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Design of a reversible floating-point adder architecture

  • Michael Nachtigal
  • , Himanshu Thapliyal
  • , Nagarajan Ranganathan

Producción científica: Conference contributionrevisión exhaustiva

19 Citas (Scopus)

Resumen

The study of reversible circuits holds great promise for emerging technologies. Reversible circuits offer the possibility for great reductions in power consumption, and quantum computers will require logically reversible digital circuits. Many different reversible implementations of logical and arithmetic units have been proposed in the literature, but very few reversible floating-point designs exist. Floating-point operations are needed very frequently in nearly all computing disciplines, and studies have shown floating-point addition to be the most oft used floating-point operation. In this paper we present for the first time a reversible floating-point adder that closely follows the IEEE754 specification for binary floating-point arithmetic. Our design requires reversible designs of a controlled swap unit, a subtracter, an alignment unit, signed integer representation conversion units, an integer adder, a normalization unit, and a rounding unit. We analyze these major components in terms of quantum cost, garbage outputs, and constant inputs.

Idioma originalEnglish
Título de la publicación alojada2011 11th IEEE International Conference on Nanotechnology, NANO 2011
Páginas451-456
Número de páginas6
DOI
EstadoPublished - 2011
Evento2011 11th IEEE International Conference on Nanotechnology, NANO 2011 - Portland, OR, United States
Duración: ago 15 2011ago 19 2011

Serie de la publicación

NombreProceedings of the IEEE Conference on Nanotechnology
ISSN (versión impresa)1944-9399
ISSN (versión digital)1944-9380

Conference

Conference2011 11th IEEE International Conference on Nanotechnology, NANO 2011
País/TerritorioUnited States
CiudadPortland, OR
Período8/15/118/19/11

ASJC Scopus subject areas

  • Bioengineering
  • Electrical and Electronic Engineering
  • Materials Chemistry
  • Condensed Matter Physics

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