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Synergistic face detection and pose estimation with energy-based models

机译:基于能量模型的协同人脸检测和姿势估计

摘要

A method for human face detection that detects faces independently of their particular poses and simultaneously estimates those poses. Our method exhibits an immunity to variations in skin color, eyeglasses, facial hair, lighting, scale and facial expressions, and others. In operation, we train a convolutional neural network to map face images to points on a face manifold, and non-face images to points far away from that manifold, wherein that manifold is parameterized by facial pose. Conceptually, we view a pose parameter as a latent variable, which may be inferred through an energy-minimization process. To train systems based upon our inventive method, we derive a new type of discriminative loss function that is tailored to such detection tasks. Our method enables a multi-view detector that can detect faces in a variety of poses, for example, looking left or right (yaw axis), up or down (pitch axis), or tilting left or right (roll axis). Systems employing our method are highly-reliable, run at near real time (5 frames per second on conventional hardware), and is robust against variations in yaw (±90°), roll(±45°), and pitch(±60°).
机译:一种用于人脸检测的方法,该方法可独立于特定姿态来检测面部并同时估计这些姿态。我们的方法对肤色,眼镜,面部毛发,照明,体重和面部表情等的变化具有免疫力。在操作中,我们训练一个卷积神经网络,将面部图像映射到面部流形上的点,将非面部图像映射到远离该流形的点,其中该流形由面部姿势参数化。从概念上讲,我们将姿势参数视为潜在变量,可以通过能量最小化过程来推断。为了基于我们的发明方法训练系统,我们推导了一种针对此类检测任务的新型判别损失函数。我们的方法启用了一个多视图检测器,该检测器可以检测各种姿势的面部,例如,向左或向右(偏航轴),向上或向下(俯仰轴)或向左或向右倾斜(横滚轴)。采用我们方法的系统非常可靠,几乎实时(在传统硬件上每秒运行5帧),并且对于偏航(±90°),横滚(±45°)和俯仰(±60°)的变化具有强大的抵抗力)。

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