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A Data Quality Control Method for Seafloor Observatories: The Application of Observed Time Series Data in the East China Sea

机译:海底观测站的数据质量控制方法:观测时间序列数据在东海的应用

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摘要

With the construction and deployment of seafloor observatories around the world, massive amounts of oceanographic measurement data were gathered and transmitted to data centers. The increase in the amount of observed data not only provides support for marine scientific research but also raises the requirements for data quality control, as scientists must ensure that their research outcomes come from high-quality data. In this paper, we first analyzed and defined data quality problems occurring in the East China Sea Seafloor Observatory System (ECSSOS). We then proposed a method to detect and repair the data quality problems of seafloor observatories. Incorporating data statistics and expert knowledge from domain specialists, the proposed method consists of three parts: a general pretest to preprocess data and provide a router for further processing, data outlier detection methods to label suspect data points, and a data interpolation method to fill up missing and suspect data. The autoregressive integrated moving average (ARIMA) model was improved and applied to seafloor observatory data quality control by using a sliding window and cleaning the input modeling data. Furthermore, a quality control flag system was also proposed and applied to describe data quality control results and processing procedure information. The real observed data in ECSSOS were used to implement and test the proposed method. The results demonstrated that the proposed method performed effectively at detecting and repairing data quality problems for seafloor observatory data.
机译:随着世界各地海底观测站的建设和部署,海量海洋测量数据被收集并传输到数据中心。观测数据量的增加不仅为海洋科学研究提供了支持,而且对数据质量控制的要求也提高了,因为科学家必须确保其研究成果来自高质量的数据。在本文中,我们首先分析并定义了东海海底观测系统(ECSSOS)中出现的数据质量问题。然后,我们提出了一种检测和修复海底观测站数据质量问题的方法。结合领域专家的数据统计和专业知识,该方法包括三个部分:对数据进行预处理的通用预测试,并为进一步处理提供路由器;对异常数据点进行标记的数据异常检测方法;以及对数据进行填充的数据插值方法丢失和可疑的数据。通过使用滑动窗口并清除输入的建模数据,改进了自回归综合移动平均值(ARIMA)模型并将其应用于海底观测台数据质量控制。此外,还提出了一种质量控制标志系统,并将其应用于描述数据质量控制结果和处理过程信息。 ECSSOS中的实际观测数据用于实现和测试该方法。结果表明,该方法在检测和修复海底天文台数据质量问题方面有效。

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