Open Access
Issue
Manufacturing Rev.
Volume 8, 2021
Article Number 15
Number of page(s) 20
DOI https://doi.org/10.1051/mfreview/2021013
Published online 18 May 2021
  1. A. Vatankhah Barenji, Z. Li, W.M. Wang, G.Q. Huang, D.A. Guerra-Zubiaga, Blockchain-based ubiquitous manufacturing: a secure and reliable cyber-physical system, Int. J. Prod. Res. (2020) [Google Scholar]
  2. A. Zeid, S. Sundaram, M. Moghaddam, S. Kamarthi, T. Marion, Interoperability in smart manufacturing: research challenges, Machines 7 (2019) 1–17 [Google Scholar]
  3. N. Tuptuk, S. Hailes, Security of smart manufacturing systems, J. Manuf. Syst 47 (2018) 93–106 [CrossRef] [Google Scholar]
  4. C. Gifford, D. Daff, ISA-95 evolves to support smart manufacturing and IIoT, New challenges and opportunities for manufacturing technologies and standards across industries, ISA, 2018. https://www.isa.org/intech-plus/2018/feb/isa-95-evolves-to-support-smart-manufacturing-and-iiot/ (accessed April 28, 2021) [Google Scholar]
  5. K. Wust, A. Gervais, Do you need a blockchain?, Proceedings − 2018 Crypto Valley Conference on Blockchain Technology, CVCBT 2018 , pp. 45–54, 2018 [Google Scholar]
  6. J. Lee, M. Azamfar, J. Singh, A blockchain enabled cyber-physical system architecture for Industry 4.0 manufacturing systems, Manuf. Lett. 20 (2019) 34–39 [Google Scholar]
  7. Q. Wang, X. Zhu, Y. Ni, L. Gu, H. Zhu, Blockchain for the IoT and industrial IoT: a review, Internet of Things 10 (2020) 100081 [Google Scholar]
  8. J.M. Müller, K.I. Voigt, The impact of Industry 4.0 on supply chains in engineer-to-order industries − an exploratory case study, IFAC-Papers OnLine (2018) 122–127 [Google Scholar]
  9. A. Panarello, N. Tapas, G. Merlino, F. Longo, A. Puliafito, Blockchain and iot integration: a systematic survey, Sensors (Switzerland) 18 (2018). doi: 10.3390/s18082575 [CrossRef] [Google Scholar]
  10. N. Mohamed, J. Al-Jaroodi, Applying blockchain in industry 4.0 applications, In: 2019 IEEE 9th Annual Computing and Communication Workshop and Conference, CCWC 2019 , pp. 852–858, 2019 [Google Scholar]
  11. J. Al-Jaroodi, N. Mohamed, Blockchain in industries: a survey, IEEE Access 7 (2019) 36500–36515 [Google Scholar]
  12. H.-N. Dai, Z. Zheng, Y. Zhang, Blockchain for internet of things: a survey, J. Internet Serv. Info. Secur. 9 (2019) 1–30 [Google Scholar]
  13. T.M. Fernández-Caramés, P. Fraga-Lamas, A review on the application of blockchain for the next generation of cybersecure Industry 4.0 smart factories, IEEE Acess (2019) 45201–45218 [Google Scholar]
  14. T. Alladi, V. Chamola, R.M. Parizi, K.K.R. Choo, Blockchain applications for Industry 4.0 and industrial IoT: a review, IEEE Access 7 (2019) 176935–176951 [Google Scholar]
  15. D. Yaga, P. Mell, N. Roby, K. Scarfone, Blockchain technology overview, NIST, 2018 [Google Scholar]
  16. Z. Zheng, S. Xie, H. Dai, X. Chen, H. Wang, An overview of blockchain technology: architecture, consensus, and future trends, In: Proceedings − 2017 IEEE 6th International Congress on Big Data, BigData Congress 2017 , pp. 557–564, 2017 [Google Scholar]
  17. O. Dib, K.-L. Brousmiche, A. Durand, E. Thea, E.B. Hamida, Consortium blockchains: overview, applications and challenges, Int. J. Adv. Telecommun. (2018) [Google Scholar]
  18. X. Xu, I. Weber, M. Staples, X. Xu, I. Weber, M. Staples, Architecture for Blockchain Applications. Eveleigh Australia: Springer Nature Switzerland, 2019 [Google Scholar]
  19. M. Isaja, A. Calà, Blockchain as a key enabling technology for decentralized cyber-physical production systems, Far-Edge, pp. 1–6 (2020). https://www.edge4industry.eu/wp-content/uploads/2018/11/Blockchain-as-a-Key-Enabling-Technology-for-Decentralized-CPPS.pdf [Google Scholar]
  20. V. Gatteschi, F. Lamberti, C. Demartini, C. Pranteda, V. Santamaria, To blockchain or not to blockchain: that is the question, IT Prof. (2018) 62–74 [Google Scholar]
  21. G. Kaur, C. Gandhi, Scalability in Blockchain: Challenges and Solutions. San Diego, United States: INC, 2020 [Google Scholar]
