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Video stabilization with moving object detecting and tracking for aerial video surveillance

机译:通过移动物体检测和跟踪实现航空视频监控的视频稳定

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摘要

Aerial surveillance system provides a large amount of data compared with traditional surveillance system. But, it usually suffers from undesired motion of cameras, which presents new challenges. These challenges must be overcome before such video can be widely used. In this paper, we present a novel video stabilization and moving object detection system based on camera motion estimation. We use local feature extraction and matching to estimate global motion and we demonstrate that Scale Invariant Feature Transform (SIFT) keypoints are suitable for the stabilization task. After estimating the global camera motion parameters using affine transformation, we detect moving object by Kalman filtering. For motion smoothing, we use a median filter to retain the desired motion. Finally, motion compensation is carried out to obtain a stabilized video sequence. A number of aerial video examples demonstrate the effectiveness of our proposed system. We use the software Virtual Dub with the Deshaker-Plugin for test purposes. For objective evaluation, we use Interframe Transformation Fidelity for video stabilization tasks and Detection Ratio for moving object detection task.
机译:与传统的监视系统相比,空中监视系统可提供大量数据。但是,它通常遭受不希望的摄像机运动的困扰,这带来了新的挑战。在广泛使用此类视频之前,必须克服这些挑战。在本文中,我们提出了一种基于摄像机运动估计的新型视频稳定和运动物体检测系统。我们使用局部特征提取和匹配来估计全局运动,并且证明了尺度不变特征变换(SIFT)关键点适用于稳定任务。在使用仿射变换估计全局摄像机运动参数之后,我们通过卡尔曼滤波检测运动对象。对于运动平滑,我们使用中值滤波器来保留所需的运动。最后,进行运动补偿以获得稳定的视频序列。大量的航空视频示例说明了我们提出的系统的有效性。我们将带有Deshaker-Plugin的Virtual Dub软件用于测试目的。为了进行客观评估,我们将帧间变换保真度用于视频稳定任务,将检测率用于运动物体检测任务。

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