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An Object Tracking Method by Concatenating Structural SVM and Correlation Filter

机译:结合结构支持向量机和相关滤波器的目标跟踪方法

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Structural SVM trackers and correlation filter trackers have demonstrated dominant performance in recent object tracking benchmarks. However, structural SVM trackers naturally suffer from shortage of samples and low speed, and time-consuming adaption is need to relieve the correlation filter trackers from boundary effects. Thus, we design a jointed tracker by concatenating a high-speed SSVM method-DSLT and a multi feature CF method-STAPLE to realize advantage complementation. We show that the tracking precision and robustness can be improve by a large margin comparing to either single tracker with little sacrifice of speed.
机译:在最近的对象跟踪基准测试中,结构化SVM跟踪器和相关过滤器跟踪器已显示出主要性能。但是,结构化SVM跟踪器自然会遭受样本不足和速度慢的问题,需要耗时的调整才能减轻相关滤波器跟踪器的边界影响。因此,我们通过结合高速SSVM方法-DSLT和多功能CF方法-STAPLE设计联合跟踪器,以实现优势互补。我们表明,与任何单个跟踪器相比,在不牺牲速度的情况下,跟踪精度和鲁棒性都可以得到很大的提高。

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