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Classification of JERS-1 Image Mosaic of Central Africa Using A Supervised Multiscale Classifier of Texture Features

机译:使用有监督的多尺度纹理特征分类器对中非JERS-1图像马赛克进行分类

摘要

In this paper, a multiscale approach is introduced to classify the Japanese Research Satellite-1 (JERS-1) mosaic image over the Central African rainforest. A series of texture maps are generated from the 100 m mosaic image at various scales. Using a quadtree model and relating classes at each scale by a Markovian relationship, the multiscale images are classified from course to finer scale. The results are verified at various scales and the evolution of classification is monitored by calculating the error at each stage.
机译:本文采用多尺度方法对中部非洲热带雨林上的日本研究卫星1(JERS-1)马赛克图像进行分类。从100 m马赛克图像以各种比例生成一系列纹理图。使用四叉树模型并通过马尔可夫关系在每个尺度上关联类别,将多尺度图像从航向分类为更精细。在各种规模上验证结果,并通过计算每个阶段的误差来监控分类的演变。

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