Unsupervised event classification with graphs on classical and photonic quantum computers

被引:42
作者
Blance, Andrew [1 ,2 ]
Spannowsky, Michael [1 ]
机构
[1] Univ Durham, Dept Phys, IPPP, Durham DH1 3LE, England
[2] Univ Durham, Inst Data Sci, Durham DH1 3LE, England
关键词
Beyond Standard Model; Hadron-Hadron scattering (experiments); Particle correlations and fluctuations; COMPUTATION;
D O I
10.1007/JHEP08(2021)170
中图分类号
O412 [相对论、场论]; O572.2 [粒子物理学];
学科分类号
摘要
Photonic Quantum Computers provide several benefits over the discrete qubit-based paradigm of quantum computing. By using the power of continuous-variable computing we build an anomaly detection model to use on searches for New Physics. Our model uses Gaussian Boson Sampling, a #P-hard problem and thus not efficiently accessible to classical devices. This is used to create feature vectors from graph data, a natural format for representing data of high-energy collision events. A simple K-means clustering algorithm is used to provide a baseline method of classification. We then present a novel method of anomaly detection, combining the use of Gaussian Boson Sampling and a quantum extension to K-means known as Q-means. This is found to give equivalent results compared to the classical clustering version while also reducing the O complexity, with respect to the sample's feature-vector length, from O(N) to O(log(N)).
引用
收藏
页数:26
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