University of Bahrain
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An Efficient Stacked Deep Incremental Model for Online Streaming Video QoE Prediction

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dc.contributor.author Elwerghemmi, Radhia
dc.contributor.author Ksantini, Riyadh
dc.date.accessioned 2023-05-03T13:03:26Z
dc.date.available 2023-05-03T13:03:26Z
dc.date.issued 2023-05-03
dc.identifier.issn 2210-142X
dc.identifier.uri https://journal.uob.edu.bh:443/handle/123456789/4898
dc.description.abstract The Quality of Experience (QoE) metric is used as a direct evaluation of customers' experiences in video streaming diffusion, which is very important for network management, especially for the optimization and the improvement of the network. Hence, it is important to continuously quantify the perceived QoE of streaming video clients to minimize the QoE degradation. Nevertheless, the continuous evaluation of QoE is challenging as it is determined by complex dynamic interactions among the QoE influencing factors. Thus, in this work, a new Deep Incremental Support Vector Machine (ISVM) QoE assessment model is developed that integrates deep learning techniques and a multiclass ISVM. The deep learning layer is employed to extract deep features which have discriminative power and lead to performance improvement. ISVM algorithm aims to manage non-stationary and massive amounts of data in real-time scenarios. Experiments are carried out on a real-world public datasets. The findings show that our model outperforms the state-of-the-art models for QoE evaluation. en_US
dc.language.iso en en_US
dc.publisher University of Bahrain en_US
dc.subject Quality of experience, Deep Learning, Online Learning, Incremental Support Vector Machine, Video Streaming service. en_US
dc.title An Efficient Stacked Deep Incremental Model for Online Streaming Video QoE Prediction en_US
dc.identifier.doi http://dx.doi.org/10.12785/ijcds/1301119 en
dc.volume 13 en_US
dc.issue 1 en_US
dc.pagestart 1 en_US
dc.pageend 1 en_US
dc.contributor.authorcountry Tunisia en_US
dc.contributor.authorcountry Bahrain en_US
dc.contributor.authoraffiliation SUP'COM en_US
dc.contributor.authoraffiliation University of Bahrain en_US
dc.source.title International Journal of Computing and Digital Systems en_US
dc.abbreviatedsourcetitle IJCDS en_US


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