首页> 外文会议>5th Joint Symposium on Neural Computation Vol.8 May 16, 1998 San Diego, CA >Local filter selectioin boosts performance of automatic s peechreading
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Local filter selectioin boosts performance of automatic s peechreading

机译:本地过滤器选择提高了自动语音读取的性能

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摘要

We examine general purpose unsupervised techniques for visual preprocesing in machine vision tasks. In particular we analyze a wide variety of principal component and idependent component techniques in combination with stepwise regression methods for varible selection. The task at hand is recognition of the first four digits spoken in English using hidden Markov models (HMM) for the recognition system. Local representations consistently outperformed global representations in generalizing to new speakers while global representations performed better than local ones for speaker identification tasks. In addition, the use of a novel regression-based variable selection technique substantially boosted performance.
机译:我们研究了用于机器视觉任务中的视觉预处理的通用无监督技术。特别是,我们结合变量选择的逐步回归方法分析了各种各样的主成分和独立成分技术。当前的任务是使用识别系统的隐马尔可夫模型(HMM)识别英语所说的前四位数字。本地代表在推广新说话者方面始终胜过全局代表,而全局代表在说话者识别任务上的表现要优于本地代表。此外,使用新颖的基于回归的变量选择技术可大大提高性能。

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