Quantum control using quantum memory
- URL: http://arxiv.org/abs/2009.10408v2
- Date: Thu, 12 Nov 2020 13:47:36 GMT
- Title: Quantum control using quantum memory
- Authors: Mathieu Roget, Basile Herzog, and Giuseppe Di Molfetta
- Abstract summary: We propose a new quantum numerical scheme to control the dynamics of a quantum walker in a two dimensional space-time grid.
We show how, introducing a quantum memory for each of the spatial grid, this result can be achieved simply by acting on the initial state of the whole system.
- Score: 0.0
- License: http://arxiv.org/licenses/nonexclusive-distrib/1.0/
- Abstract: We propose a new quantum numerical scheme to control the dynamics of a
quantum walker in a two dimensional space-time grid. More specifically, we show
how, introducing a quantum memory for each of the spatial grid, this result can
be achieved simply by acting on the initial state of the whole system, and
therefore can be exactly controlled once for all. As example we prove
analytically how to encode in the initial state any arbitrary walker's mean
trajectory and variance. This brings significantly closer the possibility of
implementing dynamically interesting physics models on medium term quantum
devices, and introduces a new direction in simulating aspects of quantum field
theories (QFTs), notably on curved manifold.
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