首页> 外文会议>Proceedings of the Human Factors and Ergonomics Society 2018 annual meeting >GLANCES THAT MATTER: APPLYING QUANTILE REGRESSION TO ASSESS DRIVER DISTRACTION FROM OFF-ROAD GLANCES
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GLANCES THAT MATTER: APPLYING QUANTILE REGRESSION TO ASSESS DRIVER DISTRACTION FROM OFF-ROAD GLANCES

机译:至关重要的解决方案:应用量化回归来评估来自越野解决方案的驾驶员注意力

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摘要

This study assessed whether quantile regression can identify design specifications that lead to particularly long glances, which might go unnoticed with traditional analyses focusing on conditional means of off-road glances. Although substantial research indicates that long glances contribute disproportionately to crash risk, few studies have directly assessed the tails of the distribution. Failing to examine the distribution tails might underestimate the disproportionate risk on long glances imposed by secondary tasks. We applied quantile regression to assess the effects of secondary task type (reading or entry), system delay (delay or no delay), and text length (long or short) on off-road glance duration at 15th, 50th, and 85th quantiles. The results show that entry task, long text, and some combinations of variables led to longer glances than that would be expected given the central tendency of glance distributions. Quantile regression identifies secondary task features that produce long glances, which might be neglected by traditional analyses with conditional means.
机译:这项研究评估了分位数回归是否可以识别导致特别长的目视的设计规范,而侧重于视线条件的传统方法的传统分析可能不会注意到这点。尽管大量的研究表明,长时间的目光对坠机风险的贡献不成比例,但很少有研究直接评估分布的尾巴。未能检查分布的尾巴可能会低估次要任务造成的长期风险。我们应用分位数回归来评估次要任务类型(阅读或输入),系统延迟(延迟或无延迟)以及文本长度(长或短)对第15、50和85位分行越野扫视持续时间的影响。结果表明,输入任务,长文本和变量的某些组合导致的扫视时间比给定扫视分布的集中趋势所预期的时间长。分位数回归可识别产生长时浏览的次要任务特征,而传统的有条件分析则可能忽略了这些特征。

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