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Investigation of the Flow-Based Fast Reroute Model with Implementation of a Multimedia Quality Protection Scheme Cover

Investigation of the Flow-Based Fast Reroute Model with Implementation of a Multimedia Quality Protection Scheme

Open Access
|Dec 2021

References

  1. 1. Savva, S. (2017). Fault-tolerant routing methodology for Networks-on-Chip. In 27th International Symposium on Power and Timing Modeling, Optimization and Simulation (PATMOS), (pp. 1–3), 25–27 September 2017, Thessaloniki, Greece. DOI:10.1109/PATMOS.2017.8106993
  2. 2. Ren, Y., Liu, L., Yin, S., Han, J., Wu, Q., & Wei, S. (2013). A Fault Tolerant NoC Architecture Using Quad-Spare Mesh Topology and Dynamic Reconfiguration. Journal of Systems Architecture. Elsevier, 59 (7), 482–491. DOI:10.1016/j. sysarc.2013.03.010
  3. 3. Papán, J., Segeč, P., Moravčík, M., Hrabovský, J., Mikuš, Ľ., & Uramova, J. (2017). Existing mechanisms of IP fast reroute. In 15th International Conference on Emerging eLearning Technologies and Applications (ICETA), (pp. 1–7), 26–27 October 2017, Stary Smokovec. DOI:10.1109/ICETA.2017.8102516
  4. 4. Seufert, M., & Tran-Gia, P. (2018). Quality of experience and access network traffic management of HTTP adaptive video streaming. In IEEE/IFIP Network Operations and Management Symposium, (pp. 1–8), 23–27 April 2018, Taipei. DOI:10.1109/NOMS.2018.8406136
  5. 5. Liotou, E., Tsolkas, D., & Passas, N. (2016). A roadmap on QoE metrics and models. In 23rd International Conference on Telecommunications (ICT), (pp. 1–5), 16–18 May 2016, Thessaloniki, Greece. DOI:10.1109/ICT.2016.7500363
  6. 6. Litvinenko, A., & Aboltins, A. (2016). Selection and performance analysis of chaotic spreading sequences for DS-CDMA systems. In Advances in Wireless and Optical Communications (RTUWO), (pp. 38–45), 3–4 November 2016, Riga, Latvia. DOI: 10.1109/RTUWO.2016.7821852
  7. 7. Kondratjevs, K., Kunicina, N., Patlins, A., Zabasta, A., & Galkina, A. (2016). Vehicle weight detection sensor development for data collecting in sustainable city transport system. In 57th International Scientific Conference on Power and Electrical Engineering of Riga Technical University (RTUCON), (pp. 1–5), 13–14 October 2016, Riga, Latvia. DOI: 10.1109/RTUCON.2016.7763136
  8. 8. Dorogovs, P., & Romanovs, A. (2015). Overview of government e-service security challenges. In IEEE 3rd Workshop on Advances in Information, Electronic and Electrical Engineering (AIEEE), (pp. 1–5), 13–14 Novenber 2015, Riga, Latvia. DOI: 10.1109/AIEEE.2015.7367316
  9. 9. Gasparjans, A., Terebkov, A., & Žiravecka, A. (2017) Application of Resonance Method for Examining of Piston Ring Technical Condition. In 16th International Scientific Conference “Engineering for Rural Development”, (pp.884–891), 24–26 May, 2017, Latvia, Jelgava. DOI:10.22616/ERDev2017.16.N180
  10. 10. Hands, D.S. (2001). A basic multimedia quality model. IEEE Transactions on Multimedia, 6 (6), 806–816. DOI: https://doi.org/10.1109/TMM.2004.837233
  11. 11. Lemeshko, O., Yeremenko, O., Yevdokymenko, M., Nevzorova, O., Snihurov, A., & Kovalenko, T. (2019). Fast reroute model with VoIP quality of experience protection. In IEEE 3rd International Conference on Advanced Information and Communications Technologies (AICT), (pp. 16–21), 2–3 July 2019, Lviv, Ukraine. DOI: 10.1109/AIACT.2019.8847918.
  12. 12. Churyumov, G., Tkachov, V.M., Tokariev, V., & Diachenko, V. (2018). Method for Ensuring Survivability of Flying Adhoc Network Based on Structural and Functional Reconfiguration. In XVIII International Scientific and Practical Conference “Information Technologies and Security” (ITS), (pp. 64–76), 27 November 2018, Ukraine.
  13. 13. Tkachov, V., & Savanevych, V. (2014). Method for transfer of data with intermediate storage. In First International Scientific-Practical Conference Problems of Infocommunications Science and Technology, (pp. 105–106), 14–17 October 2014, Kharkiv, Ukraine. DOI: 10.1109/INFOCOMMST.2014.6992315
