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Real-time facial feature localization by combining space displacement neural networks

机译:结合空间位移神经网络的实时面部特征定位

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We present in this paper a new facial feature localizer. It uses a kind of auto-associative neural network trained to localize specific facial features (like eyes and mouth corners) in orientation-free face-images (i.e. images where faces are rotated in-plane and out-of-plane). To increase localization accuracy, two extensions are presented. The first one uses space displacement neural networks instead of classical, fully-connected networks. The second one combines several specialized networks trained to deal with each face orientation. A gating network is then used for combination. Finally, a two stage localizer is presented, which increases speed. Thorough evaluation is performed; including sensitivity to identity, noise and occlusions. The mean localization error (estimated on more than 4000 test images) is about 15% and the system can perform 40 images/s.
机译:我们在本文中提出了一种新的面部特征定位器。它使用一种经过训练的自动关联神经网络,可以将特定的面部特征(例如眼睛和嘴角)定位在无方向的面部图像(即面部在平面内和平面外旋转的图像)中进行定位。为了提高定位精度,提出了两个扩展。第一个使用空间位移神经网络代替经典的全连接网络。第二个则结合了几个专门的网络,这些网络经过训练后可以处理每个面部朝向。然后使用门控网络进行组合。最后,提出了一种两级定位器,它可以提高速度。进行彻底评估;包括对身份,噪音和遮挡的敏感度。平均定位误差(估计超过4000张测试图像)约为15%,系统每秒可以执行40张图像。

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