DocumentCode
1807397
Title
WaveCube: A scalable, fault-tolerant, high-performance optical data center architecture
Author
Kai Chen ; Xitao Wen ; Xingyu Ma ; Yan Chen ; Yong Xia ; Chengchen Hu ; Qunfeng Dong
fYear
2015
fDate
April 26 2015-May 1 2015
Firstpage
1903
Lastpage
1911
Abstract
Optical data center networks (DCNs) are becoming increasingly attractive due to their technological strengths compared to traditional electrical networks. However, prior optical DCNs are either hard to scale, vulnerable to single point of failure, or provide limited network bisection bandwidth for many practical DCN workloads. To this end, we present WaveCube, a scalable, fault-tolerant, high-performance optical DCN architecture. To scale, WaveCube removes MEMS1, a potential bottleneck, from its design. Wave-Cube is fault-tolerant since it does not have single point of failure and there are multiple node-disjoint parallel paths between any pair of Top-of-Rack (ToR) switches. WaveCube delivers high performance by exploiting multi-pathing and dynamic link bandwidth along the path. Our extensive evaluation results show that WaveCube outperforms previous optical DCNs by up to 400% and delivers network bisection bandwidth that is 70%-85% of an ideal non-blocking network under both realistic and synthetic traffic patterns. WaveCube´s performance degrades gracefully under failures - it drops 20% even with 20% links cut. WaveCube also holds promise in practice - its wiring complexity is orders of magnitude lower than Fattree, BCube and c-Through at large scale, and its power consumption is 35% of them.
Keywords
computer centres; computer networks; fault tolerance; microswitches; optical switches; telecommunication network topology; BCube; DCN workloads; Fattree; MEMS; ToR switches; WaveCube; c-Through; dynamic link bandwidth; electrical networks; fault-tolerant optical data center architecture; high-performance optical data center architecture; network bisection bandwidth; node-disjoint parallel paths; nonblocking network; optical DCN; optical data center networks; power consumption; synthetic traffic patterns; top-of-rack switches; Bandwidth; Fault tolerance; Micromechanical devices; Optical fiber networks; Optical switches; Ports (Computers); Topology;
fLanguage
English
Publisher
ieee
Conference_Titel
Computer Communications (INFOCOM), 2015 IEEE Conference on
Conference_Location
Kowloon
Type
conf
DOI
10.1109/INFOCOM.2015.7218573
Filename
7218573
Link To Document