  14. 14. Lemeshko, O., Yeremenko, O., Yevdokymenko, M., Hailan, A.M., Segeč, P., & Papán, J. (2019). Design of the fast reroute QoS protection scheme for bandwidth and probability of packet loss in software-defined WAN. In 15th International Conference “The Experience of Designing and Application of CAD Systems (CADSM)”, (pp. 3/72–3/76), 26 February–2 March 2019, Polyana,Ukraine. DOI: 10.1109/CADSM.2019.8779321
  15. 15. Lemeshko, O., Yevsieieva, O., & Yevdokymenko, M. (2018). Tensor flow-based model of quality of experience routing. In IEEE 14th International Conference on Advanced Trends in Radioelecrtronics, Telecommunications and Computer Engineering (TCSET), (pp. 1005–1008), 20–24 February 2018, Lviv, Ukraine. DOI: 10.1109/TCSET.2018.8336364.
  16. 16. Lemeshko, O., Yeremenko, O., & Yevdokymenko, M. (2020). Traffic Engineering Solution of Multipath Fast ReRoute with Local and Bandwidth Protection. In Advances in Computer Science for Engineering and Education II. ICCSEEA 2019. Advances in Intelligent Systems and Computing, (pp.113–125), 29 March 2019. Springer, Cham, vol. 938. DOI:10.1007/978-3-030-16621-2_11
  17. 17. Lemeshko, O., Yevdokymenko, M., & Alsaleem, N. (2018). Development of the Tensor Model of Multipath QoE-Routing in an Infocommunication Network with Providing the Required Quality Rating. Eastern-European Journal of Enterprise Technologies, 5 2(95), 40–46. DOI: 10.15587/1729-4061.2018.141989
  18. 18. Lin, S.C., Wang, P., & Luo, M. (2016). Control Traffic Balancing in Software Defined Networks. Computer Networks, 106, 260–271.
  19. 19. Akhtar, Z., & Falk, T.H. (2017). Audio-Visual Multimedia Quality Assessment: A Comprehensive Survey. IEEE Access., 5, 21090–21117. DOI: 10.1109/ACCESS.2017.2750918
  20. 20. Floris, Atzori, L., & Ginesu, G. (2014). Addressing un-interoperability issues in QoE models: Is a layered modelling effective? In IEEE International Conference on Communications Workshops (ICC), (pp. 563–568), 10–14 June 2014, Sydney, NSW.. DOI: 10.1109/ICCW.2014.6881258
  21. 21. Rehman Laghari, K.U., & Connelly, K. (2012). Toward Total Quality of Experience: A QoE Model in a Communication Ecosystem. IEEE Communications Magazine, 50 (4), 58–65. DOI: 10.1109/MCOM.2012.6178834
  22. 22. Seppänen, J., Varela, M., & Sgora, A. (2014). An Autonomous QoE-driven Network Management Framework. Journal of Visual Communication and Image Representation, 25 (3), 565–577.
  23. 23. ITU-T G.1070. (2012). Opinion Model for Video-Telephony Applications.
  24. 24. Yevdokymenko, M. (2019). Routing tensor model with providing multimedia quality. In International Scientific-Practical Conference Problems of Infocommunications. Science and Technology (PIC S&T), (pp. 1–4), 8–11 October 2019, Kyiv, Ukraine.
  25. 25. Kron, G. (1949). Tensor Analysis of Networks. J. Wiley and Sons.
  26. 26. Ahmad, A., Floris, A., & Atzori, L. (2016). QoE-centric Service Delivery: A Collaborative Approach among OTTs and ISPs. Computer Networks, 110, 168–179.
  27. 27. Georgopoulos, P., Elkhatib, Y., Broadbent, M., Mu, M., & Race, N. (2013). Towards network-wide QoE fairness using openflow-assisted adaptive video streaming. In SIGCOMM Workshop on Future Human-Centric Multimedia Networking, (pp. 15–20), 16 August 2013, Hong Kong, China.
  28. 28. Patlins, A., & Kunicina, N. (2014). The use of remote sensing technology for the passenger traffic flow dynamics study and analysis. In Transport Means – Proceedings of the International Conference, (pp. 63–66), 23–24 October 2014, Kaunas, Lithuania.
DOI: https://doi.org/10.2478/lpts-2021-0045 | Journal eISSN: 2255-8896 | Journal ISSN: 0868-8257
Language: English
Page range: 46 - 60
Published on: Dec 7, 2021
In partnership with: Paradigm Publishing Services
Publication frequency: 6 issues per year

© 2021 O. Lemeshko, M. Yevdokymenko, O. Yeremenko, N. Kunicina, A. Ziravecka, published by Institute of Physical Energetics
This work is licensed under the Creative Commons Attribution-NonCommercial-NoDerivatives 4.0 License.