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Reference-based probabilistic segmentation as non-rigid registration using Thin Plate Splines

机译:基于参考的概率分割作为使用薄板样条的非刚性注册

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In this paper we demonstrate the effectiveness of reference (or atlas)-based non-rigid registration for the segmentation of medical and biological imagery. In particular we introduce a segmentation functional exploiting feature information about the reference image and we minimize it with respect to the parameters of the non-rigid transformation, akin to a region-based maximum likelihood estimation process. The warping transformation is modeled using Thin Plate Splines, which incorporate information about the global rigid motion and the non-rigid local displacements. Extensive experimental evaluations and comparisons with other segmentation techniques on a complex biological dataset are presented. The proposed algorithm outperforms the others in both classification rate and, in particular, localization accuracy.
机译:在本文中,我们展示了参考(或阿特拉斯)的有效性 - 基于医疗和生物图像分割的非刚性登记。特别地,我们介绍关于参考图像的分割功能利用特征信息,并且我们将其最小化到非刚性变换的参数,类似于基于区域的最大似然估计处理。翘曲变换采用薄板样条进行建模,其包含有关全球刚性运动和非刚性局部位移的信息。提出了具有复杂生物数据集的其他分段技术的广泛的实验评估和比较。所提出的算法在分类率和尤其是本地化准确性方面优于其他算法。

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