Design and implementation of MPSoC single chip with butterfly network

Khawla Hamwi, Omar Hammami

Research output: Chapter in Book/Report/Conference proceedingConference contributionpeer-review

Abstract

Multiprocessor System on Chip (MPSoC) are increasingly considered as the post promising solution for complex embedded applications. The most significant MPSoC design challenge comes from interconnect infrastructure. Network-on-Chip (NoC) with multiple constraints to be satisfied is a promising solution for these challenges. It has been shown that infrastructure topology; routing and switching schemes have great effects on overall interconnect performance under different synthesis and real life traffic patterns. In this paper, we report the design and single FPGA chip implementation of an 8-node butterfly network based on MPSoC. We analyze the performance of this MPSoC on a radix-2 Fast Fourier Transform whereas the FFT algorithm is parallel programmed and it uses our NoC as a communication environment. Additionally, an exploration is done in two dimensions the number of processors used in parallelism process and the input dataset size of the FFT.

Original languageEnglish
Title of host publicationProceedings of the 2010 18th IEEE/IFIP International Conference on VLSI and System-on-Chip, VLSI-SoC 2010
Pages143-148
Number of pages6
DOIs
Publication statusPublished - 1 Dec 2010
Event2010 18th IEEE/IFIP International Conference on VLSI and System-on-Chip, VLSI-SoC 2010 - Madrid, Spain
Duration: 27 Sept 201029 Sept 2010

Publication series

NameProceedings of the 2010 18th IEEE/IFIP International Conference on VLSI and System-on-Chip, VLSI-SoC 2010

Conference

Conference2010 18th IEEE/IFIP International Conference on VLSI and System-on-Chip, VLSI-SoC 2010
Country/TerritorySpain
CityMadrid
Period27/09/1029/09/10

Keywords

  • Butterfly topology
  • Fast fourier transform
  • Multi-processor system-on-chip
  • Network-on-chip

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