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ENTRAP-VL: A Taxonomic Probe for Dual Contextual Entrainment in Vision-Language Models

2 upvotes · 22 JUL 2026 · Karan Goyal, Afreen Hossain, Debojyoti Das et al.

This paper introduces a new dataset and tool to study contextual entrainment in vision-language models, which is the tendency for models to respond to irrelevant or false context in their inputs. Practitioners in AI and ML might care about this because it can affect the accuracy and reliability of vision-language models in real-world applications.