1887
Volume 4(2023) Number 2
  • EISSN: 2708-0463

Abstract

هدفت الدراسة إلى التعرف على دور تقنية الواقع المعزز في دعم نظم إدارة المعلومات الصحية؛ لغرض دراسة حالة برنامج المعلومات الصحية للمناطق (DHIS2)، وفي ضوء أهداف الدراسة تم استخدام منهج تحليل المحتوى؛ لمراجعة وتحليل الإنتاج الفكري في تكنولوجيا الواقع المعزز وإدارة المعلومات ومتطلباتها وبعض أنظمتها، وإيجاد المعايير التي من المفترض أن تكون موجودة في نظم إدارة المعلومات الصحية بحيث يواكب تقنية الواقع المعزز (AR)، كما تم استخدام منهج دراسة الحالة لمعرفة دور تقنية الواقع المعزز في دعمها لنظم إدارة المعلومات الصحية، وتطبيق المعايير المستخلصة على نظام إدارة المعلومات الصحية (DHIS2). ومن خلال الدراسة تم التوصل إلى عدة نتائج أهمها: مساهمة تقنية الواقع المعزز في دعم نظم المعلومات الصحية من حيث توفير الوقت والجهد المالي والمكاني، وتبين أن نظام (DHIS2) لم يطبق تقنية الواقع المعزز رغم تطبيقه لبعض التقنيات الحديثة كتقنية الواقع الافتراضي (VR)، وتقبُّل ممارسي الرعاية الصحية لهذه التقنيات ووجود نتائج إيجابية على الحالات التي تم تطبيقها عليه. كل ذلك يدل على أن الطريق إلى استخدام تقنية الواقع المعزز أصبح ممهداً، وإمكانية أن يساهم الواقع المعزز في إحداث التغييرات الرئيسية في نظام الجراحة والتشخيص والعلاج، فضلاً عن التعليم والتدريب الطبي.

وفي ضوء هذه النتائج تم اقتراح بعض التوصيات، من أبرزها: ضرورة تطبيق تقنية الواقع المعزز في نظام (DHIS2)؛ من أجل تحسين جودة النتائج الصحية في البلدان المنخفضة والمتوسطة الدخل وتعزيز الشراكات مع الجهات ذات الدخل المنخفض والمتوسط، ومع الخبراء التقنيين واستغلال طفرة النظام، وأخيراً استكمال المجال البحثي في قياس مدى دعم تقنية الواقع المعزز للأنظمة الصحية الأخرى.

الكلمات المفتاحية: الواقع المعزز، الواقع الافتراضي، نظم إدارة المعلومات الصحية، DHIS2.

The study aimed to identify the role of augmented reality technology in supporting health information management systems, for the purpose of a case study on the District Health Information System (DHIS2). In the light of the objectives of the study, the content analysis approach was used to review and analyze the intellectual production about augmented reality technology, information management requirements, and some of its systems, and to find the standards that are supposed to be present in the health information management system to keep pace with the technology of augmented reality (AR). Moreover, the paper used the case study approach to recognize the role of augmented reality technology in supporting the health information management systems, and applying the obtained standards on the health information management system. The study reached several results, the most important of which are: the contribution of augmented reality technology in supporting health information systems in terms of saving time and saving financial and spatial efforts; it turned out that the DHIS2 system does not apply augmented reality technology but it uses some other modern technologies like virtual reality; there is a great acceptance among health care practitioners to adopt such technologies as they showed positive results on cases. All of these indicate that the way to use augmented reality technology is now paved and there is a great possibility that augmented reality would provide major changes in the surgery processes, diagnosis, and treatment, as well as medical education and training. In the light of these results, some recommendations were proposed, most notably: necessity of applying augmented reality technology in the DHIS2 system in order to improve the quality of health outcomes in low- and middle-income countries, strengthening partnerships with technical experts and exploiting the system booming phase, and finally conducting further research to measure the extent to which AR technology supports other health systems.

Loading

Article metrics loading...

/content/journals/10.5339/ajsr.2023.12
2023-10-31
2024-05-02
Loading full text...

Full text loading...

/deliver/fulltext/ajsr/2023/2/ajsr.2023.issue2.12.html?itemId=/content/journals/10.5339/ajsr.2023.12&mimeType=html&fmt=ahah

