Automatic Speech Recognition A Deep Learning Approach

This book provides a comprehensive overview of the recent advancement in the field of automatic speech recognition with a focus on deep learning models including deep neural networks and many of their variants. This is the first automatic speech recognition book dedicated to the deep learning approa...

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Bibliographic Details
Main Authors: Yu, Dong, Deng, Li (Author)
Format: eBook
Language:English
Published: London Springer London 2015, 2015
Edition:1st ed. 2015
Series:Signals and Communication Technology
Subjects:
Online Access:
Collection: Springer eBooks 2005- - Collection details see MPG.ReNa
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245 0 0 |a Automatic Speech Recognition  |h Elektronische Ressource  |b A Deep Learning Approach  |c by Dong Yu, Li Deng 
250 |a 1st ed. 2015 
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300 |a XXVI, 321 p. 62 illus  |b online resource 
505 0 |a Section 1: Automatic speech recognition: Background -- Feature extraction: basic frontend -- Acoustic model: Gaussian mixture hidden Markov model -- Language model: stochastic N-gram -- Historical reviews of speech recognition research: 1st, 2nd, 3rd, 3.5th, and 4th generations -- Section 2: Advanced feature extraction and transformation -- Unsupervised feature extraction -- Discriminative feature transformation -- Section 3: Advanced acoustic modeling -- Conditional random field (CRF) and hidden conditional random field (HCRF) -- Deep-Structured CRF -- Semi-Markov conditional random field -- Deep stacking models -- Deep neural network – hidden Markov hybrid model -- Section 4: Advanced language modeling -- Discriminative Language model -- Log-linear language model -- Neural network language model 
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653 |a Engineering Acoustics 
653 |a Signal, Speech and Image Processing 
653 |a Signal processing 
653 |a Acoustical engineering 
700 1 |a Deng, Li  |e [author] 
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520 |a This book provides a comprehensive overview of the recent advancement in the field of automatic speech recognition with a focus on deep learning models including deep neural networks and many of their variants. This is the first automatic speech recognition book dedicated to the deep learning approach. In addition to the rigorous mathematical treatment of the subject, the book also presents insights and theoretical foundation of a series of highly successful deep learning models