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Using ontology-based text classification to assist Job Hazard Analysis

机译:使用基于本体的文本分类来协助工作危害分析

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The dangers of the construction industry due to the risk of fatal hazards, such as falling from extreme heights, being struck by heavy equipment or materials, and the possibility of electrocution, are well known. The concept of Job Hazard Analysis is commonly used to mitigate and control these occupational hazards. This technique analyzes the major tasks in a construction activity, identifies all potential task-related hazards, and suggests safe approaches to reduce or avoid each of these hazards. In this paper, the authors explore the possibility of leveraging existing construction safety resources to assist JHA, aiming to reduce the level of human effort required. Specifically, the authors apply ontology-based text classification (TC) to match safe approaches identified in existing resources with unsafe scenarios. These safe approaches can serve as initial references and enrich the solution space when performing JHA. Various document modification strategies are applied to existing resources in order to achieve superior TC effectiveness. The end result of this research is a construction safety domain ontology and its underlying knowledge base. A user scenario is also discussed to demonstrate how the ontology supports JHA in practice.
机译:众所周知,由于致命危险(例如从高处掉下,被重型设备或材料撞击)和触电的可能性,可能导致建筑业的危险。工作危害分析的概念通常用于减轻和控制这些职业危害。该技术分析了建筑活动中的主要任务,确定了所有与任务相关的潜在危险,并提出了减少或避免这些危险中每一种的安全方法。在本文中,作者探索了利用现有建筑安全资源来协助JHA的可能性,旨在减少所需的人力。具体来说,作者运用基于本体的文本分类(TC)来将现有资源中确定的安全方法与不安全方案进行匹配。这些安全的方法可以用作初始参考,并在执行JHA时丰富解决方案的空间。各种文档修改策略都应用于现有资源,以实现卓越的TC效果。这项研究的最终结果是建筑安全领域本体及其基础知识库。还讨论了一个用户场景,以演示该本体在实践中如何支持JHA。

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