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AcFR: Active Face Recognition Using Convolutional Neural Networks

机译:AcFR:使用卷积神经网络的主动人脸识别

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We propose AcFR, an active face recognition system that employs a convolutional neural network and acts consistently with human behaviors in common face recognition scenarios. AcFR comprises two main components-a recognition module and a controller module. The recognition module uses a pre-trained VGG-Face net to extract facial image features along with a nearest neighbor identity recognition algorithm. Based on the results, the controller module can make three different decisions-greet a recognized individual, disregard an unknown individual, or acquire a different viewpoint from which to reassess the subject, all of which are natural reactions when people observe passers-by. Evaluated on the PIE dataset, our recognition module yields higher accuracy on images under closer angles to those saved in memory. The accuracy is viewdependent and it also provides evidence for the proper design of the controller module.
机译:我们提出了AcFR,这是一种主动的人脸识别系统,该系统采用卷积神经网络并在常见的人脸识别场景中与人类行为保持一致。 AcFR包括两个主要组件-识别模块和控制器模块。识别模块使用预训练的VGG-Face网络提取面部图像特征以及最近的邻居身份识别算法。基于结果,控制器模块可以做出三个不同的决定:与公认的人打招呼,无视未知的人或获取不同的观点来重新评估对象,所有这些都是人们观察路人时的自然反应。通过对PIE数据集进行评估,我们的识别模块可在与内存中保存的图像更近的角度下对图像提供更高的准确性。精度与视图有关,并且还为控制器模块的正确设计提供了证据。

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