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Automated Adjustment of Region-Based Active Contour Parameters Using Local Image Geometry

机译:使用局部图像几何自动调整基于区域的活动轮廓参数

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摘要

A principled method for active contour (AC) parameterization remains a challenging issue in segmentation research, with a potential impact on the quality, objectivity, and robustness of the segmentation results. This paper introduces a novel framework for automated adjustment of region-based AC regularization and data fidelity parameters. Motivated by an isomorphism between the weighting factors of AC energy terms and the eigenvalues of structure tensors, we encode local geometry information by mining the orientation coherence in edge regions. In this light, the AC is repelled from regions of randomly oriented edges and guided toward structured edge regions. Experiments are performed on four state-of-the-art AC models, which are automatically adjusted and applied on benchmark datasets of natural, textured and biomedical images and two image restoration models. The experimental results demonstrate that the obtained segmentation quality is comparable to the one obtained by empirical parameter adjustment, without the cumbersome and time-consuming process of trial and error.
机译:主动轮廓(AC)参数化的原则化方法仍然是分割研究中的一个难题,对分割结果的质量,客观性和鲁棒性可能产生影响。本文介绍了一种自动调整基于区域的AC正则化和数据保真度参数的新颖框架。受AC能量项的加权因子与结构张量特征值之间的同构影响,我们通过挖掘边缘区域中的方向相干性来编码局部几何信息。因此,AC从随机定向的边缘区域排斥,并被引导向结构化边缘区域。实验是在四个最新的AC模型上进行的,这些模型可以自动调整并应用于自然,纹理和生物医学图像的基准数据集以及两个图像恢复模型。实验结果表明,所获得的分割质量可与通过经验参数调整获得的分割质量相媲美,而没有繁琐费时的反复试验。

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