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Transform Coefficient Histogram-Based Image Enhancement Algorithms Using Contrast Entropy

机译:基于对比度熵的变换系数直方图图像增强算法

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Many applications of histograms for the purposes of image processing are well known. However, applying this process to the transform domain by way of a transform coefficient histogram has not yet been fully explored. This paper proposes three methods of image enhancement: a) logarithmic transform histogram matching, b) logarithmic transform histogram shifting, and c) logarithmic transform histogram shaping using Gaussian distributions. They are based on the properties of the logarithmic transform domain histogram and histogram equalization. The presented algorithms use the fact that the relationship between stimulus and perception is logarithmic and afford a marriage between enhancement qualities and computational efficiency. A human visual system-based quantitative measurement of image contrast improvement is also defined. This helps choose the best parameters and transform for each enhancement. A number of experimental results are presented to illustrate the performance of the proposed algorithms
机译:直方图在图像处理中的许多应用是众所周知的。但是,尚未完全探索通过变换系数直方图将该过程应用于变换域。本文提出了三种图像增强方法:a)对数变换直方图匹配; b)对数变换直方图移位; c)使用高斯分布的对数变换直方图整形。它们基于对数变换域直方图和直方图均衡化的属性。提出的算法利用刺激和感知之间的关系是对数关系,并在增强质量和计算效率之间取得联系。还定义了基于人类视觉系统的图像对比度改善的定量测量。这有助于选择最佳参数并为每个增强功能进行转换。提出了许多实验结果来说明所提出算法的性能

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