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Have Fun Storming the Castle(s)!

机译:玩得开心袭击城堡!

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摘要

In recent years, large-scale datasets, each typically tailored to a particular problem, have become a critical factor towards fueling rapid progress in the field of computer vision. This paper describes a valuable new dataset that should accelerate research efforts on problems such as fine-grained classification, instance recognition and retrieval, and geolocalization. The dataset, comprised of more than 2400 individual castles, palaces and fortresses from more than 90 countries, contains more than 770K images in total. This paper details the dataset’s construction process, the characteristics including annotations such as location (geotagged latlong and country label), construction date, Google Maps link and estimated per-class and per-image difficulty. An experimental section provides baseline experiments for important vision tasks including classification, instance retrieval and geolocalization (estimating global location from an image’s visual appearance). The dataset is publicly available at vision.cs.byu.edu/castles.
机译:近年来,大规模数据集通常对特定问题量身定制,已成为促进计算机视野中快速进展的关键因素。本文介绍了一个有价值的新数据集,应该加速研究措施,例如细粒度分类,实例识别和检索以及地理化。该数据集包括超过90多个国家的2400多个单独的城堡,宫殿和堡垒,总共包含超过770K的图像。本文详细介绍了数据集的施工过程,包括注释等特点(地理标记的Latlong和国家标签),施工日期,谷歌地图链接和估计每级和每级难度。实验部分为重要视觉任务提供基线实验,包括分类,实例检索和地理化(从图像的视觉外观估计全球位置)。 DataSet在Vision.cs.Byu.edu/castles上公开使用。

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