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A Method of Sky Ripple Residual Nonuniformity Reduction for a Cooled Infrared Imager and Hardware Implementation

机译:冷却红外成像仪降低天空纹波残留不均匀性的方法及硬件实现

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摘要

Cooled infrared detector arrays always suffer from undesired ripple residual nonuniformity (RNU) in sky scene observations. The ripple residual nonuniformity seriously affects the imaging quality, especially for small target detection. It is difficult to eliminate it using the calibration-based techniques and the current scene-based nonuniformity algorithms. In this paper, we present a modified temporal high-pass nonuniformity correction algorithm using fuzzy scene classification. The fuzzy scene classification is designed to control the correction threshold so that the algorithm can remove ripple RNU without degrading the scene details. We test the algorithm on a real infrared sequence by comparing it to several well-established methods. The result shows that the algorithm has obvious advantages compared with the tested methods in terms of detail conservation and convergence speed for ripple RNU correction. Furthermore, we display our architecture with a prototype built on a Xilinx Virtex-5 XC5VLX50T field-programmable gate array (FPGA), which has two advantages: (1) low resources consumption; and (2) small hardware delay (less than 10 image rows). It has been successfully applied in an actual system.
机译:冷却的红外检测器阵列在天空场景观察中总是遭受不希望的波纹残留不均匀性(RNU)。纹波残留不均匀性严重影响成像质量,特别是对于小目标检测。使用基于校准的技术和当前基于场景的非均匀性算法很难消除它。在本文中,我们提出了一种使用模糊场景分类的改进的时间高通非均匀性校正算法。设计模糊场景分类来控制校正阈值,以便算法可以在不降低场景细节的情况下消除纹波RNU。通过与几种公认的方法进行比较,我们在真实的红外序列上测试了该算法。结果表明,该算法与所测试的方法相比,在细节保留和收敛速度方面具有明显优势。此外,我们用在Xilinx Virtex-5 XC5VLX50T现场可编程门阵列(FPGA)上构建的原型来展示我们的体系结构,它具有两个优点:(1)低资源消耗; (2)较小的硬件延迟(少于10个图像行)。它已成功应用于实际系统中。

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