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A technique for ghosting artifacts removal in scene-based methods for non-uniformity correction in IR systems

机译:IR系统中非均匀性校正的基于现场方法的重影仿真方法的技术

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In this work we analyze the problem of the ghosting artifacts coming out from non-uniformity correction (NUC) in infrared focal-plane array (IRFPA) imaging systems. We have employed a well-established least mean square (LMS) –based NUC technique which was first introduced by D.A. Scribner. Slow global motion and edges in the scene are the main responsible of the generated ghosting artifacts that can be very damaging especially in target detection and tracking applications. To mitigate the effects of ghosting we propose to replace the linear spatial filter of the analyzed NUC scheme with a non-linear one, known in the literature as bilateral filter, which is able to preserve edges. The proposed technique has been evaluated over an infrared (IR) image sequence with simulated fixed-pattern noise (FPN). A detailed analysis of the results has shown the advantages of the novel deghosting method in terms of accuracy of the calibration and quality of the corrected frames.
机译:在这项工作中,我们分析了从红外焦平面阵列(IRFPA)成像系统中的非均匀性校正(NUC)出来的重影伪影的问题。我们采用了良好的最小均线(LMS)基础的NUC技术,该技术首先由D.A引入。 Scribner。场景中的慢全球运动和边缘是所产生的重影伪像的主要负责,这些工件可能非常损害,特别是在目标检测和跟踪应用中。为了减轻重影的影响,我们建议用非线性的替代分析的NUC方案的线性空间过滤器,其中文献中已知为双侧过滤器,其能够保持边缘。已经通过模拟固定图案噪声(FPN)的红外(IR)图像序列评估所提出的技术。对结果的详细分析表明了新颖的脱良方法在校正框架的校准和质量的准确性方面的优势。

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