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Application of a sparse time-frequency technique for targets with oscillatory fluctuations

机译:稀疏时频技术在振荡波动目标中的应用

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In this paper, an application of the tunable Q-Factor wavelet transform (TQWT) to a maritime object classification problem is demonstrated. The TQWT, which depends on the two main parameters of the Q-factor and asymptotic redundancy, matches the oscillatory behaviour of the signal of interest when tuned. The approach, which differs from the Fourier and Wavelet transforms, decomposes a signal into a “high-Q-factor” and “low-Q-factor” component, and can be used to distinguish two radar range profiles of different oscillatory nature. The results of the paper show that the TQWT can provide sparse representation for some signals and that morphological component analysis (MCA) can be used to differentiate two radar signals based on their TQWT parameters.
机译:本文介绍了可调谐Q因子小波变换(TQWT)在海上目标分类问题中的应用。 TQWT取决于Q因子和渐近冗余这两个主要参数,在调谐时匹配感兴趣信号的振荡行为。与傅立叶和小波变换不同,该方法将信号分解为“高Q因子”和“低Q因子”分量,可用于区分具有不同振荡性质的两个雷达测距曲线。论文的结果表明,TQWT可以为某些信号提供稀疏表示,并且形态成分分析(MCA)可用于根据两个雷达信号的TQWT参数来区分它们。

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