流与函数:云事件处理的成本视角

Tobias Pfandzelter, S. Henning, Trever Schirmer, W. Hasselbring, David Bermbach
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引用次数: 4

摘要

在云事件处理中,边缘生成的数据由云资源实时处理。分布式流处理(DSP)和功能即服务(FaaS)已经被提出来实现这些事件处理应用。FaaS强调快速开发和易于操作,而DSP强调高效处理大数据量。尽管它们在体系结构上存在差异,但都可以用于建模和实现松耦合作业图。在本文中,我们从成本的角度考虑FaaS和DSP的选择。我们使用云FaaS和DSP实现了来自Theodolite基准测试套件的无状态和有状态工作流。在广泛的评估中,我们展示了应用程序类型、云服务提供商和运行时环境如何影响应用程序部署的成本,并为云工程师提供决策指南。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Streaming vs. Functions: A Cost Perspective on Cloud Event Processing
In cloud event processing, data generated at the edge is processed in real-time by cloud resources. Both distributed stream processing (DSP) and Function-as-a-Service (FaaS) have been proposed to implement such event processing applications. FaaS emphasizes fast development and easy operation, while DSP emphasizes efficient handling of large data volumes. Despite their architectural differences, both can be used to model and implement loosely-coupled job graphs. In this paper, we consider the selection of FaaS and DSP from a cost perspective. We implement stateless and stateful workflows from the Theodolite benchmarking suite using cloud FaaS and DSP. In an extensive evaluation, we show how application type, cloud service provider, and runtime environment can influence the cost of application deployments and derive decision guidelines for cloud engineers.
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