Abstract
We investigate capital expenditure (CapEx) advantages of multi-core fiber (MCF) networks by modeling and solving CapEx-minimized planning problem. Integer linear programming model is established, and numerical results are calculated and analyzed. We conduct the solving process under two kinds of traffic patterns of light traffic and heavy traffic. The influences of inter-core crosstalk on MCF and its multi-input multi-output (MIMO)-based crosstalk suppression are also evaluated. Numerical results show that when inter-core crosstalk in MCF is not considered, MCF networks have CapEx advantages under both given traffic patterns by using mixed MCF&SCF deployment strategy, despite the variation in MCF optical amplifier’s price whose cost takes the largest share of the total network CapEx. However, when the inter-core crosstalk in MCF is taken into consideration, the costs of networks using MCF go higher than those of single-core fiber (SCF) networks. With the help of MIMO-based inter-core crosstalk suppression, the negative impact of inter-core crosstalk can be mitigated, and MCF can still show its CapEx advantages when the traffic load is heavy.
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Korotky, S.K.: Price-points for components of multi-core fiber communication systems in backbone optical networks. J. Opt. Commun. Netw. 4(5), 426–435 (2012)
Tkach, R.W.: Scaling optical communications for the next decade and beyond. Bell Labs Tech. J. 14(4), 3–9 (2010)
Li, Y., Hua, N., Zhang, H. et al.: Reconfigurable Bandwidth Service based on optical network state for inter-data center communication. In: Communications in China (ICCC), 2012 1st IEEE International Conference on, pp. 282–284. IEEE (2012)
Essiambre, R.J., Kramer, G., Winzer, P.J., et al.: Capacity limits of optical fiber networks. J. Lightwave Technol. 28(4), 662–701 (2010)
Winzer, P.J.: Making spatial multiplexing a reality. Nature Photonics 8(5), 345–348 (2014)
Zhu, B., Taunay, T.F., Yan, M.F., et al.: Seven-core multicore fiber transmissions for passive optical network. Opt. Express 18(11), 11117–11122 (2010)
Winzer, P.J.: Spatial multiplexing: the next frontier in network capacity scaling. Proceedings of ECOC, We.1.D.1 (2013)
Winzer, P.J.: Making spatial multiplexing a reality. Nature Photonics 8(5), 345–348 (2014)
Sakaguchi, J., Awaji, Y., Wada, N., et al.: 109-Tb/s (7\(\times \)172-Gb/s SDM/WDM/PDM) QPSK transmission through 16.8-km homogeneous multi-core fiber. In: Optical Fiber Communication Conference, pp. PDPB6. Optical Society of America (2011)
Sakaguchi, J., Puttnam, B.J., Klaus, W. et al.: 19-core fiber transmission of \(19\times 100 \times \text{172-Gb/s }\) SDM-WDM-PDM-QPSK signals at 305Tb/s. In: National Fiber Optic Engineers Conference. pp. PDP5C. 1. Optical Society of America (2012)
Chandrasekhar, S., Gnauck, A.H., Liu, X., et al.: WDM/SDM transmission of \(10 \times \text{128-Gb/s }\) PDM-QPSK over 2688-km 7-core fiber with a per-fiber net aggregate spectral-efficiency distance product of 40,320 km\(\cdot \) b/s/Hz. Optics Express 20(2), 706–711 (2012)
Mizuno, T., Kobayashi, T., Takara, H. et al.: 12-core x 3-mode dense space division multiplexed transmission over 40 km employing multi-carrier signals with parallel MIMO equalization. In: Optical Fiber Communication Conference. pp. Th5B. 2. Optical Society of America (2014)
Ryf, R., Randel, S., Gnauck, A.H. et al.: Space-division multiplexing over 10 km of three-mode fiber using coherent \(6 \times 6\) MIMO processing. In: Optical Fiber Communication Conference, pp. PDPB10. Optical Society of America (2011 )
