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Time signal filtering by relative neighborhood graph localized linear approximation

机译:相对邻域图局部线性近似的时间信号滤波

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A time signal filtering algorithm based on the relative neighborhood graph (RNG) used for localization of linear filters is proposed. The filter is constructed from a training signal during two stages. During the first stage an RNG is constructed. During the second stage, localized linear filters are associated each RNG node and adapted to the training signal. The filtering of a test signal is then carried out by inserting the test signal vectors in the RNG followed by the determination of the filter output as a function of the linear filters or the RNG nodes to which the vectors are associated. Training examples are given on a segment of a speech signal and a signal with burst structure generated from a bilinear Subba Rao model.
机译:提出了一种基于用于线性滤波器定位的相对邻域图(RNG)的时间信号滤波算法。过滤器由两个阶段的训练信号构成。在第一阶段,建造RNG。在第二阶段期间,局部线性滤波器与每个RNG节点相关联并适用于训练信号。然后通过在RNG中插入测试信号矢量作为线性滤波器的函数的滤波器输出来执行测试信号的过滤,然后执行作为线性滤波器的函数或矢量相关联的RNG节点。在语音信号的一段上给出训练示例,以及由Bilinear Subba Rao模型产生的突发结构的信号。

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