Physical Review Research (Sep 2021)

Application of quantum machine learning using the quantum kernel algorithm on high energy physics analysis at the LHC

  • Sau Lan Wu,
  • Shaojun Sun,
  • Wen Guan,
  • Chen Zhou,
  • Jay Chan,
  • Chi Lung Cheng,
  • Tuan Pham,
  • Yan Qian,
  • Alex Zeng Wang,
  • Rui Zhang,
  • Miron Livny,
  • Jennifer Glick,
  • Panagiotis Kl. Barkoutsos,
  • Stefan Woerner,
  • Ivano Tavernelli,
  • Federico Carminati,
  • Alberto Di Meglio,
  • Andy C. Y. Li,
  • Joseph Lykken,
  • Panagiotis Spentzouris,
  • Samuel Yen-Chi Chen,
  • Shinjae Yoo,
  • Tzu-Chieh Wei

DOI
https://doi.org/10.1103/PhysRevResearch.3.033221
Journal volume & issue
Vol. 3, no. 3
p. 033221

Abstract

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Quantum machine learning could possibly become a valuable alternative to classical machine learning for applications in high energy physics by offering computational speedups. In this study, we employ a support vector machine with a quantum kernel estimator (QSVM-Kernel method) to a recent LHC flagship physics analysis: tt[over ¯]H (Higgs boson production in association with a top quark pair). In our quantum simulation study using up to 20 qubits and up to 50000 events, the QSVM-Kernel method performs as well as its classical counterparts in three different platforms from Google Tensorflow Quantum, IBM Quantum, and Amazon Braket. Additionally, using 15 qubits and 100 events, the application of the QSVM-Kernel method on the IBM superconducting quantum hardware approaches the performance of a noiseless quantum simulator. Our study confirms that the QSVM-Kernel method can use the large dimensionality of the quantum Hilbert space to replace the classical feature space in realistic physics data sets.