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Fuzzy logic-based matching pursuits for lossless predictive coding of still images

机译:基于模糊逻辑的匹配追求,对静止图像进行无损预测编码

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This paper presents an application of fuzzy-logic techniques to the reversible compression of grayscale images. With reference to a spatial differential pulse code modulation (DPCM) scheme, prediction may be accomplished in a space-varying fashion either as adaptive, i.e., with predictors recalculated at each pixel, or as classified, in which image blocks or pixels are labeled in a number of classes, for which fitting predictors are calculated. Here, an original tradeoff is proposed; a space-varying linear-regression prediction is obtained through fuzzy-logic techniques as a problem of matching pursuit, in which a predictor different for every pixel is obtained as an expansion in series of a finite number of prototype nonorthogonal predictors, that are calculated in a fuzzy fashion as well. To enhance entropy coding, the spatial prediction is followed by context-based statistical modeling of prediction errors. A thorough comparison with the most advanced methods in the literature, as well as an investigation of performance trends and computing times to work parameters, highlight the advantages of the proposed fuzzy approach to data compression.
机译:本文提出了模糊逻辑技术在灰度图像可逆压缩中的应用。参照空间差分脉冲编码调制(DPCM)方案,可以以时变方式完成预测,该方式可以是自适应的,即在每个像素处重新计算预测变量,或者是分类的,其中将图像块或像素标记为许多类,将为其计算拟合预测器。这里,提出了一个原始的权衡;作为匹配追踪的问题,通过模糊逻辑技术获得了时空线性回归预测,其中,每个像素不同的预测变量作为有限数量的原型非正交预测变量序列的扩展而获得,该预测变量的计算公式如下:以及模糊的时尚。为了增强熵编码,空间预测之后是基于上下文的预测误差的统计建模。与文献中最先进的方法进行了彻底的比较,以及对性能趋势和对工作参数的计算时间的调查,凸显了所提出的模糊数据压缩方法的优势。

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