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Evaluation of sampling strategies for estimating area of landcover and land-cover change.

机译:评估估计土地覆盖面积和土地覆盖变化的抽样策略。

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摘要

Monitoring land-cover area provides critical information to land managers and policy makers. Data from land-cover maps are often incorporated in model-assisted estimators such as difference and post-stratified estimators to make monitoring more cost effective. The objectives of this research were to evaluate these model-assisted estimators over a broad set of populations to quantify differences in precision for cluster sampling designs and to quantify the relative contributions of among- and within-cluster variance. Based on an assessment of over 100 populations distributed globally, model-assisted estimators reduced standard errors by 10-20% relative to a direct estimator that uses no auxiliary information. The gain in precision increased as map accuracy increased. Two-stage sampling resulted in standard errors generally only 5-10% higher than one-stage cluster sampling. A hybrid estimator constructed for use when the difference estimator had a high standard error was unbiased and yielded precision comparable to or better than the difference estimator.
机译:监测土地覆盖面积可为土地管理者和决策者提供重要信息。通常将土地覆盖图上的数据合并到模型辅助的估算器中,例如差异估算器和后分层估算器,以使监视更具成本效益。这项研究的目的是在广泛的人群中评估这些模型辅助的估计量,以量化集群抽样设计的精度差异,并量化集群间和集群内方差的相对贡献。根据对全球100多个人口的评估,与不使用辅助信息的直接估算器相比,模型辅助估算器可将标准误差降低10-20%。精度的提高随着地图精度的提高而增加。两阶段抽样导致的标准误通常仅比一阶段集群抽样高5-10%。当差估计量具有高标准误差时构造为使用的混合估计量是无偏的,并且其精度可与差估计量相比或更高。

著录项

  • 作者

    Lombardi, John A.;

  • 作者单位

    State University of New York College of Environmental Science and Forestry.;

  • 授予单位 State University of New York College of Environmental Science and Forestry.;
  • 学科 Statistics.;Remote sensing.
  • 学位 M.S.
  • 年度 2015
  • 页码 120 p.
  • 总页数 120
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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