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Perception-based adaptive quantization for transform-domain Wyner-Ziv video coding

机译:变换域Wyner-Ziv视频编码的基于感知的自适应量化

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摘要

Distributed video coding (DVC) is desirable for encoding systems with tight power or computational constraints, for which the popular practical solution is transform-domain Wyner-Ziv video coding (TD-WZVC). To achieve the similar coding performance with H.264/AVC, quantization is a key factor in TD-WZVC. Practically, the quantization matrix is trained offline and remains fixed value during coding. Optimal rate-distortion (RD) performance cannot be achieved due to the varying quality of side information (SI) frame. In this paper, a novel model of perceptual distortion probability is developed to estimate the perceptual distortion of SI frame and to derive the target perceptual distortion. With the two perceptual distortion probabilities, three components (i.e. quality of SI frame, perceptual features and RD optimization) are integrated to determine the optimal quantization matrix adaptively, which improves the coding performance. Extensive experiments demonstrate that the proposed scheme can adaptively determine proper quantization matrix online and achieve similar visual quality with less bit-rate, as compared to other adaptive quantization schemes in TD-WZVC.
机译:分布式视频编码(DVC)对于具有严格功率或计算约束的编码系统是理想的,对此,流行的实用解决方案是变换域Wyner-Ziv视频编码(TD-WZVC)。为了实现与H.264 / AVC相似的编码性能,量化是TD-WZVC中的关键因素。实际上,量化矩阵是离线训练的,并且在编码过程中保持固定值。由于边信息(SI)帧质量的变化,无法实现最佳的速率失真(RD)性能。本文提出了一种新型的感知失真概率模型,用于估计SI帧的感知失真并导出目标感知失真。利用这两个感知失真概率,将三个分量(即,SI帧的质量,感知特征和RD优化)集成在一起,以自适应地确定最佳量化矩阵,从而提高了编码性能。大量实验表明,与TD-WZVC中的其他自适应量化方案相比,该方案可以在线自适应地确定适当的量化矩阵并以较低的比特率实现相似的视觉质量。

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