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我们希望从观察性数据集估计什么?根据化学管理阶段选择适当的统计分析方法。

What do we want to estimate from observational datasets? Choosing appropriate statistical analysis methods based on the chemical management phase.

机构信息

Health and Environmental Risk Division, National Institute for Environmental Studies, Ibaraki, Tsukuba, Japan.

Japan Society for the Promotion of Science, Tokyo, Japan.

出版信息

Integr Environ Assess Manag. 2022 Sep;18(5):1414-1422. doi: 10.1002/ieam.4564. Epub 2022 Jan 12.

Abstract

The goals of observational dataset analysis vary with the management phase of environments threatened by anthropogenic chemicals. For example, identifying severely compromised sites is necessary to determine candidate sites in which to implement measures during early management phases. Among the most effective approaches is developing regression models with high predictive power for dependent variable values using the Akaike information criterion. However, this analytical approach may be theoretically inappropriate to obtain the necessary information in various chemical management phases, such as the intervention effect size of a chemical required in the late chemical management phase to evaluate the necessity of an effluent standard and its specific value. However, choosing appropriate statistical methods based on the data analysis objective in each chemical management phase has rarely been performed. This study provides an overview of the primary data analysis objectives in the early and late chemical management phases. For each objective, several suitable statistical analysis methods for observational datasets are detailed. In addition, the study presents examples of linear regression analysis procedures using an available dataset derived from field surveys conducted in Japanese rivers. Integr Environ Assess Manag 2022;18:1414-1422. © 2021 The Authors. Integrated Environmental Assessment and Management published by Wiley Periodicals LLC on behalf of Society of Environmental Toxicology & Chemistry (SETAC).

摘要

观测数据集分析的目标因受人为化学物质威胁的环境所处的管理阶段而异。例如,确定严重受损的地点是必要的,以便在早期管理阶段确定实施措施的候选地点。最有效的方法之一是使用赤池信息量准则(Akaike information criterion)为因变量值开发具有高预测能力的回归模型。然而,这种分析方法在各个化学管理阶段可能在理论上并不适合获取必要的信息,例如在化学后期管理阶段评估排放标准的必要性及其具体值时所需的化学干预效应大小。然而,根据每个化学管理阶段的数据分析目标选择合适的统计方法的情况很少见。本研究概述了早期和晚期化学管理阶段的主要数据分析目标。对于每个目标,详细介绍了几种适用于观测数据集的统计分析方法。此外,本研究还介绍了使用来自日本河流实地调查的可用数据集进行线性回归分析程序的示例。《综合环境评估与管理》2022 年;18:1414-1422。©2021 作者。综合环境评估与管理由 Wiley 期刊 LLC 代表环境毒理化学学会(SETAC)出版。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/a561/9539851/8be616967aa1/IEAM-18-1414-g002.jpg

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