基于模糊集的噪声图像运动模糊识别

M. Moghaddam, M. Jamzad
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引用次数: 29

摘要

动态模糊是导致图像退化的最常见的模糊之一。这些图像的恢复高度依赖于运动模糊参数的估计。许多研究者已经开发了估计线性运动模糊参数的算法。这些算法在性能、时间复杂度、精度和噪声环境下的鲁棒性等方面存在差异。本文提出了一种利用Radon变换求方向和模糊集概念求扩展的线性运动模糊参数估计算法。该算法最大的优点是对噪声图像的鲁棒性和精度。我们的方法在不同方向(0°和180°之间)和不同运动长度(10到50像素之间)退化的各种不同类型的标准图像上进行了测试。实验结果表明,平均信噪比> 22 db,非常令人满意
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Motion blur identification in noisy images using fuzzy sets
Motion blur is one of the most common blurs that degrades images. Restoration of such images are highly dependent to estimation of motion blur parameters. Many researchers have developed algorithms to estimate linear motion blur parameters. These algorithms are different in their performance, time complexity, precision and their robustness in noisy environments. In this paper we have presented a novel algorithm to estimate linear motion blur parameters such as direction and extend by using Radon transform to find direction and fuzzy set concepts to find its extend. The most benefit of this algorithm is its robustness and precision in noisy images. Our method was tested on a wide range of different type of standard images that were degraded with different directions (between 0deg and 180deg) and different motion lengths (between 10 to 50 pixel). Experimental results showed in average SNR > 22 db that is highly satisfactory
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