Publication | Closed Access
Explicit modelling of state occupancy in hidden Markov models for automatic speech recognition
198
Citations
12
References
1985
Year
Unknown Venue
State OccupancyMachine LearningEngineeringExplicit ModellingSpeech SignalsIntelligent SystemsPhonologySpeech RecognitionData SciencePattern RecognitionHidden Markov ModelPhoneticsRobust Speech RecognitionVoice RecognitionLanguage StudiesRecognition AccuracyComputer ScienceDistant Speech RecognitionSignal ProcessingSpeech CommunicationSpeech ProcessingSpeech InputSpeech PerceptionHidden Markov ModelsLinguisticsSemi-markov Models
Semi-Markov models have been proposed as a mechanism for overcoming some of the limitations inherent in first-order Markov modelling of speech signals. Results have been presented which show that these models provide an appropriate framework for modelling durational structure and can lead to significant improvements in recognition accuracy.
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