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BUILDING FOOTPRINT EXTRACTION FROM HRSI DERIVED DSM AND ORTHOIMAGE

机译:从HRSI衍生的DSM和正交拼音中提取脚印

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Three-dimensional building model is essential for city environment studies, such as urban planning, disaster management, loss estimation, risk modelling and assessment, disaster simulation, etc. The goal of this study is to develop a low cost workflow for the extraction of building footprint from Digital Surface Model (DSM) and orthoimage derived from High-Resolution Satellite Imagery (HRSI). The difficulties for this task is majorly due to buildings possessing various colors, textures and shapes of boundary. Several factors still pose challenges that interfere with building footprint extraction. Therefore, the objective of this research is to develop an algorithm that integrates road vector from Open Street Map (OSM), orthoimage and DSM to extract building footprints by Object Based Image Analysis (OBIA). In which, the orthoimage and DSM are derived from Pleiades satellite image stereo-pair. The major processing steps include the generation of image objects by multi-resolution image segmentation using orthoimage and DSM. After segmentation, several object features like spectral value, texture, and geometry can be derived. These object features are used to develop a rule set for classification. In order to explore the potential of the proposed approach, the selected study area contains a wide variety of buildings varying in color, shape, texture, and orientation.
机译:三维建筑模型对于城市环境研究至关重要,例如城市规划,灾害管理,损失估计,风险建模和评估,灾害模拟等。本研究的目标是开发一种低成本的工作流来提取建筑物来自数字表面模型(DSM)的足迹和源自高分辨率卫星图像(HRSI)的正射影像。这项任务的困难主要是由于建筑物具有各种颜色,纹理和边界形状。几个因素仍然构成了干扰建筑物占地面积提取的挑战。因此,本研究的目的是开发一种算法,该算法将基于开放式街道地图(OSM),正射影像和DSM的道路矢量集成在一起,从而通过基于对象的图像分析(OBIA)提取建筑物的占地面积。其中,正射影像和DSM均来自P宿星卫星影像立体对。主要处理步骤包括使用正射影像和DSM通过多分辨率图像分割生成图像对象。分割后,可以得出一些对象特征,例如光谱值,纹理和几何形状。这些对象特征用于开发分类规则集。为了探索该方法的潜力,选定的研究区域包含颜色,形状,纹理和方向各异的各种建筑物。

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