Publication | Closed Access
Context-dependent modeling for acoustic-phonetic recognition of continuous speech
218
Citations
5
References
2005
Year
Unknown Venue
EngineeringMachine LearningUnrestricted Continuous SpeechAcoustic ModelingSpeech RecognitionPattern RecognitionPhoneticsRobust Speech RecognitionVoice RecognitionLanguage StudiesHidden Markov ProcessComputer SciencePhonetic RecognitionDistant Speech RecognitionContext-dependent ModelingSpeech CommunicationSpeech TechnologySpeech ProcessingSpeech InputSpeech PerceptionLinguistics
This paper describes the results of our work in designing a system for phonetic recognition of unrestricted continuous speech. We describe several algorithms used to recognize phonemes using context-dependent Hidden Markov Models of the phonemes. We present results for several variations of the parameters of the algorithms. In addition, we propose a technique that makes it possible to integrate traditional acoustic-phonetic features into a hidden Markov process. The categorical decisions usually associated with heuristic acoustic-phonetic algorithms are replaced by automated training techniques and global search strategies. The combination of general spectral information and specific acoustic-phonetic features is shown to result in more accurate phonetic recognition than either representation by itself.
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