Food Safety Traceability System Based on Blockchain and EPCIS

被引:213
作者
Lin, Qijun [1 ]
Wang, Huaizhen [1 ]
Pei, Xiaofu [1 ]
Wang, Junyu [1 ]
机构
[1] Fudan Univ, State Key Lab ASIC & Syst, Shanghai 201203, Peoples R China
关键词
Food safety; traceability; blockchain; EPCIS; on-chain & off-chain; smart contract;
D O I
10.1109/ACCESS.2019.2897792
中图分类号
TP [自动化技术、计算机技术];
学科分类号
0812 ;
摘要
In recent years, food safety issues have drawn growing concerns from society. In order to efficiently detect and prevent food safety problems and trace the accountability, building a reliable traceability system is indispensable. It is especially essential to accurately record, share, and trace the specific data within the whole food supply chain, including the process of production, processing, warehousing, transportation, and retail. The traditional traceability systems have issues, such as data invisibility, tampering, and sensitive information disclosure. The blockchain is a promising technology for the food safety traceability system because of the characteristics, such as the irreversible time vector, smart contract, and consensus algorithm. This paper proposes a food safety traceability system based on the blockchain and the EPC Information Services and develops a prototype system. The management architecture of on-chain & off-chain data is proposed as well, through which the traceability system can alleviate the data explosion issue of the blockchain for the Internet of Things. Furthermore, the enterprise-level smart contract is designed to prevent data tampering and sensitive information disclosure during information interaction among participants. The prototype system was implemented based on the Ethereum. According to the test results, the average time of information query response is around 2 ms, while the amount of on-chain data and query counts are 1 GB and 1000 times/s, respectively.
引用
收藏
页码:20698 / 20707
页数:10
相关论文
共 16 条
[1]  
Aitken R., 2017, IBM FORGES BLOCKCHAI
[2]  
Caro Miguel Pincheira, 2018, 2018 IoT Vertical and Topical Summit on Agriculture - Tuscany (IOT Tuscany), DOI 10.1109/IOT-TUSCANY.2018.8373021
[3]  
Feng Tian, 2016, 2016 13th International Conference on Service Systems and Service Management (ICSSSM), P1, DOI 10.1109/ICSSSM.2016.7538424
[4]  
Fujimura S, 2015, 2015 IEEE 5TH INTERNATIONAL CONFERENCE ON CONSUMER ELECTRONICS - BERLIN (ICCE-BERLIN), P345, DOI 10.1109/ICCE-Berlin.2015.7391275
[5]   APPA: An anonymous and privacy preserving data aggregation scheme for fog-enhanced IoT [J].
Guan, Zhitao ;
Zhang, Yue ;
Wu, Longfei ;
Wu, Jun ;
Li, Jing ;
Ma, Yinglong ;
Hu, Jingjing .
JOURNAL OF NETWORK AND COMPUTER APPLICATIONS, 2019, 125 :82-92
[6]  
Lansiti M, 2017, HARVARD BUS REV, V95, P119
[7]  
Nakamoto S., 2008, BITCOIN PEER TO PEER
[8]   GS1 Connected car using EPCIS-ONS system [J].
Sohn, Bongjin ;
Woo, Sungpil ;
Han, Jiyong ;
Cho, Hyeeun ;
Byun, Jaewook ;
Kim, Daeyoung .
2016 IEEE INTERNATIONAL CONGRESS ON BIG DATA - BIGDATA CONGRESS 2016, 2016, :426-429
[9]  
Swan M., 2015, Blockchain: Blueprint for a New Economy
[10]   A Novel Blockchain-Based Product Ownership Management System (POMS) for Anti-Counterfeits in the Post Supply Chain [J].
Toyoda, Kentaroh ;
Mathiopoulos, P. Takis ;
Sasase, Iwao ;
Ohtsuki, Tomoaki .
IEEE ACCESS, 2017, 5 :17465-17477