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Linear Motion Blur Parameter Estimation in Noisy Images Using Fuzzy Sets and Power Spectrum

机译:使用模糊集和功率谱的噪声图像中的线性运动模糊参数估计

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Motion blur is one of the most common causes of image degradation. Restoration of such images is highly dependent on accurate estimation of motion blur parameters. To estimate these parameters, many algorithms have been proposed. These algorithms are different in their performance, time complexity, precision, and robustness in noisy environments. In this paper, we present a novel algorithm to estimate direction and length of motion blur, using Radon transform and fuzzy set concepts. The most important advantage of this algorithm is its robustness and precision in noisy images. This method was tested on a wide range of different types of standard images that were degraded with different directions (between and ) and motion lengths (between and pixels). The results showed that the method works highly satisfactory for SNR dB and supports lower SNR compared with other algorithms.
机译:运动模糊是图像质量下降的最常见原因之一。这种图像的恢复高度依赖于运动模糊参数的准确估计。为了估计这些参数,已经提出了许多算法。这些算法在嘈杂环境中的性能,时间复杂度,精度和鲁棒性不同。在本文中,我们提出了一种使用Radon变换和模糊集概念来估计运动模糊方向和长度的新颖算法。该算法最重要的优点是它在噪声图像中的鲁棒性和精度。对该方法进行了测试,测试了各种不同类型的标准图像,这些图像以不同的方向(在和之间)和运动长度(在和之间)退化了。结果表明,与其他算法相比,该方法对SNR dB的工作效果令人满意,并且支持较低的SNR。

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