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Repeated-measures regression designs and analysis for environmental effects monitoring programs

机译:环境影响监测程序的重复测量回归设计和分析

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This paper provides a general overview of repeated-measures (RM) regression designs and analysis for marine monitoring programs, in support of sediment chemistry, particle size and benthic macroinvertebrate community analyses provided as part of this series. In RM regression designs, the same n replicates (usually stations in monitoring programs) are re-sampled (i.e., repeatedly measured) at t > 1 Times (usually years). The stations provide variation in the predictor, or X variables. In the Terra Nova environmental effects monitoring (EEM) program, n = 48 stations were sampled in each of t = 7 years from 2000 to 2010. Two distance measures from five drill centres (sources of drilling wastes) were fixed predictor variables. RM regression designs are rarely used in environmental monitoring programs, but are often suitable and would be appropriate if applied to data from many monitoring programs. For the Terra Nova EEM program, carry-over effects, or persistent and usually small-scale variations among stations unrelated to distance, were strong for most sediment quality variables. Whenever natural carry-over effects are strong, RM designs and analysis will usually be more powerful and suitable than alternative approaches to the analysis. (C) 2014 Elsevier Ltd. All rights reserved.
机译:本文概述了海洋监测计划的重复测量(RM)回归设计和分析,以支持该系列提供的沉积物化学,粒径和底栖大型无脊椎动物群落分析。在RM回归设计中,相同的n个重复样本(通常是监视程序中的站点)在t> 1倍(通常是几年)时被重新采样(即重复测量)。测站提供了预测变量或X变量的变化。在Terra Nova环境影响监测(EEM)程序中,从2000年到2010年的t = 7年中,每个年都采样了48个台站。来自五个钻探中心(钻探废物的来源)的两个距离测量值是固定的预测变量。 RM回归设计很少在环境监测程序中使用,但通常适用,并且如果应用于许多监测程序的数据,也将是适当的。对于Terra Nova EEM程序而言,对于大多数沉积物质量变量而言,结转效应或与距离无关的站点之间的持久且通常是小范围的变化很强。只要自然的残留效应很强,RM设计和分析通常会比其他分析方法更强大和更适合。 (C)2014 Elsevier Ltd.保留所有权利。

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