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Evaluation of Preference of Multimedia Content using Deep Neural Networks for Electroencephalography
Published 11 Sep 2018 in cs.HC, cs.LG, and cs.MM | (1809.03650v2)
Abstract: Evaluation of quality of experience (QoE) based on electroencephalography (EEG) has received great attention due to its capability of real-time QoE monitoring of users. However, it still suffers from rather low recognition accuracy. In this paper, we propose a novel method using deep neural networks toward improved modeling of EEG and thereby improved recognition accuracy. In particular, we aim to model spatio-temporal characteristics relevant for QoE analysis within learning models. The results demonstrate the effectiveness of the proposed method.
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