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Big data platform for health and safety accident prediction

机译:健康与安全事故预测的大数据平台

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Purpose-The purpose of this paper is to highlight the use of the big data technologies for health and safety risks analytics in the power infrastructure domain with large data sets of health and safety risks, which are usually sparse and noisy. Design/methodology/approach-The study focuses on using the big data frameworks for designing a robust architecture for handling and analysing (exploratory and predictive analytics) accidents in power infrastructure.The designed architecture is based on a well coherent health risk analytics lifecycle. A prototype of the architecture interfaced various technology artefacts was implemented in the Java language to predict the likelihoods of health hazards occurrence.A preliminary evaluation of the proposed architecture was carried out with a subset of an objective data, obtained from a leading UK power infrastructure company offering a broad range of power infrastructure services. Findings-The proposed architecture was able to identify relevant variables and improve preliminary prediction accuracies and explanatory capacities.It has also enabled conclusions to be drawn regarding the causes of health risks.The results represent a significant improvement in terms of managing information on construction accidents, particularly in power infrastructure domain. Originality/value-This study carries out a comprehensive literature review to advance the health and safety risk management in construction.It also highlights the inability of the conventional technologies in handling unstructured and incomplete data set for real-time analytics processing.The study proposes a technique in big data technology for finding complex patterns and establishing the statistical cohesion of hidden patterns for optimal future decision making.
机译:目的 - 本文的目的是突出大量数据技术在电力基础设施域中的健康和安全风险分析的使用,具有大数据库的健康和安全风险,通常是稀疏和嘈杂的。设计/方法/方法 - 研究侧重于使用大数据框架来设计动力基础设施中的处理和分析(探索性和预测分析)事故的稳健架构。设计的架构基于一个良好的健康风险分析生命周期。在Java语言中实施了架构的原型,以预测健康危险的可能性。从英国领先的英国电力基础设施公司获得的客观数据的子集进行了对拟议架构的初步评估提供广泛的电力基础架构服务。调查结果 - 拟议的架构能够识别相关变量,提高初步预测准确性和解释能力。它也使得能够在健康风险的原因上提取结论。结果代表了关于建设事故的信息的重大改善,特别是在电力基础设施域中。原创性/价值 - 本研究执行全面的文献综述,以推进建筑的健康和安全风险管理。它还强调了传统技术在处理非结构化和不完整的数据集中进行实时分析处理的不完整。研究提出了一个大数据技术中的技术,用于查找复杂模式并建立隐藏模式的统计凝视,以实现最佳未来决策。

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