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Regionwise Classification of Building Facade Images

机译:建筑立面图像的区域明智分类

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摘要

In recent years, the classification task of building facade images receives a great deal of attention in the photogrammetry community. In this paper, we present an approach for regionwise classification using an efficient randomized decision forest classifier and local features. A conditional random field is then introduced to enforce spatial consistency between neighboring regions. Experimental results are provided to illustrate the performance of the proposed methods using image from eTRIMS database, where our focus is the object classes building, car, door, pavement, road, sky, vegetation, and window.
机译:近年来,建筑立面图像的分类任务在摄影测量界引起了广泛的关注。在本文中,我们提出了一种使用有效的随机决策森林分类器和局部特征进行区域分类的方法。然后引入条件随机场以增强相邻区域之间的空间一致性。实验结果通过使用eTRIMS数据库中的图像来说明所提出方法的性能,我们的重点是建筑物,汽车,门,人行道,道路,天空,植被和窗户等物体类。

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