80
Views
3
CrossRef citations to date
0
Altmetric
Communications

Downlink NOMA Based Transmission Protocol for Performance Improvement in Time-Varying Wireless Network

&

References

  • S. Chakraborty Shyam, E. Yli-Juuti, and M. Liinaharja, “An ARQ scheme with packet combining,” IEEE Commun. Lett., Vol. 2, no. 7, pp. 200–202, 1998.
  • S. Chakraborty Shyam, E. Yli-Juuti, and M. Liinaharja, “An adaptive ARQ scheme with packet combining for time varying channels,” IEEE Commun. Lett., Vol. 3, no. 2, pp. 52–54, 1999.
  • S. Chakraborty Shyam, and M. Liinaharja, “An exact analysis of an adaptive GBN scheme with sliding observation interval mechanism,” IEEE Commun. Lett., Vol. 3, no. 5, pp. 151–153, 1999.
  • T. Bhunia Chandan. “Modified packet combining using error forecasting decoding to control error,” in Third International Conference on Information Technology and Applications (ICITA’05), vol. 2. IEEE, 2005, pp. 641–646.
  • T. Bhunia Chandan. “Packet reversed packet combining scheme,” in 7th IEEE International Conference on Computer and Information Technology. CIT, 2007, pp. 447–451.
  • T. Bhunia Chandan. “Modified packet combining using error forecasting decoding to control error,” in Third International Conference on Information Technology and Applications (ICITA’05), vol. 2. IEEE, 2005, pp. 641–646.
  • H. Dubois-Ferriere, D. Estrin, and M. Vetterli. “Packet combining in sensor networks,” in Proceedings of the 3rd international conference on Embedded networked sensor systems, 2005, pp. 102–115.
  • L. Deng Sheng, X. Ming, and L. ShaoQian, “Packet combining based on cross-packet coding,” Sci. China Inform. Sci., Vol. 56, no. 2, pp. 1–10, 2013.
  • B. Wicker Stephen, “Adaptive rate error control through the use of diversity combining and majority-logic decoding in a hybrid-ARQ protocol,” IEEE Trans. Commun., Vol. 39, no. 3, pp. 380–385, 1991.
  • Y.-W. Leung, “Aggressive packet combining for error control in wireless networks,” IEICE Trans. Commun., Vol. 83, no. 2, pp. 380–385, 2000.
  • J. Choi, “On HARQ-IR for downlink NOMA systems,” IEEE Trans.Commun., Vol. 64, no. 8, pp. 3576–3584, 2016.
  • D. Cai, Z. Ding, P. Fan, and Z. Yang, “On the performance of NOMA with hybrid ARQ,” IEEE Trans. Veh. Technol., Vol. 67, no. 10, pp. 10033–10038, 2018.
  • Z. Shi, S. Ma, H. ElSawy, G. Yang, and M.-S. Alouini, “Cooperative HARQ-assisted NOMA scheme in large-scale D2D networks,” IEEE Trans. Commun., Vol. 66, no. 9, pp. 4286–4302, 2018.
  • Z. Xiang, W. Yang, G. Pan, Y. Cai, Y. Song, and Y. Zou, “Secure transmission in HARQ-assisted non-orthogonal multiple access networks,” IEEE Trans. Inf. Forensics Secur., Vol. 15, pp. 2171–2182, 2019.
  • Z. Xiang, W. Yang, Y. Cai, Z. Ding, and Y. Song, “Secure transmission design in HARQ assisted cognitive NOMA networks,” IEEE Trans. Inf. Forensics Secur., Vol. 15, pp. 2528–2541, 2020.
  • Z. Shi, C. Zhang, Y. Fu, H. Wang, G. Yang, and S. Ma, “Achievable diversity order of HARQ-aided downlink NOMA systems,” IEEE Trans. Veh. Technol., Vol. 69, no. 1, pp. 471–487, 2019.
  • M. 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.
  • W. Liang, Z. Ding, Y. Li, and L. Song, “User pairing for downlink non-orthogonal multiple access networks using matching algorithm,” IEEE Trans. Commun., Vol. 65, no. 12, pp. 5319–5332, 2017.
  • H. Zhang, D.-K. Zhang, W.-X. Meng, and C. Li. “User pairing algorithm with SIC in non-orthogonal multiple access system,” in 2016 International Conference on Communications (ICC). IEEE, pp. 1–6.
  • Y. Chi, L. Liu, G. Song, C. Yuen, Y. L. Guan, and Y. Li, “Practical MIMO-NOMA: low complexity and capacity-approaching solution,” IEEE Trans. Wireless Commun., Vol. 17, no. 9, pp. 6251–6264, 2018.
  • L. Liu, Y. Chi, C. Yuen, Y. L. Guan, and Y. Li, “Capacity-achieving MIMO-NOMA: iterative LMMSE detection,” IEEE Trans. Signal Process., Vol. 67, no. 7, pp. 1758–1773, 2019.
