Real-Part Quantum Support Vector Machines

被引:0
作者
Piatkowski, Nico [1 ]
Muecke, Sascha [2 ]
机构
[1] Fraunhofer IAIS, D-53757 St Augustin, Germany
[2] TU Dortmund, D-44227 Dortmund, Germany
来源
MACHINE LEARNING AND KNOWLEDGE DISCOVERY IN DATABASES-RESEARCH TRACK AND DEMO TRACK, PT VIII, ECML PKDD 2024 | 2024年 / 14948卷
关键词
Machine Learning; Quantum Computing; Support Vector Machine;
D O I
10.1007/978-3-031-70371-3_9
中图分类号
TP18 [人工智能理论];
学科分类号
081104 ; 0812 ; 0835 ; 1405 ;
摘要
In recent years, quantum computing has been slowly transitioning from a purely theoretical branch of computer science to a practical yet highly experimental discipline. Within quantum computing, quantum machine learning is becoming more and more popular. However, subtle differences between classical and quantum machine learning methods sometimes lead to incompatible formalizations of otherwise well aligned methods. Inspired by this observation, we investigate a classical machine learning method, namely support vector machines, and compare the model to state-of-the-art quantum support vector machines (QSVM). We show that the training procedure for QSVMs does not perform margin maximization, thus deviating from the strict definition of SVMs. Moreover, we propose a novel Real-Part QSVM formulation that overcomes this issue. We prove that our Real-Part QSVM converges to the classical SVM, while enjoying a logarithmic space complexity. Results obtained from quantum simulations as well as from a 27-qubit superconducting quantum processor confirm our theoretical findings. The source code is available at: https://github.com/np84/realqsvm.
引用
收藏
页码:144 / 160
页数:17
相关论文
共 30 条
[1]   Suppressing quantum errors by scaling a surface code logical qubit [J].
Acharya, Rajeev ;
Aleiner, Igor ;
Allen, Richard ;
Andersen, Trond I. ;
Ansmann, Markus ;
Arute, Frank ;
Arya, Kunal ;
Asfaw, Abraham ;
Atalaya, Juan ;
Babbush, Ryan ;
Bacon, Dave ;
Bardin, Joseph C. ;
Basso, Joao ;
Bengtsson, Andreas ;
Boixo, Sergio ;
Bortoli, Gina ;
Bourassa, Alexandre ;
Bovaird, Jenna ;
Brill, Leon ;
Broughton, Michael ;
Buckley, Bob B. ;
Buell, David A. ;
Burger, Tim ;
Burkett, Brian ;
Bushnell, Nicholas ;
Chen, Yu ;
Chen, Zijun ;
Chiaro, Ben ;
Cogan, Josh ;
Collins, Roberto ;
Conner, Paul ;
Courtney, William ;
Crook, Alexander L. ;
Curtin, Ben ;
Debroy, Dripto M. ;
Barba, Alexander Del Toro ;
Demura, Sean ;
Dunsworth, Andrew ;
Eppens, Daniel ;
Erickson, Catherine ;
Faoro, Lara ;
Farhi, Edward ;
Fatemi, Reza ;
Burgos, Leslie Flores ;
Forati, Ebrahim ;
Fowler, Austin G. ;
Foxen, Brooks ;
Giang, William ;
Gidney, Craig ;
Gilboa, Dar .
NATURE, 2023, 614 (7949) :676-+
[2]  
Arora S, 2009, COMPUTATIONAL COMPLEXITY: A MODERN APPROACH, P1, DOI 10.1017/CBO9780511804090
[3]  
Bauckhage C., 2019, P C LERNEN WISSEN DA, P54
[4]   Mitigating measurement errors in multiqubit experiments [J].
Bravyi, Sergey ;
Sheldon, Sarah ;
Kandala, Abhinav ;
Mckay, David C. ;
Gambetta, Jay M. .
PHYSICAL REVIEW A, 2021, 103 (04)
[5]   SUPPORT-VECTOR NETWORKS [J].
CORTES, C ;
VAPNIK, V .
MACHINE LEARNING, 1995, 20 (03) :273-297
[6]   Quantum Circuit Evolution on NISQ Devices [J].
Franken, Lukas ;
Georgiev, Bogdan ;
Muecke, Sascha ;
Wolter, Moritz ;
Heese, Raoul ;
Bauckhage, Christian ;
Piatkowski, Nico .
2022 IEEE CONGRESS ON EVOLUTIONARY COMPUTATION (CEC), 2022,
[7]  
Gentinetta G, 2024, QUANTUM-AUSTRIA, V8
[8]   Covariant quantum kernels for data with group structure [J].
Glick, Jennifer R. ;
Gujarati, Tanvi P. ;
Corcoles, Antonio D. ;
Kim, Youngseok ;
Kandala, Abhinav ;
Gambetta, Jay M. ;
Temme, Kristan .
NATURE PHYSICS, 2024, 20 (03) :479-483
[9]  
Hastie T., 2009, ELEMENTS STAT LEARNI
[10]   Supervised learning with quantum-enhanced feature spaces [J].
Havlicek, Vojtech ;
Corcoles, Antonio D. ;
Temme, Kristan ;
Harrow, Aram W. ;
Kandala, Abhinav ;
Chow, Jerry M. ;
Gambetta, Jay M. .
NATURE, 2019, 567 (7747) :209-212