• DocumentCode
    743317
  • Title

    Novel Bio-Inspired Approach for Fault-Tolerant VLSI Systems

  • Author

    Samie, Mohammad ; Dragffy, Gabriel ; Tyrrell, Andy M. ; Pipe, T. ; Bremner, Paul

  • Author_Institution
    Bristol Robot. Lab., Univ. of the West of England, Bristol, UK
  • Volume
    21
  • Issue
    10
  • fYear
    2013
  • Firstpage
    1878
  • Lastpage
    1891
  • Abstract
    Living organisms are complex systems, and yet they possess extremely high degrees of reliability. Since failures are local, their repair will often be taken on the local (cell) level. Engineers have long sought systems that could offer similar reliability and have relatively recently started trying to integrate ideas inspired by nature into the modern silicon technology of today. While bio-inspired proposals inspired by multicellular systems demonstrated feasibility, the resulting systems were often unduly complex. We are proposing a radically new methodology inspired by the characteristics, morphology, and behavior of simpler prokaryotic bacteria and bacterial communities. The hypothesis we use is that such simple unicellular organisms could help to build simpler cost effective systems, but with improved reliability than hitherto achieved by other methods. The result is a cellular array-based fault-tolerant electronic system with online self-test and self-repair capability. These ideas are simulated, tested, and verified through the successful construction of demonstrators: a proportional, integral, and differential and a robot controller. This paper discusses the underlying biological principles that guide our research and the bio-inspired model that we have derived. It also gives a detailed circuit and system description of the architecture and its run-time self-diagnostic and self-repair capability.
  • Keywords
    VLSI; automatic testing; biological techniques; cellular arrays; cellular biophysics; fault tolerance; intelligent robots; microorganisms; self-adjusting systems; three-term control; VLSI systems; bacterial communities; bio-inspired model; cellular array-based fault-tolerant electronic system; demonstrators; modern silicon technology; multicellular systems; online self-test capability; prokaryotic bacteria; proportional-integral-differential controller; robot controller; self-repair capability; unicellular organisms; Circuit faults; Communities; Computer architecture; Microprocessors; Redundancy; Routing; Artificial systems; bio-inspired electronics; fault-tolerance; multicellular arrays; prokaryotic cells;
  • fLanguage
    English
  • Journal_Title
    Very Large Scale Integration (VLSI) Systems, IEEE Transactions on
  • Publisher
    ieee
  • ISSN
    1063-8210
  • Type

    jour

  • DOI
    10.1109/TVLSI.2012.2220793
  • Filename
    6376255