activity
20152023
most citedPractical security of continuous-variable quantum key distribution with reduced optical attenuation

41 citations · 88 across the 8 of their papers we have counts for

collaborators

12 papers

quant-ph20235 cited

A Scalable, Fast and Programmable Neural Decoder for Fault-Tolerant Quantum Computation Using Surface Codes

Mengyu Zhang, Xiangyu Ren, Guanglei Xi +6

Quantum error-correcting codes (QECCs) can eliminate the negative effects of quantum noise, the major obstacle to the execution of quantum algorithms. However, realizing practical…

quant-ph2023

Determination of Molecular Energies via Quantum Imaginary Time Evolution in a Superconducting Qubit System

Zhiwen Zong, Sainan Huai, Tianqi Cai +10

As a valid tool for solving ground state problems, imaginary time evolution (ITE) is widely used in physical and chemical simulations. Different ITE-based algorithms in their quant…

quant-ph202230 cited

Suppressing ZZ Crosstalk of Quantum Computers through Pulse and Scheduling Co-Optimization

Lei Xie, Jidong Zhai, Zhenxing Zhang +3

Noise is a significant obstacle to quantum computing, and crosstalk is one of the most destructive types of noise affecting superconducting qubits. Previous approaches to supp…

quant-ph20211 cited

Exploiting Different Levels of Parallelism in the Quantum Control Microarchitecture for Superconducting Qubits

Mengyu Zhang, Lei Xie, Zhenxing Zhang +7

As current Noisy Intermediate Scale Quantum (NISQ) devices suffer from decoherence errors, any delay in the instruction execution of quantum control microarchitecture can lead to t…

quant-ph2020

Spectral Transfer Tensor Method for Non-Markovian Noise Characterization

Yu-Qin Chen, Yi-Cong Zheng, Shengyu Zhang +1

With continuing improvements on the quality of fabricated quantum devices, it becomes increasingly crucial to analyze noisy quantum process in greater details such as characterizin…

quant-ph2020

Constant depth fault-tolerant Clifford circuits for multi-qubit large block codes

Yi-Cong Zheng, Ching-Yi Lai, Todd A. Brun +1

Fault-tolerant quantum computation (FTQC) schemes using large block codes that encode qubits in physical qubits can potentially reduce the resource overhead to a great ex…