Blockchain-Based Internet of Medical Things
Abstract
:1. Introduction
2. Research Methodology
2.1. Prior Reviews
2.2. Planning the Review
- ▪
- Recognizing the necessity for conducting an analysis, generating a review proposition, and creating a review.
- ▪
- Finding the appropriate research and studies.
- ▪
- Results overview of the investigation.
2.3. Research Questions
2.4. Research Strategy
2.5. Search Criteria
- ▪
- Inclusion criteria (IC).
- Research may have been published at any point from 2017 to 2022.
- Research is confined to the journal.
- ▪
- Exclusion criteria (EC).
- Papers that are not in English.
- Reviews, conferences, book chapters, periodicals, theses, monographs, and interview-based pieces are eliminated.
3. Analysis
3.1. Selection Results
3.2. Advantages of Using Blockchain-Based Technologies in IoMT Systems
- The term “open architecture” refers to a kind of technological infrastructure whose developers provide detailed plans for the system. It encompasses both government-sanctioned norms and custom-built structures.
- Trustless consensus: since distributed consensus is at the heart of blockchain-based IoMT applications, relying on third-party trusted intermediaries such as banks and governments is unnecessary.
- Transparency: all peers in the network may see all data that is recorded in a block, and the data cannot be modified once it is recorded. To combat problems like counterfeit pharmaceuticals, for instance, it is possible to verify and secure critical drug information by tracking every transaction between drug makers, pharmacists, and patients. The capacity to track where drugs came from will result.
- Recordings cannot be tampered with, so any attempts to steal or modify patients’ health records are easily uncovered. The dishonest practice of manipulating or altering data from clinical studies, for instance, might be eliminated.
- In situations where rule-based approaches to patient data access are developed, smart contracts are likely to be utilized to ensure that only authorized parties have access to that data. In this section, authorization for certain medical institutions might be made. Smart contracts may be employed to define the behavior of IoMT applications, automate routine tasks, and provide secure two-way communication and financial transactions between IoMT devices and third parties including patients, and physicians.
- Because of its decentralized design, the blockchain cannot be hacked or brought down by any one central authority.
3.3. Privacy and Security
- To ensure that only those who need access to a patient’s medical records do so by the rules put out by the lawful administrator, smart contracts may give access to control property.
- Each participant in an IoMT system values their privacy and does not want it invaded in any way by the exchange of information. The digital identity of the transactions is used by blockchain to make transactional data unreadable to other parties.
- CIA (confidentiality, integrity, availability): because the blocks containing data are signed, blockchain provides high levels of integrity protection. In addition, the linking through hashes and the unanimity requirement make it very difficult, if not impossible, to alter the contents inside a block. In addition, a complete version of the data is copied and stored in all nodes, which means a high degree of availability is supplied by construction. However, privacy is compromised due to blockchain’s inbuilt transparency and verifiability checks for every data transaction. Since blockchain implementation focuses more on ensuring the data’s integrity and availability than its secrecy, the latter is less strictly enforced. Since application-level encryption and other techniques where (sensitive) data is not immediately accessible by unauthorized nodes are beyond the purview of this study, the system must offer extra security if a high degree of secrecy is needed [60].
3.4. Blockchain Scalability
- Transaction latency is the time it takes for a payment to be approved. There are other measures, such as bootstrap time and cost per confirmed transaction (CPCT) for the approval process.
- If you want to know how many transactions per second a blockchain can confirm, you need to know the maximum block size and the average block duration.
- I.
- The solutions offered are proprietary. They do not create protocols to adapt diverse technology and foster interoperability, preventing their adoption. It is essential to create platform-agnostic, universal solutions that control the interaction between cloud computing, blockchain, IoMT devices, and end users.
- II.
- Scalability is one of the significant problems that current blockchain-based IoMT applications face, causing slow transaction validation, high transaction fees, high storage memory requirements, and long synchronization times [67,140]. Hence, scalability is an essential factor that needs more research and direction.
- III.
