Optimizing 5G Power Allocation With Device-to-Device Communication: A Gale-Shapley Algorithm Approach

被引:9
作者
Alruwaili, Musaad [1 ]
Kim, Junghwan [1 ]
Oluoch, Jared [1 ]
机构
[1] Univ Toledo, Coll Engn, Toledo, OH 43606 USA
关键词
Device-to-device communication; 5G mobile communication; Resource management; NOMA; Interference; Energy efficiency; Base stations; Power system planning; Device-to-device (D2D); Gale-Shapley matching theory; non-orthogonal multiple access (NOMA); power allocation; 5G; NONORTHOGONAL MULTIPLE-ACCESS;
D O I
10.1109/ACCESS.2024.3369597
中图分类号
TP [自动化技术、计算机技术];
学科分类号
0812 ;
摘要
Creating innovative strategies for optimizing network resources is paramount in response to the growing demand for fast and reliable data transmission. This study delves into a unique method to enhance power allocation and throughput in 5G cellular systems. We aim to conserve resources and ensure top-tier communication through direct terminal connections using the Device-to-Device protocol and a modified Gale-Shapley algorithm. Our approach's robustness is tested in two scenarios: firstly, in standard 5G operations that focus on minimizing energy use while maximizing signal reliability, evaluating parameters like losses, gain, proximity of transmitters to receivers, and capacity using the Gale-Shapley algorithm. Second, we simulate a disaster-induced network disruption in which D2D devices autonomously establish connections without functional base stations. Our findings from detailed MATLAB simulations highlight that D2D communications within the Millimeter Wave frequency band consistently maintain reliable relationships, achieving network capacity rates between 150 and 180 Mbps under regular conditions and 110 to 140 Mbps during disaster scenarios. This underscores our approach's potential to significantly enhance 5G system performance and reliability.
引用
收藏
页码:30781 / 30795
页数:15
相关论文
共 25 条
[1]   Millimeter Wave Channel Modeling and Cellular Capacity Evaluation [J].
Akdeniz, Mustafa Riza ;
Liu, Yuanpeng ;
Samimi, Mathew K. ;
Sun, Shu ;
Rangan, Sundeep ;
Rappaport, Theodore S. ;
Erkip, Elza .
IEEE JOURNAL ON SELECTED AREAS IN COMMUNICATIONS, 2014, 32 (06) :1164-1179
[2]   Distributed Denial of Service Attacks against Cloud Computing Environment: Survey, Issues, Challenges and Coherent Taxonomy [J].
Alashhab, Ziyad R. ;
Anbar, Mohammed ;
Singh, Manmeet Mahinderjit ;
Hasbullah, Iznan H. ;
Jain, Prateek ;
Al-Amiedy, Taief Alaa .
APPLIED SCIENCES-BASEL, 2022, 12 (23)
[3]   Resource allocation for downlink non-orthogonal multiple access in joint transmission coordinated multi-point networks [J].
Awad, Mohamad Khattar ;
Baidas, Mohammed W. ;
El-Amine, Ahmad A. .
COMPUTER COMMUNICATIONS, 2021, 173 :134-149
[4]  
Bahadori N, 2018, WIREL TELECOMM SYMP
[5]  
Benjebbour A, 2013, IEEE GLOBE WORK, P66, DOI 10.1109/GLOCOMW.2013.6824963
[6]   Five Disruptive Technology Directions for 5G [J].
Boccardi, Federico ;
Heath, Robert W., Jr. ;
Lozano, Angel ;
Marzetta, Thomas L. ;
Popovski, Petar .
IEEE COMMUNICATIONS MAGAZINE, 2014, 52 (02) :74-80
[7]   A Stochastic Geometric Analysis of Device-to-Device Communications Operating Over Generalized Fading Channels [J].
Chun, Young Jin ;
Cotton, Simon L. ;
Dhillon, Harpreet S. ;
Ghrayeb, Ali ;
Hasna, Mazen O. .
IEEE TRANSACTIONS ON WIRELESS COMMUNICATIONS, 2017, 16 (07) :4151-4165
[8]   A Survey on Non-Orthogonal Multiple Access for 5G Networks: Research Challenges and Future Trends [J].
Ding, Zhiguo ;
Lei, Xianfu ;
Karagiannidis, George K. ;
Schober, Robert ;
Yuan, Jinhong ;
Bhargava, Vijay K. .
IEEE JOURNAL ON SELECTED AREAS IN COMMUNICATIONS, 2017, 35 (10) :2181-2195
[9]  
Panicker JG, 2021, Arxiv, DOI arXiv:2108.10534
[10]  
Giordani M., 2019, P IEEE 2 CONN AUT VE, P1