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3D face detection based on salient features extraction and skin colour detection using data mining

机译:基于显着特征提取的3D人脸检测和使用数据挖掘的肤色检测

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摘要

Face detection has an essential role in many applications. In this paper, we propose an efficient and robust method for face detection on a 3D point cloud represented by a weighted graph. This method classifies graph vertices as skin and non-skin regions based on a data mining predictive model. Then, the saliency degree of vertices is computed to identify the possible candidate face features. Finally, the matching between non-skin regions representing eyes, mouth and eyebrows and salient regions is done by detecting collisions between polytopes, representing these two regions. This method extracts faces from situations where pose variation and change of expressions can be found. The robustness is showed through different experimental results. Moreover, we study the stability of our method according to noise. Furthermore, we show that our method deals with 2D images.
机译:人脸检测在许多应用中都起着至关重要的作用。在本文中,我们提出了一种有效且鲁棒的方法,用于以加权图表示的3D点云上的人脸检测。该方法基于数​​据挖掘预测模型将图顶点分为皮肤区域和非皮肤区域。然后,计算顶点的显着程度以识别可能的候选面部特征。最后,通过检测代表这两个区域的多面体之间的碰撞来完成代表眼睛,嘴巴和眉毛的非皮肤区域与显着区域之间的匹配。此方法从可以发现姿势变化和表情变化的情况中提取脸部。通过不同的实验结果表明了其鲁棒性。此外,我们根据噪声研究了方法的稳定性。此外,我们证明了我们的方法处理2D图像。

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