Light Cone Cancellation for Variational Quantum Eigensolver in Solving Noisy Max-Cut
Xinwei Lee, Xinjian Yan, Ningyi Xie, Yoshiyuki Saito, Leo Kurosawa, Nobuyoshi Asai, Dongsheng Cai, Hoong Chuin LAU

TL;DR
This paper introduces Light Cone Cancellation (LCC) for VQE to reduce qubits and gates, improving noise mitigation in large-scale Max-Cut problem simulations on noisy quantum hardware.
Contribution
The study demonstrates the effectiveness of LCC in enhancing VQE performance and noise resilience for large Max-Cut problems up to 100 qubits using simulations.
Findings
LCC-VQE achieves higher approximation ratios than non-LCC VQE.
Single-layer ansatz outperforms multi-layer ansatz in noisy conditions.
LCC reduces circuit complexity, aiding large-scale quantum problem solving.
Abstract
Variational Quantum Eigensolver (VQE) is a quantum-classical hybrid algorithm used to estimate the ground energy of a given Hamiltonian. It consists of a parameterized quantum circuit, which the parameters are optimized using a classical optimizer. With the increasing need in solving large-scale problems in real-world applications, solving those large problems with fewer qubits and fewer gates becomes essential, so that we reduce the simulation difficulty and mitigate the effect of noise in real quantum hardware. In this study, we applied the Light Cone Cancellation (LCC) method to reduce the number of qubits and gates required in a two-local ansatz. LCC removes redundant gates that are not required in the calculation of the expectation value for a local observable. This leads to two consequences: 1) the quantum circuit used to create the trial wavefunction of VQE can be broken down…
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