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Dictionary learning for image prediction

机译:字典学习进行图像预测

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We present a dictionary learning algorithm which is tailored to the block-based image prediction problem. More precisely, we learn two related sub-dictionaries Ac and A,, the first one (Ac) for approximating known samples in a causal neighborhood of the block to be predicted and the other one (At) to approximate the block to be predicted. These two dictionaries are learned so that representation vectors computed by approximating the known samples using Ac will lead to a good approximation of the block to be predicted when used together with At. Because of its simplicity, this method can be used for on-the-fly learning of dictionaries. The proposed method has first been evaluated for intra prediction. It has then been applied in a complete image compression algorithm. Experimental results show gains up to 3 dB in terms of prediction compared to the H.264/AVC intra modes and up to 2 dB in terms of rate-distortion performance.
机译:我们提出了一种字典学习算法,该算法适合于基于块的图像预测问题。更准确地讲,我们学习了两个相关的子字典Ac和A,第一个(Ac)用于逼近要预测的块的因果关系中的已知样本,而另一个(At)逼近要预测的块。学习这两个字典,以便与Ac一起使用时,通过使用Ac近似已知样本而计算出的表示向量将导致待预测块的良好近似。由于其简单性,该方法可用于即时学习词典。首先对所提出的方法进行了帧内预测评估。然后将其应用于完整的图像压缩算法中。实验结果表明,与H.264 / AVC帧内模式相比,在预测方面的增益高达3 dB,而在速率失真性能方面的增益高达2 dB。

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