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Computer-aided-design methods for emerging quantum computing technologies.

机译:用于新兴量子计算技术的计算机辅助设计方法。

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Emerging quantum computing technologies are poised to replace standard CMOS logic when the exponential size reduction reaches sub-atomic dimensions. Quantum circuits are reversible and therefore promise the potential of computation without energy loss. This research considers computer aided design (CAD) methods for all major aspects of quantum computing circuit design including logic synthesis, simulation, verification, and testing.;The technologies we investigate include quantum cell automata (QCA) and general quantum circuits (QC), with significantly more emphasis on the later. The recently introduced quantum multi-valued decision diagram (QMDD) provides an efficient method to represent and simulate quantum (and other classical reversible) circuits. A major contribution of this dissertation is the development of a sift-like minimization as well as structure metrics based minimization techniques for QMDD. We have used the enhanced QMDD to efficiently simulate quantum circuits as well as quantum vectors.;Our early investigation of reversible logic is concerned with a virtual implementation that uses a direct translation of relatively complex binary functions into circuits composed of Fredkin reversible gates. This allowed us to project size and speed complexity of complex reversible circuits, although this direct translation approach fails to minimize garbage inputs and outputs. To achieve proper garbage minimization, one must synthesize reversible logic using gate cascades with appropriate optimization methods embedded that attempt to minimize the total number of lines in the circuit. To that end, we developed a novel QMDD-based tool for cascade logic synthesis that utilizes the QMDD minimized variable order for lexicographical synthesis with garbage minimization included as an optimization criterion.;We developed a synthesis tool that investigates the QCA native 3-input majority gates ability to implement complex logic circuits. In particular, we explore the benefit of transforming the logic description into exclusive sum of products (ESOP) forms prior to implementation in the majority gates.;We survey recent efforts in establishing the foundation for QC testing and fault tolerant QC. We project the potential use of random tests as well as built in self test (BIST) techniques for future QC. A major contribution of this dissertation is the investigation of partially redundant reversible logic. Detection of partially redundant logic within any design, reversible or irreversible, has ramifications for logic synthesis, for design verification, and for design for test (DFT) issues.
机译:当指数尺寸的减小达到亚原子尺寸时,新兴的量子计算技术有望取代标准的CMOS逻辑。量子电路是可逆的,因此有望在不损失能量的情况下进行计算。本研究在量子计算电路设计的所有主要方面都考虑了计算机辅助设计(CAD)方法,包括逻辑综合,仿真,验证和测试。;我们研究的技术包括量子单元自动机(QCA)和通用量子电路(QC),重点放在后面。最近推出的量子多值决策图(QMDD)提供了一种表示和仿真量子(以及其他经典可逆)电路的有效方法。本论文的主要贡献是开发了类似筛分的最小化以及基于结构指标的QMDD最小化技术。我们已经使用了增强的QMDD来有效地模拟量子电路和量子向量。我们对可逆逻辑的早期研究涉及一种虚拟实现,该实现使用相对复杂的二进制函数直接转换为由Fredkin可逆门组成的电路。尽管这种直接转换方法无法最大程度地减少垃圾的输入和输出,但是这使我们能够预测复杂可逆电路的大小和速度复杂度。为了实现适当的垃圾最小化,必须使用门级联与可嵌入的适当优化方法来合成可逆逻辑,这些优化方法试图使电路中的总行数最小化。为此,我们开发了一种新颖的基于QMDD的级联逻辑综合工具,该工具利用QMDD最小化变量顺序进行词典综合,并以垃圾最小化为优化标准。;我们开发了一种综合工具,用于研究QCA本机3输入多数门实现复杂逻辑电路的能力。特别是,我们探索了在多数门实施之前将逻辑描述转换为乘积之和(ESOP)形式的好处。我们调查了最近为建立质量控制测试和容错质量控制的基础所做的努力。我们预计可能会使用随机测试以及内置的自测(BIST)技术来进行未来的质量控制。本文的主要贡献是对部分冗余的可逆逻辑的研究。在可逆或不可逆的任何设计中检测部分冗余的逻辑,会对逻辑综合,设计验证和测试设计(DFT)问题产生影响。

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