场耦合纳米计算电路的验证

Marcel Walter, R. Wille, F. Sill, Daniel Große, R. Drechsler
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引用次数: 10

摘要

随着摩尔定律的衰落,几种后cmos技术目前正受到重视。有希望的候选者可以在场耦合纳米计算(FCN)器件中找到,因为它们允许以极低的能量消耗获得最高的处理性能。随着这个领域中即将到来的设计自动化,出现了对正式验证方法的需求。不幸的是,FCN电路具有某些特定领域的特性,使得传统的验证方法不适用。在本文中,我们研究了这个问题,并提出了一种FCN电路的验证方法来解决这个问题。这首次为研究人员和工程师提供了一种自动方法,使他们能够检查获得的FCN电路设计是否确实实现了给定/期望的功能。一个原型实现证明了所提出方法的适用性。
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Verification for Field-coupled Nanocomputing Circuits
With the decline of Moore’s Law, several post-CMOS technologies are currently under heavy consideration. Promising candidates can be found in the class of Field-coupled Nanocomputing (FCN) devices as they allow for highest processing performance with tremendously low energy dissipation. With upcoming design automation in this domain, the need for formal verification approaches arises. Unfortunately, FCN circuits come with certain domain-specific properties that render conventional methods for the verification non-applicable. In this paper, we investigate this issue and propose a verification approach for FCN circuits that addresses this problem. For the first time, this provides researchers and engineers with an automatic method that allows them to check whether an obtained FCN circuit design indeed implements the given/desired function. A prototype implementation demonstrates the applicability of the proposed approach.
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