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Polynomial Phase Estimation Based on Adaptive Short-Time Fourier Transform

机译:基于自适应短时傅立叶变换的多项式相位估计

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摘要

Polynomial phase signals (PPSs) have numerous applications in many fields including radar, sonar, geophysics, and radio communication systems. Therefore, estimation of PPS coefficients is very important. In this paper, a novel approach for PPS parameters estimation based on adaptive short-time Fourier transform (ASTFT), called the PPS-ASTFT estimator, is proposed. Using the PPS-ASTFT estimator, both one-dimensional and multi-dimensional searches and error propagation problems, which widely exist in PPSs field, are avoided. In the proposed algorithm, the instantaneous frequency (IF) is estimated by S-transform (ST), which can preserve information on signal phase and provide a variable resolution similar to the wavelet transform (WT). The width of the ASTFT analysis window is equal to the local stationary length, which is measured by the instantaneous frequency gradient (IFG). The IFG is calculated by the principal component analysis (PCA), which is robust to the noise. Moreover, to improve estimation accuracy, a refinement strategy is presented to estimate signal parameters. Since the PPS-ASTFT avoids parameter search, the proposed algorithm can be computed in a reasonable amount of time. The estimation performance, computational cost, and implementation of the PPS-ASTFT are also analyzed. The conducted numerical simulations support our theoretical results and demonstrate an excellent statistical performance of the proposed algorithm.
机译:多项式相位信号(PPS)在包括雷达,声纳,地球物理学和无线电通信系统在内的许多领域中都有大量应用。因此,估计PPS系数非常重要。本文提出了一种基于自适应短时傅立叶变换(ASTFT)的PPS参数估计新方法,称为PPS-ASTFT估计器。使用PPS-ASTFT估计器,可以避免在PPSs领域中广泛存在的一维和多维搜索以及错误传播问题。在提出的算法中,瞬时频率(IF)由S变换(ST)估计,它可以保留有关信号相位的信息,并提供类似于小波变换(WT)的可变分辨率。 ASTFT分析窗口的宽度等于本地固定长度,该长度由瞬时频率梯度(IFG)测量。 IFG由主成分分析(PCA)计算得出,该成分对噪声具有鲁棒性。此外,为了提高估计精度,提出了一种细化策略来估计信号参数。由于PPS-ASTFT避免了参数搜索,因此可以在合理的时间内计算出所提出的算法。还分析了PPS-ASTFT的估计性能,计算成本和实现。进行的数值模拟支持我们的理论结果,并证明了所提出算法的出色统计性能。

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