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      Informative Image Captioning with External Sources of Information

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          Abstract

          An image caption should fluently present the essential information in a given image, including informative, fine-grained entity mentions and the manner in which these entities interact. However, current captioning models are usually trained to generate captions that only contain common object names, thus falling short on an important "informativeness" dimension. We present a mechanism for integrating image information together with fine-grained labels (assumed to be generated by some upstream models) into a caption that describes the image in a fluent and informative manner. We introduce a multimodal, multi-encoder model based on Transformer that ingests both image features and multiple sources of entity labels. We demonstrate that we can learn to control the appearance of these entity labels in the output, resulting in captions that are both fluent and informative.

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          Most cited references8

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          Show and tell: A neural image caption generator

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            Deep visual-semantic alignments for generating image descriptions

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              CIDEr: Consensus-based image description evaluation

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                Author and article information

                Journal
                20 June 2019
                Article
                1906.08876
                7712bee1-bf7d-42ed-a5a0-baafc543c7a6

                http://arxiv.org/licenses/nonexclusive-distrib/1.0/

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                Custom metadata
                cs.CL cs.CV

                Computer vision & Pattern recognition,Theoretical computer science
                Computer vision & Pattern recognition, Theoretical computer science

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