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首页> 外文期刊>ISPRS Journal of Photogrammetry and Remote Sensing >Contextual segment-based classification of airborne laser scanner data
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Contextual segment-based classification of airborne laser scanner data

机译:基于上下文段的机载激光扫描仪数据分类

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摘要

Classification of point clouds is needed as a first step in the extraction of various types of geo-information from point clouds. We present a new approach to contextual classification of segmented airborne laser scanning data. Potential advantages of segment-based classification are easily offset by segmentation errors. We combine different point cloud segmentation methods to minimise both under- and over-segmentation. We propose a contextual segment-based classification using a Conditional Random Field. Segment adjacencies are represented by edges in the graphical model and characterised by a range of features of points along the segment borders. A mix of small and large segments allows the interaction between nearby and distant points. Results of the segment-based classification are compared to results of a point-based CRF classification. Whereas only a small advantage of the segment-based classification is observed for the ISPRS Vaihingen dataset with 4-7 points/m(2), the percentage of correctly classified points in a 30 points/m(2) dataset of Rotterdam amounts to 91.0% for the segment-based classification vs. 82.8% for the point-based classification. (C) 2017 International Society for Photogrammetry and Remote Sensing, Inc. (ISPRS). Published by Elsevier B.V. All rights reserved.
机译:从点云中提取各种类型的地理信息的第一步是需要对点云进行分类。我们提出了一种新的方法来对航空器分段激光扫描数据进行上下文分类。基于细分的分类的潜在优势很容易被细分误差所抵消。我们结合了不同的点云分割方法,以最大程度地减少分割不足和分割过多的情况。我们提出使用条件随机场的基于上下文分段的分类。段邻接在图形模型中由边表示,并由沿段边界的一系列点特征来表征。小片段和大片段的混合允许在附近和远处之间进行交互。将基于段的分类结果与基于点的CRF分类的结果进行比较。尽管只有4-7点/ m(2)的ISPRS Vaihingen数据集仅观察到基于段分类的小优势,但鹿特丹30点/ m(2)数据集中正确分类的点的百分比为91.0基于细分的分类为%,而基于点的分类则为82.8%。 (C)2017国际摄影测量与遥感学会(ISPRS)。由Elsevier B.V.发布。保留所有权利。

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