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构建用于湿地土地覆盖分类和高光谱遥感的光谱库。

Building spectral libraries for wetlands land cover classification and hyperspectral remote sensing.

作者信息

Zomer R J, Trabucco A, Ustin S L

机构信息

International Water Management Institute, Colombo, Sri Lanka.

出版信息

J Environ Manage. 2009 May;90(7):2170-7. doi: 10.1016/j.jenvman.2007.06.028. Epub 2008 Apr 18.

Abstract

Recent advances in remote sensing provide opportunities to map plant species and vegetation within wetlands at management relevant scales and resolutions. Hyperspectral imagers, currently available on airborne platforms, provide increased spectral resolution over existing space-based sensors that can document detailed information on the distribution of vegetation community types, and sometimes species. Development of spectral libraries of wetland species is a key component needed to facilitate advanced analytical techniques to monitor wetlands. Canopy and leaf spectra at five sites in California, Texas, and Mississippi were sampled to create a common spectral library for mapping wetlands from remotely sensed data. An extensive library of spectra (n=1336) for coastal wetland communities, across a range of bioclimatic, edaphic, and disturbance conditions were measured. The wetland spectral libraries were used to classify and delineate vegetation at a separate location, the Pacheco Creek wetland in the Sacramento Delta, California, using a PROBE-1 airborne hyperspectral data set (5m pixel resolution, 128 bands). This study discusses sampling and collection methodologies for building libraries, and illustrates the potential of advanced sensors to map wetland composition. The importance of developing comprehensive wetland spectral libraries, across diverse ecosystems is highlighted. In tandem with improved analytical tools these libraries provide a physical basis for interpretation that is less subject to conditions of specific data sets. To facilitate a global approach to the application of hyperspectral imagers to mapping wetlands, we suggest that criteria for and compilation of wetland spectral libraries should proceed today in anticipation of the wider availability and eventual space-based deployment of advanced hyperspectral high spatial resolution sensors.

摘要

遥感技术的最新进展为在与管理相关的尺度和分辨率下绘制湿地内的植物物种和植被图提供了机会。目前机载平台上配备的高光谱成像仪比现有的天基传感器具有更高的光谱分辨率,能够记录植被群落类型分布的详细信息,有时还能记录物种信息。开发湿地物种光谱库是促进采用先进分析技术监测湿地的关键组成部分。对加利福尼亚州、得克萨斯州和密西西比州五个地点的冠层和叶片光谱进行了采样,以创建一个用于从遥感数据绘制湿地图的通用光谱库。测量了一系列生物气候、土壤和干扰条件下沿海湿地群落的大量光谱库(n = 1336)。利用湿地光谱库,通过一个PROBE - 1机载高光谱数据集(5米像素分辨率,128个波段)对加利福尼亚州萨克拉门托三角洲的帕切科溪湿地这一单独地点的植被进行分类和描绘。本研究讨论了构建光谱库的采样和收集方法,并展示了先进传感器绘制湿地组成的潜力。强调了在不同生态系统中开发综合湿地光谱库的重要性。这些光谱库与改进的分析工具相结合,为解释提供了一个物理基础,较少受特定数据集条件的影响。为了促进全球应用高光谱成像仪绘制湿地图的方法,我们建议,鉴于先进的高光谱高空间分辨率传感器将更广泛可用并最终进行天基部署,现在就应着手制定湿地光谱库的标准并进行汇编。

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