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Contextualized Visual Personalization in Vision-Language Models

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Despite recent progress in vision-language models (VLMs), existing approaches often fail to generate personalized responses based on the user's specific experiences, as they lack the ability to associate visual inputs with a user's accumulated visual-textual context. We newly formalize this challenge as contextualized visual personalization, which requires the visual recognition and textual retrieval of personalized visual experiences by VLMs when interpreting new images. To address this issue, we propose CoViP, a unified framework that treats personalized image captioning as a core task for contextualized visual personalization and improves this capability through reinforcement-learning-based post-training and caption-augmented generation. We further introduce diagnostic evaluations that explicitly rule out textual shortcut solutions and verify whether VLMs truly leverage visual context. Extensive experiments demonstrate that existing open-source and proprietary VLMs exhibit substantial limitations, while CoViP not only improves personalized image captioning but also yields holistic gains across downstream personalization tasks. These results highlight CoViP as a crucial stage for enabling robust and generalizable contextualized visual personalization.

Yeongtak Oh, Sangwon Yu, Junsung Park, Han Cheol Moon, Jisoo Mok, Sungroh Yoon• 2026

Related benchmarks

TaskDatasetResultRank
Diagnostic PersonalizationLSD
Recall58.2
18
Diagnostic PersonalizationLAR
Recall0.492
18
Diagnostic PersonalizationITR
Recall42.8
18
Personalized GroundingYo'LLaVA
Precision100
14
Personalized GroundingDreamBooth
Precision100
14
Personalized GroundingMyVLM
Precision100
14
Personalized Image CaptioningCapEval-QAs (test)
1-Concept Acc+77.4
9
Multi-concept Personalized GroundingMulti-concept personalized grounding Retrieval
Precision99.3
7
Multi-concept Personalized GroundingMulti-concept personalized grounding Skip-Retrieval
Precision1
7
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