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首页> 外文期刊>ISPRS Journal of Photogrammetry and Remote Sensing >Camera pose refinement by matching uncertain 3D building models with thermal infrared image sequences for high quality texture extraction
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Camera pose refinement by matching uncertain 3D building models with thermal infrared image sequences for high quality texture extraction

机译:通过将不确定的3D建筑模型与热红外图像序列进行匹配来精炼相机姿态,从而获得高质量的纹理

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Thermal infrared (TIR) images are often used to picture damaged and weak spots in the insulation of the building hull, which is widely used in thermal inspections of buildings. Such inspection in large-scale areas can be carried out by combining TIR imagery and 3D building models. This combination can be achieved via texture mapping. Automation of texture mapping avoids time consuming imaging and manually analyzing each face independently. It also provides a spatial reference for facade structures extracted in the thermal textures. In order to capture all faces, including the roofs, facades, and facades in the inner courtyard, an oblique looking camera mounted on a flying platform is used. Direct geo-referencing is usually not sufficient for precise texture extraction. In addition, 3D building models have also uncertain geometry. In this paper, therefore, methodology for co-registration of uncertain 3D building models with airborne oblique view images is presented. For this purpose, a line-based model-to-image matching is developed, in which the uncertainties of the 3D building model, as well as of the image features are considered. Matched linear features are used for the refinement of the exterior orientation parameters of the camera in order to ensure optimal co-registration. Moreover, this study investigates whether line tracking through the image sequence supports the matching. The accuracy of the extraction and the quality of the textures are assessed. For this purpose, appropriate quality measures are developed. The tests showed good results on co-registration, particularly in cases where tracking between the neighboring frames had been applied. (C) 2017 International Society for Photogrammetry and Remote Sensing, Inc. (ISPRS). Published by Elsevier B.V. All rights reserved.
机译:红外热(TIR)图像通常用于描绘建筑物船体隔热材料中受损和薄弱的部位,广泛用于建筑物的热检查。可以通过组合TIR图像和3D建筑模型来进行大规模检查。这种结合可以通过纹理映射来实现。自动化的纹理贴图避免了费时的成像以及独立地手动分析每张脸。它还为热纹理中提取的立面结构提供了空间参考。为了捕获所有面孔,包括屋顶,外墙和内部庭院中的外墙,使用了安装在飞行平台上的斜视摄像机。通常,直接地理参考不足以进行精确的纹理提取。此外,3D建筑模型还具有不确定的几何形状。因此,在本文中,提出了将不确定的3D建筑模型与机载斜视图图像共同注册的方法。为此,开发了基于线的模型到图像的匹配,其中考虑了3D建筑模型以及图像特征的不确定性。匹配的线性特征用于完善相机的外部方向参数,以确保最佳的共配准。此外,本研究调查了通过图像序列的线跟踪是否支持匹配。评估提取的准确性和纹理的质量。为此,制定了适当的质量措施。这些测试在共配准方面显示出良好的结果,特别是在相邻帧之间已应用跟踪的情况下。 (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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