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Video Characterization For Smart Encoding Based On Perceptual Quality Optimization

机译:基于感知质量优化的智能编码视频表征

摘要

Videos may be characterized by objective metrics that quantify video quality. Embodiments are directed to target bitrate prediction methods in which one or more objective metrics may serve as inputs into a model that predicts a mean opinion score (MOS), a measure of perceptual quality, as a function of metric values. The model may be derived by generating training data through conducting subjective tests on a set of video encodings, obtaining MOS data from the subjective tests, and correlating the MOS data with metric measurements on the training data. The MOS predictions may be extended to predict the target (encoding) bitrate that achieves a desired MOS value. The target bitrate prediction methods may be applied to segments of a video. The methods may be made computationally faster by applying temporal subsampling. The methods may also be extended for adaptive bitrate (ABR) applications by applying scaling factors to predicted bitrates at one frame size to determine predicted bitrates at different frame sizes. A dynamic scaling algorithm may be used to determine predicted bitrates at the different frame sizes.
机译:视频可以通过量化视频质量的客观指标来表征。实施例针对目标比特率预测方法,其中一个或多个客观度量可以用作模型的输入,该模型根据度量值来预测平均意见得分(MOS),感知质量的度量。可以通过对一组视频编码进行主观测试,从主观测试中获得MOS数据以及将MOS数据与训练数据上的度量值相关来生成训练数据,从而得出模型。 MOS预测可以被扩展以预测实现期望的MOS值的目标(编码)比特率。目标比特率预测方法可以应用于视频的片段。通过应用时间二次采样可以使这些方法在计算上更快。通过将缩放因子应用于一个帧大小的预测比特率以确定不同帧大小的预测比特率,该方法还可扩展到自适应比特率(ABR)应用。动态缩放算法可用于确定不同帧大小下的预测比特率。

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