Aligning Agentic World Models via Knowledgeable Experience Learning
cs.CL, cs.AI, cs.CV, cs.LG, cs.MM
Submitted: 2026-01-19
Updated: 2026-08-28
Terminology
Sources
- Agentic Learner with Grow-and-Refine Multimodal Semantic Memory
- Building Self-Evolving Agents via Experience-Driven Lifelong Learning: A Framework and Benchmark
- FLEX: Continuous Agent Evolution via Forward Learning from Experience
- Remember Me, Refine Me: A Dynamic Procedural Memory Framework for Experience-Driven Agent Evolution
- CWM: An Open-Weights LLM for Research on Code Generation with World Models
- AriGraph: Learning Knowledge Graph World Models with Episodic Memory for LLM Agents
- WorldVLA: Towards Autoregressive Action World Model
- Web Agents with World Models: Learning and Leveraging Environment Dynamics in Web Navigation
- Web World Models
- Magentic-One: A Generalist Multi-Agent System for Solving Complex Tasks
- SkyReels-V2: Infinite-length Film Generative Model
- Why Do LLM Agents Fail in Exploring New Environments? A World-Modeling Perspective
- WoW: Towards a World omniscient World model Through Embodied Interaction
- Embodied AI Agents: Modeling the World
- A Survey of Self-Evolving Agents: What, When, How, and Where to Evolve on the Path to Artificial Super Intelligence
- General Agentic Planning Through Simulative Reasoning with World Models
- Search, Verify and Feedback: Towards Next Generation Post-training Paradigm of Foundation Models via Verifier Engineering
- EvaLearn: Quantifying the Learning Capability and Efficiency of LLMs via Sequential Problem Solving
- World Models
- WorldScore: A Unified Evaluation Benchmark for World Generation
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