华威-捷豹路虎驾驶员监控数据集(DMD):统计数据和早期发现

Phillip Taylor, N. Griffiths, A. Bhalerao, Xu Zhou, A. Gelencser, T. Popham
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引用次数: 7

摘要

驾驶是一项安全关键任务,需要司机高度关注和工作量。尽管如此,人们也经常执行次要任务,如吃饭或使用手机,这增加了工作量,分散了对驾驶主要任务的认知和身体注意力。如果车辆意识到驾驶员目前处于高工作量下,则可以改变车辆功能,以尽量减少任何进一步的需求。传统上,工作量测量是使用侵入性手段进行的,例如生理传感器。另一种方法可能是通过车辆的控制器区域网络(CAN)随时可用且可靠的传感器在线监控工作负载。在本文中,我们介绍了为此目的收集的华威-捷豹路虎驾驶员监测数据集(DMD)的详细信息,并宣布其用于驾驶员监测研究的出版物。简要介绍了收集协议,然后对数据集进行了统计分析,描述了数据集的结构。最后,公布了用于驾驶员监控和数据挖掘研究的数据集的公开发布。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Warwick-JLR driver monitoring dataset (DMD): statistics and early findings
Driving is a safety critical task that requires a high levels of attention and workload from the driver. Despite this, people often also perform secondary tasks such as eating or using a mobile phone, which increase workload levels and divert cognitive and physical attention from the primary task of driving. If a vehicle is aware that the driver is currently under high workload, the vehicle functionality can be changed in order to minimize any further demand. Traditionally, workload measurements have been performed using intrusive means such as physiological sensors. Another approach may be to monitor workload online using readily available and robust sensors accessible via the vehicle's Controller Area Network (CAN). In this paper, we present details of the Warwick-JLR Driver Monitoring Dataset (DMD) collected for this purpose, and to announce its publication for driver monitoring research. The collection protocol is briefly introduced, followed by statistical analysis of the dataset to describe its structure. Finally, the public release of the dataset, for use in both driver monitoring and data mining research, is announced.
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