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Customized Image Narrative Generation via Interactive Visual Question Generation and Answering

机译:通过交互式视觉问题生成和应答定制图像叙事生成

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Image description task has been invariably examined in a static manner with qualitative presumptions held to be universally applicable, regardless of the scope or target of the description. In practice, however, different viewers may pay attention to different aspects of the image, and yield different descriptions or interpretations under various contexts. Such diversity in perspectives is difficult to derive with conventional image description techniques. In this paper, we propose a customized image narrative generation task, in which the users are interactively engaged in the generation process by providing answers to the questions. We further attempt to learn the user's interest via repeating such interactive stages, and to automatically reflect the interest in descriptions for new images. Experimental results demonstrate that our model can generate a variety of descriptions from single image that cover a wider range of topics than conventional models, while being customizable to the target user of interaction.
机译:图像描述任务总是以静态的方式审查,定性推定持有普遍适用,无论描述的范围或目标如何。然而,在实践中,不同观众可以注意图像的不同方面,并在各种情况下产生不同的描述或解释。这种观点的这种多样性难以衍生传统的图像描述技术。在本文中,我们提出了一种定制的图像叙事生成任务,其中用户通过提供对问题的答案来交互式地从事生成过程。我们进一步尝试通过重复这种互动阶段来学习用户的兴趣,并自动反映对新图像的描述的兴趣。实验结果表明,我们的模型可以从单个图像产生多种描述,该描述涵盖比传统模型更广泛的主题,同时可定制对目标用户的相互作用。

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