- The incorporation of blockchain into the IoMT opens the door to several health-related applications. However, the implementation of such technology (blockchain-IoMT) is complex and necessitates in-depth interdisciplinary knowledge, ranging from low-level, such as managing IoMT devices and configuring blockchain to meet IoMT criteria, to high-level knowledge, such as treating, storing, and sharing IoMT data.
- IV.
- An advancement in personalized medicine, utilizing the most cutting-edge machine learning methods that computer science has to offer, would be made possible by the opportunity of freely sharing sensitive data between experts and health institutions. IoMT gathers huge amounts of information. Finding usable information from the acquired data is a challenge. The IoMT device may provide practical information when using data analytics to examine the data and find flaws, vulnerabilities, and bottlenecks in the system. IoMT data heterogeneity, however, presents difficulties for data analytics [16]. Deep learning advances in machine learning may assist in resolving these issues [141].
- V.
- The bulk of present works is solely concerned with healthcare applications such as IoMT data management and remote patient monitoring, such as data exchange and storage. Tracking apps that prevent counterfeit medications and medical mishaps are critical. In this context, the adoption of blockchain technology in conjunction with IoMT may be an effective solution for controlling doctor behavior as well as managing the medication supply chain.
4. Conclusions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
References
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Journal | Number of Publications |
---|---|
IEEE Internet of Things Journal | 10 |
IEEE Access | 8 |
Sensors | 8 |
Electronics Switzerland | 5 |
SN Computer Science | 3 |
Computers Materials and Continua | 2 |
IEEE Transactions on Industrial Informatics | 2 |
Intelligent Automation and Soft Computing | 2 |
International Journal of Advanced Computer Science and Applications | 2 |
Security and Communication Networks | 2 |
ACM Transactions on Multimedia Computing Communications and Applications | 1 |
Applied System Innovation | 1 |
Array | 1 |
Biomedical Engineering Applications Basis and Communications | 1 |
Computational and Mathematical Methods in Medicine | 1 |
Computational Intelligence and Neuroscience | 1 |
Computer Communications | 1 |
Computer Networks | 1 |
Computer Systems Science and Engineering | 1 |
Computers and Electrical Engineering | 1 |
Computers in Biology and Medicine | 1 |
Frontiers in Public Health | 1 |
ICT Express | 1 |
IEEE Journal of Biomedical and Health Informatics | 1 |
IEEE Sensors Journal | 1 |
IEEE Transactions on Consumer Electronics | 1 |
IEEE Transactions on Engineering Management | 1 |
Information Switzerland | 1 |
Journal of Information Security and Applications | 1 |
Journal of Network and Computer Applications | 1 |
Journal of Sensor and Actuator Networks | 1 |
Journal of Supercomputing | 1 |
Mathematical Biosciences and Engineering | 1 |
Microprocessors And Microsystems | 1 |
Multimedia Tools and Applications | 1 |
Pervasive and Mobile Computing | 1 |
Soft Computing | 1 |
Technological Forecasting and Social Change | 1 |
Technology and Health Care | 1 |
Objective | Year | Journal | Cited by | Reference |
---|---|---|---|---|
“Blockchain For Secure EHR Cloud-Based Mobile E-Health System Sharing” | 2019 | IEEE Access | 280 | [69] |
“Protecting The Internet of Medical Devices with Blockchain” | 2019 | International Journal of Advanced Computer Science and Applications | 51 | [20] |
