Entity Linking using LLMs for Automated Product Carbon Footprint Estimation

Castle, Steffen, Schneider, Julian Moreno, Hennig, Leonhard, Rehm, Georg

arXiv.org Artificial Intelligence 

Growing concerns about climate change and sustainability are driving manufacturers to take significant steps toward reducing their carbon footprints. For these manufacturers, a first step towards this goal is to identify the environmental impact of the individual components of their products. We propose a system leveraging large language models (LLMs) to automatically map components from manufacturer Bills of Materials (BOMs) to Life Cycle Assessment (LCA) database entries by using LLMs to expand on available component information. Our approach reduces the need for manual data processing, paving the way for more accessible sustainability practices.

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