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Research PaperResearchia:202602.23005[Agentic AI > Peer Reviewed]

Agentic AI for Scientific Discovery: A Survey of Progress, Challenges, and Future Directions

Mourad Gridach

Abstract

The integration of Agentic AI into scientific discovery marks a new frontier in research automation. These AI systems, capable of reasoning, planning, and autonomous decision-making, are transforming how scientists perform literature review, generate hypotheses, conduct experiments, and analyze results. This survey provides a comprehensive overview of Agentic AI for scientific discovery, categorizing existing systems and tools, and highlighting recent progress across fields such as chemistry, biology, and materials science. We discuss key evaluation metrics, implementation frameworks, and commonly used datasets to offer a detailed understanding of the current state of the field. Finally, we address critical challenges, such as literature review automation, system reliability, and ethical concerns, while outlining future research directions that emphasize human-AI collaboration and enhanced system calibration.


Source: Semantic Scholar - arXiv.org (60 citations) PDF: N/A Original Link: https://www.semanticscholar.org/paper/1104bec9e7a0a3d9dba341ba8005f1b7350bc876

Submission:2/23/2026
Comments:0 comments
Subjects:Peer Reviewed; Agentic AI
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