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Construction of Implicit Surfaces from Point Clouds Using a Feature-based Approach

机译:利用基于特征的方法构造点云隐式曲面

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摘要

We present a novel feature-based approach to surface generation from point clouds in three-dimensional space obtained by terrestrial and airborne laser scanning. In a first step, we apply a multiscale clustering and classification of local point set neighborhoods by considering their geometric shape. Corresponding feature values quantify the similarity to curve-like, surface-like, and solid-like shapes. For selecting and extracting surface features, we build a hierarchical trivariate B-spline representation of this surface featurefunction. Surfaces are extracted with a variant of marching cubes (MC), providing an inner and outer shell that are merged into a single non-manifold surface component at the field’s ridges. By adapting the isovalue of the feature function the user may control surface topology and thus adapt the extracted features to the noise level of the underlying point cloud. User control and adaptive approximation make our method robust for noisy and complex point data.
机译:我们提出了一种新的基于特征的方法,用于通过地面和机载激光扫描从三维空间中的点云生成表面。第一步,我们通过考虑本地点集邻域的几何形状,对其进行多尺度聚类和分类。相应的特征值可量化与曲线,曲面和实体形状的相似度。为了选择和提取表面特征,我们构建了该表面特征函数的分层三变量B样条表示。可以使用多种多样的行进立方体(MC)提取表面,从而提供内壳和外壳,并在田间的山脊处合并为单个非歧管表面组件。通过适应特征函数的等值,用户可以控制表面拓扑,从而使提取的特征适应基础点云的噪声水平。用户控制和自适应逼近使我们的方法对于嘈杂和复杂的点数据具有鲁棒性。

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