论文标题

量子经典的权衡和多数控制的量子门分解在变异算法中

Quantum-classical tradeoffs and multi-controlled quantum gate decompositions in variational algorithms

论文作者

Tomesh, Teague, Allen, Nicholas, Dilley, Daniel, Saleem, Zain

论文摘要

近期量子计算机的计算能力受门操作的嘈杂执行和有限数量的物理量子的限制。混合变量算法非常适合近期量子设备,因为它们可以在用于解决问题的量子和经典资源之间进行广泛的权衡。本文通过研究特定情况来研究在算法和硬件级别上可用的权衡 - 将量子近似优化算法(QAOA)应用于最大独立集(MIS)问题的实例。我们考虑了QAOA的三种变体,这些变体在算法级别提供了不同的权衡,从所需的经典参数,量子门和所需的经典优化的迭代来看。由于MIS是一个受约束的组合优化问题,因此QAOA必须尊重问题约束。这可以通过使用许多多控制的门操作来实现,这些操作必须将目标硬件分解为可执行的门。我们研究了在此硬件级别上可用的权衡,将不同天然栅极集合的门忠诚和分解效率结合在一起,称为单一指标,称为门分解成本。

The computational capabilities of near-term quantum computers are limited by the noisy execution of gate operations and a limited number of physical qubits. Hybrid variational algorithms are well-suited to near-term quantum devices because they allow for a wide range of tradeoffs between the amount of quantum and classical resources used to solve a problem. This paper investigates tradeoffs available at both the algorithmic and hardware levels by studying a specific case -- applying the Quantum Approximate Optimization Algorithm (QAOA) to instances of the Maximum Independent Set (MIS) problem. We consider three variants of the QAOA which offer different tradeoffs at the algorithmic level in terms of their required number of classical parameters, quantum gates, and iterations of classical optimization needed. Since MIS is a constrained combinatorial optimization problem, the QAOA must respect the problem constraints. This can be accomplished by using many multi-controlled gate operations which must be decomposed into gates executable by the target hardware. We study the tradeoffs available at this hardware level, combining the gate fidelities and decomposition efficiencies of different native gate sets into a single metric called the gate decomposition cost.

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