无缝计算的动态调度

Ludwig Mittermeier, Florian Katenbrink, A. Seitz, Harald Mueller, B. Brügge
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引用次数: 7

摘要

物联网(IoT)设备产生的数据不断增加。使用云计算来处理这些数据与网络拥塞、高延迟和不提供上下文感知有关。人们提出了雾计算作为克服这些问题的一种解决方案。雾节点和边缘节点的异构、分布式特性需要一个系统来促进应用程序的开发和部署以及集群中节点的管理。无缝计算是雾计算的扩展,它尊重节点的移动性和异构性。在运行时优先考虑成本、能源或网络延迟优化的行业场景中,静态部署是不够的。生产系统需要可用性、容错性和可扩展性,但不以牺牲可用性为代价。本研究考察了分布式异构雾计算集群在运行时对软件组件进行动态重调度的系统需求。我们提出了动态调度无缝计算(DYSCO)作为解决方案,并提出了一个基于Kubernetes的概念实现。我们描述了用于DYSCO的Kubernetes的配置,使用监视工具对其进行扩展,并增强了调度器以启用动态组件重新调度。我们使用雾计算集群中特定行业场景的测试用例来评估DYSCO的需求。它运行一个必须立即对机器故障做出反应的安全关键应用程序,以及一个处理员工数据进行分析的应用程序。我们表明,DYSCO能够在运行时重新安排软件组件,同时确保技术独立性,可用性,容错性和可用性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Dynamic Scheduling for Seamless Computing
The data generated by Internet of Things (IoT) devices is constantly increasing. The use of cloud computing to process this data is associated with network congestion, has high latency and does not provide context awareness. Fog computing has been proposed as a solution to overcome these problems. The heterogeneous, distributed nature of fog and edge nodes requires a system that facilitates the development and deployment of applications and management of nodes in a cluster. Seamless computing is an extension of fog computing that respects mobility and heterogeneity of nodes. In industry scenarios where cost, energy or network latency optimization is preferred at runtime, static deployment is not sufficient. Production systems require availability, fault tolerance and extensibility, but not at the expense of usability. This research examines the requirements of a system for dynamic rescheduling of software components in a distributed, heterogeneous fog computing cluster at runtime. We propose Dynamic Scheduling for Seamless Computing (DYSCO) as a solution and present a concept implementation based on Kubernetes. We describe the configuration of Kubernetes for DYSCO, extend it with a monitoring tool and enhance the scheduler to enable dynamic components rescheduling. We evaluate the requirements of DYSCO with test cases for an industry-specific scenario in a fog computing cluster. It operates a safety-critical application that must immediately react to machine failures and an application that processes employee data for analytics. We show that DYSCO is able to reschedule software components at runtime, while ensuring technology independence, availability, fault tolerance and usability.
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