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首页> 外文期刊>Journal of electronic imaging >Enhanced occlusion handling and multipeak redetection for long-term object tracking
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Enhanced occlusion handling and multipeak redetection for long-term object tracking

机译:增强的遮挡处理和多峰重检测功能,可长期跟踪目标

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Long-term tracking tasks remain challenging, especially in areas of occlusion. Herein, we propose an enhanced occlusion handling and multipeak redetection method for long-term object tracking. First, our appearance model is constructed based on two complementary cues. Each model is trained independently and combined by adaptive merging, and considers the reliability of each representation to provide a preliminary estimation. Then, we present an occlusion detection scheme relying on the response variation to activate a redetection module in case of track failure. Finally, we introduce an adaptive model update strategy using the most confident tracking predictions to retain reliable memories. The redetection module is designed based on the multipeak property of the merged response and the model is updated adaptively based on the reliability of each representation and the occlusion detection result, which allows the proposed method to deal with heavy occlusions effectively. Extensive experiments are conducted on two public benchmark datasets with 100 challenging sequences. The experimental results demonstrate that the proposed method performs favorably against 17 state-of-the-art trackers while running efficiently in real time. (C) 2018 SPIE and IS&T
机译:长期跟踪任务仍然具有挑战性,尤其是在遮挡区域。在此,我们提出了一种用于长期目标跟踪的增强遮挡处理和多峰重检测方法。首先,我们的外观模型是基于两个互补线索构建的。每个模型都经过独立训练并通过自适应合并进行组合,并考虑每个表示的可靠性以提供初步估计。然后,我们提出了一种基于响应变化的遮挡检测方案,以在发生轨道故障的情况下激活重新检测模块。最后,我们介绍一种自适应模型更新策略,该策略使用最可靠的跟踪预测来保留可靠的内存。基于合并响应的多峰特性设计了重检测模块,并根据每个表示的可靠性和遮挡检测结果对模型进行了自适应更新,从而使该方法能够有效地处理重遮挡。在两个具有100个具有挑战性的序列的公开基准数据集上进行了广泛的实验。实验结果表明,该方法在实时高效运行的同时,对17个最新的跟踪器具有良好的性能。 (C)2018 SPIE和IS&T

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