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Improving Image Captioning by Leveraging Knowledge Graphs

机译:通过利用知识图来改善图像字幕

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We explore the use of a knowledge graphs, that capture general or commonsense knowledge, to augment the information extracted from images by the state-of-the-art methods for image captioning. We compare the performance of image captioning systems that as measured by CIDEr-D, a performance measure that is explicitly designed for evaluating image captioning systems, on several benchmark data sets such as MS COCO. The results of our experiments show that the variants of the state-of-the-art methods for image captioning that make use of the information extracted from knowledge graphs can substantially outperform those that rely solely on the information extracted from images.
机译:我们探讨了捕获一般或致商知识的知识图表,以增加通过最先进的方法用于图像标题的图像中提取的信息。我们比较由Cide-D测量的图像标题系统的性能,一种显式设计用于评估图像标题系统的性能测量,例如MS Coco的几个基准数据集。我们的实验结果表明,使用从知识图表中提取的信息的图像标题的最先进方法的变型可以基本上优于那些依赖于图像中提取的信息的信息。

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