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From the 1 of 5 linked papers with an AI index.

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5 papers

cs.CV2026

CADER: Confidence-Aware Dynamic Evidence Reasoning for Long-Video Understanding

Jinlong Yang, Wenhao Zhang, Kuanwei Lin +1

Long-video understanding increasingly relies on large vision-language models and tool-augmented reasoning, but most systems apply the same inference procedure to every example rega…

cs.CV2026

EFlow: Learning Evidence Flow for Long-Video Reasoning with Adaptive Reflection

Wenhao Zhang, Kuanwei Lin, Xuyi Yang +2

The paper introduces EFlow, a framework that first retrieves visual evidence from long videos before reasoning, using separate chain‑of‑thought modules for temporal grounding and a…

cs.CV2026

VideoRouter: Query-Adaptive Dual Routing for Efficient Long-Video Understanding

Kuanwei Lin, Wenhao Zhang, Ge Li

Video large multimodal models increasingly face a scalability bottleneck: long videos produce excessively long visual-token sequences, which sharply increase memory and latency dur…

cs.CV2026

TIR-Flow: Active Video Search and Reasoning with Frozen VLMs

Hongbo Jin, Siyi Xie, Jiayu Ding +2

While Large Video-Language Models (Video-LLMs) have achieved remarkable progress in perception, their reasoning capabilities remain a bottleneck. Existing solutions typically resor…

cs.CV2025

VideoCuRL: Video Curriculum Reinforcement Learning with Orthogonal Difficulty Decomposition

Hongbo Jin, Kuanwei Lin, Wenhao Zhang +2

Reinforcement Learning (RL) is crucial for empowering VideoLLMs with complex spatiotemporal reasoning. However, current RL paradigms predominantly rely on random data shuffling or…