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Adaptive background generation for automatic detection of initial object region in multiple color-filter aperture camera-based surveillance system

机译:自适应背景生成,用于在基于多个滤色镜孔径摄像头的监视系统中自动检测初始目标区域

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In this paper, we present an adaptive background generation method for automatic selection of initial object regions, which realizes simultaneous object detection and depth estimation using multiple color-filter aperture (MCA) camera. Since the conventional background generation method does not fit the depth estimation using the MCA camera, we propose a novel color-based background generation method which can reduce interference in the object region for stable depth estimation. For efficient estimation of color shifting vectors in the extracted object region, a simplified elastic registration (ER) algorithm is used. The proposed simplified method is essential factor to realize realtime depth estimation and tracking, which is the primary condition for consumer applications. Finally, the object distance is determined by using the relationship between the pre-specified distance transformation function and the estimated shifting vectors of the corresponding object region. Although traditional depth estimation methods generally use dual cameras for stereo vision, the proposed method uses only a single camera for both object detection and depth estimation. Experimental results show that the proposed MCA camera-based object detection system can be used in a variety of consumer surveillance systems such as intelligent transport systems, 3D-based cameras and advanced safety vehicles.
机译:在本文中,我们提出了一种自动选择初始目标区域的自适应背景生成方法,该方法使用多个滤色镜孔径(MCA)相机实现了同时目标检测和深度估计。由于传统的背景生成方法不适合使用MCA相机进行深度估计,因此我们提出了一种基于颜色的新颖背景生成方法,该方法可以减少对象区域中的干扰,从而实现稳定的深度估计。为了有效地估计提取的目标区域中的色移矢量,使用了简化的弹性配准(ER)算法。所提出的简化方法是实现实时深度估计和跟踪的必要因素,这是消费者应用的主要条件。最后,通过使用预定距离变换函数和相应的物体区域的估计的偏移矢量之间的关系来确定物体距离。尽管传统的深度估计方法通常将双摄像头用于立体视觉,但建议的方法仅将单个摄像头用于对象检测和深度估计。实验结果表明,所提出的基于MCA摄像机的物体检测系统可用于各种消费者监视系统,例如智能运输系统,基于3D的摄像​​机和高级安全车辆。

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