Generation and storage of spin squeezing via learning-assisted optimal
control
- URL: http://arxiv.org/abs/2010.13444v3
- Date: Fri, 26 Feb 2021 14:36:52 GMT
- Title: Generation and storage of spin squeezing via learning-assisted optimal
control
- Authors: Qing-Shou Tan, Mao Zhang, Yu Chen, Jie-Qiao Liao, and Jing Liu
- Abstract summary: We consider a collective spin system coupled to a bosonic field, and show that proper constant-value controls in this model can simulate the dynamical behaviors of these two models.
A better performance of squeezing can be obtained when the control is time-varying, which is generated via a reinforcement learning algorithm.
We propose a four-step strategy for the construction of a new type of combined controls, which include both constant-value and time-varying controls, but performed at different time intervals.
- Score: 7.460567829296081
- License: http://creativecommons.org/licenses/by-nc-sa/4.0/
- Abstract: The generation and storage of spin squeezing is an attracting topic in
quantum metrology and the foundations of quantum mechanics. The major models to
realize the spin squeezing are the one- and two-axis twisting models. Here, we
consider a collective spin system coupled to a bosonic field, and show that
proper constant-value controls in this model can simulate the dynamical
behaviors of these two models. More interestingly, a better performance of
squeezing can be obtained when the control is time-varying, which is generated
via a reinforcement learning algorithm. However, this advantage becomes limited
if the collective noise is involved. To deal with it, we propose a four-step
strategy for the construction of a new type of combined controls, which include
both constant-value and time-varying controls, but performed at different time
intervals. Compared to the full time-varying controls, the combined controls
not only give a comparable minimum value of the squeezing parameter over time,
but also provides a better lifetime and larger full amount of squeezing.
Moreover, the amplitude form of a combined control is simpler and more stable
than the full time-varying control. Therefore, our scheme is very promising to
be applied in practice to improve the generation and storage performance of
squeezing.
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