The Role of Blockchain in Medical Data Sharing
Abstract
:1. Introduction
2. Blockchain in Healthcare Overview
2.1. Blockchain
2.2. Smart Contracts
2.3. Importance of Blockchain in Healthcare
3. Methodology
3.1. Research Questions
- RQ1: How established is blockchain in medical data sharing, and how has this evolved?
- RQ2: What are the latest developments in blockchain-based medical data-sharing research?
- RQ3: What are the issues of using blockchain to share medical data?
3.2. Databases
- Scopus;
- Google Scholar;
- ScienceDirect.
- “Blockchain” AND “Medical data sharing”;
- “Blockchain” AND “Medical record sharing”;
- “Blockchain” AND “Healthcare data sharing”;
- “Blockchain” AND “Health data sharing”;
- “Blockchain” AND “Health record sharing”;
- “Blockchain” AND Medical data sharing;
- “Blockchain” AND Medical record sharing;
- “Blockchain” AND Healthcare data sharing;
- “Blockchain” AND Health data sharing;
- “Blockchain” AND Health record sharing.
3.3. Selection of Studies
3.4. Limitations
4. Discussion
- RQ1: How established is blockchain in medical data sharing, and how has this evolved?
- RQ2: What are the latest developments in blockchain-based medical data-sharing research?
4.1. Types of Blockchain
4.2. Encryption
4.3. Ciphertext
4.4. IoT-Based Systems
Blockchain Role | Year | Capability | Smart Contract | Reference |
---|---|---|---|---|
Trust-less medical data sharing | 2017 | Access control mechanism | ✓ | [68] |
Blockchain-based data sharing for electronic medical records | 2017 | Receive data from the shared pool once identities and cryptographic keys have been validated | [69] | |
Efficient and secure medical data sharing | 2018 | The enhanced consensus technique delivers EMR consensus without significant network congestion or energy consumption | [70] | |
Secure and privacy-preserving data sharing | 2019 | Session-based flexible healthcare data sharing | [71] | |
Blockchain-based searchable encryption | 2019 | Complete control over data access | ✓ | [72] |
Efficient healthcare data sharing | 2019 | Mutual authentication and the generation of a session key | [73] | |
Privacy-preserving data sharing | 2019 | Fine-grained access control, keyword search, and privacy protection | [74] | |
Secure and privacy-preserving data sharing | 2020 | Using bilinear mapping and intractable issues, the authentication process’s security danger may be neutralized. | [75] | |
Efficient and secure data sharing | 2020 | Verification by zero-knowledge proof, decryption using proxy re-encryption technology, and PBFT-based distributed consensus | [76] | |
Privacy-preserving data sharing | 2020 | The data usage ontology and the automatable discovery and access matrix comprise the dynamic consent model | ✓ | [77] |
Fine-grained access control and privacy protection | 2020 | In the random oracle paradigm, keyword indistinguishability against adaptively selected keyword assaults | [78] | |
Protected data sharing | 2020 | Couples with privacy-sensitive information are stored on the consortium blockchain, while non-sensitive data are shared on the public blockchain | [79] | |
Privacy-preserving medical data sharing | 2021 | Scheme for anonymously transmitting medical data based on proxy re-encryption algorithm and cloud servers | [80] | |
Secure data sharing | 2021 | Proxy re-encryption protocols | [81] | |
Protected data sharing | 2021 | Searchable encryption and K-anonymity | ✓ | [82] |
Consortium-based data sharing | 2021 | Allowing data requesters to comply with data access requirements and to build their standing within a consortium | [83] | |
Secure and privacy-preserving data sharing | 2021 | The outsourced business has no access to the server or its data | ✓ | [84] |
Secure and distributed data sharing | 2021 | Data ownership, data traceability, data consistency, privacy protection, data security, and distributed storage | [85] | |
Secure data storage and sharing | 2021 | Certificateless public key cryptography and elliptic curve cryptography (ECC) | [86] | |
Hierarchical data sharing with access control | 2022 | Fine-grained access control, efficient retrieval across encrypted PHRs with low-consumed hierarchical key distribution and key leakage resistance, as well as efficient aggregative authentication | [87] | |
Searchable encryption with access control | 2022 | Algorithm for key-policy ABE | ✓ | [88] |
Privacy-preserving data sharing | 2022 | The condition is concealed inside the re-encryption key so that the proxy cannot discover it | ✓ | [89] |
Protected and integrated data sharing | 2022 | Storing encrypted medical data in dispersed storage mode and integrating patient data across offline institutions and platforms | [90] | |
Privacy-enhanced data storage and exchange | 2022 | Patients’ personal information is held on off-chain storage (IPFS), while other information is saved on the blockchain ledger, which is available to all participants | ✓ | [91] |
Hybrid storage with access control | 2022 | Feasibility of recovery of the encryption keys | ✓ | [92] |
Secure data sharing with access control | 2022 | Immutability, fine-grained access control, and traceability | ✓ | [93] |
- RQ3: What are the issues of using blockchain to share medical data?
