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Modular Construction of Time-Delay Neural Networks for Speech Recognition

机译:语音识别时延神经网络的模块化构建

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摘要

Several strategies are described that overcome limitations of basic network models as steps towards the design of large connectionist speech recognition systems. The two major areas of concern are the problem of time and the problem of scaling. Speech signals continuously vary over time and encode and transmit enormous amounts of human knowledge. To decode these signals, neural networks must be able to use appropriate representations of time and it must be possible to extend these nets to almost arbitrary sizes and complexity within finite resources. The problem of time is addressed by the development of a Time-Delay Neural Network; the problem of scaling by Modularity and Incremental Design of large nets based on smaller subcomponent nets. It is shown that small networks trained to perform limited tasks develop time invariant, hidden abstractions that can subsequently be exploited to train larger, more complex nets efficiently. Using these techniques, phoneme recognition networks of increasing complexity can be constructed that all achieve superior recognition performance.
机译:描述了几种克服基本网络模型局限性的策略,这是迈向大型连接主义语音识别系统设计的步骤。关注的两个主要领域是时间问题和规模问题。语音信号会随着时间不断变化,并编码和传输大量的人类知识。为了解码这些信号,神经网络必须能够使用时间的适当表示,并且必须有可能将这些网络扩展到有限资源内的几乎任意大小和复杂性。时间的问题通过开发延时神经网络来解决。基于较小子组件网络的大型网络的模块化和增量设计进行缩放的问题。结果表明,受过训练以执行有限任务的小型网络会形成时不变的,隐藏的抽象,这些抽象随后可以用来有效地训练更大,更复杂的网络。使用这些技术,可以构建越来越复杂的音素识别网络,所有这些都可以实现出色的识别性能。

著录项

  • 来源
    《Neural computation》 |1989年第1期|39-46|共8页
  • 作者

    Waibel A;

  • 作者单位

    Computer Science Department, Carnegie Mellon University, Pittsburgh, PA 15213, USA and ATR Interpreting Telephony Research Laboratories, Twin 21 MiD Tower, Osaka, 540, Japan;

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

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