Privacy is one of the fundamental rights of individuals in modern societies. Yet, the practical adoption of privacy-preserving technologies in daily interactions remains limited. Zero-knowledge proofs offer strong privacy guarantees but are often hindered by their technical complexity. In this paper, we advance the idea of verifiable QR codes that enable off-line verifiers to verify proofs encoded in QR codes. Based on this core idea, we build a novel QR-driven zkSNARK proof verification framework (i.e., zQR) for mobile platforms. The framework integrates blockchain for auditability, non-repudiation and logging; and large-language models for automatic circuit generation. We perform a security discussion of the framework by considering multiple attack surfaces. Furthermore, we present an experimental evaluation measuring temporal costs (proof generation and verification latency, QR code encoding and decoding latency) and financial costs (blockchain gas consumption). Our results demonstrate the feasibility of zQR as a proof-of-concept framework for privacy-preserving verification on mobile platform where proofs are compactly represented with QR code symbol version of 19 with low error correction level. Finally, we discuss potential applications, current limitations and future directions for the broader adoption of privacy-preserving technologies in daily interactions.
This study proposes a lightweight Zero-Knowledge authentication model supported by QR codes. The approach is based on the Schnorr authentication protocol and provides an additional security layer against replay attacks through nonce and timestamp mechanisms. The proof data generated by the prover is embedded within a QR code and transmitted to the verifier. Thus, the system enables verification of knowledge of the secret key without revealing it. Simulation results show that proof generation and verification times under a 256-bit security level are in the millisecond range. Additionally, the proof size remains constant at approximately 0.5 KB, making it suitable for practical applications in terms of QR code capacity. The findings indicate that the proposed model is applicable in mobile and low-resource systems in terms of both security and performance.
Nehaam Khan, Mohd. Aadil Shaikh, Atul Upadhyay, Dr. Vaishali Ramtekkar
The rapid growth of the event management industry has exposed significant challenges in traditional ticketing systems, including ticket fraud, duplication, unauthorized resale, and lack of transparency, as centralized platforms often fail to provide verifiable ownership and are vulnerable to manipulation. This paper proposes an NFT-Based Ticketing System that leverages blockchain technology to create a secure, decentralized, and transparent solution where each ticket is represented as a unique Non-Fungible Token (NFT) on the Polygon blockchain, ensuring immutability and authenticity. Smart contracts automate ticket minting, ownership transfer, resale regulation, and royalty distribution, enabling fair secondary market practices while maintaining control for event organizers. The system also incorporates a QR-based verification mechanism for real-time validation at event venues, preventing duplication and unauthorized access. Implemented as a decentralized application (DApp) using Web3 technologies and tested on the Polygon Mumbai testnet, the system demonstrates improved security, reduced fraud, efficient transaction handling, and enhanced user experience, thereby transforming traditional ticketing into a reliable and trustless digital ecosystem.
Document verification in traditional systems suffers from centralized control, single points of failure, and lack of user sovereignty over personal credentials. This paper presents a novel decentralized document verification system based on Self-Sovereign Identity (SSI) principles, integrating IPFS for dis- tributed storage with smart contracts for immutable verification. Our three-tier architecture comprises users who maintain full control over their documents, verifiers who can authenticate document integrity through QR code scanning, and authori- ties who manage verifier permissions through blockchain-based access control. The system stores document content on IPFS while maintaining metadata and cryptographic hashes on-chain, ensuring both privacy and verifiability. Users upload documents to IPFS, generate QR codes containing document identifiers, and register hash values in smart contracts. Verifiers scan QR codes to retrieve documents and verify authenticity by comparing stored hashes with computed values through smart contract functions. Security analysis demonstrates resistance to tampering, unauthorized access, and single points of failure. Performance evaluation shows efficient gas usage, scalable verification times, and reduced storage costs compared to fully on-chain approaches. The system addresses critical limitations of existing identity management solutions by providing genuine user sovereignty, eliminating central authorities, and enabling privacy-preserving verification. This work contributes a practical SSI implementa- tion suitable for academic credentials, government documents, and enterprise certificate management, advancing the field of decentralized identity systems.
