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Extra Facial Landmark Localization via Global Shape Reconstruction

机译:通过全局形状重构实现面部额外地标定位

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摘要

Localizing facial landmarks is a popular topic in the field of face analysis. However, problems arose in practical applications such as handling pose variations and partial occlusions while maintaining moderate training model size and computational efficiency still challenges current solutions. In this paper, we present a global shape reconstruction method for locating extra facial landmarks comparing to facial landmarks used in the training phase. In the proposed method, the reduced configuration of facial landmarks is first decomposed into corresponding sparse coefficients. Then explicit face shape correlations are exploited to regress between sparse coefficients of different facial landmark configurations. Finally extra facial landmarks are reconstructed by combining the pretrained shape dictionary and the approximation of sparse coefficients. By applying the proposed method, both the training time and the model size of a class of methods which stack local evidences as an appearance descriptor can be scaled down with only a minor compromise in detection accuracy. Extensive experiments prove that the proposed method is feasible and is able to reconstruct extra facial landmarks even under very asymmetrical face poses.
机译:在人脸分析领域中,将人脸标志本地化是一个热门话题。然而,在实际应用中出现问题,例如在保持适度训练模型大小和计算效率的同时处理姿势变化和部分遮挡仍然挑战当前的解决方案。在本文中,我们提出了一种全局形状重构方法,用于与训练阶段使用的面部标志相比来定位额外的面部标志。在所提出的方法中,首先将面部地标的减少的配置分解为相应的稀疏系数。然后,利用显式的面部形状相关性在不同面部界标配置的稀疏系数之间进行回归。最后,通过结合预训练的形状字典和稀疏系数的近似值,可以重建额外的面部标志。通过应用所提出的方法,可以将训练时间和将局部证据堆叠为外观描述符的一类方法的模型大小进行缩小,而对检测精度的影响很小。大量实验证明,该方法是可行的,并且即使在非常不对称的面部姿势下也能够重建额外的面部标志。

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