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Video-Based Face Alignment With Local Motion Modeling

机译:基于视频的人脸对齐与局部运动建模

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Face alignment remains difficult under uncontrolled conditions due to the many variations that may considerably impact facial appearance. Recently, video-based approaches have been proposed, which take advantage of temporal coherence to improve robustness. These new approaches suffer from limited temporal connectivity. We show that early, direct pixel connectivity enables the detection of local motion patterns and the learning of a hierarchy of motion features. We integrate local motion to the two predominant models in the literature, coordinate regression networks and heatmap regression networks, and combine it with late connectivity based on recurrent neural networks. The experimental results on two datasets, 300VW and SNaP-2DFe, show that local motion improves video-based face alignment and is complementary to late temporal information. Despite the simplicity of the proposed architectures, our best model provides competitive performance with more complex models from the literature.
机译:由于许多变化可能会严重影响面部外观,因此在不受控制的条件下,面部对齐仍然很困难。近来,已经提出了基于视频的方法,其利用时间相干性来提高鲁棒性。这些新方法的时间连接性有限。我们表明,早期的直接像素连通性可以检测局部运动模式并学习运动特征的层次结构。我们将局部运动集成到文献中的两个主要模型中,协调回归网络和热图回归网络,并将其与基于递归神经网络的后期连接性相结合。在两个数据集300VW和SNaP-2DFe上的实验结果表明,局部运动可以改善基于视频的面部对齐方式,并且可以补充后期的时空信息。尽管所建议的体系结构很简单,但我们最好的模型却提供了具有竞争力的性能,而文献中的模型更为复杂。

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