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Indoor localization with channel impulse response based fingerprint and nonparametric regression

机译:基于信道冲激响应的指纹和非参数回归的室内定位

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摘要

In this paper, we propose a fingerprint-based localization scheme that exploits the location dependency of the channel impulse response (CIR). We approximate the CIR by applying inverse Fourier transform to the receiver's channel estimation. The amplitudes of the approximated CIR (ACIR) vector are further transformed into the logarithmic scale to ensure that elements in the ACIR vector contribute fairly to the location estimation, which is accomplished through nonparametric kernel regression. As shown in our simulations, when both the number of access points and density of training locations are the same, our proposed scheme displays significant advantages in localization accuracy, compared to other fingerprint-based methods found in the literature. Moreover, absolute localization accuracy of the proposed scheme is shown to be resilient to the real time environmental changes caused by human bodies with random positions and orientations.
机译:在本文中,我们提出了一种基于指纹的定位方案,该方案利用了信道冲激响应(CIR)的位置依赖性。我们通过将傅立叶逆变换应用于接收器的信道估计来近似CIR。近似CIR(ACIR)向量的幅度进一步转换为对数刻度,以确保ACIR向量中的元素对位置估计产生相当大的贡献,这是通过非参数核回归来实现的。如我们的仿真所示,当访问点的数量和训练位置的密度相同时,与文献中其他基于指纹的方法相比,我们提出的方案在定位精度方面显示出显着优势。而且,所提出的方案的绝对定位精度显示出对由具有随机位置和方向的人体引起的实时环境变化具有弹性。

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