局部绝热进化加速神经形态绝热量子计算

M. Kinjo, Katsuhiko Shimabukuro
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引用次数: 1

摘要

Farhi等人提出了一种绝热量子计算(AQC),如果可以知道目标问题的适当哈密顿量,则可以将其应用于np问题。我们提出了一种神经形态绝热量子计算(NAQC)作为具有能量耗散的量子计算,并考虑到与神经网络的类比,提出了一种设计最终哈密顿量的有效方法。如果NAQC的代价函数可以用二次形式表示,那么它就可以应用于最优化问题。并通过数值模拟验证了该方法的有效性。此外,Roland等人提出了量子搜索的局部绝热进化,以加快计算时间。本文通过数值模拟,给出了具有局部绝热演化的NAQC的初步结果。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Speed-up of Neuromorphic Adiabatic Quantum Computation by Local Adiabatic Evolution
Farhi et al. have proposed an adiabatic quantum computation (AQC), which can be applied to NP-problems if one can know an appropriate Hamiltonian for a target problem. We have proposed a neuromorphic adiabatic quantum computation (NAQC) as the AQC with energy dissipation and an efficient method for designing a final Hamiltonian in consideration of the analogy with a neural network. The NAQC can be applied to optimization problems if its cost function can be expressed in a quadratic form. And successful operations have been confirmed by numerical simulations. In addition, local adiabatic evolution for quantum search have proposed by Roland et al. in order to speed-up the calculation time. In this paper, we show preliminary results for NAQC with local adiabatic evolution by numerical simulations.
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