A Comparative Study of Embedded Learning Models IoT-based for real time Mask Detection

Mohamed Amine Meddaoui, M. Erritali, Françoise Sailhan
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Abstract

Following the outbreak of the coronavirus, many preventive measures are implemented to slow down the transmission of the virus. Amongst others, facemask detection is a key innovative technology that allows the identificationof the number of individuals wearing face masks. In this regard, this paperprovides a comparative study of several machine learning and deep learningalgorithms (e.g., SVM, RNN, Mask-RCNN, LSTM, CNN, Auto-Encoder,GAN, U-Net GAN) that support mask detection.
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基于嵌入式学习模型的物联网实时掩码检测比较研究
冠状病毒爆发后,为减缓病毒传播,采取了许多预防措施。其中,口罩检测是一项关键的创新技术,它可以识别佩戴口罩的人数。为此,本文对支持口罩检测的几种机器学习和深度学习算法(如 SVM、RNN、Mask-RCNN、LSTM、CNN、Auto-Encoder、GAN、U-Net GAN)进行了比较研究。
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