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An HGM approach for assessing wetland functions in central Oklahoma: Hydrogeomorphic classification and functional attributes.

机译:一种HGM方法,用于评估俄克拉荷马州中部的湿地功能:水文地貌分类和功能属性。

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摘要

Scope and Method of Study: The main objectives of this study were to: (1) identify the hydrogeomorphic (HGM) wetland subclasses within the Cross Timbers and Central Great Plains Ecoregions of central Oklahoma, (2) develop a spatial inventory of the number of wetlands within each subclass, (3) assess if natural variability of wetland assessment variables was reduced by HGM subclassification, and (4) determine if landscape disturbance could be correlated with assessment variables. The identification of HGM subclasses was completed by conducting field verification of 190 wetlands throughout the study area. Wetlands were placed in subclasses based on visual assessments of water source, hydrodynamics and geomorphology. The HGM inventory was calculated by reclassifying National Wetlands Inventory (NWI) polygons into HGM classes in Geographic Information Systems using spatial and attribute queries. The variability within the two dominant HGM riverine subclasses was calculated for 21 vegetation physiognomy, soil structure and water chemistry variables using redundancy analysis (RDA), principal components analysis (PCA) and forward stepwise regression. The effects of HGM subclass, precipitation, stream order, and landscape disturbance were assessed on all the response variables.;Findings and Conclusions: In the study area, 16 HGM subclasses in 4 HGM classes were identified. Using NWI polygons that were mapped over 30 years ago introduced over 20% error to the reclassification. As a result, it is essential that HGM inventories developed from NWI include accuracy assessments in the field. Wetland subclass explained 14.2% of the variability among site metrics using RDA. However, within subclasses several hydrological and climactic factors caused natural variation among the assessment variables. The effects of landscape disturbance on assessment variables were minimal. Natural variability within subclasses may be too high to create assessment models that are responsive to disturbance. Alternatively, disturbance factors not included may have a greater impact on assessment variables. It is essential for others developing HGM assessment tools to calibrate assessment variables to disturbance, so assessment models can be developed that accurately assess wetland health.
机译:研究的范围和方法:这项研究的主要目的是:(1)确定俄克拉荷马州中部的跨木材和中部大平原生态区内的水文地貌(HGM)湿地亚类,(2)编制关于每个子类中的湿地,(3)评估是否通过HGM子分类减少了湿地评估变量的自然变异性,以及(4)确定景观干扰是否可以与评估变量相关。通过在整个研究区域内对190个湿地进行现场验证,完成了对HGM亚类的鉴定。根据对水源,水动力和地貌的视觉评估,将湿地归为子类。通过使用空间和属性查询在地理信息系统中将国家湿地清单(NWI)多边形重新分类为HGM类来计算HGM清单。使用冗余分析(RDA),主成分分析(PCA)和正向逐步回归,针对21种植被地貌,土壤结构和水化学变量,计算了两个主要HGM河流子类内的变异性。评估了HGM子类,降水,水流次序和景观扰动对所有响应变量的影响。结果与结论:在研究区域,确定了4个HGM类中的16个HGM子类。使用30年前映射的NWI多边形会给重新分类带来20%以上的错误。因此,从NWI开发的HGM清单必须包括该领域的准确性评估,这一点至关重要。湿地亚类使用RDA解释了站点指标之间14.2%的变异性。但是,在子类中,一些水文和气候因素导致了评估变量之间的自然变化。景观扰动对评估变量的影响很小。子类中的自然变异性可能太高而无法创建对干扰做出响应的评估模型。可替代地,未包括的干扰因素可能对评估变量有更大的影响。对于其他人来说,开发HGM评估工具来校准评估干扰变量至关重要,因此可以开发评估模型来准确评估湿地健康。

著录项

  • 作者

    Dvorett, Daniel.;

  • 作者单位

    Oklahoma State University.;

  • 授予单位 Oklahoma State University.;
  • 学科 Biology Ecology.;Natural Resource Management.;Environmental Management.
  • 学位 M.S.
  • 年度 2010
  • 页码 115 p.
  • 总页数 115
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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