人脸识别考勤系统检测

Rudy Hartanto, Marcus Nurtiantoro Adji
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引用次数: 23

摘要

近年来,生物特征认证方法作为传统认证方法之外的一种有发展前景的认证方法迅速发展起来。几乎所有的生物识别技术都需要用户的一些动作,即用户需要在扫描仪上放置资金来设置手指或手部的几何形状进行检测。使用者必须站在相机前的固定位置不动,以进行虹膜或视网膜识别。与其他生物识别方法相比,人脸识别方法具有几个外部优势,因为该方法可以被动地进行,不需要明确的动作,也可以由用户持有,因为相机可以从一定距离获得人脸图像。这种方法对执行任务和监督特别有用。本研究将人脸识别系统的开发与实现分为四个阶段。四个阶段的过程分别是使用肤色检测和Haar级联算法的人脸检测过程、包含人脸特征归一化的对齐过程、特征提取过程和使用LBPH算法的分类过程。此外,这一进程将继续进行,用已建成的系统替换目前的系统。实验结果表明,该系统能较准确地识别由摄像头自动捕获的人脸。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Face Recognition for Attendance System Detection
These days, biometric authentication methods begin growing rapidly as one of promising authentication methods, besides the conventional authentication method. Almost all biometrics technologies require some actions by user, which are the user needs to place funds on the scanner to set the fingers or the hand geometry detection. The user shall stand still in a fixed position in front of the camera for iris or retina identification purpose. The face recognition method has several external advantages compared to the other biometric methods because this method can be done passively without explicit action or should be held by the user since the face image can be obtained by the camera from a certain distance. This method can be especially useful for mission and supervision. This research would develop and implement the face recognition system consists of four stage process. The four-stage process were face detection process using skin color detection and Haar Cascade algorithm, alignment process that contains face features normalization process, feature extraction process, and classification process using LBPH algorithm. Furthermore, the process would be continued to current system replacement with the system that has been built. The experimental results show that the system can recognize the faces captured automatically by the camera accurately.
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