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Super-Resolution Imaging Applied to Moving Targets in High Dynamic Scenes

机译:超分辨率成像应用于高动态场景中的移动目标

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In modern tracking systems the ability to obtain high quality, high resolution appearance of the tracked target is often highly desirable. However, the reality of operational deployment often means that imaging systems deployed for this task suffer from limitations reducing effective image quality. These limitations can be attributed to a range of causes such as low quality video sensors, system noise, high target dynamics and other environmental noise factors. Despite the advantages of the super-resolution techniques the problem of handling complex motion still remains a challenging task for the effective super-resolution implementation. The computational complexity and large memory requirements required for the implementation of super-resolution imaging largely restrict the usage of these techniques in real-time hardware implementations. In order to improve visual quality of the tracked target and overcome these limitations, we propose a simple yet effective solution that integrates a super-resolution imaging approach based on combination of the Sum of the Absolut Differences (SAD) and gradient-descent motion estimation techniques into a novel tracking approach. In addition, the proposed approach demonstrates robustness in improved target appearance modeling that assists the overall tracking system. The presented results demonstrate this significant improvement in visual target representation whilst tracking over high dynamic scenes. The implementation simplicity of the proposed approach makes it an attractive solution for realization on low power hardware. Such a system can be deployed on small unmanned aerial vehicles (UAV) or other hardware where size, weight and power (SWaP) is of a particular concern.
机译:在现代追踪系统中,能够获得高质量,高分辨率的跟踪目标的外观通常是非常理想的。然而,操作部署的现实通常意味着部署的成像系统为此任务而遭受了降低有效图像质量的限制。这些限制可以归因于一系列原因,例如低质量的视频传感器,系统噪声,高目标动力和其他环境噪声因子。尽管超分辨率技术的优点,但是处理复杂运动的问题仍然是有效超分辨率实现的具有挑战性的任务。超分辨率成像实现所需的计算复杂性和大的内存要求在很大程度上限制了实时硬件实现中这些技术的使用。为了提高跟踪目标的视觉质量并克服这些限制,我们提出了一种简单而有效的解决方案,该解决方案集成了超分辨率成像方法,基于Absolut差异(SAD)和梯度 - 下降运动估计技术的总和进入一种新颖的跟踪方法。此外,所提出的方法表明了改进的目标外观建模中的鲁棒性,帮助整体跟踪系统。呈现的结果表明,在跟踪高动态场景时,视觉目标表示的显着改进。所提出的方法的实施简单性使其成为对低功耗硬件实现的有吸引力的解决方案。这种系统可以部署在小无人驾驶飞行器(UAV)或其他硬件上,其中尺寸,重量和功率(交换)是特定的问题。

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