An optimization approach for robust transformation of measured range data into position estimates in wireless networks

Juan Carlos Fuentes Michel, M. Vossiek
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引用次数: 1

Abstract

This paper introduces a generalized framework for positioning mobile nodes in a wireless network. The transformation of the range data measured between pairs of network nodes into a spatial position is a very challenging task if the range measurements are distorted. Typical distortions in wireless ranging systems are caused by an imperfect clock synchronization or by multipath reflection. The positioning method proposed in this paper overcomes problems of the traditional circular or hyperbolic methods and allows for the detection and elimination of distorted measurements. The positioning is done in a non-Markovian manner, which is an advantage over other available methods, especially the Kalman-based positioning methods, since linear assumptions in the dynamics are avoided. Another advantage of the proposed method is that the two tasks positioning and smoothing are carried out separately. Hence, smoothing of the position data, e.g. by means of a Kalman filter, is possible without the well documented problems in conventional methods induced by the usually applied simplifying assumptions of linear dynamics. The very good performance of the presented approach is demonstrated by real life results obtained in industrial environments.
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无线网络中测量距离数据鲁棒转换为位置估计的优化方法
本文介绍了一种用于无线网络中移动节点定位的通用框架。在距离测量数据失真的情况下,将网络节点间测量的距离数据转换成空间位置是一项非常具有挑战性的任务。无线测距系统中的典型失真是由时钟同步不完善或多径反射引起的。本文提出的定位方法克服了传统的圆形或双曲线定位方法的缺点,能够检测和消除测量失真。该定位方法采用非马尔可夫方法,避免了动力学中的线性假设,优于其他方法,特别是基于卡尔曼的定位方法。该方法的另一个优点是定位和平滑两个任务是分开进行的。因此,位置数据的平滑,例如通过卡尔曼滤波器,是可能的,而不会出现由通常应用的线性动力学简化假设引起的传统方法中有充分记录的问题。在工业环境中获得的实际结果证明了该方法的良好性能。
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