Suppressing classical noise in the accelerated geometric phase gate by
optimized dynamical decoupling
- URL: http://arxiv.org/abs/2205.08699v2
- Date: Thu, 4 Aug 2022 01:17:17 GMT
- Title: Suppressing classical noise in the accelerated geometric phase gate by
optimized dynamical decoupling
- Authors: Da-tong Chen and Jun Jing
- Abstract summary: We propose an accelerated adiabatic quantum gate based on the Berry phase, the transitionless driving, and the dynamical decoupling.
It reconciles a high fidelity with a high speed in the presence of control noise or imperfection.
- Score: 0.0
- License: http://creativecommons.org/licenses/by/4.0/
- Abstract: In the quantum-computation scenario, geometric phase-gates are becoming
increasingly attractive for their intrinsic fault tolerance to disturbance.
With an adiabatic cyclic evolution, Berry phase appears to realize a geometric
transformation. Performing the quantum gates as many as possible within the
timescale of coherence, however, remains an inconvenient bottleneck due to the
systematic errors. Here we propose an accelerated adiabatic quantum gate based
on the Berry phase, the transitionless driving, and the dynamical decoupling.
It reconciles a high fidelity with a high speed in the presence of control
noise or imperfection. We optimize the dynamical-decoupling sequence in the
time domain under a popular Gaussian noise spectrum following the inversely
quadratic power-law.
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