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Unknown object tracking in 360-degree camera images

机译:360度摄像机图像中的未知对象跟踪

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In this paper, a method for unknown object tracking in output images from 360-degree cameras called Modified Training-Learning-Detection (MTLD) is presented. The proposed method is based on the recently introduced Training-Learning-Detection (TLD) scheme in the literature. The flaws of the TLD approach have been detected and significant modifications are proposed to enhance and to elaborate the scheme. Unlike TLD, MTLD is capable of detecting the unknown objects of interest in 360-degree images. According to the experimental results, the proposed method significantly outperforms the TLD method in terms of detection rate and implementation cost.
机译:在本文中,提出了一种在360度摄像机的输出图像中进行未知对象跟踪的方法,称为改进训练学习检测(MTLD)。所提出的方法是基于文献中最近引入的训练-学习-检测(TLD)方案。已经检测到TLD方法的缺陷,并提出了重大修改以增强和完善该方案。与TLD不同,MTLD能够检测360度图像中感兴趣的未知对象。根据实验结果,该方法在检测率和实现成本上均明显优于TLD方法。

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