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GROOViST: A Metric for Grounding Objects in Visual Storytelling

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arxiv 2310.17770 v1 pith:3QX2HLFU submitted 2023-10-26 cs.AI cs.CLcs.CVcs.LG

classification cs.AIcs.CLcs.CVcs.LG
keywords groundingvisualgroovistentitiesevaluationimagessequencestory
verification ladder T0 review T1 audit T2 compute T3 formal
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A proper evaluation of stories generated for a sequence of images -- the task commonly referred to as visual storytelling -- must consider multiple aspects, such as coherence, grammatical correctness, and visual grounding. In this work, we focus on evaluating the degree of grounding, that is, the extent to which a story is about the entities shown in the images. We analyze current metrics, both designed for this purpose and for general vision-text alignment. Given their observed shortcomings, we propose a novel evaluation tool, GROOViST, that accounts for cross-modal dependencies, temporal misalignments (the fact that the order in which entities appear in the story and the image sequence may not match), and human intuitions on visual grounding. An additional advantage of GROOViST is its modular design, where the contribution of each component can be assessed and interpreted individually.

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  1. From Image Captioning to Visual Storytelling

    cs.CL 2025-07 unverdicted novelty 4.0 of 10

    Visual storytelling improves by treating it as image captioning followed by language-to-language story generation, with a new 'ideality' metric to gauge distance from an oracle.

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