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20172020
most citedFocus beyond quadratic speedups for error-corrected quantum advantage

148 citations · 306 across the 6 of their papers we have counts for

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17 papers · 1 filter

quant-ph2020

Accurately computing electronic properties of a quantum ring

C. Neill, T. McCourt, X. Mi +89

A promising approach to study condensed-matter systems is to simulate them on an engineered quantum platform. However, achieving the accuracy needed to outperform classical methods…

quant-ph2020148 cited

Focus beyond quadratic speedups for error-corrected quantum advantage

Ryan Babbush, Jarrod McClean, Michael Newman +3

In this perspective, we discuss conditions under which it would be possible for a modest fault-tolerant quantum computer to realize a runtime advantage by executing a quantum algor…

quant-ph2020

Observation of separated dynamics of charge and spin in the Fermi-Hubbard model

Frank Arute, Kunal Arya, Ryan Babbush +96

Strongly correlated quantum systems give rise to many exotic physical phenomena, including high-temperature superconductivity. Simulating these systems on quantum computers may avo…

quant-ph2020

Fault-Tolerant Operation of a Quantum Error-Correction Code

Laird Egan, Dripto M. Debroy, Crystal Noel +8

Quantum error correction protects fragile quantum information by encoding it into a larger quantum system. These extra degrees of freedom enable the detection and correction of err…

quant-ph202085 cited

Classical Simulation of Quantum Supremacy Circuits

Cupjin Huang, Fang Zhang, Michael Newman +10

It is believed that random quantum circuits are difficult to simulate classically. These have been used to demonstrate quantum supremacy: the execution of a computational task on a…

quant-ph202058 cited

Fault-Tolerant Weighted Union-Find Decoding on the Toric Code

Shilin Huang, Michael Newman, Kenneth R. Brown

Quantum error correction requires decoders that are both accurate and efficient. To this end, union-find decoding has emerged as a promising candidate for error correction on the s…