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Infrared small target detection via spatial-temporal infrared patch-tensor model and weighted Schatten p-norm minimization

机译:通过空间 - 时间红外贴片张解模型和加权肖格P-NOM最小化的红外小目标检测

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摘要

Infrared small and dim target detection has been a typical application of infrared imaging techniques, and it still remains a challenging problem to achieve robust performance and fast processing capability under complex clutters and heavy noise. To cope with these obstacles, a novel detection method is proposed in this paper. Firstly, we construct a novel spatial-temporal infrared patch-tensor (STIPT) structure for mining valuable information in the time domain, and the small target can be detected after recovering and segmenting the low-rank background tensor. Then, considering the overshrinkage problem in low-rank component estimation field caused by vanilla nuclear norm and weighted nuclear norm, weighted Schatten p-norm is incorporated to improve the performance by considering the particular meaning of different singular values. A solution framework is proposed via Alternating Direction Method of Multipliers (ADMM), then an adaptive threshold is utilized to separate the targets. We take systematic analysis on real infrared data by the qualitative method and quantitative method, and the effectiveness and robustness of this method are verified in various scenarios.
机译:红外小和暗淡目标检测一直是红外成像技术的典型应用,并且仍然是在复杂的折衷中实现鲁棒性能和快速加工能力的具有挑战性的问题。为了应对这些障碍,本文提出了一种新的检测方法。首先,我们构造一种新的空间 - 时间红外贴片 - 张量(stipt)结构,用于在时域中挖掘有价值的信息,并且可以在恢复和分割低级背景张量后检测小目标。然后,考虑到Vanilla核规范和加权核规范引起的低秩分量估计场中的过度回数问题,通过考虑不同奇异值的特殊含义,加入了加权的育雏P-Norm来改善性能。通过乘法器(ADMM)的交替方向方法提出解决方案框架,然后利用自适应阈值来分离目标。我们通过定性方法和定量方法对真正的红外数据进行系统分析,并且在各种场景中验证了该方法的有效性和鲁棒性。

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