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Fuzzy intensification operator based contrast enhancement in the compressed domain

机译:压缩域中基于模糊增强算子的对比度增强

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摘要

With the increasing sizes of high resolution images, their storage and processing directly in the compressed domain has significantly gained importance. Algorithms for compressed domain image processing provide a powerful computational alternative to classical (pixel level) based implementations. While linear algorithms can be applied straightforward to the JPEG compressed images, this is not the case for nonlinear image processing, as for example contrast enhancement algorithms. In this paper a new implementation in the compressed domain of a very efficient contrast enhancement, based on fuzzy set modeling and on a fuzzy intensification operator, is presented. The fuzzy set parameters are adaptively chosen by analyzing the statistics of the image data in the compressed domain, in order to optimally enhance the image contrast. The nonlinear enhancement procedure requires a grey level threshold, for which an adaptive implementation, taking into account the frequency content of each coefficient block in the DCT (Discrete Cosine Transform) encoded JPEG image is proposed. This guarantees the optimal quality at minimum computational cost. The experimental results for a set of various contrast images validate the good performance and functionality of the proposed implementation.
机译:随着高分辨率图像尺寸的增加,直接在压缩域中进行存储和处理已变得越来越重要。压缩域图像处理算法为基于经典(像素级别)的实现提供了强大的计算替代方案。尽管可以将线性算法直接应用于JPEG压缩图像,但对于非线性图像处理却不是这种情况,例如对比度增强算法。本文提出了一种基于模糊集建模和模糊增强算子的压缩域中非常有效的对比度增强的新实现。通过分析压缩域中图像数据的统计信息来自适应地选择模糊集参数,以最佳地增强图像对比度。非线性增强过程需要灰度级阈值,为此提出了一种自适应实现,其中考虑了DCT(离散余弦变换)编码JPEG图像中每个系数块的频率含量。这以最小的计算成本保证了最佳的质量。一组各种对比图像的实验结果验证了所提出实现的良好性能和功能。

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