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DiaVLo: Diagnosing Behaviours of Vision-Language Models

Paper recorded by Signals 4 on 2026-09-18 in cs.AI. Abstract reproduced from arXiv; link to the original below.

Published 2026-09-18 on arXiv · recorded by Signals 4 on 2026-09-21

Category: cs.AI · 人工智能 · first seen 2026-09-21

Abstract

Vision-language models (VLMs) rely on storing and transferring appropriate information across their sub-components. Verifying that the VLMs exhibit desired behaviours, while avoiding harmful ones, is central to their reliable deployment. Yet, methods that identify VLM behaviours remain scarce. We present DiaVLo, a diagnostic framework that leverages human curation and VLMs' generation capabilities

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#5 most recent of 320 cs.AI papers we have recorded · ↑ newer: Gricea: An Open Science Platform for Conversational AI Research · ↓ older: Bayesian Belief Layer for Controllable Opinion Dynamics in LLM Agents
Cite this page: DiaVLo: Diagnosing Behaviours of Vision-Language Models: the #5 most recent of 320 cs.AI papers we have recorded (as of 2026-09-18). Source: Signals 4 (Signals API) — https://data.jiangzhang.ca/signals4/t/papers/diavlo-diagnosing-behaviours-of-vision-language-models.html
Free to quote with attribution to “Signals 4 (Signals API)”. Machine-readable: papers.json
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