Journal of Optoelectronics · Laser, Volume. 36, Issue 7, 760(2025)
Collision-avoid reception for AWG based interconnects by triple polarization multiplexing
[1] [1] KACHRIS C, KANONAKIS K, TOMKOS I. Optical interconnection networks in data centers: Recent trends and future challenges[J]. IEEE Communications Magazine, 2013, 51(9):39-45.
[2] [2] YUANG M, TIEN P, RUAN W, et al. OPTUNS: Optical intra-data center network architecture and prototype testbed for a 5G edge cloud [Invited][J]. Journal of Optical Communications and Networking, 2020, 12(1):A28-A37.
[3] [3] HOUTSMA V, VAN VEEN D. Higher-speed pons based on data center technology and optics[Invited][J]. Journal of Optical Communications and Networking, 2024, 16:A98-A104.
[4] [4] FIORANI M, ALEKSIC S, CASONI M, et al. Energy-efficient elastic optical interconnect architecture for data centers[J]. IEEE Communications Letters, 2014, 18(9):1531-1534.
[5] [5] CHENG Y, FIORANI M, WOSINSKA L, et al. Reliable and cost efficient passive optical interconnects for data centers[J]. IEEE Communications Letters, 2015, 19(11):1913-1916.
[6] [6] BAZIANA P, DRAINAKIS G. Collision-free distributed MAC protocol for passive optical intra-rack data center networks[J]. Journal of Optical Communications and Networking, 2022, 14(8):654-666.
[7] [7] DRAINAKIS G, BAZIANA P, BOGRIS A. Scalable and low server-to-server latency data center network architecture based on optical packet inter-rack and intra-rack switching[J]. Journal of Optical Communicationsand Networking, 2023, 15:804-819.
[8] [8] LU Y, CAO L F, XU K Q, et al. A fast data synchronization technique in optical inter-connected data centers[J]. Optical Switching and Networking, 2023, 47:100698.
[9] [9] GUO Y Q, GAN C Q, FANG Y, et al. Low-cost WDM-PON supporting flexible point-to-point communication between any two ONUs for data centers[J]. Optical Fiber Technology, 2023, 75:103153.
[10] [10] ROYCHOWDHURY P, ALGHAZO J M, LATIF G. POID: A passive all-optical inter-rack interconnect for data centers[J]. Wireless Networks, 2021, 27:781-793.
[11] [11] GONG Y, HONG X Z, LU Y, et al. Passive optical interconnects at top of the rack: Offering high energy efficiency for datacenters[J]. Optics Express, 2015, 23(6):7957-7970.
[12] [12] HONG X Z, YANG Y, GONG Y, et al. Passive optical interconnects based on cascading wavelength routing devices for datacenters: a cross-layer perspective[J]. Journal of Optical Communications and Networking, 2017, 9(4):C45-C53.
[13] [13] YE T, LEE T T, GE M, et al. Modular AWG-based interconnection for large-scale data center networks[J]. IEEE Transactions on Cloud Computing, 2018, 5(3):785-799.
[14] [14] GONG Y, YANG B, ZHANG D, et al. Crosstalk-aware multiple-AWG based optical interconnects for datacenter networks[J]. Optics Communications, 2018, 426:151-157.
[15] [15] HONG Y Y, ZHANG D, YANG B, et al. A multi-floor arrayed waveguide grating based architecture with grid topology for datacenter networks[J]. IEEE Access, 2020, 8:107134-107145.
[16] [16] YEH C H, WANG B Y, HSU W H, et al. A simple wdm-pom architecture together with private interconnected onus[J]. IEEE Access, 2021, 9:126319-126323.
[17] [17] ZHU Y F, GAN C Q, LIN W, et al. Design and simulation of optical network architecture based on point-to-multipoint direct communication between optical network units for data center[J]. Photonic Network Communications, 2022, 44:1-9.
[20] [20] BAZIANA P, DRAINAKIS G. Collision-free distributed mac protocol for passive optical intra-rack data center networks[J]. Journal of Optical Communications and Networking, 2022, 8:654-666.
[21] [21] JADOON R N, FAYYAZ M, ZHOU W Y, et al. PCOI: Packet classification-based optical interconnect fordata centre networks[J]. Mathematical Problems in Engineering, 2020, 2020(1):1-11.
[22] [22] LU Y, AGRELL E, PANG X D, et al. Multi-channel collision-free reception for optical interconnects[J]. Optics Express, 2018, 26(10):13214-13222.
[24] [24] MURANO R, CAHILL M J L. Low cost tunable receivers for wavelength agile PONs[C]//Proceedings of ECOC, September 16-20, 2012, Amsterdam, Netherlands. New York: IEEE, 2012:1-3
[25] [25] XU L, CHI N, OXENLWE L K, et al. A new orthogonal labeling scheme based on a 40 Gb/s DPSK payload and a 2.5 Gb/s PolSK label[J]. IEEE Photonics Technology Letters, 2005, 17(12):2772-2774.
Get Citation
Copy Citation Text
YAN Minghao, LU Yang, CHENG Liang, XU Kaiqiang, ZHAI Yanrong, BI Meihua. Collision-avoid reception for AWG based interconnects by triple polarization multiplexing[J]. Journal of Optoelectronics · Laser, 2025, 36(7): 760
Category:
Received: Mar. 26, 2024
Accepted: Jun. 24, 2025
Published Online: Jun. 24, 2025
The Author Email: LU Yang (544502612@qq.com)