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2024 ITU Kaleidoscope Academic Conference




               computing networks,” IEEE Transactions on Wireless  [15] S. Mao, N. Zhang, L. Liu, J. Wu, M. Dong, K. Ota,
               Communications, vol. 19, no. 5, pp. 3170–3184, 2020.  T. Liu, and D. Wu, “Computation rate maximization
                                                                  for intelligent reflecting surface enhanced wireless
            [5] Q. Wu and R. Zhang,     “Towards smart and        powered mobile edge computing networks,” IEEE
               reconfigurable environment:  Intelligent reflecting  Transactions on Vehicular Technology, vol. 70, no. 10,
               surface aided wireless network,” IEEE communications  pp. 10 820–10 831, 2021.
               magazine, vol. 58, no. 1, pp. 106–112, 2019.
                                                              [16] S. Bi and Y. J. Zhang, “Computation rate maximization
            [6] S. Hong,  C. Pan,  H. Ren,   K. Wang,   and       for wireless powered mobile-edge computing with
               A. Nallanathan, “Artificial-noise-aided secure mimo  binary computation offloading,” IEEE Transactions
               wireless communications via intelligent reflecting  on Wireless Communications, vol. 17, no. 6, pp.
               surface,” IEEE Transactions on Communications,     4177–4190, 2018.
               vol. 68, no. 12, pp. 7851–7866, 2020.
                                                              [17] M. Zeng, X. Li, G. Li, W. Hao, and O. A. Dobre, “Sum
                                                                  rate maximization for irs-assisted uplink noma,” IEEE
            [7] Q. Wu,  S. Zhang,  B. Zheng,   C. You,  and
                                                                  Communications Letters, vol. 25, no. 1, pp. 234–238,
               R. Zhang, “Intelligent reflecting surface-aided wireless
                                                                  2020.
               communications: A tutorial,” IEEE transactions on
               communications, vol. 69, no. 5, pp. 3313–3351, 2021.  [18] Y. Wang, M. Sheng, X. Wang, L. Wang, and
                                                                  J. Li, “Mobile-edge computing: Partial computation
            [8] T. Bai, C. Pan, Y. Deng, M. Elkashlan, A. Nallanathan,  offloading using dynamic voltage scaling,” IEEE
               and L. Hanzo, “Latency minimization for intelligent  Transactions on Communications, vol. 64, no. 10, pp.
               reflecting surface aided mobile edge computing,” IEEE  4268–4282, 2016.
               Journal on Selected Areas in Communications, vol. 38,
                                                              [19] X.  Yu,  F.  Xu,  J.  Cai,  X.-y.  Dang,  and
               no. 11, pp. 2666–2682, 2020.
                                                                  K. Wang, “Computation efficiency optimization for
            [9] C. Sun, W. Ni, Z. Bu, and X. Wang, “Energy        millimeter-wave mobile edge computing networks with
               minimization for intelligent reflecting surface-assisted  noma,” IEEE Transactions on Mobile Computing, 2022.
               mobile edge computing,” IEEE Transactions on   [20] X. Hu, K.-K. Wong, and Y. Zhang, “Wireless-powered
               Wireless Communications,  vol. 21,  no. 8,  pp.    edge computing with cooperative uav: Task, time
               6329–6344, 2022.                                   scheduling and trajectory design,” IEEE Transactions
                                                                  on Wireless Communications, vol. 19, no. 12, pp.
           [10] Z. Chu, P. Xiao, M. Shojafar, D. Mi, J. Mao, and
                                                                  8083–8098, 2020.
               W. Hao, “Intelligent reflecting surface assisted mobile
               edge computing for internet of things,” IEEE Wireless  [21] B. Ning, Z. Chen, W. Chen, and J. Fang, “Beamforming
               Communications Letters, vol. 10, no. 3, pp. 619–623,  optimization for intelligent reflecting surface assisted
               2020.                                              mimo: A sum-path-gain maximization approach,” IEEE
                                                                  Wireless Communications Letters, vol. 9, no. 7, pp.
           [11] X. Pei, Y. Chen, M. Wen, H. Yu, E. Panayirci, and  1105–1109, 2020.
               H. V. Poor, “Next-generation multiple access based on
                                                              [22] M. Zeng, E. Bedeer, O. A. Dobre, P. Fortier, Q.-V. Pham,
               noma with power level modulation,” IEEE Journal on
                                                                  and W. Hao, “Energy-efficient resource allocation
               Selected Areas in Communications, vol. 40, no. 4, pp.
                                                                  for irs-assisted multi-antenna uplink systems,” IEEE
               1072–1083, 2022.
                                                                  Wireless Communications Letters, vol. 10, no. 6, pp.
           [12] F. Zhou, C. You, and R. Zhang, “Delay-optimal     1261–1265, 2021.
               scheduling for irs-aided mobile edge computing,” IEEE  [23] G. Li, M. Zeng, D. Mishra, L. Hao, Z. Ma, and O. A.
               wireless communications letters, vol. 10, no. 4, pp.  Dobre, “Energy-efficient design for irs-empowered
               740–744, 2020.                                     uplink mimo-noma systems,” IEEE Transactions on
                                                                  Vehicular Technology, vol. 71, no. 9, pp. 9490–9500,
           [13] Z. Li, M. Chen, Z. Yang, J. Zhao, Y. Wang,
                                                                  2022.
               J. Shi, and C. Huang, “Energy efficient reconfigurable
               intelligent surface enabled mobile edge computing  [24] M. Grant and S. Boyd, “Cvx: Matlab software for
               networks with noma,” IEEE Transactions on Cognitive  disciplined convex programming, version 2.1,” 2014.
               Communications and Networking, vol. 7, no. 2, pp.
                                                              [25] Z.-Q. Luo, W.-K. Ma, A. M.-C. So, Y. Ye, and S. Zhang,
               427–440, 2021.
                                                                  “Semidefinite relaxation of quadratic optimization
                                                                  problems,” IEEE Signal Processing Magazine, vol. 27,
           [14] M. Zeng, A. Yadav, O. A. Dobre, G. I. Tsiropoulos, and
                                                                  no. 3, pp. 20–34, 2010.
               H. V. Poor, “Capacity comparison between mimo-noma
               and mimo-oma with multiple users in a cluster,” IEEE  [26] K. Kreutz-Delgado, “The complex gradient operator
               Journal on Selected Areas in Communications, vol. 35,  and the cr-calculus,” arXiv preprint arXiv:0906.4835,
               no. 10, pp. 2413–2424, 2017.                       2009.




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