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On the Use of Factor Analysis with Restricted Target Data in Speaker Verification

机译:论因子分析和限制性目标数据在说话人验证中的应用

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Factor Analysis (FA) based techniques have become the state of the art in automatic speaker verification thanks to their great ability to model session variability. This ability, in turn, relies on accurately estimating a session variability subspace for the operating conditions of interest. In cases such as forensic speaker recognition, however, this requirement cannot always be satisfied due to the very limited quantity of appropriate development data. As a first step toward understanding the application of FA in these restricted data scenarios, this work analyzes the performance of FA with very limited development data and then explores several FA estimation methods that augment the target domain data with examples from a data-rich domain. Experiments on NIST SRE 2006 microphone data conditions demonstrate that telephone data can be effectively exploited to improve performance over a baseline system.
机译:基于因子分析(FA)的技术由于具有对会话可变性进行建模的强大功能,因此已成为自动说话者验证中的最新技术。反过来,此功能取决于为感兴趣的操作条件准确估计会话可变性子空间。但是,在诸如法医说话人识别的情况下,由于适当的开发数据数量非常有限,因此无法始终满足此要求。作为理解FA在这些受限数据方案中的应用的第一步,本工作分析了非常有限的开发数据的FA的性能,然后探索了几种FA估计方法,这些方法通过使用来自数据丰富域的示例来扩充目标域数据。在NIST SRE 2006麦克风数据条件下进行的实验表明,可以有效利用电话数据来提高基准系统的性能。

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