• DocumentCode
    1266570
  • Title

    Improved Design of High-Performance Parallel Decimal Multipliers

  • Author

    Vazquez, Alvaro ; Antelo, Elisardo ; Montuschi, Paolo

  • Author_Institution
    Lab. de l´´lnformatique du Parallelisme, ENS-Lyon, Lyon, France
  • Volume
    59
  • Issue
    5
  • fYear
    2010
  • fDate
    5/1/2010 12:00:00 AM
  • Firstpage
    679
  • Lastpage
    693
  • Abstract
    The new generation of high-performance decimal floating-point units (DFUs) is demanding efficient implementations of parallel decimal multipliers. In this paper, we describe the architectures of two parallel decimal multipliers. The parallel generation of partial products is performed using signed-digit radix-10 or radix-5 recodings of the multiplier and a simplified set of multiplicand multiples. The reduction of partial products is implemented in a tree structure based on a decimal multioperand carry-save addition algorithm that uses unconventional (non BCD) decimal-coded number systems. We further detail these techniques and present the new improvements to reduce the latency of the previous designs, which include: optimized digit recoders for the generation of 2n-tuples (and 5-tuples), decimal carry-save adders (CSAs) combining different decimal-coded operands, and carry-free adders implemented by special designed bit counters. Moreover, we detail a design methodology that combines all these techniques to obtain efficient reduction trees with different area and delay trade-offs for any number of partial products generated. Evaluation results for 16-digit operands show that the proposed architectures have interesting area-delay figures compared to conventional Booth radix-4 and radix--8 parallel binary multipliers and outperform the figures of previous alternatives for decimal multiplication.
  • Keywords
    adders; counters; encoding; floating point arithmetic; parallel architectures; trees (mathematics); bit counters; carry-free adders; decimal carry-save adders; decimal coded operands; decimal floating-point units; decimal multioperand carry-save addition algorithm; high-performance parallel decimal multipliers; tree structure; unconventional decimal-coded number systems; Application software; Computer architecture; Counting circuits; Delay; Design methodology; Design optimization; Floating-point arithmetic; Hardware; Software performance; Software standards; Tree data structures; Decimal multiplication; decimal carry-save addition; decimal codings.; parallel multiplication;
  • fLanguage
    English
  • Journal_Title
    Computers, IEEE Transactions on
  • Publisher
    ieee
  • ISSN
    0018-9340
  • Type

    jour

  • DOI
    10.1109/TC.2009.167
  • Filename
    5313798