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New weighted prediction architecture for coding scenes with various fading effects image and video processing

机译:具有各种衰落效果图像和视频处理的编码场景的新加权预测架构

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Weighted prediction (WP) is one of the new tools in H.264 for encoding scenes with brightness variations. However, a single WP model does not handle all types of brightness variations. Also, large luminance difference induced by object motions would mislead an encoder in its use of WP which results in low coding efficiency. To solve these problems, a picture-based multi-pass encoding strategy, which extensively encodes the same picture multiple times with different WP models and selects the model with the minimum rate-distortion cost, has been adopted in H.264 to obtain better coding performance. However, computational complexity is impractically high. In this paper, a new WP referencing architecture is proposed to facilitate the use of multiple WP models by making a new arrangement of multiple frame buffers in multiple reference frame motion estimation. Experimental results show that the proposed scheme can improve prediction in scenes with different types of brightness variations and considerable luminance difference induced by motions within the same sequence.
机译:加权预测(WP)是H.264中的新工具之一,用于编码具有亮度变化的场景。但是,单个WP模型不处理所有类型的亮度变化。此外,对象运动引起的大亮度差异将在其使用WP的使用中误导编码器,这导致了低编码效率。为了解决这些问题,通过不同的WP模型多次广泛地编码相同的图像,并选择具有最小速率失真成本的模型,在H.264中采用了更好的编码表现。然而,计算复杂性是不切实际的。在本文中,提出了一种新的WP参考架构,以便通过在多个参考帧运动估计中制造多帧缓冲器的新布置来促进多个WP模型。实验结果表明,该方案可以改善具有不同类型的亮度变化的场景中的预测和相同序列内的运动引起的相当大的亮度差异。

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