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Design of Sparse Multiband Signal for Precise Positioning With Joint Low-Complexity Time Delay and Carrier Phase Estimation

机译:稀疏多频段信号设计,具有联合低复杂度时间延迟和载波相位估计的精确定位

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This paper presents a methodology to design a sparse multiband ranging signal with a large virtual bandwidth, from which time delay and carrier phase are estimated by a low complexity multivariate maximum likelihood (ML) method. In the estimation model for a multipath channel, not all reflected paths are considered, and time delay and carrier phase are estimated in a step-wise manner to further reduce the computational load. By introducing a measure of dependence and a measure of bias for a multipath reflection, we analyse the bias, precision and accuracy of time delay and carrier phase estimation. Since these two indicators are determined by the signal spectrum pattern, they are used to formulate an optimization for signal design. By solving the optimization problem, only a few bands from the available signal spectrum are selected for ranging. Consequently, the designed signal only occupies a small amount of signal spectrum but has a large virtual bandwidth and can thereby still offer a high ranging precision with only a small bias, based on the low-complexity simplified ML method. Numerical and laboratory experiments are carried out to evaluate the ranging performance of the proposed estimation method based on sparsely selected signal bands. Relative positioning, in which we only measure a change in position, based on either the time delay estimates or the carrier phase estimates, is presented as a proof-of-concept for precise positioning. The results show that positioning based on only 7 out of 16 signal bands, sparsely placed in the available spectrum, achieves a decimeter level accuracy when using time delay estimates, and a millimeter level accuracy when using carrier phase estimates. Compared with the case of using all available bands, and without largely decreasing the positioning performance, the computational complexity when using the sparse multiband signal can be reduced by about 80%.
机译:本文提出了一种方法来设计具有大带宽的虚拟,从该时间延迟和载波相位是由一个低复杂度的多元最大似然(ML)方法来估计的稀疏多频带测距信号。在用于多径信道的估计模型,不是所有的反射路径被认为是,和时间延迟和载波相位估计在一个逐步的方式以进一步减少计算负荷。通过引入相关性的度量和偏差多径反射的测量,分析时间延迟和载波相位估计的偏置,精确度和准确度。由于这两个指标由信号频谱图案来确定,它们被用于配制用于信号设计的最优化。通过解决优化问题,从现有的信号频谱只有少数频带选择范围。因此,所设计的信号只占用信号频谱的少量但具有大的虚拟带宽并且由此可以仍然提供高测距精度只有很小的偏差,基于简化的ML方法的低复杂度。数值和实验室进行了实验来评估基于稀疏选择的信号的频带所提出的估计方法的测距性能。相对定位,在此我们仅测量位置的改变的基础上,无论是时间延迟估计或载波相位估算,是作为一个证明的概念进行精确定位。结果表明,使用时间延迟估算值时,以及使用载波相位估算值时毫米级的精度仅基于7 16个信号频带,疏放置在可用频谱,定位实现了分米级精确度。与使用所有可用频带的情况相比,在不大幅度降低定位性能,可通过约80%降低使用稀疏多频带信号时的计算复杂度。

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