Quantum error mitigation (QEM) is vital for noisy intermediate-scale quantum (NISQ) devices. While most conventional QEM schemes assume discrete gate-based circuits with noise appearing either before or after each gate, the assumptions are inappropriate for describing realistic noise that may have strong gate dependence and complicated nonlocal effects, and general computing models such as analog quantum simulators. To address these challenges, we first extend the scenario, where each computation process, being either digital or analog, is described by a continuous time evolution. For noise from imperfections of the engineered Hamiltonian or additional noise operators, we show it can be effectively suppressed by a stochastic QEM method. Sin...
The success of the current generation of Noisy Intermediate-Scale Quantum (NISQ) hardware shows that...
The success of the current generation of Noisy Intermediate-Scale Quantum (NISQ) hardware shows that...
Using near-term quantum computers to achieve a quantum advantage requires efficient strategies to im...
Our near-term quantum computers have been built as intermediate-scale quantum devices and are fragil...
Suppressing noise in physical systems is of fundamental importance. As quantum computers mature, qua...
If noisy-intermediate-scale-quantum-era quantum computers are to perform useful tasks, they will nee...
The successful implementation of algorithms on quantum processors relies on the accurate control of ...
41 pages, 3 figuresQuantum error mitigation has been proposed as a means to combat unavoidable error...
41 pages, 3 figuresQuantum error mitigation has been proposed as a means to combat unavoidable error...
It is vital to minimise the impact of errors for near-future quantum devices that will lack the reso...
It is vital to minimise the impact of errors for near-future quantum devices that will lack the reso...
Finding ground states and low-lying excitations of a given Hamiltonian is one of the most important ...
It is vital to minimize the impact of errors for near-future quantum devices that will lack the reso...
Recent progress in noisy intermediate-scale quantum (NISQ) hardware shows that quantum devices may b...
Recent progress in noisy intermediate-scale quantum (NISQ) hardware shows that quantum devices may b...
The success of the current generation of Noisy Intermediate-Scale Quantum (NISQ) hardware shows that...
The success of the current generation of Noisy Intermediate-Scale Quantum (NISQ) hardware shows that...
Using near-term quantum computers to achieve a quantum advantage requires efficient strategies to im...
Our near-term quantum computers have been built as intermediate-scale quantum devices and are fragil...
Suppressing noise in physical systems is of fundamental importance. As quantum computers mature, qua...
If noisy-intermediate-scale-quantum-era quantum computers are to perform useful tasks, they will nee...
The successful implementation of algorithms on quantum processors relies on the accurate control of ...
41 pages, 3 figuresQuantum error mitigation has been proposed as a means to combat unavoidable error...
41 pages, 3 figuresQuantum error mitigation has been proposed as a means to combat unavoidable error...
It is vital to minimise the impact of errors for near-future quantum devices that will lack the reso...
It is vital to minimise the impact of errors for near-future quantum devices that will lack the reso...
Finding ground states and low-lying excitations of a given Hamiltonian is one of the most important ...
It is vital to minimize the impact of errors for near-future quantum devices that will lack the reso...
Recent progress in noisy intermediate-scale quantum (NISQ) hardware shows that quantum devices may b...
Recent progress in noisy intermediate-scale quantum (NISQ) hardware shows that quantum devices may b...
The success of the current generation of Noisy Intermediate-Scale Quantum (NISQ) hardware shows that...
The success of the current generation of Noisy Intermediate-Scale Quantum (NISQ) hardware shows that...
Using near-term quantum computers to achieve a quantum advantage requires efficient strategies to im...