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Revealing the Impact of Visual Text Style on Attribute-based Descriptions Produced by Large Visual Language Models

  • Radboud University Nijmegen

Research output: Chapter in Book/Report/Conference proceedingConference contributionpeer-review

Abstract

When the visual style of text is considered, a wide variety can be observed in font, color, and size. However, when a word is read, its meaning is independent of the style in which it has been written or rendered. In this paper, we investigate whether, and how, the style in which a word is visualized in an image impacts the description that a Large Visual Language Model (LVLM) provides for the concept to which that word refers. Specifically, we investigate how functional text styles (readability-oriented, e.g., black sans-serif) versus decorative styles (display-oriented, e.g., colored cursive/script) affect LVLMs' descriptions of a concept in terms of the attributes of that concept. Our experiments study the situation in which the LVLM is able to correctly identify the concept referred to by a visual text, i.e., by a word or words rendered as an image, and in which the visual text style should not influence the attribute-based description that the LVLM produces. Our experimental results reveal that even when the concept is correctly identified, text style influences the model's attribute-based descriptions of the concept. Our findings demonstrate non-trivial style leakage from text style into semantic inference and motivate style-aware evaluation and mitigation for LVLM-based multimedia systems.

Original languageEnglish
Title of host publicationICMR 2026 - Proceedings of the 16th ACM International Conference on Multimedia Retrieval
PublisherAssociation for Computing Machinery, Inc
Pages2147-2151
Number of pages5
ISBN (Electronic)9798400726170
DOIs
StatePublished - 15 Jun 2026
Event16th ACM International Conference on Multimedia Retrieval, ICMR 2026 - Hybrid, Amsterdam, Netherlands
Duration: 16 Jun 202619 Jun 2026

Publication series

NameICMR 2026 - Proceedings of the 16th ACM International Conference on Multimedia Retrieval

Conference

Conference16th ACM International Conference on Multimedia Retrieval, ICMR 2026
Country/TerritoryNetherlands
CityHybrid, Amsterdam
Period16/06/2619/06/26

Keywords

  • attribute descriptions
  • large visual language models
  • Visual text style

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