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首页> 外文期刊>IEEE Transactions on Circuits and Systems for Video Technology >Objective Video Quality Assessment Based on Perceptually Weighted Mean Squared Error
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Objective Video Quality Assessment Based on Perceptually Weighted Mean Squared Error

机译:基于感知加权均方误差的客观视频质量评估

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摘要

Object quality assessment for compressed video is critical to various video compression systems that are essential in the video delivery and storage. Although mean squared error (MSE) is computationally simple, it may not be accurate to reflect the perceptual quality of compressed videos, which are also affected dramatically by the characteristics of the human visual system (HVS), such as contrast sensitivity, visual attention, and masking effect. In this paper, a video quality metric is proposed based on perceptually weighted MSE. A low-pass filter is designed to model the contrast sensitivity of the HVS with the consideration of visual attention. The imperceptible distortion is adaptively removed in the salient and nonsalient regions. To quantitatively measure the masking effect, the randomness of video content is proposed in both the spatial and temporal domains. Since the masking effect highly depends on the regularity of structure and motion in the spatial and temporal directions, the video signal is modeled as a linear dynamic system, and the prediction error of future frames from previous frames is used as randomness to measure the significance of masking. The relation is investigated between MSE and perceptual quality scores across various contents, and a masking modulation model is proposed to compensate the impact of the masking effect on the MSE. The performance of the proposed quality metric is validated on three video databases with various compression distortions. The experimental results demonstrate that the proposed algorithm outperforms other benchmark quality metrics.
机译:压缩视频的对象质量评估对于视频交付和存储中必不可少的各种视频压缩系统至关重要。虽然均方误差(MSE)在计算上很简单,但反映压缩视频的感知质量可能并不准确,而压缩视频也受到人类视觉系统(HVS)的特征(例如对比敏感度,视觉注意力,和掩盖效果。本文提出了一种基于感知加权MSE的视频质量指标。设计低通滤波器时,要考虑视觉注意,对HVS的对比度灵敏度进行建模。在显着和非显着区域中自适应地去除了无法察觉的失真。为了定量地测量掩蔽效果,在时域和空间域中都提出了视频内容的随机性。由于掩蔽效果高度依赖于空间和时间方向上的结构和运动的规律性,因此将视频信号建模为线性动态系统,并将先前帧中未来帧的预测误差用作随机性来衡量掩蔽。研究了MSE与跨各种内容的感知质量得分之间的关​​系,并提出了一种掩蔽调制模型来补偿掩蔽效应对MSE的影响。在具有各种压缩失真的三个视频数据库上验证了所提出的质量度量的性能。实验结果表明,该算法优于其他基准质量指标。

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