Title :
Robust, reversible, nano-scale, femto-second-switching circuits and their evolution
Author :
De Garis, Hugo ; Batty, Thayne
Author_Institution :
Dept. of Comput. Sci., Utah State Univ., Logan, UT, USA
Abstract :
This paper introduces conceptual problems that arise in the next 10-20 years as electronic circuits reach nanometer scale, i.e. the size of molecules. Such circuits are impossible to make perfectly, due to the inevitable fabrication faults in chips with an Avogrado number of components. Hence, they need to be constructed so that they are robust to faults. They also need to be (as far as possible) reversible circuits, to avoid the heat dissipation problem if bits of information are routinely wiped out during the computational process. They also have to be local if the switching times reach femto-seconds, which is possible now with quantum optics. This paper discusses some of the conceptual issues involved in trying to build circuits that satisfy all these criteria, i.e. that they are robust, reversible and local. We propose an evolutionary engineering based model that meets all these criteria, and provide some experimental results to justify it.
Keywords :
evolutionary computation; nanoelectronics; switching circuits; Avogrado number-of-components; electronic circuits; evolutionary engineering; femtosecond switching circuits; heat dissipation problem; nano circuits; nanoscale switching circuits; quantum optics; reversible circuits; Brain modeling; Circuit faults; Circuit simulation; Computer science; Electronic circuits; Electronic components; Robustness; Switches; Switching circuits; Ultrafast electronics;
Conference_Titel :
Evolutionary Computation, 2004. CEC2004. Congress on
Print_ISBN :
0-7803-8515-2
DOI :
10.1109/CEC.2004.1330918