@inproceedings{39bfb1f706fa4c07be9fd1f5494332ff,
title = "Quantum error mitigations for quantum approximate optimization algorithms on IBM quantum processors",
abstract = "In recent years, there have been significant advancements in various aspects of quantum computing. However, despite this substantial progress, the availability of fault-tolerant quantum computers is still out of reach and may remain so for decades. Therefore, a key challenge is to leverage current NISQ devices to achieve a quantum advantage effectively. In this context, the Quantum Approximate Optimization Algorithm (QAOA) was proposed to potentially demonstrate computational advantages in combinatorial optimization problems using NISQ computers. Meanwhile, quantum error mitigation (QEM) techniques have been developed to address errors, with their effectiveness validated in practical problems involving more than 100 qubits. Therefore, in this paper, we optimize QAOA circuits and apply various error mitigation methods, such as dynamic decoupling and Pauli-twirling, to scale problem sizes on IBM quantum processors. Additionally, we discuss optimal implementation strategies for scalable QAOA. We test our implementations on Max-Cut problems and compare our results with previous works.",
keywords = "IBM Quantum, Maxcut Problem, QAOA, Quantum Optimization",
author = "Sixian Liu and Hyunkyung Lim and Jia Choi and Paulo Castillo and Gilchan Park and Kwangmin Yu",
note = "Publisher Copyright: {\textcopyright} 2024 SPIE.; Quantum Communications and Quantum Imaging XXII 2024 ; Conference date: 18-08-2024 Through 20-08-2024",
year = "2024",
doi = "10.1117/12.3030458",
language = "English",
series = "Proceedings of SPIE - The International Society for Optical Engineering",
publisher = "SPIE",
editor = "Deacon, \{Keith S.\} and Meyers, \{Ronald E.\}",
booktitle = "Quantum Communications and Quantum Imaging XXII",
}