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Adaptive MRI image denoising using total-variation and local noise estimation

机译:使用总变异和局部噪声估计的自适应MRI图像降噪

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摘要

In this paper, we present an automated, adaptive image denoising method for removal of Rician noise from MRI images. The proposed method is based on the discretized total variation (TV) minimization model and the local noise estimation technique. The regularization parameter of the TV-based denoising method is adapted based on the standard deviation of noise in MRI image. The performance of the proposed method is evaluated using the brain MRI images corrupted by Rician noise with standard deviation ranging from 2 to 30. The quality of the denoised image is validated using both subjective visualization tests and objective quality metrics. The experimental results show that the proposed method achieves a significant improvement in the preservation of edges while simultaneously removing the Rician noise from a MR image. The adaptive TV filtering method is reasonably better than existing methods such as non-local filter, bilateral filter and multiscale linear minimum mean square-error estimation (LMMSE) approach.
机译:在本文中,我们提出了一种自动,自适应的图像去噪方法,用于从MRI图像中去除Rician噪声。所提出的方法基于离散总变化量(TV)最小化模型和局部噪声估计技术。基于电视的降噪方法的正则化参数基于MRI图像中噪声的标准偏差进行调整。使用受Rician噪声破坏的脑部MRI图像(标准偏差范围为2到30)评估所提出方法的性能。使用主观可视化测试和客观质量指标来验证去噪图像的质量。实验结果表明,所提出的方法在保留边缘的同时显着改善了性能,同时从MR图像中消除了Rician噪声。自适应电视滤波方法比现有方法(例如非局部滤波,双边滤波和多尺度线性最小均方误差估计(LMMSE))更好。

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