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A fractal dimension based framework for night vision fusion

机译:基于分形维的夜视融合框架

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摘要

In this paper, a novel fusion framework is proposed for night-vision applications such as pedestrian recognition, vehicle navigation and surveillance. The underlying concept is to combine low-light visible and infrared imagery into a single output to enhance visual perception. The proposed framework is computationally simple since it is only realized in the spatial domain. The core idea is to obtain an initial fused image by averaging all the source images. The initial fused image is then enhanced by selecting the most salient features guided from the root mean square error (RMSE) and fractal dimension of the visual and infrared images to obtain the final fused image. Extensive experiments on different scene imaginary demonstrate that it is consistently superior to the conventional image fusion methods in terms of visual and quantitative evaluations.
机译:在本文中,提出了一种新颖的融合框架,用于夜视应用,例如行人识别,车辆导航和监视。基本概念是将低光可见光和红外图像合并为一个输出,以增强视觉感知。所提出的框架在计算上很简单,因为它仅在空间域中实现。核心思想是通过平均所有源图像获得初始融合图像。然后通过从视觉和红外图像的均方根误差(RMSE)和分形维数中选择最明显的特征来增强初始融合图像,以获得最终融合图像。在不同场景虚构上的大量实验表明,在视觉和定量评估方面,它始终优于传统的图像融合方法。

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