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A novel grid selection method for sky-wave time difference of arrival localisation

机译:一种新型栅格选择方法,用于天波时间差的到来定位

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摘要

This paper studies sky-wave time-difference-of-arrival (TDOA) localisation in passive-radar systems, and the focus is on two-dimensional localisation on the earth surface. Signals are reflected by the ionosphere layer before arriving at sensors, making the localisation problem very complicated. Parametric methods are found to be inefficient in this case; therefore, grid-based methods are studied. However, conventional grid-based methods are not guaranteed to find the nearest grid point (NGP) of target, even when the grid map is dense and the measurements are noise-free. Hence, this paper derives the sufficient condition for NGP selection in noiseless environments. Based on it, an ellipsoid-norm method (ENM) is proposed to promise optimal results with noise-free measurements, which consists of a test phase and a search phase. If a given grid map passes the offline test phase, the search phase produces a close-form estimate at a low computational complexity. The impact of noise on ENM is also theoretically analysed. Additionally, ENM is extended to handle cases with inaccurately known ionosphere layer heights. Numerical results show that for different sensor networks, the test phase is feasible by adjusting grid densities; and ENM is superior to the current state-of-the-art in terms of estimation accuracy and computational complexity.
机译:本文研究了无源雷达系统中的天波时间 - 到达差(TDOA)定位,重点是地球表面上的二维定位。在到达传感器之前,信号被电离层层反射,使本地化问题非常复杂。在这种情况下发现参数方法效率低下;因此,研究了基于网格的方法。然而,即使当网格图是密集的,也不保证基于网格的基于网格的方法,以找到目标的最接近的网格点(NGP),并且测量是无噪声的。因此,本文源于无噪声环境中NGP选择的充分条件。基于它,提出了一种椭球 - 规范方法(enm)以承诺通过无噪声测量来承诺,这包括测试阶段和搜索阶段。如果给定的网格映射通过离线测试阶段,则搜索阶段以低计算复杂度产生闭合估计。理论上还分析了噪声对恩姆的影响。另外,eNM扩展以处理具有不准确的已知电离层高度的情况。数值结果表明,对于不同的传感器网络,通过调节网格密度,测试阶段是可行的;在估计准确度和计算复杂性方面,恩姆在当前的最先进。

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