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Visual Question Generation for Class Acquisition of Unknown Objects

机译:用于获取未知对象的类的视觉问题生成

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摘要

Traditional image recognition methods only consider objects belonging to already learned classes. However, since training a recognition model with every object class in the world is unfeasible, a way of getting information on unknown objects (i.e., objects whose class has not been learned) is necessary. A way for an image recognition system to learn new classes could be asking a human about objects that are unknown. In this paper, we propose a method for generating questions about unknown objects in an image, as means to get information about classes that have not been learned. Our method consists of a module for proposing objects, a module for identifying unknown objects, and a module for generating questions about unknown objects. The experimental results via human evaluation show that our method can successfully get information about unknown objects in an image dataset. Our code and dataset are available at https://github.com/mil-tokyo/vqg-unknown.
机译:传统的图像识别方法仅考虑属于已经学习的类的对象。然而,由于用世界上的每个物体类别训练识别模型是不可行的,因此需要一种获取关于未知物体(即,尚未学习其类别的物体)的信息的方法。图像识别系统学习新类别的一种方法可能是向人类询问未知物体。在本文中,我们提出了一种用于生成有关图像中未知对象的问题的方法,作为获取有关尚未学习的类的信息的方法。我们的方法包括一个用于提出对象的模块,一个用于识别未知对象的模块以及一个用于生成有关未知对象的问题的模块。通过人工评估的实验结果表明,我们的方法可以成功获取图像数据集中未知物体的信息。我们的代码和数据集可从https://github.com/mil-tokyo/vqg-unknown获得。

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