Vol. 157
Latest Volume
All Volumes
PIERC 162 [2025] PIERC 161 [2025] PIERC 160 [2025] PIERC 159 [2025] PIERC 158 [2025] PIERC 157 [2025] PIERC 156 [2025] PIERC 155 [2025] PIERC 154 [2025] PIERC 153 [2025] PIERC 152 [2025] PIERC 151 [2025] PIERC 150 [2024] PIERC 149 [2024] PIERC 148 [2024] PIERC 147 [2024] PIERC 146 [2024] PIERC 145 [2024] PIERC 144 [2024] PIERC 143 [2024] PIERC 142 [2024] PIERC 141 [2024] PIERC 140 [2024] PIERC 139 [2024] PIERC 138 [2023] PIERC 137 [2023] PIERC 136 [2023] PIERC 135 [2023] PIERC 134 [2023] PIERC 133 [2023] PIERC 132 [2023] PIERC 131 [2023] PIERC 130 [2023] PIERC 129 [2023] PIERC 128 [2023] PIERC 127 [2022] PIERC 126 [2022] PIERC 125 [2022] PIERC 124 [2022] PIERC 123 [2022] PIERC 122 [2022] PIERC 121 [2022] PIERC 120 [2022] PIERC 119 [2022] PIERC 118 [2022] PIERC 117 [2021] PIERC 116 [2021] PIERC 115 [2021] PIERC 114 [2021] PIERC 113 [2021] PIERC 112 [2021] PIERC 111 [2021] PIERC 110 [2021] PIERC 109 [2021] PIERC 108 [2021] PIERC 107 [2021] PIERC 106 [2020] PIERC 105 [2020] PIERC 104 [2020] PIERC 103 [2020] PIERC 102 [2020] PIERC 101 [2020] PIERC 100 [2020] PIERC 99 [2020] PIERC 98 [2020] PIERC 97 [2019] PIERC 96 [2019] PIERC 95 [2019] PIERC 94 [2019] PIERC 93 [2019] PIERC 92 [2019] PIERC 91 [2019] PIERC 90 [2019] PIERC 89 [2019] PIERC 88 [2018] PIERC 87 [2018] PIERC 86 [2018] PIERC 85 [2018] PIERC 84 [2018] PIERC 83 [2018] PIERC 82 [2018] PIERC 81 [2018] PIERC 80 [2018] PIERC 79 [2017] PIERC 78 [2017] PIERC 77 [2017] PIERC 76 [2017] PIERC 75 [2017] PIERC 74 [2017] PIERC 73 [2017] PIERC 72 [2017] PIERC 71 [2017] PIERC 70 [2016] PIERC 69 [2016] PIERC 68 [2016] PIERC 67 [2016] PIERC 66 [2016] PIERC 65 [2016] PIERC 64 [2016] PIERC 63 [2016] PIERC 62 [2016] PIERC 61 [2016] PIERC 60 [2015] PIERC 59 [2015] PIERC 58 [2015] PIERC 57 [2015] PIERC 56 [2015] PIERC 55 [2014] PIERC 54 [2014] PIERC 53 [2014] PIERC 52 [2014] PIERC 51 [2014] PIERC 50 [2014] PIERC 49 [2014] PIERC 48 [2014] PIERC 47 [2014] PIERC 46 [2014] PIERC 45 [2013] PIERC 44 [2013] PIERC 43 [2013] PIERC 42 [2013] PIERC 41 [2013] PIERC 40 [2013] PIERC 39 [2013] PIERC 38 [2013] PIERC 37 [2013] PIERC 36 [2013] PIERC 35 [2013] PIERC 34 [2013] PIERC 33 [2012] PIERC 32 [2012] PIERC 31 [2012] PIERC 30 [2012] PIERC 29 [2012] PIERC 28 [2012] PIERC 27 [2012] PIERC 26 [2012] PIERC 25 [2012] PIERC 24 [2011] PIERC 23 [2011] PIERC 22 [2011] PIERC 21 [2011] PIERC 20 [2011] PIERC 19 [2011] PIERC 18 [2011] PIERC 17 [2010] PIERC 16 [2010] PIERC 15 [2010] PIERC 14 [2010] PIERC 13 [2010] PIERC 12 [2010] PIERC 11 [2009] PIERC 10 [2009] PIERC 9 [2009] PIERC 8 [2009] PIERC 7 [2009] PIERC 6 [2009] PIERC 5 [2008] PIERC 4 [2008] PIERC 3 [2008] PIERC 2 [2008] PIERC 1 [2008]
2025-07-22
Robust Phase Optimization for RIS-Assisted SWIPT in 6G Networks: A Semidefinite Relaxation and Singular Value Decomposition-Based Approach
By
Progress In Electromagnetics Research C, Vol. 157, 259-267, 2025
Abstract
Reconfigurable Intelligent Surfaces (RISs) have emerged as a transformative solution for enabling energy-efficient and interference-aware wireless communication in Sixth-Generation (6G) networks. This work investigates a novel RIS-assisted Simultaneous Wireless Information and Power Transfer (SWIPT) system where separated Power and Information Transmitters (PTx and ITx) independently serve a Power User (PU) and an Information User (IU). A low-complexity deterministic RIS phase optimization strategy is introduced, combining Semidefinite Relaxation (SDR) and Singular Value Decomposition (SVD), to maximize received power at the PU while minimizing interference at the IU. Extensive simulations under both ideal and practical constraints, including 1-bit phase quantization and 3GPP TR 38.901 Urban Micro (UMi) fading, confirm the method's robustness. Results indicate that the proposed design achieves 57.06 dB average received power at the PU and 13.78 dB signal-to-interference ratio (SIR) at the IU in realistic channels, substantially outperforming Accelerated Particle Swarm Optimization (APSO) and fixed-phase baselines. Moreover, Spectral Efficiency (SE) remains above 4.30 bps/Hz at 60 km/h user mobility, showcasing resilience to Doppler-induced channel variation. The proposed approach requires only 52 ms on MATLAB Online using cloud-based Intel Xeon Platinum hardware, confirming its suitability for near real-time applications. Despite these advantages, the design assumes static RIS configuration and perfect channel knowledge. Future work may extend toward real-time RIS reconfiguration and learning-based control under partial channel state information. These findings highlight the feasibility and adaptability of the proposed RIS-SWIPT approach for next-generation wireless systems.
Citation
Nguyen Van Cuong, "Robust Phase Optimization for RIS-Assisted SWIPT in 6G Networks: A Semidefinite Relaxation and Singular Value Decomposition-Based Approach," Progress In Electromagnetics Research C, Vol. 157, 259-267, 2025.
doi:10.2528/PIERC25050401
References

