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Mining Multispectral Aerial Images for Automatic Detection of Strategic Bridge Locations for Disaster Relief Missions

机译:挖掘多光谱航空影像以自动检测救灾任务中的战略桥梁位置

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摘要

We propose in this paper an image mining technique based on multispectral aerial images for automatic detection of strategic bridge locations for disaster relief missions. Bridge detection from aerial images is a key landmark that has vital importance in disaster management and relief missions. UAVs have been increasingly used in recent years for various relief missions during the natural disasters such as floods and earthquakes and a huge amount of multispectral aerial images are generated by UAVs in the missions. Being a multi- stage technique, our method utilizes these multispectral aerial images for identifying patterns for effective mining of bridge locations. Experimental results on real-world and synthetic images are conducted to demonstrate the effectiveness of our proposed method, showing that it is 40% faster than the existing Automatic Target Recognition (ATR) systems and can achieve a 95% accuracy. Our technique is believed to be able to help accelerate and enhance the effectiveness of the relief missions carried out during disasters.
机译:我们在本文中提出了一种基于多光谱航拍图像的图像挖掘技术,用于自动检测用于救灾任务的战略桥梁位置。从航空影像中检测桥梁是关键的里程碑,在灾难管理和救援任务中至关重要。近年来,在诸如洪水和地震之类的自然灾害期间,无人机越来越多地用于各种救援任务,并且在任务中无人机产生了大量的多光谱航拍图像。作为一种多阶段技术,我们的方法利用这些多光谱航拍图像来识别模式,以有效地挖掘桥梁位置。进行了在真实世界和合成图像上的实验结果,以证明我们提出的方法的有效性,表明它比现有的自动目标识别(ATR)系统快40%,并且可以达到95%的准确性。我们的技术被认为能够帮助加速和增强灾难期间执行的救援任务的有效性。

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