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Speech signal feature parameters extraction algorithm based on PCNN for isolated word recognition

机译:基于PCNN的语音信号特征参数提取算法用于孤立词识别

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In the isolated word speech recognition system, the extraction and matching of the characteristic parameters is the key link. This paper introduces a new feature parameter extracting methods on basis of Pulse Coupled Neural Network (PCNN) for the recognition system. By means of the visibility of speech spectrogram, the PCNN is used to extract the time series and entropy series from the spectrogram of words. Finally, by means of DTW algorithm to accomplish the task of isolated word recognition, the simulation results demonstrate the feasibility and effectiveness of the proposed algorithm.
机译:在孤立的单词语音识别系统中,特征参数的提取和匹配是关键链路。本文介绍了基于脉冲耦合神经网络(PCNN)的新特征参数提取方法,用于识别系统。通过语音谱图的可见性,PCNN用于从单词的频谱图中提取时间序列和熵系列。最后,通过DTW算法来完成孤立字识别的任务,仿真结果证明了所提出的算法的可行性和有效性。

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