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Applications of digital terrain data to enhance the utility of remotely sensed multispectral image data

机译:应用数字地形数据来增强遥感多光谱图像数据的实用性

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摘要

This research demonstrates two different applications of digital terrain data for improving multispectral classification of forest and range cover types. One method involves a stratification process to determine probabilities of occurrence and to develop an ecological distribution model for the six major vegetation types within the eastern San Francisco Volcanic Field in Arizona. The second method employs reflectance modeling techniques to reduce brightness variations resulting from topography and illumination in Landsat image data of the area in order to examine the intrinsic qualities of the natural surface cover. Image processing techniques are used to simulate the topographic effect on surface radiance and for quantifying Landsat scene modulation due solely to topography and sun angle. These two pre-classification modeling techniques lead to higher accuracies of cover type classifications. Further investigations and model integration are recommended to gain a more thorough understanding of vegetation cover characteristics in mountainous terrain.
机译:这项研究演示了数字地形数据在改善森林和覆盖范围类型的多光谱分类中的两种不同应用。一种方法涉及分层过程,以确定发生的可能性并为亚利桑那州东部旧金山火山场内的六种主要植被类型建立生态分布模型。第二种方法采用反射建模技术来减少由于该区域的Landsat图像数据中的地形和照明而导致的亮度变化,从而检查自然表面覆盖的内在质量。图像处理技术用于模拟地形对表面辐射的影响,并仅由于地形和太阳角度来量化Landsat场景调制。这两种预分类建模技术可以提高封面类型分类的准确性。建议进一步研究和模型集成,以更全面地了解山区地形的植被覆盖特征。

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