研究生: |
施皇任 Shih, Huang-Ren |
---|---|
論文名稱: |
直接偵測光學正交分頻多工系統的設計與實現 Design and Implementation of Direct Detection Optical OFDM System |
指導教授: |
黃元豪
Huang, Yuan-Hao |
口試委員: |
馮開明
Feng, Kai-Ming 陳智弘 Chen, Jye-Hong |
學位類別: |
碩士 Master |
系所名稱: |
電機資訊學院 - 通訊工程研究所 Communications Engineering |
論文出版年: | 2012 |
畢業學年度: | 101 |
語文別: | 英文 |
論文頁數: | 74 |
中文關鍵詞: | 直接偵測 、光學正交分頻多工系統 、現場可程式邏輯門陣列 、基頻正交分頻多工接收機 |
外文關鍵詞: | direct detection, optical OFDM, FPGA, baseband OFDM receiver |
相關次數: | 點閱:3 下載:0 |
分享至: |
查詢本校圖書館目錄 查詢臺灣博碩士論文知識加值系統 勘誤回報 |
近年來由於寬頻用戶的大幅增加以及網際網路多媒體服務需求的成長,如此高傳輸量的通訊系統成為了一項重要的議題。而光學正交分頻多工(Optical OFDM)傳輸之傳送接收器的實現就變得相當重要。在本論文中介紹了正交分頻多工的理論以及光學正交分頻多工中的直接偵測與同調偵測,並且提供了光學實驗架構包含了光學傳送接收器以及光纖通道,最後設計了一16 路平行化運算處理之基頻正交分頻多工接收器包含了IQ mixer、frame detection、remove CP、FFT 以及channel estimation,並將之實現在FPGA(SMIMS-V4VLX160)上並且在直接偵測光學正交分頻多工系統上做結合,其中AWG 之取樣速度為12GS/s,RTS 為2GS/s。此外所設計的基頻正交分頻多工接收器系統速度為7.791ns(128.353MHz),可達到1.62Gb/s 的運算吞吐量。
In the recent years, the technology of communication devices is developed rapidly due to the growing demand for transmission system. Therefore, the high capacity of communication systems becomes an important issue. In order to provide large bandwidth for high quality services, realizing a transceiver for optical OFDM system becomes very important. This study presents the theoretical fundamentals of the OFDM technology and the direct detection and coherent detection in optical OFDM systems. This work also builds an experimental environment including the optical transmitter, fiber channel and the optical receiver. Finally, this thesis proposes a FPGA design and implementation of the baseband OFDM receiver including IQ mixer, frame detection, remove CP, FFT and channel estimation with 16 parallelism. The design of the baseband OFDM receiver was successfully implemented in an FPGA (SMIMS-VC4VLX160) and demonstrated in the direct detection optical OFDM system with the sampling rate of AWG equals to
12GS/s and RTS equals to 2GS/s, each sample contains 10bits. Besides, the system clock is 7.791ns (128.353MHz). Thus the throughput can achieve up to 1.65Gb/s.
[1] N. Jolley, H. Kee, P. Pickard, J. Tang, and K. Cordina, “Generation and propagation of a 1550 nm 10 gbit/s optical orthogonal frequency division multiplexed signal over 1000m of multimode fibre using a directly modulated dfb,”in Optical Fiber Communication Conference, 2005. Technical Digest. OFC/NFOEC, vol. 5, March,
paper OFP3.
[2] S. Jansen, I. Morita, T. Schenk, N. Takeda, and H. Tanaka, “Coherent optical 25.8-gb/s ofdm transmission over 4160-km ssmf,” Lightwave Technology, Journal of, vol. 26, no. 1, pp. 6–15, Jan.1, 2008.
[3] W. Shieh, “Pmd-supported coherent optical ofdm systems,” Photonics Technology Letters, IEEE, vol. 19, no. 3, pp. 134 –136, Feb.1, 2007.
[4] B. Schmidt, A. Lowery, and J. Armstrong, “Experimental demonstrations of electronic dispersion compensation for long-haul transmission using direct-detection optical ofdm,” Lightwave Technology, Journal of, vol. 26, no. 1, pp. 196 –203,Jan.1, 2008.
[5] W.-R. Peng, B. Zhang, K.-M. Feng, X. Wu, A. E. Willner, and S. Chi, “Spectrally efficient direct-detected ofdm transmission incorporating a tunable frequency gap and an iterative detection techniques,” Lightwave Technology, Journal of, vol. 27,no. 24, pp. 5723 –5735, Dec.15, 2009.
[6] A. Lowery, “Improving sensitivity and spectral efficiency in direct-detection opticalofdm systems,” in Optical Fiber communication/National Fiber Optic Engineers
Conference, 2008. OFC/NFOEC 2008. Conference on, Feb.,paper OMM4.
