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Assessing driver cortical activity under varying levels of automation with functional near infrared spectroscopy

机译:使用功能性近红外光谱仪在各种自动化水平下评估驾驶员皮质活动

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Information about drivers' mental states can be vital to the design of interfaces for highly automated vehicles. Functional near infrared spectroscopy (fNIRS) is a neuroimaging tool that is fast becoming popular to study the cortical activity of participants in HCI experiments and driving simulator studies in particular. The analysis methods of the fNIRS data create requirements in the experimental design such as repeated measures. In this paper, we present a study of the event related cortical activity of the drivers of manual, partially autonomous, and fully autonomous cars when performing lane changes using functional near infrared spectroscopic measures. We also present the experimental methodology that was adopted to meet the needs of the fNIRS measurement and the subsequent analysis. The study (N=28) was conducted in a driving simulator. Participants drove for approximately 7 minutes and performed 8 lane change maneuvers in each mode of automation. Multiple streams of data including 4 time-synced video recordings, NASA TLX questionnaires and fNIRS data were recorded and analyzed. It was found that the dorsolateral prefrontal cortex activation during lane changes performed in a partially autonomous mode of operation was just as high as that during a manual lane change, showing that drivers of partially automated systems are as cognitively engaged as drivers of manually operated vehicles.
机译:有关驾驶​​员心理状态的信息对于高度自动化车辆的界面设计至关重要。功能性近红外光谱(fNIRS)是一种神经影像工具,在研究HCI实验尤其是驾驶模拟器研究的参与者的皮层活动方面正迅速普及。 fNIRS数据的分析方法在实验设计中提出了要求,例如重复测量。在本文中,我们介绍了使用功能性近红外光谱测量方法进行换道时,手动,部分自主和完全自主汽车的驾驶员的事件相关皮层活动的研究。我们还介绍了用于满足fNIRS测量和后续分析需求的实验方法。研究(N = 28)是在驾驶模拟器中进行的。参与者开车约7分钟,并在每种自动化模式下进行了8次换道演习。记录并分析了包括4个时间同步视频记录,NASA TLX问卷和fNIRS数据在内的多个数据流。已经发现,在部分自主操作模式下进行车道变更期间的背外侧前额叶皮层激活与手动改变车道期间的一样高,这表明部分自动化系统的驾驶员在认知上与手动车辆的驾驶员一样。

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