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Low-Level Visual Saliency With Application on Aerial Imagery

机译:低空视觉显着性在航空影像中的应用

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摘要

In this letter, a method for the construction of low-level saliency maps is presented in tandem with their evaluation on a set of aerial images. One of the key inspirations for the current research lies on the observation that, usually, the most significant man-made structures in a wide-field aerial image resemble the low-level features that can be detected with a bottom-up saliency map. Aerial photography comprises, hence, a natural domain of application for a method that computationally models low-level saliency. With the employment of mechanisms analogous to the neural functions that drive human attention, we propose a bioinspired framework based on sparse coding for the extraction of information about saliency. The suggested algorithm is then evaluated on a novel data set that has been constructed with the utilization of aerial images and the corresponding manually designed ground truth binary maps of salient structures. The results demonstrate the efficiency of the proposed scheme to highlight conspicuous locations in aerial images, revealing the perspectives on the employment of low-level saliency maps in aerial imaging systems.
机译:在这封信中,提出了一种用于构造低层显着性地图的方法,并对其在一组航空图像上的评估进行了评估。当前研究的主要灵感之一在于观察到的结果是,通常,广角航拍图像中最重要的人造结构类似于可以通过自下而上的显着性图检测到的低层特征。因此,航空摄影包括一种对低显着性进行计算建模的方法的自然应用领域。通过使用类似于引起人类注意力的神经功能的机制,我们提出了一种基于稀疏编码的生物启发框架,用于提取有关显着性的信息。然后,在一个新的数据集上评估建议的算法,该数据集已利用航拍图像和相应的人工设计的显着结构的地面真值二元图进行构建。结果证明了该方案在航空图像中突出显示明显位置的效率,揭示了在航空成像系统中使用低层显着性图的观点。

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