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Causal Discovery from Data Assisted by Large Language Models

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arxiv 2503.13833 v1 pith:WUOF4OA2 submitted 2025-03-18 cond-mat.mtrl-sci cs.LG

Causal Discovery from Data Assisted by Large Language Models

classification cond-mat.mtrl-sci cs.LG
keywords causaldatadiscoverymaterialsmodelsrelationshipsapproachcombining
verification ladder T0 review T1 audit T2 compute T3 formal T4 reserved
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Knowledge driven discovery of novel materials necessitates the development of the causal models for the property emergence. While in classical physical paradigm the causal relationships are deduced based on the physical principles or via experiment, rapid accumulation of observational data necessitates learning causal relationships between dissimilar aspects of materials structure and functionalities based on observations. For this, it is essential to integrate experimental data with prior domain knowledge. Here we demonstrate this approach by combining high-resolution scanning transmission electron microscopy (STEM) data with insights derived from large language models (LLMs). By fine-tuning ChatGPT on domain-specific literature, such as arXiv papers on ferroelectrics, and combining obtained information with data-driven causal discovery, we construct adjacency matrices for Directed Acyclic Graphs (DAGs) that map the causal relationships between structural, chemical, and polarization degrees of freedom in Sm-doped BiFeO3 (SmBFO). This approach enables us to hypothesize how synthesis conditions influence material properties, particularly the coercive field (E0), and guides experimental validation. The ultimate objective of this work is to develop a unified framework that integrates LLM-driven literature analysis with data-driven discovery, facilitating the precise engineering of ferroelectric materials by establishing clear connections between synthesis conditions and their resulting material properties.

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Cited by 1 Pith paper

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