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Adaptive Sequential Prediction of Multidimensional Signals With Applications to Lossless Image Coding

机译:多维信号的自适应顺序预测及其在无损图像编码中的应用

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We investigate the problem of designing adaptive sequential linear predictors for the class of piecewise autoregressive multidimensional signals, and adopt an approach of minimum description length (MDL) to determine the order of the predictor and the support on which the predictor operates. The design objective is to strike a balance between the bias and variance of the prediction errors in the MDL criterion. The predictor design problem is particularly interesting and challenging for multidimensional signals (e.g., images and videos) because of the increased degree of freedom in choosing the predictor support. Our main result is a new technique of sequentializing a multidimensional signal into a sequence of nested contexts of increasing order to facilitate the MDL search for the order and the support shape of the predictor, and the sequentialization is made adaptive on a sample by sample basis. The proposed MDL-based adaptive predictor is applied to lossless image coding, and its performance is empirically established to be the best among all the results that have been published till present.
机译:我们研究为分段自回归多维信号设计自适应序列线性预测器的问题,并采用最小描述长度(MDL)的方法来确定预测器的顺序和预测器在其上运行的支持。设计目标是在MDL标准中的预测误差的偏差和方差之间取得平衡。由于多维信号(例如,图像和视频)的预测器设计问题特别有趣并且具有挑战性,因为选择预测器支持的自由度增加了。我们的主要结果是一种将多维信号序列化为一系列顺序递增的嵌套上下文的新技术,以便于MDL搜索预测变量的顺序和支持形状,并且使序列化在每个样本的基础上自适应。所提出的基于MDL的自适应预测器已应用于无损图像编码,并根据经验确定其性能是迄今为止已发表的所有结果中最好的。

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