  • Y. Saito, Y. Kishiyama, A. Benjebbour, T. Nakamura, A. Li, and K. Higuchi. “Non-orthogonal multiple access (NOMA) for cellular future radio access,” in 2013 IEEE 77th vehicular technology conference (VTC Spring). IEEE, 2013, pp. 1–5.
  • B. Kimy, et al. “Non-orthogonal multiple access in a downlink multiuser beamforming system,” in MILCOM 2013-2013 IEEE Military Communications Conference. IEEE, 2013, pp. 1278–1283.
  • Z. Ding, F. Adachi, and H. Vincent Poor, “The application of MIMO to non-orthogonal multiple access,” IEEE Trans. Wireless Commun., Vol. 15, no. 1, pp. 537–552, 2015.
  • D. Tse, and P. Viswanath. Fundamentals of wireless communication. Berkeley: Cambridge University Press, 2005.
  • J. An, K. Yang, J. Wu, N. Ye, S. Guo, and Z. Liao, “Achieving sustainable ultra-dense heterogeneous networks for 5G,” IEEE Commun. Mag., Vol. 55, no. 12, pp. 84–90, 2017.
  • X. Gao, P. Wang, D. Niyato, K. Yang, and J. An. “An auction-based time scheduling mechanism for backscatter-aided RF-powered cognitive radio networks,” in 2018 IEEE International Conference on Internet of Things (iThings) and IEEE Green Computing and Communications (GreenCom) and IEEE Cyber, Physical and Social Computing (CPSCom) and IEEE Smart Data (SmartData). IEEE, 2018, pp. 301–307.
  • Y. Kai, N. Yang, N. Ye, M. Jia, Z. Gao, and R. Fan, “Non-orthogonal multiple access: achieving sustainable future radio access,” IEEE Commun. Mag., Vol. 57, no. 2, pp. 116–121, 2018.
  • Y. Sun, D. W. K. Ng, Z. Ding, and R. Schober. “Optimal joint power and subcarrier allocation for MC-NOMA systems,” in 2016 IEEE Global Communications Conference (GLOBECOM). IEEE, 2016, pp. 1–6.
  • H. Tullberg, et al., “The METIS 5G system concept: meeting the 5G requirements,” IEEE Commun. Mag., Vol. 54, no. 12, pp. 132–139, 2016.
  • H. Wang, R. Song, and S.-H. Leung, “Throughput analysis of interference alignment for a general centralized limited feedback model,” IEEE Trans. Veh. Technol., Vol. 65, no. 10, pp. 8775–8781, 2015.
  • Y. Sun, D. W. K. Ng, Z. Ding, and R. Schober, “Optimal joint power and subcarrier allocation for full-duplex multicarrier non-orthogonal multiple access systems,” IEEE Trans. Commun., Vol. 65, no. 3, pp. 1077–1091, 2017.
  • F. Mokhtari, et al., “Download elastic traffic rate optimization via NOMA protocols,” IEEE Trans. Veh. Technol., Vol. 68, no. 1, pp. 713–727, 2018.
  • P. Xu, Z. Ding, X. Dai, and H. Vincent Poor. “NOMA: an information theoretic perspective.” arXiv preprint arXiv:1504.07751, 2015, pp. 1–6.
  • Z. Yang, Z. Ding, P. Fan, and N. Al-Dhahir, “A general power allocation scheme to guarantee quality of service in downlink and uplink NOMA systems,” IEEE Trans. Wireless Commun., Vol. 15, no. 11, pp. 7244–7257, 2016.
  • Z. Ding, R. Schober, and H. Vincent Poor, “A general MIMO framework for NOMA downlink and uplink transmission based on signal alignment,” IEEE Trans. Wireless Commun., Vol. 15, no. 6, pp. 4438–4454, 2016.
  • N. Zhang, J. Wang, G. Kang, and Y. Liu, “Uplink nonorthogonal multiple access in 5G systems,” IEEE Commun. Lett., Vol. 20, no. 3, pp. 458–461, 2016.
  • H. Tabassum, E. Hossain, and J. Hossain, “Modeling and analysis of uplink non-orthogonal multiple access in large-scale cellular networks using poisson cluster processes,” IEEE Trans. Commun., Vol. 65, no. 8, pp. 3555–3570, 2017.
  • X. Yan, J. Ge, Y. Zhang, and L. Gou, “NOMA-based multiple-antenna and multiple-relay networks over Nakagami-m fading channels with imperfect CSI and SIC error,” IET Commun., Vol. 12, no. 17, pp. 2087–2098, 2018.
  • Z. Shi, S. Ma, H. ElSawy, G. Yang, and M.-S. Alouini, “Cooperative HARQ-assisted NOMA scheme in large-scale D2D networks,” IEEE Trans. Commun., Vol. 66, no. 9, pp. 4286–4302, 2018.
