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Perceptually Optimized Quality Adaptation of Viewport-Dependent Omnidirectional Video Streaming

机译:感知视口依赖的全向视频流的感知优化的质量适应

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摘要

Viewport-Dependent Streaming (VDS) is a preferred way in practice to deliver the omnidirectional videos, of which a High-Quality (HQ) scale is applied for the content in current viewport but a Low-Quality (LQ) scale elsewhere. Quality adaptation or refinement happens after users stabilize their fixations to a new viewport. In this article, we formulate this as a perceptually optimized quality adaptation problem to maximize the Quality of Experience (QoE) for the refinement from a LQ scale to another HQ level within a specific duration under the given network constraint. With our developed perceptual model considering the adaptation quality for VDS of omnidirectional videos, we first provide baseline solutions numerically, demonstrating the noticeable subjective improvements of model-driven solution against the heuristic selection based approach. We also propose a novel viewport prediction algorithm based on the Hidden Markov Model (HMM), and experimental results show that it significantly outperforms the relevant methods with better prediction accuracy. We then improve the adaptation strategy with proposed viewport prediction-based data prefetching, leading to better visual perception than the baseline system at the same bandwidth constraint. Generally, prefetching the content of predicted next viewport one second ahead of its playback time, would lead to more than 8% Bjontegaard Delta Rate (BD-Rate) gain.
机译:依赖于视口依赖的流(VDS)是在实践中提供全向视频的优选方式,其中应用了高质量(HQ)刻度用于当前视口中的内容,而是在其他地方的低质量(LQ)刻度。在用户稳定到新视图后,会发生质量适应或改进。在本文中,我们将其制定为感知优化的质量适应问题,以最大限度地提高到给定网络约束下的特定持续时间内从LQ比例到另一个总HQ水平的经验质量(QoE)。考虑到全向视频VDS的适应质量,我们首先在数值上提供基线解决方案,展示了对基于启发式选择的方法的显着主观改进的基线解决方案。我们还提出了一种基于隐马尔可夫模型(HMM)的综述观点预测算法,实验结果表明,它具有更好的预测精度的相关方法显着优于相关方法。然后,我们通过提出的基于视口预测的数据预取改善适应策略,从而比相同带宽约束的基线系统更好地看视觉感知。通常,预取预测下一个视口的内容在其播放时间之前一秒将导致超过8%的Bjontegaard Delta速率(BD速率)增益。

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