Autonomous target detection using segmented correlation method and tracking via mean shift algorithm

A. Munawar, A. Qaisar, A. Ejaz, K. Kamal
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Abstract

An autonomous, efficient and effective object tracking algorithm was required to autonomously identify and track incoming targets. Then controlling a pan-tilt mounted with the sensing camera to accommodate the target within the camera's field of view and controlling a weapon mounted on the second mechanical pan tilt to lock the target and follow it efficiently and accurately. A hybrid algorithm is derived that is a combination of an intruder identification and localization technique derived from the normalized cross correlation method. Spatial and dimensional parameters of the target are autonomously retrieved from segmented correlation method, which are then used as the input parameters for the mean shift algorithm.
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基于分割相关法的自主目标检测和均值漂移跟踪算法
需要一种自主、高效、有效的目标跟踪算法来自主识别和跟踪来袭目标。然后控制安装有传感摄像机的平移装置使目标进入摄像机的视野,控制安装在第二个机械平移装置上的武器锁定目标并有效准确地跟踪目标。提出了一种混合算法,该算法结合了归一化互相关方法的入侵者识别和定位技术。利用分割相关法自动提取目标的空间和维度参数,并将其作为均值漂移算法的输入参数。
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