Designing Integrated IT Architecture for Health Monitoring Internet of Things: Findings Exploratory Study

Authors

  • Sabrina Fajrul Ula Usman System Informasi, Fakultas Teknik dan Informatika, Universitas Multimedia Nusantara, Tangerang
  • Djarot Hindarto Prodi Informatika, Fakultas Teknologi Komunikasi dan Informatika, Universitas Nasional, Jakarta https://orcid.org/0000-0001-7501-2610
  • Ririn Ikana Desanti System Informasi, Fakultas Teknik dan Informatika, Universitas Multimedia Nusantara, Tangerang

DOI:

10.33395/sinkron.v8i2.13592

Keywords:

IT Architecture, Internet of Things, TOGAF Framework, Health monitoring, Health system

Abstract

IT integration with healthcare, mainly through Internet of Things-based health monitoring systems, is crucial to improving healthcare management in the digital age. However, challenges remain in the design of an integrated IT architecture that can support the sustainability and effectiveness of IoT health monitoring systems, which still need to be addressed. The shortcomings in the literature related to the application of a holistic IT architecture framework to address these challenges indicate a knowledge gap that needs to be filled. Through the application of the TOGAF methodology, this research seeks to design and analyze an integrated IT architecture for IoT-based health monitoring systems in Indonesia, taking a qualitative approach through case studies, in-depth interviews, and document analysis. The main findings show that the application of the TOGAF framework successfully addresses the challenges of interoperability, data security, and system scalability by effectively integrating IoT technologies in the healthcare environment and considering the local social and infrastructural context. The implementation of the IT architecture developed based on the TOGAF methodology demonstrated improved coordination between IoT devices and backend systems, facilitated secure and real-time data flow, and accommodated the scalability and sustainability needs of the system. The findings have significant implications in supporting the development of more efficient and effective health monitoring systems, offering strategic guidance for system developers, policymakers, and IT practitioners within the healthcare sector.

GS Cited Analysis

Downloads

Download data is not yet available.

References

Afarah, S. F., Hindarto, D., & Wahyuddin, M. I. (2024). Optimizing Automotive Manufacturing Systems through TOGAF Modelling. 9(1), 414–425.

Afarini, N., & Hindarto, D. (2023). The Proposed Implementation of Enterprise Architecture in E-Government Development and Services. 3(December), 219–229.

Darabkh, K. A. (2020). A – Z survey of Internet of Things : Architectures , protocols , applications , recent advances , future directions and recommendations. 163(September 2019).

Forruque, S., Bin, S., & Hoque, M. (2023). Industrial Internet of Things enabled technologies , challenges , and future directions. 110(June).

Hindarto, D. (2023). Supporting University Management System Digital Transformation with Enterprise Architecture. Jurnal JTIK (Jurnal Teknologi Informasi Dan Komunikasi), 7(4).

Hindarto, D. (2024). Building the Future of the Apparel Industry : The Digital Revolution in Enterprise Architecture. Sinkron, 9(1), 542–555.

Hindarto, D., & Djajadi, A. (2023). Android-manifest extraction and labeling method for malware compilation and dataset creation. 13(6), 6568–6577. https://doi.org/10.11591/ijece.v13i6.pp6568-6577

Hindarto, D., Hendrata, F., Wahyuddin, M. I., & Wijanarko, S. (2024). Enterprise Architecture Design and Implementation for IoT Integration in Manufacturing Electrical Panels. Journal of Computer Networks , Architecture and High Performance Computing, 6(1), 77–90.

Kebande, V. R., Mudau, P. P., Ikuesan, R. A., Venter, H. S., & Choo, K. R. (2020). Holistic digital forensic readiness framework for IoT-enabled organizations. Forensic Science International : Reports, 2(July).

Lv, W., & Guo, J. (2021). Real-time ECG signal acquisition and monitoring for sports competition process oriented to the Internet of Things. 169(August 2020).

Malkawi, A., Ervin, S., Han, X., Xinzhu, E., Lim, S., Ampanavos, S., & Howard, P. (2023). Design and applications of an IoT architecture for data-driven smart building operations and experimentation. Energy & Buildings, 295(April).

Paganelli, A. I., Velmovitsky, P. E., Miranda, P., Branco, A., Alencar, P., Cowan, D., Endler, M., & Morita, P. P. (2021). A conceptual IoT-based early-warning architecture for remote monitoring of COVID-19 patients in wards and at home. Internet of Things, xxxx, 100399. https://doi.org/10.1016/j.iot.2021.100399

Wedha, B. Y., & Hindarto, D. (2024). Optimizing Transportation Services : Using TOGAF for Efficiency and Quality. Journal of Computer Networks , Architecture and High Performance Computing, 6(1), 260–269.

Xiao, N., Yu, W., & Han, X. (2020). Wearable heart rate monitoring intelligent sports bracelet based on Internet of things. 164.

Zahedian, M., Javan, A., Bojnordi, J., Mehraeen, M., Bagheri, R., & Rezazadeh, J. (2024). Securing the future of IoT-healthcare systems : A meta-synthesis of mandatory security requirements. International Journal of Medical Informatics, 185(November 2023).

Zovko, K., Seri, L., & Perkovi, T. (2023). IoT and health monitoring wearable devices as enabling technologies for sustainable enhancement of life quality in smart environments. Journal of Cleaner Production, 413(March). https://doi.org/https://doi.org/10.1016/j.jclepro.2023.137506

Downloads


Crossmark Updates

How to Cite

Usman, S. F. U. ., Hindarto, D., & Desanti, R. I. . (2024). Designing Integrated IT Architecture for Health Monitoring Internet of Things: Findings Exploratory Study. Sinkron : Jurnal Dan Penelitian Teknik Informatika, 8(2), 1080-1090. https://doi.org/10.33395/sinkron.v8i2.13592

Most read articles by the same author(s)

<< < 2 3 4