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State-Time-Alignment Phone Clustering Based Language-independent Phone Recognizer Front-end for Phonotactic Language Recognition

机译:基于状态时间对齐的电话聚类基于非语言的电话识别器,用于语音语言识别

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摘要

The now-acknowledged sensitive of Phonotactic Language Recognition (PLR) technology to the performance of the phone recognizer front-end have spawned interests to develop many methods to improve it. In this paper a state-of-art State-Time-Alignment (STA) phone clustering approach to build language-independent phone recognizer is proposed in phonotactic language recognition system to balance the performance and the complexity of the speech tokenizing processing in PLR.Experiments are carried out on the database of National Institute of Standards and Technology language recognition evaluation 2009 (NIST LRE 2009) and the experimental results have confirmed that phonotactic language recognition system using the collaborated language model yields 1.84%, 5.55% and 16.82% in equal error rate (EER), which show that the STA phone clustering based phone recognizer front-end outperforms the original English and Mandaren phone recognizers and other phone clustering methods based phone recognizer.
机译:现已认识到的Phonotactic语言识别(PLR)技术对电话识别器前端性能的敏感度引起了人们对开发许多改进它的方法的兴趣。本文提出了一种最新的状态时间对齐(STA)电话聚类方法,用于在音符语言识别系统中构建与语言无关的电话识别器,以平衡PLR中语音标记化处理的性能和复杂性。在美国国家标准技术研究院语言识别评估2009(NIST LRE 2009)的数据库上进行了实验,实验结果证实,使用协作语言模型的光音法语言识别系统的均等误差为1.84%,5.55%和16.82%速率(EER),表明基于STA电话聚类的电话识别器前端优于原始的英语和Mandaren电话识别器以及其他基于电话聚类方法的电话识别器。

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