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A weighted intra prediction based on statistics and classification for HEVC

机译:基于统计和分类的HEVC加权帧内预测

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I frame or I slice which adopts the intra prediction is a key part of video coding. Intra prediction is important because the prediction accuracy directly affects the efficiency of the following transformation, quantization and entropy coding. According to the case of intra mode selection in HEVC, it is necessary to improve the prediction for the two most frequently used modes, DC and PLANAR. A significant approach to improve prediction is the adaptive classification of pixels and determination of weights. In this paper, we proposed a system to train weights based on the mathematical statistics and classification with the least-squares method to obtain appropriate prediction weights for these two modes. Compared to the HEVC reference software HM8.0, the proposed algorithm can reduce average 0.24% bit rates for videos with more details.
机译:采用帧内预测的I帧或I切片是视频编码的关键部分。帧内预测很重要,因为预测精度会直接影响后续变换,量化和熵编码的效率。根据HEVC中帧内模式选择的情况,有必要改善对两种最常用模式DC和PLANAR的预测。改善预测的一种重要方法是像素的自适应分类和权重的确定。在本文中,我们提出了一种基于数学统计和最小二乘分类的权重训练系统,以针对这两种模式获得合适的预测权重。与HEVC参考软件HM8.0相比,该算法可以减少视频的平均0.24%比特率,并提供更多细节。

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