Research on Energy Efficiency Optimization of Visible Light Communication Based on Non-Orthogonal Multiple Access
Abstract
:1. Introduction
- We formulate such a joint problem as a complex nonlinear EE optimization problem, which considers the non-negative constraint of an LED signal, per-LED optical power constraint, and minimum data rate constraint. The optimization problem can be solved in two steps, i.e., power allocation with known LED association and joint LA–PA;
- With the analysis of channel capacity, the EE optimization problem is converted into convex form, and then an iterative algorithm is designed to obtain the optimal power allocation with known LED association under the non-negative constraint, per-LED optical power constraint, and data rate requirement;
- Taking into account the non-negative constraint of a signal, per-LED optical power constraint, the power constraint required for SIC, and channel gain between the transceiver signals, the feasibility condition of the LED association is derived. The feasible LEDs that can achieve the maximum EE jointly with the former power allocation algorithm can be associated;
- Simulation results and performance comparisons illustrate the improved performance of the proposed scheme. Compared to the existing random clustering algorithm (RCA), traversal search clustering algorithm (TSCA), and pre-grouping clustering algorithm (PGCA) [26], the proposed LED association scheme achieves a significantly high EE gain. Compared to the existing fixed power allocation (FPA) [27] and fractional transmit power allocation (FTPA) [28], the simulation results show that the design of an efficient power allocation algorithm effectively improves the EE of NOMA-based VLC systems.
2. System Model
2.1. Channel Model
2.2. Signal Model
2.3. Channel Capacity Analysis
3. EE Optimization Problem Description and Solution
3.1. Problem Description
3.2. Problem Transformation
3.3. Problem Solution
Algorithm 1 Proposed EE maximization power allocation algorithm |
1: Initialize , the iteration number . 2: while do 3: Define convex approximation of as 4: . 5: Solve the convex problem 6: 7: 8: end while |
4. Joint LED Association and Power Allocation
- (a)
- The order of SIC in NOMA is usually based on the descending order of the channel gain, , where M is the number of LEDs in the system.
- (b)
- The light-emitting device can be associated together if the transmitted power belong to the condition of , which satisfies the maximum transmission power constraints, the power constraint required for SIC, and the power constraint of the DC bias condition. From , we can obtain
Algorithm 2 Proposed joint LED association and power allocation algorithm |
1: Initialize , , , , M, , . 2: while do 3: . . . . . 4: 5: while do 6: for to J do 7: if then 8: , . . . 9: ; 10: else 11: . 12: end if 13: end for 14: end while 15: 16: Calculate the EE using Algorithm 1. 17: while do 18: . . . . Go to . 19: if EE increases then 20: Reserve the set of and . 21: end if 22: . 23: end while 24: end while |
5. Results
6. Challenges and Future Directions for NOMA-Based VLC Networks
7. Conclusions
Author Contributions
Funding
Data Availability Statement
Conflicts of Interest
Appendix A
References
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Symbol | Parameter | Value |
---|---|---|
/(°) | Emission semi-angle of LED | 30 |
/W | Transmitted power of LED | 8 |
/(°) | Irradiance angle of LED | [30,60] |
/Mbps | Data rate requirement | |
/(°) | Receiver FOV | 30 |
/m | Linear distance interval of the LEDs and PD | [0.5:0.25:2] |
/ | Effective receiving area of PD | 1 |
n | Reflective index | 1.5 |
Gain of optical filter | 1.0 | |
N | Power multiplexing factor | 2 |
/dBm | Detection threshold at SIC receiver | 10 |
Aspects | TSCA | RCA | PGCA [25] |
---|---|---|---|
Principle | Exhaustive search | Random selection | Based on the channel gain difference |
Advantage | Good performance | Implement simply | Compromise between performance and simplicity |
Disadvantage | High complexity | Poor effect without considering the channel condition | Harder to choose an appropriate channel threshold interval |
Aspects | FPA [26] | FTPA [27] | FSPA |
---|---|---|---|
Principle | Set a fixed power distribution factor | Dynamic power allocation based on channel gain | Exhaustive search |
Advantage | Implement simply | Compromise between performance and simplicity | Good performance |
Disadvantage | Unguaranteed system performance | Harder to set the power allocation factor | High complexity, not applicable to actual scenarios |
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Wu, Y.; Sun, L.; Liu, X.; Lin, X. Research on Energy Efficiency Optimization of Visible Light Communication Based on Non-Orthogonal Multiple Access. Electronics 2024, 13, 1562. https://doi.org/10.3390/electronics13081562
Wu Y, Sun L, Liu X, Lin X. Research on Energy Efficiency Optimization of Visible Light Communication Based on Non-Orthogonal Multiple Access. Electronics. 2024; 13(8):1562. https://doi.org/10.3390/electronics13081562
Chicago/Turabian StyleWu, Yali, Lei Sun, Xiaoshuang Liu, and Xiaoran Lin. 2024. "Research on Energy Efficiency Optimization of Visible Light Communication Based on Non-Orthogonal Multiple Access" Electronics 13, no. 8: 1562. https://doi.org/10.3390/electronics13081562
APA StyleWu, Y., Sun, L., Liu, X., & Lin, X. (2024). Research on Energy Efficiency Optimization of Visible Light Communication Based on Non-Orthogonal Multiple Access. Electronics, 13(8), 1562. https://doi.org/10.3390/electronics13081562