Tracking hybrid 2D-3D human models from multiple views

Eng-Jon Ong, S. Gong
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引用次数: 31

Abstract

A novel framework is proposed under which robust matching and tracking of a 3D skeleton model of a human body from multiple views can be performed We propose a method for measuring the ambiguity of 2D measurements provided by each view. The ambiguity measurement is then used for selecting the best view for the most accurate match and tracking. A hybrid 2D-3D representation is chosen for modelling human body poses. The hybrid model is learnt using hierarchical principal component analysis. The CONDENSATION algorithm is used to robustly track and match 3D skeleton models in individual views.
从多个视图跟踪混合2D-3D人体模型
提出了一种新的框架,在该框架下,可以从多个视图对人体的三维骨骼模型进行鲁棒匹配和跟踪。我们提出了一种测量每个视图提供的二维测量的模糊度的方法。然后使用模糊度测量来选择最佳视图以进行最精确的匹配和跟踪。选择混合2D-3D表示来建模人体姿势。采用层次主成分分析法学习混合模型。采用冷凝算法对单个视图中的三维骨架模型进行鲁棒跟踪和匹配。
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