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首页> 外文期刊>Remote Sensing of Environment: An Interdisciplinary Journal >Retrieval of leaf area index in different vegetation types using high resolution satellite data
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Retrieval of leaf area index in different vegetation types using high resolution satellite data

机译:利用高分辨率卫星数据反演不同植被类型的叶面积指数

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摘要

With the successful launch of the IKONOS satellite, very high geometric resolution imagery is within reach of civilian users. In the 1-m spatial resolution images acquired by the IKONOS satellite, details of buildings, individual trees, and vegetation structural variations are detectable. The visibility of such details opens up many new applications, which require the use of geometrical information contained in the images. This paper presents an application in which spectral and textural information is used for mapping the leaf area index (LAI) of different vegetation types. This study includes the estimation of LAI by different spectral vegetation indices (SVIs) combined with image textural information and geostatistical parameters derived from high resolution satellite data. It is shown that the relationships between spectral vegetation indices and biophysical parameters should be developed separately for each vegetation type, and that the combination of the texture indices and vegetation indices results in an improved fit of the regression equation for most vegetation types when compared with one derived from SVIs alone. High within-field spatial variability was found in LAI, suggesting that high resolution mapping of LAI may be relevant to the introduction of precision farming techniques in the agricultural management strategies of the investigated area. (C) 2003 Elsevier Science Inc. All rights reserved. [References: 38]
机译:随着IKONOS卫星的成功发射,非常高的几何分辨率图像已为平民用户所能及。在IKONOS卫星获取的1米空间分辨率图像中,可以检测到建筑物,单个树木和植被结构变化的细节。这些细节的可见性打开了许多新的应用程序,这些应用程序要求使用图像中包含的几何信息。本文提出了一种应用,其中光谱和纹理信息用于绘制不同植被类型的叶面积指数(LAI)。这项研究包括通过不同光谱植被指数(SVI)结合从高分辨率卫星数据得出的图像纹理信息和地统计参数来估算LAI。研究表明,每种植被类型的光谱植被指数与生物物理参数之间的关系应分别建立,并且与一种植被指数相比,纹理指数和植被指数的组合可改善大多数植被类型的回归方程的拟合度。仅来自SVI。在LAI中发现了较高的田间空间变异性,这表明LAI的高分辨率制图可能与在研究区域的农业管理策略中引入精确农业技术有关。 (C)2003 Elsevier Science Inc.保留所有权利。 [参考:38]

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