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Privacy-Aware and Scalable Blockchain Solutions in Healthcare: Emerging Directions Cover

Privacy-Aware and Scalable Blockchain Solutions in Healthcare: Emerging Directions

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Open Access
|Jun 2026

References

  1. Layman, E. J. (2020). Ethical Issues and the Electronic Health Record. The Health Care Manager, 39(4), 150–161. https://doi.org/10.1097/hcm.0000000000000302
  2. Ettaloui, N., Arezki, S., & Gadi, T. (2023). An Overview of Blockchain Based Electronic Health Records and Compliance with GDPR and HIPAA. Data and Metadata, 2, 166. https://doi.org/10.56294/dm2023166
  3. Thantharate, P., & Thantharate, A. (2023). ZeroTrustBlock: Enhancing Security, Privacy, and Interoperability of Sensitive Data through ZeroTrust Permissioned Blockchain. Big Data and Cognitive Computing, 7(4), 165. https://doi.org/10.3390/bdcc7040165
  4. Sun, N., Arya, V., Li, J., & Liu, Y. (2023). A Scalable Sharding Protocol Based on Cross Shard Dynamic Transaction Confirmation for Alliance Chain in Intelligent Systems. International Journal on Semantic Web and Information Systems, 19(1), 1–30. https://doi.org/10.4018/ijswis.333063
  5. Miao, Y., Choo, K. K. R., Li, H., Deng, R. H., & Liu, Z. (2022). Privacy Preserving Byzantine Robust Federated Learning via Blockchain Systems. IEEE Transactions on Information Forensics and Security, 17, 2848–2861. https://doi.org/10.1109/tifs.2022.3196274
  6. Tabassum, S. S., & Malar, P. (2025). Integration of Federated Learning in Decentralized Healthcare Networks for Urban Health Monitoring (pp. 146–171). https://doi.org/10.71443/978934955248706
  7. Trisha Reddy, D., Indla, S. C., Raja, S. P., & Nandigam, H. (2024). Federated Learning in Data Privacy and Security. ADCAIJ: Advances in Distributed Computing and Artificial Intelligence Journal, 13, e31647. https://doi.org/10.14201/adcaij.31647
  8. R, S., Chirakarotu Nair, R., & Kumar Panakalapati, P. (2024). Promise of Zero-Knowledge Proofs (ZKPs) for Blockchain Privacy and Security: Opportunities, Challenges, and Future Directions. SECURITY AND PRIVACY, 8 (1). https://doi.org/10.1002/spy2.461
  9. Abbas, S. R., Abbas, Z., Zahir, A., & Lee, S. W. (2024). Federated Learning in Smart Healthcare: A Comprehensive Review on Privacy, Security, and Predictive Analytics with IoT Integration. Healthcare (Basel, Switzerland), 12(24), 2587. https://doi.org/10.3390/healthcare12242587
  10. Li, W., Liu, Z., Chen, J., Liu, Z., & He, Q. (2025). Towards Blockchain Interoperability: A Comprehensive Survey on Cross Chain Solutions. Blockchain: Research and Applications, 100286. https://doi.org/10.1016/j.bcra.2025.100286
  11. G, G. K., R, P.K., Amaithi Rajan, A., V, V., & P.M, M. I. (2025). Healthchain: protecting healthcare data through blockchain with zero knowledge proof and biometric based access control. Journal of Cyber Security Technology, ahead of print(ahead of print), 1–26. https://doi.org/10.1080/23742917.2025.2523760
  12. Verma, P. K., Prasad Joshi, R., Sharma, K., Shubham, P., & Singh, B. (2024). Evaluating the Effectiveness of Zero Trust Architecture in Protecting Against Advanced Persistent Threats. ADCAIJ: Advances in Distributed Computing and Artificial Intelligence Journal, 13, e31611. https://doi.org/10.14201/adcaij.31611
  13. Rensaa, J.-A., Gligoroski, D., Kralevska, K., Hasselgren, A., & Faxvaag, A. (2020). Rensaa, J. A. H., Gligoroski, D., Kralevska, K., Hasselgren, A., & Faxvaag, A. (2020, July). VerifyMed-A blockchain platform for transparent trust in virtualized healthcare: Proof-of-concept. In Proceedings of the 2nd International Electronics Communication Conference (pp. 73-80). https://doi.org/10.48550/arxiv.2005.08804