5. Conclusions
Funding
Data Availability Statement
Conflicts of Interest
References
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Features | Description |
---|---|
Untamperable | Smart contracts cannot be changed after deployment. Like a contract, this cannot be changed once signed. |
Low cost | Smart contracts do not need a third party to enforce the code after a violation; thus, they are cheaper than regular contracts. |
Open and transparent | A smart contract will execute according to the design code and be transparent once deployed. |
Decentralized | Computers supervise and arbitrate smart contracts without third-party involvement. |
Inclusion Criteria | Exclusion Criteria |
---|---|
1. Publication stage: Final | 1. Publication year: Out of the period 2017–2022 |
2. Document type: Article | 2. Language: Not in English |
3. Source type: Journal | 3. Not focused on blockchain in medical data sharing |
4. Article should contain and clearly outline research objectives | 4. System design must not be defined properly |
Category | Study | Challenges | Possible Solutions |
---|---|---|---|
Access Control and Privacy | [51] | Attribute-based access control, privacy preservation, data sharing efficiency | Utilize attribute-based encryption, design access control policies, optimize data sharing efficiency |
[52] | Fine-grained access control, scalability, data validation | Implement access control mechanisms with granular permissions, employ scalability solutions such as sharding or sidechains, ensure data validation through smart contracts | |
[54] | Searchable encryption for medical images, deniable authentication, access control | Develop deniably authenticated searchable encryption schemes, implement access control mechanisms, ensure confidentiality of medical images | |
[53] | Decentralized attribute-based sharing, data privacy, attribute management | Design decentralized attribute-based sharing mechanisms, address privacy concerns, implement effective attribute management | |
[67] | Access control in IoT, privacy preservation, data publishing | Implement privacy-preserving access control mechanisms, address IoT-specific challenges, enable secure data publishing | |
Data Sharing and Integration | [55] | Cross-domain data sharing, edge computing integration, data integrity | Integrate edge computing with blockchain for cross-domain sharing, ensure data integrity through consensus mechanisms |
[48] | Industrial healthcare systems, secure data sharing, deep learning integration | Utilize permissioned blockchain for secure sharing, leverage deep learning techniques for efficient data analysis | |
[76] | Privacy preservation, data security, access control | Employ privacy-enhancing techniques, ensure secure data storage and transmission, implement access control protocols | |
[88] | Edge-based IoMT, secure data sharing, privacy preservation | Leverage blockchain for secure data sharing, integrate with edge-based IoMT, employ privacy-preserving techniques | |
[89] | Fine-grained data sharing, privacy preservation, secure storage | Design fine-grained data-sharing protocols, employ privacy-preserving techniques, ensure secure storage | |
Emergency and Healthcare-Specific | [44] | Emergency data sharing, data privacy, secure communication | Design emergency-specific data sharing frameworks, address privacy concerns, ensure secure communication through encryption |
[85] | Rehabilitation medical record sharing, data privacy, interoperability | Design rehabilitation-specific data-sharing schemes, address data privacy concerns, establish interoperability standards | |
[86] | Anonymous data sharing, secure communication, scalability | Develop anonymous data-sharing protocols, ensure secure communication through blockchain, optimize scalability | |
[80] | Medical data privacy, consent management, auditability | Design privacy-preserving mechanisms using blockchain, implement consent management frameworks, provide auditing capabilities | |
[75] | Trust and privacy concerns, access control, data provenance | Address trust and privacy through blockchain’s transparent and immutable nature, implement access control mechanisms, track data provenance | |
Data Integrity and Consistency | [64] | Checkable-state PBFT consensus algorithm, data consistency, auditing | Implement checkable state PBFT consensus algorithm, ensure data consistency, provide auditing mechanisms |
[81] | Privacy preservation, data integrity, secure sharing protocols | Utilize privacy-enhancing technologies, ensure data integrity through cryptographic mechanisms, design secure sharing protocols | |
[70] | Data integrity, interoperability, efficient access control | Implement cryptographic mechanisms, standardize data formats, design efficient access control mechanisms | |
[73] | Data privacy, integrity, access control | Utilize encryption techniques, implement access control mechanisms, ensure data integrity through hashing or digital signatures | |
[74] | Data integrity verification, user authentication, secure storage | Use cryptographic techniques for integrity verification, implement user authentication protocols, employ secure storage mechanisms | |
Governance and Compliance | [68] | Trust and security issues in data sharing among multiple cloud providers | Use blockchain to create a trustless environment, implement secure data sharing protocols |
[91] | GDPR compliance, data storage, data sharing | Ensure GDPR compliance through blockchain, implement secure data storage mechanisms, enable secure data sharing | |
[92] | Privacy preservation, secure sharing protocols, consortium blockchain governance | Employ privacy-preserving mechanisms, design secure sharing protocols, establish governance frameworks for consortium blockchains | |
[93] | Multi-hop permission delegation, controllable delegation depth, access control | Develop multi-hop permission delegation schemes, enable control over delegation depth, implement access control mechanisms | |
[83] | Data protection, transparency, consortium governance | Implement data protection mechanisms, ensure transparency through blockchain, establish governance frameworks for consortium blockchains |
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Taherdoost, H. The Role of Blockchain in Medical Data Sharing. Cryptography 2023, 7, 36. https://doi.org/10.3390/cryptography7030036
Taherdoost H. The Role of Blockchain in Medical Data Sharing. Cryptography. 2023; 7(3):36. https://doi.org/10.3390/cryptography7030036
Chicago/Turabian StyleTaherdoost, Hamed. 2023. "The Role of Blockchain in Medical Data Sharing" Cryptography 7, no. 3: 36. https://doi.org/10.3390/cryptography7030036
APA StyleTaherdoost, H. (2023). The Role of Blockchain in Medical Data Sharing. Cryptography, 7(3), 36. https://doi.org/10.3390/cryptography7030036