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An Effective Massive Sensor Network Data Access Scheme Based on Topology Control for the Internet of Things

机译:基于拓扑控制的物联网有效大规模传感器网络数据访问方案

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This paper considers the distributed access and control problem of massive wireless sensor networks’ data access center for the Internet of Things, which is an extension of wireless sensor networks and an element of its topology structure. In the context of the arrival of massive service access requests at a virtual data center, this paper designs a massive sensing data access and control mechanism to improve the access efficiency of service requests and makes full use of the available resources at the data access center for the Internet of things. Firstly, this paper proposes a synergistically distributed buffer access model, which separates the information of resource and location. Secondly, the paper divides the service access requests into multiple virtual groups based on their characteristics and locations using an optimized self-organizing feature map neural network. Furthermore, this paper designs an optimal scheduling algorithm of group migration based on the combination scheme between the artificial bee colony algorithm and chaos searching theory. Finally, the experimental results demonstrate that this mechanism outperforms the existing schemes in terms of enhancing the accessibility of service requests effectively, reducing network delay, and has higher load balancing capacity and higher resource utility rate.
机译:本文考虑了物联网的大规模无线传感器网络数据访问中心的分布式访问和控制问题,它是无线传感器网络的扩展,也是其拓扑结构的组成部分。在大量服务访问请求到达虚拟数据中心的情况下,本文设计了一种庞大的传感数据访问和控制机制,以提高服务请求的访问效率,并充分利用数据访问中心的可用资源来进行虚拟访问。物联网。首先,提出一种协同分布的缓冲区访问模型,该模型将资源和位置信息分开。其次,使用优化的自组织特征图神经网络,根据服务访问请求的特征和位置将服务访问请求分为多个虚拟组。此外,基于人工蜂群算法与混沌搜索理论的结合方案,设计了一种群体迁移的最优调度算法。最后,实验结果表明,该机制在有效增强服务请求的可访问性,减少网络时延方面优于现有方案,具有更高的负载均衡能力和更高的资源利用率。

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