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A New Image Contrast Enhancement Algorithm Using Exposure Fusion Framework

机译:使用曝光融合框架的新图像对比度增强算法

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Low-light images are not conducive to human observation and computer vision algorithms due to their low visibility. Although many image enhancement techniques have been proposed to solve this problem, existing methods inevitably introduce contrast under- and over-enhancement. In this paper, we propose an image contrast enhancement algorithm to provide an accurate contrast enhancement. Specifically, we first design the weight matrix for image fusion using illumination estimation techniques. Then we introduce our camera response model to synthesize multi-exposure images. Next, we find the best exposure ratio so that the synthetic image is well-exposed in the regions where the original image under-exposed. Finally, the input image and the synthetic image are fused according to the weight matrix to obtain the enhancement result. Experiments show that our method can obtain results with less contrast and lightness distortion compared to that of several state-of-the-art methods.
机译:弱光图像的可见度低,因此不利于人类观察和计算机视觉算法。尽管已经提出了许多图像增强技术来解决该问题,但是现有方法不可避免地会引入对比度不足和过度增强。在本文中,我们提出了一种图像对比度增强算法来提供准确的对比度增强。具体来说,我们首先使用光照估计技术设计用于图像融合的权重矩阵。然后,我们介绍我们的相机响应模型来合成多重曝光图像。接下来,我们找到最佳的曝光率,以使合成图像在原始图像曝光不足的区域曝光良好。最后,根据权重矩阵对输入图像和合成图像进行融合以获得增强效果。实验表明,与几种最新方法相比,我们的方法可获得的对比度和亮度失真更少。

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