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The ergonomic value of a bidirectional haptic interface when driving a highly automated vehicle

机译:驾驶高度自动化的车辆时双向触觉界面的人体工程学价值

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Advances in technology have fueled the development of driver assistance systems. Even today, these systems can take over parts of the driving task. However, the interface becomes more and more complex with an increasing number of functions. One way to reduce such complexity is to venture the haptic channel. While haptic feedback in lateral direction is comparatively easy to realize via the steering wheel, the longitudinal direction forms a challenge. With conventional control elements, that is, pedals, haptic interaction can only be partially realized (this is due to the division of accelerator and brake pedals). Haptic signals, like forces added to the accelerator pedal, can only transmit information regarding the amount of acceleration, not the desired deceleration. In this context, two-dimensional control elements show great potential regarding future highly automated vehicle driving. Therefore, an experiment conducted at the Institute of Ergonomics of the Technische Universität München investigated the influence of haptic feedback of assistance systems on driving performance when using an active side stick as control element. Additionally, the impact of vehicle vibrations and accelerations were explored. Besides objective performance data, subjective assessment was also reported. The results show that adding assistance significantly improves driving performance. Moreover, subjective ratings indicate a reduction in workload. Accelerations and vibrations, however, had no verifiable effect on the driving performance. This fact was confirmed by the subjects’ subjective assessment. This paper shows that two-dimensional control elements can be a reasonable alternative to steering wheel and pedals when driving a highly automated vehicle.
机译:技术的进步推动了驾驶员辅助系统的发展。即使在今天,这些系统仍可以接管部分驾驶任务。但是,随着功能的增加,界面变得越来越复杂。降低这种复杂性的一种方法是冒险触觉通道。尽管通过方向盘比较容易实现横向方向的触觉反馈,但是纵向方向却构成了挑战。利用常规的控制元件,即踏板,只能部分实现触觉交互(这是由于油门踏板和制动踏板的划分)。触觉信号,就像加在加速踏板上的力一样,只能传递有关加速度的信息,而不能传递所需的减速度。在这种情况下,二维控制元件在未来的高度自动化的车辆驾驶方面显示出巨大的潜力。因此,在慕尼黑工业大学人体工学研究所进行的一项实验研究了使用主动侧杆作为控制元件时辅助系统的触觉反馈对驾驶性能的影响。此外,还探讨了车辆振动和加速度的影响。除了客观的表现数据,还报告了主观评估。结果表明,增加辅助可以显着提高驾驶性能。此外,主观评分表明工作量有所减少。但是,加速度和振动对驾驶性能没有可验证的影响。受试者的主观评估证实了这一事实。本文表明,在驾驶高度自动化的车辆时,二维控制元件可以替代方向盘和踏板。

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