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Distributed on-line multidimensional scaling for self-localization in wireless sensor networks

机译:分布式在线多维缩放以实现无线传感器网络中的自定位

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The present work considers the localization problem in wireless sensor networks formed by fixed nodes. Each node seeks to estimate its own position based on noisy measurements of the relative distance to other nodes. In a centralized batch mode, positions can be retrieved (up to a rigid transformation) by applying an eigenvalue decomposition on a so-called similarity matrix built from the relative distances. In this paper, we propose a distributed on-line algorithm allowing each node to estimate its own position based on limited exchange of information in the network. Our framework encompasses the case of sporadic measurements and random transmissions. We prove the consistency of our algorithm in the case of fixed sensors. Finally, we provide numerical and experimental results from both simulated and real data. Simulations issued to real data are conducted on a wireless sensor network testbed.
机译:本工作考虑了由固定节点组成的无线传感器网络中的定位问题。每个节点都试图根据与其他节点的相对距离的噪声测量来估计自己的位置。在集中式批处理模式下,可以通过将特征值分解应用于根据相对距离构建的所谓相似度矩阵来检索位置(直到进行刚性变换)。在本文中,我们提出了一种分布式在线算法,该算法允许每个节点根据网络中有限的信息交换来估计其自身的位置。我们的框架包括零星测量和随机传输的情况。我们证明了在固定传感器情况下算法的一致性。最后,我们提供来自模拟和真实数据的数值和实验结果。发布给真实数据的模拟是在无线传感器网络测试平台上进行的。

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