Robust Techniques for Accurate Indoor Localization in Hazardous Environments

G. Godaliyadda, H. K. Garg
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Abstract

The challenging conditions prevalent in indoor environments have rendered many traditional positioning methods inept to yield satisfactory results. Our work tackles the challenging problem of accurate indoor positioning in hazardous multipath environments through three versatile super resolution techniques: time domain Multiple Signal Classification (TD-MUSIC), frequency domain MUSIC (FD-MUSIC) algorithms, and frequency domain Eigen value (FD-EV) method. The advantage of using these super resolution techniques is twofold. First for Line-of-Sight (LoS) conditions this provides the most accurate means of determining the time delay estimate from transmitter to receiver for any wireless sensor network. The high noise immunity and resolvability of these methods makes them ideal for cost-effective wireless sensor networks operating in indoor channels. Second for non-LoS conditions the resultant pseudo-spectrum generated by these methods provides the means to construct the ideal location based fingerprint. We provide an in depth analysis of limitation as well as advantages inherent in all of these methods through a detailed behavioral analysis under constrained environments. Hence, the bandwidth versatility, higher resolution capability and higher noise immunity of the TD-MUSIC algorithm and the FD-EV method’s ability to resurface submerged signal peaks when the signal subspace dimensions are underestimated are all presented in detail.
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危险环境下室内精确定位的鲁棒技术
室内环境中普遍存在的具有挑战性的条件使得许多传统的定位方法无法产生令人满意的结果。我们的工作通过三种通用的超分辨率技术:时域多信号分类(TD-MUSIC)、频域MUSIC (FD-MUSIC)算法和频域特征值(FD-EV)方法,解决了在危险多路径环境中精确室内定位的挑战性问题。使用这些超分辨率技术的优势是双重的。首先,对于视距(LoS)条件,这提供了最准确的方法来确定任何无线传感器网络从发射器到接收器的时间延迟估计。这些方法的高抗噪性和高分辨率使它们成为在室内信道中运行的具有成本效益的无线传感器网络的理想选择。其次,在非los条件下,这些方法生成的伪谱为构建理想的基于位置的指纹提供了手段。我们通过在约束环境下详细的行为分析,对所有这些方法的局限性和固有优势进行了深入的分析。因此,详细介绍了TD-MUSIC算法的带宽通用性、更高的分辨率和更高的抗噪声能力,以及FD-EV方法在信号子空间维度被低估时对淹没信号峰值的再现能力。
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