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Application of Phase Matching Autofocus in Airborne Long-Range Oblique Photography Camera

机译:相位匹配自动对焦在机载远程斜摄相机中的应用

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The Condor2 long-range oblique photography (LOROP) camera is mounted in an aerodynamically shaped pod carried by a fast jet aircraft. Large aperture, dual-band (EO/MWIR) camera is equipped with TDI focal plane arrays and provides high-resolution imagery of extended areas at long stand-off ranges, at day and night. Front Ritchey-Chretien optics is made of highly stable materials. However, the camera temperature varies considerably in flight conditions. Moreover, a composite-material structure of the reflective objective undergoes gradual dehumidification in dry nitrogen atmosphere inside the pod, causing some small decrease of the structure length. The temperature and humidity effects change a distance between the mirrors by just a few microns. The distance change is small but nevertheless it alters the camera's infinity focus setpoint significantly, especially in the EO band. To realize the optics' resolution potential, the optimal focus shall be constantly maintained. In-flight best focus calibration and temperature-based open-loop focus control give mostly satisfactory performance. To get even better focusing precision, a closed-loop phase-matching autofocus method was developed for the camera. The method makes use of an existing beamsharer prism FPA arrangement where aperture partition exists inherently in an area of overlap between the adjacent detectors. The defocus is proportional to an image phase shift in the area of overlap. Low-pass filtering of raw defocus estimate reduces random errors related to variable scene content. Closed-loop control converges robustly to precise focus position. The algorithm uses the temperature- and range-based focus prediction as an initial guess for the closed-loop phase-matching control. The autofocus algorithm achieves excellent results and works robustly in various conditions of scene illumination and contrast.
机译:Condor2远程斜摄影(LOROP)摄像机安装在由快速喷气式飞机携带的具有空气动力学形状的吊舱中。大光圈双波段(EO / MWIR)摄像机配备了TDI焦平面阵列,可在白天和晚上在长距离对峙范围内提供扩展区域的高分辨率图像。前Ritchey-Chretien光学器件由高度稳定的材料制成。但是,相机的温度在飞行条件下会有很大变化。而且,反射物镜的复合材料结构在容器内部在干燥的氮气气氛中逐渐除湿,从而导致结构长度的少量减小。温度和湿度的影响使反射镜之间的距离仅改变了几微米。距离变化很小,但是尽管如此,它仍会显着改变相机的无限远对焦设置点,尤其是在EO波段。为了实现光学器件的分辨率潜力,应始终保持最佳焦点。飞行中最佳聚焦校准和基于温度的开环聚焦控制可提供令人满意的性能。为了获得更好的聚焦精度,为相机开发了一种闭环相位匹配自动聚焦方法。该方法利用现有的光束共享棱镜FPA布置,其中在相邻检测器之间的重叠区域中固有地存在孔径分配。散焦与重叠区域中的图像相移成比例。原始散焦估计值的低通滤波可减少与可变场景内容有关的随机误差。闭环控制稳健地收敛到精确的聚焦位置。该算法使用基于温度和范围的焦点预测作为闭环相位匹配控制的初始猜测。自动对焦算法可实现出色的效果,并且在各种场景照明和对比度条件下均能稳定工作。

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