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Weighted Least Squares Techniques for Improved Received Signal Strength Based Localization

机译:加权最小二乘技术用于改进基于接收信号强度的定位

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The practical deployment of wireless positioning systems requires minimizing the calibration procedures while improving the location estimation accuracy. Received Signal Strength localization techniques using propagation channel models are the simplest alternative, but they are usually designed under the assumption that the radio propagation model is to be perfectly characterized a priori. In practice, this assumption does not hold and the localization results are affected by the inaccuracies of the theoretical, roughly calibrated or just imperfect channel models used to compute location. In this paper, we propose the use of weighted multilateration techniques to gain robustness with respect to these inaccuracies, reducing the dependency of having an optimal channel model. In particular, we propose two weighted least squares techniques based on the standard hyperbolic and circular positioning algorithms that specifically consider the accuracies of the different measurements to obtain a better estimation of the position. These techniques are compared to the standard hyperbolic and circular positioning techniques through both numerical simulations and an exhaustive set of real experiments on different types of wireless networks (a wireless sensor network, a WiFi network and a Bluetooth network). The algorithms not only produce better localization results with a very limited overhead in terms of computational cost but also achieve a greater robustness to inaccuracies in channel modeling.
机译:无线定位系统的实际部署要求最小化校准程序,同时提高位置估计的准确性。使用传播信道模型的接收信号强度定位技术是最简单的选择,但通常是在假设先验地完美描述无线电传播模型的前提下进行设计的。实际上,这种假设不成立,并且定位结果受用于计算位置的理论,粗略校准的或不完美的通道模型的不准确性的影响。在本文中,我们建议使用加权多边技术来针对这些不准确性获得鲁棒性,从而减少具有最佳信道模型的依赖性。特别是,我们提出了基于标准双曲线和圆形定位算法的两种加权最小二乘技术,这些技术专门考虑了不同测量的准确性,以获得更好的位置估计。通过数值模拟和在不同类型的无线网络(无线传感器网络,WiFi网络和蓝牙网络)上进行的详尽的实际实验,将这些技术与标准的双曲线和圆形定位技术进行了比较。该算法不仅在计算成本方面以非常有限的开销产生了更好的定位结果,而且还针对信道建模中的不准确性实现了更高的鲁棒性。

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