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Occlusion Resistant Face Detection and Recognition System

机译:闭塞式面部检测和识别系统

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The application of face recognition has become more and more popular with the development of deep learning algorithms and the calculation of hardware chips for accelerating neural networks. In face recognition, the recognition accuracy is easily affected by light, distance and occlusion. However, the occlusion is the most difficult issue to deal with. This work presents a convolutional neural network which was trained to improve the accuracy of face detection with the ability to capture facial features. The proposed method overcomes the situation when the face accompany with occlusion. All of the face regions and facial landmark are calculated via the face detection network for the inputted image. The face is then aligned by facial landmark and input into the face recognition network for identification. The experimental results of accuracy could reach 96.15% and 88.46% with the occlusion ration 25% and 50%, respectively. The proposed system successfully improves the face recognition accuracy while the face is occluded.
机译:人脸识别的应用变得越来越受到深入学习算法的发展和用于加速神经网络的硬件芯片的计算。在人脸识别中,识别精度容易受光,距离和闭塞的影响。但是,闭塞是处理最困难的问题。这项工作提出了一种卷积神经网络,训练,以提高面部检测的准确性,以捕获面部特征的能力。所提出的方法克服了面部伴随闭塞的情况。所有面部区域和面部地标都通过面部检测网络计算输入的图像。然后通过面部地标对齐并输入面部识别网络以进行识别。精度的实验结果可分别达到96.15%和88.46%,闭塞式比例分别为25%和50%。当脸部被遮挡时,所提出的系统成功提高了面部识别准确性。

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