“Blockchain-Based IoMT for Uninterrupted, Ubiquitous, User-Friendly, Unfaltering, Flawless, Unrestricted Health Care Services (BC IoMT U6HCS)” | 2020 | IEEE Access | 29 | [70] |
“An In-Depth Analysis of the COVID-19 Pandemic and the Role of IoT, Drones, AI, Blockchain, and 5G in Managing its Effects” | 2020 | IEEE Access | 818 | [71] |
“Design of Blockchain-Enabled Authenticated Key Management Protocol for Deployment of Internet of Medical Devices” | 2020 | IEEE Access | 77 | [72] |
“The Prospective Use of EHR, IoMT, and Blockchain in Improving Healthcare Effectiveness” | 2020 | Electronics (Switzerland) | 30 | [73] |
“E-healthcare Blockchain-Based Smart Contracts for The Internet of Medical Devices” | 2020 | Electronics (Switzerland) | 75 | [74] |
“Enhancing Medical Smartphone Networks Against Insider Attacks Using Blockchain-Based Trust Management” | 2020 | IEEE Transactions on Engineering Management | 65 | [75] |
“Integrated Blockchain and IPFS Framework in Bilevel Fog-Cloud Network for IoMT Device Security and Privacy” | 2021 | Computational and Mathematical Methods in Medicine | 5 | [76] |
“Scalability of Blockchain-Based IoMT Systems” | 2021 | IEEE Access | 6 | [77] |
“Blockchain-enabled serverless network with cost-effective service selection and execution for the IoMT” | 2021 | Mathematical Biosciences and Engineering | 18 | [78] |
“A Systematic Analysis of Current and Future Trends in IoMT-Enabled Smart Healthcare Systems’ Security, Privacy, and Trust” | 2021 | International Journal of Advanced Computer Science and Applications | 18 | [79] |
“A Cross-blockchain Approach to Fog-based Secure Service Discovery for Internet of Multimedia Things” | 2021 | ACM Transactions on Multimedia Computing, Communications, and Applications | 6 | [80] |
“Blockchain for Public Healthcare in The Intelligent Society” | 2021 | Microprocessors and Microsystems | 24 | [81] |
“SaYoPillow: A Blockchain-Integrated, Privacy-Assured IoMT Framework for Stress Management Taking Sleeping Habits into Consideration” | 2021 | IEEE Transactions on Consumer Electronics | 26 | [82] |
“Convergence of security and Blockchain with the Internet of Multimedia Things: Current trends, research problems, and future directions” | 2021 | Journal of Network and Computer Applications | 40 | [83] |
“Intelligent Framework Using Disruptive Technologies for Analysis of COVID-19” | 2021 | Technological Forecasting and Social Change | 167 | [84] |
“A Case Study Using Blockchain and IoMT against Physical Abuse: School Bullying” | 2021 | Journal of Sensor and Actuator Networks | 5 | [85] |
“Blockchain-Based Cybersecurity Architecture for the IoMT and Linked Devices” | 2021 | Biomedical Engineering—Applications, Basis, and Communications | 4 | [86] |
“Intelligent Medical System Agent Architecture Based on Federated Learning and Blockchain Technologies” | 2021 | Journal of Information Security and Applications | 47 | [87] |
“Smart-Contract-Aware Ethereum and Client-Cloud Fog-Computing Healthcare System” | 2021 | Sensors | 51 | [88] |
“BEdgeHealth: A Blockchain-based decentralized architecture for edge-based IoMT networks” | 2021 | IEEE Internet of Things Journal | 40 | [89] |
“Fortified-Chain: A Blockchain-Based Framework with Effective Access Control for Securing and Protecting the IoMT” | 2021 | IEEE Internet of Things Journal | 68 | [90] |
“Blockchain Technology for the IoMT, A Remedy for COVID-19” | 2021 | Pervasive and Mobile Computing | 20 | [91] |
“Utilizing Blockchain and IPFS Technologies to Build and Deploy a Security and Privacy Framework for IoMT” | 2021 | Journal of Supercomputing | 36 | [92] |
“The Mechanism for Establishing Trust in the Internet of Multimedia Things Based on Blockchain Technology” | 2021 | Multimedia Tools and Applications | 11 | [93] |
