Ratliff Bradley M, Hayat Majeed M, Tyo J Scott
Department of Electrical and Computer Engineering, The University of New Mexico, Albuquerque, New Mexico 87131-1356, USA.
J Opt Soc Am A Opt Image Sci Vis. 2005 Feb;22(2):239-49. doi: 10.1364/josaa.22.000239.
A generalization of a recently developed algebraic scene-based nonuniformity correction algorithm for focal plane array (FPA) sensors is presented. The new technique uses pairs of image frames exhibiting arbitrary one- or two-dimensional translational motion to compute compensator quantities that are then used to remove nonuniformity in the bias of the FPA response. Unlike its predecessor, the generalization does not require the use of either a blackbody calibration target or a shutter. The algorithm has a low computational overhead, lending itself to real-time hardware implementation. The high-quality correction ability of this technique is demonstrated through application to real IR data from both cooled and uncooled infrared FPAs. A theoretical and experimental error analysis is performed to study the accuracy of the bias compensator estimates in the presence of two main sources of error.
本文提出了一种针对焦平面阵列(FPA)传感器的、对最近开发的基于代数场景的非均匀性校正算法的推广。新技术使用呈现任意一维或二维平移运动的图像帧对来计算补偿量,然后这些补偿量用于消除FPA响应偏差中的非均匀性。与之前的算法不同,该推广不需要使用黑体校准目标或快门。该算法具有较低的计算开销,适合实时硬件实现。通过将该技术应用于来自制冷型和非制冷型红外FPA的实际红外数据,证明了其高质量的校正能力。进行了理论和实验误差分析,以研究在存在两个主要误差源的情况下偏差补偿器估计的准确性。