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Distributed resource sharing in fog-assisted big data streaming

机译:雾辅助大数据流中的分布式资源共享

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Fog computing is a promising architectural pattern to reduce the amount of data that is transferred to the cloud for processing and analysis. In this paper, we study fog-assisted data streaming scenario in which fog nodes at the network edge share their spare resources to help pre-process raw data of applications hosted in the cloud. A distributed resource sharing scheme is presented where the software defined network (SDN) controller dynamically adjusts the volume of application data that will be directed to fog nodes for pre-processing. The SDN controller makes decisions by coordinating fog nodes and cloud platform to collaboratively solve a social welfare maximization problem. Based on a hybrid alternating direction method of multipliers (H-ADMM) algorithm, computation burden for solving the optimization problem is fully distributed to fog nodes, cloud platform and SDN controller, where local variables of fog nodes are updated in parallel. With proper design of message exchange pattern, the communication overhead of the coordination to SDN controller grows smoothly with increasing number of participating fog nodes.
机译:雾计算是一种很有前途的架构模式,可以减少传输到云中进行处理和分析的数据量。在本文中,我们研究了雾辅助数据流方案,其中网络边缘的雾节点共享其备用资源,以帮助预处理托管在云中的应用程序的原始数据。提出了一种分布式资源共享方案,其中软件定义网络(SDN)控制器动态调整将定向到雾化节点进行预处理的应用程序数据量。 SDN控制器通过协调雾节点和云平台来做出决策,以共同解决社会福利最大化的问题。基于混合交替方向乘积算法(H-ADMM),解决优化问题的计算负担被完全分配给雾节点,云平台和SDN控制器,雾节点的局部变量被并行更新。通过适当设计消息交换模式,与SDN控制器的协调通信开销会随着参与的雾节点数量的增加而平稳增长。

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