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Alignment of serially acquired slices using a global energy function

机译:使用全球能量函数对准串联切片的对准

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An accurate, computationally efficient and fully-automated algorithm for the alignment of 2D serially acquired sections forming a 3D volume is presented. The method accounts for the main shortcomings of 3D image alignment: corrupted data (cuts and tears), dissimilarities or discontinuities between slices, non parallel or missing slices. The approach relies on the optimization of a global energy function, based on the object shape, measuring the similarity between a slice and its neighborhood in the 3D volume. Slice similarity is computed using the distance transform measure in both directions. No particular direction is privileged in the method avoiding global offsets, biases in the estimation and error propagation. The method was evaluated on real images (medical and biological 3D data) and the experimental results demonstrated the method's accuracy as reconstruction errors are less than 1 degree in rotation and less than 1 pixel in translation.
机译:呈现了用于形成3D体积的2D串联所获取的部分的准确,计算上高效且完全自动化的算法。该方法占3D图像对齐的主要缺点:损坏的数据(切割和撕裂),切片之间的异化或不连续性,不平行或丢失的切片。该方法依赖于基于对象形状的全局能量函数的优化,从而测量在3D体积中的切片及其邻域之间的相似性。使用两个方向上的距离变换测量来计算切片相似度。在避免全局偏移中的方法中,没有特定方向是特权,估计和错误传播中的偏置。该方法在真实的图像(医学和生物3D数据)上进行评估,实验结果证明了该方法的准确性,因为重建误差小于1度旋转并且在翻译中小于1像素。

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