Limit Portable Computing for Non-Orthogonal Data Transmission Access using Difference Time
DOI:
https://doi.org/10.58564/IJCCN.1.2.2025.7Keywords:
portable computing, data transmission, difference timeAbstract
Non orthogonal multiple accesses (NOMA) [3] have the ability for efficiently enhancing the system’s spectral efficiency when multiple users are assigned with the same resources. MEC systems used NOMA for reducing task delay and the consumption of energy in a few works [4]. In mobile devices, the computing ability is enhanced when using multi-access edge computing (MEC), whereas high data rates are provided when using NOMA. To combine the two might be beneficial for the networks with spectrum and energy efficiency for minimizing the transaction time difference related to 2 paired users of NOMA offloading data into the servers of MEC through enhancing the transmission power and computational resources of severs by means of the approach of the successive convex approximation. Furthermore, the transaction time equalization for the paired users decreases waste of computational and frequency resources, and enhances effective system throughput to 19% on average.
References
[1] S. Qureshi, S. A. Hassan, and D. N. K. Jayakody, “Divide-and-allocate: An uplink successive bandwidth division NOMA system,” Transactions
on Emerging Telecommunications Technologies, vol. 29, no. 1, p. e3216, 2018.
[2] Y. Wang, M. Sheng, X. Wang, L. Wang, and J. Li, “Mobile-edge computing: Partial computation offloading using dynamic voltage scaling,”IEEE Transactions on Communications, vol. 64, no. 10, pp. 4268–4282, 2016.
[3] Y. C. Hu, M. Patel, D. Sabella, N. Sprecher, and V. Young, “Mobile edge
computing—a key technology towards 5g,” ETSI white paper, vol. 11, no. 11, pp. 1–16, 2015.
[4] Z. Ding, D. W. K. Ng, R. Schober, and H. V. Poor, “Delay minimization for NOMA-MEC offloading,” IEEE Signal Processing Letters, vol. 25, no. 12, pp. 1875–1879, 2018.
[5] A. Kiani and N. Ansari, “Edge computing aware noma for 5g networks,”
IEEE Internet of Things Journal, vol. 5, no. 2, pp. 1299–1306, 2018.
[6] Z. Yang, J. Hou, and M. Shikh-Bahaei, “Energy efficient resource allocation for mobile-edge computation networks with noma,” in 2018 IEEE Globecom Workshops (GC Wkshps), pp. 1–7, IEEE, 2018.
[7] Y. Pan, M. Chen, Z. Yang, N. Huang, and M. Shikh-Bahaei, “Energyefficient noma-based mobile edge computing offloading,” IEEE Communications Letters, vol. 23, no. 2, pp. 310–313, 2019.
[8] Z. Ding, J. Xu, O. A. Dobre, and V. Poor, “Joint power and time
allocation for noma-mec offloading,” IEEE Transactions on Vehicular Technology, 2019.
[9] Z. Yang, J. Hou, and M. Shikh-Bahaei, “Resource allocation in fullduplex mobile-edge computing systems with noma and energy harvesting,” arXiv preprint arXiv:1807.11846, 2018.
[10] M. S. Ali, H. Tabassum, and E. Hossain, “Dynamic user clustering and power allocation for uplink and downlink non-orthogonal multiple access (noma) systems,” IEEE access, vol. 4, pp. 6325–6343, 2016.
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Copyright (c) 2025 Zainab Abbas Fadhil Sciences, Saad Abbas Fadhil Sciences, A.S. Titovtsev Sciences

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