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首页> 外文期刊>Journal of Construction Engineering and Management >Impact of Construction Workers' Hazard Identification Skills on Their Visual Attention
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Impact of Construction Workers' Hazard Identification Skills on Their Visual Attention

机译:建筑工人的危险识别技能对其视觉注意力的影响

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Eye-movement metrics have been shown to correlate with attention and, therefore, represent a means of identifying and analyzing an individual's cognitive processes. Human errors-such as failure to identify a hazard-are often attributed to a worker's lack of attention. Piecemeal attempts have been made to investigate the potential of harnessing eye movements as predictors of human error (e. g., failure to identify a hazard) in the construction industry, although more attempts have investigated human error via subjective measurements. To address this knowledge gap, the present study harnessed eye-tracking technology to evaluate the impacts of workers' hazard-identification skills on their attentional distributions and visual search strategies. To achieve this objective, an experiment was designed in which the eye movements of 31 construction workers were tracked while they searched for hazards in 35 randomly ordered construction scenario images. Workers were then divided into three groups on the basis of their hazard identification performance. Three fixation-related metrics-fixation count, dwell-time percentage, and run count-were analyzed during the eye-tracking experiment for each group (low, medium, and high hazard-identification skills) across various types of hazards. Then, multivariate ANOVA (MANOVA) was used to evaluate the impact of workers' hazard-identification skills on their visual attention. To further investigate the effect of hazard identification skills on the dependent variables (eye movement metrics), two distinct processes followed: separate ANOVAs on each of the dependent variables, and a discriminant function analysis. The analyses indicated that hazard identification skills significantly impact workers' visual search strategies: workers with higher hazard-identification skills had lower dwell-time percentages on ladder-related hazards; higher fixation counts on fall-to-lower-level hazards; and higher fixation counts and run counts on fall-protection systems, struck-by, housekeeping, and all hazardous areas combined. Among the eye-movement metrics studied, fixation count had the largest standardized coefficient in all canonical discriminant functions, which implies that this eye-movement metric uniquely discriminates workers with high hazard-identification skills and at-risk workers. Because discriminant function analysis is similar to regression, discriminant function (linear combinations of eye-movement metrics) can be used to predict workers' hazard-identification capabilities. In conclusion, this study provides a proof of concept that certain eyemovement metrics are predictive indicators of human error due to attentional failure. These outcomes stemmed from a laboratory setting, and, foreseeably, safety managers in the future will be able to use these findings to identify at-risk construction workers, pinpoint required safety training, measure training effectiveness, and eventually improve future personal protective equipment to measure construction workers' situation awareness in real time. (C) 2017 American Society of Civil Engineers.
机译:眼动指标已显示与注意力相关,因此代表了识别和分析个人认知过程的一种手段。人为失误(例如无法识别危害)通常归因于工人缺乏关注。尽管在主观测量中已经进行了更多的尝试,但是已经进行了一些零碎的尝试来研究利用眼球运动作为建筑业中人为错误(例如,未能识别危险的预测因素)的潜力。为了解决这一知识鸿沟,本研究利用眼动追踪技术评估了工人的危害识别技能对其注意力分布和视觉搜索策略的影响。为了实现此目标,设计了一个实验,其中跟踪了31名建筑工人在35个随机排序的建筑场景图像中搜索危险时的眼球运动。然后根据危害识别性能将工人分为三类。在眼动追踪实验期间,针对每种危害(低,中和高危害识别技能),对每个组(低,中和高危害识别技能)分析了三种与固视相关的指标,即固视计数,停留时间百分比和运行次数。然后,使用多元方差分析(MANOVA)评估工人的危害识别技能对其视觉注意力的影响。为了进一步研究危害识别技能对因变量(眼球运动指标)的影响,遵循两个不同的过程:对每个因变量分别进行方差分析和判别函数分析。分析表明,危险识别技能会极大地影响工人的视觉搜索策略:具有较高危险识别技能的工人在与梯子相关的危险上的停留时间百分比较低;对落到较低级别的危害的关注度更高;以及防坠落系统,击打,家政和所有危险区域的更高的固定次数和运行次数。在所研究的眼动指标中,注视计数在所有标准判别函数中具有最大的标准化系数,这意味着该眼动指标可以唯一地区分具有较高危害识别能力的工人和处于危险中的工人。由于判别函数分析类似于回归分析,因此判别函数(眼动指标的线性组合)可用于预测工人的危害识别能力。总而言之,这项研究提供了一个概念证明,即某些眼动指标是由于注意力衰竭而导致的人为错误的预测指标。这些结果源于实验室设置,可以预见的是,未来的安全经理将能够使用这些发现来识别有风险的建筑工人,确定所需的安全培训,衡量培训效果并最终改善未来的个人防护装备以进行衡量实时了解建筑工人的情况。 (C)2017年美国土木工程师学会。

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