操作部分自动驾驶汽车时可靠但多维的认知需求:对真实世界自动驾驶研究的启示。

IF 3.4 2区 心理学 Q1 PSYCHOLOGY, EXPERIMENTAL Cognitive Research-Principles and Implications Pub Date : 2024-09-11 DOI:10.1186/s41235-024-00591-5
Monika Lohani, Joel M Cooper, Amy S McDonnell, Gus G Erickson, Trent G Simmons, Amanda E Carriero, Kaedyn W Crabtree, David L Strayer
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引用次数: 0

摘要

认知需求测量在受控实验室环境中的可靠性已得到充分证明;然而,在现实生活和高风险条件下(如在实际高速公路上操作自动驾驶技术),直接确定其稳定性的研究却很有限。部分自动驾驶汽车已发展成为一种日常交通模式,而有关驾驶这些先进车辆的研究需要可靠的工具来评估驾驶者的认知需求,以保持驾驶过程中的最佳参与度。本研究考察了五种认知需求测量方法的可靠性,参与者在实际道路上驾驶部分自动驾驶车辆的四种情况。71 名参与者(年龄在 18-64 岁之间)在实际公路上驾驶车辆,同时测量了他们的心率、心率变异性、脑电图(EEG)α 功率和检测反应任务的行为表现。研究结果表明,脑电图α功率的测试-再测试可靠性极佳,心率及其变异性良好,而检测反应任务的反应时间和命中率的可靠性适中。因此,本研究解决了在实际自动化研究中评估认知需求时对这些测量方法可靠性的担忧,因为所有测量方法在不同场合对驾驶员的测试-再测可靠性都是可以接受的。尽管每种测量方法都具有较高的可靠性,但测量方法之间的相互关系较低,而将认知需求作为多因素结构进行估计时,内部一致性更好。这表明,在现实生活中操作自动化系统时,它们会触及认知需求的不同方面。研究结果突出表明,在现实世界的自动化研究中,心理生理学和行为学方法的结合可以可靠地捕捉到多方面的认知需求。
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Reliable but multi-dimensional cognitive demand in operating partially automated vehicles: implications for real-world automation research.

The reliability of cognitive demand measures in controlled laboratory settings is well-documented; however, limited research has directly established their stability under real-life and high-stakes conditions, such as operating automated technology on actual highways. Partially automated vehicles have advanced to become an everyday mode of transportation, and research on driving these advanced vehicles requires reliable tools for evaluating the cognitive demand on motorists to sustain optimal engagement in the driving process. This study examined the reliability of five cognitive demand measures, while participants operated partially automated vehicles on real roads across four occasions. Seventy-one participants (aged 18-64 years) drove on actual highways while their heart rate, heart rate variability, electroencephalogram (EEG) alpha power, and behavioral performance on the Detection Response Task were measured simultaneously. Findings revealed that EEG alpha power had excellent test-retest reliability, heart rate and its variability were good, and Detection Response Task reaction time and hit-rate had moderate reliabilities. Thus, the current study addresses concerns regarding the reliability of these measures in assessing cognitive demand in real-world automation research, as acceptable test-retest reliabilities were found across all measures for drivers across occasions. Despite the high reliability of each measure, low intercorrelations among measures were observed, and internal consistency was better when cognitive demand was estimated as a multi-factorial construct. This suggests that they tap into different aspects of cognitive demand while operating automation in real life. The findings highlight that a combination of psychophysiological and behavioral methods can reliably capture multi-faceted cognitive demand in real-world automation research.

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来源期刊
CiteScore
6.80
自引率
7.30%
发文量
96
审稿时长
25 weeks
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