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Hierarchical Memory Organization for Wikipedia Generation

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arxiv 2506.23393 v1 pith:HUWR56J4 submitted 2025-06-29 cs.CL cs.AI

Hierarchical Memory Organization for Wikipedia Generation

classification cs.CL cs.AI
keywords memorygenerationhierarchicalarticlesstructureunitswikipediaaccurate
verification ladder T0 review T1 audit T2 compute T3 formal T4 reserved
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Generating Wikipedia articles autonomously is a challenging task requiring the integration of accurate, comprehensive, and well-structured information from diverse sources. This paper introduces the Memory Organization-based Generation (MOG) framework, a novel approach to address these challenges by leveraging a hierarchical memory architecture. MOG extracts fine-grained memory units from web documents, recursively organizes them into a Wikipedia-style hierarchical structure, and uses this structure to guide the generation process. This ensures alignment between memory and the article outline, improving both informativeness and verifiability while minimizing hallucinations. Additionally, a citation module is implemented to enhance traceability by linking every generated sentence to specific memory units. Evaluations on our newly created WikiStart dataset demonstrate that MOG outperforms baseline methods in producing informative and reliable articles, making it particularly robust in real-world scenarios.

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