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Lifting-based invertible motion adaptive transform (LIMAT) framework for highly scalable video compression

机译:基于提升的可逆运动自适应变换(LIMAT)框架,用于高度可伸缩的视频压缩

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摘要

We propose a new framework for highly scalable video compression, using a lifting-based invertible motion adaptive transform (LIMAT). We use motion-compensated lifting steps to implement the temporal wavelet transform, which preserves invertibility, regardless of the motion model. By contrast, the invertibility requirement has restricted previous approaches to either block-based or global motion compensation. We show that the proposed framework effectively applies the temporal wavelet transform along a set of motion trajectories. An implementation demonstrates high coding gain from a finely embedded, scalable compressed bit-stream. Results also demonstrate the effectiveness of temporal wavelet kernels other than the simple Haar, and the benefits of complex motion modeling, using a deformable triangular mesh. These advances are either incompatible or difficult to achieve with previously proposed strategies for scalable video compression. Video sequences reconstructed at reduced frame-rates, from subsets of the compressed bit-stream, demonstrate the visually pleasing properties expected from low-pass filtering along the motion trajectories. The paper also describes a compact representation for the motion parameters, having motion overhead comparable to that of motion-compensated predictive coders. Our experimental results compare favorably to others reported in the literature, however, our principal objective is to motivate a new framework for highly scalable video compression.
机译:我们使用基于提升的可逆运动自适应变换(LIMAT),提出了一种用于高度可伸缩视频压缩的新框架。我们使用运动补偿的提升步骤来实现时间小波变换,该时间小波变换可保留可逆性,而与运动模型无关。相比之下,可逆性要求将先前的方法限制为基于块或全局运动补偿。我们表明,所提出的框架有效地沿运动轨迹集应用了时间小波变换。一种实现方式展示了来自精细嵌入的可伸缩压缩比特流的高编码增益。结果还证明了使用简单的Haar以外的时间小波核的有效性,以及使用可变形三角形网格进行复杂运动建模的好处。这些进步与先前提出的可伸缩视频压缩策略不兼容或难以实现。从压缩比特流的子集以降低的帧速率重建的视频序列展示了沿运动轨迹的低通滤波所期望的视觉愉悦特性。本文还描述了运动参数的紧凑表示,其运动开销可与运动补偿的预测编码器相比。我们的实验结果优于文献中报道的其他结果,但是,我们的主要目标是为高度可伸缩的视频压缩提供一个新的框架。

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