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Discovering states and transformations in image collections

机译:发现图像集合中的状态和变换

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摘要

Objects in visual scenes come in a rich variety of transformed states. A few classes of transformation have been heavily studied in computer vision: mostly simple, parametric changes in color and geometry. However, transformations in the physical world occur in many more flavors, and they come with semantic meaning: e.g., bending, folding, aging, etc. The transformations an object can undergo tell us about its physical and functional properties. In this paper, we introduce a dataset of objects, scenes, and materials, each of which is found in a variety of transformed states. Given a novel collection of images, we show how to explain the collection in terms of the states and transformations it depicts. Our system works by generalizing across object classes: states and transformations learned on one set of objects are used to interpret the image collection for an entirely new object class.
机译:视觉场景中的对象具有多种变换状态。在计算机视觉中已经对几种类型的转换进行了深入研究:大多数是颜色和几何形状的简单参数更改。但是,物理世界中的转换发生的样式更多,并且具有语义含义:例如弯曲,折叠,老化等。对象可以经历的转换告诉我们其物理和功能特性。在本文中,我们介绍了一个对象,场景和材质的数据集,每种数据集都以多种变换状态存在。给定一个新颖的图像集合,我们将展示如何根据其描述的状态和变换来解释该集合。我们的系统通过跨对象类进行概括来工作:在一组对象上学习的状态和转换用于解释全新对象类的图像集合。

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