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Urban land-use classification by combining high-resolution optical and long-wave infrared images

机译:结合高分辨率光学图像和长波红外图像进行城市土地利用分类

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AbstractMulti-sensor and multi-resolution source images consisting of optical and long-wave infrared (LWIR) images are analyzed separately and then combined for urban mapping in this study. The framework of its methodology is based on a two-level classification approach. In the first level, contributions of these two data sources in urban mapping are examined extensively by four types of classifications, i.e. spectral-based, spectral-spatial-based, joint classification, and multiple feature classification. In the second level, an objected-based approach is applied to decline the boundaries. The specificity of our proposed framework not only lies in the combination of two different images, but also the exploration of the LWIR image as one complementary spectral information for urban mapping. To verify the effectiveness of the presented classification framework and to confirm the LWIR’s complementary role in the urban mapping task, experiment results are evaluated by the grss_dfc_2014 data-set.
机译:摘要分别分析由光学和长波红外(LWIR)图像组成的多传感器和多分辨率源图像,然后将其组合以进行城市地图绘制。它的方法框架基于两级分类方法。在第一级中,这两种数据源在城市制图中的贡献通过四种类型的分类进行了广泛研究,即基于光谱的分类,基于光谱空间的分类,联合分类和多特征分类。在第二级中,应用了基于对象的方法来降低边界。我们提出的框架的特殊性不仅在于两个不同图像的组合,还在于对LWIR图像的探索,作为城市制图的一种补充光谱信息。为了验证所提出的分类框架的有效性并确认LWIR在城市制图任务中的补充作用,使用grss_dfc_2014数据集评估了实验结果。

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