Fractal image compression using iterated function system with probabilities

S. Mitra, C. A. Murthy, M. Kundu, B. Bhattacharya, T. Acharya
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引用次数: 8

Abstract

Deals with a new technique of fractal image compression based on the theory of iterated function systems (IFS) with probabilities. The theory of IFS with probabilities, in the context of image compression, is a relatively unexplored area. The rationale behind using this approach stems from the fact that it is possible to define a Markov operator associated with the probability measure whose support is the support of the given image. A new technique of fractal image compression is proposed using IFS with probabilities. The technique is found to be extremely fast in computing both the coefficients of maps and the probabilities. Thus, the proposed technique provides a very fast fractal-based image compression encoding.
基于概率迭代函数系统的分形图像压缩
研究了一种基于概率迭代函数系统理论的分形图像压缩新技术。概率IFS理论,在图像压缩的背景下,是一个相对未开发的领域。使用这种方法的基本原理源于这样一个事实,即可以定义一个与概率度量相关的马尔可夫算子,其支持是给定图像的支持。提出了一种基于概率IFS的分形图像压缩新技术。人们发现,该技术在计算地图系数和概率方面都非常快。因此,该技术提供了一种非常快速的基于分形的图像压缩编码。
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