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首页> 外文期刊>International Journal of Distributed Sensor Networks >An intelligent data gathering schema with data fusion supported for mobile sink in wireless sensor networks
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An intelligent data gathering schema with data fusion supported for mobile sink in wireless sensor networks

机译:无线传感器网络中的移动接收器支持的具有数据融合功能的智能数据收集方案

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摘要

Numerous tiny sensors are restricted with energy for the wireless sensor networks since most of them are deployed in harsh environments, and thus it is impossible for battery re-change. Therefore, energy efficiency becomes a significant requirement for routing protocol design. Recent research introduces data fusion to conserve energy; however, many of them do not present a concrete scheme for the fusion process. Emerging machine learning technology provides a novel direction for data fusion and makes it more available and intelligent. In this article, we present an intelligent data gathering schema with data fusion called IDGS-DF. In IDGS-DF, we adopt a neural network to conduct data fusion to improve network performance. First, we partition the whole sensor fields into several subdomains by virtual grids. Then cluster heads are selected according to the score of nodes and data fusion is conducted in CHs using a pretrained neural network. Finally, a mobile agent is adopted to gather information along a predefined path. Plenty of experiments are conducted to demonstrate that our schema can efficiently conserve energy and enhance the lifetime of the network.
机译:由于无线传感器网络中的大多数微型传感器都部署在恶劣的环境中,因此许多微型传感器都受到能量的限制,因此无法更换电池。因此,能源效率成为路由协议设计的重要要求。最近的研究引入了数据融合以节省能源。但是,其中许多都没有提出融合过程的具体方案。新兴的机器学习技术为数据融合提供了一个新颖的方向,并使其更加实用和智能。在本文中,我们提出了一种具有数据融合功能的智能数据收集架构,称为IDGS-DF。在IDGS-DF中,我们采用神经网络进行数据融合以提高网络性能。首先,我们通过虚拟网格将整个传感器字段划分为几个子域。然后根据节点的分数选择簇头,并使用预训练的神经网络在CH中进行数据融合。最后,采用移动代理沿着预定路径收集信息。进行了大量实验以证明我们的方案可以有效地节省能源并延长网络的寿命。

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