Papers › Diverse and Relevant Visual Storytelling with Scene Graph Embeddings

Diverse and Relevant Visual Storytelling with Scene Graph Embeddings

1 Nov 2020CONLL 2020archive 2025-07-28

Xudong Hong, Rakshith Shetty, Asad Sayeed, Khushboo Mehra, Vera Demberg, Bernt Schiele

A problem in automatically generated stories for image sequences is that they use overly generic vocabulary and phrase structure and fail to match the distributional characteristics of human-generated text. We address this problem by introducing explicit representations for objects and their relations by extracting scene graphs from the images. Utilizing an embedding of this scene graph enables our model to more explicitly reason over objects and their relations during story generation, compared to the global features from an object classifier used in previous work. We apply metrics that account for the diversity of words and phrases of generated stories as well as for reference to narratively-salient image features and show that our approach outperforms previous systems. Our experiments also indicate that our models obtain competitive results on reference-based metrics.

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Tasks

DiversityStory GenerationVisual Storytelling

Results from the paper archive 2025-07-28

TaskDatasetModelMetricValueRank at snapshotLeaderboardReport
Visual Storytelling VIST SGEmb BLEU-1 62.2 #6 of 33 Archive leaderboard report
Visual Storytelling VIST SGEmb BLEU-2 38.7 #6 of 33 Archive leaderboard report
Visual Storytelling VIST SGEmb BLEU-3 23.5 #6 of 33 Archive leaderboard report
Visual Storytelling VIST SGEmb BLEU-4 14.8 #6 of 33 Archive leaderboard report
Visual Storytelling VIST SGEmb CIDEr 8.6 #6 of 33 Archive leaderboard report
Visual Storytelling VIST SGEmb METEOR 35.6 #6 of 33 Archive leaderboard report
Visual Storytelling VIST SGEmb ROUGE-L 30.2 #6 of 33 Archive leaderboard report

Ranks are positions in the archive's leaderboards as they stood at the 2025-07-28 snapshot. Results published since then are not among these rows, so a rank here is not a current standing.

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