人体姿势从三叉相机图像

Shoichiro Iwasawa, J. Ohya, Kazuhiko Takahashi, T. Sakaguchi, S. Morishima, K. Ebihara
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引用次数: 28

摘要

本文提出了一种从三维图像中实时估计人体姿态的新方法。该方法对从三视图像中提取的人体轮廓进行上半身方向检测和启发式轮廓分析,从而定位出头部等代表性点。主要关节位置的估计是基于遗传算法的学习过程。然后通过评估三个视图的适当性,从两个视图中获得代表性点和关节的三维坐标。该方法在个人计算机上实现了实时运行。实验结果表明,该方法具有较高的估计精度和有效性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Human body postures from trinocular camera images
This paper proposes a new real-time method for estimating human postures in 3D from trinocular images. In this method, an upper body orientation detection and a heuristic contour analysis are performed on the human silhouettes extracted from the trinocular images so that representative points such as the top of the head can be located. The major joint positions are estimated based on a genetic algorithm-based learning procedure. 3D coordinates of the representative points and joints are then obtained from the two views by evaluating the appropriateness of the three views. The proposed method implemented on a personal computer runs in real-time. Experimental results show high estimation accuracies and the effectiveness of the view selection process.
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