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MUlti-Store Tracker (MUSTer): A cognitive psychology inspired approach to object tracking

机译:多店跟踪器(MUTER):认知心理学启发了对象跟踪的方法

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Variations in the appearance of a tracked object, such as changes in geometry/photometry, camera viewpoint, illumination, or partial occlusion, pose a major challenge to object tracking. Here, we adopt cognitive psychology principles to design a flexible representation that can adapt to changes in object appearance during tracking. Inspired by the well-known Atkinson-Shiffrin Memory Model, we propose MUlti-Store Tracker (MUSTer), a dual-component approach consisting of short- and long-term memory stores to process target appearance memories. A powerful and efficient Integrated Correlation Filter (ICF) is employed in the short-term store for short-term tracking. The integrated long-term component, which is based on keypoint matching-tracking and RANSAC estimation, can interact with the long-term memory and provide additional information for output control. MUSTer was extensively evaluated on the CVPR2013 Online Object Tracking Benchmark (OOTB) and ALOV++ datasets. The experimental results demonstrated the superior performance of MUSTer in comparison with other state-of-art trackers.
机译:追踪对象的外观的变化,例如几何/光度测量,相机视点,照明或部分闭塞的变化,对目标跟踪构成了重大挑战。在这里,我们采用认知心理学原理来设计一种灵活的表示,可以在跟踪期间适应对象外观的变化。灵感来自于众所周知的Atkinson-Shiffrin内存模型,我们提出了多店跟踪器(MUTER),一种双组件方法,包括短期和长期记忆商店来处理目标外观存储器。在短期存储中采用强大且有效的集成相关滤波器(ICF)以进行短期储存。基于Keypoint匹配跟踪和Ransac估计的集成长期组件可以与长期存储器进行交互,并为输出控制提供其他信息。在CVPR2013在线对象跟踪基准测试基准(OOTB)和Alov ++数据集中广泛评估集合。与其他最先进的跟踪器相比,实验结果表明了集合的卓越性能。

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