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Constrained Joint Cascade Regression Framework for Simultaneous Facial Action Unit Recognition and Facial Landmark Detection

机译:约束的联合级联回归框架,用于同时进行的面部动作单元识别和面部地标检测

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Cascade regression framework has been shown to be effective for facial landmark detection. It starts from an initial face shape and gradually predicts the face shape update from the local appearance features to generate the facial landmark locations in the next iteration until convergence. In this paper, we improve upon the cascade regression framework and propose the Constrained Joint Cascade Regression Framework (CJCRF) for simultaneous facial action unit recognition and facial landmark detection, which are two related face analysis tasks, but are seldomly exploited together. In particular, we first learn the relationships among facial action units and face shapes as a constraint. Then, in the proposed constrained joint cascade regression framework, with the help from the constraint, we iteratively update the facial landmark locations and the action unit activation probabilities until convergence. Experimental results demonstrate that the intertwined relationships of facial action units and face shapes boost the performances of both facial action unit recognition and facial landmark detection. The experimental results also demonstrate the effectiveness of the proposed method comparing to the state-of-the-art works.
机译:级联回归框架已被证明对于面部标志检测是有效的。它从初始脸部形状开始,并根据局部外观特征逐渐预测脸部形状更新,以在下一次迭代中生成脸部界标位置,直到收敛为止。在本文中,我们对级联回归框架进行了改进,并提出了用于同时进行面部动作单位识别和面部标志检测的约束联合级联回归框架(CJCRF),这是两个相关的面部分析任务,但很少一起使用。特别地,我们首先学习面部动作单元和面部形状之间的关系作为约束。然后,在提出的约束联合级联回归框架中,在约束的帮助下,我们迭代更新脸部界标位置和动作单元激活概率,直到收敛为止。实验结果表明,面部动作单元和面部形状之间的相互关系提高了面部动作单元识别和面部标志检测的性能。实验结果还证明了与现有技术相比,该方法的有效性。

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