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Geospatial Data Mining for National Security: Land Cover Classification and Semantic Grouping

机译:用于国家安全的地理空间数据挖掘:土地覆盖分类和语义分组

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摘要

Land cover classification for the evaluation of land cover changes over certain areas or time periods is crucial for geospatial modeling, environmental crisis evaluation and urban open space planning. Remotely sensed images of various spatial and spectral resolutions make it possible to classify land covers on the level of pixels. Semantic meanings of large regions consisting of hundreds of thousands of pixels cannot be revealed by discrete and individual pixel classes, but can be derived by integrating various groups of pixels using ontologies. This paper combines data of different resolutions for pixel classification by support vector classifiers, and proposes an efficient algorithm to group pixels based on classes of neighboring pixels. The algorithm is linear in the number of pixels of the target area, and is scalable to very large regions. It also re-evaluates imprecise classifications according to neighboring classes for region level semantic interpretations. Experiments on Advanced Spaceborne Thermal Emission and Reflection Radiometer (ASTER) data of more than six million pixels show that the proposed approach achieves up to 99.8% cross validation accuracy and 89.25% test accuracy for pixel classification, and can effectively and efficiently group pixels to generate high level semantic concepts.
机译:土地覆盖分类对于评估某些地区或特定时期的土地覆盖变化,对于地理空间建​​模,环境危机评估和城市开放空间规划至关重要。各种空间和光谱分辨率的遥感图像可以在像素水平上对土地覆被进行分类。包含数十万个像素的大区域的语义无法通过离散的单个像素类别来揭示,而是可以通过使用本体集成各种像素组来得出。本文结合支持向量分类器对不同分辨率的数据进行像素分类,提出了一种基于相邻像素分类的高效像素分组算法。该算法在目标区域的像素数量上是线性的,并且可以扩展到非常大的区域。它还根据区域级别语义解释的相邻类重新评估不精确的分类。对超过600万像素的先进星载热发射和反射辐射计(ASTER)数据进行的实验表明,该方法可实现高达99.8%的交叉验证准确度和89.25%的像素分类测试准确度,并且可以有效地将像素分组以生成高级语义概念。

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