  14. Rieke, N., Hancox, J., Li, W., Milletarì, F., Roth, H. R., Albarqouni, S., Bakas, S., Galtier, M. N., Landman, B. A., Maier-Hein, K., Ourselin, S., Sheller, M., Summers, R. M., Trask, A., Xu, D., Baust, M., & Cardoso, M. J. (2020). The future of digital health with federated learning. NPJ Digital Medicine, 3(1). https://doi.org/10.1038/s41746-020-00323-1
  15. Chen, M., Chiesa, A., & Spooner, N. (2022). On Succinct Non-interactive Arguments in Relativized Worlds (pp. 336–366). Springer. https://doi.org/10.1007/978-3-031-07085-3_12
  16. Belchior, R., Vasconcelos, A., Guerreiro, S., & Correia, M. (2021). A Survey on Blockchain Interoperability: Past, Present, and Future Trends. ACM Computing Surveys, 54(8), 1–41. https://doi.org/10.1145/3471140
  17. Goel, U., Zavarsky, P., & Ruhl, R. (2019). Using Healthcare Authority and Patient Blockchains to Develop a Tamper Proof Record Tracking System. In 2019 IEEE 5th intl conference on big data security on cloud (BigDataSecurity), IEEE Intl conference on high performance and smart computing,(HPSC) and IEEE Intl conference on intelligent data and security (IDS) (pp. 25–30). IEEE, 25–30. https://doi.org/10.1109/bigdatasecurity hpsc ids.2019.00016
  18. Mani, V., Khalaf, O. I., Alotaibi, Y., Alghamdi, S., & Manickam, P. (2021). Hyperledger Healthchain: Patient Centric IPFS Based Storage of Health Records. Electronics, 10(23), 3003. https://doi.org/10.3390/electronics10233003
  19. Hao, J., Wang, H., Huang, C., Xian, M., Tang, W., & Liu, J. (2021). Secure Data Sharing With Flexible User Access Privilege Update in Cloud Assisted IoMT. IEEE Transactions on Emerging Topics in Computing, 10(2), 933–947. https://doi.org/10.1109/tetc.2021.3052377
  20. Zhang, J., Xin, Y., Gao, Y., Lei, X., & Yang, Y. (2021). Secure ABE Scheme for Access Management in Blockchain Based IoT. IEEE Access, 9, 54840–54849. https://doi.org/10.1109/access.2021.3071031
  21. Jiang, Y., Xu, X., & Xiao, F. (2022). Attribute-Based Encryption With Blockchain Protection Scheme for Electronic Health Records. IEEE Transactions on Network and Service Management, 19(4), 3884–3895. https://doi.org/10.1109/tnsm.2022.3193707
  22. Bao, H., Yuan, M., Deng, H., Xu, J., & Zhao, Y. (2024). Secure multiparty computation protocol based on homomorphic encryption and its application in blockchain. Heliyon, 10 (14), e34458. https://doi.org/10.1016/j.heliyon.2024.e34458
  23. Tawfik, A. M., Al Ahwal, A., Eldien, A. S. T., & Zayed, H. H. (2025). PriCollabAnalysis: privacy preserving healthcare collaborative analysis on blockchain using homomorphic encryption and secure multiparty computation. Cluster Computing, 28(3). https://doi.org/10.1007/s1058602404928z
  24. Wu, X., Wang, J., & Zhang, T. (2024). Integrating fully homomorphic encryption to enhance the security of blockchain applications. Future Generation Computer Systems, 161, 467–477. https://doi.org/10.1016/j.future.2024.07.015
  25. Ballhausen, H., Corradini, S., Belka, C., Bogdanov, D., Boldrini, L., Bono, F., Goelz, C., Landry, G., Panza, G., Parodi, K., Talviste, R., Tran, H. E., Gambacorta, M. A., & Marschner, S. (2024). Privacy-friendly evaluation of patient data with secure multiparty computation in a European pilot study. NPJ Digital Medicine, 7(1), 280. https://doi.org/10.1038/s41746-024-01293-4
  26. Sutradhar, K., & Om, H. (2021). An efficient simulation for quantum secure multiparty computation. Scientific Reports, 11(1), 2206. https://doi.org/10.1038/s41598-021-81799-z
  27. Ahammed, M., & Labu, M. (2024). Privacy Preserving Data Sharing in Healthcare: Advances in Secure Multiparty Computation. Journal of Medical and Health Studies, 5(2), 37–47. https://doi.org/10.32996/jmhs.2024.5.2.4
