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作 者:艾虎 李菲 AI Hu;LI Fei(Department of Criminal Technology,Guizhou Police College,Guiyang 550005,China;The Education University of Hong Kong,Hong Kong 999077,China)
机构地区:[1]贵州警察学院刑事技术系,贵州贵阳550005 [2]香港教育大学,香港999077
出 处:《现代信息科技》2019年第1期5-10,共6页Modern Information Technology
基 金:贵州省科技计划项目(黔科合[2016]支撑2847)资助
摘 要:方言的辨别可为案件侦破提供重要线索,本文针对贵州方言辨别提出一种有效的方言辨识模型,从贵州省6个地区采集时长不等的语音样本,提取梅尔频率倒谱系数MFCC,然后利用多级二维离散小波变换提取MFCC中的低频分量同时进行压缩,然后采用滑窗进行信息重叠分块,对每块进行奇异值分解并保留高贡献率的特征向量,把分块合并后转换成一个3维矩阵作为方言辨识模型的输入数据。先对卷积神经网络进行改进,然后构建方言辨识模型,并采用交叉实验对该模型进行训练和验证,从而对二维离散小波变换的级数和滑窗的宽度进行优化。实验结果证明该模型对贵州方言辨识是高效的。Chinese dialect identification may provide an important clue for forensic investigation.This paper has proposed an effective dialect identification model for Guizhou dialect identification.The authors extracted Mel frequency cepstral coefficients(MFCC)from speech samples of different time lengths collected from six regions in Guizhou province,then extracted low-frequency components in MFCC with multi-stage two-dimensional discrete wavelet transform(2-DWT)for compression,and then used the sliding window to conduct information overlapping blocking.The singular value of each block was decomposed and high contribution rate feature vectors were retained,and the blocks were combined and converted into a 3-dimensional matrix as the input data of the dialect identification model.Firstly,the convolutional neural network(CNN)is improved,then a dialect identification model is constructed,and the model is trained and verified by adopting a cross experiment,so that the stages of the two-dimensional discrete wavelet transform and the width of the sliding window are optimized.The experimental results show that the model is efficient for Guizhou dialect identification.
关 键 词:汉语方言辨识 梅尔频率倒谱系数 二维离散小波变换 奇异值分解 卷积神经网络
分 类 号:TP391.4[自动化与计算机技术—计算机应用技术]
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