activity
20162026
most citedSupplementary information for "Quantum supremacy using a programmable superconducting processor"

7.2k citations · 10.7k across the 35 of their papers we have counts for

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Showing 2022 · quant-phShow all

11 papers · 2 filters

quant-ph2022★ 69 cited

Purification-based quantum error mitigation of pair-correlated electron simulations

T. E. O'Brien, G. Anselmetti, F. Gkritsis +173

An important measure of the development of quantum computing platforms has been the simulation of increasingly complex physical systems. Prior to fault-tolerant quantum computing,…

quant-ph2022★ 14 cited

Non-Abelian braiding of graph vertices in a superconducting processor

Trond I. Andersen, Yuri D. Lensky, Kostyantyn Kechedzhi +166

Indistinguishability of particles is a fundamental principle of quantum mechanics. For all elementary and quasiparticles observed to date - including fermions, bosons, and Abelian…

quant-ph2022★ 609 cited

Quantum Error Mitigation

Zhenyu Cai, Ryan Babbush, Simon C. Benjamin +5

For quantum computers to successfully solve real-world problems, it is necessary to tackle the challenge of noise: the errors which occur in elementary physical components due to u…

quant-ph2022★ 40 cited

Analyzing Prospects for Quantum Advantage in Topological Data Analysis

Dominic W. Berry, Yuan Su, Casper Gyurik +7

Lloyd et al. were first to demonstrate the promise of quantum algorithms for computing Betti numbers, a way to characterize topological features of data sets. Here, we propose, ana…

quant-ph2022★ 4 cited

Response to "Exponential challenges in unbiasing quantum Monte Carlo algorithms with quantum computers"

Joonho Lee, David R. Reichman, Ryan Babbush +4

A recent preprint by Mazzola and Carleo numerically investigates exponential challenges that can arise for the QC-QMC algorithm introduced in our work, "Unbiasing fermionic quantum…

quant-ph2022★ 1.1k cited

Suppressing quantum errors by scaling a surface code logical qubit

Rajeev Acharya, Igor Aleiner, Richard Allen +154

Practical quantum computing will require error rates that are well below what is achievable with physical qubits. Quantum error correction offers a path to algorithmically-relevant…