Automatically detecting changes and anomalies in unmanned aerial vehicle images

M. Ugliano, L. Bianchi, A. Bottino, W. Allasia
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引用次数: 4

Abstract

The use of unmanned aerial vehicles (UAVs) in civil aviation is growing up quickly, enabling new scenarios, especially in environmental monitoring and public surveillance services. So far, Earth observation has been carried out only through satellite images, which are limited in resolution and suffer from important barriers such as cloud occlusion. Microdrone solutions, providing video streaming capabilities, are already available on the marketplace, but they are limited to altitudes of a few hundred feet. In contrast, UAVs equipped with high quality cameras can fly at altitudes of a few thousand feet and can fill the gap between satellite observations and ground sensors. Therefore, new needs for data processing arise, spanning from computer vision algorithms to sensor and mission management. This paper presents a solution for automatically detecting changes in images acquired at different times by patrolling UAVs flying over the same targets (but not necessarily along the same path or at the same altitude). Change detection in multi-temporal images is a prerequisite for land cover inspection, which, in turn, sets up the basis for detecting potentially dangerous or threatening situations.
无人机图像变化与异常的自动检测
无人机在民用航空中的应用正在迅速发展,特别是在环境监测和公共监视服务方面。到目前为止,地球观测只能通过卫星图像进行,卫星图像的分辨率有限,并且受到云遮挡等重要障碍的影响。市场上已经有提供视频流功能的微型无人机解决方案,但它们仅限于几百英尺的高度。相比之下,配备高质量摄像头的无人机可以在几千英尺的高度飞行,填补卫星观测和地面传感器之间的空白。因此,从计算机视觉算法到传感器和任务管理,出现了对数据处理的新需求。本文提出了一种通过巡逻无人机在同一目标上空(但不一定沿着同一路径或同一高度)自动检测不同时间获取的图像变化的解决方案。多时相图像的变化检测是土地覆盖检查的先决条件,而土地覆盖检查又为检测潜在危险或威胁情况奠定了基础。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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