水下图像增强的低复杂度多级算法

Z. Al-Ameen, Ahmed A. Ahmed
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摘要

人类目前生活在一个科技时代,见证了多个领域的飞速发展。数字图像处理是现代技术之一,它为图像增强、分析、重建、恢复、压缩、处理和理解等诸多挑战提供了切实可行的解决方案。其中一个显著的挑战与水下摄影有关。由于环境和物理因素的影响,水下图像总是暴露在不太理想的条件下。这些因素包括光在水中的折射、水介质中颗粒和灰尘的散射、深水中照明不足以及对比度差。这些挑战使得在没有先进处理技术的情况下,分析和提取有价值的信息变得极为困难。 本研究提供了一种改进的色彩平衡-融合算法,通过改善图像视觉效果和修改一些方程式来获得更清晰的图像。所提出的算法首先要找到输入 RGB 彩色图像的白平衡,然后改进强度。接着,分别使用伽马值改进边缘。然后找到每幅图像的权重,并将其结合起来进行天真融合。最后,使用颜色检索算法对生成的图像进行处理,并与其他 11 种采用不同处理方法的算法进行比较。实验结果表明,该算法可以显著改善水下图像,提高图像清晰度,使色彩更加鲜明。UISM 和 UICM 指标的改进率分别达到 5.8389 和 2.6778。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Low Intricacy‎ Multistage Algorithm for Underwater Image Enhancement
Humanity currently lives in a technological era that witnesses rapid progress in multiple fields. Digital image processing is one of the modern technologies that has provided practical answers to many challenges including image enhancement, analysis, reconstruction, recovery, compression, processing, and understanding. One of these notable challenges relates to underwater photography. Underwater images are always exposed to less-than-ideal conditions due to environmental and physical factors. These include refraction of light in water, scattering of particles and dust in the aquatic medium, lack of illumination in deep water, and poor contrast. These challenges make it extremely difficult to analyze and extract valuable information without advanced processing.  In this study, an improved color balance-fusion algorithm is provided by improving the image visuality and modifying some equations to obtain sharper and clearer images. The proposed algorithm begins by finding the white balance of the input RGB color image, after that, it improves the intensity. Next, the edges are improved using Gamma separately. The weights are then found for each image and combined to find naive fusion. The resulting image is processed using a color retrieval algorithm to produce the final image. along with comparisons to eleven other algorithms with various processing methods. Experimental results showed that this algorithm can significantly improve underwater images, increasing image clarity and making colors clearer. The improvement rates reached 5.8389 and 2.6778 for UISM and UICM metrics, respectively.
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