Level-set person segmentation and tracking with multi-region appearance models and top-down shape information

Esther Horbert, Konstantinos Rematas, B. Leibe
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引用次数: 40

Abstract

In this paper, we address the problem of segmentation-based tracking of multiple articulated persons. We propose two improvements to current level-set tracking formulations. The first is a localized appearance model that uses additional level-sets in order to enforce a hierarchical subdivision of the object shape into multiple connected regions with distinct appearance models. The second is a novel mechanism to include detailed object shape information in the form of a per-pixel figure/ground probability map obtained from an object detection process. Both contributions are seamlessly integrated into the level-set framework. Together, they considerably improve the accuracy of the tracked segmentations. We experimentally evaluate our proposed approach on two challenging sequences and demonstrate its good performance in practice.
基于多区域外观模型和自顶向下形状信息的水平集人分割与跟踪
在本文中,我们解决了基于分割的多个铰接人跟踪问题。我们对当前的水平集跟踪公式提出了两个改进。第一种是局部外观模型,它使用额外的水平集,以强制将对象形状分层细分为具有不同外观模型的多个连接区域。第二种是一种新机制,以从目标检测过程中获得的每像素图形/地面概率图的形式包含详细的目标形状信息。这两种贡献都无缝地集成到级别集框架中。总之,它们大大提高了跟踪分割的准确性。我们在两个具有挑战性的序列上对所提出的方法进行了实验评估,并在实践中证明了其良好的性能。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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