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首页> 外文期刊>International Journal of Advanced Robotic Systems >Improved kernelized correlation filter algorithm and application in the optoelectronic tracking system
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Improved kernelized correlation filter algorithm and application in the optoelectronic tracking system

机译:改进的核化相关滤波器算法及其在光电跟踪系统中的应用

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In order to improve the tracking accuracy and real-time performance of the optoelectronic tracking system, an improved kernelized correlation filter approach is developed to obtain precise tracking of a maneuvering object. The proposed strategy contains merits of adaptive threshold approach, kernelized correlation filter method, and Kalman filter algorithm. The adaptive threshold approach can choose the suitable threshold in accordance with the size of the target in the image to improve the tracking performance of the kernelized correlation filter method. When the change between previous position and current position is larger than the distance threshold, Kalman filter algorithm is used to predict the target position for tracking. The tracking accuracy of the proposed algorithm is improved by updating the prediction of the target position with a trusted algorithm. The experimental results on comparison with some state-of-the-art trackers, such as kernelized correlation filter; Tracking-Learning-Detection; scale adaptive with multiple features; minimum output sum of squared error; and dual correlation filter, demonstrate that the proposed approach has the effectiveness of tracking accuracy and real-time performance in tracking the maneuvering object.
机译:为了提高光电跟踪系统的跟踪精度和实时性能,开发了一种改进的核相关滤波器方法来获得对机动物体的精确跟踪。所提出的策略具有自适应阈值法,核化相关滤波法和卡尔曼滤波算法的优点。自适应阈值方法可以根据图像中目标的大小选择合适的阈值,以提高核化相关滤波方法的跟踪性能。当先前位置和当前位置之间的变化大于距离阈值时,将使用卡尔曼滤波算法预测目标位置以进行跟踪。通过使用可信算法更新目标位置的预测,可以提高所提出算法的跟踪精度。与一些最新的跟踪器(例如核化相关滤波器)进行比较的实验结果;跟踪学习检测;具有多种功能的规模自适应;最小输出平方误差之和;以及双相关滤波器,证明了该方法在跟踪机动目标方面具有跟踪精度和实时性能的有效性。

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