Marker-less Stereo-Vision Human Motion Tracking Using Hybrid Filter in Unconstrained Environment

B. Chan, K. Lim, Lenin Gopal, A. Gopalai, W.C. Chia, W. J. Chew
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引用次数: 3

Abstract

Stereo-vision technology has shown its advantages to overcome the occlusion and realistic information. However, marker-less human motion detection and tracking in the unconstrained environment were led to the difficulty of features extraction. In this paper, we proposed a hybrid technique of Gaussian and median filter to improve the shadow and sudden change of the illumination problems. The skeleton model of the detected human was constructed using the sequential mathematical morphology. Based on the results, the skeleton model produced was not affected by the shadow and the illumination issue. Proposed approach and the normalized filter approach produces up to 86% and 71% of the average accuracy tracking respectively in the real-time tracking. Hence, the proposed approach could improve the performance of the human detection in the unconstrained environment.
无约束环境下基于混合滤波的无标记立体视觉人体运动跟踪
立体视觉技术在克服遮挡和真实信息方面的优势已经显现出来。然而,在无约束环境下,无标记的人体运动检测和跟踪导致特征提取困难。本文提出了一种高斯滤波和中值滤波的混合技术,以改善阴影和光照突变的问题。利用序列数学形态学建立被检测人的骨骼模型。根据结果,生成的骨架模型不受阴影和光照问题的影响。在实时跟踪中,该方法和归一化滤波方法的跟踪精度分别达到平均跟踪精度的86%和71%。因此,该方法可以提高人类在无约束环境下的检测性能。
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