Variational Quantum Generators: Generative Adversarial Quantum Machine Learning for Continuous Distributions

被引:78
作者
Romero, Jonathan [1 ]
Aspuru-Guzik, Alan [1 ,2 ,3 ,4 ]
机构
[1] Zapata Comp Inc, 100 Fed St,20th Floor, Boston, MA 02110 USA
[2] Univ Toronto, Dept Chem, Chem Phys Theory Grp, 80 St George St, Toronto, ON M5S 3H6, Canada
[3] Vector Inst Artificial Intelligence, CIFAR AI Chair, 661 Univ Ave,Suite 710, Toronto, ON M5G 1M1, Canada
[4] Canadian Inst Adv Res CIFAR, 661 Univ Ave,Suite 505, Toronto, ON M5G 1M1, Canada
关键词
generative adversarial network; generative modeling; machine learning; quantum computing; variational quantum algorithms; AUTOMATIC DIFFERENTIATION; MOLECULES; SUPREMACY;
D O I
10.1002/qute.202000003
中图分类号
O4 [物理学];
学科分类号
0702 ;
摘要
A hybrid quantum-classical approach to model continuous classical probability distributions using a variational quantum circuit is proposed. The architecture of this quantum generator consists of a quantum circuit that encodes a classical random variable into a quantum state and a parameterized quantum circuit trained to mimic the target distribution. The model allows for easy interfacing with a classical function, such as a neural network, and is trained using an adversarial learning approach. It is shown that the quantum generator is able to learn using either a classical neural network or a variational quantum circuit as the discriminator model. This implementation takes advantage of automatic differentiation tools to perform the optimization of the variational circuits employed. The framework presented here for the design and implementation of the variational quantum generators can serve as a blueprint for designing hybrid quantum-classical models for other machine learning tasks.
引用
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页数:14
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