Quantum Circuit for High Order Perturbation Theory Corrections
- URL: http://arxiv.org/abs/2404.05162v1
- Date: Mon, 8 Apr 2024 03:05:37 GMT
- Title: Quantum Circuit for High Order Perturbation Theory Corrections
- Authors: Junxu Li, Xingyu Gao,
- Abstract summary: Perturbation theory (PT) might be one of the most powerful and fruitful tools for both physicists and chemists.
Advances in quantum computing provide opportunities for alternatives to classical methods.
A general quantum circuit estimating the low order PT corrections has been proposed.
- Score: 6.332830866018584
- License: http://arxiv.org/licenses/nonexclusive-distrib/1.0/
- Abstract: Perturbation theory (PT) might be one of the most powerful and fruitful tools for both physicists and chemists, which has led to a wide variety of applications. Over the past decades, advances in quantum computing provide opportunities for alternatives to classical methods. Recently, a general quantum circuit estimating the low order PT corrections has been proposed. In this article, we revisit the quantum circuits for PT calculations, and develop the methods for higher order PT corrections of eigenenergy, especially the 3rd and 4th order corrections. We present the feasible quantum circuit to estimate each term in these PT corrections. There are two the fundamental operations in the proposed circuit. One approximates the perturbation terms, the other approximates the inverse of unperturbed energy difference. The proposed method can be generalized to higher order PT corrections.
Related papers
- Near-Term Distributed Quantum Computation using Mean-Field Corrections
and Auxiliary Qubits [77.04894470683776]
We propose near-term distributed quantum computing that involve limited information transfer and conservative entanglement production.
We build upon these concepts to produce an approximate circuit-cutting technique for the fragmented pre-training of variational quantum algorithms.
arXiv Detail & Related papers (2023-09-11T18:00:00Z) - M{\o}ller-Plesset Perturbation Theory Calculations on Quantum Devices [2.648032568101723]
We propose a general quantum circuit for Moller-Plesset perturbation theory (MPPT) calculations.
MPPT is a popular and powerful post-Hartree-Fock method widly harnessed in solving electronic structure problems.
In imitation of the classical MPPT, our approach is non-heuristic, guaranteeing that all parameters in the circuit are directly determined by the given Hartree-Fock results.
arXiv Detail & Related papers (2023-08-03T06:50:05Z) - Probing coherent quantum thermodynamics using a trapped ion [0.0]
We report an experimental measurement of the genuine quantum correction to the classical work fluctuation-dissipation relation (FDR)
We employ a single trapped ion qubit, realizing thermalization and coherent drive via laser pulses, to implement a quantum coherent work protocol.
arXiv Detail & Related papers (2022-07-28T18:02:22Z) - Towards Perturbation Theory Methods on a Quantum Computer [0.0]
We present a quantum circuit estimating both the energy and eigenstates corrections with PT methods.
Our work offers a new approach to studying complex systems with quantum devices.
arXiv Detail & Related papers (2022-06-30T00:16:54Z) - Gaussian initializations help deep variational quantum circuits escape
from the barren plateau [87.04438831673063]
Variational quantum circuits have been widely employed in quantum simulation and quantum machine learning in recent years.
However, quantum circuits with random structures have poor trainability due to the exponentially vanishing gradient with respect to the circuit depth and the qubit number.
This result leads to a general belief that deep quantum circuits will not be feasible for practical tasks.
arXiv Detail & Related papers (2022-03-17T15:06:40Z) - Realization of arbitrary doubly-controlled quantum phase gates [62.997667081978825]
We introduce a high-fidelity gate set inspired by a proposal for near-term quantum advantage in optimization problems.
By orchestrating coherent, multi-level control over three transmon qutrits, we synthesize a family of deterministic, continuous-angle quantum phase gates acting in the natural three-qubit computational basis.
arXiv Detail & Related papers (2021-08-03T17:49:09Z) - Quantum Error Mitigation Relying on Permutation Filtering [84.66087478797475]
We propose a general framework termed as permutation filters, which includes the existing permutation-based methods as special cases.
We show that the proposed filter design algorithm always converges to the global optimum, and that the optimal filters can provide substantial improvements over the existing permutation-based methods.
arXiv Detail & Related papers (2021-07-03T16:07:30Z) - Quadratic Clifford expansion for efficient benchmarking and
initialization of variational quantum algorithms [0.8808007156832224]
Variational quantum algorithms are considered to be appealing applications of near-term quantum computers.
We propose a perturbative approach for efficient benchmarking of variational quantum algorithms.
arXiv Detail & Related papers (2020-11-19T16:09:00Z) - A posteriori corrections to the Iterative Qubit Coupled Cluster method
to minimize the use of quantum resources in large-scale calculations [0.0]
We present a variety of a posteriori corrections to the iQCC energies to reduce the number of iterations to achieve the desired accuracy.
We demonstrate the utility and efficiency of our approach numerically on the examples of 10-qubit N$$ molecule, the 24-qubit H$$O stretch, and 56-qubit singlet-triplet gap calculations.
arXiv Detail & Related papers (2020-09-28T20:57:32Z) - Quantum-optimal-control-inspired ansatz for variational quantum
algorithms [105.54048699217668]
A central component of variational quantum algorithms (VQA) is the state-preparation circuit, also known as ansatz or variational form.
Here, we show that this approach is not always advantageous by introducing ans"atze that incorporate symmetry-breaking unitaries.
This work constitutes a first step towards the development of a more general class of symmetry-breaking ans"atze with applications to physics and chemistry problems.
arXiv Detail & Related papers (2020-08-03T18:00:05Z) - QUANTIFY: A framework for resource analysis and design verification of
quantum circuits [69.43216268165402]
QUANTIFY is an open-source framework for the quantitative analysis of quantum circuits.
It is based on Google Cirq and is developed with Clifford+T circuits in mind.
For benchmarking purposes QUANTIFY includes quantum memory and quantum arithmetic circuits.
arXiv Detail & Related papers (2020-07-21T15:36:25Z)
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.