• DocumentCode
    2533626
  • Title

    Long-Range GasP with Charge Relaxation

  • Author

    Gilla, Swetha Mettala ; Roncken, Marly ; Sutherland, Ivan

  • Author_Institution
    Asynchronous Res. Center, Portland State Univ., Portland, OR, USA
  • fYear
    2010
  • fDate
    3-6 May 2010
  • Firstpage
    185
  • Lastpage
    195
  • Abstract
    GasP circuit modules communicate handshake signals in two directions over a single state wire. The 2008 Infinity test chip demonstrated GasP in 90 nm CMOS operating at four giga data items per second, but revealed that state wires about 5000 lambda long retard operation by about 10%. Simulations reported in this paper show that GasP modules will tolerate surprisingly long state wires, albeit at reduced throughput. The modules appear to operate correctly with state wires whose delay exceeds the drive time. With such long wires, the receiving module waits until passive distribution of charge brings the wire within range of the receiver´s switching threshold. Having put enough charge into the wire, or vice-versa removed enough charge from it,the sending module may proceed with its next task. This result applies equally to other single-track signaling methods.This behavior calls for a new kind of relative timing constraint to address when the wire charging or discharging process may cease rather than when the signal reaches the far end of the wire.
  • Keywords
    CMOS integrated circuits; microprocessor chips; Infinity test chip; charge relaxation; complementary metal oxide semiconductor; handshake signals; long-range GasP circuit; relative timing constraint; single-track signaling methods; size 90 nm; wire charging process; wire discharging process; Asynchronous circuits; Capacitance; Circuit testing; Delay effects; H infinity control; Semiconductor device measurement; Semiconductor device modeling; Throughput; Timing; Wire; GasP; Infinity chip; asynchronous circuits; long wires; on-chip communication; self-timed; single-track;
  • fLanguage
    English
  • Publisher
    ieee
  • Conference_Titel
    Asynchronous Circuits and Systems (ASYNC), 2010 IEEE Symposium on
  • Conference_Location
    Grenoble
  • ISSN
    1522-8681
  • Print_ISBN
    978-0-7695-4032-0
  • Electronic_ISBN
    1522-8681
  • Type

    conf

  • DOI
    10.1109/ASYNC.2010.26
  • Filename
    5476964