Communication technology and the prospect of 5G

Research Article
Open access

Communication technology and the prospect of 5G

Songyu Lei 1*
  • 1 Guilin University Of Electronic Technology, Guilin, Guangxi , 541004, China    
  • *corresponding author 2000210313@mails.guet.edu.cn
Published on 14 June 2023 | https://doi.org/10.54254/2755-2721/6/20230781
ACE Vol.6
ISSN (Print): 2755-273X
ISSN (Online): 2755-2721
ISBN (Print): 978-1-915371-59-1
ISBN (Online): 978-1-915371-60-7

Abstract

Since the turn of the twenty-first century, our civilization's expansion has accelerated dramatically. Science and technology are becoming increasingly refined and intelligent. In the field of communication, five generations have existed. It is utilized in many regions of the globe. A range of modern communication technologies have made it more practical for both individuals and groups. This essay will cover the history of communication as well as the essential concepts underlying the development of crucial 5g technologies like as non-orthogonal multiple access (noma), ultra-dense hetnets and massive mimo(multiple-input multiple-output). The majority of this paper's sections relate to the sections listed in the table of contents: general characteristic, benefit, development, and outlook. Also what the paper covered includes the mimo-noma system, which combines mimo with noma. For the tendency of it,we can continue to investigate this potential method. In its conclusion, the research examines the possibilities for future growth in the communications industry. Despite some disadvantages, these technologies offer numerous merits. As communication technology advances, artificial intelligence, the internet of things, transportation, and other industries will alter.

Keywords:

Communication Technology, 5G, MIMO, NOMA

Lei,S. (2023). Communication technology and the prospect of 5G. Applied and Computational Engineering,6,176-182.
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References

[1]. International Journal of Frontiers in Engineering Technology, 2021. Intelligent Logistics Tracking System Based on Wireless Sensor Network. 3(10).

[2]. MIMS, III, F., 1980. Alexander Graham Bell and the Photophone: The Centennial of the Invention of Light-Wave Communications, 1880–1980. Optics News, 6(1), p.8.

[3]. Zeng, J., Lv, T., Liu, R., Su, X., Peng, M., Wang, C. And Mei, J., 2018. Investigation on Evolving Single-Carrier NOMA Into Multi-Carrier NOMA in 5G. IEEE Access, 6, pp.48268-48288.

[4]. Larsson, E., Edfors, O., Tufvesson, F. And Marzetta, T., 2014. Massive MIMO for next generation wireless systems. IEEE Communications Magazine, 52(2), pp.186-195.

[5]. Li, Y., Zhang, Y., Luo, K., Jiang, T., Li, Z. And Peng, W., 2018. Ultra-Dense hetnets Meet Big Data: Green Frameworks, Techniques, and Approaches. IEEE Communications Magazine, 56(6), pp.56-63.

[6]. Yifei, Y. And Longming, Z., 2014. Application scenarios and enabling technologies of 5G. China Communications, 11(11), pp.69-79.

[7]. Marzetta, T., 2015. Massive MIMO: An Introduction. Bell Labs Technical Journal, 20, pp.11-22.

[8]. Rusek, F., Persson, D., Buon Kiong Lau, Larsson, E., Marzetta, T. And Tufvesson, F., 2013. Scaling Up MIMO: Opportunities and Challenges with Very Large Arrays. IEEE Signal Processing Magazine, 30(1), pp.40-60.

[9]. Albreem, M., Juntti, M. And Shahabuddin, S., 2019. Massive MIMO Detection Techniques: A Survey. IEEE Communications Surveys & Tutorials, 21(4), pp.3109-3132.

[10]. Ding, Z., Schober, R. And Poor, H., 2016. A General MIMO Framework for NOMA Downlink and Uplink Transmission Based on Signal Alignment. IEEE Transactions on Wireless Communications, 15(6), pp.4438-4454.

[11]. Shin, W., Vaezi, M., Lee, B., Love, D., Lee, J. And Poor, H., 2017. Coordinated Beamforming for Multi-Cell MIMO-NOMA. IEEE Communications Letters, 21(1), pp.84-87.

[12]. Chen, N., Sun, S., Kadoch, M. And Rong, B., 2016. SDN Controlled mmwave Massive MIMO Hybrid Precoding for 5G Heterogeneous Mobile Systems. Mobile Information Systems, 2016, pp.1-10.


Cite this article

Lei,S. (2023). Communication technology and the prospect of 5G. Applied and Computational Engineering,6,176-182.

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The datasets used and/or analyzed during the current study will be available from the authors upon reasonable request.

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About volume

Volume title: Proceedings of the 3rd International Conference on Signal Processing and Machine Learning

ISBN:978-1-915371-59-1(Print) / 978-1-915371-60-7(Online)
Editor:Omer Burak Istanbullu
Conference website: http://www.confspml.org
Conference date: 25 February 2023
Series: Applied and Computational Engineering
Volume number: Vol.6
ISSN:2755-2721(Print) / 2755-273X(Online)

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References

[1]. International Journal of Frontiers in Engineering Technology, 2021. Intelligent Logistics Tracking System Based on Wireless Sensor Network. 3(10).

[2]. MIMS, III, F., 1980. Alexander Graham Bell and the Photophone: The Centennial of the Invention of Light-Wave Communications, 1880–1980. Optics News, 6(1), p.8.

[3]. Zeng, J., Lv, T., Liu, R., Su, X., Peng, M., Wang, C. And Mei, J., 2018. Investigation on Evolving Single-Carrier NOMA Into Multi-Carrier NOMA in 5G. IEEE Access, 6, pp.48268-48288.

[4]. Larsson, E., Edfors, O., Tufvesson, F. And Marzetta, T., 2014. Massive MIMO for next generation wireless systems. IEEE Communications Magazine, 52(2), pp.186-195.

[5]. Li, Y., Zhang, Y., Luo, K., Jiang, T., Li, Z. And Peng, W., 2018. Ultra-Dense hetnets Meet Big Data: Green Frameworks, Techniques, and Approaches. IEEE Communications Magazine, 56(6), pp.56-63.

[6]. Yifei, Y. And Longming, Z., 2014. Application scenarios and enabling technologies of 5G. China Communications, 11(11), pp.69-79.

[7]. Marzetta, T., 2015. Massive MIMO: An Introduction. Bell Labs Technical Journal, 20, pp.11-22.

[8]. Rusek, F., Persson, D., Buon Kiong Lau, Larsson, E., Marzetta, T. And Tufvesson, F., 2013. Scaling Up MIMO: Opportunities and Challenges with Very Large Arrays. IEEE Signal Processing Magazine, 30(1), pp.40-60.

[9]. Albreem, M., Juntti, M. And Shahabuddin, S., 2019. Massive MIMO Detection Techniques: A Survey. IEEE Communications Surveys & Tutorials, 21(4), pp.3109-3132.

[10]. Ding, Z., Schober, R. And Poor, H., 2016. A General MIMO Framework for NOMA Downlink and Uplink Transmission Based on Signal Alignment. IEEE Transactions on Wireless Communications, 15(6), pp.4438-4454.

[11]. Shin, W., Vaezi, M., Lee, B., Love, D., Lee, J. And Poor, H., 2017. Coordinated Beamforming for Multi-Cell MIMO-NOMA. IEEE Communications Letters, 21(1), pp.84-87.

[12]. Chen, N., Sun, S., Kadoch, M. And Rong, B., 2016. SDN Controlled mmwave Massive MIMO Hybrid Precoding for 5G Heterogeneous Mobile Systems. Mobile Information Systems, 2016, pp.1-10.