الباحثون

Zhen Li

المنشورات 9

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Residual spectral instabilities in representation learning

Zhen Li · 2026

Learned representations can lose latent degrees of freedom successively, suggesting a cascade of transitions whose underlying stability principle remains unclear. Here we formulate dimension-wise posterior collapse in variational autoencoder (VAE) as a fluctuation theory around partially collapsed states. Interpreting …

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TRIAGE: Direction-Aware Mismatch Stabilization of Native NVFP4 Reinforcement Learning

Zhen Li, Shuai Zhang, Yanggan Gu وآخرون · 2026

Low-precision execution can substantially accelerate reinforcement learning (RL) for large language models, but discrepancies between learner and sampler execution can destabilize policy optimization. In this paper, we characterize the interaction between mismatch and the policy-gradient direction, distinguishing local …

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CrystalJev: thinking fast and slow with atomistic foundation models for materials discovery

Peng Kang, Zhen Li, Yu Liu وآخرون · 2026

Atomistic foundation models triage millions of hypothetical materials but are used as slow simulators, their thresholded energies taken at face value. They are better read as fast decision-makers. CrystalJev queries a frozen interatomic potential once per unrelaxed structure and answers typed questions with calibrated …

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RoXDrive: Closed-Loop Reinforcement Learning for End-to-End Autonomous Driving via Action-Faithful Rollouts

Hongbin Lin, Chaoda Zheng, Yiming Yang وآخرون · 2026

End-to-end autonomous driving policies are commonly trained via imitation learning on logged demonstrations without observing the consequences of their own actions, leading to causal confusion in closed-loop real-world deployment. To address this issue, reinforcement learning (RL) post-training offers a promising alter …

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MUGEN: Interactive Panoramic World Exploration via Camera Control

Jiaming Tan, Zhen Li, Shuwei Shi وآخرون · 2026

Interactive panoramic video generation aims to synthesize immersive 360\textdegree{} videos that remain visually coherent while following user-specified camera trajectories during exploration. However, progress is limited by a coupled data-and-model gap: existing panoramic video datasets are often short, weakly annotat …

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SMAT: Simple and Efficient Merge-Aware Training

Yanggan Gu, Yuanyi Wang, Zhen Li وآخرون · 2026

Model merging integrates the capabilities of multiple experts without joint retraining, but standard expert training optimizes task loss alone and does not guarantee good performance after merging. Merge-aware training (MAT) aims to improve merged performance, but existing methods do not fully account for common mergin …

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MaskVLA: Visual Masking Against Trajectory Overfitting of Vision-Language-Action Model

Yuxuan Jiang, Jiaying Huang, Ge Wang وآخرون · 2026

Vision-Language-Action (VLA) models integrate vision-language understanding with executable robot actions, enabling end-to-end learning for robot control. However, our empirical analysis reveals that existing models exhibit severe trajectory overfitting when finetuned on limited datasets. To guide the model in effectiv …

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