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3D surface reconstruction by self-consistent fusion of shading and shadow features

机译:通过遮蔽和阴影特征的自我一致融合3D表面重建

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A novel framework for three-dimensional surface reconstruction by self-consistent fusion of shading and shadow features is presented. Based on the analysis of at least two pixel-synchronous images of the scene under different illumination conditions, this framework combines a shape from shading approach for estimating surface gradients and altitude variations with a shadow analysis that allows for an accurate determination of altitude differences on the surface. As a first step, the result of shadow analysis is used for selecting a consistent solution of the shape from shading reconstruction algorithm. As a second step, an additional error term derived from the fine structure of the shadow is incorporated into the reconstruction algorithm. This framework is applied to three-dimensional reconstruction of regions on the lunar surface using ground based CCD images. Beyond the planetary science scenario, it is applicable to classical machine vision tasks such as surface inspection in the context of industrial quality control.
机译:提出了一种通过自我一致的遮蔽和阴影特征的三维表面重建的新框架。基于对不同照明条件下场景的至少两个像素 - 同步图像的分析,该框架结合了阴影方法的形状,用于估计具有暗影分析的表面梯度和高度变化,允许准确地确定对高度差异的表面。作为第一步,暗影分析的结果用于从阴影重建算法中选择形状的一致解。作为第二步骤,源自阴影的细结构导出的附加错误项被纳入重建算法。该框架应用于使用基于地面的CCD图像对月球表面上的区域的三维重建。除了行星科学情景之外,它适用于工业质量控制背景下的古典机器视觉任务,如表面检查。

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