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Accelerometer-based fall-portent detection algorithm for construction tiling operation

机译:基于加速度计的落体检测技术在建筑砖瓦工程中的应用

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摘要

Fall accidents are a major safety issue and a perennial problem in the construction industry. However, few studies have focused on detecting fall portents, identification of which may prevent falls from occurring. This study developed an accelerometer-based fall portent detection system that employed a hierarchical threshold based algorithm. We designed tiling experiments to evaluate the performance of the proposed system. The participants performed the tasks under normal, inebriation, and sleepiness conditions on a scaffold while four accelerometers were attached to their chest, waist, arm, and hand. The results revealed that the traditional threshold-based algorithms had unacceptable accuracies of less than 30.66%. Most false warnings could be attributed to misidentifications of work-related motions. However, the work-related motions had a limited effect on the hierarchical threshold-based algorithm, which exhibited a satisfactory detection rate and accuracy of 76.86% and 79.13%, respectively.
机译:坠落事故是建筑行业中的主要安全问题和长期存在的问题。但是,很少有研究集中在检测跌倒预兆上,对其进行识别可以防止跌倒的发生。这项研究开发了基于加速度计的跌落检测系统,该系统采用了基于分层阈值的算法。我们设计了平铺实验来评估所提出系统的性能。参与者在脚手架上的正常,通风和困倦条件下执行任务,同时在他们的胸,腰,臂和手上附加了四个加速度计。结果表明,传统的基于阈值的算法具有小于30.66%的无法接受的精度。大多数错误警告可能归因于与工作相关的动作的错误识别。然而,与工作相关的运动对基于分层阈值的算法的影响有限,其表现出令人满意的检测率和准确度,分别为76.86%和79.13%。

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