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Multilingually trained bottleneck features in spoken language recognition

机译:口语识别中受过多种语言训练的瓶颈功能

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摘要

Multilingual training of neural networks has proven to be simple yet effective way to deal with multilingual training corpora. It allows to use several resources to jointly train a language independent representation of features, which can be encoded into low-dimensional feature set by embedding narrow bottleneck layer to the network. In this paper, we analyze such features on the task of spoken language recognition (SLR), focusing on practical aspects of training bottleneck networks and analyzing their integration in SLR. By comparing properties of mono and multilingual features we show the suitability of multilingual training for SLR. The state-of-the-art performance of these features is demonstrated on the NIST LRE09 database.
机译:神经网络的多语言训练已被证明是处理多语言训练语料库的简单而有效的方法。它允许使用多种资源来共同训练独立于语言的特征表示形式,可以通过将狭窄的瓶颈层嵌入网络来将其编码为低维特征集。在本文中,我们分析了口语识别(SLR)任务中的此类功能,着重于培训瓶颈网络的实际方面并分析了它们在SLR中的集成。通过比较单语和多语功能的属性,我们显示了多语训练对SLR的适用性。 NIST LRE09数据库展示了这些功能的最新性能。

著录项

  • 来源
    《Computer speech and language》 |2017年第11期|252-267|共16页
  • 作者单位

    Brno University of Technology, Speech@FIT and IT4I Center of Excellence, Božetěchova 2, Brno, Czech Republic;

    Brno University of Technology, Speech@FIT and IT4I Center of Excellence, Božetěchova 2, Brno, Czech Republic;

    Brno University of Technology, Speech@FIT and IT4I Center of Excellence, Božetěchova 2, Brno, Czech Republic;

    Brno University of Technology, Speech@FIT and IT4I Center of Excellence, Božetěchova 2, Brno, Czech Republic;

    Brno University of Technology, Speech@FIT and IT4I Center of Excellence, Božetěchova 2, Brno, Czech Republic;

    Brno University of Technology, Speech@FIT and IT4I Center of Excellence, Božetěchova 2, Brno, Czech Republic;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Bottleneck features; Multilingual training; Spoken language recognition;

    机译:瓶颈特征;多语种培训;口语识别;

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