Ever since its inception in 2008, Blockchain technology has been widely used in most industries to ensure data security and authenticity. From Bitcoin to Blockchain-as-a-Service (BaaS), it has been increasingly adopted. Counterfeiting is one of the biggest issues that companies are fighting, impacting revenues, brand value, and customer trust. In this review, a decentralized Blockchain- based supply chain solution to ensure product authenticity without third-party dependency is discussed. Through the use of distributed ledger technology, authentic and fake products can be identified at all levels. Unique QR codes, produced by the system proposed here with SHA-256, provide transparency and traceability to each product. Blockchain-based anticounterfeiting mechanism provides a secure, tamper-evident method of proving product authenticity, allowing organizations to uphold integrity in their supply chain.
Ensuring the traceability of agricultural products is essential for quality control and food safety. Recent technological advances have provided new ways to enhance traceability systems. This study aims to use blockchain technology, centralized database and RFID tags to develop a secure agricultural product traceability system, retain the detailed information of agricultural products traceability, ensure that the summary information of agricultural products on the chain cannot be modified, and optimize the SM3 algorithm to effectively summarize the traceability data and improve the efficiency of the system. The aggregated data is time-stamped, recorded on the blockchain, and written into an RFID tag. The optimization of the SM3 algorithm improved the efficiency by 30% and reduced the execution time of 192-byte messages to 210µs. The system ensures accurate linking of traceability data through secure data retention and unalterable summaries on the blockchain. The integrated use of blockchain, centralized database and RFID technology, as well as the enhanced SM3 algorithm, allows the system to meet the standards for data accuracy and performance requirements in agricultural traceability applications.
Swati Bula Patil, Snehal Rahul Rathi, Ganesh C. Shelke, Shalini Vaibhav Wankhede · 7 authors
In recent times, there has been a rampant proliferation of counterfeit products that has left a trail of devastation in the manufacturing sectors. The repercussions of this extend to companies, impacting their brand reputation, revenue streams and overall profitability. Industries like agriculture, banking, electronics, and high-value deliveries uses the emergence of blockchain technology as a powerful tool to discern between authentic and counterfeit items. Its potential as a means to curtail the influx of fake products in the market is substantial. Blockchain technology, at its core, operates as a decentralized and distributed digital ledger system, meticulously recording transactions within interconnected blocks across multiple databases. The inherent security of this technology ensures the immutability of these blocks, rendering them invulnerable to alteration or hacking. By leveraging blockchain technology, consumers can independently verify the authenticity of a product, eliminating the need for reliance on third-party intermediaries. Incorporating recent technological advancements, the utilization of Quick Response (QR) codes offers a robust approach to combat the proliferation of counterfeit goods. The integration of blockchain technology with QR codes serves as a means to uphold the integrity of products. This innovative system securely stores product details and unique codes in the form of blocks, where QR codes play a pivotal role in collecting and matching these unique codes with entries in the blockchain database. If the QR code matches with entries in the database, the user receives a confirmation of the product's authenticity; otherwise, an alert is triggered, signaling the presence of a counterfeit product.
Nur Khairunnisa Noorhizama, Zubaile Abdullah, Shahreen Kasim, Isredza Rahmi A. Hamid · 5 authors
One of the major challenges the university faces is to provide real-time verification of their student's degree certification upon request by other parties. Conventional verification systems are typically costly, time-consuming and bureaucratic against certificate credential misconduct. In addition, the forgery of graduation degree certificates has become more efficient due to easy-to-use scanning, editing, and printing technologies. Therefore, this research proposes verifying Ph.D. certificates using QR codes on the Ethereum blockchain to address certificate verification challenges. Blockchain technology ensures tamper-proof and decentralized management of degree certificates as the certificates stored on the blockchain are replicated across the network. The issuance of certificates requires the use of the issuer's private key, thus preventing forgery. The system was developed using Solidity for the smart contract, PHP, HTML/CSS for the web-based implementation, and MetaMask for blockchain integration. User testing confirmed the successful implementation and functionality of the system. Users can add, update, and delete certificates, generate and scan QR codes, and receive instant verification feedback. The verification system effectively meets all requirements, providing a robust solution for validating Ph.D. certificates. Future research may focus on scalability and adoption, privacy and data protection, user experience, and integration with existing systems. Other researchers can optimize the verification system for widespread adoption and utilization by exploring these areas. This research contributes to securing and efficiently verifying academic certificates using QR codes on the Ethereum blockchain. Ultimately, this work advances the field of certificate verification and promotes trust in academic credentials.
