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Automated Intelligent Video Surveillance System for Ships

机译:船舶自动化智能视频监控系统

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摘要

To protect naval and commercial ships from attack by terrorists and pirates, it is important to have automatic surveillance systems able to detect, identify, track and alert the crew on small watercrafts that might pursue malicious intentions, while ruling out non-threat entities. Radar systems have limitations on the minimum detectable range and lack high-level classification power. In this paper, we present an innovative Automated Intelligent Video Surveillance System for Ships (AIVS3) as a vision-based solution for ship security. Capitalizing on advanced computer vision algorithms and practical machine learning methodologies, the developed AIVS3 is not only capable of efficiently and robustly detecting, classifying, and tracking various maritime targets, but also able to fuse heterogeneous target information to interpret scene activities, associate targets with levels of threat, and issue the corresponding alerts/recommendations to the man-in-the-loop (MITL). AIVS3 has been tested in various maritime scenarios and shown accurate and effective threat detection performance. By reducing the reliance on human eyes to monitor cluttered scenes, AIVS3 will save the manpower while increasing the accuracy in detection and identification of asymmetric attacks for ship protection.
机译:为了保护海军舰船和商业船免受恐怖分子和海盗的袭击,重要的是要有自动监视系统能够检测,识别,跟踪和警告可能追求恶意意图的小型船只上的船员,同时排除非威胁实体。雷达系统对最小可探测范围有限制,并且缺乏高级分类能力。在本文中,我们提出了一种创新的船舶自动智能视频监控系统(AIVS3),作为基于视觉的船舶安全解决方案。利用先进的计算机视觉算法和实用的机器学习方法,开发的AIVS3不仅能够有效,强大地检测,分类和跟踪各种海上目标,而且能够融合异类目标信息以解释场景活动,将目标与级别关联威胁,并向“在环人”(MITL)发出相应的警报/建议。 AIVS3已在各种海上场景中进行了测试,并显示出准确有效的威胁检测性能。通过减少对人眼监视混乱场景的依赖,AIVS3将节省人力,同时提高检测和识别非对称攻击的准确性,以保护船舶。

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