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A novel approach to nose-tip and eye corners detection using H-K curvature analysis in case of 3D images

机译:用H-K曲率分析在3D图像的情况下使用H-K曲率分析进行新的鼻尖和眼角检测方法

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In this paper we present a novel method that combines a HK curvature-based approach for three-dimensional (3D) face detection in different poses (X-axis, Y-axis and Z-axis). Salient face features, such as the eyes and nose, are detected through an analysis of the curvature of the entire facial surface. All the experiments have been performed on the FRAV3D Database. After applying the proposed algorithm to the 3D facial surface we have obtained considerably good results i.e. on 752 3D face images our method detected the eye corners for 543 face images, thus giving a 72.20% of eye corners detection and 743 face images for nose-tip detection thus giving a 98.80% of good nose tip localization.
机译:在本文中,我们介绍了一种新的方法,该方法将基于HK曲率的基于三维(3D)面部检测的方法相结合(X轴,Y轴和Z轴)。通过分析整个面部表面的曲率来检测突出面特征,例如眼睛和鼻子。所有实验都已在FRAV3D数据库上执行。在将所提出的算法应用于3D面部表面之后,我们已经获得了相当良好的效果,即在752 3D面部图像上,我们的方法检测到543面部图像的眼角,从而给出7220%的眼角检测和743个面部图像用于鼻尖因此,检测得到98.80%的好鼻尖定位。

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