Title :
Interconnect topology for cell matrices based on low-power nanoscale devices
Author :
Yakymets, N. ; Jabeur, K. ; O´Connor, I. ; Le Beux, S.
Author_Institution :
Lyon Inst. of Nanotechnol. (INL), Univ. of Lyon, Ecully, France
fDate :
May 30 2011-June 1 2011
Abstract :
Novel devices based on carbon nanotube field effect transistors demonstrate lower power consumption over conventional CMOS technologies. In this paper, we focus on so-called matrix-based nanocomputer architectures that combine low power and routing overheads of cell matrices with flexibility of FPGAs. We introduce a new interconnect topology for cell matrices that provides the flexible logic depth and the ability to reconfigure cells and read their output values during data pipelining, with the following improvements: (+8%) mapping success rate, (~+50%) width of output data compared to the top results achieved by other topologies. Both improvements lead to the better matrix routability and, as a result, to the less area and power overheads of the whole matrix-based nanocomputer architecture. We present a thorough comparison to various prior interconnect topologies and demonstrate the trade-off between mapping success rate, time delay and wire length.
Keywords :
field programmable gate arrays; integrated circuit interconnections; low-power electronics; nanoelectronics; network routing; network topology; reconfigurable architectures; FPGA; cell matrix; cell reconfiguration; data pipelining; flexible logic depth; interconnect topology; low-power nanoscale device; mapping success rate; matrix routability; matrix-based nanocomputer architecture; reconfigurable hardware; routing overhead; time delay; wire length; CNTFETs; Computer architecture; Field programmable gate arrays; Integrated circuit interconnections; Logic gates; Microprocessors; Topology; Nanocomputer architecture; cell matrix; interconnect topology;
Conference_Titel :
Faible Tension Faible Consommation (FTFC), 2011
Conference_Location :
Marrakech
Print_ISBN :
978-1-61284-646-0
DOI :
10.1109/FTFC.2011.5948929