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Development of a geometric model for an all-reflective camera system

机译:开发全反射相机系统的几何模型

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摘要

Currently in photogrammetry conventional camera optics, which are based on a combination of lenses, are solely used. These systems are also called refractive systems. The usage of refractive systems implies a general drawback for some applications. Due to the chromatic aberration of lenses, i.e. slightly different imaging functions for different spectral bands, a significant loss of image quality and geometric accuracy has to be accepted. This fact is important especially for applications that require imaging a wide spectral range. Conventional cameras are not able to satisfactorily capture the ultraviolet or near infrared spectral range in addition to the visible. These chromatic aberration problems can be completely be avoided in all-reflective optical systems, i.e. camera objectives which are completely based on mirrors. The paper will briefly describe the developed all-reflective optical systems designed for optical metrology purposes. A general disadvantage of the design of normal or wide angle all-reflective systems is the asymmetry of the mirror arrangement, which leads to large asymmetric geometric image distortions. These distortions cannot be modeled with standard methods of photogrammetry. Furthermore, the complete system is also more sensitive to local deviations from the ideal mirror surface. Therefore we developed a suitable geometric model, which is adapted to the special case. The model is based on the collinearity condition, extended by a specific additional parameter set optimized with regard to the characteristics of an all-reflective unobscured system. We will show various model variants based on the additional parameter sets of Brown, Ebner and Griin as well as Legendre polynomials, Chebyshev polynomials and Fourier series. The paper discusses the potential of these models to correct the distortion of an all-reflective unobscured optical system prototype based on four aspherical mirrors on the basis of test field self-calibration and describes different approaches to consider local deviations from the nominal aspherical mirror surface with the help of the finite elements method.
机译:当前,在摄影测量学中,仅使用基于透镜组合的常规照相机光学器件。这些系统也称为屈光系统。屈光系统的使用暗示了某些应用的普遍缺陷。由于透镜的色差,即针对不同光谱带的成像功能略有不同,因此必须接受图像质量和几何精度的重大损失。这一事实对于需要对宽光谱范围成像的应用尤其重要。除了可见光之外,常规照相机不能令人满意地捕获紫外或近红外光谱范围。在全反射光学系统中,即完全基于反射镜的照相机物镜,可以完全避免这些色差问题。本文将简要介绍为光学计量学目的而开发的全反射光学系统。法向或广角全反射系统设计的一般缺点是镜面布置的不对称,这会导致较大的不对称几何图像失真。这些失真不能用摄影测量的标准方法建模。此外,完整的系统对与理想镜面的局部偏差也更敏感。因此,我们开发了适合特殊情况的合适几何模型。该模型基于共线性条件,并通过针对全反射无遮挡系统的特性进行了优化的特定附加参数集进行了扩展。我们将基于Brown,Ebner和Griin的附加参数集以及Legendre多项式,Chebyshev多项式和Fourier级数展示各种模型变体。本文讨论了这些模型在基于测试场自校准的基础上校正基于四个非球面镜的全反射无遮挡光学系统原型失真的潜力,并描述了考虑与标称非球面镜表面局部偏差的不同方法。有限元方法的帮助。

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  • 作者单位

    Institute of Photogrammetry and Remote Sensing, Technische Universitat Dresden, Helmholtzstrasse 10, 01069 Dresden, Germany;

    Institute of Photogrammetry and Remote Sensing, Technische Universitat Dresden, Helmholtzstrasse 10, 01069 Dresden, Germany;

    Institute of Photogrammetry and Remote Sensing, Technische Universitat Dresden, Helmholtzstrasse 10, 01069 Dresden, Germany;

    Institute of Photogrammetry and Remote Sensing, Technische Universitat Dresden, Helmholtzstrasse 10, 01069 Dresden, Germany;

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  • 正文语种 eng
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  • 关键词

    All-reflective camera system; Calibration; Geometric modeling; FEM;

    机译:全反射摄像系统校准;几何造型;有限元法;

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