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Parameter-Free Denoising of Complex MR Images by Iterative Multi-Wavelet Thresholding

机译:迭代多小波阈值对复杂MR图像进行无参数去噪

摘要

A method for denoising Magnetic Resonance Imaging (MRI) data includes receiving a noisy image acquired using an MRI imaging device and determining a noise model comprising a non-diagonal covariance matrix based on the noisy image and calibration characteristics of the MRI imaging device. The noisy image is designated as the current best image. Then, an iterative denoising process is performed to remove noise from the noisy image. Each iteration of the iterative denoising process comprises (i) applying a bank of heterogeneous denoisers to the current best image to generate a plurality of filter outputs, (ii) creating an image matrix comprising the noisy image, the current best image, and the plurality of filter outputs, (iii) finding a linear combination of elements of the image matrix which minimizes a Stein Unbiased Risk Estimation (SURE) value for the linear combination and the noise model, (iv) designating the linear combination as the current best image, and (v) updating each respective denoiser in the bank of heterogeneous denoisers based on the SURE value. Following the iterative denoising process, the current best image is designated as a final denoised image.
机译:一种用于对磁共振成像(MRI)数据进行降噪的方法,包括:接收使用MRI成像设备获取的噪声图像;以及基于噪声图像和MRI成像设备的校准特性,确定包括非对角协方差矩阵的噪声模型。嘈杂的图像被指定为当前最佳图像。然后,执行迭代去噪处理以从噪声图像中去除噪声。迭代去噪处理的每个迭代包括:(i)将一堆异质去噪器应用于当前最佳图像以生成多个滤波器输​​出;(ii)创建包括噪声图像,当前最佳图像和多个图像的图像矩阵。 (iii)找到图像矩阵元素的线性组合,以使线性组合和噪声模型的斯坦因无偏风险估计(SURE)值最小化;(iv)将线性组合指定为当前的最佳图像, (v)基于SURE值更新异构降噪器库中的各个降噪器。在迭代去噪处理之后,将当前最佳图像指定为最终去噪图像。

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