  28. Rahman, M. M., Tonmoy, M. T. K., Shihab, S. R., & Farhana, R. (2023). Blockchain Based Certificate Authentication System with Enabling Correction. Journal of Computer and Communications, 11 (03), 73–82. https://doi.org/10.4236/jcc.2023.113006
  29. Ali, A., Fortino, G., Sun, X., Saeed, A., Guerrieri, A., Pasha, M. F., Hussain, A., & Guzzo, A. (2023). A Novel Homomorphic Encryption and Consortium Blockchain-Based Hybrid Deep Learning Model for Industrial Internet of Medical Things. IEEE Transactions on Network Science and Engineering, 10(5), 2402–2418. https://doi.org/10.1109/tnse.2023.3285070
  30. Alkatheiri, M. S., & Alghamdi, A. S. (2023). Blockchain-Assisted Cybersecurity for the Internet of Medical Things in the Healthcare Industry. Electronics, 12 (8), 1801. https://doi.org/10.3390/electronics12081801
  31. Liu, H., Crespo, R. G., & Martínez, O. S. (2020). Enhancing Privacy and Data Security across Healthcare Applications Using Blockchain and Distributed Ledger Concepts. Healthcare, 8(3), 243. https://doi.org/10.3390/healthcare8030243
  32. Othman, S. B., & Getahun, M. (2025). Leveraging blockchain and IoMT for secure and interoperable electronic health records. Scientific Reports, 15(1). https://doi.org/10.1038/s41598-025-95531-8
  33. Banerjee, A., Clear, M., & Tewari, H. (2020). Demystifying the Role of zk-SNARKs in Zcash. In 2020 IEEE conference on application, information and network security (AINS). IEEE. 12–19. https://doi.org/10.1109/ains50155.2020.9315064
  34. Dhinakaran, D., Udhaya Sankar, S. M., Srinivasan, L., & Selvaraj, D. (2024). Quantum-based privacy preserving techniques for secure and trustworthy internet of medical things an extensive analysis. Quantum Information Computation, 24(3 & 4), 227–266. https://doi.org/10.26421/qic24.3-4-3
  35. Liu, J., Sun, R., Guizani, M., Du, X., & Wu, M. (2021). BMDS: A Blockchain-based Medical Data Sharing Scheme with Attribute-Based Searchable Encryption. In ICC 2021-IEEE International Conference on Communications. IEEE. 1–6. https://doi.org/10.1109/icc42927.2021.9500966
  36. Thantharate, P., & Thantharate, A. (2023). ZeroTrustBlock: Enhancing Security, Privacy, and Interoperability of Sensitive Data through ZeroTrust Permissioned Blockchain. Big Data and Cognitive Computing, 7(4), 165. https://doi.org/10.3390/bdcc7040165
  37. Chen, Y., Tian, L., Feng, L., Yang, L., & Zhao, Q. (2024). ARS-Chain: A Blockchain-Based Anonymous Reputation-Sharing Framework for E-Commerce Platforms. Mathematics, 12(10), 1480. https://doi.org/10.3390/math12101480
  38. Han, L., Yang, X., Cao, S., & Zhang, Z. (2020). Privacy Protection of VANET Based on Traceable Ring Signature on Ideal Lattice. IEEE Access, 8, 206581–206591. https://doi.org/10.1109/access.2020.3038042
  39. K, D. K., B, P. S., P, S., G, V., Hj, S., & N, D. (2023). Comparative Analysis of Transaction Speed and Throughput in Blockchain and Hashgraph: A Performance Study for Distributed Ledger Technologies. Journal of Machine and Computing, 497–504. https://doi.org/10.53759/7669/jmc202303041
  40. Kumar, R., & Tripathi, R. (2021). Towards design and implementation of security and privacy framework for Internet of Medical Things (IoMT) by leveraging blockchain and IPFS technology. The Journal of Supercomputing, 77(8), 7916–7955. https://doi.org/10.1007/s11227-020-03570-x
  41. Lee, W.-B., & Lee, C.-D. (2008). A Cryptographic Key Management Solution for HIPAA Privacy/Security Regulations. IEEE Transactions on Information Technology in Biomedicine, 12(1), 34–41. https://doi.org/10.1109/titb.2007.906101
