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Estimating in-plane rotation angle for face images from multi-poses

机译:估计多姿态人脸图像的平面内旋转角度

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Classical face detection algorithm works on only near frontal faces. Extending it to other poses and in-plane rotated faces require separately trained classifiers which increases both the training and processing time. We solve this instead by developing a reference model that is capable of detecting upright faces in various poses. Then a probabilistic framework is used to estimate occurrence of in-plane rotated faces. Experimental results showed that the proposed approach can achieve face detection accuracy comparable to state-of-the-art approaches but returns more accurate in-plane rotation angle estimation and is much faster. Unlike other approaches, the proposed method is easy to train, requiring only a small number of images and only one manually labeled face image.
机译:经典的人脸检测算法仅适用于正面的人脸。将其扩展到其他姿势和平面内旋转面部需要单独训练的分类器,这会增加训练和处理时间。我们通过开发一个能够检测各种姿势的直立面部的参考模型来解决此问题。然后,使用概率框架来估计平面内旋转面的出现。实验结果表明,所提出的方法可以实现与最新方法相当的人脸检测精度,但是返回的面内旋转角估计更准确,并且速度更快。与其他方法不同,该方法易于训练,仅需要少量图像和一个手动标记的面部图像。

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