Responsible AI
The Seed-Responsible AI team promotes safe and sustainable AI by researching its core mechanisms to provide insights and practical guidance.

Selected Papers

May 27, 2025
PaSa: An LLM Agent for Comprehensive Academic Paper Search
We introduce PaSa, an advanced Paper Search agent powered by large language models. PaSa can autonomously make a series of decisions, including invoking search tools, reading papers, and selecting relevant references, to ultimately obtain comprehensive and accurate results for complex scholar queries. We optimize PaSa using reinforcement learning with a synthetic dataset, AutoScholarQuery, which includes 35k fine-grained academic queries and corresponding papers sourced from top-tier AI conference publications. Additionally, we develop RealScholarQuery, a benchmark collecting real-world academic queries to assess PaSa performance in more realistic scenarios. Despite being trained on synthetic data, PaSa significantly outperforms existing baselines on RealScholarQuery, including Google, Google Scholar, Google with GPT-4o for paraphrased queries, ChatGPT (search-enabled GPT-4o), GPT-o1, and PaSa-GPT-4o (PaSa implemented by prompting GPT-4o). Notably, PaSa-7B surpasses the best Google-based baseline, Google with GPT-4o, by 37.78% in recall@20 and 39.90% in recall@50, and exceeds PaSa-GPT-4o by 30.36% in recall and 4.25% in precision.
Yichen He, Guanhua Huang, Peiyuan Feng, Yuan Lin, Yuchen Zhang, Hang Li, Weinan E
LLM
2025.05.27
PaSa: An LLM Agent for Comprehensive Academic Paper Search
Yichen He, Guanhua Huang, Peiyuan Feng, Yuan Lin, Yuchen Zhang, Hang Li, Weinan E
LLM
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Technical capability demonstration

PaSa (Paper Search Agent)
PaSa is an intelligent paper search tool powered by large language models. It can automatically figure out what actions to take, such as using search tools, reading papers, and selecting relevant references. This enables it to provide comprehensive and accurate answers to complex academic questions. PaSa uses reinforcement learning to continuously improve itself end-to-end. Its performance is far better than many well-known search tools.
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Research Scientist, Responsible AI