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Face Recognition on Mobile Devices Based on Frames Selection

机译:基于帧选择的移动设备人脸识别

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The easy image capture process on a phone, the ability to move the camera, the non-intrusive characteristic that allows the authentication without interaction of the user, make the face a suitable biomet-ric trait to be used on mobile devices. During the continuous use of the mobile, it is possible to analyze the expression, to determine the gender and ethnic, or to recognize the user. In this paper we propose a robust algorithm for face recognition on mobile devices. First, the best frames of a face sequence are selected based on the face pose, blurness, eyes and mouth expression. Then, a unique feature vector for the best selected frames is obtained using a deep learning model. Finally, a SoftMax function is used for authenticate the user. The experimental evaluation conducted on the UMD-AA dataset shows the robustness of the proposal, that outperforms state-of-the-art methods.
机译:手机上轻松的图像捕获过程,移动相机的能力,无需用户交互即可进行身份验证的非侵入性特征,使人脸成为适合在移动设备上使用的生物特征。在连续使用移动设备的过程中,可以分析表情,确定性别和种族或识别用户。在本文中,我们提出了一种用于移动设备上人脸识别的鲁棒算法。首先,根据脸部姿势,模糊度,眼睛和嘴巴表情选择脸部序列的最佳帧。然后,使用深度学习模型获得最佳选择帧的唯一特征向量。最后,SoftMax函数用于验证用户。在UMD-AA数据集上进行的实验评估显示了该建议的鲁棒性,其性能优于最先进的方法。

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