RANCANG BANGUN APLIKASI NEW NORMAL COVID-19 DETEKSI PENGGUNAAN MASKER MENGGUNAKAN HAAR CASCADE CLASSIFIER

A. Saputra, Ahmadi Ahmadi, A. Lestari
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引用次数: 1

Abstract

During the COVID-19 pandemic, when in public places, it is required to apply the 4M health protocol, namely wearing masks, washing hands, maintaining distance, and avoiding crowds. In its implementation, there are officers who always maintain and remind people not to violate health protocols. Like remembering to wear a mask. The mask detection application is made as a computerized surveillance system that can store images of violations of the use of masks and provide warning sounds. Observations, discussions and literature studies are sources of data in this empirical research. Using Python as a programming language assisted with OpenCV for image processing. After passing through the 4 stages of Waterfall, namely Analysis, Design, Manufacturing and Development and Testing, an application is produced where the Raspberry Pi is a processing tool and images are captured from the camera module with a resolution of 1080x1024 px. This application can detect the use of masks with an accuracy of 90.5% using the Machine Learning Haar Cascade Classifier method. Where the condition of the face is a maximum of 30 degrees turned to the side and looked up
在新冠肺炎大流行期间,在公共场所,要求遵守4M卫生协议,即戴口罩、洗手、保持距离、避开人群。在实施过程中,有工作人员时刻维护和提醒人们不要违反卫生规程。比如记得戴口罩。面具检测应用程序是一种计算机化的监视系统,可以存储违反使用面具的图像并提供警告声音。观察、讨论和文献研究是本实证研究的数据来源。使用Python作为编程语言辅助OpenCV进行图像处理。通过瀑布的4个阶段,即分析,设计,制造和开发和测试后,产生了一个应用程序,其中树莓派是一个处理工具,图像从相机模块捕获,分辨率为1080x1024像素。该应用程序可以使用机器学习Haar级联分类器方法检测掩码的使用,准确率为90.5%。脸部的状况是最大30度转向侧面并向上看
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