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Satellite images analysis for shadow detection and building height estimation

机译:卫星图像分析,用于阴影检测和建筑物高度估计

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Satellite images can provide valuable information about the presented urban landscape scenes to remote sensing and telecommunication applications. Obtaining information from satellite images is difficult since all the objects and their surroundings are presented with feature complexity. The shadows cast by buildings in urban scenes can be processed and used for estimating building heights. Thus, a robust and accurate building shadow detection process is important. Region-based active contour models can be used for satellite image segmentation. However, spectral heterogeneity that usually exists in satellite images and the feature similarity representing the shadow and several non-shadow regions makes building shadow detection challenging. In this work, a new automated method for delineating building shadows is proposed. Initially, spectral and spatial features of the satellite image are utilized for designing a custom filter to enhance shadows and reduce intensity heterogeneity. An effective iterative procedure using intensity differences is developed for tuning and subsequently selecting the most appropriate filter settings, able to highlight the building shadows. The response of the filter is then used for automatically estimating the radiometric property of the shadows. The customized filter and the radiometric feature are utilized to form an optimized active contour model where the contours are biased to delineate shadow regions. Post-processing morphological operations are also developed and applied for removing misleading artefacts. Finally, building heights are approximated using shadow length and the predefined or estimated solar elevation angle. Qualitative and quantitative measures are used for evaluating the performance of the proposed method for both shadow detection and building height estimation. (C) 2016 International Society for Photogrammetry and Remote Sensing, Inc. (ISPRS). Published by Elsevier B.V. All rights reserved.
机译:卫星图像可以为遥感和电信应用提供有关所呈现的城市景观场景的有价值的信息。由于所有物体及其周围环境都呈现复杂的特征,因此很难从卫星图像中获取信息。可以处理城市场景中建筑物投射的阴影,并将其用于估算建筑物高度。因此,鲁棒且准确的建筑物阴影检测过程很重要。基于区域的活动轮廓模型可用于卫星图像分割。但是,通常在卫星图像中存在的频谱异质性以及代表阴影和几个非阴影区域的特征相似性使建筑物阴影检测具有挑战性。在这项工作中,提出了一种用于描绘建筑物阴影的新的自动化方法。最初,利用卫星图像的光谱和空间特征来设计定制滤镜,以增强阴影并降低强度异质性。开发了一种使用强度差的有效迭代过程,以进行调整并随后选择最合适的滤镜设置,从而能够突出显示建筑物的阴影。然后,将滤镜的响应用于自动估计阴影的辐射特性。利用定制的滤镜和辐射特征来形成优化的主动轮廓模型,在该模型中,轮廓会被偏置以描绘阴影区域。还开发了后处理形态学操作,并将其应用于消除误导性伪像。最后,使用阴影长度和预定义或估计的太阳仰角来估算建筑物的高度。定性和定量措施用于评估所提出的阴影检测和建筑物高度估计方法的性能。 (C)2016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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