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A range/domain approximation error-based approach for fractal image compression

机译:基于范围/域近似误差的分形图像压缩方法

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Fractals can be an effective approach for several applications other than image coding and transmission: database indexing, texture mapping, and even pattern recognition problems such as writer authentication. However, fractal-based algorithms are strongly asymmetric because, in spite of the linearity of the decoding phase, the coding process is much more time consuming. Many different solutions have been proposed for this problem, but there is not yet a standard for fractal coding. This paper proposes a method to reduce the complexity of the image coding phase by classifying the blocks according to an approximation error measure. It is formally shown that postponing range/spl bsol/slash domain comparisons with respect to a preset block, it is possible to reduce drastically the amount of operations needed to encode each range. The proposed method has been compared with three other fractal coding methods, showing under which circumstances it performs better in terms of both bit rate and/or computing time.
机译:分形可能是除图像编码和传输以外的多种应用程序的有效方法:数据库索引,纹理映射,甚至是模式识别问题,例如作者身份验证。但是,基于分形的算法非常不对称,因为尽管解码阶段是线性的,但编码过程却非常耗时。针对这个问题已经提出了许多不同的解决方案,但是还没有用于分形编码的标准。本文提出了一种通过根据近似误差度量对块进行分类来降低图像编码阶段复杂度的方法。正式表明,相对于预设块推迟范围/ spl bsol /斜杠域比较,可以大大减少编码每个范围所需的运算量。所提出的方法已经与其他三种分形编码方法进行了比较,表明在哪种情况下,它在比特率和/或计算时间方面表现更好。

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