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A smartphone-based driver fatigue detection using fusion of multiple real-time facial features

机译:基于智能手机的驾驶员疲劳检测,融合了多个实时面部特征

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In this paper, a fatigue monitoring system focuses on information fusion is designed and implemented in smartphone. Eye blinking, head nod and yawning are detected as indicators of driver fatigue. We developed a mathematical model to extract the characteristic in time and frequency domain using mean-variance of key fatigue parameters. The system perform real time detection of face and eye blink using Harr-like technique and mouth detection for yawning with Canny Active Contour Method. The testing result of the system demonstrates the practical use of multiple features, particularly with our mean-variance methods, and their fusion enables a more accurate and authentic fatigue detection.
机译:本文设计并实现了一种以信息融合为重点的疲劳监测系统。眨眼,点头和打哈欠被检测为驾驶员疲劳的指标。我们开发了一个数学模型,使用关键疲劳参数的均方差来提取时域和频域的特征。该系统使用类似Harr的技术实时检测面部和眼睛眨眼,并使用Canny Active Contour方法对嘴巴进行打哈欠检测。该系统的测试结果证明了多种功能的实际使用,尤其是我们的均方差方法,它们的融合可以实现更准确和真实的疲劳检测。

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