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Adaptive Instantaneous Frequency Estimation of Multicomponent Signals Based on Linear Time–Frequency Transforms

机译:基于线性时频变换的多分量信号自适应瞬时频率估计

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The use of linear time-frequency (TF) representations as instantaneous frequency (IF) estimators arises in various fundamental disciplines, mainly thanks to their simplicity and immunity against interfering cross-terms. In this paper, we derive the optimal window width for IF estimation of noisy multicomponent signals based on a family of linear TF transforms that use Gaussian windowing functions and the Fourier oscillatory kernel. Closed-form formulas concerning the estimation bias and the variance are presented, which, thanks to their generality, describe the statistical performance of IF estimators based on transforms with fixed, time-adaptive, frequency-adaptive, or time-frequency adaptive windows. The optimal window is dependent on the unknown first derivative of the IF; therefore, we employ a low-complexity procedure to infer the derivative and optimize the width accordingly. Two adaptive and fully automatedTF representations (TFRs) are developed; the first employs a time-adaptive window that minimizes the sum of the mean-squared errors (MSEs) of the IF estimates at each time instant, while in the second TFR, the window is adaptive over time and frequency, minimizing the estimation MSE at each location in the TF domain. Examples using synthetic and real-world signals demonstrate that the proposed algorithms may outperformmany popular state-of-the-art techniques, including those that are signal-adaptive, in terms of IF estimation.
机译:线性时频(TF)表示作为瞬时频率(IF)估计器的使用在各种基础学科中都应运而生,这主要是由于它们的简单性和对交叉项的干扰能力。在本文中,我们基于使用高斯开窗函数和傅立叶振荡核的线性TF变换系列,推导了用于噪声多分量信号的IF估计的最佳窗口宽度。给出了有关估计偏差和方差的闭式公式,由于它们的通用性,它们描述了基于具有固定,时间自适应,频率自适应或时频自适应窗口的变换的IF估计器的统计性能。最佳窗口取决于IF的未知一阶导数。因此,我们采用低复杂度的程序来推断导数并相应地优化宽度。开发了两种自适应和全自动TF表示(TFR);第一种使用时间自适应窗口,该窗口将每个时刻的IF估计值的均方误差(MSE)的总和最小化,而在第二个TFR中,该窗口在时间和频率上具有自适应性,从而将MSE的估计值最小化TF域中的每个位置。使用合成信号和现实信号的示例表明,就中频估计而言,所提出的算法可能胜过许多流行的最新技术,包括那些具有信号自适应能力的技术。

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