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Locally Linear Embedding for Node Localization in Wireless Sensor Networks

机译:无线传感器网络中用于节点定位的局部线性嵌入

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RSSI gives an initial rough measure of the inter node distances at low cost without the need of additional equipment or complexity. This necessitates the need for a mechanism to obtain accurate node locations from the noisy distance estimates. Manifold learning techniques can be used for estimating locations, but their ability to localize node in the sensor network environment has not been benchmarked. In this paper, locally linear embedding (LLE) has been proposed for localization of nodes from noisy RSSI distance estimates by viewing the localization process as dimensionality reduction. The efficacy of centralized LLE technique to localize sensor nodes has been studied with respect to localization accuracy, communication and computation overhead. Simulation results show that, the centralized LLE is able to localize nodes with high accuracy. However, information collection on the sink node requires extensive message passing from all nodes to the sink.
机译:RSSI以低成本对节点间距离进行了初步的粗略测量,而无需额外的设备或复杂性。这就需要一种从噪声距离估计中获得准确的节点位置的机制。流形学习技术可用于估计位置,但是尚未对它们在传感器网络环境中定位节点的能力进行基准测试。在本文中,已经提出了局部线性嵌入(LLE),通过将定位过程视为降维,从而根据嘈杂的RSSI距离估计值对节点进行定位。关于定位精度,通信和计算开销,已经研究了集中式LLE技术对传感器节点进行定位的功效。仿真结果表明,集中式LEE能够对节点进行高精度定位。但是,接收器节点上的信息收集需要从所有节点到接收器的大量消息传递。

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