Beam Allocation and Power Optimization for Energy-Efficiency in Multiuser mmWave Massive MIMO System
Abstract
:1. Introduction
- In this paper, we proposed beam allocation and power optimization algorithm to enhance EE without obvious system performance loss. First, the problem of beam allocation and power optimization is formulated as a multivariate mixed-integer non-linear programming problem. Second, because of the non-convexity of this problem, we decompose it into two sub-problems, which are beam allocation and power optimization;
- The beam allocation problem is solved by a convex optimization technique. For power optimization, first, the non-convex problem is converted into a convex problem by using a quadratic transformation scheme. After that, we used Lagrange dual and sub-gradient methods to solve the convex problem;
- Our experiments demonstrate that the proposed algorithm performs almost identical to ES method, and surpasses both the greedy beam allocation method and the suboptimal beam allocation scheme in terms of EE and average service ratio.
2. System Model and Problem Formulation
2.1. System Model
2.2. Problem Formulation
3. Beam Allocation and Power Optimization Algorithm
3.1. Beam Allocation
3.2. Power Optimization
3.3. Service Ratio
Algorithm 1 Proposed algorithm |
|
4. Simulation Results and Analsis
4.1. Performance Evaluation
4.2. Computational Complexity Analysis
5. Conclusions
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
Sample Availability
Abbreviations
5G | Fifth-Generation |
MIMO | Multiple-Input Multiple-Output |
ES | Exhaustive Search |
mmWave | Millimeter Wave |
RF | Radio-Frequency |
BS | Base Staion |
EE | Energy-Efficiency |
LOS | Line of Sight |
UE | User |
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Samples of the compounds are available from the authors. |
Parameters | Values |
---|---|
No. of UEs in cell | 10∼50 |
Maximum number of BS antennas | 256 |
Cell radius | 150 m |
mmWave frequency | 28 GHz |
Maximum transmission power | 43 dBm |
convergence accuracy | 0.001 |
2 bits/s/Hz | |
maximum number of iterations | 30 |
power consumption of RF circuit | 250 mW |
Noise spectral density | −174 dBm/Hz |
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Maimaiti, S.; Chuai, G.; Gao, W.; Zhang, J. Beam Allocation and Power Optimization for Energy-Efficiency in Multiuser mmWave Massive MIMO System. Sensors 2021, 21, 2550. https://doi.org/10.3390/s21072550
Maimaiti S, Chuai G, Gao W, Zhang J. Beam Allocation and Power Optimization for Energy-Efficiency in Multiuser mmWave Massive MIMO System. Sensors. 2021; 21(7):2550. https://doi.org/10.3390/s21072550
Chicago/Turabian StyleMaimaiti, Saidiwaerdi, Gang Chuai, Weidong Gao, and Jinxi Zhang. 2021. "Beam Allocation and Power Optimization for Energy-Efficiency in Multiuser mmWave Massive MIMO System" Sensors 21, no. 7: 2550. https://doi.org/10.3390/s21072550
APA StyleMaimaiti, S., Chuai, G., Gao, W., & Zhang, J. (2021). Beam Allocation and Power Optimization for Energy-Efficiency in Multiuser mmWave Massive MIMO System. Sensors, 21(7), 2550. https://doi.org/10.3390/s21072550