Title :
A Scalable, Low-Latency, High-Throughput, Optical Interconnect Architecture Based on Arrayed Waveguide Grating Routers
Author :
Proietti, Roberto ; Zheng Cao ; Nitta, Christopher J. ; Yuliang Li ; Yoo, S. J. Ben
Author_Institution :
Dept. of Electr. & Comput. Eng., Univ. of California, Davis, Davis, CA, USA
Abstract :
This paper proposes, simulates, and experimentally demonstrates an optical interconnect architecture for large-scale computing systems. The proposed architecture, Hierarchical Lightwave Optical Interconnect Network (H-LION), leverages wavelength routing in arrayed waveguide grating routers (AWGRs), and computing nodes (or servers) with embedded routers and wavelength-specific optical I/Os. Within the racks and clusters, the interconnect topology is hierarchical all-to-all exploiting passive AWGRs. For the intercluster communication, the proposed architecture exploits a flat and distributed Thin-CLOS topology based on AWGR-based optical switches. H-LION can scale beyond 100 000 nodes while guaranteeing up to 1.83×saving in number of inter-rack cables, and up to 1.5×saving in number of inter-rack switches, when compared with a legacy three-tier Fat Tree network. Network simulation results show a system-wide network throughput reaching as high as 90% of the total possible capacity in case of synthetic traffic with uniform random distribution. Experiments show 97% intracluster throughput for uniform random traffic, and error-free intercluster communication at 10 Gb/s.
Keywords :
arrayed waveguide gratings; network routing; optical interconnections; optical switches; arrayed waveguide grating routers; bit rate 10 Gbit/s; computing nodes; embedded routers; hierarchical lightwave optical interconnect network; high-throughput optical interconnect architecture; intercluster communication; interconnect topology; large-scale computing systems; low-latency optical interconnect architecture; network simulation; optical switches; scalable optical interconnect architecture; thin-CLOS topology; uniform random distribution; wavelength routing; wavelength-specific optical I/Os; Arrayed waveguide gratings; Computer architecture; Optical interconnections; Optical switches; Ports (Computers); Servers; Arrayed waveguide grating routers (AWGRs); Datacenter networking; arrayed waveguide grating routers; datacenter networking; optical interconnects; optical switches;
Journal_Title :
Lightwave Technology, Journal of
DOI :
10.1109/JLT.2015.2395352