Classification of Mask Use during a Pandemic using the CNN Algorithm with Voice Notifications

Ryan Gusti Nugraha, Ahmad Fauzi, Anis Fitri Nur Masruriyah, B. Priyatna, Firman Nurdiansyah
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Abstract

Various technologies were created to prevent the threat of the Covid-19 virus, which has spread in many countries including Indonesia. One of them is the use of masks in public places. With this in mind, this study aims to detect facial objects. Based on the Kaggle website, the object used for research is a human face in 2D form. This research consists of two stages, namely creating and testing a model. The model is a system that detects and classifies faces with masks, inappropriate masks and without masks. Then the model is tested for its accuracy. The result of thirty trials, the model has an accuracy of 99% which is tested using a webcam in real time. This model has a sound indicator which is a notification to faces using the Convolutional Neural Network (CNN) algorithm method.
使用带有语音通知的CNN算法对大流行期间口罩使用情况进行分类
为防止新冠病毒的威胁,开发了各种技术。新冠病毒已在包括印度尼西亚在内的许多国家蔓延。其中之一是在公共场所使用口罩。考虑到这一点,本研究旨在检测面部物体。基于Kaggle网站,用于研究的对象是2D形式的人脸。本研究分为模型创建和模型测试两个阶段。该模型是一个检测和分类带口罩、不合适口罩和不带口罩的人脸的系统。然后对模型的精度进行了验证。经过30次试验,该模型的准确率达到99%,并通过网络摄像头进行了实时测试。该模型采用卷积神经网络(Convolutional Neural Network, CNN)算法对人脸进行通知。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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