  42. Akter, M., Moustafa, N., Lynar, T., & Razzak, I. (2022). Edge Intelligence: Federated Learning-Based Privacy Protection Framework for Smart Healthcare Systems. IEEE Journal of Biomedical and Health Informatics, 26(12), 5805–5816. https://doi.org/10.1109/jbhi.2022.3192648
  43. Amiri, M. J., El Abbadi, A., & Agrawal, D. (2021 June). SharPer: Sharding Permissioned Blockchains Over Network Clusters. In Proceedings of the 2021 international conference on management of data. 76-88. https://doi.org/10.1145/3448016.3452807
  44. Dang, H., Ooi, B. C., Chang, E.-C., Loghin, D., Lin, Q., & Dinh, T. T. A. (2019 June). Towards Scaling Blockchain Systems via Sharding. In Proceedings of the 2019 international conference on management of data. 123–140. https://doi.org/10.1145/3299869.3319889
  45. Ahn, J., Yi, E., & Kim, M. (2024). Blockchain Consensus Mechanisms: A Bibliometric Analysis (2014–2024) Using VOSviewer and R Bibliometrix. Information, 15(10), 644. https://doi.org/10.3390/info15100644
  46. Hegde, P., & Maddikunta, P. K. R. (2023). Secure PBFT Consensus-Based Lightweight Blockchain for Healthcare Application. Applied Sciences, 13(6), 3757. https://doi.org/10.3390/app13063757
  47. Islam, M. M., In, H. P., & Merlec, M. M. (2022 July). A Comparative Analysis of Proof-of-Authority Consensus Algorithms: Aura vs Clique. In 2022 IEEE International Conference on Services Computing (SCC). IEEE. 327–332. https://doi.org/10.1109/scc55611.2022.00054
  48. Zheng, X., & Feng, W. (2021). Research on Practical Byzantine Fault Tolerant Consensus Algorithm Based on Blockchain. Journal of Physics: Conference Series, 1802(3), 032022. https://doi.org/10.1088/1742-6596/1802/3/032022
  49. Wu, Y., Song, P., & Wang, F. (2020). Hybrid Consensus Algorithm Optimization: A Mathematical Method Based on POS and PBFT and Its Application in Blockchain. Mathematical Problems in Engineering, 2020, 1–13. https://doi.org/10.1155/2020/7270624
  50. Buyuktanir, B., Yildiz, K., Karatas Baydogmus, G., & Altinkaya, Ş. (2025). Federated learning in intrusion detection: advancements, applications, and future directions. Cluster Computing, 28(7). https://doi.org/10.1007/s10586-025-05325-w
  51. Can, Y. S., & Ersoy, C. (2021). Privacy-preserving Federated Deep Learning for Wearable IoT-based Biomedical Monitoring. ACM Transactions on Internet Technology, 21 (1), 1–17. https://doi.org/10.1145/3428152
  52. Ngoupayou Limbepe, Z., Yu, J., & Gai, K. (2025). Blockchain-Based Privacy-Enhancing Federated Learning in Smart Healthcare: A Survey. Blockchains, 3(1), 1. https://doi.org/10.3390/blockchains3010001
  53. Ashraf, E., Areed, N. F. F., Salem, H., Abdelhay, E. H., & Farouk, A. (2022). FIDChain: Federated Intrusion Detection System for Blockchain-Enabled IoT Healthcare Applications. Healthcare (Basel, Switzerland), 10 (6), 1110. https://doi.org/10.3390/healthcare10061110
  54. Khan, S., Khan, M., Khan, M. A., Wang, L., & Wu, K. (2025). Advancing Medical Innovation Through Blockchain-Secured Federated Learning for Smart Health. IEEE Journal of Biomedical and Health Informatics, 29(9), 6482–6495. https://doi.org/10.1109/jbhi.2025.3532976
  55. Li, D., Cao, B., & Luo, Z. (2021). Blockchain-based federated learning methodologies in smart environments. Cluster Computing, 25(4), 2585–2599. https://doi.org/10.1007/s10586-021-03424-y
  56. Ali, A., Mohamed, H. G., Tin, T. T., Saeed, A., Ahmed Khan, A., Ghadi, Y. Y., Ali, H., & Assam, M. (2023). Blockchain-Powered Healthcare Systems: Enhancing Scalability and Security with Hybrid Deep Learning. Sensors, 23(18), 7740. https://doi.org/10.3390/s23187740
  57. Kang, J., Leung, C., Guo, S., Xiong, Z., Zhang, Y., Miao, C., Jiang, C., Liu, Y., & Niyato, D. (2020). Scalable and Communication-Efficient Decentralized Federated Edge Learning with Multi-blockchain Framework (pp. 152–165). Springer Singapore. https://doi.org/10.1007/978-981-15-9213-3_12
