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Efficient Time of Arrival Estimation Algorithm Achieving Maximum Likelihood Performance in Dense Multipath

机译:密集多径中实现最大似然性能的有效到达时间估计算法

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摘要

Robust and accurate time-of-arrival (TOA) estimation in dense multipath channels such as those encountered in ultra-wideband (UWB) systems is a considerable challenge especially when the signal-to-noise ratio (SNR) is low. The exact maximum likelihood (EML) TOA estimator in dense multipath conditions has the potential to attain accurate TOA estimation, however, it is too complex for practical implementation. There is a substantial performance gap between the known practical algorithms for TOA estimation and the EML estimator. In this paper, a novel practical TOA estimation algorithm is developed that attains the EML performance when the multipath arrivals are dense. When the multipath arrivals density is low the estimator does not attain the maximum likelihood performance but still outperforms other known practical estimators. The estimator does not need to know the channel characteristics accurately, thus, it is robust to various multipath channels. The approach taken is to approximate the received multipath signal as a Gaussian process and derive the maximum likelihood estimator. In order to further decrease the computational load of the new algorithm, we develop a low complexity approximation with negligible performance degradation. The algorithm is useful for either single channel realization or multiple channel realizations using diversity either in time, frequency or space. When applying diversity technique a substantial performance gain is attained due to the optimal combining of the channel realizations and thus reliable TOA estimation is attainable even at low SNR. The estimator's performance can be closely predicted by a closed-form analytical error expression.
机译:在密集的多径信道(例如在超宽带(UWB)系统中遇到的信道)中,稳健而准确的到达时间(TOA)估计是一个巨大的挑战,尤其是在信噪比(SNR)低的情况下。密集多径条件下的精确最大似然(EML)TOA估计器有可能获得准确的TOA估计,但是,对于实际实现而言,它太复杂了。在用于TOA估计的已知实用算法与EML估计器之间存在很大的性能差距。本文提出了一种新颖实用的TOA估计算法,当多径到达密集时,该算法可以获得EML性能。当多径到达密度较低时,估计器无法达到最大似然性能,但仍胜过其他已知的实际估计器。估计器不需要精确地知道信道特性,因此,它对于各种多径信道都是鲁棒的。所采用的方法是将接收到的多径信号近似为高斯过程,并得出最大似然估计器。为了进一步减少新算法的计算负担,我们开发了一种低复杂度的近似算法,并且性能下降可忽略不计。该算法对于使用时间,频率或空间分集的单通道实现或多通道实现都是有用的。当应用分集技术时,由于信道实现的最佳组合而获得了可观的性能增益,因此即使在低SNR时也可以获得可靠的TOA估计。估计器的性能可以通过闭合形式的分析误差表达式来精确预测。

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