DocumentCode :
2784295
Title :
Towards Accurate and Efficient Reliability Modeling of Nanoelectronic Circuits
Author :
Taylor, Erin ; Han, Jie ; Fortes, José
Author_Institution :
Department of Computer and Electrical Engineering, University of Florida, Gainesville, Florida, ertaylor@acis.ufl.edu
Volume :
1
fYear :
2006
fDate :
17-20 June 2006
Firstpage :
395
Lastpage :
398
Abstract :
The emergence of nanoelectronic devices which rely on fundamentally unreliable physics calls for reliability evaluation techniques and practical design-for-reliability solutions. This paper reviews a method that uses probabilistic gate models (PGMs) for reliability estimation and improves upon this method to enable the accurate evaluation of reliabilities of circuits. When applied to large, complex circuits, however, this and other accurate methods lead to long execution times. To simplify reliability analysis, this paper leverages the fact that many large circuits consist of common logic modules. The overall circuit reliability estimation can be made on the basis of accurate PGM-based reliabilities of individual modules. This technique significantly reduces the PGM method’s complexity, making it suitable for practical design-for-reliability applications. Results from the use of this technique on benchmark circuits indicate that the estimates produced correctly identify the most vulnerable paths through a circuit.
Keywords :
Nanoelectronics; Reliability; fault-tolerance; Circuit faults; Equations; Fault tolerance; Logic circuits; Logic gates; Nanoscale devices; Physics computing; Quantum cellular automata; Quantum dots; Tunneling; Nanoelectronics; Reliability; fault-tolerance;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Nanotechnology, 2006. IEEE-NANO 2006. Sixth IEEE Conference on
Print_ISBN :
1-4244-0077-5
Type :
conf
DOI :
10.1109/NANO.2006.247660
Filename :
1717110
Link To Document :
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