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Fast Depth Map Intra Coding for 3D Video Compression-Based Tensor Feature Extraction and Data Analysis

机译:基于3D视频压缩的Tensor特征提取和数据分析的快速深度图帧内编码

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3D high-efficiency video coding (3D-HEVC) is the latest standard for 3D video compression created by the ISO/IEC MPEG and ITU-T Video Coding Experts Group (VCEG) based on a new video format called multiview texture videos plus depth maps (MVDs). In 3D-HEVC depth map intra prediction, the test model uses the conventional HEVC intra modes and new supplementary coding tools called depth modeling modes (DMMs) to better preserve the sharp edges of depth maps. These intra prediction modes fundamentally enhance the depth map intra coding efficiency. Although this process enables high coding efficiency, it also results in a very high encoding complexity, which limits the use of the 3D-HEVC encoder in practical and real-world applications. For most cases, the conventional intra coding and DMMs can be skipped if the current region is classified as a homogenous region. Bringing this intuitive approach to practice, this paper proposes fast depth map intra coding based on tensor feature extraction and data analysis. The experimental results show that the proposed intra model decision brings a good complexity reduction with negligible loss of rate distortion performance.
机译:3D高效视频编码(3D-HEVC)是ISO / IEC MPEG和ITU-T视频编码专家组(VCEG)创建的3D视频压缩的最新标准,基于名为Multiview纹理视频以及深度映射的新视频格式(MVDS)。在3D-HEVC深度图帧内预测中,测试模型使用传统的HEVC内模式和新的补充编码工具称为深度建模模式(DMMS),以更好地保留深度图的尖锐边缘。这些帧内预测模式从根本上提高了深度图帧内编码效率。尽管该过程实现了高编码效率,但它也导致了非常高的编码复杂度,这限制了3D-HEVC编码器在实际和现实世界的应用中的使用。对于大多数情况,如果当前区域被归类为均匀区域,则可以跳过传统的帧内编码和DMM。本文提出了基于张量特征提取和数据分析的快速深度地图帧内编码的练习方法。实验结果表明,所提出的帧内模型​​决策具有良好的复杂性降低,损失率失真性能可忽略不计。

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