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Worst-Case Local Boundary Precision in Global Measures of Segmentation Reproducibility

机译:最糟糕的局部边界精度,分割再现性的全局测量

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The commonly used measures for reproducibility of semiautomatic/interactive image segmentation algorithms provide global estimates of the precision of the location of an object boundary in a group of segmentations. The joint Dice similarity coefficient, joint Tanimoto coefficient, generalized Tanimoto coefficient, coefficient of variation of volume, and intra-class correlation coefficient of volume are interpreted with respect to a new explicit measure of worst-case local object boundary precision. Experiments established 95% confidence intervals on this new measure for ranges of global reproducibility measures allowing global measures to be interpreted in terms of worst-case local precision. Joint Tanimoto coefficient and joint Dice coefficient are shown to be highly unstable over variations in the number of segmentations being compared. All of the existing measures of segmentation reproducibility are found to be flawed in a significant way with the exception of the generalized Tanimoto coefficient.
机译:半自动/交互图像分割算法再现性的常用措施提供了一组分段中对象边界位置的精度的全局估计。联合骰子相似系数,联合Tanimoto系数,广义Tanimoto系数,体积变异系数,以及对最坏情况的新明确测量的最坏情况局部对象边界精度的新明确测量来解释阶段的阶级相关系数。实验在这一新措施方面建立了95%的置信区间,以允许在最坏情况下以最糟糕的局部精确解释全球措施的全球可重复性措施的范围。联合Tanimoto系数和关节骰子系数被示出在比较分割数量的变化上是高度不稳定的。发现所有现有的分割再现措施都以显着的方式被缺陷,除了广义的Tanimoto系数。

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