基于自适应频率规整的鲁棒说话人辨认研究  

Research on the Robust Speaker Identification Based on Adaptive Frequency Warping

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作  者:李燕萍[1] 唐振民[1] 张燕[1] 丁辉[1] 

机构地区:[1]南京理工大学计算机学院,江苏南京210094

出  处:《中文信息学报》2009年第4期88-94,共7页Journal of Chinese Information Processing

基  金:浙江省教育厅科研资助项目(Y200805349)

摘  要:该文提出了一种基于自适应频率规整的鉴别性特征提取算法。该方法通过对语音频谱的各个频带的鉴别性分析及其量化结果对各个频域进行自适应的频率规整,进行非均匀子带滤波设计提取鉴别性特征;同时在噪声环境下,在特征提取前端进行了预增强处理,解决了测试语音与训练语音失配的问题,保证了特征的正确提取。实验证明,该特征原理简单,稳定性好,对语音内容不存在依赖性,有良好的抗噪性能,并且结合预增强处理是有效的,能够进一步提高辨认系统的识别率和鲁棒性。This paper presents a new discriminative feature based on adaptive frequency warping. Based on the discriminative analysis of the frequency components and their quantification results, this new feature is extracted by non-uniform sub-band filters designed according to the adaptive frequency warping in different frequency bands; Furthermore, in order to overcome the mismatch between training speech and testing speech under the noisy environment, we adopt pre-enhancement before the feature extraction. Through a series of controlled experiments, it is shown that the proposed feature is insensitive to the speech content and thus more discriminative and robust in comparison to the conventional Mel frequency cepstral coefficients. The experimental results demonstrate that combining pre enhancement and proposed feature leads to noticeable improvement on speaker recognition rate and robustness.

关 键 词:计算机应用 中文信息处理 说话人辨认 自适应频率规整 鉴别性特征 鲁棒性 

分 类 号:TP391[自动化与计算机技术—计算机应用技术]

 

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