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Doppler-shift invariant feature extraction for underwater acoustic target classification

机译:Doppler-Shift不变特征提取用于水下声学目标分类

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Spectrum is one of the commonly used but effective feature for underwater acoustic target classification. However, features extracted based on the spectra are vulnerable to the change of acoustic channels. We propose in this paper a Doppler-shift invariant spectrum feature extraction method which can extract inherent and stable features when target moves in a highly maneuverable manner. The signal is firstly filtered by a set of quasi-orthogonal triangular filters into its frequency domain with a linear property in the log scale. Then the time-variant Doppler shift for each prominent line component tends to be a frequency-invariant offset, which can be easily removed. Such a Doppler-shift invariant feature removes the irrelevant target's motion information and separates out the inherent target spectrum feature. Numerical real data results demonstrate that the proposed feature outperforms the traditional ones in underwater target classification.
机译:光谱是水下声学目标分类的常用但有效特征之一。然而,基于光谱提取的特征容易受到声道的变化。我们在本文中提出了一种多普勒 - 换档不变频谱特征提取方法,当目标以高可动性的方式移动时,可以提取固有和稳定的特征。首先通过一组准正交三角形滤波器在其频域中通过日志比例中的线性属性来过滤信号。然后,每个突出线分量的时变多普勒偏移倾向于是频率不变的偏移,这可以容易地移除。这种多普勒 - 换档不变特征消除了无关目标的运动信息并分离出固有的目标频谱特征。数值实数据结果表明,所提出的特征优于水下目标分类中的传统特征。

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