The AI Scientist: Towards Fully Automated Open-Ended Scientific Discovery
Chris Lu, Cong Lu, Robert Tjarko Lange, Jakob Foerster, Jeff Clune,, David Ha

TL;DR
This paper introduces The AI Scientist, an autonomous system that conducts scientific research end-to-end, from generating ideas to writing papers and undergoing simulated peer review, demonstrated across multiple machine learning subfields.
Contribution
It presents the first comprehensive framework enabling large language models to independently perform and communicate scientific research in an open-ended, iterative manner.
Findings
Generated research papers surpass top conference acceptance thresholds.
Automated reviewer achieves near-human evaluation performance.
Each research idea costs less than $15 to develop.
Abstract
One of the grand challenges of artificial general intelligence is developing agents capable of conducting scientific research and discovering new knowledge. While frontier models have already been used as aides to human scientists, e.g. for brainstorming ideas, writing code, or prediction tasks, they still conduct only a small part of the scientific process. This paper presents the first comprehensive framework for fully automatic scientific discovery, enabling frontier large language models to perform research independently and communicate their findings. We introduce The AI Scientist, which generates novel research ideas, writes code, executes experiments, visualizes results, describes its findings by writing a full scientific paper, and then runs a simulated review process for evaluation. In principle, this process can be repeated to iteratively develop ideas in an open-ended…
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Taxonomy
TopicsScientific Computing and Data Management
