Towards Autonomous Sustainability Assessment via Multimodal AI Agents

Fuente: arXiv
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Main Authors: Zhang, Zhihan, Metzger, Alexander, Mei, Yuxuan, Hähnlein, Felix, Englhardt, Zachary, Cheng, Tingyu, Abowd, Gregory D., Patel, Shwetak, Schulz, Adriana, Iyer, Vikram
Format: Preprint
Published: 2025
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author Zhang, Zhihan
Metzger, Alexander
Mei, Yuxuan
Hähnlein, Felix
Englhardt, Zachary
Cheng, Tingyu
Abowd, Gregory D.
Patel, Shwetak
Schulz, Adriana
Iyer, Vikram
author_facet Zhang, Zhihan
Metzger, Alexander
Mei, Yuxuan
Hähnlein, Felix
Englhardt, Zachary
Cheng, Tingyu
Abowd, Gregory D.
Patel, Shwetak
Schulz, Adriana
Iyer, Vikram
contents Interest in sustainability information has surged in recent years. However, the data required for a life cycle assessment (LCA) that maps the materials and processes from product manufacturing to disposal into environmental impacts (EI) are often unavailable. Here we reimagine conventional LCA by introducing multimodal AI agents that emulate interactions between LCA experts and stakeholders like product managers and engineers to calculate the cradle-to-gate (production) carbon emissions of electronic devices. The AI agents iteratively generate a detailed life-cycle inventory leveraging a custom data abstraction and software tools that extract information from online text and images from repair communities and government certifications. This approach reduces weeks or months of expert time to under one minute and closes data availability gaps while yielding carbon footprint estimates within 19% of expert LCAs with zero proprietary data. Additionally, we develop a method to directly estimate EI by comparing an input to a cluster of products with similar descriptions and known carbon footprints. This runs in 3 ms on a laptop with a MAPE of 12.28% on electronic products. Further, we develop a data-driven method to generate emission factors. We use the properties of an unknown material to represent it as a weighted sum of emission factors for similar materials. Compared to human experts picking the closest LCA database entry, this improves MAPE by 120.26%. We analyze the data and compute scaling of this approach and discuss its implications for future LCA workflows.
format Preprint
id arxiv_https___arxiv_org_abs_2507_17012
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Towards Autonomous Sustainability Assessment via Multimodal AI Agents
Zhang, Zhihan
Metzger, Alexander
Mei, Yuxuan
Hähnlein, Felix
Englhardt, Zachary
Cheng, Tingyu
Abowd, Gregory D.
Patel, Shwetak
Schulz, Adriana
Iyer, Vikram
Artificial Intelligence
Computational Engineering, Finance, and Science
Interest in sustainability information has surged in recent years. However, the data required for a life cycle assessment (LCA) that maps the materials and processes from product manufacturing to disposal into environmental impacts (EI) are often unavailable. Here we reimagine conventional LCA by introducing multimodal AI agents that emulate interactions between LCA experts and stakeholders like product managers and engineers to calculate the cradle-to-gate (production) carbon emissions of electronic devices. The AI agents iteratively generate a detailed life-cycle inventory leveraging a custom data abstraction and software tools that extract information from online text and images from repair communities and government certifications. This approach reduces weeks or months of expert time to under one minute and closes data availability gaps while yielding carbon footprint estimates within 19% of expert LCAs with zero proprietary data. Additionally, we develop a method to directly estimate EI by comparing an input to a cluster of products with similar descriptions and known carbon footprints. This runs in 3 ms on a laptop with a MAPE of 12.28% on electronic products. Further, we develop a data-driven method to generate emission factors. We use the properties of an unknown material to represent it as a weighted sum of emission factors for similar materials. Compared to human experts picking the closest LCA database entry, this improves MAPE by 120.26%. We analyze the data and compute scaling of this approach and discuss its implications for future LCA workflows.
title Towards Autonomous Sustainability Assessment via Multimodal AI Agents
topic Artificial Intelligence
Computational Engineering, Finance, and Science
url https://arxiv.org/abs/2507.17012