| Literature DB >> 34426765 |
Yang Li1, Biaoan Shan1, Beiwei Li1, Xiaoju Liu1, Yi Pu1.
Abstract
The emergence of machine learning (ML) and blockchain (BC) technology has greatly enriched the functions and services of healthcare, giving birth to the new field of "smart healthcare." This study aims to review the application of ML and BC technology in the smart medical industry by Web of Science (WOS) using bibliometric visualization. Through our research, we identify the countries with the greatest output, the major research subjects, funding funds, and the research hotspots in this field. We also find out the key themes and future research areas in application of ML and BC technology in healthcare area. We reveal the different aspects of research under the two technologies and how they relate to each other around five themes.Entities:
Mesh:
Year: 2021 PMID: 34426765 PMCID: PMC8380165 DOI: 10.1155/2021/9739219
Source DB: PubMed Journal: J Healthc Eng ISSN: 2040-2295 Impact factor: 2.682
Figure 1Number of documents per year from the studies.
Figure 2Number of documents based on subject areas of the smart healthcare studies.
Figure 3Documents based on sponsoring funding of the studies.
Figure 4Number of documents by country of smart healthcare studies.
The most cited papers in smart healthcare research.
| Article title | Times cited | Year | Publisher | Authors | Theme | |
|---|---|---|---|---|---|---|
| 1 | ECG signal preprocessing and SVM classifier-based abnormality detection in remote healthcare applications | 47 | 2018 | IEEE Access | Venkatesan, C; Karthigaikumar, P; Paul, A; Satheeskumaran, S; Kumar, R | Machine learning & remote healthcare application |
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| 2 | Bmpls: Blockchain-based multilevel privacy-preserving location sharing scheme for telecare medical information systems | 32 | 2018 | J Med Syst | Ji, YX; Zhang, JW; Ma, JF; Yang, C; Yao, X | Blockchain & Multilevel Privacy-Preserving |
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| 3 | Disease diagnosis in smart healthcare: innovation, technologies, and applications | 28 | 2017 | Sustainability-Basel | Chui, KT; Alhalabi, W; Pang, SSH; de Pablos, PO; Liu, RW; Zhao, MB | Machine learning & disease diagnosis |
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| 4 | A smart healthcare monitoring system for heart disease prediction based on ensemble deep learning and feature fusion | 25 | 2020 | Information Fusion | Ali, F; El-Sappagh, S; Islam, SMR; Kwak, D; Ali, A; Imran, M; Kwak, KS | Deep learning & healthcare monitoring |
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| 5 | Towards a remote monitoring of patient vital signs based on IoT-Based blockchain integrity management platforms in smart hospitals | 25 | 2020 | Sensors-Basel | Jamil, F; Ahmad, S; Iqbal, N; Kim, DH | IoT-based blockchain & monitoring patient's vital sign |
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| 6 | Healthchain: a blockchain-based privacy-preserving scheme for large-scale health data | 25 | 2019 | IEEE Internet of Things | Xu, J; Xue, KP; Li, SH; Tian, HY; Hong, JA; Hong, PL; Yu, NH | Blockchain & privacy health data |
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| 7 | Machine learning classification of medication adherence in patients with movement disorders using nonwearable sensors | 23 | 2015 | Comput Biol Med | Tucker, CS; Behoora, I; Nembhard, HB; Lewis, M; Sterling, NW; Huang, XM | Medication adherence & machine learning |
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| 8 | Recent patient health monitoring platforms incorporating internet of things-enabled smart devices | 22 | 2018 | Int Neurourol J | Kang, M; Park, E; Cho, BH; Lee, KS | Health monitoring & IoT |
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| 9 | A novel medical blockchain model for drug supply chain integrity management in a smart hospital | 20 | 2019 | Electronics-Switz | Jamil, F; Hang, L; Kim, K; Kim, D | Drug supply chain integrity management & blockchain |
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| 10 | A hybrid deep learning model for human activity recognition using multimodal body sensing data | 20 | 2019 | IEEE Access | Gumaei, A; Hassan, MM; Alelaiwi, A; Alsalman, H | Machine learning & body sensor |
Figure 5Map of hotspots.
Figure 6Map of study field.
Figure 7Map of research trends.