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An Exploration of Target-Conditioned Segmentation Methods for Visual Object Trackers

机译:视觉对象跟踪器目标条件分割方法的探索

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Visual object tracking is the problem of predicting a target object's state in a video. Generally, bounding-boxes have been used to represent states, and a surge of effort has been spent by the community to produce efficient causal algorithms capable of locating targets with such representations. As the field is moving towards binary segmentation masks to define objects more precisely, in this paper we propose to extensively explore target-conditioned segmentation methods available in the computer vision community, in order to transform any bounding-box tracker into a segmentation tracker. Our analysis shows that such methods allow trackers to compete with recently proposed segmentation trackers, while performing quasi real-time.
机译:Visual对象跟踪是预测视频中目标对象状态的问题。 通常,边界盒已被用于代表各国,并且社区已经花费了努力的激增,以产生能够用这些表示定位目标的有效因果算法。 由于该领域正在向二进制分割掩模移动以更精确地定义对象,因此在本文中,我们建议广泛探索计算机视觉社区中可用的目标条件分割方法,以便将任何边界框跟踪器转换为分段跟踪器。 我们的分析表明,这些方法允许跟踪器与最近提出的分段跟踪器竞争,同时执行准实时。

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