  58. Kang, J., Liu, Y., Nie, J., Xiong, Z., Li, X., Xu, M., Niyato, D., & Yan, Q. (2022). Communication-Efficient and Cross-Chain Empowered Federated Learning for Artificial Intelligence of Things. IEEE Transactions on Network Science and Engineering, 9(5), 2966–2977. https://doi.org/10.1109/tnse.2022.3178970
  59. Madine, M., Al-Hammadi, Y., Yaqoob, I., Arshad, J., Jayaraman, R., & Salah, K. (2021). appXchain: Application-Level Interoperability for Blockchain Networks. IEEE Access, 9, 87777–87791. https://doi.org/10.1109/access.2021.3089603
  60. Singh, Y., Jabbar, M. A., Vovk, O., Kumar Shandilya, S., & Hnatiuk, Y. (2023). Exploring applications of blockchain in healthcare: road map and future directions. Frontiers in Public Health, 11. https://doi.org/10.3389/fpubh.2023.1229386
  61. Abbas, S. R., Abbas, Z., Zahir, A., & Lee, S. W. (2024). Federated Learning in Smart Healthcare: A Comprehensive Review on Privacy, Security, and Predictive Analytics with IoT Integration. Healthcare (Basel, Switzerland), 12(24), 2587. https://doi.org/10.3390/healthcare12242587
  62. Augusto, A., Correia, M., Vasconcelos, A., Belchior, R., Zhang, L., & Hardjono, T. (2024, May). Sok: Security and privacy of blockchain interoperability. In 2024 IEEE Symposium on Security and Privacy (SP). IEEE. 3840–3865. https://doi.org/10.36227/techrxiv.24595764.v4
  63. Fatokun, T., Sharma, S., & Nag, A. (2021). Towards a Blockchain Assisted Patient Owned System for Electronic Health Records. Electronics, 10(5), 580. https://doi.org/10.3390/electronics10050580
  64. Agbeyangi, A., Oki, O., & Mgidi, A. (2024). Blockchain in Healthcare: Implementing Hyperledger Fabric for Electronic Health Records at Frere Provincial Hospital. arXiv preprint arXiv:2407.15876. https://doi.org/10.48550/arxiv.2407.15876
  65. Amiri, M. J., El Abbadi, A., & Agrawal, D. (2021). Sharper: Sharding permissioned blockchains over network clusters. In Proceedings of the 2021 international conference on management of data. 76–88. https://doi.org/10.1145/3448016.3452807
  66. Patruni, M. R., & Saraswathi, P. (2022). Securing Internet of Things devices by enabling Ethereum blockchain using smart contracts. Building Services Engineering Research and Technology, 43(4), 473–484. https://doi.org/10.1177/01436244221078933
  67. Ucbas, Y., Alohaly, M., Hammoudeh, M., & Eleyan, A. (2023). Performance and Scalability Analysis of Ethereum and Hyperledger Fabric. IEEE Access, 11, 67156–67167. https://doi.org/10.1109/access.2023.3291618
  68. Kang, H., Jean-Louis, N., Dai, T., Gu, X., & Tao, S. (2019). FabZK: Supporting Privacy-Preserving, Auditable Smart Contracts in Hyperledger Fabric‥ In 2019 49th Annual IEEE/IFIP International Conference on Dependable Systems and Networks (DSN). IEEE. 543–555. https://doi.org/10.1109/dsn.2019.00061
  69. Malik, S., Jurdak, R., Kanhere, S. S., & Dedeoglu, V. (2022, August 1). PrivChain: Provenance and Privacy Preservation in Blockchain enabled Supply Chains. In 2022 IEEE International Conference on Blockchain (Blockchain). IEEE. 157–166. https://doi.org/10.1109/blockchain55522.2022.00030
  70. R, S., Kumar Panakalapati, P., & Chirakarotu Nair, R. (2024). Promise of Zero-Knowledge Proofs (ZKPs) for Blockchain Privacy and Security: Opportunities, Challenges, and Future Directions. SECURITY AND PRIVACY, 8(1). https://doi.org/10.1002/spy2.461
  71. Feng, L., Li, W., Qiu, X., Zhao, Y., Yu, P., & Guo, S. (2022). BAFL: A Blockchain-Based Asynchronous Federated Learning Framework. IEEE Transactions on Computers, 71(5), 1092–1103. https://doi.org/10.1109/tc.2021.3072033
