光学学报, 2016, 36 (11): 1106001, 网络出版: 2016-11-08   

基于离散正弦/余弦变换DC-DMT的可见光通信系统性能研究

Performance of Visible Light Communication System Based on Discrete Sine/Cosine Transform DC-DMT
作者单位
西北工业大学电子信息学院, 陕西 西安 710129
摘要
结合离散正弦变换(DST)和离散余弦变换(DCT),提出一种新的DST/DCT直流偏置-离散多音频(DC-DMT)调制方案。在不增加系统复杂度的情况下,该方案可拓展独立子载波的个数,有望提高可见光系统的传输速率。通过推导该调制方案下的误码率表达式及该调制信号峰均功率比(PAPR)的互补累积分布,分析了限幅噪声对离散多音频(DMT)、直流偏置光正交频分复用(DCO-OFDM)及非对称限幅光正交频分复用(ACO-OFDM)可见光系统误码率的影响。研究结果表明,理论分析的误码率与仿真结果一致,在相同的传输速率下所提方案误码率更低;PAPR的互补累积分布与调制阶数无关,但随子载波数N增加而增大,在N较大时理论分析与仿真结果吻合。误码率仿真结果表明,相同传输速率下DST/DCT DC-DMT与DCO-OFDM在低信噪比时误码率性能相当,均优于脉冲幅度调制-离散多音频(PAM-DMT)、DC-DMT及ACO-OFDM;在高信噪比时,限幅噪声会使系统误码率增大。
Abstract
Combined with the discrete sine transform (DST) and discrete cosine transform (DCT), a novel DST/DCT direct current bias-discrete multitone(DC-DMT) modulation scheme is proposed. This method is able to expand the number of independent subcarriers without increasing the complexity of system, and it is expected to improve the transmission rate of visible light system. The bit error rate (BER) expression of the modulation scheme and the complementary cumulative distribution of peak-to-average power ratio(PAPR) are derived. The effects of clipping noise on the BER performance of DMT, direct current-biased optical-orthogonal frequency division multiplexing (DCO-OFDM) and asymmetrically clipped optical-orthogonal frequency division multiplexing (ACO-OFDM) visible light systems are analyzed. The results show that the theoretical BER is consistent with the simulation results, and the BER performance of the proposed scheme is better at the same transmission rate compared with that of other methods. The distribution of PAPR is independent of the modulation order but increases with subcarrier number N. When N is larger, the theoretical conclusions match the simulation results. At the same transmission rate, the simulation results show that the BER performances of DST/DCT DC-DMT and DCO-OFDM are similar in low signal-to-noise ratio (SNR), which are better than those of PAM-DMT, DC-DMT and ACO-OFDM; however, the BER performance degrades in high SNR due to the clipping noise.
参考文献

[1] Jovicic A, Li J, Richardson T. Visible light communication: Opportunities, challenges and the path to market[J]. IEEE Communications Magazine, 2013, 51(12): 26-32.

[2] Wang Q, Wang Z C, Chen S, et al. Enhancing the decoding performance of optical wireless communication systems using receiver-side predistortion[J]. Optics Express, 2013, 21(25): 30295-30305.

[3] Wang Q, Wang Z C, Dai L L. Iterative receiver for hybrid asymmetrically clipped optical OFDM[J]. Journal of Lightwave Technology, 2014, 32(22): 3869-3875.

[4] Wang Q, Wang Z C, Dai L L. Asymmetrical hybrid optical OFDM for visible light communications with dimming control[J]. IEEE Photonics Technology Letters, 2015, 27(9): 974-977.

[5] Carruthers J B, Kahn J M. Multiple-subcarrier modulation for nondirected wireless infrared communication[J]. IEEE Journal on Selected Areas in Communications, 1996, 14(3): 538-546.

[6] Lee S C J, Breyer F, Randel S, et al. Discrete multitone modulation for maximizing transmission rate in step-index plastic optical fibers[J]. Journal of Lightwave Technology, 2009, 27(11): 1503-1513.

[7] Grubor J, Randel S, Langer K D, et al. Broadband information broadcasting using LED-based interior lighting[J]. Journal of Lightwave Technology, 2008, 26(24): 3883-3892.

[8] Armstrong J, Schmidt B J C. Comparison of asymmetrically clipped optical OFDM and DC-biased optical OFDM in AWGN[J]. IEEE Communications Letters, 2008, 12(5): 343-345.

[9] Abu-Alhiga R, Haas H. Subcarrier-index modulation OFDM[C]. 2009 IEEE 20th International Symposium on Personal, Indoor and Mobile Radio Communications, 2009: 177-181.

[10] Tsonev D, Sinanovic S, Haas H. Enhanced subcarrier index modulation (SIM) OFDM[C]. 2011 IEEE GLOBECOM Workshops, 2011: 728-732.

[11] Dissanayake S D, Armstrong J. Comparison of ACO-OFDM, DCO-OFDM and ADO-OFDM in IM/DD systems[J]. Journal of Lightwave Technology, 2013, 31(7): 1063-1072.

[12] Wang Q, Qian C, Guo X H, et al. Layered ACO-OFDM for intensity-modulated direct-detection optical wireless transmission[J]. Optics Express, 2015, 23(9): 12382-12393.

[13] Jiang R, Wang Q, Wang F, et al. An optimal scaling scheme for DCO-OFDM based visible light communications[J]. Optics Communications, 2015, 356: 136-140.

[14] Lee S C J, Randel S, Breyer F, et al. PAM-DMT for intensity-modulated and direct-detection optical communication systems[J]. IEEE Photonics Technology Letters, 2009, 21(23): 1749-1751.

[15] Elgala H, Mesleh R, Haas H. Indoor broadcasting via white LEDs and OFDM[J]. IEEE Transactions on Consumer Electronics, 2009, 55(3): 1127-1134.

[16] Bandara K, Niroopan P, Chung Y H. PAPR reduced OFDM visible light communication using exponential nonlinear companding[C]. Proceedings of IEEE COMCAS, 2013: 1-5.

[17] Popoola W O, Ghassemlooy Z, Stewart B G. Pilot-assisted PAPR reduction technique for optical OFDM communication systems[J]. Journal of Lightwave Technology, 2014, 32(7): 1374-1382.

[18] Cho K, Yoon D. On the general BER expression of one- and two-dimensional amplitude modulations[J]. IEEE Transactions on Communications, 2002, 50(7): 1074-1080.

[19] Yu H, Lin Y R, Wei G. Distribution of PAR in DMT system[J]. Electronics Letters, 2003, 39(10): 799-801.

[20] Wei S, Goeckel D L, Kelly P E. A modern extreme value theory approach to calculating the distribution of the peak-to-average power ratio in OFDM systems[C]. IEEE International Conference on Communications, 2002, 3: 1686-1690.

[21] Berman S M. Asymptotic independence of the numbers of high and low level crossings of stationary Gaussian processes[J]. The Annals of Mathematical Statistics, 1971, 42(3): 927-945.

樊养余, 邓莉君. 基于离散正弦/余弦变换DC-DMT的可见光通信系统性能研究[J]. 光学学报, 2016, 36(11): 1106001. Fan Yangyu, Deng Lijun. Performance of Visible Light Communication System Based on Discrete Sine/Cosine Transform DC-DMT[J]. Acta Optica Sinica, 2016, 36(11): 1106001.

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