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Ask me anything: free-form visual question answering based on knowledge from external sources

机译:问我什么:基于外部知识的自由形式的视觉问题回答

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摘要

We propose a method for visual question answering which combines an internal representation of the content of an image with information extracted from a general knowledge base to answer a broad range of image-based questions. This allows more complex questions to be answered using the predominant neural network-based approach than has previously been possible. It particularly allows questions to be asked about the contents of an image, even when the image itself does not contain the whole answer. The method constructs a textual representation of the semantic content of an image, and merges it with textual information sourced from a knowledge base, to develop a deeper understanding of the scene viewed. Priming a recurrent neural network with this combined information, and the submitted question, leads to a very flexible visual question answering approach. We are specifically able to answer questions posed in natural language, that refer to information not contained in the image. We demonstrate the effectiveness of our model on two publicly available datasets, Toronto COCO-QA [23] and VQA [1] and show that it produces the best reported results in both cases.
机译:我们提出了一种用于视觉问题解答的方法,该方法将图像内容的内部表示与从普通知识库中提取的信息相结合,以回答各种基于图像的问题。与以前可能的解决方案相比,这使您可以使用基于神经网络的主要方法来回答更复杂的问题。它特别允许即使图像本身不包含全部答案,也可以询问有关图像内容的问题。该方法构造图像的语义内容的文本表示,并将其与知识库中的文本信息合并,以加深对所查看场景的理解。使用此组合信息和提交的问题启动递归神经网络,会导致一种非常灵活的视觉问题回答方法。我们特别能够回答以自然语言提出的问题,这些问题是指图像中未包含的信息。我们在两个公开可用的数据集多伦多COCO-QA [23]和VQA [1]上证明了我们模型的有效性,并表明在这两种情况下它都能产生最佳的报告结果。

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