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Towards a Big Data Framework for the prevention and control of HIV/AIDS, TB and Silicosis in the mining industry

机译:对预防和控制矿业工业中艾滋病毒/艾滋病,结核病和矽肺病的大数据框架

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This paper proposes a big data integrated framework to assist with prevention and control of HIV/AIDS, TB and silicosis (HATS) in the mining industry. The linkage between HATS presents a major challenge to the mining industry globally. When the immune system is compromised by HIV/AIDS and silicosis, it makes it easier for tuberculosis to infect the body. In addition, the silica dust which affects the lungs may also cause silicosis and tuberculosis. The objective of this paper is to posit a big data integrated framework to assist in the prevention and control of HATS in the mining industry. Literature was reviewed in order to build a conceptual framework. Although this study is not the first to apply big data in healthcare, to the researcher's knowledge, it is the first to apply big data in understanding the linkage between HATS in the mining industry. The literature review indicates only a few studies using big data in healthcare with no research found on big data and HATS. It therefore makes a contribution to existing body of literature on the control of HATS. The proposed big data framework has the potential of addressing the needs of predictive epidemiology which is important in forecasting and disease control in the mining industry. The paper therefore lays a foundation for the use of viable systems model and big data to address the challenges of HATS in the mining industry. As part of future work, the framework will be validated using sequential explanatory mixed methods case study approach in mining organizations.
机译:本文提出了大数据综合框架,协助预防和控制采矿业中的艾滋病毒/艾滋病,结核病和矽肺(帽子)。帽子之间的联系对全球采矿业提供了重大挑战。当免疫系统受到艾滋病毒/艾滋病和矽肺病的损害时,使结核病更容易感染身体。此外,影响肺部的二氧化硅粉尘也可能导致矽肺和结核病。本文的目的是提供大数据综合框架,以协助预防和控制采矿业的帽子。审查文学以建立概念框架。虽然这项研究不是第一个在医疗保健中应用大数据,但对研究人员的知识,它是第一个应用大数据的理解矿业帽子之间的联系。文献综述仅表明在大数据和帽子上没有研究医疗保健中的大数据。因此,它对现有的文学体系对帽子的控制作出了贡献。拟议的大数据框架具有解决预测性流行病学的需求,这在采矿业中的预测和疾病控制中是重要的。因此,本文为使用可行的系统模型和大数据奠定了基础,以解决矿业行业帽子的挑战。作为未来工作的一部分,将使用顺序解释性混合方法在采矿组织中进行验证框架。

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