• Photonic Sensors
  • Vol. 3, Issue 4, 304 (2013)
[in Chinese] and [in Chinese]*
Author Affiliations
  • NTT Access Network Service Systems Laboratories, NTT Corporation, Tsukuba, Ibaraki, 305-0805, Japan
  • show less
    DOI: 10.1007/s13320-013-0127-2 Cite this Article
    [in Chinese], [in Chinese]. Recent Research and Development of Optical Fiber Monitoring in Communication Systems[J]. Photonic Sensors, 2013, 3(4): 304 Copy Citation Text show less
    References

    [1] Ministry of Internal Affairs and Communications in Japan, “Information and communications statistics and database,” 2012.

    [2] M. Arii, Y. Azuma, Y. Enomoto, K. Suzuki, N. Araki, S. Uruno, et al., “Optical fiber network operation technologies for expanding optical access network services,” NTT Technical Review, vol. 5, no. 2, pp. 32-38, 2007.

    [3] Y. Enomoto, H. Izumita, K. Mine, and N. Tomita, “Design and performance of novel optical fiber distribution and management system with testing functions in central office,” Journal of Lightwave Technology, vol. 29, no. 12, pp. 1818-1834, 2011.

    [4] ITU-T Recommendation L.41, “Maintenance wavelength on fibres carrying signals,” 2000.

    [5] K. C. Reichmann, N. J. Frigo, and X. Zhou, “In-service OTDR limitations in CWDM systems caused by spontaneous Stokes and anti-Stokes Raman scattering,” IEEE Photonics Technology Letters, vol. 16, no. 7, pp. 1787-1789 2004.

    [6] S. Furukawa, K. Tanaka, Y. Koyamada, and M. Sumida, “Enhanced coherent OTDR for long span optical transmission lines containing optical fiber amplifiers,” IEEE Photonics Technology Letters, vol. 7, no. 5, pp. 540-542, 1995.

    [7] ITU-T Recommendation G.979, “Characteristics of monitoring systems for optical submarine cable systems,” 2012.

    [8] Y. Enomoto, H. Izumita, and M. Nakamura, “Over 31.5 dB dynamic range optical fiber line testing system with optical fiber fault isolation function for 32-branched PON,” in Proc. Optical Fiber Communication Conference 2003 (OFC2003), Mar. 23-28, vol. 2, pp. 608-609, 2011.

    [9] Y. Koshikiya, N. Araki, H. Izumita, and F. Ito, “Simple and cost-effective fault location technique using bi-directional OTDR and in-service line testing criteria for PONs,” in Proc. European Conference on Communications 2005 (ECOC2005), Sep. 25-29, vol. 1, pp. 83-84, 2005.

    [10] K. Tanaka, M. Tateda, and Y. Inoue, “Measuring the individual attenuation distribution of passive branched optical networks,” IEEE Photonics Technology Letters, vol. 8, no. 7, pp. 915-917, 1996.

    [11] U. Hilbk, M. Burmeister, B. Hoen, T. Hermes, J. Saniter, and F. Westphal, “Selective OTDR measurements at the central office of individual fiber links in a PON,” presented at Proc. Conference on Optical Fiber Communication (OFC 97), Dallas, America, Feb. 16-21, 1997.

    [12] D. Iida, N. Honda, H. Izumita, and F. Ito, “Design of identification fibers with individually assigned Brillouin frequency shifts for monitoring passive optical networks,” Journal of Lightwave Technology, vol. 25, no. 5, pp. 1290-1297, 2007.

    [13] F. Ito, H. Takahashi, and K. Toge, “End-reflection assisted brillouin measurement for PON monitoring,” presented at Proc. CLEO-PR&OECC/PS 2013, MS2-1, 2013.

    [14] H. Takahashi, F. Ito, C. Kito, and K. Toge, “Individual loss distribution measurement in 32-blanched PON using pulsed pump-probe Brillouin analysis,” Optics Express, vol. 21, no. 6, pp. 6739-6748, 2013.

    [15] A. J. Rogers, “Polarization-optical time domain reflectometry: a technique for the measurement of field distributions,” Applied Optics, vol. 20, no. 6, pp. 1060-1074, 1981.

