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Motion Data Based Construction Worker Training Support Tool: Case Study of Masonry Work

机译:基于运动数据的建筑工人培训支持工具:砌体工作案例研究

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摘要

Construction work involves a number of repetitive and physically demanding tasks. Exposure to these labor intensive tasks with awkward postures result in an increase in biomechanical risk factors that may lead to work-related musculoskeletal disorders (WMSDs). Thus, it is essential to provide training for apprentice-level workers to adopt safe working postures. Recent advancements in sensing technologies have enabled us to automatically collect body motion data and analyze posture. The present work presents an automated posture assessment method using inertial measurement units (IMUs) allowing for in-depth ergonomic analysis via kinematic data. A case study on masonry work was performed and body motion data from masons with varying experience levels were collected. For the posture analysis, we first investigated the risk of working posture between experience groups using observation-based posture assessment methods (RULA and REBA), then compared the assessment scores between experience groups. Finally, a prototype training tool based on working posture was introduced. The experimental results show that the automated collection and analysis of motion data can provide greater understanding of working postures adopted by workers with different experience levels with the potential to be used as a training tool in apprenticeship programs.
机译:施工工作涉及许多重复和物理要求的任务。暴露于这些劳动密集型任务,壮大姿势导致生物力学危险因素增加,可能导致与工作有关的肌肉骨骼障碍(WMSD)。因此,必须为学徒级工人提供培训,以采取安全的工作姿势。传感技术最新的进步使我们能够自动收集身体运动数据并分析姿势。本作采用惯性测量单元(IMU)提供了一种自动化姿势评估方法,允许通过运动数据进行深入互动分析。收集了对砖石作品进行砌体工作的案例,并收集了来自具有不同体验水平的泥瓦的身体运动数据。对于姿势分析,我们首先使用基于观测的姿势评估方法(RULA和REBA)来调查经验组之间的工作姿势的风险,然后比较经验组之间的评估分数。最后,介绍了基于工作姿势的原型培训工具。实验结果表明,运动数据的自动收集和分析可以更好地了解工人采用不同体验水平采用的工作姿势,其中潜力将被用作学徒计划中的培训工具。

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