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Ensemble Gaussian mixture model-based special voice command cognitive computing intelligent system

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dc.contributor.author Jangiti, Saikishor
dc.date.accessioned 2023-01-23T09:02:21Z
dc.date.available 2023-01-23T09:02:21Z
dc.date.issued 2020-12
dc.identifier.uri https://content.iospress.com/articles/journal-of-intelligent-and-fuzzy-systems/ifs189139
dc.identifier.uri http://dspace.bits-pilani.ac.in:8080/xmlui/handle/123456789/8659
dc.description.abstract Dysarthria is a speech disorder caused by stroke, Parkinson’s disease, neurological injury, or tumors that damage the nervous system and weaken the speech quality. Developing a unique voice command system for Dysarthric speech helps to recognize impaired speech and convert them into text or input commands. Hidden Markov Model (HMM) is one of the widely used generative model-based classifiers for Dysarthric speech recognition. But due to insufficient training data, HMM doesn’t provide optimal results on overlapping classes. We propose an ensemble Gaussian mixture model to recognize impaired speech more accurately. Our model converts the sequence of feature vectors into a fixed dimensional representation of patterns with varying lengths. The performance efficiency of the proposed model is evaluated on the Dysarthric UA-speech benchmark dataset. The discriminatory information provided by the proposed approach yields better classification accuracy even for shallow intelligibility words compared to conventional HMM. en_US
dc.language.iso en en_US
dc.publisher IOS en_US
dc.subject Computer Science en_US
dc.subject Dysarthric speech recognition en_US
dc.subject Ensemble en_US
dc.subject Hidden Markov models en_US
dc.subject Classification en_US
dc.title Ensemble Gaussian mixture model-based special voice command cognitive computing intelligent system en_US
dc.type Article en_US


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