Geometric calibration of a hyperspectral frame camera with simultaneous determination of sensors misalignment

Lucas D. Santos , Antonio M.G. Tommaselli , Adilson Berveglieri , Nilton N. Imai , Raquel A. Oliveira , Eija Honkavaara
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Abstract

The recent development of lightweight and relatively low-cost hyperspectral sensors has created new perspectives for remote sensing applications. This study aimed to investigate the geometric calibration of a hyperspectral frame camera based on a tuneable Fabry–Pérot interferometer (FPI) and two sensors. The radiation passes through the optics and then through the FPI, where it is redirected to two sensors using a beam-splitting prism. Previous studies have shown significant variations between the interior orientation parameters for the different bands, both between bands of the same sensor and between different sensors, and that these variations are due to the principle of image acquisition. Discrepancies of tens of pixels were obtained by comparing image coordinates measured in different bands. In this research, it was proposed to calibrate this camera in a static mode with changes in the mathematical calibration model. The restriction of obtaining only one set of exterior orientation parameters by hypercube was applied, adding parameters related to the misalignment between the sensors and parameters of a linear function relating the camera principal distance to the wavelength values. The application of the parameters estimated with this approach reduced the discrepancies between image coordinates measured in different bands to values smaller than one pixel. Using the sensor calibration parameters in the mobile UAV operation in an aerial bundle adjustment reduced the root mean square error (RMSE) on checkpoints by approximately 20% compared to the traditional model in which the interior orientation parameters and lens distortions were calibrated for each band separately. Thus, it was possible to obtain accurate results that make the use of this camera more practical since only one set of calibration parameters for all bands is needed.

高光谱框架相机的几何定标与传感器偏差同步检测
近年来轻量化、低成本高光谱传感器的发展为遥感应用开辟了新的前景。本研究旨在研究基于可调谐法布里-普氏干涉仪(FPI)和两个传感器的高光谱帧相机的几何定标。辐射通过光学元件,然后通过FPI,在那里它被重新定向到使用分束棱镜的两个传感器。以往的研究表明,不同波段的内部取向参数之间存在显著差异,无论是同一传感器的波段之间还是不同传感器之间,这些差异都是由图像采集原理引起的。通过比较不同波段测量的图像坐标,得到了几十个像素点的差异。在本研究中,通过改变数学标定模型,提出了在静态模式下对摄像机进行标定的方法。利用超立方体只能获得一组外定向参数的限制,增加了与传感器间不对准相关的参数和相机主距与波长值相关的线性函数参数。应用该方法估计的参数,将不同波段测量的图像坐标之间的差异减小到小于一个像素的值。利用传感器标定参数在移动无人机操作中进行空中束调整,与对每个波段的内部定向参数和透镜畸变分别进行标定的传统模型相比,将检查点的均方根误差(RMSE)降低了约20%。因此,由于只需要一组所有波段的校准参数,因此有可能获得准确的结果,使该相机的使用更加实用。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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