environment-synthesis

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#environment-synthesis

EnvFactory: Scaling Tool-Use Agents via Executable Environments Synthesis and Robust RL

Hugging Face Daily Papers · 2026-05-18 Cached

EnvFactory automates the creation of executable tool environments and natural multi-turn trajectories for training LLMs with agentic reinforcement learning, achieving superior performance on benchmarks like BFCLv3 and MCP-Atlas with fewer environments than prior work.

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#environment-synthesis

Learning to Build the Environment: Self-Evolving Reasoning RL via Verifiable Environment Synthesis

Hugging Face Daily Papers · 2026-05-14 Cached

This paper proposes EvoEnv, a method where language models construct verifiable Python environments for self-improvement through reinforcement learning, achieving a 3.3% relative gain on Qwen3-4B-Thinking.

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#environment-synthesis

EnvScaler: Scaling Tool-Interactive Environments for LLM Agent via Programmatic Synthesis

arXiv cs.CL · 2026-04-20 Cached

EnvScaler is an automated framework for scaling tool-interactive environments for LLM agents through programmatic synthesis, creating 191 diverse environments and 7K scenarios to improve agent performance on multi-turn, multi-tool interactions.

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#environment-synthesis

Agent-World: Scaling Real-World Environment Synthesis for Evolving General Agent Intelligence

Hugging Face Daily Papers · 2026-04-20 Cached

Agent-World introduces a self-evolving training framework for general agent intelligence that autonomously discovers real-world environments and tasks via the Model Context Protocol, enabling continuous learning. Agent-World-8B and 14B models outperform strong proprietary models across 23 challenging agent benchmarks.

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