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首页> 外文期刊>Journal of Applied Remote Sensing >Detection of building changes from aerial images and light detection and ranging (LIDAR) data
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Detection of building changes from aerial images and light detection and ranging (LIDAR) data

机译:根据航拍图像和光检测和测距(LIDAR)数据检测建筑物变化

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摘要

Building models are built to provide three-dimensional (3-D) spatial information, which is needed in a variety of applications including city planning, construction management, location-based services of urban infrastructures, and the like. However, 3-D building models have to be updated on a timely manner to meet the changing demand. Rather than reconstructing building models for the entire area, it would be more convenient and effective to only update parts of the areas where there were changes. This paper aims at developing a new method, namely double-threshold strategy, to find such changes within 3-D building models in the region of interest with the aid of light detection and ranging (LIDAR) data. The proposed modeling scheme comprises three steps, namely, data pre-processing, change detection in building areas, and validation. In the first step for data pre-processing, data registration was carried out based on multi-source data. The second step for data pre-processing requires using the triangulation of an irregular network of data points collected by Light Detection And Ranging (LIDAR), focusing on those locations containing walls or other above-ground objects that were ever removed. Then, change detection in the building models can be made possible for finding differences in height by comparing the LIDAR point measurements and the estimates of the building models. The results may be further refined using spectral and feature information collected from aerial imagery. A double-threshold strategy was applied to cope with the highly sensitive thresholding often encountered when using the rule-based approach. Finally, ground truth data were used for model validation. Research findings clearly indicate that the double-threshold strategy improves the overall accuracy from 93.1percent to 95.9percent.
机译:建立建筑模型以提供三维(3-D)空间信息,这在包括城市规划,建筑管理,城市基础设施的基于位置的服务等各种应用中都需要。但是,必须及时更新3-D建筑模型以满足不断变化的需求。与其为整个区域重建建筑模型,不如仅对发生变化的区域的一部分进行更新会更加方便和有效。本文旨在开发一种新的方法,即双阈值策略,借助光检测和测距(LIDAR)数据在目标区域的3-D建筑模型中找到这种变化。提出的建模方案包括三个步骤,即数据预处理,建筑区域中的变化检测和验证。在数据预处理的第一步中,基于多源数据进行了数据注册。数据预处理的第二步需要对由光探测和测距(LIDAR)收集的不规则数据点网络进行三角剖分,重点放在包含已移除的墙壁或其他地上物体的位置。然后,通过比较LIDAR点测量值和建筑模型的估计值,可以使建筑模型中的变化检测成为可能,以发现高度差异。可以使用从航空影像中收集的光谱和特征信息进一步完善结果。应用双阈值策略来应对使用基于规则的方法时经常遇到的高度敏感的阈值问题。最后,将地面真实数据用于模型验证。研究结果清楚地表明,双阈值策略将整体准确度从93.1%提高到95.9%。

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