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量子算法用于降低谱测量门数。

Quantum Algorithm for Spectral Measurement with a Lower Gate Count.

机构信息

Département de Physique & Institut Quantique, Université de Sherbrooke, J1K 2R1, Canada.

Canadian Institute for Advanced Research, Toronto, Ontario M5G 1Z8, Canada.

出版信息

Phys Rev Lett. 2018 Jul 6;121(1):010501. doi: 10.1103/PhysRevLett.121.010501.

Abstract

We present two techniques that can greatly reduce the number of gates required to realize an energy measurement, with application to ground state preparation in quantum simulations. The first technique realizes that to prepare the ground state of some Hamiltonian, it is not necessary to implement the time-evolution operator: any unitary operator which is a function of the Hamiltonian will do. We propose one such unitary operator which can be implemented exactly, circumventing any Taylor or Trotter approximation errors. The second technique is tailored to lattice models, and is targeted at reducing the use of generic single-qubit rotations, which are very expensive to produce by standard fault tolerant techniques. In particular, the number of generic single-qubit rotations used by our method scales with the number of parameters in the Hamiltonian, which contrasts with a growth proportional to the lattice size required by other techniques.

摘要

我们提出了两种可以大大减少实现能量测量所需门数的技术,这些技术适用于量子模拟中的基态制备。第一种技术实现了,要准备某些哈密顿量的基态,并不需要实现时间演化算符:任何哈密顿量的函数的幺正算符都可以。我们提出了一种可以精确实现的幺正算符,避免了任何泰勒或特罗特近似误差。第二种技术是针对晶格模型的,旨在减少通用单量子比特旋转的使用,这些旋转在标准容错技术中非常昂贵。特别是,我们的方法使用的通用单量子比特旋转数量与哈密顿量中的参数数量成比例,这与其他技术所需的晶格尺寸成比例的增长形成对比。

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