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量子控制门序的计算优势。

Computational advantage from quantum-controlled ordering of gates.

机构信息

Faculty of Physics, University of Vienna, Boltzmanngasse 5, 1090 Vienna, Austria and Institute for Quantum Optics and Quantum Information (IQOQI), Austrian Academy of Sciences, Boltzmanngasse 3, 1090 Vienna, Austria.

出版信息

Phys Rev Lett. 2014 Dec 19;113(25):250402. doi: 10.1103/PhysRevLett.113.250402. Epub 2014 Dec 18.

Abstract

It is usually assumed that a quantum computation is performed by applying gates in a specific order. One can relax this assumption by allowing a control quantum system to switch the order in which the gates are applied. This provides a more general kind of quantum computing that allows transformations on blackbox quantum gates that are impossible in a circuit with fixed order. Here we show that this model of quantum computing is physically realizable, by proposing an interferometric setup that can implement such a quantum control of the order between the gates. We show that this new resource provides a reduction in computational complexity: we propose a problem that can be solved by using O(n) blackbox queries, whereas the best known quantum algorithm with fixed order between the gates requires O(n^{2}) queries. Furthermore, we conjecture that solving this problem in a classical computer takes exponential time, which may be of independent interest.

摘要

通常认为,量子计算是通过按特定顺序应用门来实现的。通过允许控制量子系统切换应用门的顺序,可以放宽此假设。这提供了一种更通用的量子计算,允许对黑盒量子门进行变换,而在具有固定顺序的电路中则无法进行这些变换。在这里,我们通过提出一种可以实现这种门之间的量子控制顺序的干涉测量设置,证明了这种量子计算模型在物理上是可行的。我们表明,这种新资源提供了计算复杂性的降低:我们提出了一个可以通过使用 O(n) 个黑盒查询来解决的问题,而具有固定门之间顺序的最先进的量子算法则需要 O(n^2)个查询。此外,我们推测在经典计算机中解决这个问题需要指数时间,这可能具有独立的兴趣。

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