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Deep Learning Approach for Seamless Navigation in Multi-View Streaming Applications

Title
Deep Learning Approach for Seamless Navigation in Multi-View Streaming Applications
Type
Article in International Scientific Journal
Year
2023-08
Authors
Maria Teresa Andrade
(Author)
FEUP
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Tiago S. costa
(Author)
FEUP
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Paula Viana
(Author)
Other
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Journal
Title: IEEE AccessImported from Authenticus Search for Journal Publications
Vol. 11
Pages: 93883-93897
ISSN: 2169-3536
Publisher: IEEE
Indexing
Publicação em ISI Web of Knowledge ISI Web of Knowledge - 0 Citations
Other information
Authenticus ID: P-00Y-YVS
Abstract (EN): Quality of Experience (QoE) in multi-view streaming systems is known to be severely affected by the latency associated with view-switching procedures. Anticipating the navigation intentions of the viewer on the multi-view scene could provide the means to greatly reduce such latency. The research work presented in this article builds on this premise by proposing a new predictive view-selection mechanism. A VGG16-inspired Convolutional Neural Network (CNN) is used to identify the viewer's focus of attention and determine which views would be most suited to be presented in the brief term, i.e., the near-term viewing intentions. This way, those views can be locally buffered before they are actually needed. To this aim, two datasets were used to evaluate the prediction performance and impact on latency, in particular when compared to the solution implemented in the previous version of our multi-view streaming system. Results obtained with this work translate into a generalized improvement in perceived QoE. A significant reduction in latency during view-switching procedures was effectively achieved. Moreover, results also demonstrated that the prediction of the user's visual interest was achieved with a high level of accuracy. An experimental platform was also established on which future predictive models can be integrated and compared with previously implemented models.
Language: English
Type (Professor's evaluation): Scientific
No. of pages: 15
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