Modeling Digital Twins of Kubernetes-Based Applications

D. Borsatti, W. Cerroni, L. Foschini, G. Grabarnik, Filippo Poltronieri, Domenico Scotece, L. Shwartz, C. Stefanelli, M. Tortonesi, Mattia Zaccarini
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引用次数: 1

Abstract

Kubernetes provides several functions that can help service providers to deal with the management of complex container-based applications. However, most of these functions need a time-consuming and costly customization process to address service-specific requirements. The adoption of Digital Twin (DT) solutions can ease the configuration process by enabling the evaluation of multiple configurations and custom policies by means of simulation-based what-if scenario analysis. To facilitate this process, this paper proposes KubeTwin, a framework to enable the definition and evaluation of DTs of Kubernetes applications. Specifically, this work presents an innovative simulation-based inference approach to define accurate DT models for a Kubernetes environment. We experimentally validate the proposed solution by implementing a DT model of an image recognition application that we tested under different conditions to verify the accuracy of the DT model. The soundness of these results demonstrates the validity of the KubeTwin approach and calls for further investigation.
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基于kubernetes的应用程序的数字孪生建模
Kubernetes提供了几个功能,可以帮助服务提供商处理复杂的基于容器的应用程序的管理。然而,这些功能中的大多数都需要一个耗时且昂贵的定制过程来满足特定于服务的需求。采用数字孪生(DT)解决方案可以通过基于模拟的假设场景分析来启用多个配置和自定义策略的评估,从而简化配置过程。为了促进这一过程,本文提出了KubeTwin,这是一个框架,用于定义和评估Kubernetes应用程序的dt。具体来说,这项工作提出了一种创新的基于仿真的推理方法,用于为Kubernetes环境定义准确的DT模型。我们通过在不同条件下测试图像识别应用程序的DT模型来验证所提出的解决方案,以验证DT模型的准确性。这些结果的合理性证明了KubeTwin方法的有效性,并需要进一步的研究。
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