APPLICATION OF MULTIIAYER NEURAL NETWORKS IN THE CLASSIFICATION OF FOREST TYPES USING RADAR IMAGERY

L. Y. Nazarov
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Abstract

The use of multilayer neural networks for the classification of forest types on the basis of the processing of radar images is investigated. It is demonstrated by modeling that with respect to stochastic characteristics the described classification method (using multilayer neural networks) and a training procedure designed to increase its accuracy (via the a priori specification of radar reflectance values typical of specific types of vegetation) are highly effective. The methods were tested and verified using SIR-C images recorded by the U.S. Space Shuttle.
多层神经网络在雷达影像森林类型分类中的应用
在雷达图像处理的基础上,研究了多层神经网络在森林类型分类中的应用。通过建模证明,对于随机特征,所描述的分类方法(使用多层神经网络)和旨在提高其准确性的训练程序(通过特定类型植被典型雷达反射率值的先验规范)是非常有效的。使用美国航天飞机记录的SIR-C图像对这些方法进行了测试和验证。
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