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Noise suppression and barrier crossing in Monte Carlo image-restorationmethod,

机译:蒙特卡罗图像复原方法中的噪声抑制和障碍穿越

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Abstract: In this paper, an efficient approach for image restoration of noisy data is suggested. This approach combines the Monte Carlo image restoration technique and the Morrison noise removal methods. The mean squared error (MSE) criterion is used to test the performance of the Monte Carlo method with and without prior-application of the Morrison noise removal method. The methods for facilitating the Monte Carlo walk to the brightest regions of the image are discussed and a new approach is suggested. It is shown that the Monte Carlo technique is potentially very fast with good resolution. The Morrison noise removal method smoothes the data at the first iteration and proceeds to restore the data back to its original noisy form at later iterations. To achieve some noise suppression, one can stop the Morrison iterations before it converges to the original noisy form. The Monte Carlo method is then applied to the noise suppressed data. !19
机译:摘要:本文提出了一种有效的噪声数据图像恢复方法。这种方法结合了蒙特卡洛图像恢复技术和莫里森噪声去除方法。均方误差(MSE)准则用于测试使用和不使用Morrison噪声去除方法的蒙特卡罗方法的性能。讨论了促进蒙地卡罗步行至图像最亮区域的方法,并提出了一种新方法。结果表明,蒙特卡洛技术具有很高的分辨率,可能非常快。 Morrison噪声消除方法在第一次迭代时对数据进行平滑处理,并在以后的迭代中继续将数据恢复回其原始的噪声形式。为了实现某种噪声抑制,可以在将Morrison迭代收敛到原始噪声形式之前停止它。然后将蒙特卡洛方法应用于噪声抑制数据。 !19

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