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WFM: Wiki Foundation Model for Complex Agentic Reasoning

arXiv · AI, language, vision and robotics · article · Sep 16, 2026 · UTC

Real-world agents fundamentally require persistent non-parametric knowledge for dynamic reasoning, i.e., long-term memory and retrieval-augmented generation. While graphs have shown reliable advantages in providing structured evidence, the sparse graph representations naturally restrict machine readability and semantic density required for complex agentic workflows. Driven by this limitation, the entire industry is witnessing a paradigm shift from traditional sparse graphs to LLM Wiki, an agent-native knowledge representation that couples dense document contexts with markdown files containing

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Evidence & attribution

First collected: 2026-09-20T08:01:03.945Z. This is not the publication date.