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Parameter Estimation of Multicomponent Chirp Signals via Sparse Representation

机译:基于稀疏表示的多分量线性调频信号参数估计

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摘要

A novel algorithm for parameter estimation of multicomponent chirp signals in complicated noise environment is proposed. By the matching pursuit (MP) algorithm, the signal is decomposed into Gabor atoms which provide sparse information that represents the signal time-frequency signature. The Hough transform (HT) is then directly used to estimate the parameter of chirp components without computing the time-frequency distribution. Simulation results show that this algorithm is capable of estimating parameters of multicomponent chirp signals even in the presence of strong intended interference and colored noise.
机译:提出了一种在复杂噪声环境下多分量线性调频信号参数估计的新算法。通过匹配追踪(MP)算法,信号被分解为Gabor原子,Gabor原子提供了代表信号时频特征的稀疏信息。然后,霍夫变换(HT)直接用于估算线性调频分量的参数,而无需计算时频分布。仿真结果表明,即使存在强烈的预期干扰和有色噪声,该算法也能够估计多分量线性调频信号的参数。

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