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Object fusion tracking based on visible and infrared images: A comprehensive review

机译:基于可见和红外图像的对象融合跟踪:全面评论

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摘要

Visual object tracking has attracted widespread interests recently. Due to the complementary features provided by visible and infrared images, fusion tracking based on visible and infrared images can boost the tracking performance under adverse challenging conditions. RGB-infrared fusion tracking has become an active research topic and various algorithms have been proposed in recent years. In this paper, we present a review on RGB-infrared fusion tracking. We summarize all major RGB-infrared trackers in the literature and categorize them into several major groups for better understanding. We also discuss the development of RGB-infrared datasets, and analyze the main results on public datasets. We observe that deep learning-based methodsachieve the state-of-the-art performances. Besides, the graph-based and correlation filter-based methods give a bit worse but still competitive performances. In conclusion, we give some suggestions on future research directions of fusion tracking based on our observations. This review can serve as a reference for researchers in RGB-infrared fusion tracking, image fusion, and related fields.
机译:可视化对象跟踪最近引起了广泛的兴趣。由于可见和红外图像提供的互补功能,基于可见光和红外图像的融合跟踪可以在不利具有挑战性的情况下提高跟踪性能。 RGB-红外融合跟踪已成为积极的研究主题,近年来提出了各种算法。在本文中,我们对RGB红外融合跟踪进行了综述。我们总结了文献中所有主要的RGB红外跟踪器,并将其分类为几个主要群体以便更好地理解。我们还讨论了RGB-红外数据集的开发,并分析了公共数据集上的主要结果。我们观察到基于深度学习的方法,最先进的表演。此外,基于图形和基于相关的滤波器的方法可以更糟糕但仍然具有竞争性的表现。总之,我们基于我们的观察结果对未来的融合跟踪研究方向提出了一些建议。此审查可以作为RGB红外融合跟踪,图像融合和相关领域的研究人员的参考。

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