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Evaluation of Synthetically Generated Airborne Image Datasets using Feature Detectors as Performance Metric

机译:使用特征检测器作为性能指标来评估合成生成的机载图像数据集

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The use of synthetic datasets to develop, prototype and qualify new computer vision algorithms is currently not widely accepted, though highly sought after by the industry. This is due to lack of knowledge on how the results acquired with such datasets will transfer to real live performance. Therefore, this paper introduces an approach to evaluate modelled synthetic datasets against their real counterparts. In a use case, the performance of common feature detectors is evaluated using the repeatability metric against real and synthetic datasets. Based on resulting performances; general usability, rendering techniques and modelling efforts for generation of synthetic datasets are discussed.
机译:尽管业界一直在追捧合成数据集来开发,原型化和验证新的计算机视觉算法,但这种方法目前尚未得到广泛接受。这是由于缺乏有关使用此类数据集获取的结果如何转换为真实现场表演的知识。因此,本文介绍了一种针对建模的合成数据集对其真实副本进行评估的方法。在一个用例中,使用针对真实数据集和合成数据集的可重复性度量来评估公共特征检测器的性能。根据产生的表现;讨论了用于生成综合数据集的一般可用性,渲染技术和建模工作。

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