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The effects of a new technology on the design, organization, and architectures of computing systems.

机译:新技术对计算系统的设计,组织和体系结构的影响。

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This dissertation will bring to life a roadmap for studying the effects of a new technology on the design, organization, and architecture of digital computer systems. Until only recently, most research conducted with any nano-scale device has been limited to the realm of device physics, or at best, the simplest circuits. But now, with some specific nano-scale devices showing significant promise and progress, some researchers are beginning to study what computational systems of such devices might look like. My work takes this idea one step further. Its focus is to use research in architecting and designing complex systems of nano-scale devices to actually enhance device development and accelerate potential device implementations. This research was done in the context of the quantum-dot cellular automata (QCA). It considers the design of a completely QCA microprocessor which formed a foundation of circuit design techniques, candidate architectures, and logical design rules for the technology. This foundation has had a positive impact on the most promising implementation for QCA (molecular cells) in the context of FPGAs. It also explores and defines a set of Mead/Conway-esq physical design rules that should promote further interdisciplinary work between device physicists and computer system designers and how these methodologies should be beneficial to other emergent devices.
机译:这篇论文将为研究新技术对数字计算机系统的设计,组织和体系结构的影响提供一条路线图。直到最近,对任何纳米级器件进行的大多数研究都仅限于器件物理领域,或者充其量只能是最简单的电路。但是现在,随着一些特定的纳米级设备显示出巨大的希望和进步,一些研究人员开始研究此类设备的计算系统可能是什么样的。我的工作使这一想法更进一步。其重点是利用研究来设计和设计复杂的纳米级设备系统,以实际增强设备开发并加速潜在的设备实现。这项研究是在量子点细胞自动机(QCA)的背景下进行的。它考虑了完整的QCA微处理器的设计,该微处理器构成了该技术的电路设计技术,候选架构和逻辑设计规则的基础。这个基础对在FPGA上下文中最有希望的QCA(分子单元)实现产生了积极的影响。它还探索并定义了一组Mead / Conway-esq物理设计规则,这些规则应促进设备物理学家与计算机系统设计者之间的进一步跨学科工作,以及这些方法应如何对其他新兴设备有所帮助。

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