  • Y. Bulo, Y. Saring, and C. T. Bhunia, “APC-PC combined scheme in gilbert two state model: proposal and study,” J. Inst. Eng., Vol. 98, no. 2, pp. 239–243, 2017.
  • T. Bhunia Chandan. “A few modified ARQ techniques,” in Proceedings of the international conference on communications, computers & devices, ICCCD-2000, vol. 2, pp. 705–708.
  • A. Sastry, “Improving automatic repeat-request (ARQ) performance on satellite channels under high error rate conditions,” IEEE Trans. Commun., Vol. 23, no. 4, pp. 436–439, 1975.
  • T. BhuniaChandan, “ARQ review and modifications,” IETE Tech. Rev., Vol. 18, no. 5, pp. 381–401, 2001.
  • S. Lin, D. J. Costello, and M. J. Miller, “Automatic-repeat-request error-control schemes,” IEEE Commun. Mag., Vol. 22, no. 12, pp. 5–17, 1984.
  • T. Bhunia Chandan, and A. Chowdhury. “Performance analysis of ARQ techniques used in computer communication using delay as a parameter,” in Proceedings of conference on computer networking and multimedia (COMNAM-2000), Jadavpur University, Calcutta, India, 2000, pp. 22–24.
  • T. Bhunia Chandan, and A. Chowdhury. “ARQ technique with variable number of copies in retransmission,” in Proceedings of conference on computer networking and multimedia (COMNAM-2000), pp. 21–22.
  • T. Bhunia Chandan. “ARQ with two level coding with generalized parity and i (i>1) copies of parts in retransmission,” in Proceedings of National Conference on Data Communications (NCDC-2000), Computer Society of India, Chandigarh, India, vol. 19, 2000, pp. 7–8.
  • G. Caire, and D. Tuninetti, “The throughput of hybrid-ARQ protocols for the Gaussian collision channel,” IEEE Trans. Inf. Theory, Vol. 47, no. 5, pp. 1971–1988, 2001.
  • Z. Yu, C. Zhai, and J. Liu, “Non-orthogonal multiple access relaying with truncated ARQ,” IET Commun., Vol. 11, no. 4, pp. 514–521, 2017.
  • R. Kotaba, C. N. Manchon, N. M. K. Pratas, T. Balercia, and P. Popovski. “Improving spectral efficiency in URLLC via NOMA-based retransmissions,” in ICC 2019-2019 IEEE International Conference on Communications (ICC), IEEE, 2019, pp. 1–7.
  • R. Chandran, and S. R. Pal. “A novel retransmission scheme for HARQ enhancement in NOMA based LTE systems,” in 2019 IEEE Wireless Communications and Networking Conference (WCNC), 2019, pp. 1–5.
  • D. Cai, Z. Ding, P. Fan, and Z. Yang, “On the performance of NOMA with hybrid ARQ,” IEEE Trans. Veh. Technol., Vol. 67, no. 10, pp. 10033–10038, 2018.
  • S. Joshi, and R. K. Mallik. “Cooperative NOMA with AF relaying over Nakagami-m fading in a D2D network,” in 2019 IEEE 89th Vehicular Technology Conference (VTC2019-Spring), 2019, pp. 1–6.
  • B. Joshi Sandeep, R. Manoj, and S. P. Dash. “Buffer-aided AF cooperative relaying network with NOMA transmission scheme,” in 2020 IEEE International Conference on Advanced Networks and Telecommunications Systems (ANTS), 2020, pp. 1–6.
  • K. Chakraborty Swarnendu, R. S. Goswami, A. Bhunia, and C. T. Bhunia, “Three new investigations of aggressive packet combining to get high throughput,” Int. J. Comput. Appl., Vol. 81, no. 5, pp. 41–44, 2013.
  • Y. Bulo, M. Anju, and C. T. Bhunia, “ARQ technique with aggressive packet combining scheme for variable error rate channels to reduce the bandwidth and power consumption,” Int. J. Appl. Eng. Res., Vol. 11, no. 5, pp. 3181–3185, 2016.

Reprints and Corporate Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

To request a reprint or corporate permissions for this article, please click on the relevant link below:

Academic Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

Obtain permissions instantly via Rightslink by clicking on the button below:

If you are unable to obtain permissions via Rightslink, please complete and submit this Permissions form. For more information, please visit our Permissions help page.