  72. Ning, W., Song, C., Chen, T., Zhu, Y., Li, H., Zhu, L., Xu, T., Gao, J., Xu, X., & Xie, J. (2024). Blockchain Based Federated Learning: A Survey and New Perspectives. Applied Sciences, 14(20), 9459. https://doi.org/10.3390/app14209459
  73. Orabi, M. M., Emam, O., & Fahmy, H. (2025). Adapting security and decentralized knowledge enhancement in federated learning using blockchain technology: literature review. Journal of Big Data, 12(1). https://doi.org/10.1186/s40537-025-01099-5
  74. Otoum, Y., Nayak, A., & Wan, Y. (2021). Federated Transfer Learning-Based IDS for the Internet of Medical Things (IoMT). In 2021 IEEE Globecom Workshops (GC Wkshps) IEEE.1-6. https://doi.org/10.1109/gcwkshps52748.2021.9682118
  75. Papaioannou, M., Essop, I., Rodriguez, J., Lymberopoulos, D., Karageorgou, M., Mantas, G., & Sucasas, V. (2020). A Survey on Security Threats and Countermeasures in Internet of Medical Things (IoMT). Transactions on Emerging Telecommunications Technologies, 33(6). e4049. https://doi.org/10.1002/ett.4049
  76. Rafique, W., Khan, M., Khan, S., & Ally, J. S. (2023). SecureMed: A Blockchain-Based Privacy-Preserving Framework for Internet of Medical Things. Wireless Communications and Mobile Computing, 2023, 1–14. https://doi.org/10.1155/2023/2558469
  77. Wang, R., Lai, J., Zhang, Z., Vijayakumar, P., Karuppiah, M., & Li, X. (2023). Privacy-Preserving Federated Learning for Internet of Medical Things under Edge Computing. IEEE Journal of Biomedical and Health Informatics, PP(2), 854–865. https://doi.org/10.1109/jbhi.2022.3157725
  78. Bisht, A., Park, Y., Niyato, D., & Das, A. K. (2023). Efficient Personal-Health-Records Sharing in Internet of Medical Things Using Searchable Symmetric Encryption, Blockchain, and IPFS. IEEE Open Journal of the Communications Society, 4, 2225–2244. https://doi.org/10.1109/ojcoms.2023.3316922
  79. Lu, S., Pei, J., Zhao, R., Yu, X., Zhang, X., Li, J., & Yang, G. (2023). CCIO: A Cross-Chain Interoperability Approach for Consortium Blockchains Based on Oracle. Sensors (Basel, Switzerland), 23(4), 1864. https://doi.org/10.3390/s23041864
  80. Pokharel, B. P., Sharma, S. R., Kshetri, N., & Paudel, S. (2025). blockHealthSecure: Integrating Blockchain and Cybersecurity in Post-Pandemic Healthcare Systems. Information, 16(2), 133. https://doi.org/10.3390/info16020133
  81. Adeghe, E., Ojeyinka, O., & Okolo, C. (2024). Evaluating the impact of blockchain technology in healthcare data management: A review of security, privacy, and patient outcomes. Open Access Research Journal of Science and Technology, 10(2), 013–020. https://doi.org/10.53022/oarjst.2024.10.2.0044
  82. Ettaloui, N., Arezki, S., & Gadi, T. (2023). An Overview of Blockchain-Based Electronic Health Records and Compliance with GDPR and HIPAA. Data and Metadata, 2, 166. https://doi.org/10.56294/dm2023166
  83. Khan, B. U. I., Mir, A. A., Chaimanee, M., Mohd Rosely, N. F. L., Mir, M. S., & Goh, K. W. (2024). Blockchain-Enhanced Sensor-as-a-Service (SEaaS) in IoT: Leveraging Blockchain for Efficient and Secure Sensing Data Transactions. Information, 15 (4), 212. https://doi.org/10.3390/info15040212
  84. Kim, D.-Y., & Joshi, K. P. (2021). A Semantically Rich Knowledge Graph to Automate HIPAA Regulations for Cloud Health IT Services. In 2021 7th IEEE Intl Conference on Big Data Security on Cloud (BigDataSecurity), IEEE Intl Conference on High Performance and Smart Computing,(HPSC) and IEEE Intl Conference on Intelligent Data and Security (IDS). IEEE.7–12. https://doi.org/10.1109/bigdatasecurityhpscids52275.2021.00013
DOI: https://doi.org/10.2478/ias-2026-0003 | Journal eISSN: 1554-1029 | Journal ISSN: 1554-1010
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