形状从轮廓一致和照片一致性

G. Haro
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引用次数: 4

摘要

提出了一种基于轮廓和彩色图像的三维重建算法。它对不一致的轮廓具有鲁棒性,通常在实际应用中由于遮挡,背景减去错误,噪声甚至校准错误而常见。最适合现有数据的形状的恢复被表述为一个连续的能量最小化问题。能量是基于轮廓和形状之间的误差加上一个基于光一致性测量的正则化项,该测量将表面置于光一致性位置。可见性被建模为形状的函数。尽管所提出的变分框架可以使用不同的光一致性计算,但所提出的光一致性度量考虑了可见性。
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Shape from silhouette consensus and photo-consistency
We propose a 3D reconstruction algorithm based on silhouettes and color images. It is robust to inconsistent silhouettes, often common in real applications due to occlusions, errors in the background subtraction, noise or even calibration errors. The recovery of the shape that best fits the available data is formulated as a continuous energy minimization problem. The energy is based on the error between the silhouettes and the shape plus a regularization term based on a photo-consistency measure that places the surface at photo-consistent locations. The visibility is modeled as a function of the shape. The proposed photo-consistency measure takes visibility into account, although the presented variational framework can use different photo-consistency computations.
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