999精品在线视频,手机成人午夜在线视频,久久不卡国产精品无码,中日无码在线观看,成人av手机在线观看,日韩精品亚洲一区中文字幕,亚洲av无码人妻,四虎国产在线观看 ?

100Gand Beyond:Trends in Ultrahigh-Speed Communications(Part I)

2012-05-21 03:40:40Gee-KungChang
ZTE Communications 2012年1期

Gee-Kung Chang

Jianjun Yu

F iber optics underpins the communication infrastructure of today’s information society.Rapid progress in advanced modulation formats,high-gain coding,optical amplification,coherent detection with digital signal processing,and new types of transmission fibers have significantly affected optical communications.Increasing transmission capacity and bit rate per channel is the trend for optical transmission systems and networks.Commercial transmission capacity has increased more than one hundred thousand times since the first optical transmission system was deployed in the 1980s.Spectral efficiency of a single channel has increased from 0.025 b/s/Hz to 2 b/s/Hz.Bit rate per channelfor commercial products has increased from 155 Mb/s to more than 100 Gb/s.Larger capacity is driven by the proliferation of broadband FTTH access networks,broadband wireless communications,and high-speed data communication systems in data centers and high performance computing.High bit rate per channel simplifies the management of complex optical networks.Although 100G is just the beginning of the commercial manufacturing and deployment stage,major optical networking research groups have been focusing on standards and technologies beyond 100G.The challenge of generating 400 Gb/s and 1 Tb/s per channel and transmitting at these speeds is one of the hottest topics in recent conferences on optical communications.Many forward-looking solutions have been proposed,and experiments have been carried out to achieve these high bit rates.

Globally,many research groups have been developing novel enabling technologies for meeting the requirements of high capacity and high bit rate operation using spectrally efficient multiplexing and modulation formats.These advanced techniques include single-carrier polarization multiplexing QPSK(which is currently used in 100G commercial products),multicarrier optical orthogonal frequency division multiplexing,multicore or multimode spatialmultiplexing,and coherent detection based on digital signal processing.For high-speed optical signal transmission,a traditional transponder with direct modulation and detection has a simple,low-cost architecture.However,the transmission distance at high bit rate is limited by the rigid requirements of high optical signal-to-noise ratio,polarization mode dispersion,and optical/electrical filtering effects.Coherent detection based on digitalsignal processing is becoming the trend for optical signal receivers because it can lift these limitations.The change from direct detection to coherent detection is revolutionary.Receiver architecture,transmission fiber and distance,and network management willbe completely reshaped from previous direct-detection systems.

This special issue includes comprehensive reviews and original technicalcontributions that cover the rapid advances and broad scope of technologies in opticalfiber communications.The invited papers of Part Iof this issue come from service providers,telecommunication equipment manufacturers,and top universities and research institutes.After peer review,eleven papers were selected for this special issue.We hope it serves as a timely and high-quality networking forum for scientists and engineers.

The first two papers come from service providers.In the first paper,“High Spectral Efficiency 400G Transmission,”Dr.Xiang Zhou from AT&Tlabs gives an overview of the generation and transmission of 450 Gb/s wavelength-division multiplexed channels over the standard 50 GHz ITU-Tgrid at a net spectral efficiency of 8.4 b/s/Hz.In the second paper,“Direct-Detection Optical OFDM Superchannel for Transmitting at Greater Than 200 Gb/s,”Dr.Peng Wei Ren et al.from KDD&Ipropose and experimentally demonstrate a direct-detection optical orthogonal-frequency-division-multiplexing(OFDM)superchannel and optical multiband receiving method to support a data rate higher than 200 Gb/s and to support longer distance for direct-detection systems.

