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LADPM: Latency-Aware Dual-Partition Multicast routing for mesh-based network-on-chips

Research output: Chapters, Conference Papers, Creative and Literary WorksRGC 32 - Refereed conference paper (with host publication)peer-review

Abstract

Networks-on-Chips (NoCs) provides an efficient architectural paradigm as interconnect for state-of-the-art Chip Multi-processors (CMPs). With the increasing development of novel applications in NoCs, one-to-many (multicast) or one-to-all (broadcast) communications are becoming universal and indispensable. The performance constraint metrics, such as power consumption and network latency, are often stringent on NoC systems. Without multicast support, the performance of traditional NoCs will be significantly degraded by such communications. In this paper, we propose Latency-Aware Dual-Partition Multicast (LADPM) routing for mesh-based on-chip networks to reduce packet latency and balance network load. A detailed wormhole router design is also presented for the proposed LADPM scheme. LADPM scheme can adaptively make routing decision based on the distribution of the destination nodes of the multicast traffic. Experimental results, implemented under a cycle-accurate simulator, show that compared with the best known multicast scheme RPM, LADPM reduces Energy-Delay Product by 25.4% on average. More importantly, in heavy traffic load networks, LADPM is a scalable solution. © 2010 IEEE.
Original languageEnglish
Title of host publicationProceedings of the International Conference on Parallel and Distributed Systems - ICPADS
Pages423-430
DOIs
Publication statusPublished - 2010
Event16th IEEE International Conference on Parallel and Distributed Systems, ICPADS 2010 - Shanghai, China
Duration: 8 Dec 201010 Dec 2010

Publication series

Name
ISSN (Print)1521-9097

Conference

Conference16th IEEE International Conference on Parallel and Distributed Systems, ICPADS 2010
PlaceChina
CityShanghai
Period8/12/1010/12/10

Research Keywords

  • Latency-aware
  • Load-balance
  • Multicast
  • Network-on-Chips (NoCs)
  • Rectilinear steiner arborescence

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