Title :
Fractional wavelength OCS based on the golden ratio
Author :
Rosberg, Zvi ; Ostry, Diethelm
Author_Institution :
CSIRO ICT Centre, Sydney, NSW
Abstract :
With current optical switches, an entire wavelength is switched from a source node to a single destination node, thereby precluding fractional wavelength allocation. This shortcoming results in (i) requiring at least N(N-1) wavelengths for complete connectivity of a network with N end nodes; (ii) inability to aggregate/separate traffic in the core nodes; and (iii) a mismatch in connecting subnetworks of different capacities. A recently proposed time-driven optical switch based on a universal time clock (UTC) demonstrates synchronized time frame switching of a given wavelength without processing the frame content. A question that arises then, is how to allocate the time frames of a given wavelength amongst the N destinations so as to meet the required offered load and to minimize the mean delay and buffer size at each source end node. We propose and analyze a fractional wavelength circuit switching scheme based on the uniformity properties of the golden ratio and demonstrate its performance for Poisson and Norros long-range-dependent traffic.
Keywords :
clocks; delays; optical switches; telecommunication traffic; Norros long-range-dependent traffic; Poisson long-range-dependent traffic; aggregate/separate traffic; buffer size; core nodes; fractional wavelength allocation; golden ratio; mean delay; optical circuit switching; time-driven optical switch; universal time clock; Aggregates; Circuits; Clocks; Delay effects; Joining processes; Optical switches; Performance analysis; Propagation delay; Synchronization; Telecommunication traffic; All optical networks; Fractional wavelength; Golden ratio; Long range dependence; Most regular sequences; Optical circuit switching; Optical switches; Time-driven switches;
Conference_Titel :
Transparent Optical Networks, 2008. ICTON 2008. 10th Anniversary International Conference on
Conference_Location :
Athens
Print_ISBN :
978-1-4244-2625-6
Electronic_ISBN :
978-1-4244-2626-3
DOI :
10.1109/ICTON.2008.4598359