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Re-evaluating Automatic Metrics for Image Captioning

机译:重新评估图像字幕的自动指标

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摘要

The task of generating natural language descriptions from images has received a lot of attention in recent years. Consequently, it is becoming increasingly important to evaluate such image captioning approaches in an automatic manner. In this paper, we provide an in-depth evaluation of the existing image captioning metrics through a series of carefully designed experiments. Moreover, we explore the utilization of the recently proposed Word Mover's Distance (wmd) document metric for the purpose of image captioning. Our findings outline the differences and/or similarities between metrics and their relative robustness by means of extensive correlation, accuracy and distraction based evaluations. Our results also demonstrate that wmd provides strong advantages over other metrics.
机译:近年来,从图像生成自然语言描述的任务受到了广泛的关注。因此,以自动方式评估这种图像字幕方法变得越来越重要。在本文中,我们通过一系列精心设计的实验对现有的图像字幕指标进行了深入评估。此外,出于图像字幕的目的,我们探索了最近提出的单词移动器距离(wmd)文档度量的利用。我们的发现通过广泛的相关性,准确性和分散性评估,概述了指标及其相对健壮性之间的差异和/或相似性。我们的结果还表明,wmd与其他指标相比具有强大的优势。

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