nofu—a lightweight no-reference pixel based video quality model for gaming content

S Göring, RRR Rao, A Raake - 2019 Eleventh International …, 2019 - ieeexplore.ieee.org
2019 Eleventh International Conference on Quality of Multimedia …, 2019ieeexplore.ieee.org
Popularity of streaming services for gaming videos has increased tremendously over the last
years, eg Twitch and Youtube Gaming. Compared to classical video streaming applications,
gaming videos have additional requirements. For example, it is important that videos are
streamed live with only a small delay. In addition, users expect low stalling, waiting time and
in general high video quality during streaming, eg using http-based adaptive streaming.
These requirements lead to different challenges for quality prediction in case of streamed …
Popularity of streaming services for gaming videos has increased tremendously over the last years, e.g. Twitch and Youtube Gaming. Compared to classical video streaming applications, gaming videos have additional requirements. For example, it is important that videos are streamed live with only a small delay. In addition, users expect low stalling, waiting time and in general high video quality during streaming, e.g. using http-based adaptive streaming. These requirements lead to different challenges for quality prediction in case of streamed gaming videos. We describe newly developed features and a no-reference video quality machine learning model, that uses only the recorded video to predict video quality scores. In different evaluation experiments we compare our proposed model nofu with state-of-the-art reduced or full reference models and metrics. In addition, we trained a no-reference baseline model using brisque+niqe features. We show that our model has a similar or better performance than other models. Furthermore, nofu outperforms VMAF for subjective gaming QoE prediction, even though nofu does not require any reference video.
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