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首页> 外文期刊>International journal of medical engineering and informatics >Adaptive filtering algorithm based on a wavelet packet tree for heart sound signal analysis
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Adaptive filtering algorithm based on a wavelet packet tree for heart sound signal analysis

机译:基于小波包树的自适应滤波算法进行心声信号分析

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In order to further highlight heart sound signals analysis, we developed an algorithm based on a wavelet packet tree; for possible discrimination depending on the severity of pathological cases for different heart sound signals. The algorithm functions select the most informative nodes combination of a wavelet packet tree as a basis for feature extraction. To generate this adaptive filter, we need to compute the best sub tree of an initial wavelet packet tree with respect for entropy type yardstick, the node combination with the lowest total cost is selected. The decomposition into wavelet packet offers a wavelet library organised according to their time-frequency analysis and location properties and therefore of pass-band filtering, according to a binary tree architecture. This architecture makes it possible to implement algorithms for searching for adapted bases to both the desired time-frequency properties and the analysed signal, which are conventionally called better bases.
机译:为了进一步突出显示心声信号分析,我们开发了一种基于小波包树的算法; 根据不同心声信号的病理情况的严重程度,可能辨别。 算法函数选择小波包树的最具信息的节点组合作为特征提取的基础。 要生成此自适应滤波器,我们需要在熵类型尺度上计算初始小波包树的最佳子树,选择具有最低总成本的节点组合。 根据二进制树架构,将分解为小波包提供了根据其时频分析和位置特性组织的小波库,并因此提供了通路滤波。 该架构使得可以实现用于搜索适应基础的算法,以便是通常称为更好的基础的所需的时频特性和分析信号。

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