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An Adaptive Fusion Algorithm for Visible and Infrared Videos Based on Entropy and the Cumulative Distribution of Gray Levels

机译:基于熵和灰度累积分布的可见光和红外视频自适应融合算法

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摘要

Visible videos captured under different weather conditions may exhibit different characteristics, and thermal infrared videos are easily affected by ambient temperature variations; this sensitivity to environmental conditions makes the fusion of visible and thermal infrared videos a challenge. This paper proposes an adaptive fusion algorithm for visible and infrared videos, and uses cumulative distribution of gray levels and the entropy to adaptively retain infrared-hot targets and visible textures. The original visible and infrared frames are decomposed into two layers, namely, the base layer and the detail layer. The guided filter is employed to decompose frames due to its high efficiency. Two weight maps, one for the infrared base layer and one for the visible base layer, are adaptively generated based on the cumulative distribution of gray levels and the entropy, respectively. The visible base layer and the infrared base layer are fused based on their weight maps. The final fusion result is obtained by combining the fused base layer with the visible detail layer. Experimental results demonstrate that the proposed algorithm can achieve better fusion results compared with state-of-the-art methods.
机译:在不同天气条件下捕获的可见视频可能具有不同的特性,并且热红外视频很容易受到环境温度变化的影响;这种对环境条件的敏感性使得可见光和热红外视频的融合成为一个挑战。本文提出了一种适用于可见光和红外视频的自适应融合算法,并利用灰度的累积分布和熵来自适应地保留红外热目标和可见纹理。原始的可见和红外帧被分解为两层,即基础层和细节层。导引滤波器由于其高效率而被用于分解帧。分别基于灰度级和熵的累积分布,自适应地生成两个权重图,一个用于红外基础层,一个用于可见基础层。可见光基础层和红外光基础层基于它们的权重图进行融合。最终的融合结果是通过将融合的基础层与可见的细节层进行组合而获得的。实验结果表明,与最新方法相比,该算法可以实现更好的融合效果。

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