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Deep Learning for Content-based Personalized Viewport Prediction of 360-Degree VR Videos

1 March 2020
Xinwei Chen
Ali Taleb Zadeh Kasgari
Walid Saad
    MDE
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Abstract

In this paper, the problem of head movement prediction for virtual reality videos is studied. In the considered model, a deep learning network is introduced to leverage position data as well as video frame content to predict future head movement. For optimizing data input into this neural network, data sample rate, reduced data, and long-period prediction length are also explored for this model. Simulation results show that the proposed approach yields 16.1\% improvement in terms of prediction accuracy compared to a baseline approach that relies only on the position data.

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