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Low-Complexity and Reliable Moving Objects Detection and Tracking for Aerial Video Surveillance with Small UAVS

机译:小型UAVS用于航空视频监控的低复杂度和可靠的运动对象检测与跟踪

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Moving objects detection and tracking is the first and enabling step for many high-level UAV surveillance tasks, including cooperative UAV path planning, navigation control, and automated information analysis. In this work, we develop a low-complexity and reliable moving object detection algorithm by exploring the ideas of uncertainty analysis and spatiotemporal activity clustering. More specifically, the authors develop a fast and efficient algorithm to estimate the global vehicle-camera motion. Image regions (blocks) with local motion was detected using statistical hypothesis testing. Using spatiotemporal clustering, the authors group these moving blocks into moving objects with physical meanings, such as moving vehicles or persons. Our extensive experimental results demonstrate the efficiency of the proposed algorithm.
机译:运动对象检测和跟踪是许多高级无人机监视任务的第一步,也是启用步骤,其中包括协同无人机路径规划,导航控制和自动化信息分析。在这项工作中,我们通过探索不确定性分析和时空活动聚类的思想,开发了一种低复杂度和可靠的运动物体检测算法。更具体地说,这组作者开发了一种快速有效的算法来估计全球车辆摄像机运动。使用统计假设检验检测具有局部运动的图像区域(块)。通过使用时空聚类,作者将这些移动块分组为具有物理意义的移动对象,例如移动的车辆或人员。我们广泛的实验结果证明了该算法的有效性。

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