We provide a general method for efficiently simulating time-dependent Hamiltonian dynamics on a circuit-model-based quantum computer. Our approach is based on approximating the truncated Dyson series of the evolution operator, extending the earlier proposal by Berry et al. [Phys. Rev. Lett. 114, 090502 (2015)PRLTAO0031-900710.1103/PhysRevLett.114.090502] to evolution generated by explicitly time-dependent Hamiltonians. Two alternative strategies are proposed to implement time ordering while exploiting the superposition principle for sampling the Hamiltonian at different times. The resource cost of our simulation algorithm retains the optimal logarithmic dependence on the inverse of the desired precision
We present a numerical method to simulate the time evolution, according to a Hamiltonian made of loc...
Simulating time evolution of generic quantum many-body systems using classical numerical approaches ...
Abstract We present an efficient quantum algorithm for simulating the evolution of a quantum state f...
We describe a simple, efficient method for simulating Hamiltonian dynamics on a quantum computer by ...
We explicitly show how to simulate time-dependent sparse Hamiltonian evolution on a quantum computer...
We describe a simple, efficient method for simulating Hamiltonian dynamics on a quantum computer by ...
We propose an efficient quantum algorithm for simulating the dynamics of general Hamiltonian systems...
We introduce a novel hybrid algorithm to simulate the real-time evolution of quantum systems using p...
In this thesis we study aspects of Hamiltonian models which can affect the time evolution of transmo...
In this thesis we study aspects of Hamiltonian models which can affect the time evolution of transmo...
We propose a simple quantum algorithm for simulating highly oscillatory quantum dynamics, which does...
We propose a simple quantum algorithm for simulating highly oscillatory quantum dynamics, which does...
We propose a simple quantum algorithm for simulating highly oscillatory quantum dynamics, which does...
A numerical method was proposed to propagate the quantum system with a time-dependent Hamiltonian. T...
We introduce a novel hybrid algorithm to simulate the real-time evolution of quantum systems using p...
We present a numerical method to simulate the time evolution, according to a Hamiltonian made of loc...
Simulating time evolution of generic quantum many-body systems using classical numerical approaches ...
Abstract We present an efficient quantum algorithm for simulating the evolution of a quantum state f...
We describe a simple, efficient method for simulating Hamiltonian dynamics on a quantum computer by ...
We explicitly show how to simulate time-dependent sparse Hamiltonian evolution on a quantum computer...
We describe a simple, efficient method for simulating Hamiltonian dynamics on a quantum computer by ...
We propose an efficient quantum algorithm for simulating the dynamics of general Hamiltonian systems...
We introduce a novel hybrid algorithm to simulate the real-time evolution of quantum systems using p...
In this thesis we study aspects of Hamiltonian models which can affect the time evolution of transmo...
In this thesis we study aspects of Hamiltonian models which can affect the time evolution of transmo...
We propose a simple quantum algorithm for simulating highly oscillatory quantum dynamics, which does...
We propose a simple quantum algorithm for simulating highly oscillatory quantum dynamics, which does...
We propose a simple quantum algorithm for simulating highly oscillatory quantum dynamics, which does...
A numerical method was proposed to propagate the quantum system with a time-dependent Hamiltonian. T...
We introduce a novel hybrid algorithm to simulate the real-time evolution of quantum systems using p...
We present a numerical method to simulate the time evolution, according to a Hamiltonian made of loc...
Simulating time evolution of generic quantum many-body systems using classical numerical approaches ...
Abstract We present an efficient quantum algorithm for simulating the evolution of a quantum state f...