Papers 3-9 come from universities that are renowned for research on optical transmission.In the third paper,“Spatial Mode Division Multiplexing for High-Speed Optical Coherent Detection Systems,”Professor William Shieh from the University of Melbourne proposes using spatial mode division multiplexing to increase transmission capacity.In the fourth paper,“Exploiting the Faster-Than-Nyquist Concept in Wavelength-Division Multiplexing Systems by Duobinary Shaping,”Dr.Jianqiang Lifrom Chalmers University of Technology presents a novel algorithm at the coherent receiver that is based on digital signal processing and is designed to tolerate strong filtering effects.In the fifth paper,“Super Receiver Design for Superchannel-Coherent Optical Systems,”Dr.Cheng Liu from Georgia Institute of Technology presents a novel super-receiver architecture for Nyquist-WDM superchannel coherent systems.This receiver detects and demodulates multiple WDM channels simultaneously and performs better than conventional coherent receivers in Nyquist-WDM systems.In the sixth paper,“Design of Silicon-Based High-Speed Plasmonic Modulator,”Professor Yikai Su from Shanghai Jiao Tong University proposes a silicon-based high-speed plasmonic modulator.This modulator is based on a double-layer structure with a 16 um long metal-dielectric-metal plasmonic waveguide at the upper layer and two silicon single-mode waveguides at the bottom layer.In the seventh paper,“Key Technology in Optical OFDM-PON,”Professor Xiangjun Xin from Beijing University of Posts and Telecommunications proposes a noveloptical access network based on OFDM.In the eighth paper,“Compensation of Nonlinear Effects in Coherent Detection Optical Transmission Systems,”Professor Fan Zhang from Beijing University reviews two kinds of nonlinear compensation methods:digital backward propagation,and nonlinear electrical equalizer based on the time-domain Volterra series.The last paper comes from a telecommunication equipment manufacturer.In“Performance Assessment of 1 Tb/s Nyquist-WDMPM-RZ-QPSK Superchannel Transmission over 1000 km SMF-28 with MAP Equalization,”Dr.Ze Dong from ZTE(USA)evaluates the transmission performance of a 1 Tb/s(10×112 Gb/s)Nyquist-WDM PM-RZ-QPSK superchannel over a widely deployed SMF-28 fiber with and without MAPequalization.

We thank all authors for their valuable contributions and all reviewers for their timely and constructive feedback on submitted papers.We hope the contents of this issue are informative and useful for all readers.

主站蜘蛛池模板: 国产精品刺激对白在线| 国内视频精品| 在线看AV天堂| 国产欧美精品一区二区| 操操操综合网| 欧美成人二区| 在线免费亚洲无码视频| 国产黄网永久免费| 亚洲国产91人成在线| 好吊色妇女免费视频免费| 欧美在线精品怡红院| 欧美a网站| 国产精品无码AV中文| 亚洲69视频| 亚洲天堂伊人| 黄色网在线| 无码电影在线观看| 凹凸国产熟女精品视频| 久久五月视频| 亚洲最大综合网| 中文字幕中文字字幕码一二区| 3D动漫精品啪啪一区二区下载| 亚洲精品国产综合99| 国产高清色视频免费看的网址| a级毛片一区二区免费视频| 久久青草热| 无码精品国产dvd在线观看9久| 亚洲无码高清视频在线观看| 国产无遮挡裸体免费视频| 国产毛片基地| 日韩精品免费在线视频| 丰满人妻久久中文字幕| 91黄色在线观看| 亚洲成人免费在线| 中文字幕无线码一区| 亚洲成人在线免费观看| 青青青国产精品国产精品美女| 亚洲娇小与黑人巨大交| 日韩精品高清自在线| 免费一级无码在线网站| 亚洲人成成无码网WWW| 久久网综合| 久久婷婷人人澡人人爱91| 四虎AV麻豆| 2020精品极品国产色在线观看| 99伊人精品| 精品超清无码视频在线观看| 国产日韩精品欧美一区灰| 精品色综合| 国产亚洲精品无码专| 制服丝袜一区| 国产综合日韩另类一区二区| 在线观看国产一区二区三区99| 国产免费a级片| 欧美日韩精品一区二区视频| 97av视频在线观看| 全部免费毛片免费播放| 乱色熟女综合一区二区| 日a本亚洲中文在线观看| 久久国产热| 国产高清免费午夜在线视频| 久久久亚洲色| 2021精品国产自在现线看| 成AV人片一区二区三区久久| 丝袜亚洲综合| 99热这里只有成人精品国产| 高清精品美女在线播放| 国产精品99一区不卡| 成人欧美日韩| 57pao国产成视频免费播放| 天堂亚洲网| 国产亚洲精品自在久久不卡| 天堂亚洲网| 在线一级毛片| 欧美日本在线观看| 国产在线观看一区二区三区| 国产福利在线观看精品| 老司机久久99久久精品播放| 亚洲中文字幕23页在线| 国产成人h在线观看网站站| 国产福利免费在线观看| 亚洲欧美日韩天堂|