Blockchain Applications in Forestry: A Systematic Literature Review
Abstract
:1. Introduction
2. Overview of Blockchain
- Blockchain 2.0 was introduced for smart contracts in 2013. A smart contract is a piece of code executed while a transaction is performed [18]. The code in smart contracts automatically executes when all conditions are met [21]. Smart contracts can be used as agreements between all parties in transactions. All parties involved will be forced to perform the transaction once conditions are met. In other words, the transactions with smart contracts do not need to be monitored by a trusted third party which makes the transactions irreversible, secure, and decentralized [21]. Smart contracts are transparent and autonomous to eliminate manipulation and human error [19]. One famous example of platforms to implement smart contracts is Ethereum proposed in 2013 [22]. Ethereum is a platform for blockchain and allows everyone to program smart contracts by creating their ownership rules and transaction formats [22];
- Blockchain 3.0 was introduced in 2015 and mainly focused on the development of decentralized applications and computing [23]. In this stage, decentralized applications are formed by back-end codes running on the open-source platform [24]. Blockchain 3.0 is integrated with cryptographic tokens. Tokens are digital assets that can represent any value [25]. The token economy became the front-end face in this era;
- Blockchain 4.0 integrated artificial intelligence (AI) with blockchain technology to make better decisions without the need of direct human intervention in 2018 [19,23]. The combination of AI and blockchain can help solve complex issues worldwide. In general, AI predicts outcomes using algorithms based on probability. The outcomes of AI constantly change since the algorithm can ‘learn’ from new data. On the contrary, blockchain technology hash data and the outcomes are permanent and unchangeable. The characteristics of blockchain make data accurate which is helpful and useful to input it into AI systems. Moreover, blockchain could record and secure the outcomes of AI systems [19].
3. Research Methodology
3.1. Research Questions
- RQ1.
- What blockchain applications have been developed or proposed for the forestry sector?
- RQ2.
- How are the blockchain applications being implemented in forestry?
- RQ3.
- What are the benefits and opportunities of blockchain applications in forestry?
- RQ4.
- What are the challenges of blockchain applications in forestry?
3.2. Search Strategy
3.3. Data Selection
3.4. Data Extraction
- Blockchain application area of forestry;
- Layers of blockchain architectures;
- Components of blockchain-based systems;
- Whether the smart contracts were used;
- Blockchain platform;
- Purpose of the blockchain applications;
- Reported benefits, opportunities and challenges.
3.5. Analysis, Synthesis and Report
4. Blockchain Applications in the Forestry Sector
4.1. Traceability
4.2. Forest Management
4.3. Forest Fire Detection
5. Benefits, Opportunities and Challenges of Blockchain Applications in Forestry
5.1. Benefits of Blockchain in Forestry
5.2. Opportunities of Blockchain in Forestry
5.3. Challenges of Blockchain in Forestry
6. Managerial Implications
7. Theoretical Implications and Future Research Directions
8. Conclusions
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Conflicts of Interest
Appendix A
No. | Author(s) | Year | Title | Publication Type |
---|---|---|---|---|
[40] | Sun, Y. et al. | 2021 | Wood Product Tracking Using an Improved AKAZE Method in Wood Traceability System | Journal article |
[36] | Düdder, B. and Ross, O. | 2017 | Timber tracking: reducing complexity of due diligence by using blockchain technology | Other: Position paper |
[39] | Sheng, S.W. and Wicha, S. | 2021 | The Proposed of a Smart Traceability System for Teak Supply Chain Based on Blockchain Technology | Conference paper |