“Automatic Creation of Smart Contracts for the Internet of Media Things” | 2021 | ICT Express | 4 | [94] |
“A Blockchain-Based Framework for Non-repudiable Contact Tracing in Healthcare Cyber-physical Systems During Pandemic Outbreaks” | 2021 | SN Computer Science | 17 | [52] |
“In the Age of COVID-19, Applications of Machine Learning and High-Performance Computing” | 2021 | Applied System Innovation | 6 | [95] |
“Deep Learning-Based Blockchain-Secured Recommendation System for Patients with Special Needs” | 2021 | Frontiers in Public Health | 4 | [96] |
“Blockchain-Based Miyauchi–preneel ruzickaindexed Deep Perceptive Learning for Malware Detection in IoMT” | 2021 | Sensors | 3 | [97] |
“Federated Learning Across Clusters and Blockchain for the IoMT” | 2021 | IEEE Internet of Things Journal | 13 | [98] |
“Secure IoMT Data Analysis Powered by Blockchain and SGX-Enabled Edge Computing” | 2021 | IEEE Internet of Things Journal | 15 | [99] |
“MEdge-Chain: Using Edge Computing and Blockchain to Exchange Medical Data Efficiently” | 2021 | IEEE Internet of Things Journal | 53 | [100] |
“Applying Collective Reinforcement Learning to Task Offloading for VR-Enabled Wireless Medical Treatment with Blockchain Security” | 2021 | IEEE Internet of Things Journal | 27 | [101] |
“HealthBlock is a Secure Blockchain-Based Solution for Managing Healthcare Data” | 2021 | Computer Networks | 31 | [102] |
“A Framework for Sharing Collateral Sensor Data in Decentralized Healthcare Systems” | 2021 | IEEE Sensors Journal | 2 | [103] |
“DSMAC: Privacy-Aware Blockchain-Based Decentralized Self-Management of Health Data Access Control” | 2022 | IEEE Access | 0 | [104] |
“Trusted and Confidentiality-Preserving Distributed Computing for the Internet of Mobile Things” | 2022 | Security and Communication Networks | 0 | [105] |
“BIoMT: A State-of-the-Art Serverless Network Architecture for a Blockchain-Based Healthcare System” | 2022 | IEEE Access | 2 | [106] |
“Trends and Progress of Smart Healthcare System Based on the IoMT” | 2022 | Computational Intelligence and Neuroscience | 1 | [107] |
“Protocol for Proof of Activity for IoMT Data Security” | 2022 | Computer Systems Science and Engineering | 0 | [108] |
“IoMT Framework Crypto Hash-Based Malware Detection” | 2022 | Intelligent Automation and Soft Computing | 2 | [109] |
“Without IPv6, Healthcare Digital Transformation is Impossible” | 2022 | Technology and Health Care | 0 | [110] |
“Blockchain-Enabled Secure and Privacy-Preserving Sharing of Health Data at the Edge of IoMT” | 2022 | Security and Communication Networks | 2 | [111] |
“Blockchain Connects Critical National Infrastructures: A Perspective on E-Healthcare Data Migration” | 2022 | IEEE Access | 2 | [112] |
“IoT Malware Detection Employing a Decision Tree-Based SVM Classifier” | 2022 | Computers, Materials and Continua | 0 | [113] |
“Cost-Effective Scheduling Using Ethereum Smart Contracts for IoMT” | 2022 | Intelligent Automation and Soft Computing | 0 | [114] |
“Neural Network-Based Industrial IoT-Based Blockchain-Enabled Secure Searchable Encryption for Healthcare Systems” | 2022 | Sensors | 18 | [115] |
“Integration of Blockchain Technology with Fog Computing for the Administration of Medical Records” | 2022 | Computers, Materials and Continua | 3 | [116] |
“An Artificial IntelligenceEnabled Hybrid Lightweight Authentication Model for Digital Healthcare Utilizing Industrial IoT CyberPhysical Systems” | 2022 | Sensors | 0 | [117] |
“Blockchain-Based IoMT Edge Network Security Mechanisms in IoMT-Based Healthcare Monitoring Systems” | 2022 | Sensors | 7 | [118] |
