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Automatic Rooftop Extraction in Nadir Aerial Imagery of Suburban Regions Using Corners and Variational Level Set Evolution

机译:利用拐角和变化水平集演化自动提取郊区地区天底航空影像中的屋顶

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Building profile extraction from aerial imagery constitutes a key element in numerous geospatial applications. Rooftop detection has been addressed through a variety of approaches that are, however, rarely capable of coping with conditions such as arbitrary illumination, variant reflections, and complex building profiles. This paper proposes a new method for extracting 2-D rooftop footprints from nadir aerial imagery through a fully automatic approach that handles arbitrary illumination, variant reflections, and complex building profiles without shape priors. The proposed method combines the strength of energy-based approaches with distinctiveness of corners. Corners are assessed using multiple color and color-invariance spaces. A rooftop outline is generated from selected corner candidates and further refined to fit the best possible boundaries through level-set curve evolution that is enhanced via a mean squared error map. Experimental results confirm the ability of the presented system to effectively extract rooftop profiles with an overall average shape accuracy of 84 $%$, correctness of 94$%$, completeness of 92 $%$, and quality of 88$%$ .
机译:从航空影像中提取建筑物轮廓是许多地理空间应用中的关键要素。通过多种方法解决了屋顶检测的问题,但是,这些方法很少能够应对诸如任意照明,变化反射和复杂建筑物轮廓之类的条件。本文提出了一种通过全自动方法从天底航空影像中提取二维屋顶足迹的新方法,该方法可以处理任意照明,变化反射和复杂的建筑轮廓而无需先验形状。所提出的方法结合了基于能量的方法的优势和拐角的独特性。使用多个颜色和颜色不变性空间评估角点。屋顶轮廓是从选定的拐角候选点生成的,并通过水平集曲线演变(进一步通过均方误差图增强)来进一步优化以适合最佳边界。实验结果证实了所提出的系统能够有效地提取屋顶轮廓的能力,总体平均形状精度为84 $%$,正确度为94 $%$,完整性为92 $%$,质量为88 $%$。

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