GX Research Hub · English

GX & Decarbonization Research

This page provides an English interface to the gxceed GX paper corpus. The corpus aggregates papers from 14 contributing 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 21–40 of 1429 papers

🇪🇺 EuropeConference2026 International Conference on Computing, Intelligence, and Applications (CIACON)2026#AI × ESGDOI

Carbon Leakage Under the EU ETS: A Machine Learning Approach to Embodied CO2 in Bilateral Trade and Sectoral Heterogeneity

Kingsuk Majumdar, Sohini Ghosh

This study applies Random Forest, XGBoost, and SVM to a 65-country, five-sector EU ETS trade panel (2000–2018) to predict carbon leakage. XGBoost achieves R²=0.965 for embodied CO2 regression and ROC-AUC=0.765 for leakage classification, su…

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2026 IEEE/IAS Industrial and Commercial Power System Asia (I&CPS Asia)2026#AI × ESGDOI

Carbon-Accountable Peer-to-Peer Energy Trading for Interconnected Multi-Microgrids Under Incomplete Information and Privacy Constraints

Jin-Xin Zhu, Guo-Feng Wang, Xin-Yan Wen +1

This paper proposes a carbon-accountable P2P trading framework for multi-microgrids that traces carbon responsibility through bilateral transactions rather than treating carbon as an external penalty. It combines a belief-aware Stackelberg …

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Peer-reviewedJournalNLDIMSR Innovision Journal of Management Research2026#AI × ESGDOI

Artificial Intelligence for Carbon Accounting, Emissions Monitoring, and Corporate Climate Accountability: Enhancing Transparency, Accuracy, and Sustainability through Intelligent Systems

Neelam Gupta, Smita Goswami

This chapter reviews how AI—machine learning, NLP, computer vision, and blockchain—can address limitations in carbon accounting, emissions auditing, and corporate climate accountability. It argues AI enables >90% prediction accuracy, sub-ho…

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🌍 GlobalJournalZenodo (CERN European Organization for Nuclear Research)2026#AI × ESGDOI

Code and data for: Reading Sustainability Reports as Pages, Not Text: visual retrieval and VLM extraction of GHG metrics

Afonso Henrique Torres Lucas, Julianne Oliveira, ROBERTO HIGINO PEREIRA DA SILVA

Open code and outputs for an experiment that treats sustainability report pages as images: ColQwen2.5 multi-vector embeddings in Qdrant retrieve pages, and a vision-language model extracts Scope 1, 2 (market- and location-based) and 3 emiss…

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Peer-reviewedJournalInternational Journal of Accounting Information Systems2026#AI × ESGDOI

A new way to analyze ESG reports: A theme based model supported by AI

Lauri Kokkinen

This paper proposes a new theme-based model, supported by AI, for analyzing ESG reports. It aims to extract and structure key themes from corporate ESG disclosures for comparable evaluation. By automating qualitative and quantitative analys…

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Peer-reviewed🌍 GlobalJournalSustainability2026#AI × ESGDOI

Reconstructing and Benchmarking ESG Scores Using a Two-Stage Entropy-Weighted Grey Relational Analysis (ESG-MCDM) Framework: Evidence from the Construction Materials Sector, 2019–2024

Yasin ŞEKER, Nevzat GÜNGÖR, İlker Sakınç +4

Reconstructs ESG scores for 50 construction-materials firms (2019–2024) from ten LSEG category scores using entropy weighting and Grey Relational Analysis. High rank correlations (0.94–0.97) but limited numerical agreement (MAE 7.5–8.7) rev…

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🌍 GlobalDatasetZenodo (CERN European Organization for Nuclear Research)2026#AI × ESGDOI

The Impact of Green Intelligence to ESG Scores in the ASEAN Banking Sector (2020-2024)

Michelle Raine Senyadji, Aiko Mazella Sutanto, Athalia Devi Nyanaviro +2

This study examines how 'green intelligence' affects ESG scores in the ASEAN banking sector over 2020-2024. It empirically links green AI/digital capabilities to ESG ratings in banking. No abstract is available, so methods, data, and findin…

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