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首页> 外文期刊>Academic journal of Xi'an Jiaotong University: AJXJTU >ACCURATE SPEECH SEGMENTATION VIA the IMPROVED SHORT-TIME FRACTAL DIMENSION
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ACCURATE SPEECH SEGMENTATION VIA the IMPROVED SHORT-TIME FRACTAL DIMENSION

机译:通过缩短的分形维数进行精确的语音分割

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摘要

To improve the accuracy of speech segmentation through the improved short-time fractal dimension. An equation was established for window size selection of speech analysis. Dynamic Window Step (DWS), a novel method to determine the sliding window steps adaptively in agreement with the local properties of signals, was proposed. The influence of the window step on the short-time fractal dimension was discussed. Compared with fixed window steps, more accurate and efficient fractal dimension trajectories were obtained with dynamic window steps. The proposed method was applied to a number of speech signals. It shows promise in speech segmentation, speech recognition and other transient signal analysis.
机译:通过改进的短时分形维数来提高语音分割的准确性。建立了用于语音分析的窗口大小选择的方程式。提出了动态窗口步长(DWS),它是一种根据信号的局部特性自适应地确定滑动窗口步长的新方法。讨论了窗口步长对短时分形维数的影响。与固定窗阶相比,动态窗阶获得了更准确,更有效的分形维数轨迹。所提出的方法被应用于许多语音信号。它显示了语音分割,语音识别和其他瞬态信号分析方面的前景。

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