Robust hand tracking using a simple color classification technique

M. Yuan, F. Farbiz, C. Manders, K. Tang
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引用次数: 27

Abstract

Skin color is a strong cue in vision-based human tracking. Skin detection has been widely used in various applications, such as face and hand tracking, people detection in the video databases. In this paper, we propose and develop an effective hand tracking method based on a simple color classification. This method includes two major procedures: training and tracking. In the training procedure, the user specifies a region on a hand to obtain the training data. Based on the skin-color distribution, the training data will be classified into several color clusters using randomized list data structure. In the hand tracking procedure, the hand will be segmented in real-time from the background using the randomized lists that have been trained in the training procedure. The proposed method has two advantages: (1) It is fast because the image segmentation algorithm is automatically performed on a small region surrounding the hand; and (2) It is robust under different lighting conditions because the lighting factor is not employed in our effective color classification. Several experiments have been conducted to validate the performance of the proposed method. This proposed method has good potential in many real applications, such as virtual reality or augmented reality systems.
鲁棒手跟踪使用简单的颜色分类技术
在基于视觉的人体跟踪中,肤色是一个很强的线索。皮肤检测已广泛应用于各种应用中,如面部和手部跟踪、视频数据库中的人物检测等。本文提出并开发了一种基于简单颜色分类的有效手部跟踪方法。该方法包括两个主要步骤:培训和跟踪。在训练过程中,用户在手上指定一个区域来获取训练数据。基于皮肤颜色分布,使用随机列表数据结构将训练数据分类到多个颜色簇中。在手部跟踪过程中,将使用在训练过程中训练过的随机列表从背景中实时分割手部。该方法具有两个优点:(1)图像分割算法在手部周围的小区域内自动进行,速度快;(2)由于我们的有效颜色分类中没有使用光照因素,因此在不同的光照条件下都具有鲁棒性。若干实验验证了所提方法的性能。该方法在虚拟现实或增强现实系统等实际应用中具有良好的应用潜力。
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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