An improved dynamic time warping algorithm employing nonlinear median filtering

Yu-xin Zhang, Y. Miyanaga
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引用次数: 6

Abstract

This paper proposes an improved dynamic time warping (DTW) algorithm with a nonlinear median filtering (NMF). Recognition accuracy of conventional DTW algorithms are less than the hidden Markov model (HMM) by same voice activity detection (VAD) and noise-reduction with running spectrum filtering (RSF) and dynamic range adjustment (DRA). For analyzing some incorrect results, unlike in conventional DTW, we do not use the minimum distance to recognize. we employ NMF and seek the median distance of the every reference word with the unknown speech waveform. All recognition accuracy of conventional DTW algorithms are improved much more by NMF. The recognition accuracy of Itakura's DTW algorithm is the best. Its recognition accuracy similar to that of the HMM approach in 10 dB and 20 dB white noise.
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一种改进的非线性中值滤波动态时间规整算法
提出了一种改进的非线性中值滤波动态时间规整(DTW)算法。在相同的语音活动检测(VAD)和运行谱滤波(RSF)和动态范围调整(DRA)降噪的情况下,传统DTW算法的识别精度低于隐马尔可夫模型(HMM)。对于一些错误结果的分析,与传统的DTW不同,我们没有使用最小距离来识别。我们采用NMF方法,对每个参考词与未知语音波形之间的距离求中值。NMF大大提高了传统DTW算法的识别精度。Itakura的DTW算法的识别精度最好。在10 dB和20 dB白噪声下,其识别精度与HMM方法相近。
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