gxceed
GX Research Hub · English

GX & Decarbonization Research

This page provides an English interface to the gxceed GX paper corpus. The corpus aggregates papers from 13 open scholarly metadata sources and uses AI-assisted classification to identify signals related to measurement, policy narratives, outcomes, implementation, industrial adoption, and verification.

The goal is not only to discover papers, but to observe how GX research is distributed across research substance, implementation narratives, external expectations, implementation substance, and judgment formation.

Summaries are AI-assisted. Always refer to the original paper for authoritative conclusions.

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Topic: #AI × ESG (clear)

Showing 161–180 of 229 papers

🌍 Global📚 Peer-reviewed · ConferenceProceedings of the International Conference on Economics and Social Sciences2026#AI × ESGDOI

Aligning Artificial Intelligence with Economic Policy for Decarbonisation: A Multi-Level Simulation Framework

Madalina Ana BURDUJA, Dorel Mihai PARASCHIV

This study introduces the AI-Enhanced Decarbonisation Model (AEDM), integrating AI with behavioral and welfare economics for adaptive climate policy. Simulations in Massachusetts and Seoul show that AI-driven policy feedback outperforms sta…

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🌍 Global📚 Peer-reviewed · JournalEconomic Sciences2026#AI × ESGDOI

Ai Integration for A Sustainable Reporting and Accountability Framework

Dr. Honey Gupta, Ms. Shivangi Seth

This paper explores the integration of AI into sustainability reporting and accountability frameworks. It examines AI's role in data acquisition, ESG analytics, assurance, regulatory compliance, and stakeholder engagement. The findings high…

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🇺🇸 USA📚 Peer-reviewed · JournalFrontiers in Environmental Science2026#AI × ESGDOI

The green potential of artificial intelligence: revisiting energy consumption, growth, and ecological footprint in the United States

Mohammad Ridwan, Jeremy Ko, C. Leung +1

This study examines how AI innovation, energy consumption, economic growth, industrialization, and population affect the US ecological footprint from 1996 to 2024 using ARDL and robustness tests. Results show AI innovation reduces ecologica…

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🌍 Global📚 Peer-reviewed · Journal2026#AI × ESGDOI

AI/ML Augmented Subsurface Data Workflows for Low Carbon Datasets

Jess B. Kozman, Jack Bashian

This paper emphasizes that AI/ML workflows for low-carbon subsurface energy projects (geothermal, CCS) require high-quality, well-curated geotechnical data adhering to FAIR principles. It highlights that many datasets lack integration and g…

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🌍 Global📚 Peer-reviewed · JournalBusiness Strategy and the Environment2026#AI × ESGDOI

Artificial Intelligence–Driven and Digital Practices for Circular Business and Finance: Insights for Advancing Hubs for Circularity

Aditya Tripathi, M. Machado, L. Spierdijk +1

This systematic literature review synthesizes insights from circular business models, industrial symbiosis, eco-industrial parks, and closed-loop supply chains to inform the development of Hubs for Circularity (H4Cs). It highlights the role…

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📚 Peer-reviewed · JournalProcesses2026#AI × ESGDOI

Artificial Neural Network-Based Classification of Industrial Sustainability Profiles for Differentiated Fiscal Policy Design in Remanufacturing Processes

M. Eraña-Díaz, Juana Enríquez-Urbano, B. Martínez-Bahena +3

This study proposes a two-phase computational framework combining K-Means clustering and a binary ANN classifier to capture heterogeneity in environmental performance across manufacturing units in remanufacturing. Using 1000 synthetic recor…

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🌍 Global📚 Peer-reviewed · JournalBusiness Strategy and the Environment2026#AI × ESGDOI

Artificial Intelligence‐Powered Innovation Strategies for ESG Impact and Sustainable Ecosystems: A Natural‐Resource‐Based and Environmental‐Legitimacy Perspective

Fadi Alkaraan, Mahmoud Elmarzouky, V. G. Venkatesh +3

This study uses large-scale UK data (32,273 firms from the UK Innovation Survey, FTSE All-Share data, and annual reports) to show that AI-powered Industry 4.0 technologies enable circular economy strategy practices, boosting ESG and ecosyst…

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📚 Peer-reviewed · JournalInverge Journal of Social Sciences2026#AI × ESGDOI

Green Finance Intelligence and Sustainable Capital Allocation: Artificial Intelligence Driven ESG Signal Processing and Capital Market Efficiency

Dr. Syed Shameel Ahmed Quadri, Dad Ansari, Zonaira Akbar +1

This study empirically examines how AI-driven ESG signal processing enhances green finance intelligence, leading to better sustainable capital allocation and capital market efficiency. Using survey data from 312 financial professionals and …

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📚 Peer-reviewed · JournalAAAI Conference on Artificial Intelligence2026#AI × ESGDOI

ESG-Bench: Benchmarking Long-Context ESG Reports for Hallucination Mitigation

Siqi Sun, Ben Wu, Mali Jin +3

This paper introduces ESG-Bench, a benchmark dataset for evaluating LLMs on ESG report understanding and hallucination mitigation. The dataset includes human-annotated QA pairs with factual support labels. Chain-of-Thought prompting and fin…

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📚 Peer-reviewed · JournalJournal of Financial Reporting & Accounting2026#AI × ESGDOI

Leveraging AI for ESG disclosures: a deep dive into UAE’s Islamic and conventional banking sectors

Fatma Bennaceur, Ali Bendob, Anwar Hasan Abdullah Othman

This study uses AI, ML, and NLP to assess ESG disclosure quality among Islamic and conventional banks in the UAE (2021-2024). Conventional banks score higher on climate risk and compliance, while Islamic banks show consistency and emphasis …

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🇺🇸 USA📚 Peer-reviewed · JournalLibra2026#AI × ESGDOI

Leveraging LLMs for Enhanced Sustainability Reporting: An Application for Analyzing, Comparing, and Visualizing ESG Reports; Automated Interpretation and the Politics of Transparency: How LLM-Generated Summaries Shape the Meaning and Accountability of ESG Disclosures

Fiona Magee

This paper develops a web application using LLMs to automatically summarize, analyze, and compare ESG reports. It enables stakeholders to reduce manual review effort, identify trends, and benchmark against peers. The prototype demonstrates …

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