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数据插补对空气质量预测问题的影响。

The impact of data imputation on air quality prediction problem.

机构信息

Faculty of Mathematics and Computer Science, University of Science, Ho Chi Minh City, Vietnam.

Vietnam National University Ho Chi Minh City, Ho Chi Minh City, Vietnam.

出版信息

PLoS One. 2024 Sep 12;19(9):e0306303. doi: 10.1371/journal.pone.0306303. eCollection 2024.

Abstract

With rising environmental concerns, accurate air quality predictions have become paramount as they help in planning preventive measures and policies for potential health hazards and environmental problems caused by poor air quality. Most of the time, air quality data are time series data. However, due to various reasons, we often encounter missing values in datasets collected during data preparation and aggregation steps. The inability to analyze and handle missing data will significantly hinder the data analysis process. To address this issue, this paper offers an extensive review of air quality prediction and missing data imputation techniques for time series, particularly in relation to environmental challenges. In addition, we empirically assess eight imputation methods, including mean, median, kNNI, MICE, SAITS, BRITS, MRNN, and Transformer, to scrutinize their impact on air quality data. The evaluation is conducted using diverse air quality datasets gathered from numerous cities globally. Based on these evaluations, we offer practical recommendations for practitioners dealing with missing data in time series scenarios for environmental data.

摘要

随着环境问题的日益严重,准确的空气质量预测变得至关重要,因为它们有助于制定预防措施和政策,以应对空气质量差可能带来的潜在健康危害和环境问题。大多数情况下,空气质量数据是时间序列数据。然而,由于各种原因,我们在数据准备和聚合步骤中经常会遇到数据集存在缺失值的情况。无法分析和处理缺失数据将严重阻碍数据分析过程。针对这一问题,本文对时间序列空气质量预测和缺失数据插补技术进行了全面的回顾,特别是针对环境挑战。此外,我们还对八种插补方法(包括均值、中位数、kNNI、MICE、SAITS、BRITS、MRNN 和 Transformer)进行了实证评估,以研究它们对空气质量数据的影响。评估使用了从全球多个城市收集的各种空气质量数据集进行。基于这些评估,我们为处理环境数据时间序列中缺失数据的从业者提供了实用建议。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/9817/11392267/2dcc166bd9a1/pone.0306303.g001.jpg

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