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ShapeLearner: Towards Shape-Based Visual Knowledge Harvesting

机译:Shapelearner:走向基于形状的视觉知识收获

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The deluge of images on the Web has led to a number of efforts to organize images semantically and mine visual knowledge. Despite enormous progress on categorizing entire images or bounding boxes, only few studies have targeted fine-grained image understanding at the level of specific shape contours. For instance, beyond recognizing that an image portrays a cat, we may wish to distinguish its legs, head, tail, and so on. To this end, we present ShapeLearner, a system that acquires such visual knowledge about object shapes and their parts in a semantic taxonomy, and then is able to exploit this hierarchy in order to analyze new kinds of objects that it has not observed before. ShapeLearner jointly learns this knowledge from sets of segmented images. The space of label and segmentation hypotheses is pruned and then evaluated using Integer Linear Programming. Experiments on a variety of shape classes show the accuracy and effectiveness of our method.
机译:Web上的图像的洪水导致了一些努力来组织语义和矿山视觉知识。尽管对整个图像或边界框进行了分类,但在特定形状轮廓的水平上只有很少的研究已经针对细粒度的图像理解。例如,除了认识到图像描绘猫,我们可能希望区分其腿,头部,尾部等。为此,我们提供了Shapelearner,一个系统,该系统获取关于对象形状的这种视觉知识及其在语义分类中的部分,然后能够利用此层次结构以分析之前未观察到的新的物体。 Shapelearner将从分段图像集中联合了解这些知识。修剪标签和分割假设的空间,然后使用整数线性编程进行评估。各种形状类的实验表明了我们方法的准确性和有效性。

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