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Time-Delay estimation via CPD-GEVD applied to tensor-based GNSS arrays with errors

机译:通过CPD-GEVD进行的时延估计已应用于基于张量的GNSS阵列且存在错误

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Safety-critical applications (SCA), such as autonomous driving, and liability critical applications (LCA), such as fisheries management, require a robust positioning system in demanding signal environments with coherent multipath while ensuring reasonably low complexity. In this context, antenna array-based Global Navigation Satellite Systems (GNSS) receivers with array signal processing schemes allow the spatial separation of line-of-sight (LOS) from multipath components. In real-world scenarios array imperfections alter the expected array response, resulting in parameter estimation and filtering errors. In this paper, we propose an approach to time-delay estimation for a tensor-based GNSS receiver that mitigates the effect of multipath components while also being robust against array imperfections. This approach is based on the Canonical Polyadic Decomposition by a Generalized Eigenvalue Decomposition (GPD-GEVD) to recover the signal for each impinging component. Our scheme outperforms both the Higher-Order Singular Value Decomposition (HOSVD) eigenfilter and Direction of Arrival and Khatri-Rao factorization (DoA/KRF) approaches, which are state-of-the-art tensor-based schemes for time-delay estimation, particularly when array imperfections are present.
机译:诸如自动驾驶之类的安全关键型应用(SCA)和诸如渔业管理之类的责任关键型应用(LCA)要求在具有相干多路径的苛刻信号环境中建立强大的定位系统,同时还要确保合理的低复杂性。在这种情况下,具有阵列信号处理方案的基于天线阵列的全球导航卫星系统(GNSS)接收器可将视线(LOS)与多径分量进行空间分离。在实际情况下,阵列缺陷会改变预期的阵列响应,从而导致参数估计和过滤错误。在本文中,我们提出了一种基于张量的GNSS接收器的时延估计方法,该方法可减轻多径分量的影响,同时还具有针对阵列缺陷的鲁棒性。该方法基于通过广义特征值分解(GPD-GEVD)进行的规范多义分解,以恢复每个撞击分量的信号。我们的方案优于高阶奇异值分解(HOSVD)本征滤波器和到达方向和Khatri-Rao因子分解(DoA / KRF)方法,这两种方法都是基于张量的最新方案,可用于时延估计,特别是存在阵列缺陷时。

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