الباحثون

Liang Lin

المنشورات 6

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The Model Plants the Trigger: Answer-Side Backdoor Attacks in Multi-Turn Large Language Models

Yibo Zhang, Tianrong Guan, Liang Lin وآخرون · 2026

Safety alignment in Large Language Models (LLMs) remains vulnerable to backdoor attacks. Existing LLM backdoors are almost all input-centric: activation depends on explicit trigger patterns in the user input, so modern guardrails are built to sanitize the input space. We challenge this assumption with a novel answer-si …

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Beyond Entropy: Self-Diagnostic Multi-Role Token Optimization for Video Reasoning

Yudong Han, Yong Wang, Zaiquan Yang وآخرون · 2026

Reinforcement learning with verifiable rewards has substantially advanced multimodal reasoning, yet it remains fundamentally limited by ambiguous token-level credit assignment. While high-entropy token heuristics encourage possibility exploration, naively extending them to video reasoning tends to induce lengthy reason …

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FAST: Flow Any Scene Transformer

Yongjian Zhang, Longguang Wang, Zhuo Song وآخرون · 2026

Scaling has become a primary driver of progress in language and vision foundation models, yet its role in precise correspondence matching remains underexplored. In this work, we present Flow Any Scene Transformer (FAST), a scalable correspondence model driven by two key insights. First, we reveal that the query-key pro …

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Recovering the View: Benchmarking Physical Active Vision for Occlusion Recovery in Robotic Manipulation

Kaijun Luo, Yudi Huang, Qijun Zhong وآخرون · 2026

Physical active vision allows robots to change their viewpoint when task-relevant observations become unreliable, yet existing manipulation benchmarks provide limited support for studying how policies recover from occlusion during execution. We introduce BAVO-Bench (Bimanual Active Vision under Occlusion), a bimanual a …

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GAUGE: Group-Wise View-Inconsistency Rectification for Feed-Forward 4D Tracking

Zhuoqian Feng, Weixing Chen, Ziliang Chen وآخرون · 2026

Feed-forward models regress dense 3D point trajectories directly from monocular video, yet the residual after global alignment is substantial and lacks a structural explanation. Measured on dynamic query points across models and datasets, the error concentrates along the view direction, while the scale correction each …

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