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3D shape restoration using sparse representation and separation of illumination effects

机译:使用稀疏表示和照明效果分离进行3D形状恢复

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This paper investigates the problem of extracting 3D shape from flat 2D images. In contrast with conventional methods, this work uses two images captured from the same position but under different illuminations to reconstruct a 3D shape. The proposed novel algorithm is based on an underdetermined system by seeking sparseness and statistical independence between direct illumination and object shape within a statistical estimation framework. The technology proposed surpasses the minimum requirement of the photometric method, which needs at least three input images. In addition, a new statistical model was developed which is updated by the Expectation-Maximization algorithm to accommodate the system noise appearing on the images. The performance of the proposed algorithm significantly increased the accuracy over conventional methods whilst reducing the computational complexity.
机译:本文研究了从平面2D图像中提取3D形状的问题。与传统方法相比,这项工作使用从相同位置但在不同光照下捕获的两个图像来重建3D形状。所提出的新颖算法基于欠定系统,其在统计估计框架内寻求直接照明与物体形状之间的稀疏性和统计独立性。所提出的技术超出了光度法的最低要求,它至少需要三个输入图像。此外,还开发了一个新的统计模型,该模型可以通过Expectation-Maximization算法进行更新,以适应出现在图像上的系统噪声。与传统方法相比,所提出算法的性能显着提高了准确性,同时降低了计算复杂度。

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