[52] | Komdeur, E.M. and Ingenbleek, P.T | 2021 | The potential of blockchain technology in the procurement of sustainable timber products | Journal article |
[38] | Gallersdörfer, U. and Matthes, F | 2018 | Tamper-Proof Volume Tracking in Supply Chains with Smart Contracts | Conference paper |
[4] | Nandhini, J.M. et al. | 2021 | Smart Tree Management with Biodiversity Preservation Using Image Processing and Blockchain Technology | Conference paper |
[9] | Willrich, S. et al. | 2019 | Rethinking Forest Management: A Participatory Blockchain-based Governance Approach | Conference paper |
[48] | Sun, R. et al. | 2021 | Mechanism Analysis of Applying Blockchain Technology to Forestry Carbon Sink Projects Based on the Differential Game Model | Journal article |
[37] | Munoz, M.F. et al. | 2021 | LogLog: A blockchain solution for tracking and certifying wood volumes | Conference paper |
[50] | Datta, S. et al. | 2021 | BSSFFS: blockchain-based Sybil-secured smart forest fire surveillance | Journal article |
[32] | Lobovikov, M. et al. | 2021 | Blockchain–killer of illegal wood | Conference paper |
[42] | Tavares, E.C. et al. | 2019 | Blockchain in the Green Treasure: Different Investment Objectives | Conference paper |
[43] | Lobovikov, M. et al. | 2021 | Blockchain–booster of the Russian forest information systems | Conference paper |
[33] | Vilkov, A. and Tian, G. | 2019 | Blockchain as a solution to the problem of illegal timber trade between Russia and China: SWOT analysis | Journal article |
[51] | Datta, S. and Sinha, D | 2021 | BESDDFFS: Blockchain and EdgeDrone based secured data delivery for forest fire surveillance | Journal article |
[35] | Figorilli, S. et al. | 2018 | A blockchain implementation prototype for the electronic open-source traceability of wood along the whole supply chain | Journal article |
[34] | Cueva-Sánchez, J.J. et al. | 2020 | A blockchain-based technological solution to ensure data transparency of the wood supply chain | Conference paper |
[46] | Howson, P. et al. | 2019 | Cryptocarbon: the promises and pitfalls of forest protection on a blockchain | Journal article |
[45] | Kotsialou, G. et al. | 2021 | Forest carbon offsets over a smart ledger | Other: Preprint paper |
[44] | Figorilli, S. et al. | 2021 | A Blockchain implemented App for forestry nursery management | Conference paper |
[41] | Mechik, E. and von Hauff, M., | 2022 | The Fight Against Deforestation of Tropical Forests—The Contribution of the Blockchain-Based Contract Management Method to Minimize Illegal Logging | Other: Book chapter |
References
- Nakamoto, S. Bitcoin: A Peer-to-Peer Electronic Cash System. Decentralized Business Review. 2008. 21260. Available online: https://www.debr.io/article/21260-bitcoin-a-peer-to-peer-electronic-cash-system (accessed on 12 November 2021).
- Hölbl, M.; Kompara, M.; Kamišalić, A.; Nemec Zlatolas, L. A Systematic Review of the Use of Blockchain in Healthcare. Symmetry 2018, 10, 470. [Google Scholar] [CrossRef] [Green Version]
- The Dictionary of Forestry. Available online: https://web.archive.org/web/20131019122343/http://dictionaryofforestry.org/dict/term/forestry (accessed on 12 December 2021).
- Nandhini, J.M.; Anuratha, K.; Sangeetha, K.; Jaswant, K.A. In Smart Tree Management with Biodiversity Preservation Using Image Processing and Blockchain Technology. In Proceedings of the 2021 International Conference on System, Computation, Automation and Networking, ICSCAN 2021, Puducherry, India, 30–31 July 2021. [Google Scholar]
- Food and Agriculture Organization of the United Nations (FAO). The Russian Federation Forest Sector: Out-Look Study to 2030; FAO: Rome, Italy, 2012; Available online: https://agris.fao.org/agris-search/search.do?recordID=XF2013001279 (accessed on 12 December 2021).
