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量子模拟计算。

Quantum analogue computing.

机构信息

School of Physics and Astronomy, University of Leeds, Leeds LS2 9JT, UK.

出版信息

Philos Trans A Math Phys Eng Sci. 2010 Aug 13;368(1924):3609-20. doi: 10.1098/rsta.2010.0017.

Abstract

We briefly review what a quantum computer is, what it promises to do for us and why it is so hard to build one. Among the first applications anticipated to bear fruit is the quantum simulation of quantum systems. While most quantum computation is an extension of classical digital computation, quantum simulation differs fundamentally in how the data are encoded in the quantum computer. To perform a quantum simulation, the Hilbert space of the system to be simulated is mapped directly onto the Hilbert space of the (logical) qubits in the quantum computer. This type of direct correspondence is how data are encoded in a classical analogue computer. There is no binary encoding, and increasing precision becomes exponentially costly: an extra bit of precision doubles the size of the computer. This has important consequences for both the precision and error-correction requirements of quantum simulation, and significant open questions remain about its practicality. It also means that the quantum version of analogue computers, continuous-variable quantum computers, becomes an equally efficient architecture for quantum simulation. Lessons from past use of classical analogue computers can help us to build better quantum simulators in future.

摘要

我们简要回顾一下量子计算机是什么,它承诺为我们做什么,以及为什么制造它如此困难。预期首批取得成果的应用之一是对量子系统进行量子模拟。虽然大多数量子计算是经典数字计算的扩展,但量子模拟在数据如何在量子计算机中的(逻辑)量子位上进行编码方面存在根本差异。要执行量子模拟,需要将要模拟的系统的 Hilbert 空间直接映射到量子计算机中的(逻辑)量子位的 Hilbert 空间上。这种直接对应关系是在经典模拟计算机中对数据进行编码的方式。没有二进制编码,并且提高精度的成本呈指数级增长:增加一位精度会使计算机的大小增加一倍。这对量子模拟的精度和纠错要求都有重要影响,并且关于其实用性仍存在重大问题。这也意味着模拟计算机的量子版本,即连续变量量子计算机,成为量子模拟的一种同样高效的架构。过去使用经典模拟计算机的经验教训可以帮助我们在未来构建更好的量子模拟器。

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