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Feature Matching Combining Radiometric and Geometric Characteristics of Images Applied to Oblique- and Nadir-Looking Visible and TIR Sensors of UAV Imagery

机译:相结合的辐射和几何特性的特征匹配适用于UAV Imagerery的倾斜和Nadir看可见和TIR传感器

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摘要

A large amount of information needs to be identified and produced during the process of promoting projects of interest. Thermal infrared (TIR) images are extensively used because they can provide information that cannot be extracted from visible images. In particular, TIR oblique images facilitate the acquisition of information of a building’s facade that is challenging to obtain from a nadir image. When a TIR oblique image and the 3D information acquired from conventional visible nadir imagery are combined, a great synergy for identifying surface information can be created. However, it is an onerous task to match common points in the images. In this study, a robust matching method of image pairs combined with different wavelengths and geometries (i.e., visible nadir-looking vs. TIR oblique, and visible oblique vs. TIR nadir-looking) is proposed. Three main processes of phase congruency, histogram matching, and Image Matching by Affine Simulation (IMAS) were adjusted to accommodate the radiometric and geometric differences of matched image pairs. The method was applied to Unmanned Aerial Vehicle (UAV) images of building and non-building areas. The results were compared with frequently used matching techniques, such as scale-invariant feature transform (SIFT), speeded-up robust features (SURF), synthetic aperture radar–SIFT (SAR–SIFT), and Affine SIFT (ASIFT). The method outperforms other matching methods in root mean square error (RMSE) and matching performance (matched and not matched). The proposed method is believed to be a reliable solution for pinpointing surface information through image matching with different geometries obtained via TIR and visible sensors.
机译:在促进感兴趣的项目过程中需要确定和产生大量信息。热红外(TIR)图像被广泛使用,因为它们可以提供无法从可见图像中提取的信息。特别地,TIR斜体图像有助于获取建筑物的外观的信息,这挑战从Nadir图像获得。当组合从传统可见Nadir图像获取的TIR斜图像和3D信息时,可以创建用于识别曲面信息的伟大协同作用。但是,匹配图像中的共同点是一种繁重的任务。在该研究中,提出了一种与不同波长和几何形状的图像对的鲁棒匹配方法(即,,可见的Nadir-Look.Tir斜,和可见倾斜与TIR Nadir-Look)。通过仿射仿真(IMA)调整了相等,直方图匹配和图像匹配的三个主要过程,以适应匹配图像对的辐射和几何差异。该方法应用于建筑物和非建筑区域的无人机(UAV)图像。将结果与常用匹配技术进行比较,例如尺度不变的特征变换(SIFT),加速鲁棒特征(冲浪),合成孔径雷达筛(SAR-SIFT)和仿射筛(亚斯特派舍)。该方法优于根均方误差(RMSE)中的其他匹配方法和匹配性能(匹配和不匹配)。该提出的方法被认为是通过与通过TIR和可见传感器获得的不同几何形状的图像匹配来定位表面信息的可靠解决方案。

著录项

  • 期刊名称 Sensors (Basel Switzerland)
  • 作者单位
  • 年(卷),期 2021(21),13
  • 年度 2021
  • 页码 4587
  • 总页数 20
  • 原文格式 PDF
  • 正文语种
  • 中图分类
  • 关键词

    机译:热红外(TIR)斜图像;几何;波长;相一致性;直方图匹配;通过仿射仿真(IMA)的图像匹配;无人驾驶飞行器(UAV);
  • 入库时间 2022-08-21 12:34:39

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