PaperOrchestra: A Multi-Agent Framework for Automated AI Research Paper Writing

PaperOrchestra is a multi-agent framework designed to automate the synthesis of research materials into submission-ready LaTeX manuscripts. It excels in literature review quality and visual generation, outperforming existing autonomous writing baselines.
Computer Science > Artificial Intelligence
Title:PaperOrchestra: A Multi-Agent Framework for Automated AI Research Paper Writing
View PDFAbstract:Synthesizing unstructured research materials into manuscripts is an essential yet under-explored challenge in AI-driven scientific discovery. Existing autonomous writers are rigidly coupled to specific experimental pipelines, and produce superficial literature reviews. We introduce PaperOrchestra, a multi-agent framework for automated AI research paper writing. It flexibly transforms unconstrained pre-writing materials into submission-ready LaTeX manuscripts, including comprehensive literature synthesis and generated visuals, such as plots and conceptual diagrams. To evaluate performance, we present PaperWritingBench, the first standardized benchmark of reverse-engineered raw materials from 200 top-tier AI conference papers, alongside a comprehensive suite of automated evaluators. In side-by-side human evaluations, PaperOrchestra significantly outperforms autonomous baselines, achieving an absolute win rate margin of 50%-68% in literature review quality, and 14%-38% in overall manuscript quality.
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Source: arXiv cs.AI Recent










