English

Experimental Machine Learning of Quantum States

Quantum Physics 2018-06-25 v2

Abstract

Quantum information technologies provide promising applications in communication and computation, while machine learning has become a powerful technique for extracting meaningful structures in 'big data'. A crossover between quantum information and machine learning represents a new interdisciplinary area stimulating progresses in both fields. Traditionally, a quantum state is characterized by quantum state tomography, which is a resource-consuming process when scaled up. Here we experimentally demonstrate a machine-learning approach to construct a quantum-state classifier for identifying the separability of quantum states. We show that it is possible to experimentally train an artificial neural network to efficiently learn and classify quantum states, without the need of obtaining the full information of the states. We also show how adding a hidden layer of neurons to the neural network can significantly boost the performance of the state classifier. These results shed new light on how classification of quantum states can be achieved with limited resources, and represent a step towards machine-learning-based applications in quantum information processing.

Keywords

Cite

@article{arxiv.1712.00456,
  title  = {Experimental Machine Learning of Quantum States},
  author = {Jun Gao and Lu-Feng Qiao and Zhi-Qiang Jiao and Yue-Chi Ma and Cheng-Qiu Hu and Ruo-Jing Ren and Ai-Lin Yang and Hao Tang and Man-Hong Yung and Xian-Min Jin},
  journal= {arXiv preprint arXiv:1712.00456},
  year   = {2018}
}

Comments

7 pages, 6 figures

R2 v1 2026-06-22T23:04:04.671Z