[7] Q. Yang, N. Kaneda, X. Liu, S. Chandrasekhar, W. Shieh, and Y. Chen, “Real-time coherent optical ofdm receiver at 2.5-gs/s for receiving a 54-gb/s multi-band signal,” in Optical Fiber Communication - incudes post deadline papers, 2009. OFC 2009. Conference on, March, paper PDPC5.
[8] S. Chen, Y. Ma, and W. Shieh, “110-gb/s multi-band real-time coherent optical ofdm reception after 600-km transmission over ssmf fiber,” in Optical Fiber Communication (OFC), collocated National Fiber Optic Engineers Conference, 2010 Conference on (OFC/NFOEC), March, paper OMS2.
[9] X. Jin, R. Giddings, J. Tang, and K. Shore, “Real-time 3gb/s 16qam-encoded optical ofdm transmission over 75km metrocor smfs with negative power penalties,” in OptoElectronics and Communications Conference, 2009. OECC. 14th, July, paper ThPD8.
[10] S. Chen, Q. Yang, and W. Shieh, “Demonstration of 12.1-gb/s single-band real-time coherent optical ofdm reception,” in OptoeElectronics and Communications Conference (OECC), 2010 15th, July 2010, pp. 472 –473.
[11] R. Chang, “Synthesis of band-limited orthogonal signals for multichannel data transmission,” vol. 45, pp. 1775 –1796, Dec. 1966.
[12] R. Chang and R. Gibby, “A theoretical study of performance of an orthogonal multiplexing data transmission scheme,” Communication Technology, IEEE Transactions on, vol. 16, no. 4, pp. 529 –540, Aug. 1968.
[13] S. Weinstein and P. Ebert, “Data transmission by frequency-division multiplexing using the discrete fourier transform,” Communication Technology, IEEE Transactions on, vol. 19, no. 5, pp. 628 –634, October 1971.
[14] Y.-W. Lin, H.-Y. Liu, and C.-Y. Lee, “A 1-gs/s fft/ifft processor for uwb applications,” Solid-State Circuits, IEEE Journal of, vol. 40, no. 8, pp. 1726 – 1735, Aug.2005.
[15] W. Shieh and C. Athaudage, “Coherent ooptical orthogonal frequency division multiplexing,” Electronics Letters, vol. 42, no. 10, pp. 587 – 589, May 2006.
[16] T. Sakamoto, T. Kawanishi, and M. Izutsu, “Continuous-phase frequency-shift
keying with external modulation,” Selected Topics in Quantum Electronics, IEEE Journal of, vol. 12, no. 4, pp. 589 –595, July-Aug. 2006.
[17] R. Killey, P. Watts, V. Mikhailov, M. Glick, and P. Bayvel, “Electronic dispersion compensation by signal predistortion using a dual-drive mach-zehnder modulator,” in Optical Fiber Communication Conference, 2005. Technical Digest. OFC/NFOEC, vol. 4, March 2005, paper OThJ2.
[18] Y. Hong, E. Viterbo, and A. Lowery, “Improving the sensitivity of direct-detection optical ofdm systems by pairing of the optical subcarriers,”in Optical Communi-
cation (ECOC), 2011 37th European Conference and Exhibition on, Sept., paper OTHB11.
[19] J. Lee, D. Toumpakaris, H.-L. Lou, and J.Cioffi, “Effect of carrier frequency offset on time-domain differential demodulation in ofdm systems,” in Vehicular Technology Conference, 2004. VTC2004-Fall. 2004 IEEE 60th, vol. 1, Sept. 2004, pp. 568– 572 Vol. 1.
[20] X. Jin and J. Tang, “Optical ofdm synchronization with symbol timing offset and sampling clock offset compensation in real-time imdd systems,” Photonics Journal,
IEEE, vol. 3, no. 2, pp. 187 –196, April 2011.
[21] C.-H. Peng, K.-T. Shr, M.-H. Lin, and Y.-H. Huang, “A baseband receiver for optical ofdm systems,” in VLSI Design, Automation and Test (VLSI-DAT), 2011 International Symposium on, April.
[22] T. Keller and L. Hanzo, “Orthogonal frequency division multiplex synchronisation techniques for wireless local area networks,” in Personal, Indoor and Mobile Radio
Communications, 1996. PIMRC’96., Seventh IEEE International Symposium on, vol. 3, 1996, pp. 963 –967 vol.3.
[23] F. Tufvesson, O. Edfors, and M. Faulkner, “Time and frequency synchronization for ofdm using pn-sequence preambles,” in Vehicular Technology Conference, 1999. VTC. IEEE VTS 50th, vol. 4, pp. 2203 –2207 vol.4.
[24] J. W. Cooley and J. W. Tukey, “An algorithm for the machine calculation of complex fourier series,” Math. Comp. 19, vol. 19, no. 90, pp. 297–301, 1965.
[25] (2010) Smims. [Online]. Available: http://www.smims.com/