1. Khan, Wali Ullah, Asad Mahmood, Chandan Kumar Sheemar, Eva Lagunas, Symeon Chatzinotas, and Björn Ottersten, "Reconfigurable intelligent surfaces for 6G non-terrestrial networks: Assisting connectivity from the sky," IEEE Internet of Things Magazine, Vol. 7, No. 1, 34-39, 2024.

2. Wu, Qingqing and Rui Zhang, "Towards smart and reconfigurable environment: Intelligent reflecting surface aided wireless network," IEEE Communications Magazine, Vol. 58, No. 1, 106-112, 2020.

3. Thuc, Kieu-Xuan, Hoang Manh Kha, Nguyen Van Cuong, and Tong Van Luyen, "A metaheuristics-based hyperparameter optimization approach to beamforming design," IEEE Access, Vol. 11, 52250-52259, 2023.

4. Mu, Xidong, Jiaqi Xu, Yuanwei Liu, and Lajos Hanzo, "Reconfigurable intelligent surface-aided near-field communications for 6G: Opportunities and challenges," IEEE Vehicular Technology Magazine, Vol. 19, No. 1, 65-74, 2024.

5. Van Luyen, Tong, Le Van Thai, Nguyen Minh Tran, and Nguyen Van Cuong, "Reconfigurable intelligent surface-aided wireless communication considering interference suppression," International Conference on Ad Hoc Networks, 86-98, 2024.

6. Ahmad, Ishtiaq, Ramsha Narmeen, Zdenek Becvar, and Ismail Guvenc, "Machine learning-based beamforming for unmanned aerial vehicles equipped with reconfigurable intelligent surfaces," IEEE Wireless Communications, Vol. 29, No. 4, 32-38, 2022.

7. Basharat, Sarah, Syed Ali Hassan, Haris Pervaiz, Aamir Mahmood, Zhiguo Ding, and Mikael Gidlund, "Reconfigurable intelligent surfaces: Potentials, applications, and challenges for 6G wireless networks," IEEE Wireless Communications, Vol. 28, No. 6, 184-191, 2021.

8. Van Luyen, Tong, Nguyen Van Cuong, and Truong Vu Bang Giang, "Convex optimization-based sidelobe control for planar arrays," 2023 IEEE Statistical Signal Processing Workshop (SSP), 304-308, Hanoi, Vietnam, 2023.

9. Basharat, Sarah, Syed Ali Hassan, Aamir Mahmood, Zhiguo Ding, and Mikael Gidlund, "Reconfigurable intelligent surface-assisted backscatter communication: A new frontier for enabling 6G IoT networks," IEEE Wireless Communications, Vol. 29, No. 6, 96-103, 2022.

