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Computer Vision-Based Technologies and Commercial Best Practices for the Advancement of the Motion Imagery Tradecraft

机译:基于计算机视觉的技术和商业最佳实践,促进了运动图像贸易技术的发展

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Motion imagery capabilities within the Department of Defense/Intelligence Community (DoD/IC) have advanced significantly over the last decade, attempting to meet continuously growing data collection, video processing and analytical demands in operationally challenging environments. The motion imagery tradecraft has evolved accordingly, enabling teams of analysts to effectively exploit data and generate intelligence reports across multiple phases in structured Full Motion Video (FMV) Processing Exploitation and Dissemination (PED) cells. Yet now the operational requirements are drastically changing. The exponential growth in motion imagery data continues, but to this the community adds multi-INT data, interoperability with existing and emerging systems, expanded data access, non-traditional users, collaboration, automation, and support for ad hoc configurations beyond the current FMV PED cells. To break from the legacy system lifecycle, we look towards a technology application and commercial adoption model course which will meet these future Intelligence, Surveillance and Reconnaissance (ISR) challenges. In this paper, we explore the application of cutting edge computer vision technology to meet existing FMV PED shortfalls and address future capability gaps. For example, real-time georegistration services developed from computer-vision-based feature tracking, multiple-view geometry, and statistical methods allow the fusion of motion imagery with other georeferenced information sources - providing unparalleled situational awareness. We then describe how these motion imagery capabilities may be readily deployed in a dynamically integrated analytical environment;employing an extensible framework, leveraging scalable enterprise-wide infrastructure and following commercial best practices.
机译:在过去的十年中,国防部/情报部门(DoD / IC)内的动态影像功能取得了显着进步,试图满足运营挑战性环境中不断增长的数据收集,视频处理和分析需求。运动图像交易工具也随之发展,使分析团队能够有效利用数据,并在结构化全运动视频(FMV)处理开发和传播(PED)单元中跨多个阶段生成情报报告。但是现在操作要求正在发生巨大变化。运动图像数据的指数增长仍在继续,但为此,社区增加了多INT数据,与现有和新兴系统的互操作性,扩展的数据访问,非传统用户,协作,自动化以及对超出当前FMV的临时配置的支持PED细胞。为了摆脱传统系统的生命周期,我们着眼于技术应用和商业采用模型课程,它将迎接这些未来的情报,监视和侦察(ISR)挑战。在本文中,我们探索了尖端计算机视觉技术的应用,以解决现有的FMV PED的不足并解决未来的功能差距。例如,基于基于计算机视觉的特征跟踪,多视图几何和统计方法开发的实时地理注册服务允许将运动图像与其他地理参考信息源融合在一起-提供无与伦比的态势感知。然后,我们描述如何在动态集成的分析环境中轻松部署这些运动图像功能;如何使用可扩展框架,利用可伸缩的企业范围基础结构并遵循最佳商业实践。

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