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behavior-knowledge-merge-in-reinforced-agentic

Reinforcement learning (RL) is central to post-training, particularly for agentic models that require specialized reasoning behaviors. In this setting, model merging offers a practical mechanism for integrating multiple RL-trained agents from different tasks into a single generalist model. However, existing merging methods are designed for supervised fine-tuning (SFT), and they are suboptimal to preserve task-specific capabilities on RL-trained agentic models. The root is a task-vector mismatch ...

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仓库
ADu2021/skillXiv
最近来源活动
2026年3月24日 19:42
检测到的 SKILL.md 语言
英语
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6
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0

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