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Subcarrier Intensity Modulated Optical Wireless Communications:A Survey from Communication Theory Perspective

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摘要 Subcarrier intensity modulation with direet detection is a modulatiou/detection technique tbr optical wireless communication systems, where a pre-modulated and properly biased radio frequency signal is modulated on the intensity of the optical carrier. The most important benefits of subcarrier intensity modulation are as follows: 1) it does not provide irreducible error floor like the conventional on-off keying intensity modulation with a fixed detection threshold; 2) it provides improved spectral efficiency and supports higher order modulation schemes; and 3) it has much less implementation complexity compared to coherent optical wireless communications with heterodyne or homodyne detection. In this paper, we present an up-to-date review of subcarrier intensity modulated optical wireless communication systems. We survey the error rate and outage performance of subcarrier intensity modulations in the atmospheric turbulence channels considering different modulation and coding schemes. We also explore different contemporary atmospheric turbulence fading mitigation solutions that can be employed for subcarrier intensity modulation. These solutions include diversity combining, adaptive transmission, relay assisted transmission, multiple-subcarrier intensity modulations, and optical orthogonal frequency division multiplexing. Moreover, we review the performance of subcarrier intensity modulations due to the pointing error and synchronization error. Subcarrier intensity modulation with direet detection is a modulatiou/detection technique tbr optical wireless communication systems, where a pre-modulated and properly biased radio frequency signal is modulated on the intensity of the optical carrier. The most important benefits of subcarrier intensity modulation are as follows: 1) it does not provide irreducible error floor like the conventional on-off keying intensity modulation with a fixed detection threshold; 2) it provides improved spectral efficiency and supports higher order modulation schemes; and 3) it has much less implementation complexity compared to coherent optical wireless communications with heterodyne or homodyne detection. In this paper, we present an up-to-date review of subcarrier intensity modulated optical wireless communication systems. We survey the error rate and outage performance of subcarrier intensity modulations in the atmospheric turbulence channels considering different modulation and coding schemes. We also explore different contemporary atmospheric turbulence fading mitigation solutions that can be employed for subcarrier intensity modulation. These solutions include diversity combining, adaptive transmission, relay assisted transmission, multiple-subcarrier intensity modulations, and optical orthogonal frequency division multiplexing. Moreover, we review the performance of subcarrier intensity modulations due to the pointing error and synchronization error.
出处 《ZTE Communications》 2016年第2期2-12,共11页 中兴通讯技术(英文版)
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  • 1Z. Ghassemlooy, S. Arnon, M. Uysal, Z. Xu, and J. Cheng, "Emerging optical wireless communications advances and challenges," IEEE Journal on Selected Areas in Communications, vol. 33, no. 9, pp. 1738-1740, Sep. 2015. doi: 10.1 I09/JSAC.2015.2458511.
  • 2M. A. Khalighi and M. Uysal, "Survey on lYee space optical communication: A communication theory perspective," IEEE Communications Survey & Tutorials, vol. 16, no. 4, pp. 2231-2258, fourth quarter 2014. doi: 10.1109/ COMST.2014.2329501. 1).
  • 3Keddar and S. Arnon, "Urban optical wireless communication networks: the main challenges and possible solutions," IEEE Communications Magazine, vol. 42, no. 5 pp. 51-57, May 2004. doi: 10.1109/MCOM.2004.1299334.
  • 4V. W. S. Chan, "Free- space optical communieations," IEEE/OSA Journal of Lightwave Technology, w)l. 24, no. 12, pp. 4750-4762, Dec. 2006. doi: 10.1109/ JLT.2006.885252.
  • 5N. Cvijetic, D. Qian, and T. Wang, "10 Gb/s free-space optical transmission us- ing OFDM," in Proc. OFC/NFOEC, San Diego, USA, 2008, pp. 1-3. doi: 10.1109/0 FC.2008.4528442.
  • 6S. Bloom, E. Korevaar, J. Schuster, and H. Willebrand, "Understanding the per- fonnance of fl'ee space optics," Journal Optical Networking, vol. 2, no. 6, pp. 178-200, Jun. 2003.
  • 7J. Barteh, G. Fettweis, I). Wiibben, M. Boldi, and B. Melis, "Heterogeneous backhaul for cloud-based mobile networks," in IEEE 7&h l/ehicular Technology ConJerence (VTC-ltll), Las Vegas, USA, 2013, pp. 1-5. dui: 10.1109/VTC- Fall.2013.6692220.
  • 8Inlo-Internet. (2015, July 30). New milestones in connectivity lab's aircraft and laser programs [Online]. Available: https://info.internet.org/en/2015/07/30/new- milestones-in-connectivity-labs-aireraft-and-laser-programs.
  • 9M. Matsumoto, "Next generation free-space optical system by system design opti- mization and peffunnance enhancement," in Proc. Progress in Electromagnetics Research Symposium (PIERS), KL, Malaysia, 2012, pp. 501-506.
  • 10M. A. Kashani, M. Uysa], and M. Kavehrad, "A novel statistical channel model of turbulence-imluced fading in free space optical systems,"/AYO,A JournaJ ofLightwave Teehnolog), vo. 33, no. 11, pp, 2303-2312, Mar. 2015. doi: 10.1109/J LT.2015.2410695.

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