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Color space selection for human skin detection using color-texture features and neural networks

机译:使用颜色纹理特征和神经网络选择用于人类皮肤的颜色空间选择

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Skin color is a robust cue in human skin detection. It has been widely used in various human-related image processing applications. Although many researches have been carried out for skin color detection, there is no consensus on which color space is the most appropriate for skin color detection because many researchers do not provide strict justification of their color space choice. In this paper, a comprehensive comparative study using the Multilayer Perceptron artificial neural network (MLP), which is a universal classifier, is carried out to evaluate the overall performance of different color-spaces for skin detection. It aims at determining the most optimal color space using color and color-texture features separately. The study has been carried out using images of different databases. The experimental results showed that the YIQ color space gives the highest separability between skin and non-skin pixels among the different color spaces tested using color features. Combining color and texture eliminates the differences between color spaces but leads to much more accurate and efficient skin detection.
机译:肤色是检测人体皮肤的有力提示。它已广泛用于各种与人类有关的图像处理应用程序中。尽管已经进行了许多关于皮肤颜色检测的研究,但是关于哪种颜色空间最适合皮肤颜色检测尚无共识,因为许多研究人员并未提供对其颜色空间选择的严格依据。在本文中,使用作为通用分类器的多层感知器人工神经网络(MLP)进行了全面的比较研究,以评估用于皮肤检测的不同颜色空间的整体性能。它旨在分别使用颜色和颜色纹理特征来确定最佳的颜色空间。这项研究是使用不同数据库的图像进行的。实验结果表明,在使用颜色功能测试的不同颜色空间中,YIQ颜色空间在皮肤像素和非皮肤像素之间提供了最高的可分离性。颜色和纹理的组合消除了颜色空间之间的差异,但导致皮肤检测更加准确和有效。

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