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An edge cloud–based body data sensing architecture for artificial intelligence computation

机译:基于边缘云的人体数据传感架构,用于人工智能计算

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As various applications and workloads move to the cloud computing system, traditional approaches of processing sensor data cannot be applied. Specifically, tenants may experience incompatibility and unpredictable performance variation due to inefficient implementations. In this article, we present an edge cloud–based body data sensing architecture for artificial intelligence computation. The main rationale for designing the edge cloud–based sensing architecture is as follows. By analyzing physical body data on the edge cloud computing system, we can identify the relationship between body activities and health conditions for persons. In addition, we can support real-time applications without catastrophic failures by our efficient and stable implementation of the sensing architecture. Our cloud storage architecture is designed to support both stateful and stateless applications, which are compatible with traditional infrastructures and provide server consolidation with a CPU-aware scheduling of virtual machines. Performance results show that our edge cloud–based architecture outperforms the previous architecture in terms of failures, processing time, and scalability.
机译:随着各种应用程序和工作负载转移到云计算系统,无法应用处理传感器数据的传统方法。具体来说,由于实施效率低下,租户可能会遇到不兼容和性能无法预测的情况。在本文中,我们介绍了一种用于人工智能计算的基于边缘云的身体数据传感体系结构。设计基于边缘云的传感架构的主要原理如下。通过在边缘云计算系统上分析身体的身体数据,我们可以确定人体活动与人的健康状况之间的关系。此外,通过我们高效,稳定的传感架构实施,我们可以支持实时应用而不会造成灾难性故障。我们的云存储体系结构旨在支持有状态和无状态应用程序,它们与传统基础架构兼容,并通过CPU感知的虚拟机调度来提供服务器整合。性能结果表明,基于边缘云的体系结构在故障,处理时间和可伸缩性方面都优于以前的体系结构。

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