AI RESEARCH
Tracking the Truth: Object-Centric Spatio-Temporal Monitoring for Video Large Language Models
arXiv CS.AI
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ArXi:2605.08974v1 Announce Type: cross While multimodal large language models (MLLMs) have advanced video understanding, they remain highly prone to hallucinations in dynamic scenes. We argue this stems from a failure in spatio-temporal monitoring, the ability to persistently track object identities, states, and relations over time. Existing benchmarks obscure this deficit by relying on single final-answer evaluations for queries that can often be resolved via local visual cues or statistical priors. To rigorously diagnose this, we.