Supersymmetry-Driven Quantum Gate Design Based on Feynman Path Integral and TPCP Map Optimization
- URL: http://arxiv.org/abs/2410.11534v1
- Date: Tue, 15 Oct 2024 12:09:12 GMT
- Title: Supersymmetry-Driven Quantum Gate Design Based on Feynman Path Integral and TPCP Map Optimization
- Authors: Harish Parthasarathy, Monika Aggarwal, Kumar Gautam,
- Abstract summary: We discuss how to control the unitary evolution or TPCP maps generated by the quantum evolution of the fields.
We estimate the evolving state of the fields from non-demolition noise measurements.
We design a family of TPCP maps evolving in time whose outputs match the estimated evolving state.
- Score: 0.49157446832511503
- License:
- Abstract: We use supersymmetry to enlarge the dimension of the Hilbert space on which the unitary evolution of the state of the quantum fields acts. We discuss how to control the unitary evolution or TPCP maps generated by the quantum evolution of the fields by controlling the vacuum expectations of other fields in the theory. This amounts to breaking supersymmetry using control vacuum expectation values of the other fields. The evolution of the wave functional or TPCP maps obtained by tracing out over other fields is based on the Feynman path integral formula for the fields. By using the methods of quantum stochastic filtering, we estimate the evolving state of the fields from non-demolition noise measurements and then design a family of TPCP maps evolving in time whose outputs match the estimated evolving state. In this way, we are able to simulate the evolution of the state of the quantum noisy fields. Direct matching of the designed TPCP map to output the evolving system state is not possible since there is no way by which we can determine the exact evolving state, we can only estimate it using non-demolition measurements. The family of designed TPCP maps can be based on using a simulated master equation with unknown parameters incorporated into the Hamiltonian and the other Lindblad operators, chosen so as to match the state outputted by the quantum filter.
Related papers
- Evolution of strictly localized states in non-interacting quantum field
theories with background fields [0.0]
We investigate the construction of spin-1/2 fermionic and spin-0 bosonic wave-packets having compact spatial support.
In order to construct perfectly localized wave-packets, we introduce a spatial density operator accounting for particles of both positive and negative charge.
The formalism is illustrated by computing numerically the Klein tunneling dynamics of strictly localized wave-packets impinging on a supercritical electrostatic step.
arXiv Detail & Related papers (2024-02-16T23:44:00Z) - SpacePulse: Combining Parameterized Pulses and Contextual Subspace for
More Practical VQE [16.890279629884493]
We explore the integration of parameterized quantum pulses with the contextual subspace method.
Working with pulses allows us to potentially access areas of the Hilbert space that are inaccessible with a CNOT-based circuit decomposition.
arXiv Detail & Related papers (2023-11-29T07:55:31Z) - Variational method for learning Quantum Channels via Stinespring
Dilation on neutral atom systems [0.0]
Quantum systems interact with their environment, resulting in non-reversible evolutions.
For many quantum experiments, the time until which measurements can be done might be limited.
We introduce a method to approximate a given target quantum channel by means of variationally approximating equivalent unitaries on an extended system.
arXiv Detail & Related papers (2023-09-19T13:06:44Z) - Wasserstein Quantum Monte Carlo: A Novel Approach for Solving the
Quantum Many-Body Schr\"odinger Equation [56.9919517199927]
"Wasserstein Quantum Monte Carlo" (WQMC) uses the gradient flow induced by the Wasserstein metric, rather than Fisher-Rao metric, and corresponds to transporting the probability mass, rather than teleporting it.
We demonstrate empirically that the dynamics of WQMC results in faster convergence to the ground state of molecular systems.
arXiv Detail & Related papers (2023-07-06T17:54:08Z) - Quantum process tomography of continuous-variable gates using coherent
states [49.299443295581064]
We demonstrate the use of coherent-state quantum process tomography (csQPT) for a bosonic-mode superconducting circuit.
We show results for this method by characterizing a logical quantum gate constructed using displacement and SNAP operations on an encoded qubit.
arXiv Detail & Related papers (2023-03-02T18:08:08Z) - Quantum Gate Generation in Two-Level Open Quantum Systems by Coherent
and Incoherent Photons Found with Gradient Search [77.34726150561087]
We consider an environment formed by incoherent photons as a resource for controlling open quantum systems via an incoherent control.
We exploit a coherent control in the Hamiltonian and an incoherent control in the dissipator which induces the time-dependent decoherence rates.
arXiv Detail & Related papers (2023-02-28T07:36:02Z) - Generation and structuring of multipartite entanglement in Josephson
parametric system [0.0]
vacuum state of a quantum field may act as a key element for the generation of multipartite quantum entanglement.
We achieve generation of genuine tripartite entangled state and its control by the use of the phase difference between two continuous pump tones.
Our scheme provides a comprehensive control toolbox for the entanglement structure and allows us to demonstrate, for first time to our knowledge, genuine quadripartite entanglement of microwave modes.
arXiv Detail & Related papers (2022-03-17T11:16:32Z) - Determining ground-state phase diagrams on quantum computers via a
generalized application of adiabatic state preparation [61.49303789929307]
We use a local adiabatic ramp for state preparation to allow us to directly compute ground-state phase diagrams on a quantum computer via time evolution.
We are able to calculate an accurate phase diagram on both two and three site systems using IBM quantum machines.
arXiv Detail & Related papers (2021-12-08T23:59:33Z) - Robust preparation of Wigner-negative states with optimized
SNAP-displacement sequences [41.42601188771239]
We create non-classical states of light in three-dimensional microwave cavities.
These states are useful for quantum computation.
We show that this way of creating non-classical states is robust to fluctuations of the system parameters.
arXiv Detail & Related papers (2021-11-15T18:20:38Z) - Bosonic field digitization for quantum computers [62.997667081978825]
We address the representation of lattice bosonic fields in a discretized field amplitude basis.
We develop methods to predict error scaling and present efficient qubit implementation strategies.
arXiv Detail & Related papers (2021-08-24T15:30:04Z) - Adaptive Variational Quantum Imaginary Time Evolution Approach for
Ground State Preparation [3.9111580372138834]
An adaptive variational quantum imaginary time evolution (AVQITE) approach is introduced.
It yields efficient representations of ground states for interacting Hamiltonians on near-term quantum computers.
arXiv Detail & Related papers (2021-02-02T15:17:03Z)
This list is automatically generated from the titles and abstracts of the papers in this site.
This site does not guarantee the quality of this site (including all information) and is not responsible for any consequences.