Incorporating Knowledge Sources into Statistical Speech Recognition
Nakamura, Satoshi; Sakti, Sakriani; Markov, Konstantin; Minker, Wolfgang
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Description for Incorporating Knowledge Sources into Statistical Speech Recognition
Paperback. The authors address the problem of developing efficient automatic speech recognition systems that maintain a balance between utilizing a wide knowledge of speech variability, while keeping the training manageable and improving speech recognition performance. Series: Lecture Notes in Electrical Engineering. Num Pages: 220 pages, 100 black & white illustrations, 15 black & white tables, biography. BIC Classification: PHDS; THR; TJK; TTBM; UKN. Category: (P) Professional & Vocational. Dimension: 234 x 156 x 11. Weight in Grams: 343.
Incorporating Knowledge Sources into Statistical Speech Recognition addresses the problem of developing efficient automatic speech recognition (ASR) systems, which maintain a balance between utilizing a wide knowledge of speech variability, while keeping the training / recognition effort feasible and improving speech recognition performance. The book provides an efficient general framework to incorporate additional knowledge sources into state-of-the-art statistical ASR systems. It can be applied to many existing ASR problems with their respective model-based likelihood functions in flexible ways.
Product Details
Format
Paperback
Publication date
2010
Publisher
Springer-Verlag New York Inc. United States
Number of pages
220
Condition
New
Series
Lecture Notes in Electrical Engineering
Number of Pages
196
Place of Publication
New York, NY, United States
ISBN
9781441946768
SKU
V9781441946768
Shipping Time
Usually ships in 15 to 20 working days
Ref
99-15
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