Quantum time dynamics (QTD) is considered a promising problem for quantum supremacy on near-term quantum computers. However, QTD quantum circuits grow with increasing time simulations. This study focuses on simulating the time dynamics of 1-D integrable spin chains with nearest neighbor interactions. We show how the quantum Yang-Baxter equation can be exploited to compress and produce a shallow quantum circuit. With this compression scheme, the depth of the quantum circuit becomes independent of step size and only depends on the number of spins. We show that the compressed circuit scales quadratically with system size, which allows for the simulations of time dynamics of very large 1-D spin chains. We derive the compressed circuit represent...
The quantum circuit model is the de-facto way of designing quantum algorithms. Yet any level of abst...
Quantum computing is a promising technology that harnesses the peculiarities of quantum mechanics to...
Thesis (Ph. D.)--Massachusetts Institute of Technology, Dept. of Physics, 2008.This electronic versi...
The current generation of noisy intermediate-scale quantum computers introduces new opportunities to...
Abstract: Dynamic simulation of materials is a promising application for near-term quantum computer...
We explicitly show how to simulate time-dependent sparse Hamiltonian evolution on a quantum computer...
Dynamic simulation of materials is a promising application for near-term quantum computers. Current ...
We present a numerical method to simulate the time evolution, according to a generic Hamiltonian mad...
Unitary evolution under a time-dependent Hamiltonian is a key component of simulation on quantum har...
We describe a simulation approach to study the functioning of Quantum Computer hardware. The latter ...
We demonstrate a post-quench dynamics simulation of a Heisenberg model on present-day IBM quantum ha...
The simulation of quantum spin chains is a promising candidate for the demonstration of quantum adva...
The simulation of quantum systems has been a key aim of quantum technologies for decades, and genera...
Quantum computing is a promising technology that harnesses the peculiarities of quantum mechanics to...
Simulating quantum dynamics on classical computers is challenging for large systems due to the signi...
The quantum circuit model is the de-facto way of designing quantum algorithms. Yet any level of abst...
Quantum computing is a promising technology that harnesses the peculiarities of quantum mechanics to...
Thesis (Ph. D.)--Massachusetts Institute of Technology, Dept. of Physics, 2008.This electronic versi...
The current generation of noisy intermediate-scale quantum computers introduces new opportunities to...
Abstract: Dynamic simulation of materials is a promising application for near-term quantum computer...
We explicitly show how to simulate time-dependent sparse Hamiltonian evolution on a quantum computer...
Dynamic simulation of materials is a promising application for near-term quantum computers. Current ...
We present a numerical method to simulate the time evolution, according to a generic Hamiltonian mad...
Unitary evolution under a time-dependent Hamiltonian is a key component of simulation on quantum har...
We describe a simulation approach to study the functioning of Quantum Computer hardware. The latter ...
We demonstrate a post-quench dynamics simulation of a Heisenberg model on present-day IBM quantum ha...
The simulation of quantum spin chains is a promising candidate for the demonstration of quantum adva...
The simulation of quantum systems has been a key aim of quantum technologies for decades, and genera...
Quantum computing is a promising technology that harnesses the peculiarities of quantum mechanics to...
Simulating quantum dynamics on classical computers is challenging for large systems due to the signi...
The quantum circuit model is the de-facto way of designing quantum algorithms. Yet any level of abst...
Quantum computing is a promising technology that harnesses the peculiarities of quantum mechanics to...
Thesis (Ph. D.)--Massachusetts Institute of Technology, Dept. of Physics, 2008.This electronic versi...