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#co-training

Search Beyond What Can Be Taught: Evolving the Knowledge Boundary in Agentic Visual Generation

Hugging Face Daily Papers · 2026-07-09 Cached

This paper addresses the knowledge boundary problem in visual generation by introducing the SearchGen-20K benchmark and SearchGen-Corpus-1M, and proposes a teach-then-search co-training framework to handle evolving, long-tailed user requests beyond a generator's training data.

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#co-training

Policy and World Modeling Co-Training for Language Agents

Hugging Face Daily Papers · 2026-06-01 Cached

This paper introduces PaW, a co-training framework that adds auxiliary world modeling supervision to policy learning during on-policy RL rollouts, improving language agent training without additional computational overhead.

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#co-training

CoHyDE: Iterative Co-Training of LLM Rewriter & Dense Encoder for Tool Retrieval

arXiv cs.AI · 2026-05-29 Cached

CoHyDE introduces an iterative co-training procedure for an LLM rewriter and a dense encoder to improve tool retrieval from large API catalogs. It outperforms single-component baselines, especially on vague queries, by training both components together using InfoNCE and DPO.

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Reciprocal Co-Training (RCT): Coupling Gradient-Based and Non-Differentiable Models via Reinforcement Learning

arXiv cs.CL · 2026-04-21 Cached

Researchers from Fordham University introduce Reciprocal Co-Training (RCT), a framework that couples LLMs and Random Forest classifiers via reinforcement learning, creating an iterative feedback loop where each model improves using signals from the other. Experiments on three medical datasets show consistent performance gains for both models, demonstrating a general mechanism for integrating incompatible model families.

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