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A Lossless Image Coder With Context Classification, Adaptive Prediction and Adaptive Entropy Coding

机译:具有上下文分类,自适应预测和自适应熵编码的无损图像编码器

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摘要

In this paper, we combine a context classification scheme with adaptive prediction and entropy coding to produce an adaptive lossless image code?. In this coder, we maximize the benefits of adaptivity using both adaptive prediction and entropy coding. The adaptive prediction is closely tied with the classification of contexts within the image. These contexts are defined with respect to the local edge, texture or gradient characteristics as well as local activity within small blocks of the image. For each context an optimal predictor is found which is used for the prediction of all pixels belonging to that particular context. Once the predicted values have been removed from the original image, a clustering algorithm is used to design a separate, optimal entropy coding scheme for encoding the prediction residual. Blocks of residual pixels are classified into a finite number of classes and members of each class are encoded using the entropy coder designed for that particular class. The combination of these two powerful techniques produces some of the best lossless coding results reported so far.
机译:在本文中,我们将上下文分类方案与自适应预测和熵编码相结合,以生成自适应无损图像代码。在这种编码器中,我们同时使用自适应预测和熵编码来最大化自适应的好处。自适应预测与图像内上下文的分类紧密相关。这些上下文是根据图像的小块内的局部边缘,纹理或渐变特征以及局部活动定义的。对于每个上下文,找到最佳预测器,该最优预测器用于预测属于该特定上下文的所有像素。一旦从原始图像中去除了预测值,就使用聚类算法来设计用于对预测残差进行编码的单独的最佳熵编码方案。残余像素块被分为有限数量的类别,并且使用为该特定类别设计的熵编码器对每个类别的成员进行编码。这两种强大技术的结合产生了迄今为止报告的一些最佳的无损编码结果。

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