    [16] J. G. Ellison and A. S. Siddiqui, “Automatic matrix-based analysis method for extraction of optical fiber parameters from polarimetric optical time domain reflectometry data,” Journal of Lightwave Technology, vol. 18, no. 9, pp. 1226-1232, 2000.

    [17] A. Galtarossa and L. Palmieri, “Spatially resolved PMD measurements,” Journal of Lightwave Technology, vol. 22, no. 4, pp. 1103-1115, 2004.

    [18] R. Goto, S. Tanigawa, S. Matsuo, and K. Himeno, “On-spool PMD estimation method for low-PMD fibers with high repeatability by local-DGD measurement using POTDR,” Journal of Lightwave Technology, vol. 24, no. 11, pp. 3914-3919, 2006.

    [19] H. Dong, P. Shum, J. Q. Zhou, G. X. Ning, Y. D. Gong, and C. Q. Wu, “Spectral-resolved backreflection measurement of polarization mode dispersion in optical fibers,” Optics Letters, vol. 32, no. 12, pp. 1665-1667, 2007.

    [20] D. Fritzsche, M. Paul, L. Schuerer, A. Ehrhardt, D. Breuer, W. Weiershausen, et al., “Measuring the link distribution of PMD: field trial using an RS-POTDR,” presented at Proc. of OFC/NFOEC 2008, San Diego, California, America, Feb. 24-28, 2008.

    [21] B. Huttner, J. Reecht, N. Gisin, R. Passy, and J. P. Weid, “Local birefringence measurements in single-mode fibers with coherent optical frequency-domain reflectometry,” IEEE Photonics Technology Letters, vol. 10, no. 10, pp.1458-1460, 1998.

    [22] M. Wegmuller, M. Legre, and N. Gisin, “Distributed beatlength measurement in single-mode fibers with optical frequency-domain reflectometry,” Journal of Lightwave Technology, vol. 20, no. 5, pp. 800-807, 2002.

    [23] F. Ito, X. Fan, and Y. Koshikiya, “Long-range coherent OFDR with light source phase noise compensation,” Journal of Lightwave Technology, vol. 30, no. 8, pp. 1015-1024, 2012.

    [24] X. Fan, Y. Koshikiya, and F. Ito, “Phasenoise-compensated optical frequency domain reflectometry,” IEEE Journal of Quantum Electronics, vol. 45, no. 6, pp. 594-602, 2009.

    [25] X. Fan, Y. Koshikiya, and F. Ito, “Centimeter-level spatial resolution over 40 km realized by bandwidth-division phase-noise-compensated OFDR,” Optics Express, vol. 19, no. 20, pp. 19122-19128, 2011.

    [26] F. Ito, Y. Koshikiya, and X. Fan, “Identification of high-PMD sections along installed optical cables with long range OFDR,” in Proc. Optical Fiber Communication Conference (OFC2013), Anaheim, America, Mar. 17-21, pp. 1-3, 2013.

    [27] K. Okada, K. Hashimoto, T. Shibata, and Y. Nagaki, “Optical cable fault location using correlation technique,” Electronics Letters, vol. 16, no. 16, pp. 629-630, 1980.

    [28] M. Nazarathy, S. A. Newton, R. P. Giffard, D. S. Moberly, F. Sischka, W. R. Trutna, et al., “Real-time long range complementary correlation optical time domain reflectometer,” Journal of Lightwave Technology, vol. 7, no. 1, pp. 24-38, 1989.

    [29] M. Sumida, “Optical time domain reflectometry using an M-ary FSK probe and coherent detection,” IEEE/OSA Journal Lightwave Technology, vol. 14, no. 11, pp. 2483-2491, 1996.

    [30] H. Iida, Y. Koshikiya, F. Ito, and K. Tanaka, “Ultra high sensitive coherent optical time domain reflectometry employing frequency division multiplexing,” Journal of Lightwave Technology, vol. 30, no. 8, pp. 1121-1126, 2012.

    [in Chinese], [in Chinese]. Recent Research and Development of Optical Fiber Monitoring in Communication Systems[J]. Photonic Sensors, 2013, 3(4): 304
    Download Citation