手分割使用肤色和背景信息

Wei Wang, Jing Pan
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引用次数: 24

摘要

精确的手部分割是基于手势的人机交互的关键。基于肤色模型的手分割在肤色相似、光照不均匀的复杂背景下表现不佳。本文提出了一种基于自适应肤色模型和手周围背景信息的手部分割新方法。首先,我们的方法捕获手和背景的像素值,然后将其转换为YCbCr颜色空间。其次,提出了基于CbCr颜色空间的皮肤和背景高斯模型;最后,利用这些模型分别对整幅图像进行分割,然后求出交点。本文的主要贡献在于考虑了背景信息对图像进行反向分割,提高了分割性能。实验结果表明,该方法优于仅使用肤色模型的方法。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Hand segmentation using skin color and background information
Precise hand segmentation is crucial for gesture-based Human-Machine Interaction. Skin color based hand segmentation using skin color models shows poor performance in complex background where similar colors of the skin and non-uniform illumination exist. We propose a new method for hand segmentation by using an adaptive skin color model and the background information around the hand. Firstly, our method captures pixel values of the hand and the background then converts them into YCbCr color space. Secondly, skin and background Gaussian models based on the color space of CbCr are proposed. Lastly, these models are taken to segment the whole image respectively, and then required for the intersection. The main contribution of the paper is that the background information is taken into account to split image in reversed side to enhance the performance. Experimental results show that our method outperforms the method that uses the skin color model only.
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