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Automatic speech recognition system adaptation for spoken lecture processing

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dc.contributor Graduate Program in Electrical and Electronic Engineering.
dc.contributor.advisor Saraçlar, Murat.
dc.contributor.advisor Arısoy Saraçlar, Ebru.
dc.contributor.author Fakhan, Enver.
dc.date.accessioned 2023-03-16T10:21:06Z
dc.date.available 2023-03-16T10:21:06Z
dc.date.issued 2021.
dc.identifier.other EE 2021 F35
dc.identifier.uri http://digitalarchive.boun.edu.tr/handle/123456789/13006
dc.description.abstract The recent developments in artificial neural networks has brought significant improvement in Automatic Speech Recognition (ASR). However the performance of the neural network based models mostly depends on the availability of large amounts of data and computational resources. When there is limited amount of in-domain data, acoustic and language model adaptation methods are used. These methods utilise large amount of out-of-domain data as well as limited in-domain data while learning the parameters of the model. This work explores different adaptation methods in neural network based ASR systems developed for spoken lecture processing in English and in Turkish. We mainly investigate speaker adaptation, acoustic condition adaptation and effect of both adaptations together with limited amount of spoken lecture data. We show that building a source model with out-of-domain data and adapting this model with limited in-domain data yields improvement in performance both in hybrid acoustic model based ASR systems and in end-to-end ASR systems.
dc.format.extent 30 cm.
dc.publisher Thesis (M.S.) - Bogazici University. Institute for Graduate Studies in Science and Engineering, 2021.
dc.subject.lcsh Automatic speech recognition.
dc.title Automatic speech recognition system adaptation for spoken lecture processing
dc.format.pages xiv, 52 leaves ;


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