首页> 外文会议>2010 IEEE International Geoscience and Remote Sensing Symposium >Synergistic use of multi-temporal ALOS/PALSAR with SPOT multispectral satellite imagery for land cover mapping in the Ho Chi Minh city area, Vietnam
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Synergistic use of multi-temporal ALOS/PALSAR with SPOT multispectral satellite imagery for land cover mapping in the Ho Chi Minh city area, Vietnam

机译:越南胡志明市地区将多时相ALOS / PALSAR与SPOT多光谱卫星图像协同用于土地覆盖制图

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This paper discusses the synergistic use of multi-temporal ALOS/PALSAR and SPOT multi-spectral images for land cover classification in the Ho Chi Minh city area in Vietnam. Five PALSAR images and SPOT 2 multispectral image were used for classification. Integration of additional information such as interferometric coherence, textural data was also studied. Different combinations of multi-temporal SAR backscatter images, coherence data, SPOT multi-spectral bands, texture measures were generated and tested in order to determine the best combination, which gives the highest classification accuracy. Results indicate that the combination of SAR and optical images gives significantly higher classification accuracy than using a single type of data, and that the Support Vector Machine (SVM) classifier could outperform the Maximum Likelihood (ML) classifier in cases of classification of the combined datasets.
机译:本文讨论了多时相ALOS / PALSAR和SPOT多光谱图像在越南胡志明市地区土地覆盖分类中的协同使用。使用五张PALSAR图像和SPOT 2多光谱图像进行分类。还研究了诸如干涉相干性,纹理数据之类的附加信息的集成。生成并测试了多时相SAR背向散射图像,相干数据,SPOT多谱带,纹理测度的不同组合,以便确定最佳组合,从而获得最高的分类精度。结果表明,SAR和光学图像的组合比使用单一类型的数据提供了更高的分类精度,并且在对组合数据集进行分类的情况下,支持向量机(SVM)分类器的性能可能优于最大似然(ML)分类器。 。

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