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Fast HEVC CU/PU mode decision based on ANN and texture analysis

机译:基于ANN和纹理分析的快速HEVC CU / PU模式决策

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HEVC (high efficiency video coding), as the latest video coding standard, is more efficient than H.264/AVC, nevertheless it also brings in a very high computational complexity. To reduce the time of CU (coding unit) splitting or PU (prediction unit) mode deciding, a fast algorithm based on ANN (artificial neural network) and texture analysis is proposed in this paper. First, we acquire and then label the CUs of the training set with “split” and “unsplit” according to the quad-tree CU depth. Second, the texture features of “split” and “unsplit” CUs are quantified and compiled, based on which we can set the texture thresholds to judge whether or not to split the current CU or which prediction mode should be taken preliminarily. Finally, in terms of the CUs we can't judge from texture, we use ANN or the original algorithm of HM (HEVC test model) software to decide. Compared to HM15.0, the proposed algorithm can save 51.85% encoding time on average with negligible coding efficiency loss.
机译:作为最新的视频编码标准,HEVC(高效视频编码)比H.264 / AVC更高效,但是它也带来了很高的计算复杂度。为了减少CU(编码单元)分割或PU(预测单元)模式确定的时间,提出了一种基于ANN(人工神经网络)和纹理分析的快速算法。首先,我们获取训练集的CU,然后根据四叉树CU深度用“拆分”和“未拆分”标记。其次,对“拆分”和“未拆分” CU的纹理特征进行量化和编译,基于这些纹理特征,我们可以设置纹理阈值来判断是否拆分当前CU或应采用哪种预测模式。最后,对于无法根据纹理判断的CU,我们使用ANN或HM(HEVC测试模型)软件的原始算法进行决策。与HM15.0相比,该算法平均可节省51.85%的编码时间,而编码效率损失可忽略不计。

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