一种新的时频浓度保持交叉项抑制方法

Zheng-Chuan Shen, L. Nie, Weidong Jiang
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引用次数: 1

摘要

目前,时频分布交叉项抑制的方法主要有两种:一种是改进Cohen类核函数,另一种是与线性时频分析相结合。本文分别通过实例分析了它们的优缺点,并分析了图像的时频特征。通过在图像处理中引入边缘检测和脊提取方法,提出了一种基于图像特征匹配的时频图像Gabor变换和Wigner-Ville分布交叉项抑制新方法。对于多分量信号,交叉项抑制时频分布方法的理论分析和仿真表明,该方法能有效地抑制交叉项,同时保持Wigner分布的时频集中。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
A novel time-frequency concentration-keeping method of cross-terms suppression
At present, there are mainly two types of methods in cross-terms suppression of time-frequency distribution: one is improving of Cohen class kernel functions, the other is combination with linear time-frequency analysis. Their advantages and disadvantages are analyzed with examples respectively in this paper, and then time-frequency image features are analyzed. By introducing edge detection and ridge extraction methods in image processing, a new method of cross-terms suppression based on image feature matching is proposed to deal with time-frequency image of Gabor transform and Wigner-Ville distribution. For multi-component signal, theoretical analysis and simulation of time-frequency distribution methods of cross-terms suppression show that, this novel method can effectively suppress cross terms at the same time maintain Wigner distribution's time-frequency concentration.
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