A Dynamic Vocabulary Speech Recognizer Using Real-Time, Associative-Based Learning

Conventional speech recognizers employ a training phase during which many of their parameters are configured - including vocabulary selection, feature selection, and decision mechanism tailoring to these selections. After this stage during normal operation, these traditional recognizers do not sig...

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Bibliographic Details
Main Author: Purdy, Trevor
Format: Others
Language:en
Published: University of Waterloo 2006
Subjects:
ASR
Online Access:http://hdl.handle.net/10012/942
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spelling ndltd-LACETR-oai-collectionscanada.gc.ca-OWTU.10012-9422013-10-04T04:07:18ZPurdy, Trevor2006-08-22T14:02:24Z2006-08-22T14:02:24Z20062006http://hdl.handle.net/10012/942Conventional speech recognizers employ a training phase during which many of their parameters are configured - including vocabulary selection, feature selection, and decision mechanism tailoring to these selections. After this stage during normal operation, these traditional recognizers do not significantly alter any of these parameters. Conversely this work draws heavily on high level human thought patterns and speech perception to outline a set of precepts to eliminate this training phase and instead opt to perform all its tasks during the normal operation. A feature space model is discussed to establish a set of necessary and sufficient conditions to guide real-time feature selection. Detailed implementation and preliminary results are also discussed. These results indicate that benefits of this approach can be seen in increased speech recognizer adaptability while still retaining competitive recognition rates in controlled environments. Thus this can accommodate such changes as varying vocabularies, class migration, and new speakers.application/pdf606790 bytesapplication/pdfenUniversity of WaterlooCopyright: 2006, Purdy, Trevor. All rights reserved.Electrical & Computer EngineeringSpeech RecognitionASRArtificial IntelligencePattern RecognitionA Dynamic Vocabulary Speech Recognizer Using Real-Time, Associative-Based LearningThesis or DissertationElectrical and Computer EngineeringMaster of Applied Science
collection NDLTD
language en
format Others
sources NDLTD
topic Electrical & Computer Engineering
Speech Recognition
ASR
Artificial Intelligence
Pattern Recognition
spellingShingle Electrical & Computer Engineering
Speech Recognition
ASR
Artificial Intelligence
Pattern Recognition
Purdy, Trevor
A Dynamic Vocabulary Speech Recognizer Using Real-Time, Associative-Based Learning
description Conventional speech recognizers employ a training phase during which many of their parameters are configured - including vocabulary selection, feature selection, and decision mechanism tailoring to these selections. After this stage during normal operation, these traditional recognizers do not significantly alter any of these parameters. Conversely this work draws heavily on high level human thought patterns and speech perception to outline a set of precepts to eliminate this training phase and instead opt to perform all its tasks during the normal operation. A feature space model is discussed to establish a set of necessary and sufficient conditions to guide real-time feature selection. Detailed implementation and preliminary results are also discussed. These results indicate that benefits of this approach can be seen in increased speech recognizer adaptability while still retaining competitive recognition rates in controlled environments. Thus this can accommodate such changes as varying vocabularies, class migration, and new speakers.
author Purdy, Trevor
author_facet Purdy, Trevor
author_sort Purdy, Trevor
title A Dynamic Vocabulary Speech Recognizer Using Real-Time, Associative-Based Learning
title_short A Dynamic Vocabulary Speech Recognizer Using Real-Time, Associative-Based Learning
title_full A Dynamic Vocabulary Speech Recognizer Using Real-Time, Associative-Based Learning
title_fullStr A Dynamic Vocabulary Speech Recognizer Using Real-Time, Associative-Based Learning
title_full_unstemmed A Dynamic Vocabulary Speech Recognizer Using Real-Time, Associative-Based Learning
title_sort dynamic vocabulary speech recognizer using real-time, associative-based learning
publisher University of Waterloo
publishDate 2006
url http://hdl.handle.net/10012/942
work_keys_str_mv AT purdytrevor adynamicvocabularyspeechrecognizerusingrealtimeassociativebasedlearning
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