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Spatial econometric analysis of a watershed utilizing geographic information systems: Water quality effects of point and non-point pollution sources in the Neuse River basin, North Carolina.

机译:利用地理信息系统对流域进行空间计量经济学分析:北卡罗来纳州Neuse河流域的点和非点污染源的水质影响。

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摘要

This study utilizes elements of several different fields of study to facilitate more effective and efficient policy development for water pollution control. In order to implement efficient environmental policy, spatial aspects of watersheds should be carefully incorporated into empirical analysis. The geographical attributes of a watershed induce various spatial stochastic processes, causing surface water quality data in streams to have a unique spatial structure. In this study, geographical data of watersheds are collected and manipulated to find a consistent basis for comparing measures of pollution sources with variations in water quality across hydrologic units in the Neuse River basin in North Carolina.; This research seeks to calibrate an empirical watershed model using available spatial (statistical) analytical techniques. Methods are demonstrated of utilizing Geographic Information Systems (GIS) to convert data from multiple sources to a common basis for water quality analysis. A spatial autoregressive response model is chosen considering spatial aspects of a regional watershed, and a corresponding structural watershed model is constructed. The empirical watershed model is designed to incorporate spatial effects and to produce accurate estimates. The model specifies that the spatially weighted sum of neighbor water qualities (total nitrogen [TN] concentrations) affects the TN concentration of each downstream monitoring unit, as do the standard covariates of local pollution sources and heterogeneous watershed characteristics. The completed standard econometric analysis includes cross-sectional estimation of several functions predicting TN concentration in streams conditional on watershed characteristics and potential sources of TN in the hydrologic unit.; Results show that a clear understanding of regional spatial capacity will help avoid overuse of water resources. Specific knowledge of spatial information and empirical relationships allows improved design of controls on economic activity across regions (e.g., Total Daily Maximum Daily Load [TMDL] and nutrient trading programs) to preserve environmental resources. The study concludes by recognizing that a more robust watershed analysis would require more spatial data refinement and the option of panel data analysis.
机译:这项研究利用了几个不同研究领域的要素,以促进更有效地制定水污染控制政策。为了实施有效的环境政策,应将流域的空间方面认真纳入经验分析。流域的地理属性引发了各种空间随机过程,导致河流中的地表水质量数据具有独特的空间结构。在这项研究中,流域的地理数据被收集和处理,以找到一个一致的基础,用于比较北卡罗来纳州Neuse河流域各水文单元的污染源与水质变化的度量。本研究旨在使用可用的空间(统计)分析技术来校准经验分水岭模型。演示了利用地理信息系统(GIS)将来自多个来源的数据转换为用于水质分析的通用基础的方法。考虑区域流域的空间方面,选择空间自回归响应模型,并建立相应的结构性流域模型。经验性分水岭模型旨在合并空间效应并产生准确的估计值。该模型规定,邻域水质的空间加权总和(总氮[TN]浓度)会影响每个下游监测单元的TN浓度,局部污染源和异质流域特征的标准协变量也会如此。完整的标准计量经济学分析包括对数个函数的横截面估计,这些函数根据流域特征和水文单元中TN的潜在来源来预测河流中的TN浓度。结果表明,对区域空间容量的清晰了解将有助于避免水资源的过度使用。对空间信息和经验关系的特定了解可以改进跨区域经济活动的控制设计(例如,总每日最大每日负荷[TMDL]和营养物交易计划),以保护环境资源。该研究的结论是,认识到更强大的分水岭分析将需要更多的空间数据完善和面板数据分析的选择。

著录项

  • 作者

    Lee, Jong-Hwa.;

  • 作者单位

    North Carolina State University.;

  • 授予单位 North Carolina State University.;
  • 学科 Economics General.; Environmental Sciences.
  • 学位 Ph.D.
  • 年度 2005
  • 页码 116 p.
  • 总页数 116
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 经济学;环境科学基础理论;
  • 关键词

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