Material implication in CMOS
Elkim Roa, Wu-Hsin Chen, Byunghoo Jung
Abstract
Elkim Roa, Wu-Hsin Chen, Byunghoo Jung
Abstract
For more than seventy years, all the development in digital electronics have been founded on Shannon's work based on the fact that Boolean logic operators, OR, AND and NOT, can form a computationally complete logic framework. We propose a new paradigm in logic circuit design using material implication logic operators, different from the traditional logic gates in implementation and operation. In this paper we present early evidences, with experimental silicon results, showing that this new logic framework significantly improves performance, power and speed, over an equivalent conventional-logic framework in CMOS. This new computing paradigm would enable the continuance of increasing computing functionality and performance with decreasing cost in silicon technologies.
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For more than seventy years, all the development in digital electronics have been founded on Shannon's work based on the fact that Boolean logic operators, OR, AND and NOT, can form a computationally complete logic framework. We propose a new paradigm in logic circuit design using material implication logic operators, different from the traditional logic gates in implementation and operation. In this paper we present early evidences, with experimental silicon results, showing that this new logic framework significantly improves performance, power and speed, over an equivalent conventional-logic framework in CMOS. This new computing paradigm would enable the continuance of increasing computing functionality and performance with decreasing cost in silicon technologies.
Key concepts: Logic gate, Digital electronics, Pass transistor logic, Logic family, Computer science, Logic optimization, Logic synthesis, CMOS