References

  1. Wassom BD. Augmented reality law, privacy, and ethics: Law, society, and emerging AR. Elsevier; 2015.
    [Google Scholar]
  2. Ghandour MH, Elagmawy IMS, Nada MA. The Creative Role of Employing Augmented Reality into The Design of Political Advertising Campaigns. Journal of Architecture, Arts and Humanities. 2020; 5:(21). 10.21608/MJAF.2019.13979.1210 غندور، مهند والعجماوي، إيهاب و ندا ،مى على. ﺍﻟﺪﻭﺭ ﺍﻹﺑﺪﺍﻋﻲ ﻟﺘﻮﻇﻴﻒ ﺍﻟﻮﺍﻗﻊ ﺍﳌﺪﻣﺞ ﰲ ﺗﺼﻤﻴﻢ ﺍﳊﻤﻼﺕ ﺍﻹﻋﻼﻧﻴﺔ السياسية. مجلة العمارة والفنون والعلم الإنسانية. 2020، 5(21).
    [Google Scholar]
  3. Hosch WL. Augmented reality. Encyclopedia Britannica; 2023.
  4. Pope, H. (2018). Introduction to virtual and augmented reality. Library Technology Reports, 54:(6), 5-7.
    [Google Scholar]
  5. Sutherland IE. A head-mounted three dimensional display. In Proceedings of the December 9-11, 1968, fall joint computer conference, part I. 1968, December: 757-764.
    [Google Scholar]
  6. Billinghurst M, Kato H &Poupyrev I. Collaboration with tangible augmented reality interfaces. In HCI international. 2001, August; 1:5-10.
    [Google Scholar]
  7. Farshid M, Paschen J, Eriksson T & Kietzmann J. Go boldly: Explore augmented reality (AR), virtual reality (VR), and mixed reality (MR) for business. Business horizons. 2018; 61:(5): 657-663.
    [Google Scholar]
  8. Bulliard J, Eggert S, Ampanozi G, Affolter R, Gascho D, Sieberth T et al. Preliminary testing of an augmented reality headset as a DICOM viewer during autopsy. Forensic Imaging. 2020;:23:200417.
    [Google Scholar]
  9. Diegmann P, Schmidt-Kraepelin M, Eynden S, Basten D. Benefits of augmented reality in educational environments - A Systematic Literature Review. Wirtschaftsinformatik Proceedings; 103. 2015. https://aisel.aisnet.org/wi2015/103
  10. Nicolau S, Soler L, Mutter D, Marescaux J Augmented reality in laparoscopic surgical oncology. Surgical Oncology. 2011; 20:(3):189–201.
    [Google Scholar]
  11. Hou L, Wang X, Bernold L, Love PE. Using animated augmented reality to cognitively guide assembly. Journal of Computing in Civil Engineering. 2013; 27:(5):439–451.
    [Google Scholar]
  12. Leblanc F, Champagne BJ, Augestad KM, Neary PC, Senagore AJ, Ellis CN, et al. A comparison of human cadaver and augmented reality simulator models for straight laparoscopic colorectal skills acquisition training. Journal of the American College of Surgeons. 2010; 211:(2):250–255.
    [Google Scholar]
  13. Martín-Gutiérrez J, Navarro RE, González MA (editors) Mixed reality for development of spatial skills of first-year engineering students. 2011 Frontiers in Education Conference (FIE). IEEE; 2011.
    [Google Scholar]
  14. Aggarwal R, Singhal A (editors) Augmented reality and its effect on our life. 2019 9th International Conference on Cloud Computing, Data Science & Engineering (Confluence). IEEE; 2019.
    [Google Scholar]
  15. Madary M, Metzinger TK. Real virtuality: A code of ethical conduct. Recommendations for good scientific practice and the consumers of VR-technology. Frontiers in Robotics and AI. 2016;3:3.
    [Google Scholar]
  16. Slater M, Gonzalez-Liencres C, Haggard P, Vinkers C, Gregory-Clarke R, Jelley S et al. The ethics of realism in virtual and augmented reality. Frontiers in Virtual Reality. 2020;:1:1.
    [Google Scholar]
  17. Precedence Research RC. Augmented and virtual reality in healthcare market. 2023 [cited 31 August 2023]. https://www.precedenceresearch.com/augmented-and-virtual-reality-in-healthcare-market
    [Google Scholar]
  18. Barsom EZ, Graafland M, Schijven MP. Systematic review on the effectiveness of augmented reality applications in medical training. Surgical Endoscopy. 2016;:30:4174–4183.
    [Google Scholar]
  19. Stolton S . The world's first auqmented reality surgical operation. In Stolton SHTLGIESPL. (eds.). How the light gets in: Europe’s photonics landscape. 2020 [cited 31 March 2023].
    [Google Scholar]
  20. Weng M, Huang L, Feng C, Gao F, Lin H (editors) Electronic medical record system based on augmented reality. 2017 12th International Conference on Computer Science and Education (ICCSE). IEEE; 2017.
    [Google Scholar]
  21. Barakat-Johnson M, Jones A, Burger M, Leong T, Frotjold A, Randall S et al. Reshaping wound care: Evaluation of an artificial intelligence app to improve wound assessment and management amid the COVID‐19 pandemic. International Wound Journal. 2022; 19:(6):1561–1577.
    [Google Scholar]
  22. Kim I-C, Lee B-H. Effects of augmented reality with functional electric stimulation on muscle strength, balance and gait of stroke patients. Journal of Physical Therapy Science. 2012; 24:(8):755–762.
    [Google Scholar]
