Title :
Silicon Nanophotonic Network-on-Chip Using TDM Arbitration
Author :
Hendry, Gilbert ; Chan, Johnnie ; Kamil, Shoaib ; Oliker, Lenny ; Shalf, John ; Carloni, Luca P. ; Bergman, Keren
Author_Institution :
Lightwave Res. Lab., Columbia Univ., New York, NY, USA
Abstract :
Silicon nanophotonics is an emerging technology platform for offering high-bandwidth connectivity with extreme energy efficiency for future networks-on-chip. Using circuit-switching as an arbitration mechanism takes advantage of the low transmission energy in end-to-end communication and high bandwidth density of wave guides using WDM. However, pure circuit-switching requires an electronic control network which suffers from unfairness under heavy loads and can lead to high latencies, low network utilization, and an overhead in power dissipation. We propose time division multiplexed distributed arbitration, which provides round-robin fairness to setting up photonic circuit paths. Our design can supply 2-4× the bandwidth at network saturation for random traffic, and is an order of magnitude more efficient when simulated with scientific application traces compared to both electronic and other photonic network architectures.
Keywords :
elemental semiconductors; integrated optics; nanophotonics; network-on-chip; optical waveguides; photonic switching systems; silicon; time division multiplexing; arbitration mechanism; bandwidth density; circuit-switching; end-to-end communication; extreme energy efficiency; high-bandwidth connectivity; latencies; network utilization; networks-on-chip; photonic circuit paths; power dissipation overhead; round-robin fairness; scientific application traces; silicon nanophotonics; time division multiplexed distributed arbitration; waveguides; Computer architecture; Logic gates; Optical switches; Optical waveguides; Photonics; Time division multiplexing;
Conference_Titel :
High Performance Interconnects (HOTI), 2010 IEEE 18th Annual Symposium on
Conference_Location :
Mountain View, CA
Print_ISBN :
978-1-4244-8547-5
Electronic_ISBN :
978-0-7695-4208-9
DOI :
10.1109/HOTI.2010.12