Study On Optical Communications, Volume. 50, Issue 4, 22008101(2024)
Amplitude Factorization Polynomial Pre-distortion for Nonlinear LED
[1] Luan N, Xiong K, Zhang Y et al. 6G: Typical Applications, Key Technologies and Challenges[J]. Journal of Internet of Things, 6, 29-43(2022).
[2] Ying K, Yu Z H, Baxley R J et al. Nonlinear Distortion Mitigation in Visible Light Communications[J]. IEEE Wireless Communications, 22, 36-45(2015).
[3] Lain J K, Chen Y H. An ANN-based Adaptive Predistorter for LED Nonlinearity in Indoor Visible Light Communications[J]. Electronics, 10, 948-961(2021).
[4] Tan J d, Wang Z C, Wang Q et al. Near-optimal Low-complexity Sequence Detection for Clipped DCO-OFDM[J]. IEEE Photonics Technology Letters, 28, 233-236(2016).
[5] Jia K J, Wei S B, Lin Y et al. Research on Precoding Optical Orthogonal Frequency Division Multiplexing System in Visible Light Communication[J]. Acta Optica Sinica, 41, 1706004(2021).
[6] Zhao L, Dong H H, Zhang F. Visible DCO-OFDM System based on LWT[J]. Acta Photonica Sinica, 50, 0506002(2021).
[7] Elgala H, Mesleh R, Haas H. Predistortion in Optical Wireless Transmission Using OFDM[C], HIS.2009.321(2009).
[8] Stepniak G, Marzecki M, Bojarczuk J. Volterra Predistorter for the Dynamic Nonlinearity of LED[J]. Optics Letters, 47, 1161-1164(2022).
[9] Lin R L, Liu S Y, Lee C C et al. Taylor-Series-Expression-based Equivalent Circuit Models of LED for Analysis of LED Driver System[J]. IEEE Transactions on Industry Applications, 49, 1854-1862(2013).
[10] Gao D W, Guo Q H, Jin M et al. Adaptive Extreme Learning Machine-based Nonlinearity Mitigation for LED Communications[J]. IEEE Journal of Selected Topics in Quantum Electronics, 27, 3043779(2021).
[11] Mardanikorani S, Deng X, Linnartz J M G et al. Compensating Dynamic Nonlinearities in LED Photon Emission to Enhance Optical Wireless Communication[J]. IEEE Transactions on Vehicular Technology, 70, 1317-1331(2021).
[12] Zhao W K, Guo Q H, Tong J et al. Orthogonal Polynomial-based Nonlinearity Modeling and Mitigation for LED Communications[J]. IEEE Photonics Journal, 8, 2581485(2016).
[13] Deng X, Mardanikorani S, Wu Y et al. Mitigating LED Nonlinearity to Enhance Visible Light Communications[J]. IEEE Transactions on Communications, 66, 5593-5607(2018).
[14] Chua L O, Kang S M. Section-wise Piecewise-linear Functions: Canonical Representation, Properties, and Applications[J]. Proceedings of the IEEE, 65, 915-929(1977).
[15] Lin J N, Unbehaueb R. Canonical Piecewise-linear Approximations[J]. IEEE Transactions on Circuits and Systems I: Fundamental Theory and Applications, 39, 697-699(1992).
[16] Zhu A, Brazil T J. Behavioral Modeling of RF Power Amplifiers based on Pruned Volterra Series[J]. IEEE Microwave and Wireless Components Letters, 14, 563-565(2004).
[17] Hammi O, Ghannouchi F M, Vassilakis B. A Compact Envelope-memory Polynomial for RF Transmitters Modeling with Application to Baseband and RF-digital Predistortion[J]. IEEE Microwave and Wireless Components Letters, 18, 359-361(2008).
[18] Schetzen M. Nonlinear System Modeling based on the Wiener Theory[J]. Proceedings of the IEEE, 69, 1557-1573(1981).
[19] Qian H, Yao S J, Cai S Z et al. Adaptive Postdistortion for Nonlinear LEDs in Visible Light Communications[J]. IEEE Photonics Journal, 6, 1-8(2014).
Get Citation
Copy Citation Text
Yuanbo CHENG, Haipeng ZHA, Xian BAO, Kun ZHANG, Wenqiang LU. Amplitude Factorization Polynomial Pre-distortion for Nonlinear LED[J]. Study On Optical Communications, 2024, 50(4): 22008101
Category: Research Articles
Received: Jan. 29, 2023
Accepted: --
Published Online: Aug. 15, 2024
The Author Email: LU Wenqiang (wqlu@cigit.ac.cn)