Toward Trustworthy and Efficient Carbon Emissions Trading: A Stable Matching and Privacy-Preserving Framework

Carbon emissions trading (CET) requires not only efficient allowance allocation but also stable transactions and protection of sensitive trading information. This study proposes a trustworthy CET framework that integrates stable matching with privacy-preserving computing. Carbon trading is modeled as a dynamic many-to-many matching problem in which reservation prices, trading quantities, and time priority are used to construct bilateral preferences, while blocking-pair elimination ensures pairwise stability. Paillier homomorphic encryption, zk-SNARKs, and blockchain are further incorporated to support secure declaration, matching, and settlement. Real-market-calibrated simulations based on China’s national carbon market show that the proposed SMCETS mechanism maintains zero blocking pairs under excess-supply, excess-demand, and equilibrium conditions, including under reservation-price perturbations and trading-quantity variations. It also achieves higher Benefit Index and total surplus values than the Vickrey and discriminatory-price auction benchmarks in the tested settings. Prototype evaluation further demonstrates practical runtime feasibility. These results suggest that stable matching and privacy-preserving technologies can be jointly incorporated into digital carbon-trading mechanisms to support more reliable and trustworthy market operation.

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Publication Details

Journal
Sustainability
Published
2026-10-08
DOI
https://doi.org/10.3390/su181910213
Primary Topic
Blockchain Technology Applications and Security
Type
article
Field-Weighted Citation Impact
0.00
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article

Toward Trustworthy and Efficient Carbon Emissions Trading: A Stable Matching and Privacy-Preserving Framework

Jingxian Hu, Zhiguo Hu, Zenghua Du, Xuejian Qin et al.
Sustainability
Blockchain Technology Applications and Security
article

Toward Trustworthy and Efficient Carbon Emissions Trading: A Stable Matching and Privacy-Preserving Framework

Jingxian Hu, Zhiguo Hu, Zenghua Du, Xuejian Qin, Sheng Yang
article en

Abstract

Carbon emissions trading (CET) requires not only efficient allowance allocation but also stable transactions and protection of sensitive trading information. This study proposes a trustworthy CET framework that integrates stable matching with privacy-preserving computing. Carbon trading is modeled as a dynamic many-to-many matching problem in which reservation prices, trading quantities, and time priority are used to construct bilateral preferences, while blocking-pair elimination ensures pairwise stability. Paillier homomorphic encryption, zk-SNARKs, and blockchain are further incorporated to support secure declaration, matching, and settlement. Real-market-calibrated simulations based on China’s national carbon market show that the proposed SMCETS mechanism maintains zero blocking pairs under excess-supply, excess-demand, and equilibrium conditions, including under reservation-price perturbations and trading-quantity variations. It also achieves higher Benefit Index and total surplus values than the Vickrey and discriminatory-price auction benchmarks in the tested settings. Prototype evaluation further demonstrates practical runtime feasibility. These results suggest that stable matching and privacy-preserving technologies can be jointly incorporated into digital carbon-trading mechanisms to support more reliable and trustworthy market operation.

SustainabilityVol. 18(19)
North University of China (CN), Shanxi University (CN)
Openalex Percentile: Top 6%
Blockchain Technology Applications and Security
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