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首页> 外文期刊>SIAM journal on applied dynamical systems >Segmentation of Planar Surfaces from Laser Scanning Data Using the Magnitude of Normal Position Vector for Adaptive Neighborhoods
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Segmentation of Planar Surfaces from Laser Scanning Data Using the Magnitude of Normal Position Vector for Adaptive Neighborhoods

机译:使用正常邻域的正常位置向量大小从激光扫描数据分割

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摘要

Diverse approaches to laser point segmentation have been proposed since the emergence of the laser scanning system. Most of these segmentation techniques, however, suffer from limitations such as sensitivity to the choice of seed points, lack of consideration of the spatial relationships among points, and inefficient performance. In an effort to overcome these drawbacks, this paper proposes a segmentation methodology that: (1) reduces the dimensions of the attribute space; (2) considers the attribute similarity and the proximity of the laser point simultaneously; and (3) works well with both airborne and terrestrial laser scanning data. A neighborhood definition based on the shape of the surface increases the homogeneity of the laser point attributes. The magnitude of the normal position vector is used as an attribute for reducing the dimension of the accumulator array. The experimental results demonstrate, through both qualitative and quantitative evaluations, the outcomes' high level of reliability. The proposed segmentation algorithm provided 96.89% overall correctness, 95.84% completeness, a 0.25 m overall mean value of centroid difference, and less than 1 degrees of angle difference. The performance of the proposed approach was also verified with a large dataset and compared with other approaches. Additionally, the evaluation of the sensitivity of the thresholds was carried out. In summary, this paper proposes a robust and efficient segmentation methodology for abstraction of an enormous number of laser points into plane information.
机译:由于激光扫描系统的出现,已经提出了激光点分割的不同方法。然而,大多数这些分段技术遭受了对种子点的选择的敏感性等局限性,缺乏对点之间的空间关系和低效性能的敏感性。努力克服这些缺点,本文提出了分段方法:(1)减少了属性空间的尺寸; (2)同时考虑激光点的属性相似性和接近度; (3)适用于空气传播和地面激光扫描数据。基于表面形状的邻域定义增加了激光点属性的均匀性。正常位置矢量的幅度用作用于减少累加器阵列的尺寸的属性。实验结果通过定性和定量评估表明,结果的高度可靠性。所提出的分割算法总体正确性96.89%,完整性为95.84%,半质心差的0.25米平均值,少于1度的角差。拟议方法的性能也用大型数据集进行了验证,并与其他方法进行了验证。另外,进行了对阈值的灵敏度的评估。总之,本文提出了一种稳健而有效的分段方法,用于抽象巨大数量的激光点到平面信息中。

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