A data-driven approach to understand factors contributing to exoskeleton use-intention in construction

Sunwook Kim, Albert Moore, Aanuoluwapo Ojelade, Nancy Gutierrez, Carisa Harris-Adamson, Alan Barr, Divya Srinivasan, Maury A. Nussbaum
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Abstract

Work-related musculoskeletal disorders (WMSDs) remain an important heath concern for construction workers. Occupational exoskeletons (EXOs) are a new ergonomic intervention to control WMSD risk, yet their adoption has been low in construction. We explored contributing factors to EXO use-intention, by building a decision tree to predict the intention to try an exoskeleton using responses to an online survey. Variable selection and hyperparameter tuning were used respectively to reduce the number of potential predictors, and for a better prediction performance. Performance was assessed using four common metrics. The importance of variables in the final tree was calculated to understand which variable had a greater influence. The final tree had moderate prediction performance. Important variables identified were associated with opinions on EXO use, demographics, job demands, and perceived potential risks. The key influential variables were EXOs becoming standard equipment and fatigue reduction with EXO use. Practical implications of the findings are discussed.
一种数据驱动的方法来了解影响建筑外骨骼使用意图的因素
与工作相关的肌肉骨骼疾病(WMSDs)仍然是建筑工人的一个重要健康问题。职业外骨骼(EXOs)是一种新的人体工程学干预措施,以控制WMSD风险,但其采用率一直很低。我们通过建立一个决策树来预测尝试外骨骼的意愿,通过对在线调查的回应来探索外骨骼使用意愿的影响因素。分别使用变量选择和超参数调优来减少潜在预测因子的数量,并获得更好的预测性能。使用四个常见指标评估性能。计算最终树中变量的重要性,以了解哪个变量具有更大的影响。最终的树具有中等的预测性能。确定的重要变量与对EXO使用、人口统计、工作需求和感知潜在风险的看法有关。关键的影响因素是EXO成为标准装备和使用EXO减少疲劳。讨论了研究结果的实际意义。
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