Title :
WDM packet routing for high-capacity data networks
Author :
Yang, Qimin ; Bergman, Keren ; Hughes, Gary D. ; Johnson, Frederick G.
Author_Institution :
Dept. of Electr. Eng., Princeton Univ., NJ, USA
fDate :
10/1/2001 12:00:00 AM
Abstract :
We present experimental and numerical studies of a novel packet-switch architecture, the data vortex, designed for large-scale photonic interconnections. The selfrouting multihop packet switch efficiently scales to large port counts (>10 k) while maintaining low latencies, a narrow latency distribution, and high throughput. To facilitate optical implementation, the data-vortex architecture employs a novel hierarchical topology, traffic control, and synchronous timing that act to reduce the necessary routing logic operations and buffering. As a result of this architecture, all routing decisions for the data packets are based on a single logic operation at each node. The routing is further simplified by the employment of wavelength division multiplexing (WDM)-encoded header bits, which enable packet-header processing by simple wavelength filtering. The packet payload remains in the optical domain as it propagates through the data-vortex switch fabric, exploiting the transparency and high bandwidths achievable in fiber optic transmission. In this paper, we discuss numerical simulations of the data-vortex performance and report results from an experimental investigation of multihop WDM packet routing in a recirculating test bed
Keywords :
packet switching; telecommunication network routing; telecommunication traffic; vortices; wavelength division multiplexing; WDM packet routing; WDM-encoded header bits; data packets; data vortex; data-vortex architecture; data-vortex performance; data-vortex switch fabric; fiber optic transmission; hierarchical topology; high bandwidths; high throughput; high-capacity data networks; large port counts; large-scale photonic interconnections; low latencies; multihop WDM packet routing; narrow latency distribution; optical domain; packet payload; packet-switch architecture; recirculating test bed; routing decisions; routing logic operations; selfrouting multihop packet switch; synchronous timing; traffic control; transparency; wavelength filtering; Delay; Large-scale systems; Logic; Optical buffering; Optical filters; Optical packet switching; Optical switches; Optical vortices; Routing; Wavelength division multiplexing;
Journal_Title :
Lightwave Technology, Journal of