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一种利用主曲线的说话人自适应方法
引用本文:王晶莹,王作英. 一种利用主曲线的说话人自适应方法[J]. 高技术通讯, 2007, 17(5): 470-473
作者姓名:王晶莹  王作英
作者单位:清华大学电子工程系语音识别实验室,北京,100084
基金项目:国家高技术研究发展计划(863计划)
摘    要:为了克服噪声对语音识别系统的影响,提出了一种基于主曲线的说话人自适应方法,这种方法可以通过一组主曲线描述所有状态的特征统计信息和码本参数之间的关系,并利用特征统计量在主曲线上的投影更新码本.当有背景噪声存在时,这种方法可以有效修正状态的特征统计信息以减弱或去掉噪声的影响.在863大词汇量连续语音识别数据库上的实验结果证明:这种方法相对于基线以及本征音说话人自适应算法,系统识别性能都有明显的提高.

关 键 词:主曲线  说话人自适应  相关性  空间相关性
收稿时间:2006-05-15
修稿时间:2006-05-15

Speaker adaptation method using principal curves algorithm
Wang Jingying,Wang Zuoying. Speaker adaptation method using principal curves algorithm[J]. High Technology Letters, 2007, 17(5): 470-473
Authors:Wang Jingying  Wang Zuoying
Affiliation:Department of Electronics Engineering, Tsinghua University, Beijing 100084
Abstract:This paper proposed a new speaker adaptation method utilizing principal curves algorithm to reduce noise's effect on speech recognition systems.The key feature of this method was the construction of principal curves describing the correlation between observations of different acoustic states and codebook mean.Herein the projection of feature statistics on principal curves was taken as the updated codebook parameters.When noise exists,the method can modify effectively feature statistics and reduce noise's effect.The results of the experiment on the 863 large vocabulary continuous speech recognition database showed that this new method is superior to Baseline and EigenVoice
Keywords:principal curves   speaker adaptation   correlation   spatial dependence
本文献已被 CNKI 维普 万方数据 等数据库收录!
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