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Method for bias field correction of brain T1-weighted magnetic resonance images minimizing segmentation error.

机译:脑T1加权磁共振图像的偏场校正方法,可最大程度地减少分割误差。

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This work presents a new algorithm (nonuniform intensity correction; NIC) for correction of intensity inhomogeneities in T1-weighted magnetic resonance (MR) images. The bias field and a bias-free image are obtained through an iterative process that uses brain tissue segmentation. The algorithm was validated by means of realistic phantom images and a set of 24 real images. The first evaluation phase was based on a public domain phantom dataset, used previously to assess bias field correction algorithms. NIC performed similar to previously described methods in removing the bias field from phantom images, without introduction of degradation in the absence of intensity inhomogeneity. The real image dataset was used to compare the performance of this new algorithm to that of other widely used methods (N3, SPM'99, and SPM2). This dataset included both low and high bias field images from two different MR scanners of low (0.5 T) and medium (1.5 T) static fields. Using standard quality criteria for determining the goodness of the different methods, NIC achieved the best results, correcting the images of the real MR dataset, enabling its systematic use in images from both low and medium static field MR scanners. A limitation of our method is that it might fail if the bias field is so high that the initial histogram does not show bimodal distribution for white and gray matter. Hum. Brain Mapping 22:133-144, 2004.
机译:这项工作提出了一种新的算法(非均匀强度校正; NIC),用于校正T1加权磁共振(MR)图像中的强度不均匀性。通过使用脑组织分割的迭代过程获得了偏场和无偏图像。该算法通过逼真的幻像图像和一组24个真实图像进行了验证。第一评估阶段基于公共领域的幻象数据集,该数据集先前用于评估偏差场校正算法。 NIC的执行与先前描述的方法类似,可从幻影图像中消除偏置场,并且在不存在强度不均匀性的情况下不会引起退化。真实图像数据集用于比较此新算法与其他广泛使用的方法(N3,SPM'99和SPM2)的性能。该数据集包括来自低(0.5 T)和中(1.5 T)静态场的两个不同MR扫描仪的低和高偏置场图像。通过使用标准质量标准来确定不同方法的优劣,NIC获得了最佳结果,校正了真实MR数据集的图像,从而使其能够系统地用于中低静态磁场MR扫描器的图像中。我们的方法的局限性在于,如果偏置场太高以至于初始直方图不会显示白质和灰质的双峰分布,则该方法可能会失败。哼。脑图谱22:133-144,2004。

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