“BACTmobile: An Intelligent Blood Alcohol Concentration Monitoring System for Smart Vehicles in the Healthcare CPS Framework” | 2022 | SN Computer Science | 1 | [119] |
Regarding the Design of “Blockchain-Based ECDSA With a Fault-Tolerant Batch Verification Protocol for Blockchain-Enabled IoMT” | 2022 | IEEE Journal of Biomedical and Health Informatics | 52 | [120] |
“Blockchain-Enabled Access Control that Preserves Privacy for Data Publication and Sharing in the IoMT” | 2022 | IEEE Internet of Things Journal | 6 | [121] |
“Lightweight Authentication Protocol for Wireless Medical Sensor Networks Based on Blockchain and PUF” | 2022 | IEEE Internet of Things Journal | 65 | [122] |
“IoMT-Based Osteosarcoma Cancer Detection in Histopathology Images using Transfer Learning, Blockchain, Fog Computing, and Edge Computing” | 2022 | Sensors | 1 | [123] |
“Smart Healthcare System Management Model for Self-Sovereignty Identities” | 2022 | Sensors | 1 | [124] |
“K-Nearest Neighbor-Based Smart Contract for the Security of the Internet of Medical Devices Utilizing Blockchain” | 2022 | Computers and Electrical Engineering | 0 | [125] |
“Blockchain Multi-objective Optimization Enables Cost-effective and Secure Scheduling for the IoMT in a Fog-cloud Environment” | 2022 | Soft Computing | 8 | [126] |
“Context-aware blockchain-based CP-ABE schema for IoMT security” | 2022 | Array | 1 | [127] |
“Sharing of Secure and Confidential Personal Health Records Using Consortium Blockchain” | 2022 | IEEE Internet of Things Journal | 2 | [128] |
“Trusted and Secure Blockchain-Based IoMT Architecture” | 2022 | Electronics | 1 | [129] |
“Blockchain-Based IoMT-Based Platform for E-Health Monitoring” | 2022 | Electronics | 4 | [130] |
“Privacy-Aware IoMT Data Certification Framework on the Healthcare Blockchain” | 2022 | Computer Communications | 0 | [131] |
“RAMi: A New Real-Time IoMT Architecture for Monitoring of Elderly Patients” | 2022 | Information | 0 | [132] |
“Access Control Based on Blockchain Technology in a Globalized Healthcare Provisioning Ecosystem” | 2022 | Electronics | 0 | [133] |
“PUFchain 2.0: Hardware-Assisted Robust Blockchain for Sustainably Concurrent Device and Data Security in Smart Healthcare” | 2022 | SN Computer Science | 0 | [134] |
“Prediction of Kidney Cancer Facilitated by Blockchain Security and Transfer Learning” | 2022 | Sensors | 0 | [135] |
“A Secure Authentication Protocol for Wireless Medical Sensor Networks Based on Blockchain and Physically Unclonable Functions” | 2022 | IEEE Internet of Things Journal | 9 | [136] |
“A Secure Healthcare 5.0 System Using Blockchain Technology and Federated Learning” | 2022 | Computers in Biology and Medicine | 0 | [137] |
“ANAF-IoMT: An Innovative Architectural Framework for IoMT-Enabled Smart Healthcare Systems by Strengthening Security Using RECC-VC” | 2022 | IEEE Transactions on Industrial Informatics | 3 | [138] |
“FAITH: A Rapid Edge Computing Platform with Blockchain Support for Healthcare Applications” | 2022 | IEEE Transactions on Industrial Informatics | 1 | [139] |
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Taherdoost, H. Blockchain-Based Internet of Medical Things. Appl. Sci. 2023, 13, 1287. https://doi.org/10.3390/app13031287
Taherdoost H. Blockchain-Based Internet of Medical Things. Applied Sciences. 2023; 13(3):1287. https://doi.org/10.3390/app13031287
Chicago/Turabian StyleTaherdoost, Hamed. 2023. "Blockchain-Based Internet of Medical Things" Applied Sciences 13, no. 3: 1287. https://doi.org/10.3390/app13031287
APA StyleTaherdoost, H. (2023). Blockchain-Based Internet of Medical Things. Applied Sciences, 13(3), 1287. https://doi.org/10.3390/app13031287