We propose a quantum algorithm which uses the number of qubits in an optimal way and efficiently simulates a physical model with rich and complex dynamics described by the quantum sawtooth map. The numerical study of the effect of static imperfections in the quantum computer hardware shows that the main elements of the phase space structures are accurately reproduced up to a time scale which is polynomial in the number of qubits. The errors generated by these imperfections are more significant than the errors of random noise in gate operations
The accurate and efficient simulation of many body systems has been a long-standing challenge for qu...
We conducted quantum simulations of strongly correlated systems using the quantum flow (QFlow) appro...
The accurate and efficient simulation of many body systems has been a long-standing challenge for qu...
We propose a quantum algorithm which uses the number of qubits in an optimal way and efficiently sim...
Introduced twenty years ago, quantum computation hold the promise to speed up drastically the solvin...
Introduced twenty years ago, quantum computation hold the promise to speed up drastically the solvin...
Introduced twenty years ago, quantum computation hold the promise to speed up drastically the solvin...
We investigate a quantum algorithm which simulates efficiently the quantum kicked rotator model, a s...
We show on the example of the Arnold cat map that classical chaotic systems can be simulated with ex...
The simulation of complex quantum systems on a quantum computer is studied, taking the kicked Harper...
Thesis: Ph. D., Massachusetts Institute of Technology, Department of Physics, 2017.Cataloged from PD...
The current generation of noisy intermediate-scale quantum computers introduces new opportunities to...
One of the main aims in the field of quantum simulation is to achieve a quantum speedup, often refer...
The perturbation theory is developed based on small parameters which naturally appear in solid state...
We define formally decohered quantum computers (using density matrices), and present a simulation of...
The accurate and efficient simulation of many body systems has been a long-standing challenge for qu...
We conducted quantum simulations of strongly correlated systems using the quantum flow (QFlow) appro...
The accurate and efficient simulation of many body systems has been a long-standing challenge for qu...
We propose a quantum algorithm which uses the number of qubits in an optimal way and efficiently sim...
Introduced twenty years ago, quantum computation hold the promise to speed up drastically the solvin...
Introduced twenty years ago, quantum computation hold the promise to speed up drastically the solvin...
Introduced twenty years ago, quantum computation hold the promise to speed up drastically the solvin...
We investigate a quantum algorithm which simulates efficiently the quantum kicked rotator model, a s...
We show on the example of the Arnold cat map that classical chaotic systems can be simulated with ex...
The simulation of complex quantum systems on a quantum computer is studied, taking the kicked Harper...
Thesis: Ph. D., Massachusetts Institute of Technology, Department of Physics, 2017.Cataloged from PD...
The current generation of noisy intermediate-scale quantum computers introduces new opportunities to...
One of the main aims in the field of quantum simulation is to achieve a quantum speedup, often refer...
The perturbation theory is developed based on small parameters which naturally appear in solid state...
We define formally decohered quantum computers (using density matrices), and present a simulation of...
The accurate and efficient simulation of many body systems has been a long-standing challenge for qu...
We conducted quantum simulations of strongly correlated systems using the quantum flow (QFlow) appro...
The accurate and efficient simulation of many body systems has been a long-standing challenge for qu...