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Reversible compression of 2D and 3D data through a fuzzy linear prediction with context-based arithmetic coding

机译:通过基于上下文的算术编码的模糊线性预测对2D和3D数据进行可逆压缩

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Abstract: A novel method for reversible compression of 2D and 3D data is presented. An adaptive spatial prediction is followed by a context-based classification with arithmetic coding of the outcome residuals. Prediction of a pixel to be encoded is obtained from the fuzzy-switching of a set of linear predictors. The coefficients of each predictor are calculated to minimize prediction MSE for pixels belonging to a cluster in the hyperspace of graylevel patterns lying on a preset causal neighborhood. In the 3D cases, piles both on the current slice and on previously encoded slices may be used. The size and shape of the causal neighborhood, as well as the number of predictors to be switched, may be chosen before running the algorithm and determine the trade-off between coding performances and computational cost. The method exhibits impressive performances, for both 2D and 3D data, mainly thanks to the optimality of predictors, due to their skill in fitting data patterns. !15
机译:摘要:提出了一种可逆压缩2D和3D数据的新方法。自适应空间预测之后是基于上下文的分类,并对结果残差进行算术编码。从一组线性预测变量的模糊切换中获得要编码像素的预测。计算每个预测变量的系数,以使属于预设因果邻域上的灰度模式超空间中属于群集的像素的预测MSE最小化。在3D情况下,可以使用当前切片和先前编码切片上的桩。可以在运行算法之前选择因果邻域的大小和形状,以及要切换的预测变量的数量,并确定编码性能和计算成本之间的权衡。对于2D和3D数据,该方法均表现出令人印象深刻的性能,这主要归功于预测器的最优性,因为它们具有拟合数据模式的技能。 !15

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