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首页> 外文期刊>NeuroImage >Intensity inhomogeneity correction of multispectral MR images.
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Intensity inhomogeneity correction of multispectral MR images.

机译:多光谱MR图像的强度不均匀校正。

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摘要

Intensity inhomogeneity in MR images is an undesired phenomenon, which often hampers different steps of quantitative image analysis such as segmentation or registration. In this paper, we propose a novel fully automated method for retrospective correction of intensity inhomogeneity. The basic assumption is that inhomogeneity correction could be improved by integrating spatial and intensity information from multiple MR channels, i.e., T1, T2, and PD weighted images. Intensity inhomogeneities of such multispectral images are removed simultaneously in a four-step iterative procedure. First, the probability distribution of image intensities and corresponding spatial features is calculated. In the second step, intensity correction forces that tend to minimize joint entropy of multispectral image are estimated for all image voxels. Third, independent inhomogeneity correction fields are obtained for each channel by regularization and normalization of voxel forces, and last, corresponding partial inhomogeneitycorrections are performed separately for each channel. The method was quantitatively evaluated on simulated and real MR brain images and compared to three other methods.
机译:MR图像中的强度不均匀是一种不希望的现象,通常会妨碍定量图像分析的不同步骤,例如分割或配准。在本文中,我们提出了一种新颖的全自动方法来回顾性校正强度不均匀性。基本假设是,可以通过整合来自多个MR通道(即T1,T2和PD加权图像)的空间和强度信息来改善不均匀性校正。这种多光谱图像的强度不均匀性可以通过四步迭代过程同时消除。首先,计算图像强度和相应空间特征的概率分布。在第二步中,为所有图像体素估计趋于使多光谱图像的联合熵最小化的强度校正力。第三,通过体素力的正则化和归一化为每个通道获得独立的不均匀性校正场,最后,对每个通道分别执行相应的部分不均匀性校正。该方法在模拟和真实的MR脑图像上进行了定量评估,并与其他三种方法进行了比较。

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