DocumentCode :
2997626
Title :
Toward All Optical Interconnections in Chip Multiprocessor (2)
Author :
Channoufi, M. ; Lecoy, P. ; Attia, R. ; Delacressonniere, B. ; Garcia, S.
Author_Institution :
ETIS (Equipe Traitement de l´´Inf. et des Syst.), Univ. de Cergy Pontoise, Cergy Pontoise, France
fYear :
2011
fDate :
Nov. 30 2011-Dec. 2 2011
Firstpage :
501
Lastpage :
504
Abstract :
The need to find new strategies and architectures in development of multi processors system on chip (MPSoC) makes necessary to reduce consumption while growing data transfer by increasing number of cores in one chip. This paper proposes a new configuration for an optical router on chip called ROTAR, it will study its different elements, detailing the operation of each component and their physical structure and thus by a study of wave guide losses at crossing, bends and in evanescent coupling based upon the numerical method FDTD. The use of such routers in optical network on chip (OnoC) has several benefits such as a static and simple routing algorithm and more interconnection capacity compared to λ-router [2]. This paper studies active micro resonator optical behavior and propose an algorithm performing a global estimation of all type of losses in this optical network on chip, assuming 1mm2 area and use of 8*8 routers. Fat-H-Tree topology offer in optical domain many advantages, allowing to connect more cores in one chip with the same number of micro resonators compared to the same topology in electrical domain. Silicon wave guides (refraction index = 3,5) surrounded by a layer of silica (1,44) were used to achieve a strong field confinement in the wave guide.
Keywords :
finite difference time-domain analysis; micro-optomechanical devices; micromechanical resonators; multiprocessor interconnection networks; network routing; network topology; network-on-chip; optical interconnections; optical waveguides; power aware computing; trees (mathematics); λ-router; ROTAR; data transfer; electrical domain topology; evanescent coupling; fat-H-tree topology; field confinement; loss estimation; microresonator optical behavior; multiprocessor system on chip; numerical method FDTD; optical interconnection capacity; optical network on chip; optical router; routing algorithm; silicon waveguide; waveguide loss; Optical crosstalk; Optical network units; Optical receivers; Optical resonators; Optical surface waves; Optical waveguides; FDTD; Fat H Tree; Optical network on chip; active microresonator; waveguides losses;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Reconfigurable Computing and FPGAs (ReConFig), 2011 International Conference on
Conference_Location :
Cancun
Print_ISBN :
978-1-4577-1734-5
Type :
conf
DOI :
10.1109/ReConFig.2011.90
Filename :
6128627
Link To Document :
بازگشت