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Assisting in Writing Wikipedia-like Articles From Scratch with Large Language Models

About

We study how to apply large language models to write grounded and organized long-form articles from scratch, with comparable breadth and depth to Wikipedia pages. This underexplored problem poses new challenges at the pre-writing stage, including how to research the topic and prepare an outline prior to writing. We propose STORM, a writing system for the Synthesis of Topic Outlines through Retrieval and Multi-perspective Question Asking. STORM models the pre-writing stage by (1) discovering diverse perspectives in researching the given topic, (2) simulating conversations where writers carrying different perspectives pose questions to a topic expert grounded on trusted Internet sources, (3) curating the collected information to create an outline. For evaluation, we curate FreshWiki, a dataset of recent high-quality Wikipedia articles, and formulate outline assessments to evaluate the pre-writing stage. We further gather feedback from experienced Wikipedia editors. Compared to articles generated by an outline-driven retrieval-augmented baseline, more of STORM's articles are deemed to be organized (by a 25% absolute increase) and broad in coverage (by 10%). The expert feedback also helps identify new challenges for generating grounded long articles, such as source bias transfer and over-association of unrelated facts.

Yijia Shao, Yucheng Jiang, Theodore A. Kanell, Peter Xu, Omar Khattab, Monica S. Lam• 2024

Related benchmarks

TaskDatasetResultRank
Multimodal GenerationM2LONGBENCH (test)
Anchor Description22.3
19
Article GenerationFreshWiki 2024-08-01 (test)
Interest4.23
16
Outline GenerationFreshWiki 2024
Recall13.86
12
System Paradigm ComparisonKnowledge Materialization and Encyclopedia Generation Paradigms
Scale10
8
Deep ResearchDeep Research tasks (test)
Interest Level2.9
7
Long-form generationFreshWiki
ROUGE-147.93
6
Deep Research report generation and action adherenceMYSQA dataset
Analysis Coverage72
6
Article GenerationArticle Generation
Calls88.06
5
Encyclopedia-Style Article Generation20 Topics Human Evaluation
Interest Level Score4.01
2
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