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PULSE: Optical Circuit Switched Data Center Architecture Operating at Nanosecond Timescales

Journal of Lightwave Technology | Benjamin J, Gerard T, Lavery D, Bayvel P, Zervas G. | We introduce PULSE, a sub-μs optical circuit switched data centre network architecture controlled by distribu...

15 September 2020

PULSE: Optical Circuit Switched Data Center Architecture Operating at Nanosecond Timescales

Abstract

 

We introduce PULSE, a sub-μs optical circuit switched data centre network architecture controlled by distributed hardware schedulers. PULSE is a flat architecture that uses parallel passive coupler-based broadcast and select networks. We employ a novel transceiver architecture, for dynamic wavelength-timeslot selection, to achieve a reconfiguration time down to O(100ps), establishing timeslots of O(10ns). A novel scheduling algorithm that has a clock period of 2.3ns performs multiple iterations to maximize throughput, wavelength usage and reduce latency, enhancing the overall performance.

In order to scale, the single-hop PULSE architecture uses sub-networks that are disjoint by using multiple transceivers for each node in 64 node racks. At the reconfiguration circuit duration (epoch = 120 ns), the scheduling algorithm is shown to achieve up to 93% throughput and 100% wavelength usage of 64 wavelengths, incurring an average latency that ranges from 0.7-1.2 μs with best-case 0.4 μs median and 5 μs tail latency, limited by the timeslot (20 ns) and epoch size (120 ns). We show how the 4096-node PULSE architecture allows up to 260k optical channels to be re-used across sub-networks achieving a capacity of 25.6 Pbps with an energy consumption of 82 pJ/bit when using coherent receiver.
 

Publication Type:Journal Article
Publication Sub Type:Article
Authors:Benjamin J, Gerard T, Lavery D, Bayvel P, Zervas G
Publisher:
Institute of Electrical and Electronics Engineers
Publication date:15/09/2020
Pagination:

4906 - 4921

Journal:Journal of Lightwave Technology
Volume:38
Issue:18
Status:Published 
Print ISSN:0733-8724
DOI:http://dx.doi.org/10.1109/JLT.2020.2997664
Full text URL:

https://discovery.ucl.ac.uk/id/eprint/10098842/


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