• DocumentCode
    1543069
  • Title

    Case study in RSFQ design: fast pipelined parallel adder

  • Author

    Bunyk, P. ; Litskevitch, P.

  • Author_Institution
    Dept. of Phys., State Univ. of New York, Stony Brook, NY, USA
  • Volume
    9
  • Issue
    2
  • fYear
    1999
  • fDate
    6/1/1999 12:00:00 AM
  • Firstpage
    3714
  • Lastpage
    3720
  • Abstract
    We present a design for parallel pipelined carry-lookahead Kogge-Stone 32and 64-bit integer adders with the traditional concurrent flow timing scheme, and the results of its gate-level logical simulation using a VHDL model, with parameters reduced from the physical-level simulation of RSFQ cells. The design uses only five different types of bit processing blocks and is easily scalable to any length of the operands. The multi-pulse logic representation together with interchanging logical polarity between pipeline stages is used to simplify the design of the blocks, which contain only two types of clocked RSFQ gates: an inverter and a D-flip-flop. Simulations show that in the absence of thermal fluctuations and random parameter spread the clock frequency of the adder implemented in the projected 0.8 /spl mu/m Nb-trilayer technology could be as high as 150 GHz. However, an approximate account of these factors shows that in order to achieve a 99% adder fabrication yield and a 10/sup -25/ adder error rate the maximal frequency should be reduced to 60 GHz for 1.5% Josephson junction spread and to 52 GHz for 3% spread. Adder latency is close to 260 ps for 32 bits and 320 ps for 64 bits. We plan to re-design the adders to increase their speed.
  • Keywords
    adders; flip-flops; hardware description languages; logic gates; logic simulation; pipeline processing; superconducting logic circuits; 0.8 micron; 260 ps; 32 bit; 320 ps; 52 to 150 GHz; 64 bit; D-flip-flop; Josephson junction spread; RSFQ design; VHDL model; bit processing blocks; carry-lookahead Kogge-Stone adders; clock frequency; concurrent flow timing scheme; fabrication yield; gate-level logical simulation; interchanging logical polarity; inverter; multi-pulse logic representation; pipelined parallel adder; Clocks; Error analysis; Fabrication; Fluctuations; Frequency; Josephson junctions; Logic design; Pipelines; Pulse inverters; Timing;
  • fLanguage
    English
  • Journal_Title
    Applied Superconductivity, IEEE Transactions on
  • Publisher
    ieee
  • ISSN
    1051-8223
  • Type

    jour

  • DOI
    10.1109/77.783835
  • Filename
    783835