Using NLP to create preliminary causal system maps for use in policy analysis
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- Wang, Zhaohua & Li, Jingyun & Wang, Bo & Hui, Ng Szu & Lu, Bin & Wang, Can & Xu, Shuling & Zhou, Zixuan & Zhang, Bin & Zheng, Yufeng, 2024. "The decarbonization pathway of power system by high-resolution model under different policy scenarios in China," Applied Energy, Elsevier, vol. 355(C).
- Niyousha Hosseinichimeh & Aritra Majumdar & Ross Williams & Navid Ghaffarzadegan, 2024. "From text to map: a system dynamics bot for constructing causal loop diagrams," System Dynamics Review, System Dynamics Society, vol. 40(3), July.
- Guido A. Veldhuis & Dominique Blok & Maaike H.T. de Boer & Gino J. Kalkman & Roos M. Bakker & Rob P.M. van Waas, 2024. "From text to model: Leveraging natural language processing for system dynamics model development," System Dynamics Review, System Dynamics Society, vol. 40(3), July.
- Song Tong & Kai Mao & Zhen Huang & Yukun Zhao & Kaiping Peng, 2024. "Automating psychological hypothesis generation with AI: when large language models meet causal graph," Palgrave Communications, Palgrave Macmillan, vol. 11(1), pages 1-14, December.
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Keywords
Natural language processing; Pretrained language model; Deep learning; Systems mapping; Causal maps; Policy analysis; Decarbonisation policy;All these keywords.
NEP fields
This paper has been announced in the following NEP Reports:- NEP-AIN-2025-04-28 (Artificial Intelligence)
- NEP-CMP-2025-04-28 (Computational Economics)
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