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Logarithmic transform coefficient histogram matching with spatial equalization

机译:对数变换系数直方图与空间均衡匹配

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In this paper we propose an image enhancement algorithm that is based on utilizing histogram data gathered from transform domain coefficients that will improve on the limitations of the histogram equalization method. Traditionally, classical histogram equalization has had some problems due to its inherent dynamic range expansion. Many images with data tightly clustered around certain intensity values can be over enhanced by standard histogram equalization, leading to artifacts and overall tonal change of the image. In the transform domain, one has control over subtle image properties such as low and high frequency content with their respective magnitudes and phases. However, due to the nature of many of these transforms, the coefficient's histograms may be so tightly packed that distinguishing them from one another may be impossible. By placing the transform coefficients in the logarithmic transform domain, it is easy to see the difference between different quality levels of images based upon their logarithmic transform coefficient histograms. Our results demonstrate that combing the spatial method of histogram equalization with logarithmic transform domain coefficient histograms achieves a much more balanced enhancement, that out performs classical histogram equalization.
机译:在本文中,我们提出了一种图像增强算法,其基于利用从变换域系数收集的直方图数据,该域系数将改善直方图均衡方法的限制。传统上,古典直方图均衡已取得了一些问题,是由于其固有的动态范围扩展。通过标准直方图均衡,可以在某些强度值周围围绕某些强度值紧密聚集的许多图像,导致图像的伪像和整体音调变化。在变换域中,可以控制微妙的图像属性,例如具有它们各自的幅度和阶段的低和高频内容。然而,由于许多这些变换的性质,系数的直方图可以如此紧密地包装,以使它们彼此区分开。通过将变换系数放置在对数变换域中,很容易基于其对数变换系数直方图看到不同质量水平的图像之间的差异。我们的结果表明,用对数变换域系数直方图梳理直方图均衡的空间方法实现了更加平衡的增强,所以OUT执行经典直方图均衡。

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