Assessment of the distance learning server\'s operation strategies and service capacity in advance
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- References 1. G. Parissidis, K. Katrinis, B. Plattner, An Integrated Architecture for Synchronous and Asynchronous Distance Learning 2. L. Watts, Quar. Rw. of DE 17(1)
6 Conclusion
The evolution of distance learning and the widening of its user base in recent years required both an improvement in the procedures used in distance learning and the development of more user-friendly learning environments. The first goal is to employ quick and convenient teaching platforms for users during the learning process. Also, system servers play an important role in providing users with convenient and fast service during the service process of these educational platforms. Therefore, it is important to predict the number of participants in the educational process in advance and choose devices for the system based on that. That's why it's crucial to establish the server's operational approach and decide how many users it can support depending on its technological specifications. The HP Proliant DL 380 G6 processor (Intel Xeon E5540, 2.53 GHz, 8 cores), 1.5 TB of HDD, and 22 GB of RAM were used in this study to examine the server's serviceability and operational principles. According to the analysis, it was found that using the conditional loss method with a limited number of waiting areas is beneficial. E3S Web of Conferences 420, 06016 (2023) https://doi.org/10.1051/e3sconf/202342006016 EBWFF 2023 8 References 1. G. Parissidis, K. Katrinis, B. Plattner, An Integrated Architecture for Synchronous and Asynchronous Distance Learning 2. L. Watts, Quar. Rw. of DE 17(1), 23-32 (2016) 3. E.S. Abdullaev, V.M. Zakirov, F.D. Shukurov, NamIET 7(1), 241-246 (2022) 4. Z. Hao, W. Honghui, H. Haiduan, Z. Jiangyan, ICTCS 2, 291-296 (2012) 5. A. Ergüzen, E. Erdal, M. Ünver, A. Özcan, Appl. Sci, 11(3), 1214 (2021) 6. A.M. Riedling, AACE Review Journal 8-13, (2020) 7. S. Z. Qamar, T. Pervez, M. Al-Kindi, Engineering education, In Proceedings of the 16th IEOM Global Engineering Education (IEOM-2019), (2019) 8. P. Manchanda, IAIT 2013, 150-161 (2013) 9. A. Borg, Web Site Performance: When Seconds Count. Accessed June 4, 2013, from technewsworld.com: http://www.techhnewsworld.com/story/68918.html (2009) 10. BestColleges.com, Online education student survey, (2020) 11. T. Sari, F. Nayır, QRE 9(3), 328-360 (2020) 12. S. Ghavifekr, M. Afshari, S. Amla, Life Science Journal 9(3), 2190-2196 (2012) 13. S.S. Liaw, Computers & education 51(2), 864-873 (2008) 14. C. Dziuban, P. Moskal, J. Thompson, L. Kramer, G. DeCantis, A. Hermsdorfer, Online Learning 19(2), (2015) 15. X. Hu, A. Caputo, ILE, 27(4), 435-448 (2019) 16. M. Oztok, D. Zingaro, A. Makos, C. Brett, J. Hewitt, Computers & Education 60(1), 87-94 (2013) 17. M.S. Beqiri, N.M. Chase, A. Bishka, J. EB 85(2), 95-100 (2010) 18. S. Youcef, M.U. Bhatti, L. Mokdad, V. Monfort, Simulation-based response-time analysis of composite Web services, In 2006 IEEE International Multitopic Conference (2006) 19. L. Almeida, P. Pedreiras, Scheduling within temporal partitions: response-time analysis and server design, In Proceedings of the 4th ACM (2004) 20. V. Zakirov, E. Abdullaev, F. Shukurov, Reducing of the System Load Using Asynchronous and Synchronous Service Methods (2023) 21. V. Zakirov, E. Abdullaev, AVRIIT-2021 (2022) 22. E. Ghanbari, S. Ghasbe, A. Aghsami, F. Jolai, IISE 12(4), 305-321 (2022) 23. L., Kleinrock, Queueing systems: theory (1975) 24. P. Fortier, H. Michel, Computer systems performance evaluation and prediction. (Elsevier, 2003) 25. M. Harchol-Balter, Performance modeling and design of computer systems: queueing theory in action (Cambridge UP, 2013) 26. H. Khazaei, J. Misic, V.B. Misic, IEEE Transactions on parallel and distributed systems 23(5), 936-943 (2011) E3S Web of Conferences 420, 06016 (2023) https://doi.org/10.1051/e3sconf/202342006016 EBWFF 2023 9 Download 399.25 Kb. Do'stlaringiz bilan baham: |
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