This work aims at giving Trotter errors in digital quantum simulation (DQS) of collective spin systems an interpretation in terms of quantum chaos of the kicked top. In particular, for DQS of such systems, regular dynamics of the kicked top ensures convergence of the Trotterized time evolution, while chaos in the top, which sets in above a sharp threshold value of the Trotter step size, corresponds to the proliferation of Trotter errors. We show the possibility to analyze this phenomenology in a wide variety of experimental realizations of the kicked top, ranging from single atomic spins to trapped-ion quantum simulators which implement DQS of all-to-all interacting spin-1/2 systems. These platforms thus enable in-depth studies of Trotter e...
The simulation of complex quantum systems on a quantum computer is studied, taking the kicked Harper...
The goal of digital quantum simulation is to approximate the dynamics of a given target Hamiltonian ...
International audienceWe study the dynamics of a quantum spin ensemble controlled by trains of ultra...
Noisy, intermediate-scale quantum (NISQ) processors are improving rapidly but remain well short of r...
Kicked rotor is a paradigmatic model for classical and quantum chaos in time-dependent Hamiltonian s...
We study a method to simulate quantum many-body dynamics of spin ensembles using measurement-based f...
Laser-cooled atoms offer an excellent platform for testing new ideas of quantum control and measurem...
We investigate a quantum algorithm which simulates efficiently the quantum kicked rotator model, a s...
A fundamental challenge in digital quantum simulation (DQS) is the control of an inherent error, whi...
The Trotter-Suzuki decomposition is a promising avenue for digital quantum simulation (DQS), approxi...
We analyze the interplay of chaos, entanglement, and decoherence in a system of qubits whose collect...
Most classical dynamical systems are chaotic. The trajectories of two identical systems prepared in ...
Several quantum phenomena have been experimentally investigated using the system of ultra-cold atoms...
Dissipative collective effects are ubiquitous in quantum physics and their relevance ranges from the...
Dissipative collective effects are ubiquitous in quantum physics, and their relevance ranges from th...
The simulation of complex quantum systems on a quantum computer is studied, taking the kicked Harper...
The goal of digital quantum simulation is to approximate the dynamics of a given target Hamiltonian ...
International audienceWe study the dynamics of a quantum spin ensemble controlled by trains of ultra...
Noisy, intermediate-scale quantum (NISQ) processors are improving rapidly but remain well short of r...
Kicked rotor is a paradigmatic model for classical and quantum chaos in time-dependent Hamiltonian s...
We study a method to simulate quantum many-body dynamics of spin ensembles using measurement-based f...
Laser-cooled atoms offer an excellent platform for testing new ideas of quantum control and measurem...
We investigate a quantum algorithm which simulates efficiently the quantum kicked rotator model, a s...
A fundamental challenge in digital quantum simulation (DQS) is the control of an inherent error, whi...
The Trotter-Suzuki decomposition is a promising avenue for digital quantum simulation (DQS), approxi...
We analyze the interplay of chaos, entanglement, and decoherence in a system of qubits whose collect...
Most classical dynamical systems are chaotic. The trajectories of two identical systems prepared in ...
Several quantum phenomena have been experimentally investigated using the system of ultra-cold atoms...
Dissipative collective effects are ubiquitous in quantum physics and their relevance ranges from the...
Dissipative collective effects are ubiquitous in quantum physics, and their relevance ranges from th...
The simulation of complex quantum systems on a quantum computer is studied, taking the kicked Harper...
The goal of digital quantum simulation is to approximate the dynamics of a given target Hamiltonian ...
International audienceWe study the dynamics of a quantum spin ensemble controlled by trains of ultra...