10. Van Cuong, Nguyen, Bo Quoc Bao, Hoang Manh Kha, and Tong Van Luyen, "Distributed uplink power control in user-centric cell-free massive MIMO with grey wolf optimization," Progress In Electromagnetics Research C, Vol. 156, 31-38, 2025.

11. Xu, Jinlei, Jifa Zhang, Mingqian Liu, Nan Zhao, Naofal Al-Dhahir, and Xianbin Wang, "Secure integrated sensing and SWIPT via active IRS," IEEE Transactions on Wireless Communications, 1-1, 2025.

12. Wang, Dawei, Zijun Wang, Hongbo Zhao, Fuhui Zhou, Osama Alfarraj, Weichao Yang, Shahid Mumtaz, and Victor C. M. Leung, "Secure energy efficiency for ARIS networks with deep learning: Active beamforming and position optimization," IEEE Transactions on Wireless Communications, Vol. 24, No. 6, 5282-5296, 2025.

13. Wang, Lu, Luis F. Abanto-Leon, and Arash Asadi, "Joint hybrid beamforming and RIS phase shift design for RIS-enabled mmWave ISAC system," IEEE Transactions on Vehicular Technology, Vol. 74, No. 6, 9149-9164, 2025.

14. Huang, Yingjie, Amr M. Abdelhady, Qianggang Wang, Jia Ye, Yuan Chi, Ahmed M. Eltawil, Amr A. El-Sherif, and Tamer ElBatt, "Joint beamforming and power allocation design for wirelessly charged unmanned inspecting vehicles in power transmission systems," IEEE Transactions on Green Communications and Networking, 2025.

15. Shang, Sihui, Tiantian Zhang, Dongyang Xu, Lei Liu, Celimuge Wu, Shahid Mumtaz, and Chau Yuen, "Joint trajectory and beamforming optimization for UAV-RIS-empowered multiuser communication networks: A double deep q-network approach," IEEE Transactions on Vehicular Technology, 1-15, 2025.

16. Ma, Ruoyan, Jie Tang, Xiu Yin Zhang, Kai-Kit Wong, and Jonathon A. Chambers, "RIS-assisted SWIPT network for internet of everything under the electromagnetics-based communication model," IEEE Internet of Things Journal, Vol. 11, No. 9, 15402-15415, 2024.

17. Luo, Cheng, Jie Hu, Luping Xiang, and Kun Yang, "Reconfigurable intelligent sensing surface aided wireless powered communication networks: A sensing-then-reflecting approach," IEEE Transactions on Communications, Vol. 72, No. 3, 1835-1848, 2024.

18. Yaswanth, Jetti, Mayur Katwe, Keshav Singh, Shankar Prakriya, and Cunhua Pan, "Robust beamforming design for active-RIS aided MIMO SWIPT communication system: A power minimization approach," IEEE Transactions on Wireless Communications, Vol. 23, No. 5, 4767-4785, 2024.

19. Gao, Ying, Qingqing Wu, Wen Chen, Celimuge Wu, Derrick Wing Kwan Ng, and Naofal Al-Dhahir, "Exploiting intelligent reflecting surfaces for interference channels with SWIPT," IEEE Transactions on Wireless Communications, Vol. 23, No. 5, 4442-4458, 2024.

20. Luo, Zhi-Quan, Wing-Kin Ma, Anthony Man-Cho So, Yinyu Ye, and Shuzhong Zhang, "Semidefinite relaxation of quadratic optimization problems," IEEE Signal Processing Magazine, Vol. 27, No. 3, 20-34, 2010.

21. Wu, Qingqing and Rui Zhang, "Intelligent reflecting surface enhanced wireless network via joint active and passive beamforming," IEEE Transactions on Wireless Communications, Vol. 18, No. 11, 5394-5409, 2019.

22. Zhu, Q., C.-X. Wang, B. Hua, K. Mao, S. Jiang, and M. Yao, 3GPP TR 38.901 Channel Model, 1-35, John Wiley and Sons, 2021.

23. Yang, Xin-She, Nature-Inspired Optimization Algorithms, Academic Press, 2020.

24. Tran, Nguyen Minh, Muhammad Miftahul Amri, Je Hyeon Park, Dong In Kim, and Kae Won Choi, "Realization of wireless power and information coexistence through reconfigurable intelligent surface: A practical approach with experimental validation," IEEE Internet of Things Journal, Vol. 11, No. 18, 30114-30130, 2024.

25. Boyd, Stephen P. and Lieven Vandenberghe, Convex Optimization, Cambridge University Press, 2004.

26. Van Luyen, Tong and Nguyen Van Cuong, "Metaheuristics-based uplink power control scheme for user-centric cell-free massive MIMO systems," IEEE Access, Vol. 12, 96603-96616, 2024.