الباحثون

Jong Chul Ye

المنشورات 10

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FastOPD: On-Policy Distillation for Lightweight VLA Deployment

Yoojin Oh, Jeongsol Kim, Yeonwoo Seo وآخرون · 2026

Vision-Language-Action (VLA) foundation models have scaled rapidly to enhance manipulation performance and generalizability, but this scaling incurs high computational costs that render real-world deployment increasingly challenging. Existing approaches typically mitigate this issue by designing smaller architectures o …

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DriftOPD: Sequence-Level Reverse-KL Distillation for One-Step VLA Policies

Youngjun Jun, Kyumin Choi, Youngmin Kim وآخرون · 2026

Vision-Language-Action (VLA) models increasingly rely on action experts that generate short action chunks under receding-horizon control. While chunk-level training is convenient across robot embodiments, it optimizes local action likelihood without explicitly accounting for long-horizon task success. Sequence-level re …

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Learning What to Recall: Adaptive Multi-Cue Episodic Memory for World Models

Beomsu Kim, Chieh-Hsin Lai, Bac Nguyen وآخرون · 2026

World models predict future observations from current experience and actions, yet prediction can depend on observations seen far in the past. Episodic memory preserves past observations for later recall; however, as memory accumulates, it raises a fundamental question: which memories are useful for the current predicti …

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Does Uniform Discrete Diffusion Need Time?

Uniform discrete diffusion models (UDMs) commonly use explicit time conditioning, but we find that it can often be unnecessary in practice. In this paper, we first show that the population-optimal UDM predictor generally depends on time: time controls how much the model should trust the observed context. We then show t …

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