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首页> 外文期刊>Selected Topics in Signal Processing, IEEE Journal of >Occlusion-Model Guided Antiocclusion Depth Estimation in Light Field
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Occlusion-Model Guided Antiocclusion Depth Estimation in Light Field

机译:光场中的遮挡模型指导的反遮挡深度估计

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摘要

Occlusion is one of the most challenging problems in depth estimation. Previous work has modeled the single-occluder occlusion in light field and achieves good performances, however it is still difficult to obtain accurate depth for multioccluder occlusion. In this paper, we explore the complete occlusion model in light field and derive the occluder-consistency between the spatial and angular spaces, which is used as a guidance to select unoccluded views for each candidate occlusion point. Then, an antiocclusion energy function is built to regularize the depth map. Experimental results on both synthetic and real light-field datasets have demonstrated the advantages of the proposed algorithm compared with state-of-the-art algorithms of light-field depth estimation, especially in multioccluder cases.
机译:遮挡是深度估计中最具挑战性的问题之一。先前的工作已经在光场中对单阻塞器进行了建模,并取得了良好的性能,但是仍然难以获得准确的多阻塞器深度。在本文中,我们探索了光场中的完整遮挡模型,并得出了空间和角度空间之间的遮挡一致性,这为选择每个候选遮挡点的非遮挡视图提供了指导。然后,建立了一个抗阻塞能量函数来对深度图进行正则化。在合成光场数据集和真实光场数据集上的实验结果证明,与最新的光场深度估计算法相比,该算法具有优势,尤其是在多光罩情况下。

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