  22. M. Alharby, A. Van Moorsel, Blockchain-based smart contracts: a systematic mapping study, ArXiv (2017) 125–140. doi: 10.5121/csit.2017.71011 [Google Scholar]
  23. T.J. Williams, A reference model for computer integrated manufacturing from the viewpoint of industrial automation, IFAC Proc. 23 (1990) 281–291 [Google Scholar]
  24. ISA, International Society of Automation, Automation, International Society of (2021). https://www.isa.org/ (accessed April 28, 2021) [Google Scholar]
  25. American National Standards Institute, ISA-95.00.01-2010, ISA-95.00.02-2010, ISA-95.00.03-2013, ISA-95.00.04-2012, ISA-95.00.05-2013. North Carolina, USA, 2010 [Google Scholar]
  26. M. Åkerman, Implementing shop floor IT for Industry 4.0. Department of Industrial and Materials Science, 2018 [Google Scholar]
  27. A. Gilchrist, The Industrial Internet of Things. Bangken, Nonthaburi, Thailand: Springer, 2016 [Google Scholar]
  28. B. Wang, The future of manufacturing: a new perspective, Engineering (2018) 722–728 [Google Scholar]
  29. V. Watson, A. Tellabi, J. Sassmannshausen, X. Lou, Interoperability and security challenges of Industrie 4.0, Lecture Notes in Informatics (LNI), Proceedings − Series of the Gesellschaft fur Informatik (GI), vol. 275, pp. 973– 985, 2017 [Google Scholar]
  30. J.M. Müller, J.W. Veile, K.I. Voigt, Prerequisites and incentives for digital information sharing in Industry 4.0–an international comparison across data types, Comput. Ind. Eng. 148 (2020) 106733 [Google Scholar]
  31. G. Pedone, I. Mezgár, Model similarity evidence and interoperability affinity in cloud-ready Industry 4.0 technologies, Comput. Ind. 100 (2018) 278–286 [Google Scholar]
  32. S.R. Ray, A.T. Jones, Manufacturing interoperability, J. Intell. Manuf. (2006) 681–688 [Google Scholar]
  33. M. Thomas, 2020 Global Threat Intelligence Report (GTIR), NTT, 2020. https://de.nttdata.com/files/2020-en-study-ntt-ltd-global-threat-intelligence-report-2020.pdf (accessed April 25, 2021) [Google Scholar]
  34. S. Sun, X. Zheng, J. Villalba-Díez, J. Ordieres-Meré, Data handling in industry 4.0: interoperability based on distributed ledger technology, Sensors (Switzerland) 20 (2020) 1–22 [Google Scholar]
  35. W. Zhang, Y. Shi, S. Duan, J. Liu, Industrial big data analytics, In: 2015 IEEE/ACM 1st International Workshop on Big Data Software Engineering, pp. 1–3, 2015 [Google Scholar]
  36. R. Buranello, The challenges of scaling and securing manufacturing IoT solutions, Telit, 2018. https://www.telit.com/blog/the-challenges-of-scaling-and-securing-manufacturing-iot-solutions/ (accessed April 28, 2021) [Google Scholar]
  37. S.R. Chhetri, S. Faezi, N. Rashid, M.A. Al Faruque, Manufacturing supply chain and product lifecycle security in the era of Industry 4.0, J. Hardw. Syst. Secur. (2018) 51–68 [Google Scholar]
  38. Blackfog, The State of Ransomware in 2020, Blackfog Web, 2020. https://www.blackfog.com/the-state-of-ransomware-in-2020/#%0Ahttps://www.blackfog.com/the-state-of-ransomware-in-2020/ (accessed April 28, 2021) [Google Scholar]
  39. OWASP, OWASP top 10 Internet of Things, OWASP, 2018. https://owasp.org/www-pdf-archive/OWASP-IoT-Top-10-2018-final.pdf [Google Scholar]
  40. M. Isaja, J. Soldatos, Distributed ledger technology for decentralization of manufacturing processes, In: Proceedings − 2018 IEEE Industrial Cyber-Physical Systems, ICPS 2018, pp. 696–701, 2018 [Google Scholar]
  41. B. Brune, At automate show, blockchain described as ‘World Wide Ledger’, 2020. https://www.sme.org/technologies/articles/2020/april/at-automate-show–blockchain-described–as-world-wide-ledger/ (accessed April 25, 2021) [Google Scholar]
  42. T. Koens, E. Poll, Assessing interoperability solutions for distributed ledgers, Pervasive Mob. Comput. (2019) 1–45 [Google Scholar]
  43. Solidity, Ethereum, 2021. https://ethereum.org/en/ (accessed April 28, 2021) [Google Scholar]
  44. I. Blockchain, IBM hyperledger fabric, IBM Corporation, 2021. https://www.ibm.com/se-en/topics/hyperledger (accessed April 28, 2021) [Google Scholar]
