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A Portable Fuzzy Driver Drowsiness Estimation System

机译:便携式模糊驾驶员嗜睡估计系统

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摘要

The adequate automatic detection of driver fatigue is a very valuable approach for the prevention of traffic accidents. Devices that can determine drowsiness conditions accurately must inherently be portable, adaptable to different vehicles and drivers, and robust to conditions such as illumination changes or visual occlusion. With the advent of a new generation of computationally powerful embedded systems such as the Raspberry Pi, a new category of real-time and low-cost portable drowsiness detection systems could become standard tools. Usually, the proposed solutions using this platform are limited to the definition of thresholds for some defined drowsiness indicator or the application of computationally expensive classification models that limits their use in real-time. In this research, we propose the development of a new portable, low-cost, accurate, and robust drowsiness recognition device. The proposed device combines complementary drowsiness measures derived from a temporal window of eyes (PERCLOS, ECD) and mouth (AOT) states through a fuzzy inference system deployed in a Raspberry Pi with the capability of real-time response. The system provides three degrees of drowsiness (Low-Normal State, Medium-Drowsy State, and High-Severe Drowsiness State), and was assessed in terms of its computational performance and efficiency, resulting in a significant accuracy of 95.5% in state recognition that demonstrates the feasibility of the approach.
机译:驾驶员疲劳的充分自动检测是防止交通事故的非常有价值的方法。可以确定地确定嗜可能性条件的装置必须是可便携式的,适用于不同的车辆和驱动器,以及诸如照明变化或视觉遮挡的条件鲁棒。随着新一代计算强大的嵌入式系统,如覆盆子PI,新的实时和低成本便携式嗜睡检测系统可能成为标准工具。通常,使用该平台的建议解决方案仅限于某些定义的嗜睡指示符的阈值的定义或应用限制其实时使用的计算昂贵的分类模型。在这项研究中,我们提出了一种新的便携式,低成本,准确和稳健的嗜睡识别装置的开发。所提出的装置通过在覆盆子PI中部署的模糊推理系统,与覆盆子PI中的模糊推理系统相结合了衍生自眼睛(PercloS,ECD)和口(AOT)状态的互补嗜睡措施。该系统提供了三度嗜可能性(低正常状态,中啸状态和高剧烈的嗜睡状态),并在其计算性能和效率方面进行评估,导致国家识别的显着准确性为95.5%展示了这种方法的可行性。

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