能雇用的数据库系统和科学工作流程中常见的活动。我们的假设是,使用应用程序驱动的教学材料通过提供完全欣赏活动目标所需的背景来促进学生学习。我们评估了使用数据密集型教学模块使用研究生样本教导核心PDC概念的疗效。注册了亚利桑那州北部大学的高性能计算课程。在样本中,只有30%的学生有一个传统的计算机科学背景。我们发现,在帮助学生学习核心PDC概念时,实践的应用驱动方法通常是成功的。

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