Speaker adaptation based on speaker-dependent eigenphone estimation

Wenlin Zhang, Weiqiang Zhang, Bi-cheng Li
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引用次数: 2

Abstract

Based on speaker dependent eigenphone estimation, a novel speaker adaptation technique is proposed in this paper. Different from conventional speaker adaptation approaches, the proposed method explicitly models the phone variations for each speaker through subspace modeling in the phone space. The phone coordinate, which is shared by all speakers, contains correlation information between different phones. During speaker adaptation, two schemes for estimation of the new speaker specific phone variation bases (namely eigenphones) are derived under maximum likelihood (ML) criterion and maximum a posteriori (MAP) criterion respectively. Supervised speaker adaptation experiments on a Mandarin Chinese continuous speech recognition task show that the new method outperforms both eigenvoice and maximum likelihood linear regression (MLLR) methods when sufficient adaptation data is available.
基于说话人相关特征电话估计的说话人自适应
本文提出了一种基于说话人相关特征电话估计的说话人自适应技术。与传统的说话人自适应方法不同,该方法通过在电话空间中的子空间建模,明确地对每个说话人的电话变化进行建模。所有说话者共享的电话坐标包含了不同电话之间的相关信息。在说话人自适应过程中,分别在最大似然(ML)准则和最大后验(MAP)准则下推导了两种估计新说话人特定电话变异基(即特征电话)的方案。在汉语普通话连续语音识别任务上进行的有监督说话人自适应实验表明,当有足够的自适应数据时,新方法优于特征语音和最大似然线性回归方法。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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