Semi-Automated Design of Functional Elements for a New Approach to Digital Superconducting Electronics: Methodology and Preliminary Results

M. Frank, Rupert M. Lewis, N. Missert, M. Henry, M. Wolak, E. Debenedictis
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引用次数: 7

Abstract

In an ongoing project at Sandia National Laboratories, we are attempting to develop a novel style of superconducting digital processing, based on a new model of reversible computation called Asynchronous Ballistic Reversible Computing (ABRC). We envision an approach in which polarized flux-ons scatter elastically from near-lossless functional components, reversibly updating the local digital state of the circuit, while dissipating only a small fraction of the input fluxon energy. This approach to superconducting digital computation is sufficiently unconventional that an appropriate methodology for hand-design of such circuits is not immediately obvious. To gain insight into the design principles that are applicable in this new domain, we are creating a software tool to automatically enumerate possible topologies of reactive, undamped Josephson junction circuits, and sweep the parameter space of each circuit searching for designs exhibiting desired dynamical behaviors. But first, we identified by hand a circuit implementing the simplest possible nontrivial ABRC functional behavior with bits encoded as conserved polarized fluxons, namely, a one-bit reversible memory cell with one bidirectional I/O port. We expect the tool to be useful for designing more complex circuits.
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数字超导电子学新途径功能元件的半自动化设计:方法与初步结果
在桑迪亚国家实验室的一个正在进行的项目中,我们正在尝试开发一种新型的超导数字处理,基于一种称为异步弹道可逆计算(ABRC)的新型可逆计算模型。我们设想了一种方法,在这种方法中,极化磁通子从近乎无损的功能组件中弹性散射,可逆地更新电路的局部数字状态,同时只消耗一小部分输入磁通能量。这种超导数字计算的方法是非常非常规的,因此手工设计这种电路的合适方法并不是很明显。为了深入了解适用于这个新领域的设计原则,我们正在创建一个软件工具,以自动枚举无功无阻尼约瑟夫森结电路的可能拓扑,并扫描每个电路的参数空间,寻找表现出所需动态行为的设计。但首先,我们手工确定了一个电路,实现了最简单的非平凡ABRC功能行为,比特编码为保守极化通量子,即一个具有一个双向I/O端口的1位可逆存储单元。我们期望这个工具对设计更复杂的电路有用。
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