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首页> 外文期刊>International Journal of Applied Mathematics and Computer Science >A LINEARIZATION-BASED HYBRID APPROACH FOR 3D RECONSTRUCTION OF OBJECTS IN A SINGLE IMAGE
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A LINEARIZATION-BASED HYBRID APPROACH FOR 3D RECONSTRUCTION OF OBJECTS IN A SINGLE IMAGE

机译:一种基于线性化的混合方法,用于单幅图像中对象的三维重建

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摘要

The shape-from-shading (SFS) technique uses the pattern of shading in images in order to obtain 3D view information. By virtue of their ease of implementation, linearization-based SFS algorithms are frequently used in the literature. In this study, Fourier coefficients of central differences obtained from gray-level images are employed, and two basic linearization-based algorithms are combined. By using the functionally generated surfaces and 3D reconstruction datasets, the hybrid algorithm is compared with linearization-based approaches. Five different evaluation metrics are applied on recovered depth maps and the corresponding gray-level images. The results on defective sample surfaces are also included to show the effect of the algorithm on surface reconstruction. The proposed method can prevent erroneous estimates on object boundaries and produce satisfactory 3D reconstruction results in a low number of iterations.
机译:形状从阴影(SFS)技术使用图像中的阴影模式以获得3D视图信息。 凭借其易于实现,在文献中经常使用基于线性化的SFS算法。 在该研究中,采用从灰度图像获得的中央差异的傅里叶系数,并且组合了两个基于基于线性化的算法。 通过使用功能生成的表面和3D重建数据集,将混合算法与基于线性化的方法进行比较。 在恢复的深度图和相应的灰度图像上应用五种不同的评估度量。 还包括缺陷样品表面的结果,以显示算法对表面重建的影响。 所提出的方法可以防止对物体边界的错误估计,并产生令人满意的3D重建导致较低的迭代。

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