论文标题
近期量子计算技术:变异量子算法,误差缓解,电路汇编,基准测试和经典模拟
Near-Term Quantum Computing Techniques: Variational Quantum Algorithms, Error Mitigation, Circuit Compilation, Benchmarking and Classical Simulation
论文作者
论文摘要
量子计算是一种针对全球学术界,研究中心和行业的改变游戏规则的技术,包括计算科学,数学,金融,药品,材料科学,化学和加密。尽管在过去的十年中,它已经有了重大的提升,但我们还有很长的路要走。也就是说,我们将长期以来一直处于嘈杂的中等量表量子(NISQ)时代,从事数十个甚至数千个量子量子计算系统的工作。因此,一个重大的挑战是提出一个可以在具有不可忽略的量子噪声的近期量子设备上可靠地执行不实意的应用程序的应用程序。为了应对这一挑战,已经提出了几种近期量子计算技术,包括变异量子算法,错误缓解,量子电路编译和基准测试协议,以表征和减轻错误,并实现具有对噪声的一定抵抗力的算法,以增强近期量子设备的能力,以实现差异的能力,以实现其有效的功能。此外,近期量子设备的开发与有效的经典仿真是不可分离的,有效的经典模拟在量子算法设计和验证,容易错误的验证和其他应用中起着至关重要的作用。这篇综述将彻底介绍这些近期量子计算技术,报告其进度,最后讨论这些技术的未来前景,我们希望这会激励研究人员在该领域进行其他研究。
Quantum computing is a game-changing technology for global academia, research centers and industries including computational science, mathematics, finance, pharmaceutical, materials science, chemistry and cryptography. Although it has seen a major boost in the last decade, we are still a long way from reaching the maturity of a full-fledged quantum computer. That said, we will be in the Noisy-Intermediate Scale Quantum (NISQ) era for a long time, working on dozens or even thousands of qubits quantum computing systems. An outstanding challenge, then, is to come up with an application that can reliably carry out a nontrivial task of interest on the near-term quantum devices with non-negligible quantum noise. To address this challenge, several near-term quantum computing techniques, including variational quantum algorithms, error mitigation, quantum circuit compilation and benchmarking protocols, have been proposed to characterize and mitigate errors, and to implement algorithms with a certain resistance to noise, so as to enhance the capabilities of near-term quantum devices and explore the boundaries of their ability to realize useful applications. Besides, the development of near-term quantum devices is inseparable from the efficient classical simulation, which plays a vital role in quantum algorithm design and verification, error-tolerant verification and other applications. This review will provide a thorough introduction of these near-term quantum computing techniques, report on their progress, and finally discuss the future prospect of these techniques, which we hope will motivate researchers to undertake additional studies in this field.