In the disruptive 4.0 era that emphasizes technological sophistication, blockchain is present as a technology that increasingly influences human life, helping humans in all aspects, including education. The role of blockchain technology in the world of education is to test the validity of diplomas, the increasing number of fake diplomas for an interest, both for work and continuing education to a higher level. The purpose of this research with the implementation of blockchain is expected to make it easier for users to verify the authenticity of a diploma. This study uses the SWOT analysis method to identify all possibilities that exist in blockchain technology. The final result of this research, the system will print a physical certificate in the form of paper in general, then the certificate will be printed a QR code. To verify numeric code on QR Code via scanning on smartphone or QR Reader. It is hoped that the blockchain technology applied to digital assets can reduce cases of forgery of diplomas and other important documents.
Somdip Dey, Suman Saha, A.R. Singh, Klaus D. McDonald-Maier
Food safety is an important issue in today’s world. Traditional agri-food production system doesn’t offer easy traceability of the produce at any point of the supply chain, and hence, during a food-borne outbreak, it is very difficult to sift through food production data to track produce and origin of the outbreak. In recent years, blockchain based food production system has resolved this challenge, however, none of the proposed methodologies makes the food production data easily accessible, traceable and verifiable by consumers or producers using mobile/edge devices. In this paper, we propose FoodSQRBlock (Food Safety Quick Response Block), a blockchain technology based framework, which digitizes the food production information, and makes it easily accessible, traceable and verifiable by the consumers and producers by using QR codes. We also propose a large scale integration of FoodSQRBlock in the cloud to show the feasibility and scalability of the framework, and experimental evaluation to prove that.
Abstract In recent years, with the increase of consumers’ attention to the quality of agricultural products, reliable and reliable traceability technology of agricultural products has been paid more attention. This paper proposed a block-chain traceability system based on smart agriculture with the integration of wireless sensor network. The system has realized the agricultural product traceability system based on Ethereum. After farmers access to the system, data acquisition front-end data storage to block-chain system, the use of block-chain itself has the characteristics of decentralization, tamper-resistant, security encryption, combined with the backend database management and traceability QR code to provide consumers with safe, reliable and real farm products traceability information. Building a holographic database of the tea whole industry chain from farmland to table, adopting the food risk assessment and safety traceability technology based on the hazard factor to design the multi-role, multi-link and multi-factor intelligent management system to realize the efficient control of food quality and safety.
Kroz ovaj rad precizno je objašnjeno kako izgraditi novu kriptovalutu po uzoru na već postojeću kriptovalutu. Opisane su tehnologije koje se koriste kako bi kriptovaluta funkcionirala. Pripremljeni su potrebni programi za izgradnju klijenta kriptovalute na sustavu Linux i objašnjena njegova svrha. Nakon toga je napravljena izmjena postojeće kriptovalute. Razlozi izmjene određenih parametara su detaljno objašnjeni. Navedeni su mogući problemi pri izradi i njhova rješenja. Na kraju je izgrađena kriptovaluta i podignuta mreža čvorova.
Government officials and industry experts increasingly highlight today's data privacy and security vulnerabilities require new approaches to mitigate risk. Additional methods and techniques to address current vulnerabilities are needed especially between responsible parties within a large ecosystem like finance, healthcare, and education. New approaches leveraging cryptographic ledgers and blockchains are emerging as a potential solution. This paper proposes a layered architectural approach for cryptographic ledgers to aid in security and privacy controls of digital solutions.