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Daniel Vasquez & Rainer Gruhn 
Hierarchical Neural Network Structures for Phoneme Recognition 

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In this book, hierarchical structures based on neural networks are investigated for automatic speech recognition. These structures are mainly evaluated within the phoneme recognition task under the Hybrid Hidden Markov Model/Artificial Neural Network (HMM/ANN) paradigm. The baseline hierarchical scheme consists of two levels each which is based on a Multilayered Perceptron (MLP). Additionally, the output of the first level is used as an input for the second level. This system can be substantially speeded up by removing the redundant information contained at the output of the first level.
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表中的内容

Background in Speech Recognition.- Phoneme Recognition Task.- Hierarchical Approach and Downsampling Schemes.- Extending the Hierarchical Scheme: Inter and Intra Phonetic Information.- Theoretical framework for phoneme recognition analysis.
语言 英语 ● 格式 PDF ● 网页 134 ● ISBN 9783642344251 ● 文件大小 2.3 MB ● 出版者 Springer Berlin ● 市 Heidelberg ● 国家 DE ● 发布时间 2012 ● 下载 24 个月 ● 货币 EUR ● ID 2666045 ● 复制保护 社会DRM

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