Search Results for author: C. Monroe

Found 6 papers, 2 papers with code

Quantum Approximate Optimization with a Trapped-Ion Quantum Simulator

no code implementations6 Jun 2019 G. Pagano, A. Bapat, P. Becker, K. S. Collins, A. De, P. W. Hess, H. B. Kaplan, A. Kyprianidis, W. L. Tan, C. Baldwin, L. T. Brady, A. Deshpande, F. Liu, S. Jordan, A. V. Gorshkov, C. Monroe

Quantum computers and simulators may offer significant advantages over their classical counterparts, providing insights into quantum many-body systems and possibly solving exponentially hard problems, such as optimization and satisfiability.

Quantum Physics Quantum Gases Strongly Correlated Electrons

Training of Quantum Circuits on a Hybrid Quantum Computer

1 code implementation20 Dec 2018 D. Zhu, N. M. Linke, M. Benedetti, K. A. Landsman, N. H. Nguyen, C. H. Alderete, A. Perdomo-Ortiz, N. Korda, A. Garfoot, C. Brecque, L. Egan, O. Perdomo, C. Monroe

Generative modeling is a flavor of machine learning with applications ranging from computer vision to chemical design.

Quantum Physics

Observation of a Many-Body Dynamical Phase Transition with a 53-Qubit Quantum Simulator

1 code implementation3 Aug 2017 J. Zhang, G. Pagano, P. W. Hess, A. Kyprianidis, P. Becker, H. Kaplan, A. V. Gorshkov, Z. -X. Gong, C. Monroe

A quantum simulator is a restricted class of quantum computer that controls the interactions between quantum bits in a way that can be mapped to certain difficult quantum many-body problems.

Quantum Physics Statistical Mechanics

Experimental Comparison of Two Quantum Computing Architectures

no code implementations7 Feb 2017 N. M. Linke, D. Maslov, M. Roetteler, S. Debnath, C. Figgatt, K. A. Landsman, K. Wright, C. Monroe

We run a selection of algorithms on two state-of-the-art 5-qubit quantum computers that are based on different technology platforms.

Quantum Physics Emerging Technologies

Demonstration of a small programmable quantum computer with atomic qubits

no code implementations15 Mar 2016 S. Debnath, N. M. Linke, C. Figgatt, K. A. Landsman, K. Wright, C. Monroe

Quantum computers can solve certain problems more efficiently than any possible conventional computer.

Quantum Physics

Optimal quantum control of multi-mode couplings between trapped ion qubits for scalable entanglement

no code implementations8 Jan 2014 T. Choi, S. Debnath, T. A. Manning, C. Figgatt, Z. -X. Gong, L. -M. Duan, C. Monroe

We demonstrate high fidelity entangling quantum gates within a chain of five trapped ion qubits by optimally shaping optical fields that couple to multiple collective modes of motion.

Quantum Physics

Cannot find the paper you are looking for? You can Submit a new open access paper.