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PERFORMANCE OF LARGE-FORMAT DIGITAL CAMERAS

机译:大型数码相机的性能

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Based on test blocks and standard production blocks Z/I Imaging DMCII-140, 230 and 250 as well as UltraCam Eagle images have been analyzed by bundle block adjustment with self calibration. By analysis of image coordinate residuals it is possible to check remaining systematic image errors and to update the set of additional parameters to the required combination. The Hannover program BLUH is using a basic set of 12 additional parameters which is a combination between geometric parameters and Fourier parameters in polar coordinates. In addition it is necessary to use a set of special additional parameters for the combination of the 9 UltraCam sub-CCDs. CCDs are often not flat enough, causing a bending of the edges. For the correct handling of such effects, special additional parameters are required to eliminate or at least reduce remaining systematic effects at image corners. For all DMCII-blocks with 5cm, 7cm, 9cm and 20cm GSD the root mean square size of the systematic image errors with 0.05pixels is very small. Only the basic set of 12 additional parameters is required, the special parameters for the image corners did not improve the accuracy determined with independent check points. Against former results with UltraCam images the monolithic stitching of the panchromatic sub-images to the green image improved the image geometry, nevertheless for reaching the highest accuracy the full set of 52 additional parameters is required, leading to systematic image errors in the root mean square of approximately 0.2pixels. This seems to be small, but it is causing a model deformation up to more as 1.0 GSD in the height, while in the case of the DMCII-images the model deformation did not exceed 0.2 GSD in Z. The major reason for the UltraCam Eagle image deformation seems to be caused by corner effects of the green reference image. Such an effect can be avoided with a better calibration. The DMCII and the UltraCam Eagle images were improved by the firm ware for edge enhancement, influencing also the effective image resolution, determined by edge analysis. No real loss of the effective against the nominal resolution can be seen. Nevertheless the UltraCam Eagle images are a little noisy, which may be caused by the edge enhancement and by the imaging in January.
机译:基于测试块和标准制作块Z / I成像DMCII-140,230和250以及Ultracam Eagle图像,通过束块调节和自校准已经分析。通过分析图像坐标残差,可以检查剩余的系统图像错误并将其集合的附加参数更新为所需的组合。汉诺威计划BLUH使用的基本组12个附加参数,该参数是极性坐标的几何参数和傅立叶参数之间的组合。此外,必须使用一组特殊的附加参数来组合9 Ultracam子CCD。 CCD通常不够平坦,导致边缘的弯曲。为了正确处理此类效果,需要特殊的附加参数来消除或至少减少在图像角上的剩余系统效果。对于5cm,7cm,9cm和20cm gsd的所有DMCII-块,系统图像误差的根均线尺寸为0.05pixels非常小。只需要基本的12个附加参数,图像角的特殊参数没有提高独立检查点确定的精度。针对以前的结果与UltraCAM图像的结果,这是一个绿色子图像的单色缝合到绿色图像改善了图像几何形状,但对于达到最高精度来说,需要全套52个附加参数,导致均方根均线中的系统图像误差大约0.2像素。这似乎很小,但它在高度中导致模型变形高达1.0 GSD,而在DMCII-Images的情况下,模型变形在Z中没有超过0.2 GSD。Ultracam鹰的主要原因图像变形似乎是由绿色参考图像的角效应引起的。可以通过更好的校准来避免这种效果。通过用于边缘增强的坚固件,改善了DMCII和Ultracam Eagle图像,也通过边缘分析确定的有效图像分辨率。可以看到没有真正的违反标称分辨率的损失。然而,Ultracam Eagle图像有点嘈杂,这可能是由边缘增强和1月份的成像引起的。

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