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Basic level scene understanding: categories, attributes and structures

机译:基本的场景理解:类别,属性和结构

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A longstanding goal of computer vision is to build a system that can automatically understand a 3D scene from a single image. This requires extracting semantic concepts and 3D information from 2D images which can depict an enormous variety of environments that comprise our visual world. This paper summarizes our recent efforts toward these goals. First, we describe the richly annotated SUN database which is a collection of annotated images spanning 908 different scene categories with object, attribute, and geometric labels for many scenes. This database allows us to systematically study the space of scenes and to establish a benchmark for scene and object recognition. We augment the categorical SUN database with 102 scene attributes for every image and explore attribute recognition. Finally, we present an integrated system to extract the 3D structure of the scene and objects depicted in an image.
机译:计算机视觉的长期目标是构建一个可以从单个图像自动理解3D场景的系统。这需要从2D图像中提取语义概念和3D信息,这些图像和图像可以描绘构成我们视觉世界的各种环境。本文总结了我们最近为实现这些目标所做的努力。首先,我们描述丰富的带注释的SUN数据库,该数据库是带注释的图像的集合,这些图像跨越908个不同的场景类别,并具有许多场景的对象,属性和几何标签。该数据库使我们能够系统地研究场景的空间,并为场景和物体识别建立基准。我们为每个图像增加了102个场景属性,以扩大分类SUN数据库,并探索属性识别。最后,我们提出了一个集成的系统来提取场景和图像中描绘的对象的3D结构。

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