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An experimental study of real-time identification of construction workers' unsafe behaviors

机译:实时识别建筑工人不安全行为的实验研究

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摘要

Construction workers’ unsafe behavior is one of the main reasons leading to construction accidents. However, the existing management approach to unsafe behaviors, e.g. Behavior-Based Safety (BBS), relies primarily on manual observation and recording, which not only consumes lots of time and cost but impossibly cover a whole construction site or all workers. To solve this problem and improve safety performance, an image-skeleton-based parameterized method has been proposed in a previous research to real-time identifying construction workers’ unsafe behaviors. A theoretical framework has been developed with a preliminary test, but still lacking a comprehensive experiment to verify its validity, particularly in the recognition of the types of unsafe behaviors. This will have a serious impact on the extensive application of the method in real construction sites. Based on the method, this research designs and carries out a series of experiments involving three types of unsafe behaviors to examine its feasibility and accuracy, and determines the value ranges of relevant key parameters. The results of the experiment demonstrate the feasibility and efficiency of the method, being able to identify and distinguish unsafe behaviors in real time, as well as its limitations. This research not only benefits the extensive application of the method in construction safety management, but improves the effectiveness and efficiency of the method by identifying relevant future research focuses. Therefore this paper contributes to the practice as well as the body of knowledge of construction safety management.
机译:建筑工人的不安全行为是导致建筑事故的主要原因之一。但是,针对不安全行为的现有管理方法,例如基于行为的安全性(BBS)主要依靠人工观察和记录,这不仅浪费大量时间和成本,而且不可能覆盖整个建筑工地或所有工人。为了解决这个问题并提高安全性能,在先前的研究中提出了一种基于图像骨架的参数化方法,以实时识别建筑工人的不安全行为。已经建立了具有初步测试的理论框架,但仍缺乏全面的实验来验证其有效性,尤其是在识别不安全行为类型方面。这将严重影响该方法在实际建筑工地中的广泛应用。基于此方法,本研究设计并进行了涉及三种不安全行为的一系列实验,以检验其可行性和准确性,并确定相关关键参数的取值范围。实验结果证明了该方法的可行性和有效性,能够实时识别和区分不安全行为及其局限性。该研究不仅有利于该方法在建筑安全管理中的广泛应用,而且通过确定相关的未来研究重点来提高该方法的有效性和效率。因此,本文为建筑安全管理的实践和知识体系做出了贡献。

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