Simulating the nonequilibrium dynamics of thermal states is a fundamental problem across scales from high energy to condensed matter physics. Quantum computers may provide a way to solve this problem efficiently. Preparing a thermal state on a quantum computer is challenging, but there exist methods to circumvent this by computing a weighted sum of time-dependent matrix elements in a convenient basis. While the number of basis states can be large, in this work we show that it can be reduced by simulating only the largest density matrix elements by weight, capturing the density matrix to a specified precision. Leveraging Hamiltonian symmetries enables further reductions. This approach paves the way to more accurate thermal-state dynamics sim...
We show that the usefulness of the thermal state of a specific spin-lattice model for measurement-ba...
International audienceMolecular dynamics (MD) is a numerical simulation technique based on classical...
In this work, we show how Gibbs or thermal states appear dynamically in closed quantum many-body sys...
We present simulations of non-equilibrium dynamics of quantum field theories on digital quantum comp...
We construct a simple quantum version of the classical Metropolis algorithm to prepare and observe q...
We study thermalization of transverse field Ising chain with power law decaying interaction $\sim 1/...
We present a holographic quantum simulation algorithm to approximately prepare thermal states of $d$...
We present a quantum algorithm for the microcanonical thermal pure quantum (TPQ) method, which has a...
Simulating properties of quantum materials is one of the most promising applications of quantum comp...
Gauge theories form the foundation of modern physics, with applications ranging from elementary part...
We simulate the critical behavior of the Ising model utilizing a thermal state prepared using quantu...
The preparation and computation of many properties of quantum Gibbs states are essential for algorit...
Recently, a variety of quantum algorithms have been devised to estimate thermal averages on a genuin...
We investigate the sampling efficiency for the simulations of quantum many-body systems at finite te...
Quantum computers offer the potential to efficiently simulate the dynamics of quantum systems, a tas...
We show that the usefulness of the thermal state of a specific spin-lattice model for measurement-ba...
International audienceMolecular dynamics (MD) is a numerical simulation technique based on classical...
In this work, we show how Gibbs or thermal states appear dynamically in closed quantum many-body sys...
We present simulations of non-equilibrium dynamics of quantum field theories on digital quantum comp...
We construct a simple quantum version of the classical Metropolis algorithm to prepare and observe q...
We study thermalization of transverse field Ising chain with power law decaying interaction $\sim 1/...
We present a holographic quantum simulation algorithm to approximately prepare thermal states of $d$...
We present a quantum algorithm for the microcanonical thermal pure quantum (TPQ) method, which has a...
Simulating properties of quantum materials is one of the most promising applications of quantum comp...
Gauge theories form the foundation of modern physics, with applications ranging from elementary part...
We simulate the critical behavior of the Ising model utilizing a thermal state prepared using quantu...
The preparation and computation of many properties of quantum Gibbs states are essential for algorit...
Recently, a variety of quantum algorithms have been devised to estimate thermal averages on a genuin...
We investigate the sampling efficiency for the simulations of quantum many-body systems at finite te...
Quantum computers offer the potential to efficiently simulate the dynamics of quantum systems, a tas...
We show that the usefulness of the thermal state of a specific spin-lattice model for measurement-ba...
International audienceMolecular dynamics (MD) is a numerical simulation technique based on classical...
In this work, we show how Gibbs or thermal states appear dynamically in closed quantum many-body sys...