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Drowsy drivers' under-performance in lateral control: How much is too much? Using an integrated measure of lateral control to quantify safe lateral driving

机译:昏昏欲睡的驾驶员在横向控制方面的表现欠佳:多少钱太多了?使用侧向控制的集成度量来量化安全的侧向驾驶

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Internationally, drowsy driving is associated with around 20% of all crashes. Despite the development of different detection methods, driver drowsiness remains a disconcerting public health issue. Detection methods can estimate drowsiness by directly measuring the physiology of the driver, or they can-measure the effect that drowsiness has on the state of the vehicle due to the behavioural changes that drowsiness elicits in the driver. The latter has the benefit that it could measure the net effect that drowsiness has on driving performance which links to the actual safety risk. Fusing multiple sources of driving performance indicators like lane position and steering wheel metrics in order to detect drowsiness has recently gained increased attention. However, not much research has been conducted with regard to using integrated measures to detect increased drowsiness within an individual driver. Different levels of drowsiness are also rarely classified in terms of safe or unsafe. In the present study, we attempt to slowly induce drowsiness using a monotonous driving task in a simulator, and fuse lane position and steering wheel angle data into a single measure for lateral control performance. We argue that this measure is applicable in real-time detection systems, and quantitatively link it to different levels of drowsiness by validating it to two established drowsiness metrics (KSS and PERCLOS). Using level of drowsiness as a surrogate for safety we are then able to set simple criteria for safe and unsafe lateral control performance, based on individual driving behaviour. (C) 2015 Elsevier Ltd. All rights reserved.
机译:在国际上,昏昏欲睡的驾驶与大约20%的所有事故相关。尽管开发出了不同的检测方法,但驾驶员的睡意仍然令人困扰公共卫生问题。检测方法可以通过直接测量驾驶员的生理状况来估计睡意,或者可以测量由于睡意引起驾驶员的行为变化而导致睡意对车辆状态的影响。后者的好处是,它可以衡量睡意对驾驶性能的实际影响,而这种影响与实际的安全风险相关。最近,融合驾驶性能指标(如车道位置和方向盘指标)的多个来源以检测睡意的问题得到了越来越多的关注。然而,关于使用综合措施来检测单个驾驶员内嗜睡感的研究还很少。睡意的不同程度也很少根据安全性或不安全性进行分类。在本研究中,我们尝试使用模拟器中的单调驾驶任务来缓慢地使人睡意,并将车道位置和方向盘角度数据融合为横向控制性能的单一度量。我们认为该措施适用于实时检测系统,并通过将其验证到两个已建立的睡意度量标准(KSS和PERCLOS),将其量化到不同的睡意程度。使用困倦程度作为安全性的替代,我们便可以根据个人的驾驶行为为安全和不安全的横向控制性能设定简单的标准。 (C)2015 Elsevier Ltd.保留所有权利。

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