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Xpsnr: A Low-Complexity Extension of The Perceptually Weighted Peak Signal-To-Noise Ratio For High-Resolution Video Quality Assessment

机译:Xpsnr:感知加权峰值信噪比的低复杂度扩展,用于高分辨率视频质量评估

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The objective PSNR metric is known to correlate quite poorly with subjective assessments of video coding quality. Thus, a number of alternative VQA measures such as (MS-)SSIM and VMAF have been proposed. These, however, are often algorithmically complex and difficult to use for visually motivated encoder optimization tasks, especially subjectively optimized bit allocation. In this paper we show that, by way of low-complexity enhancements of our previous work on a perceptually weighted PSNR (WPSNR) metric, addressing shortcomings with video and ultra high-definition content, the prediction of human judgments of video coding quality by the WPSNR can be improved. In fact, the resulting XPSNR seems to match the performance of the aforementioned state-of-the-art methods.
机译:已知目标PSNR度量标准与视频编码质量的主观评估相当差。因此,已经提出了许多替代的VQA措施,例如(MS-)SSIM和VMAF。然而,这些通常是算法复杂且难以用于视觉激励的编码器优化任务,特别是主观优化的比特分配。在本文中,我们表明,通过我们之前的重复性的增强功能,我们对感知加权的PSNR(WPSNR)公制,通过视频和超高清内容的缺点,通过了对视频编码质量的人类判断的预测可以提高WPSNR。实际上,由此产生的XPSNR似乎与上述最先进方法的性能相匹配。

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