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Big Data Analytics for Air Quality Monitoring at a Logistics Shipping Base via Autonomous Wireless Sensor Network Technologies

机译:通过自动无线传感器网络技术对物流运输基地的空气质量监测大数据分析

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The indoor air quality in industrial workplace buildings, e.g. air temperature, humidity and levels of carbon dioxide (CO2), play a critical role in the perceived levels of workers' comfort and in reported medical health. CO2 can act as an oxygen displacer, and in confined spaces humans can have, for example, reactions of dizziness, increased heart rate and blood pressure, headaches, and in more serious cases loss of consciousness. Specialized organizations can be brought in to monitor the work environment for limited periods. However, new low cost wireless sensor network (WSN) technologies offer potential for more continuous and autonomous assessment of industrial workplace air quality. Central to effective decision making is the data analytics approach and visualization of what is potentially, big data (BD) in monitoring the air quality in industrial workplaces. This paper presents a case study that monitors air quality that is collected with WSN technologies. We discuss the potential BD problems. The case trials are from two workshops that are part of a large on-shore logistics base a regional shipping industry in Norway. This small case study demonstrates a monitoring and visualization approach for facilitating BD in decision making for health and safety in the shipping industry. We also identify other potential applications of WSN technologies and visualization of BD in the workplace environments; for example, for monitoring of other substances for worker safety in high risk industries and for quality of goods in supply chain management.
机译:工业工作场所建筑的室内空气质量,例如,空气温度,湿度和二氧化碳水平(二氧化碳),在观察工人的舒适水平和报告的医疗健康方面发挥着关键作用。二氧化碳可以充当氧气置换器,并且在狭窄的空间中,人类可以具有例如头晕的反应,增加心率和血压,头痛,以及更严重的情况的意识丧失。专业组织可以提出来监测有限时期的工作环境。然而,新的低成本无线传感器网络(WSN)技术提供了对工业工作场所空气质量更加连续和自主评估的潜力。有效决策的核心是数据分析方法和可视化潜在的,大数据(BD)监测工业工作场所的空气质量。本文提出了一种案例研究,可以监控与WSN技术收集的空气质量。我们讨论了潜在的BD问题。案例试验来自两个讲习班,这些研讨会是一个大型岸上物流基地的一部分在挪威区域航运业。这个小型案例研究表明了一种监测和可视化方法,以促进在航运业中健康和安全决策的决策。我们还识别WSN技术的其他潜在应用,以及BD在工作场所环境中的可视化;例如,用于监测高风险行业的工人安全和供应链管理质量的其他物质。

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