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An improved target tracking algorithm based on spatio-temporal context under occlusions

机译:基于闭塞下的时空上下文的改进目标跟踪算法

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摘要

Target tracking is a popular but challenging problem in computer vision field. Due to many aggravating factors such as position transformation, illumination, occlusion, it is difficult to achieve robust target tracking. According to the above constraints, an improved target tracking algorithm based on spatio-temporal context (STC) under occlusions is proposed. On the basis of STC, the proposed method introduces a novel mechanism for dealing with occlusion, the scale update, and the learning rate update to reduce the error update of the model and restrain error accumulation. As a consequence, the tracking performance can be improved efficiently. Extensive experimental results show that our algorithm outperforms the original STC algorithm and some other state-of-the-art algorithms.
机译:目标跟踪是计算机视觉领域的流行但挑战性问题。 由于许多加重因子,如位置转换,照明,闭塞,难以实现稳健的目标跟踪。 根据上述约束,提出了一种基于闭塞下的时空上下文(STC)的改进的目标跟踪算法。 在STC的基础上,所提出的方法引入了一种用于处理遮挡,比例更新和学习速率更新的新机制,以减少模型的错误更新并抑制误差累积。 结果,可以有效地提高跟踪性能。 广泛的实验结果表明,我们的算法优于原始的STC算法和其他一些最先进的算法。

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