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STUDY ON THE FEASIBILITY OF RGB SUBSTITUTE CIR FOR AUTOMATIC REMOVAL VEGETATION OCCLUSION BASED ON GROUND CLOSE-RANGE BUILDING IMAGES

机译:基于地面近距离建筑图像的RGB替代Cir用于自动移除植被闭塞性的研究

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Building 3D reconstruction based on ground remote sensing data (image, video and lidar) inevitably faces the problem that buildings are always occluded by vegetation, so how to automatically remove and repair vegetation occlusion is a very important preprocessing work for image understanding, compute vision and digital photogrammetry. In the traditional multispectral remote sensing which is achieved by aeronautics and space platforms, the Red and Near-infrared (NIR) bands, such as NDVI (Normalized Difference Vegetation Index), are useful to distinguish vegetation and clouds, amongst other targets. However, especially in the ground platform, CIR (Color Infra Red) is little utilized by compute vision and digital photogrammetry which usually only take true color RBG into account. Therefore whether CIR is necessary for vegetation segmentation or not has significance in that most of close-range cameras don't contain such NIR band. Moreover, the CIE L~*a~*b color space, which transform from RGB, seems not of much interest by photogrammetrists despite its powerfulness in image classification and analysis. So, CIE (L, a, b) feature and support vector machine (SVM) is suggested for vegetation segmentation to substitute for CIR. Finally, experimental results of visual effect and automation are given. The conclusion is that it's feasible to remove and segment vegetation occlusion without NIR band. This work should pave the way for texture reconstruction and repair for future 3D reconstruction.
机译:基于地面遥感数据(图像,视频和LIDAR)建立3D重建(图像,视频和激光雷达)不可避免地面临建筑物始终被植被封闭的问题,因此如何自动删除和修复植被遮挡是图像理解,计算视觉和植被闭塞的一个非常重要的预处理工作数码摄影测量。在传统的多光谱遥感中,由航空和空间平台实现,红色和近红外(近红外线(NIR)频带,例如NDVI(归一化差异植被指数),可用于区分植被和云等目标。然而,特别是在地面平台中,CIR(彩色红外线)由计算视觉和数码摄影测量很少使用,这通常只需要真正的颜色RBG。因此,CIR是否是植被分割所必需的,或者在大多数近距离摄像机不包含这样的NIR频段的重要性中是必要的。此外,尽管在图像分类和分析中强大,但从RGB转换的CIE L〜* A〜* B颜色空间似乎对摄影训练感不大。因此,CIE(L,A,B)特征和支持向量机(SVM)被建议用于植被分割以替代CIR。最后,给出了视觉效果和自动化的实验结果。结论是,在没有NIR频段的情况下移除和分段植被遮挡是可行的。这项工作应该为未来的3D重建铺设纹理重建和修复方式。

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