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Image contrast enhancement with brightness preservation using an optimal gamma and logarithmic approach

机译:使用最佳伽马和对数方法的亮度保存图像对比度增强

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摘要

In this study, a new enhancement framework is proposed for low contrast and dark images where traditional histogram equalisation (HE), gamma and logarithmic transformation are incorporated to achieve a visually pleasing image. Before the operation of HE on the input image, gamma and logarithmic transformation are performed in order to preserve the fine details of the image. A new gamma value of the proposed algorithm helps to restrain histogram spikes to avoid over-enhancement and noise artefacts effect. After that, a novel logarithmic transformation is used to map a narrow range of low-intensity values in the input image to a wider range of output levels. Thus, the dark input values are spread out into the higher intensity values, which improve the overall contrast and brightness of the image. The proposed method is compared with various state-of-the-art techniques. The large dataset has been used to check the feasibility of the technique. The subjective and objective analysis shows that the proposed algorithm outperforms most of the existing contrast-enhancement algorithms and the results are natural-looking, good contrast images with almost no artefacts.
机译:在该研究中,提出了一种新的增强框架,用于低对比度和暗图像,其中传统直方图均衡(HE),伽马和对数变换,以实现视觉上令人愉悦的图像。在他对输入图像的操作之前,执行伽玛和对数变换以保持图像的精细细节。该算法的新伽马值有助于抑制直方图尖峰以避免过度增强和噪声伪影效应。之后,使用新的对数变换来将输入图像中的窄范围的低强度值映射到更广泛的输出电平。因此,暗输入值展开到更高的强度值中,这提高了图像的整体对比度和亮度。将所提出的方法与各种最先进的技术进行比较。大型数据集已用于检查技术的可行性。主观和客观分析表明,所提出的算法优于现有的大多数对比度增强算法,结果是自然的,几乎没有人工制品的良好对比图像。

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