Robust Focus Volume Regularization in Shape From Focus

先验概率 光学(聚焦) 正规化(语言学) 缩小 人工智能 计算机科学 活动形状模型 趋同(经济学) 迭代重建 序列(生物学) 数学 算法 计算机视觉 模式识别(心理学) 数学优化 分割 贝叶斯概率 物理 光学 经济 生物 遗传学 经济增长
作者
Usman Ali,Muhammad Tariq Mahmood
出处
期刊:IEEE transactions on image processing [Institute of Electrical and Electronics Engineers]
卷期号:30: 7215-7227 被引量:47
标识
DOI:10.1109/tip.2021.3100268
摘要

Shape from focus (SFF) reconstructs 3D shape of the scene from a sequence of multi-focus images, and the quality of reconstructed shape mainly depends on the accuracy of image focus volume (FV). Traditional SFF techniques exhibit poor performance in preserving structural edges and fine details while removing noisy artifacts, and mostly they do not incorporate any additional shape prior. Therefore, in this paper, we propose to refine FV by formulating an energy minimization framework that employs a nonconvex regularizer and incorporates two types of shape priors. The proposed regularizer is robust against noisy focus values. The first proposed shape prior is input image sequence and it is a single and static shape prior. While, the second shape prior corresponds to a series of shape priors. These shape priors are FVs which are iteratively obtained on-the-fly. Both of these shape priors constrain the solution space for output FV. We optimize nonconvex energy function through majorize-minimization algorithm which iteratively guarantees a local minimum and converges quickly. Experiments have been conducted to evaluate accuracy and convergence properties of the proposed method. Experimental results of synthetic and real image sequences demonstrate that our method achieves superior results in terms of ability to reconstruct accurate 3D shapes as compared to existing approaches.
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