基于深度学习的智能筛选机制

G. K. Jakir Hussain, K. C. Rithic, S. Shyam, M. Prithiviraj, Revathy Rajendran
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引用次数: 0

摘要

人脸识别作为一种生物识别技术被广泛应用于人的身份识别。生物特征认证包括生理特征和行为特征两类。在生理生物识别学中,人脸、虹膜和指纹被用来识别人。在行为生物计量学中,使用了它们的特征,即声音、DNA和笔迹。在使用面部识别时,可以使用基于Haar级联算法的深度学习先前训练的模型来识别个人。生物识别认证通常用于监视目的。但是,由于新冠肺炎疫情,各国人民都需要佩戴口罩。我们的项目使用深度学习和open cv来识别人,并通过迁移学习技术和卷积神经网络来识别他是否戴口罩。一个大型数据集,包括戴口罩和不戴口罩的人,被用作训练模型。我们的项目在训练和测试阶段能够达到96.8%的准确率。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Deep Learning Based Intelligent Screening Mechanism
Facial recognition is widely used for identification of people as one of the biometric authentications. Biometric authentication consists of two types physiological and behavioral features. In physiological biometrics, faces, iris, and fingerprints are used for identifying the person. In behavioral biometrics, their characteristic features namely voice, DNA and hand writing is used. While using facial recognition, an individual can be identified using the previously trained model using deep learning based on the Haar cascade algorithm. Biometric authentication has been generally used for surveillance purposes. However, due to the COVID 19 pandemic, people of each nation are in need to wear face masks for their safety. Our project uses deep learning and open cv to recognize the person and to identify whether he wears a face mask or not by using transfer learning techniques and convolution neural network. One large dataset of people with mask and people without a mask was used as a training model. Our project was able to achieve an accuracy of 96.8% during the training and testing phase.
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