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GLOBAL-SCALE OBJECT DETECTION USING SATELLITE IMAGERY

机译:使用卫星图像的全局级别对象检测

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In recent years, there has been a substantial increase in the availability of high-resolution commercial satellite imagery, enabling a variety of new remote-sensing applications. One of the main challenges for these applications is the accurate and efficient extraction of semantic information from satellite imagery. In this work, we investigate an important instance of this class of challenges which involves automatic detection of multiple objects in satellite images. We present a system for large-scale object training and detection, leveraging recent advances in feature representation and aggregation within the bag-of-words paradigm. Given the scale of the problem, one of the key challenges in learning object detectors is the acquisition and curation of labeled training data. We present a crowd-sourcing based framework that allows efficient acquisition of labeled training data, along with an iterative mechanism to overcome the label noise introduced by the crowd during the labeling process. To show the competence of the presented scheme, we show detection results over several object-classes using training data captured from close to 200 cities and tested over multiple geographic locations.
机译:近年来,高分辨率商业卫星图像的可用性有很大的增加,从而实现了各种新的遥感应用。这些应用的主要挑战之一是从卫星图像准确和有效地提取语义信息。在这项工作中,我们调查了这类挑战的重要实例,这涉及自动检测卫星图像中的多个对象。我们为大规模对象培训和检测提供了一个系统,利用了近期特征表示和袋式范式的聚集的最新进步。鉴于问题的规模,学习对象探测器中的关键挑战之一是标记培训数据的获取和策划。我们展示了一种基于人群采购的框架,可以有效地获取标记的训练数据,以及迭代机制,以克服在标签过程中克服人群引入的标签噪声。为了展示所提出的方案的能力,我们将使用培训数据从接近200个城市捕获并在多个地理位置测试中来显示检测结果。

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