- Torres-Rojo, J.M. Illegal Logging and the Productivity Trap of Timber Production in Mexico. Forests 2021, 12, 838. [Google Scholar] [CrossRef]
- He, Z.; Turner, P. A Systematic Review on Technologies and Industry 4.0 in the Forest Supply Chain: A Framework Identifying Challenges and Opportunities. Logistics 2021, 5, 88. [Google Scholar] [CrossRef]
- Appelhanz, S.; Osburg, V.-S.; Toporowski, W.; Schumann, M. Traceability system for capturing, processing and providing consumer-relevant information about wood products: System solution and its economic feasibility. J. Clean. Prod. 2016, 110, 132–148. [Google Scholar] [CrossRef]
- Alammary, A.; Alhazmi, S.; Almasri, M.; Gillani, S. Blockchain-Based Applications in Education: A Systematic Review. Appl. Sci. 2019, 9, 2400. [Google Scholar] [CrossRef] [Green Version]
- Antonucci, F.; Figorilli, S.; Costa, C.; Pallottino, F.; Raso, L.; Menesatti, P. A Review on blockchain applications in the agri-food sector. J. Sci. Food Agric. 2019, 99, 6129–6138. [Google Scholar] [CrossRef]
- Andoni, M.; Robu, V.; Flynn, D.; Abram, S.; Geach, D.; Jenkins, D.; McCallum, P.; Peacock, A. Blockchain technology in the energy sector: A systematic review of challenges and opportunities. Renew. Sustain. Energy Rev. 2019, 100, 143–174. [Google Scholar] [CrossRef]
- Tijan, E.; Aksentijević, S.; Ivanić, K.; Jardas, M. Blockchain Technology Implementation in Logistics. Sustainability 2019, 11, 1185. [Google Scholar] [CrossRef] [Green Version]
- Ozdemir, A.I.; Ar, I.M.; Erol, I. Assessment of blockchain applications in travel and tourism industry. Qual. Quant. 2020, 54, 1549–1563. [Google Scholar] [CrossRef]
- Gatteschi, V.; Lamberti, F.; Demartini, C.; Pranteda, C.; Santamaría, V. Blockchain and Smart Contracts for Insurance: Is the Technology Mature Enough? Future Internet 2018, 10, 20. [Google Scholar] [CrossRef] [Green Version]
- Morkunas, V.J.; Paschen, J.; Boon, E. How blockchain technologies impact your business model. Bus. Horiz. 2019, 62, 295–306. [Google Scholar] [CrossRef]
- Thwin, T.T.; Vasupongayya, S. Blockchain-based access control model to preserve privacy for personal health record systems. Secur. Commun. Networks 2019, 2019, 8315614. [Google Scholar] [CrossRef]
- De Aguiar, E.J.; Faiçal, B.S.; Krishnamachari, B.; Ueyama, J. A survey of blockchain-based strategies for healthcare. ACM Comput. Surv. (CSUR) 2020, 53, 1–27. [Google Scholar] [CrossRef] [Green Version]
- Dinh, T.T.A.; Liu, R.; Zhang, M.; Chen, G.; Ooi, B.C.; Wang, J. Untangling blockchain: A data processing view of blockchain systems. IEEE Trans. Knowl. Data Eng. 2018, 30, 1366–1385. [Google Scholar] [CrossRef] [Green Version]
- Angelis, J.; Da Silva, E.R. Blockchain adoption: A value driver perspective. Bus. Horiz. 2019, 62, 307–314. [Google Scholar] [CrossRef]
- Swan, M. Blockchain: Blueprint for a New Economy; O’Reilly Media, Inc.: Newton, MA, USA, 2015. [Google Scholar]
- Bao, J.; He, D.; Luo, M.; Choo, K.-K.R. A survey of blockchain applications in the energy sector. IEEE Syst. J. 2020, 15, 3370–3381. [Google Scholar] [CrossRef]
- Buterin, V. A next-generation smart contract and decentralized application platform. White Pap. 2014, 3, 1–36. [Google Scholar]
- Ismail, L.; Materwala, H. A review of blockchain architecture and consensus protocols: Use cases, challenges, and solutions. Symmetry 2019, 11, 1198. [Google Scholar] [CrossRef] [Green Version]
- Raval, S. Decentralized Applications: Harnessing Bitcoin’s Blockchain Technology; O’Reilly Media, Inc.: Newton, MA, USA, 2016. [Google Scholar]
- Xu, M.; Chen, X.; Kou, G. A systematic review of blockchain. Financ. Innov. 2019, 5, 27. [Google Scholar] [CrossRef] [Green Version]
- Litecoin—Open Source P2P Digital Currency. Available online: https://litecoin.org/ (accessed on 12 December 2021).
