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A Skin Detection Algorithm Based on Bayes Decision in the YCbCr Color Space

机译:一种基于贝叶斯颜色空间拜士决策的皮肤检测算法

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Skin color detection is a hot research of computer vision,pattern identification and human-computer interaction.Skin region is one of the most important features to detect the face and hand pictures.For detecting the skin images effectively,a skin color classification technique that employs Bayesian decision with color statistics data has been presented.In this paper,we have provided the description,comparison and evaluation results of popular methods for skin modeling and detection.A Bayesian approach to skin color classification was presented.The statistics of skin color distribution were obtained in YCbCr color space.Using the Bayes decision rule for minimum cot,the amount of false detection and false dismissal could be controlled by adjusting the threshold value.The results showed that this approach could effectively identify skin color pixels and provide good coverage of all human races,and this technique is capable of segmenting the hands and face quite effectively.The algorithm allows the flexibility of incorporating additional techniques to enhance the results.
机译:肤色检测是计算机视觉,图案识别和人机interaction.Skin区域的研究的热点是来检测面部和手pictures.For有效检测皮肤的图像,肤色的分类技术,其采用的最重要的特征之一颜色统计数据贝叶斯决策一直presented.In本文中,我们提供了肤色分布的描述,对皮肤的建模和detection.A贝叶斯方法对皮肤的颜色分类流行的方法比较和评价结果是presented.The统计数字在YCbCr色彩space.Using最低婴儿床贝叶斯决策规则获得,误检和漏诊的量可以通过调整价值。结果表明,该方法可以有效地识别皮肤颜色的像素,并提供所有的良好覆盖的阈值控制人类种族,而这种技术能够分割的手和脸非常effectively.The算法允许引入更多的技术以提高结果的灵活性。

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