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Quantum Walks: Theory, Application, and Implementation.

机译:量子漫游:理论,应用和实施。

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摘要

The quantum walk is a method for conceptualizing and designing quantum computing algorithms and it comes in two forms: the continuous-time and discrete-time quantum walk. The thesis is organized into three parts, each of which looks to develop the concept and uses of the quantum walk. The first part is the theory of the quantum walk. This includes definitions and considerations for the various incarnations of the discrete-time quantum walk and a discussion on the general method for connecting the continuous-time and discrete-time versions. As a result, it is shown that most versions of the discrete-time quantum walk can be put into a general form and this can be used to simulate any continuous-time quantum walk. The second part uses these results for a hypothetical application. The application presented is a search algorithm that appears to scale in the time for completion independent of the size of the search space. This behavior is then elaborated upon and shown to have general qualitative agreement with simulations to within the approximations that are made. The third part introduces a method of implementation. Given a universal quantum computer, the method is discussed and shown to simulate an arbitrary discrete-time quantum walk. Some of the benefits of this method are that half the unitary evolution can be achieved without the use of any gates and there may be some possibility for error detection. The three parts combined suggest a possible experiment, given a quantum computing scheme of sufficient robustness.
机译:量子行走是一种用于概念化和设计量子计算算法的方法,它有两种形式:连续时间和离散时间量子行走。本文分为三个部分,每个部分都旨在发展量子行走的概念和用途。第一部分是量子行走理论。这包括对离散时间量子行走的各种化身的定义和考虑,以及对连接连续时间和离散时间版本的通用方法的讨论。结果表明,大多数版本的离散时间量子游走可以放到一个通用形式,并且可以用来模拟任何连续时间量子游走。第二部分将这些结果用于假设应用。呈现的应用程序是一种搜索算法,它似乎在完成时间上按比例缩放,而与搜索空间的大小无关。然后详细说明该行为,并证明与模拟在取得的近似值之间具有一般的质性一致性。第三部分介绍了一种实现方法。在给定通用量子计算机的情况下,讨论并展示了该方法以模拟任意离散时间的量子游走。这种方法的一些好处是,在不使用任何门的情况下可以实现一半的单位进化,并且可能存在一些错误检测的可能性。给定足够鲁棒性的量子计算方案,将这三个部分结合起来可以提出一个可能的实验。

著录项

  • 作者

    Schmitz, Albert Thomas.;

  • 作者单位

    The University of North Dakota.;

  • 授予单位 The University of North Dakota.;
  • 学科 Physics.
  • 学位 M.S.
  • 年度 2016
  • 页码 112 p.
  • 总页数 112
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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