- Zheng, Z.; Xie, S.; Dai, H.N.; Chen, X.; Wang, H. Blockchain challenges and opportunities: A survey. Int. J. Web Grid Serv. 2018, 14, 352–375. [Google Scholar] [CrossRef]
- Mallett, R.; Hagen-Zanker, J.; Slater, R.; Duvendack, M. The benefits and challenges of using systematic reviews in international development research. J. Dev. Eff. 2012, 4, 445–455. [Google Scholar] [CrossRef]
- Moher, D.; Liberati, A.; Tetzlaff, J.; Altman, D.G.; Group, P. Preferred reporting items for systematic reviews and meta-analyses: The PRISMA statement. PLoS Med. 2009, 6, e1000097. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Okoli, C.; Schabram, K. A Guide to Conducting a Systematic Literature Review of Information Systems Research. Sprouts Work. Pap. Inf. Syst. 2010, 10, 1–51. Available online: http://sprouts.aisnet.org/10-26 (accessed on 11 December 2021). [CrossRef] [Green Version]
- Page, M.J.; McKenzie, J.E.; Bossuyt, P.M.; Boutron, I.; Hoffmann, T.C.; Mulrow, C.D.; Shamseer, L.; Tetzlaff, J.M.; Akl, E.A.; Brennan, S.E. The PRISMA 2020 statement: An updated guideline for reporting systematic reviews. BMJ 2021, 372, n71. [Google Scholar] [CrossRef] [PubMed]
- Lobovikov, M.; Pryadilina, N.; Scherbak, I. Blockchain–killer of illegal wood. IOP Conf. Ser. Earth Environ. Sci. 2021, 806, 12018. [Google Scholar] [CrossRef]
- Vilkov, A.; Tian, G. Blockchain as a solution to the problem of illegal timber trade between Russia and China: SWOT analysis. Int. For. Rev. 2019, 21, 385–400. [Google Scholar] [CrossRef]
- Cueva-Sánchez, J.J.; Coyco-Ordemar, A.J.; Ugarte, W. A blockchain-based technological solution to ensure data transparency of the wood supply chain. In Proceedings of the 2020 IEEE ANDESCON, Quito, Ecuador, 13–16 October 2020; pp. 1–6. [Google Scholar]
- Figorilli, S.; Antonucci, F.; Costa, C.; Pallottino, F.; Raso, L.; Castiglione, M.; Pinci, E.; Del Vecchio, D.; Colle, G.; Proto, A.R. A blockchain implementation prototype for the electronic open source traceability of wood along the whole supply chain. Sensors 2018, 18, 3133. [Google Scholar] [CrossRef] [Green Version]
- Düdder, B.; Ross, O. Timber Tracking: Reducing Complexity of due Diligence by Using Blockchain Technology (Position Paper). In Proceedings of the 2017 Joint BIR pre-BIR Forum, Workshops and Doctoral Consortium, BIR-WS 2017, Copenhagen, Denmark, 28–30 August 2017; Johansson, B., Ed.; CEUR-WS: Aachen, Germany, 2017. [Google Scholar] [CrossRef] [Green Version]
- Munoz, M.F.; Zhang, K.W.; Shahzad, A.; Ouhimmou, M. LogLog: A Blockchain Solution for Tracking and Certifying Wood Volumes. In Proceedings of the 3rd IEEE International Conference on Blockchain and Cryptocurrency (IEEE ICBC), Electr Network, Sydney, Australia, 3–6 May 2021. [Google Scholar]
- Gallersdörfer, U.; Matthes, F. Tamper-proof volume tracking in supply chains with smart contracts. In Proceedings of the 24th International Conference on Parallel and Distributed Computing, Euro-Par 2018, Turin, Italy, 27–31 August 2018; Mencagli, G., Heras, D.B., Eds.; Springer: Berlin/Heidelberg, Germany, 2019; Volume 11339, pp. 367–378. [Google Scholar] [CrossRef]
