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 501–520 of 943 papers

Peer-reviewedCNJournalAsian Academy of Management Journal of Accounting and Finance2026#AI × ESGDOI

Hybrid Machine Learning Analysis of Exogenous Features in China’s Guangdong Carbon Market Price Prediction

Chenyao Duan, Yuanfang Chen, Junlin He +1

This study applies a hybrid CNN-LSTM model to forecast carbon prices in China's largest carbon market, Guangdong. It demonstrates the model's superiority over standalone LSTM and finds that lagged intraday OHLC prices are the most critical …

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Peer-reviewed🇨🇳 ChinaJournalSustainable Development2026#AI × ESGDOI

<scp>AI</scp> as a Sustainability Capability for Advancing <scp>SDG</scp> 7 and <scp>SDG</scp> 9: Evidence From Energy Technology Innovation in Chinese Listed Enterprises

Fengsheng Chien, Muhammad Sadiq, Atif Aziz +1

This study examines whether AI acts as a sustainability capability to accelerate progress toward SDG 7 (clean energy) and SDG 9 (industry/innovation) in China's low-carbon transition. Using panel data from listed enterprises (2007-2022), it…

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JournalAdvances in computational intelligence and robotics book series2026#AI × ESGDOI

Artificial Intelligence and Carbon Accounting

Marwane Boussetta, Mawouto HOEDEGBE, Mohamed Amine ERROCHDI

This bibliometric study analyzes the integration of AI into carbon accounting using Scopus and VOSviewer, covering publications from 2000 to 2023. It reveals accelerating research trends driven by stricter environmental regulations and corp…

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🌍 GlobalJournalResearch Explorer (The University of Manchester)2026#AI × ESG

Rethinking Regional Energy Poverty:An Intersectional Modelling Approach

Sara; id_orcid 0000-0003-1053-1641 Tavakoli, Pedro Sampaio, Ali Hassanzadeh

This study develops a three-level modeling framework operationalizing intersectionality to capture how combinations of socio-economic characteristics interact to produce regional energy poverty. Using statistical and machine learning method…

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Peer-reviewed🌍 GlobalJournalProcess Safety and Environmental Protection2026#AI × ESGDOI

Artificial intelligence for climate change mitigation and adaptation: A domain-structured review of methods, applications, and research gaps for seven high-impact domains

L. Minh Dang, Sufyan Danish, Muhammad Fayaz +4

This paper provides a domain-structured review of AI applications for climate change mitigation and adaptation across seven high-impact domains. It systematically organizes methods, applications, and research gaps, offering a comprehensive …

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Conference2026 4th International Conference on Integrated Circuits and Communication Systems (ICICACS)2026#AI × ESGDOI

An Explainable Temporal Attention Enhanced BP Neural Network for Carbon Asset Value Assessment and Prediction

Chunli Wang, Zhijiao Chu

This paper proposes an explainable temporal attention enhanced backpropagation neural network for carbon asset value assessment and prediction, aiming to improve prediction accuracy of carbon price fluctuations while ensuring model explaina…

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ConferenceProceedings of the Language Resources and Evaluation Conference2026#AI × ESGDOI

Unsupervised GRI-TCFD Alignment with LLM-Assisted Validation for Climate Disclosure and Greenwashing Risk Analysis

Seyed Alireza Mousavian Anaraki, Danilo Croce, Roberta Costa +3

This paper proposes an unsupervised method to align GRI and TCFD frameworks, using LLM-assisted validation for evaluating climate disclosure quality and greenwashing risk. It demonstrates effectiveness on real data and suggests applicabilit…

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