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A Low-Cost Smart Sensor Network for Catchment Monitoring

机译:用于流域监测的低成本智能传感器网络

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摘要

Understanding hydrological processes in large, open areas, such as catchments, and further modelling these processes are still open research questions. The system proposed in this work provides an automatic end-to-end pipeline from data collection to information extraction that can potentially assist hydrologists to better understand the hydrological processes using a data-driven approach. In this work, the performance of a low-cost off-the-shelf self contained sensor unit, which was originally designed and used to monitor liquid levels, such as AdBlue, fuel, lubricants etc., in a sealed tank environment, is first examined. This process validates that the sensor does provide accurate water level information for open water level monitoring tasks. Utilising the dataset collected from eight sensor units, an end-to-end pipeline of automating the data collection, data processing and information extraction processes is proposed. Within the pipeline, a data-driven anomaly detection method that automatically extracts rapid changes in measurement trends at a catchment scale. The lag-time of the test site (Dodder catchment Dublin, Ireland) is also analyzed. Subsequently, the water level response in the catchment due to storm events during the 27 month deployment period is illustrated. To support reproducible and collaborative research, the collected dataset and the source code of this work will be publicly available for research purposes.
机译:了解大型开放区域(如流域)的水文过程,并对这些过程进行进一步的建模仍然是开放的研究问题。这项工作中提出的系统提供了从数据收集到信息提取的自动端到端管道,可以潜在地帮助水文学家使用数据驱动的方法更好地了解水文过程。在这项工作中,首先要设计一种低成本的现成的自包含传感器单元,该传感器单元最初设计用于监视密封罐环境中的AdBlue,燃料,润滑剂等液位,检查。该过程验证了传感器确实为开阔水位监控任务提供了准确的水位信息。利用从八个传感器单元收集的数据集,提出了自动化数据收集,数据处理和信息提取过程的端到端流水线。在管道内,一种数据驱动的异常检测方法可以自动提取汇水规模的测量趋势的快速变化。还分析了测试地点(爱尔兰都柏林道奇流域)的滞后时间。随后,说明了在27个月部署期间由于暴风雨造成的流域水位响应。为了支持可重复和协作的研究,收集的数据集和这项工作的源代码将公开用于研究目的。

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