- Sheng, S.W.; Wicha, S. The Proposed of a Smart Traceability System for Teak Supply Chain Based on Blockchain Technology. In Proceedings of the Joint 6th International Conference on Digital Arts, Media and Technology with 4th ECTI Northern Section Conference on Electrical, Electronics, Computer and Telecommunication Engineering, ECTI DAMT and NCON 2021, online, 3–6 March 2021; Institute of Electrical and Electronics Engineers Inc.: Piscataway, NJ, USA, 2021; pp. 59–64. [Google Scholar]
- Sun, Y.K.; Du, G.B.; Cao, Y.; Lin, Q.Z.; Zhong, L.H.; Qiu, J. Wood Product Tracking Using an Improved AKAZE Method in Wood Traceability System. IEEE Access 2021, 9, 88552–88563. [Google Scholar] [CrossRef]
- Mechik, E.; von Hauff, M. The Fight Against Deforestation of Tropical Forests—The Contribution of the Blockchain-Based Contract Management Method to Minimize Illegal Logging. In Climate and Development; World Scientific: Singapore, 2022; pp. 439–463. [Google Scholar] [CrossRef]
- Correa Tavares, E.; Meirelles, F.S.; Correa Tavares, E.; Cunha, M.A.; Schunk, L.M. Blockchain in the Green Treasure: Different Investment Objectives. In Proceedings of the 25th Americas Conference on Information Systems (AMCIS 2019), Cancun, Mexico, 15–17 August 2019; Available online: https://aisel.aisnet.org/amcis2019/digital_government/digital_government/1 (accessed on 11 November 2021).
- Lobovikov, M.; Pryadilina, N.; Scherbak, I. Blockchain–booster of the Russian forest information systems. IOP Conf. Ser. Earth Environ. Sci. 2021, 876, 12049. [Google Scholar] [CrossRef]
- Figorilli, S.; Bruzzese, S.; Proto, A.R.; Costa, C.; Moscovini, L.; Blanc, S.; Brun, F. A Blockchain implemented App for forestry nursery management. In Proceedings of the 3rd IEEE International Workshop on Metrology for Agriculture and Forestry, MetroAgriFor 2021, Trento-Bolzano, Italy, 3–5 November 2021; pp. 396–400. [Google Scholar]
- Kotsialou, G.; Kuralbayeva, K.; Laing, T. Forest Carbon Offsets Over a Smart Ledger; SSRN, Elsavier: Amsterdam, The Netherlands, 2021. [Google Scholar] [CrossRef]
- Howson, P.; Oakes, S.; Baynham-Herd, Z.; Swords, J. Cryptocarbon: The promises and pitfalls of forest protection on a blockchain. Geoforum 2019, 100, 1–9. [Google Scholar] [CrossRef]
- Sun, R.; He, D.Y.; Yan, J.J.; Tao, L. Mechanism Analysis of Applying Blockchain Technology to Forestry Carbon Sink Projects Based on the Differential Game Model. Sustainability 2021, 13, 11697. [Google Scholar] [CrossRef]
- Willrich, S.; Melcher, F.; Weinhardt, C. In Rethinking Forest Management: A Participatory Blockchain-based Governance Approach. In Proceedings of the 16th International Joint Conference on E-Business and Telecommunications (ICETE), Prague, Czech Republic, 26–28 July 2019; Scitepress: Prague, Czech Republic, 2019; pp. 139–146. [Google Scholar]
- Datta, S.; Kumar, S.; Sinha, D.; Das, A.K. BSSFFS: Blockchain-based sybil-secured smart forest fire surveillance. J. Ambient Intell. Humaniz. Comput. 2021, 12, 1–32. [Google Scholar] [CrossRef]
- Angelsen, A.; Brockhaus, M.; Sunderlin, W.D.; Verchot, L.V. Analysing REDD+: Challenges and Choices; Cifor: Bogor, Indonesia, 2012. [Google Scholar]
- Datta, S.; Sinha, D. BESDDFFS: Blockchain and EdgeDrone based secured data delivery for forest fire surveillance. Peer Peer Netw. Appl. 2021, 14, 3688–3717. [Google Scholar] [CrossRef]
