Difference between revisions of "Science Agents"

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(Science Benchmarks)
(AI Science Systems)
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=AI Science Systems=
 
=AI Science Systems=
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* 2025-01: [https://arxiv.org/abs/2501.03916 Dolphin: Closed-loop Open-ended Auto-research through Thinking, Practice, and Feedback]
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===Inorganic Materials Discovery===
 
===Inorganic Materials Discovery===
 
* 2023-11: [https://doi.org/10.1038/s41586-023-06735-9 Scaling deep learning for materials discovery]
 
* 2023-11: [https://doi.org/10.1038/s41586-023-06735-9 Scaling deep learning for materials discovery]

Revision as of 09:18, 10 February 2025

AI Use-cases for Science

Literature

LLM extract data from papers

AI finding links in literature

Autonomous Ideation

Adapting LLMs to Science

AI/ML Methods tailored to Science

Regression (Data Fitting)

Tabular Classification/Regression

Symbolic Regression

Literature Discovery

Commercial

AI/ML Methods co-opted for Science

Mechanistic Interpretability

Train large model on science data. Then apply mechanistic interpretability (e.g. sparse autoencoders, SAE) to the feature/activation space.

Uncertainty

Science Benchmarks

Science Agents

Reviews

Specific

Science Multi-Agent Setups

AI Science Systems

Inorganic Materials Discovery

Chemistry

Impact of AI in Science

Related Tools

Literature Search

Data Visualization

See Also