Randel, S., Ryf, R., Sierra, A., et al.: \(6\times \text{56-Gb/s }\) mode-division multiplexed transmission over 33-km few-mode fiber enabled by \(6 \times 6\) MIMO equalization. Optics Express 19(17), 16697–16707 (2011)
Li Y, Hua N, Zheng X, et al.: CapEx Advantages of Few-Mode Fiber Networks. In: Optical Fiber Communication Conference, pp. Th2A. 43. Optical Society of America (2015)
Li, Y., Hua, N., Zheng, X.: CapEx-Minimized Planning for Multi-Core Fiber Based Optical Networks. In: Asia Communications and Photonics Conference, pp. ATh3A. 170. Optical Society of America (2014)
Li, Y., Hua, N., Zheng, X.: An analysis of optimized CapEx for multi-core fiber based optical networks. In: Optical Communications and Networks (ICOCN), 2014 13th International Conference on, pp. 1–4. IEEE (2014)
Ye, F., Tu, J., Saitoh, K. et al.: A new and simple method for crosstalk estimation in homogeneous trench-assisted multi-core fibers. In: Asia Communications and Photonics Conference. pp. AW4C. 3. Optical Society of America (2014)
Takenaga, K., Arakawa, Y., Tanigawa, S., et al.: An investigation on crosstalk in multi-core fibers by introducing random fluctuation along longitudinal direction. IEICE Trans. Commun. 94(2), 409–416 (2011)
Muhammad, A., Zervas, G., Simeonidou, D. et al.: Routing, spectrum and core allocation in flexgrid SDM networks with multi-core fibers. In: Optical Network Design and Modeling, 2014 International Conference on, pp. 192–197. IEEE (2014)
Li, Y., Hua, N., Zheng, X.: Routing, Wavelength and Core Allocation Planning for Multi-core Fiber Networks with MIMO-based Crosstalk Suppression. In: OptoElectronics and Communications (OECC), 2015 20th International Conference on. IEEE, PWe.33
Fujii, S., Hirota, Y., Tode, H., et al.: On-demand spectrum and core allocation for reducing crosstalk in multicore fibers in elastic optical networks. J. Optical Commun. Netw. 6(12), 1059–1071 (2014)
Ryf, R., Essiambre, R., Randel, S., et al.: MIMO-based crosstalk suppression in spatially multiplexed 3 56-Gb/s PDM-QPSK signals for strongly coupled three-core fiber. IEEE Photonics Technol. Lett. 23(20), 1469–1471 (2011)
Ito, T., Le Taillandier de Gabory, E., Arikawa, M. et al.: Reduction of influence of inter-core crosstalk in MCF with bidirectional assignment between neighboring cores. In: Optical Fiber Communication Conference, pp. OTh3K. 2. Optical Society of America (2013)
Sano, A., Takara, H., Kobayashi, T., et al.: 409-Tb/s+ 409-Tb/s crosstalk suppressed bidirectional MCF transmission over 450 km using propagation-direction interleaving. Optics Express 21(14), 16777–16783 (2013)
Randel, S., Magarini, M., Ryf, R. et al.: MIMO-based signal processing of spatially multiplexed 112-Gb/s PDM-QPSK signals using strongly-coupled 3-core fiber. In: European Conference and Exposition on Optical Communications, pp. Tu. 5. B. 1. Optical Society of America (2011)
OFS Fitel. Available: www.ofsoptics.com. Accessed 24 June 2014
Ye, F., Tu, J., Saitoh, K. et al.: A New and Simple Method for Crosstalk Estimation in Homogeneous Trench-Assisted Multi-Core Fibers. In: Asia Communications and Photonics Conference, pp. AW4C. 3. Optical Society of America (2014)
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This work was supported in part by projects under National 973 Program Grant No. 2014CB340104/05, and NSFC under Grant Nos. 61201188, 61321004.
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Li, Y., Hua, N. & Zheng, X. CapEx advantages of multi-core fiber networks. Photon Netw Commun 31, 228–238 (2016). https://doi.org/10.1007/s11107-015-0536-9
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DOI: https://doi.org/10.1007/s11107-015-0536-9