  45. D. Randall, P. Goel, R. Abujamra, Blockchain applications and use cases in health information technology, J. Health Med. Info. (2017) 2–18 [Google Scholar]
  46. M.A. Khan, K. Salah, IoT security: review, blockchain solutions, and open challenges, Future Gener. Comput. Syst. (2018) 395–411 [Google Scholar]
  47. S. Khemissa, Using blockchain technology to secure the Internet of Things, Cloud Security Alliance, 2018. https://downloads.cloudsecurityalliance.org/assets/research/blockchain/Using_BlockChain_Technology_to_Secure_the_Internet_of_Things.pdf (accessed April 25, 2021) [Google Scholar]
  48. F. Benhamouda, S. Halevi, T. Halevi, Supporting private data on Hyperledger Fabric with secure multiparty computation, IBM J. Res. Dev. (2019) [Google Scholar]
  49. E. Piscini, D. Dalton, L. Kehoe, Blockchain & cyber security, Deloitte, p. 14, 2018 [Google Scholar]
  50. E. Androulaki, S.W. Cocco, C. Ferris, Private and confidential transactions with Hyperledger Fabric, IBM developerWorks, 2018. https://developer.ibm.com/tutorials/cl-blockchain-private-confidential-transactions-hyperledger-fabric-zero-knowledge-proof/%0Ahttps://www.ibm.com/developerworks/cloud/library/cl-blockchain-private-confidential-transactions-hyperledger-fabric-zero-knowled (accessed April 28, 2021) [Google Scholar]
  51. M. Walker, Blockchain, a barrier against ransomware, 2019. https://thefintechtimes.com/blockchain-barrier-ransomware/ (accessed April 25, 2021) [Google Scholar]
  52. U. Javaid, A.K. Siang, M.N. Aman, B. Sikdar, Mitigating IoT device based DDoS attacks using blockchain, In: CRYBLOCK 2018 − Proceedings of the 1st Workshop on Cryptocurrencies and Blockchains for Distributed Systems, Part of MobiSys 2018, pp. 71–76, 2018 [Google Scholar]
  53. ISO, ISO/IEC 25012, International Organization for Standardization, 2008. https://iso25000.com/index.php/en/iso-25000-standards/iso-25012?limit=5&limitstart=0 (accessed April 25, 2021) [Google Scholar]
  54. H.Y. Paik, X. Xu, H.M.N.D. Bandara, S.U. Lee, S.K. Lo, Analysis of data management in nlockchain-based systems: from architecture to governance, IEEE Access 7 (2019) 186091–186107 [Google Scholar]
  55. X. Wang, Q. Hu, Y. Zhang, G. Zhang, W. Juan, C. Xing, A kind of decision model research based on big data and blockchain in eHealth, Web Information Systems and Applications. WISA 2018. Lecture Notes in Computer Science, vol. 11242 LNCS, pp. 300–306, 2018, doi: 10.1007/978-3-030-02934-0_28 [Google Scholar]
  56. P.G.B. Survey, Blockchain is here. What's your next move?, 2018. https://www.pwc.se/sv/pdf-reports/blockchain/Blockchain-whitepaper-blockchain-means-business_What-is-your- next-move.pdf (accessed January 26, 2021) [Google Scholar]
  57. Gartner, Gartner 2019 hype cycle shows most blockchain technologies are still five to 10 years away from transformational impact, 2019. https://www.gartner.com/en/newsroom/press-releases/2019-10-08-gartner-2019-hype-cycle-shows-most-blockchain-technologies-are-still-five-to-10-years- away-from-transformational-impact [Google Scholar]
  58. J.C. Song, M.A. Demir, J.J. Prevost, P. Rad, Blockchain design for trusted decentralized IoT networks, In: 2018 13th System of Systems Engineering Conference, SoSE 2018, pp. 169–174, 2018 [Google Scholar]
  59. I. Eyal, E.G. Sirer, Majority is not enough: bitcoin mining is vulnerable, Department of Computer Science, Cornell University, 2014. https://www.cs.cornell.edu/∼ie53/publications/btcProcFC.pdf [Google Scholar]
  60. P. Praitheeshan, L. Pan, J. Yu, J. Liu, R. Doss, Security analysis methods on ethereum smart contract vulnerabilities: a survey, ArXiv, pp. 1–21, 2019. https://arxiv.org/pdf/1908.08605.pdf [Google Scholar]

Current usage metrics show cumulative count of Article Views (full-text article views including HTML views, PDF and ePub downloads, according to the available data) and Abstracts Views on Vision4Press platform.

Data correspond to usage on the plateform after 2015. The current usage metrics is available 48-96 hours after online publication and is updated daily on week days.

Initial download of the metrics may take a while.