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Blockchain-based two-level trustable reputation framework for e-commerce platform using smart contracts

K. Sundara KrishnanDepartment of CSE, Alagappa Chettiar Government College of Engineering and Technology, Karaikudi, IndiaR. Chithra DeviDepartment of Information Technology, Dr. Sivanthi Aditanar College of Engineering, Tiruchendur, IndiaChristo AnanthFaculty of Artificial Intelligence and Digital Technologies, Samarkand State University, 140104, Samarkand, UzbekistanD. EaswaramoorthyDepartment of Mathematics, School of Advanced Sciences, Vellore Institute of Technology, Vellore, Tamil Nadu, IndiaSaurabh AgarwalSchool of Computer Science and Engineering, Yeungnam University, Gyeongsan, Republic of Korea. [email protected]Wooguil PakSchool of Computer Science and Engineering, Yeungnam University, Gyeongsan, Republic of KoreaHari Mohan RaiDepartment of Computer Science, School of Engineering and Digital Sciences, Nazarbayev University, 010000, Astana, KazakhstanShashi KantDepartment of Management, College of Business and Economics, Bule Hora University, Bule Hora, Ethiopia. [email protected]
Scientific Reportsjournal2026en
ABI

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E-commerce platforms incorporate reviews and reputation systems, allowing retailers and customers to manage and track their financial transactions. Consequently, it is crucial to design a reliable reputation system for the e-commerce environment, as it faces well-documented threats, including sybil attacks, feedback collusion, impersonation, review tampering, and whitewashing attacks. Current centralized systems are vulnerable to impersonation attacks, feedback manipulation, and lack automated verification against collusion-based reputation distortion. These unwanted ratings and reviews are highly correlated with abnormal cyber-attacks that damage both seller reputations and buyer experiences. To address these challenges, we propose a Blockchain-based Two-Level E-Commerce Trustable Reputation Framework (BTL-ETRF) utilizing deep learning-embedded transformers and redactable blockchain systems. Initially, we implement Multi-Factor Authentication for e-commerce users, utilizing three factors: PIN, OTP, and biometric fingerprint, to mitigate impersonation attacks. Only authenticated users are allowed to proceed to the reputation verification stage, where the proposed work considers five major metrics to classify user reputation using the Residual Dilated Convolution Transformer. To automate the reputation verification process, we design and employ two smart contracts, the Authentication Smart Contract and the Reputation Smart Contract which trigger automated actions based on the BTL-ETRF results. All transactions include reputation classification, and triggered actions are stored in the redactable blockchain, which can modify the stored transactions if needed. Finally, we demonstrate the performance of the proposed BTL-ETRF using Python and Ethereum Solidity, and conduct a formal analysis that shows the proposed model outperforms the compared works.

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