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Spatial frequency selective error sensing for space-based wide field-of-view multiple-aperture imaging systems

机译:天基宽视场多孔径成像系统的空间频率选择性误差传感

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Abstract: High-resolution space-based imaging applications are limited by the difficulty of placing large monolithic mirrors in space and by technology limitations on the diameter achievable in monolithic mirrors. Multiple-mirror imaging systems can overcome these limitations but require precise alignment-error sensing and correcting schemes to maintain all elements in phase. When a wide field of view is desired, the complexity increases substantially since significant error terms will be a function of field angle. Approaches which can reduce the complexity of the error sensing/correcting schemes are thus of great interest. By sampling selected spatial frequencies, representative of both the individual subapertures and errors between subapertures, measurement of all error terms except absolute piston can be achieved. A technique which places a nonredundant mask in the compacted pupil plane of a phased-array imager and senses the selected spatial-frequency magnitude and phase in the focal plane has been analyzed. This technique can reduce complexity in the local error-sensing system while accounting for all tilt, geometry, magnification, and relative piston errors.!9
机译:摘要:高分辨率空基成像应用受到在空间中放置大型整体镜的困难以及在整体镜中可达到的直径方面的技术限制的限制。多镜成像系统可以克服这些限制,但需要精确的对准误差感测和校正方案以使所有元件保持同相。当需要较宽的视野时,复杂度会大大增加,因为重要的误差项将是视场角的函数。因此,能够降低错误感测/校正方案的复杂性的方法引起了极大的兴趣。通过采样代表单个子孔径和子孔径之间误差的选定空间频率,可以测量除绝对活塞以外的所有误差项。已经分析了一种将非冗余掩模放置在相控阵成像器的压缩光瞳平面中并感测焦平面中选定的空间频率幅度和相位的技术。该技术可以减少本地误差传感系统的复杂性,同时考虑所有倾斜,几何形状,放大倍数和相对活塞误差。9

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