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Modeling and Detection of Geospatial Objects Using Texture Motifs

机译:使用纹理图案对地理空间物体进行建模和检测

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We propose the use of texture motifs, or characteristic spatially recurrent patterns, for modeling and detecting geospatial objects. A method is proposed for learning a texture-motif model from object examples and detecting objects based on the learned model. The model is learned in a two-layered framework: the first learns the constituent "texture elements" of the motif and, the second, the spatial distribution of the elements. In the experimental session, we demonstrate the model training and selection methodology for objects given a set of training examples. The utility of such models for detecting the presence or absence of geospatial objects in large aerial image datasets comprising tens of thousands of image tiles is then emphasized
机译:我们建议使用纹理图案或特征性的空间重复模式来建模和检测地理空间物体。提出了一种从对象实例中学习纹理图案模型并基于所学习的模型检测对象的方法。该模型在两层框架中学习:第一个学习主题的组成“纹理元素”,第二个学习元素的空间分布。在实验环节中,我们通过一组训练示例演示了对象的模型训练和选择方法。然后强调了这种模型在检测包含成千上万个图块的大型航空图像数据集中是否存在地理空间对象的实用性

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