- Komdeur, E.F.M.; Ingenbleek, P.T.M. The potential of blockchain technology in the procurement of sustainable timber products. Int. Wood Prod. J. 2021, 12, 249–257. [Google Scholar] [CrossRef]
- Digiconomist. Available online: https://digiconomist.net/bitcoin-energy-consumption/ (accessed on 30 December 2021).
- Charla, G.-B.; Karen, J.; Miller, H.; Chun, M. In The Human-side of Emerging Technologies and Cyber Risk: A case analysis of blockchain across different verticals. In Proceedings of the 2021 IEEE Technology & Engineering Management Conference-Europe (TEMSCON-EUR), Dubrovnik, Croatia, 17–20 May 2021; pp. 1–6. [Google Scholar] [CrossRef]
- Castonguay, J.J.; Stein Smith, S. Digital Assets and Blockchain: Hackable, Fraudulent, or Just Misunderstood? Account. Perspect. 2020, 19, 363–387. [Google Scholar] [CrossRef]
Categories | Inclusion Criteria | Exclusion Criteria |
---|---|---|
Language | English | Not English |
Publication year | Not earlier than 2008 | Before 2008 |
Availability | Full text available | Full text not available |
Source type | Original/Research articles | Non research articles |
Subject/Content | Related to the topic of blockchain | Not related to the topic of blockchain. Only mentioned blockchain in abstract. The full-text content not consistent with its abstract and title. |
Context | Forestry industry | Not related to the forestry industry |
Reference | Smart Contract | Platform | Main Focus | Purpose(s) of the Use of Blockchain |
---|---|---|---|---|
[34] | Yes | Hyperledger Fabric | A blockchain-based technical solution | To provide a blockchain-based technological solution to prevent illegal logging |
[35] | Yes | Ethereum | Azure Blockchain Workbench | To trace and validate wood from standing tree to the final user |
[36] | N/A | N/A | A tamper-proof digital system | To combine blockchain with digital protocols for physical verification and authentication in timber tracking |
[37] | Yes | Ethereum | LogLog: A Blockchain Solution for Tracking and Certifying Wood Volumes | To trace wood volumes in the timber supply chain |
[38] | Yes | Ethereum | A Tamper-Proof Volume Wood Tracking System | To validate certified wood and record the origin of wood |
[39] | N/A | Ethereum | Ethereum decentralized application (Dapp) | To trace and validate teak wood in the supply chain via Ethereum DApp |
[40] | N/A | N/A | Image Identification of blockchain-based Wood traceability system | To improve wood product identification in blockchain-based wood traceability system by using AKAZE method replace the traditional image-based methods |
[41] | N/A | N/A | Blockchain-based contract management platform | To control and manage the documents and permits to reduce complexity of contract management |
Reference | Smart Contract | Platform | Main Focus | Purpose(s) of the Use of Blockchain |
---|---|---|---|---|
[44] | N/A | Ethereum | A blockchain-based web application on forestry nurseries (inventory) management | To monitor the forest plants and record information of each plant for further validation |
[45] | Yes | N/A | The use of blockchain on carbon trading market | To address the key concerns to REDD+ projects |
[46] | Yes | Ethereum | A blockchain solution for REDD+ | To improve the reliability of carbon sequestration monitoring and protecting global forests |
