Comparative study on compact quantum circuits of hybrid quantum-classical algorithms for quantum impurity models
Rihito Sakurai, Oliver J. Backhouse, George H. Booth, Wataru Mizukami,, Hiroshi Shinaoka

TL;DR
This paper develops compact, physics-inspired variational ansatzes for hybrid quantum-classical algorithms to efficiently solve quantum impurity models, reducing parameters while maintaining accuracy, and enabling large-scale quantum simulations.
Contribution
It introduces novel compact ansatzes combining physics insights and parameter reduction techniques for quantum impurity models in hybrid algorithms.
Findings
Maintains ground-state energy accuracy with fewer variational parameters.
Successfully computes dynamic quantities and Green's functions under shot noise.
Demonstrates potential for large-scale quantum impurity simulations.
Abstract
Predicting the properties of strongly correlated materials is a significant challenge in condensed matter theory. The widely used dynamical mean-field theory faces difficulty in solving quantum impurity models numerically. Hybrid quantum--classical algorithms such as variational quantum eigensolver emerge as a potential solution for quantum impurity models. A common challenge in these algorithms is the rapid growth of the number of variational parameters with the number of spin-orbitals in the impurity. In our approach to this problem, we develop compact ansatzes using a combination of two different strategies. First, we employ compact physics-inspired ansatz, -unitary cluster Jastrow ansatz, developed in the field of quantum chemistry. Second, we eliminate largely redundant variational parameters of physics-inspired ansatzes associated with bath sites based on physical intuition.…
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Taxonomy
TopicsQuantum Computing Algorithms and Architecture · Quantum many-body systems · Quantum and electron transport phenomena
