Title :
Tunneling-Based Cellular Nonlinear Network Architectures for Image Processing
Author :
Mazumder, Pinaki ; Li, Sing-Rong ; Ebong, Idongesit E.
Author_Institution :
Dept. of Electr. Eng. & Comput. Sci., Univ. of Michigan, Ann Arbor, MI
fDate :
4/1/2009 12:00:00 AM
Abstract :
The resonant tunneling diode (RTD) has found numerous applications in high-speed digital and analog circuits due to the key advantages associated with its folded back negative differential resistance (NDR) current-voltage (I-V) characteristics as well as its extremely small switching capacitance. Recently, the RTD has also been employed to implement high-speed and compact cellular neural/nonlinear networks (CNNs) by exploiting its quantum tunneling induced nonlinearity and symmetrical I-V characteristics for both positive and negative voltages applied across the anode and cathode terminals of the RTD. This paper proposes an RTD-based CNN architecture and investigates its operation through driving-point-plot analysis, stability and settling time study, and circuit simulation. Full-array simulation of a 128 times 128 RTD-based CNN for several image processing functions is performed using the Quantum Spice simulator designed at the University of Michigan, where the RTD is represented in SPICE simulator by a physics based model derived by solving Schrodinger´s and Poisson´s equations self-consistently. A comparative study between different CNN implementations reveals that the RTD-based CNN can be designed superior to conventional CMOS technologies in terms of integration density, operating speed, and functionality.
Keywords :
SPICE; image processing; neural net architecture; nonlinear network analysis; resonant tunnelling diodes; NDR; SPICE; analog circuits; circuit simulation; current-voltage characteristics; driving-point-plot analysis; folded back negative differential resistance; full-array simulation; functionality; high-speed digital circuits; image processing; integration density; operating speed; quantum spice simulator; quantum tunneling; resonant tunneling diode; switching capacitance; tunneling-based cellular nonlinear network architectures; Resonant tunneling diode (RTD); cellular neural/ nonlinear network (CNN); full array simulation; settling time analysis;
Journal_Title :
Very Large Scale Integration (VLSI) Systems, IEEE Transactions on
DOI :
10.1109/TVLSI.2009.2014771