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An Improved Auditory Feature based on Instantaneous Frequency and Gammatone Filters for Underwater Acoustic Target Recognition

机译:基于瞬时频率和伽马通滤波器的改进听觉特征用于水下声目标识别

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Feature extraction based on Gammatone filterbank is more robust than that from Mel filterbank in underwater acoustic recognition. However, both conventional auditory features only represent the energy-based amplitude of the signal, and their performance decrease in low underwater SNR environments. Phase represented by instantaneous frequency (IF) may also contain some characteristics of the target. This paper proposes a novel fusion feature based on the outputs of Gammatone filters, in which an optimized algorithm of instantaneous frequency is given. Experiments employs Support Vector Machine (SVM) as the classifier and relative results indicate that significant performance gains can be obtained with instantaneous frequency information in low noise conditions.
机译:在水下声学识别中,基于Gammatone滤波器组的特征提取比从Mel滤波器组中的特征提取功能更强大。但是,两个常规听觉特征仅代表信号的基于能量的幅度,并且在低水下SNR环境中它们的性能下降。由瞬时频率(IF)表示的相位也可能包含目标的某些特征。本文基于伽马通滤波器的输出提出了一种新颖的融合特征,并给出了瞬时频率的优化算法。实验采用支持向量机(SVM)作为分类器,相对结果表明,在低噪声条件下使用瞬时频率信息可以获得明显的性能提升。

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