Chaotic methods for image processing

T. Frison, H. Abarbanel, L. Tsimring
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引用次数: 1

Abstract

We extend methods for processing chaotic time series to two-dimensional images. The motivation is to develop new tools for understanding physical systems that can be imaged, such as the ocean surface. The novel issue addressed is the computation of the average mutual information for images. The average mutual information provides insights into energy transport and information loss rates in the underlying system. It also provides a crucial parameter needed for further processing with chaotic methods.
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混沌图像处理方法
我们将处理混沌时间序列的方法扩展到二维图像。其动机是开发新的工具来理解可以成像的物理系统,例如海洋表面。解决的新问题是图像平均互信息的计算。平均互信息提供了对底层系统中能量传输和信息损失率的洞察。它还提供了用混沌方法进一步处理所需的关键参数。
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