  23. Ku J, Kim YJ, Cho S, Lim T, Lee HS, Kang YJ. Three-dimensional augmented reality system for balance and mobility rehabilitation in the elderly: A randomized controlled trial. Cyberpsychology, Behavior, and Social Networking. 2019; 22:(2):132–141.
    [Google Scholar]
  24. Jeon S, Kim J Effects of augmented-reality-based exercise on muscle parameters, physical performance, and exercise self-efficacy for older adults. International Journal of Environmental Research and Public Health. 2020; 17:(9):3260.
    [Google Scholar]
  25. YooH-n, Chung E, Lee B-H. The effects of augmented reality-based Otago exercise on balance, gait, and falls efficacy of elderly women. Journal of Physical Therapy Science. 2013; 25:(7):797–801.
    [Google Scholar]
  26. Timmermans C, Roerdink M, van Ooijen MW, Meskers CG, Janssen TW, Beek PJ. Walking adaptability therapy after stroke: Study protocol for a randomized controlled trial. Trials. 2016; 17:(1):1–11.
    [Google Scholar]
  27. Alliance f Advanced BioMedical Engineering Augmented reality to revolutionize the health care. 2017 [cited 31 March 2023]. https://aabme.asme.org/posts/novel-augmented-reality-technology-to-revolutionize-the-health-care-industry
  28. Ortiz-Catalan M, Guðmundsdóttir RA, Kristoffersen MB, Zepeda-Echavarria A, Caine-Winterberger K, Kulbacka-Ortiz K et al. Phantom motor execution facilitated by machine learning and augmented reality as treatment for phantom limb pain: A single group, clinical trial in patients with chronic intractable phantom limb pain. The Lancet. 2016; 388:(10062):2885–2894.
    [Google Scholar]
  29. Lendaro E, Hermansson L, Burger H, Van der Sluis CK, McGuire BE, Pilch M et al. Phantom motor execution as a treatment for phantom limb pain: Protocol of an international, double-blind, randomised controlled clinical trial. BMJ Open. 2018; 8:(7):e021039.
    [Google Scholar]
  30. Dragošev G. (2015). Glasses for easier veins detection and safer installation of peripheral venous cannula. Inspirium, (13), 41-43.
    [Google Scholar]
  31. Dragošev G. Glasses for easier veins detection and safer installation of peripheral venous cannula. Inspirium. 2018; (13):41-43.
    [Google Scholar]
  32. Ito K, Sugimoto M, Tsunoyama T, Nagao T, Kondo H, Nakazawa K et al. A trauma patient care simulation using extended reality technology in the hybrid emergency room system. Journal of Trauma and Acute Care Surgery. 2021; 90:(5):e108–e112.
    [Google Scholar]
  33. Madison D et al. The future of augmented reality in healthcare. Health Management. 2018; 18:(1).
    [Google Scholar]
  34. Roberts P et al. Voices of world war I: Contemporary accounts of daily life. USA: Bloomsbury Publishing; 2023.
    [Google Scholar]
  35. Kolo K, Katin, P, Lane H et al. Key challenges to adoption of VR/AR for healthcare. VR/AR Association. 2017. https://www.thevrara.com/blog2/2017/6/10/key-challenges-to-adoption-of-vrar-for-healthcare
    [Google Scholar]
  36. LeRouge C, Van Slyke C, Seale D, Wright K et al. Baby boomers’ adoption of consumer health technologies: Survey on readiness and barriers. Journal of Medical Internet Research. 2014; 16:(9):e200.
    [Google Scholar]
  37. Quandt M, Ait Alla A, Meyer L, Freitag M et al. Success factors for the development of augmented reality-based assistance systems for maintenance services. Schmitt, RH, Schuh G (Hrsg). 2017;7:175–182.
    [Google Scholar]
  38. Caricato P, Colizzi L, Gnoni MG, Grieco A, Guerrieri A, Lanzilotto A et al. Augmented reality applications in manufacturing: A multi-criteria decision model for performance analysis. IFAC Proceedings Volumes. 2014; 47:(3):754–759.
    [Google Scholar]
  39. Webel S, Bockholt U, Engelke T, Gavish N, Tecchia Feditors et al. Design recommendations for augmented reality based training of maintenance skills. Recent trends of mobile collaborative augmented reality systems. Springer; 2011.
    [Google Scholar]
  40. Ezenwa BN, Umoren R, Fajolu IB, Hippe DS, Bucher S, Purkayastha S et al. Using mobile virtual reality simulation to prepare for in-person helping babies breathe training: Secondary analysis of a randomized controlled trial (the eHBB/mHBS trial). JMIR Medical Education. 2022; 8:(3):e37297.
    [Google Scholar]
  41. Umoren RA, Bucher S, Purkayastha S, Ezeaka C, Esamai F, Mairami A et al. eHBB/mHBS-DHIS2: Mobile virtual reality provider training in Helping Babies Breathe®. Pediatrics. 2020;146(1_MeetingAbstract):290–292.
    [Google Scholar]
http://instance.metastore.ingenta.com/content/journals/10.5339/ajsr.2023.12
Loading
/content/journals/10.5339/ajsr.2023.12
Loading

Data & Media loading...

This is a required field
Please enter a valid email address
Approval was a Success
Invalid data
An Error Occurred
Approval was partially successful, following selected items could not be processed due to error