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基于局部测量的星载多模块拼接大幅面红外相机外推畸变校正

Extrapolating distortion correction with local measurements for space-based multi-module splicing large-format infrared cameras.

作者信息

Jiang Linyi, Li Liyuan, Li Xiaoyan, Jiao Jingjie, Chen Fansheng

出版信息

Opt Express. 2022 Oct 10;30(21):38043-38059. doi: 10.1364/OE.470476.

Abstract

Conventional distortion correction methods with the classical models, including radial, decentering, and thin prism distortions and with the interpolation template, depend heavily on the evenly distributed measurement data on the entire focal plane. However, owing to the restricted cubage of the vacuum tank and the large size of the assembled camera, there is no more extra space for the amounted large-format camera to adjust with the 2D turntable during laboratory vacuum experiment, which, accordingly, makes the collected measurement points gathered in just one module of the focal plane and eventually results in poor correction accuracy of the mentioned approaches. Here, in terms of the problems above, an extrapolating distortion correction method with local measurements for space-based multi-module splicing large-format infrared cameras was proposed in this paper. Benefiting from the polynomial model not being affected by the distribution of data, a third-order polynomial model adopted for distortion correction is solved by using local measurements and extrapolated reasonably, which guarantees the global camera calibration. Experimental results show that the mean distortion error can be corrected within 0.5 pixels. This method overcoming the deficiency of local test points can effectively improve the correction accuracy of the large-format camera and provide a new idea for global high-precision calibration of on-orbit payloads based on local measurements.

摘要

采用经典模型的传统畸变校正方法,包括径向、偏心和薄棱镜畸变,并结合插值模板,严重依赖于整个焦平面上均匀分布的测量数据。然而,由于真空罐体积受限以及组装相机尺寸较大,在实验室真空实验期间,已安装的大幅面相机没有更多额外空间通过二维转台进行调整,这相应地导致采集到的测量点仅集中在焦平面的一个模块中,最终导致上述方法的校正精度较差。在此,针对上述问题,本文提出了一种基于局部测量的外推畸变校正方法,用于天基多模块拼接大幅面红外相机。得益于多项式模型不受数据分布的影响,采用局部测量并合理外推来求解用于畸变校正的三阶多项式模型,从而保证了相机的全局校准。实验结果表明,平均畸变误差可校正至0.5像素以内。该方法克服了局部测试点的不足,能够有效提高大幅面相机的校正精度,并为基于局部测量的在轨有效载荷全局高精度校准提供了新思路。

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