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Quantitative evaluation of variations in rule-based classifications of land cover in urban neighbourhoods using WorldView-2 imagery

机译:使用WorldView-2影像对城市社区基于规则的土地覆被分类中的变化进行定量评估

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摘要

The increasing availability of high resolution imagery has triggered the need for automated image analysis techniques, with reduced human intervention and reproducible analysis procedures. The knowledge gained in the past might be of use to achieving this goal, if systematically organized into libraries which would guide the image analysis procedure. In this study we aimed at evaluating the variability of digital classifications carried out by three experts who were all assigned the same interpretation task. Besides the three classifications performed by independent operators, we developed an additional rule-based classification that relied on the image classifications best practices found in the literature, and used it as a surrogate for libraries of object characteristics. The results showed statistically significant differences among all operators who classified the same reference imagery. The classifications carried out by the experts achieved satisfactory results when transferred to another area for extracting the same classes of interest, without modification of the developed rules.
机译:高分辨率图像的可用性不断提高,触发了对自动化图像分析技术的需求,同时减少了人为干预和可重复的分析程序。如果系统地组织成可指导图像分析程序的库,则过去获得的知识可能有助于实现该目标。在这项研究中,我们旨在评估由分配了相同解释任务的三位专家进行的数字分类的可变性。除了由独立操作员执行的三种分类外,我们还开发了一种基于规则的附加分类,该分类基于文献中发现的图像分类最佳实践,并将其用作对象特征库的替代。结果显示,对同一参考图像分类的所有操作员之间在统计学上都存在显着差异。专家进行的分类在转移到另一个区域以提取相同兴趣类别时取得了令人满意的结果,而无需修改已开发的规则。

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