Reinforcement learning approach for finding exchange-only gate sequences for CNOT with optimized gate time

IF 5.8 2区 物理与天体物理 Q1 OPTICS
Violeta N. Ivanova-Rohling, Niklas Rohling, Guido Burkard
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引用次数: 0

Abstract

Exchange-only quantum computation is a version of spin-based quantum computation that entirely avoids the difficulty of controlling individual spins by a magnetic field and instead functions by sequences of exchange pulses. The challenge for exchange-only quantum computation is to find short sequences that generate the required logical quantum gates. A reduction of the total gate time of such synthesized quantum gates can help to minimize the effects of decoherence and control errors during the gate operation and thus increase the total gate fidelity. We apply reinforcement learning to the optimization of exchange-gate sequences realizing the CNOT and CZ two-qubit gates which lend themselves to the construction of universal gate sets for quantum computation. We obtain a significant improvement regarding the total gate time compared to previously published results.

基于优化门时间的CNOT单交换门序列的强化学习方法
纯交换量子计算是基于自旋的量子计算的一个版本,它完全避免了通过磁场控制单个自旋的困难,而是通过交换脉冲序列发挥作用。纯交换量子计算的挑战在于找到生成所需逻辑量子门的短序列。减少这种合成量子门的总门时间可以帮助最小化门操作期间的退相干和控制误差的影响,从而提高总门保真度。我们将强化学习应用于交换门序列的优化,实现了CNOT和CZ双量子比特门,这有助于构建用于量子计算的通用门集。与之前发表的结果相比,我们在总栅极时间方面得到了显著的改进。
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来源期刊
EPJ Quantum Technology
EPJ Quantum Technology Physics and Astronomy-Atomic and Molecular Physics, and Optics
CiteScore
7.70
自引率
7.50%
发文量
28
审稿时长
71 days
期刊介绍: Driven by advances in technology and experimental capability, the last decade has seen the emergence of quantum technology: a new praxis for controlling the quantum world. It is now possible to engineer complex, multi-component systems that merge the once distinct fields of quantum optics and condensed matter physics. EPJ Quantum Technology covers theoretical and experimental advances in subjects including but not limited to the following: Quantum measurement, metrology and lithography Quantum complex systems, networks and cellular automata Quantum electromechanical systems Quantum optomechanical systems Quantum machines, engineering and nanorobotics Quantum control theory Quantum information, communication and computation Quantum thermodynamics Quantum metamaterials The effect of Casimir forces on micro- and nano-electromechanical systems Quantum biology Quantum sensing Hybrid quantum systems Quantum simulations.
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