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Evaluating state-of-the-art remotely sensed data and methods for mapping wetlands in Minnesota.

机译:评估最新的遥感数据和明尼苏达州湿地测绘方法。

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摘要

Appropriate management of our natural resources requires constant improvement and update of natural resource inventories. Remote sensing data and techniques offer an effective way to map and estimate changes in our current natural resources. The research presented in this dissertation will demonstrate state-of-the art remote sensing based methods for mapping natural and man-made features, including wetlands, general land cover, and building footprints. High resolution remotely sensed data used in this research included: lidar (light detection and ranging) data (low and high lidar posting density) and multispectral (NIR, blue, green and red bands) leaf-off aerial imagery. This research examined high resolution lidar data through the evaluation of various lidar posting densities and their influence on the accuracy of building footprints and DEMs. The lidar DEM analysis was extended by creating a Compound Topographic Index (CTI) from the DEM to evaluate the potential of the CTI's information for identifying wetland's location. Finally, the results from the second chapter were integrated into the third chapter by combining CTI, high resolution imagery, Digital Surface Model (DSM) and lidar intensity for mapping four land cover classes, including: wetlands, urban, agricultural and forest. A state-of-the-art remote sensing technique known as Object-Based Image Analysis (OBIA) was used to integrate lidar derived products and high resolution imagery. Results and findings of this research are important in two ways: First, advancing the understanding of lidar and lidar derivatives for mapping natural and manmade landscape features. Second, providing needed information to the scientific and civilian community, particularly in the state of Minnesota, to help with the process of updating wetland inventories such as the NWI and increasing the accuracy of mapping wetlands efforts with state-of-the-art techniques.
机译:适当管理我们的自然资源需要不断改进和更新自然资源清单。遥感数据和技术提供了一种有效的方式来绘制和估算我们当前自然资源的变化。本文提出的研究将展示基于最新遥感技术的自然和人为特征(包括湿地,一般土地覆盖和建筑足迹)地图绘制方法。这项研究中使用的高分辨率遥感数据包括:激光雷达(光检测和测距)数据(低和高激光雷达发布密度)和多光谱(近红外,蓝色,绿色和红色波段)的空中影像。这项研究通过评估各种激光雷达发布密度及其对建筑物覆盖区和DEM准确性的影响,检查了高分辨率激光雷达数据。通过从DEM创建复合地形图索引(CTI)来扩展激光雷达DEM分析,以评估CTI信息识别湿地位置的潜力。最后,通过结合CTI,高分辨率图像,数字表面模型(DSM)和激光雷达强度​​将第二章的结果整合到第三章中,以绘制四个土地覆盖类别,包括:湿地,城市,农业和森林。被称为基于对象的图像分析(OBIA)的最先进的遥感技术用于集成激光雷达衍生的产品和高分辨率图像。这项研究的结果和发现在两个方面很重要:首先,增进对激光雷达和激光雷达导数的了解,以绘制自然和人造景观特征。第二,向科学和平民社区(尤其是在明尼苏达州)提供必要的信息,以帮助更新诸如NWI之类的湿地清单,并提高利用最新技术绘制湿地工作图的准确性。

著录项

  • 作者

    Rampi, Lian Pamela.;

  • 作者单位

    University of Minnesota.;

  • 授予单位 University of Minnesota.;
  • 学科 Remote sensing.;Natural resource management.
  • 学位 Ph.D.
  • 年度 2013
  • 页码 133 p.
  • 总页数 133
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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