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Adaptive fusion method of visible light and infrared images based on non-subsampled shearlet transform and fast non-negative matrix factorization

机译:基于非下采样的小波变换和快速非负矩阵分解的可见光与红外图像自适应融合方法

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摘要

The issue of visible light and infrared images fusion has been an active topic in both military and civilian areas, and a great many relevant algorithms and techniques have been developed accordingly. This paper addresses a novel adaptive approach to the above two patterns of images fusion problem, employing multi-scale geometry analysis (MGA) of non-subsampled shearlet transform (NSST) and fast nonnegative matrix factorization (FNMF) together. Compared with other existing conventional MGA tools, NSST owns not only better feature-capturing capabilities, but also much lower computational complexities. As a modification version of the classic NMF model, FNMF overcomes the local optimum property inherent in NMF to a large extent. Furthermore, use of the FNMF with a less complex structure and much fewer iteration numbers required leads to the enhancement of the overall computational efficiency, which is undoubtedly meaningful and promising in so many real-time applications especially the military and medical technologies. Experimental results indicate that the proposed method is superior to other current popular ones in both aspects of subjective visual and objective performance.
机译:可见光和红外图像融合的问题一直是军事和民用领域中的一个活跃话题,因此开发了许多相关的算法和技术。本文针对以上两种图像融合问题,提出了一种新颖的自适应方法,将非下采样小波变换(NSST)和快速非负矩阵分解(FNMF)的多尺度几何分析(MGA)结合在一起使用。与其他现有的常规MGA工具相比,NSST不仅拥有更好的功能捕获功能,而且还具有更低的计算复杂度。作为经典NMF模型的修改版本,FNMF在很大程度上克服了NMF固有的局部最优属性。此外,使用结构简单,所需迭代次数少的FNMF可以提高整体计算效率,这在许多实时应用(尤其是军事和医疗技术)中无疑是有意义和有希望的。实验结果表明,该方法在主观视觉和客观表现两个方面均优于当前流行的方法。

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