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Performance evaluation and analysis of monocular building extraction from aerial imagery

机译:航空影像单眼建筑物提取性能评估与分析

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Research in monocular building extraction from aerial imagery has neglected performance evaluation in three areas: unbiased metrics for quantifying detection and delineation performance, an evaluation methodology for applying these metrics to a representative body of test imagery, and an approach for understanding the impact of image and scene content on building extraction algorithms. This paper addresses these areas with an end-to-end performance evaluation of four existing monocular building extraction systems, using image space and object space-based metrics on 83 test images of 18 sites. This analysis is supplemented by an examination of the effects of image obliquity and object complexity on system performance, as well as a case study on the effects of edge fragmentation. This widely applicable performance evaluation approach highlights the consequences of various traditional assumptions about camera geometry, image content and scene structure, and demonstrates the utility of rigorous photogrammetric object space modeling and primitive-based representations for building extraction.
机译:从航空影像中提取单眼建筑物的研究已忽略了以下三个方面的性能评估:用于量化检测和轮廓表现的无偏度量,将这些度量应用于测试图像的代表性主体的评估方法以及用于理解图像和图像影响的方法。场景内容有关建筑物提取算法的信息。本文通过对18个站点的83个测试图像上的图像空间和基于对象空间的度量标准,对四个现有的单眼建筑物提取系统进行端到端性能评估,以解决这些问题。通过分析图像倾斜度和对象复杂度对系统性能的影响,以及对边缘碎片影响的案例研究,可以补充此分析。这种广泛适用的性能评估方法突出了有关相机几何形状,图像内容和场景结构的各种传统假设的后果,并演示了严格的摄影测量对象空间建模和基于原始表示的建筑物提取方法的实用性。

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