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Scalability of Real-Time IoT-based Applications for Smart Cities

机译:智慧城市基于物联网的实时应用的可扩展性

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The Internet of Things (IoT) is getting momentum, which drives us to design solutions able to deal with huge amounts of data coming from different sorts of sensors in order to make decisions to adapt system behavior automatically. While in recent years many IoT-based reasoning systems have already been proposed, there are no comprehensive results reporting their performance, particularly in complex environments. As an answer to that challenge, developers often choose an architecture design based on previous experience that have an impact on the system performance and scalability. This paper shows experimental results of a performance analysis study of different implementations of context-aware management architectures for IoT-based smart cities. Results show that different architectural choices affect system scalability and that automatic real time decision-making is feasible in an environment composed of dozens of thousands of sensors continuously transmitting data.
机译:物联网(IoT)正在蓬勃发展,这驱使我们设计能够处理来自各种传感器的大量数据的解决方案,以便做出自动适应系统行为的决策。尽管近年来已经提出了许多基于IoT的推理系统,但尚无全面的结果报告其性能,尤其是在复杂环境中。为了应对这一挑战,开发人员经常根据以前的经验来选择对系统性能和可伸缩性有影响的体系结构设计。本文显示了针对基于IoT的智慧城市的环境感知管理架构的不同实现的性能分析研究的实验结果。结果表明,不同的体系结构选择会影响系统的可伸缩性,并且在由成千上万个连续传输数据的传感器组成的环境中,自动实时决策是可行的。

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