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Multilateration localization based on Singular Value Decomposition for 3D indoor positioning

机译:基于奇异值分解3D室内定位的多管定位

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Localization is crucial for various applications, this includes resource coordination in small and ultra-small cells, as well as the whole range of Location Based Service (LBS). Multilateration is a localization technique that is based on distance measurements between multiple reference nodes and a target node. This paper introduces a multilateration localization approach that uses Singular Value Decomposition (SVD) for 3D indoor positioning. It also provides a mathematical multilateration formulation which considers the coordinates of the reference nodes and the relative distance between transmitting nodes. In practical deployments, the relative distance can be estimated using RSSI; we apply Kalman filtering to the RSSI measurements aiming to get a more accurate RSSI value. The approach is complemented by using two selection methods which help chosing the best nodes for multilateration computation. The paper concludes with a discussion of the experimental evaluation results obtained.
机译:本地化对于各种应用来说至关重要,这包括小型和超小型电池的资源协调,以及基于位置的服务范围(LBS)。多边是一种本地化技术,其基于多个参考节点和目标节点之间的距离测量。本文介绍了一种多管定位方法,使用奇异值分解(SVD)进行3D室内定位。它还提供了一种数学多管制定,其考虑参考节点的坐标和发送节点之间的相对距离。在实际部署中,可以使用RSSI估计相对距离;我们将Kalman滤波应用于RSSI测量,旨在获得更准确的RSSI值。通过使用两个选择方法补充该方法,这有助于将最佳节点切换为多管子计算。本文讨论了所获得的实验评估结果的讨论。

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