[47] | Yes | N/A | Blockchain on forestry carbon sink projects | To optimize forestry carbon sink trading and reduce emissions |
[48] | Yes | Ethereum | Participatory forest management with blockchain (blockchain-based governance) | For governance purposes |
[4] | Yes | Ethereum | Image processing and blockchain for forest management | To save species of tree varieties and avoid overexploited by identifying the number and type of trees |
Reference | Smart Contract | Platform | Blockchain-Based Systems | Layers of Architecture | Purpose(s) of the Use of Blockchain |
---|---|---|---|---|---|
[50] | N/A | Ethereum | BSSFFS | IoT layer (with sensors) Fog layer Cloud layer | To detect forest fire and validate the information |
[51] | N/A | N/A | BESDDFFS | IoT layer (with drones) Edge layer Cloud layer | To detect forest fire and validate the information |
Categories | Reference | |
---|---|---|
Benefits | Increasing trust/trustworthiness | [36,37,38,52] |
Efficient traceability | [33,35,36,37,42,44] | |
Increasing transparency | [32,33,34,35,41,42,44,45] | |
Data integrity | [32,33,37,39] | |
Minimizing illegal logging/timber trade | [4,32,33,34,35,37,38,39,41] | |
Competitive (positive) | [32,33,37,43] | |
Confidentiality/Privacy | [32,33] | |
Anti-corruption | [32,33,36,41] | |
Sustainable forestry | [32,33,36,47] | |
Cost reduction | [32,33,45,47] | |
Opportunities | Increasing new skilled job opportunities | [32,33] |
Growing investment opportunities | [32,42] | |
New opportunities for small and medium-sized enterprises (SMEs) | [32,33] | |
Challenges | Lack of standardization | [32,33] |
Large energy consumption | [33,53] | |
Loss of traditional jobs | [32,33] | |
Implementation risk | [33] | |
International timber trade transactions | [33] |
Research Gaps | Further Research Directions |
---|---|
Studies reporting risks, threats, and challenges of blockchain implementation in forestry | To investigate the challenges, threats, and risks of blockchain implementation and identify the solutions to overcome these barriers |
Security of Blockchain | To investigate the security level of blockchain in forestry |
Blockchain integrated with other Industry 4.0 technologies | To assess the main benefits of blockchain with artificial intelligence (Blockchain 4.0), blockchain-based IoT systems |
The adoption of blockchain in forestry | To investigate the elements of adopting blockchain in different regions and countries |
Suitable practices of blockchain in forestry | What are the practices of blockchain in other industries that can be applied to forestry? |
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He, Z.; Turner, P. Blockchain Applications in Forestry: A Systematic Literature Review. Appl. Sci. 2022, 12, 3723. https://doi.org/10.3390/app12083723
He Z, Turner P. Blockchain Applications in Forestry: A Systematic Literature Review. Applied Sciences. 2022; 12(8):3723. https://doi.org/10.3390/app12083723
Chicago/Turabian StyleHe, Zhaoyuan, and Paul Turner. 2022. "Blockchain Applications in Forestry: A Systematic Literature Review" Applied Sciences 12, no. 8: 3723. https://doi.org/10.3390/app12083723
APA StyleHe, Z., & Turner, P. (2022). Blockchain Applications in Forestry: A Systematic Literature Review. Applied Sciences, 12(8), 3723. https://doi.org/10.3390/app12083723