Reference change · event page
Reference changes · DOI
doi: 10.1038/s41567-019-0704-4
Published notice on a work cited in the Pith corpus. Exact quotes below. No model judges whether any citation was load-bearing.
This page records that a citing paper's bibliography includes a work with a published notice. It is not a judgment on the citing paper.
Correction
Crossref
20 open · 20 total · 0 disputed
- Event date
- 2020-01-29
01Notices on this DOI
-
Correction
Crossref · 2020-01-29
-
Correction
Crossref · 2019-11-21
02One-hop citing occurrences
Correction
Open
Quantum Dynamics in Krylov Space: Methods and Applications
ref [27] ·
2405.09628
· notice #5539
· dispute
Raw extraction · bibliography line
M. Motta, C. Sun, A. T. K. Tan, M. J. O’Rourke, E. Ye, A. J. Minnich, F. G. S. L. Brandão, G. K.-L. Chan, Determining eigenstates and thermal states on a quantum computer using quantum imaginary time evolution, Nature Physics 16 (2) (2020) 205–210. doi:10.1038/s41567-019-0704-4 . URL https://doi.org/10.1038/s41567-019-0704-4
Correction
Open
Selecting optimal unrestricted Hartree-Fock trial wavefunctions for phaseless auxiliary-field quantum Monte Carlo: Accuracy and limitations in modeling three iron-sulfur clusters
ref [238] ·
2605.03981
· notice #5531
· dispute
Raw extraction · bibliography line
Determining eigenstates and thermal states on a quantum computer using quantum imaginary time evolution , volume =. Nature Physics , author =. 2020 , pages =. doi:10.1038/s41567-019-0704-4 , language =
Parser render (TeX stripped for reading; raw above is the evidence)
Determining eigenstates and thermal states on a quantum computer using quantum imaginary time evolution, volume =. Nature Physics, author =. 2020, pages =. doi:10.1038/s41567-019-0704-4, language =
Correction
Open
Qubit-efficient and gate-efficient encodings of graph partitioning problems for quantum optimization
ref [13] ·
2604.21123
· notice #5532
· dispute
Raw extraction · citation context
scheme is claimed to be classically intractable for sufficiently large|V|, the crossover point where quantum advantage emerges remains empirically unclear. B. Quantum Optimization Algorithms Quantum algorithms for combinatorial optimization that are compatible with our encoding include variational quantum computing (VQC) [31], quantum imaginary time evolution (QITE) [12], Grover-based adaptive search (GAS) [13], [32], and adiabatic quantum computation (AQC)/quantum annealing (QA) [33]. We summarize these methods, and briefly comment on their resource use when applied QUBO and HUBO models. a) Variational Quantum Computing:VQC minimizes ⟨ψ(θ)|H|ψ(θ)⟩ ≥E 0 by classically adjusting circuit parame- tersθ[31]. QUBOs require only2-qubit gates;k-local HUBO terms are realized via phase gadgets using2(k−1)CNOTs and
Correction
Open
Quantum Randomized Subspace Iteration
ref [59] ·
2604.09483
· notice #5533
· dispute
Raw extraction · citation context
A multireference quantum krylov algorithm for strongly correlated electrons, 2019. URLhttps: //arxiv.org/abs/1911.05163. [58] Cristian L. Cortes and Stephen K. Gray. Quantum krylov subspace algorithms for ground- and excited-state energy estimation.Physical Review A, 105(2), February 2022. ISSN 2469-9934. doi:10.1103/physreva.105.022417. URL http://dx.doi.org/10.1103/PhysRevA.105.022417. [59] Dunham Jackson. On approximation by trigono- metric sums and polynomials.Transactions of the American Mathematical Society, 13(4):491-515, 1912. ISSN 1088-6850. doi:10.1090/s0002-9947- 1912-1500930-2. URLhttp://dx.doi.org/10.1090/ S0002-9947-1912-1500930-2. [60] Alexander Weiße, Gerhard Wellein, Andreas Alvermann, and Holger Fehske. The kernel polynomial method.
Parser render (TeX stripped for reading; raw above is the evidence)
A multireference quantum krylov algorithm for strongly correlated electrons, 2019. URLhttps: //arxiv.org/abs/1911.05163. [58] Cristian L. Cortes and Stephen K. Gray. Quantum krylov subspace algorithms for ground- and excited-state energy estimation.Physical Review A, 105(2), February 2022. ISSN 2469-9934. doi:10.1103/physreva.105.022417. URL http://dx.doi.org/10.1103/PhysRevA.105.022417. [59] Dunham Jackson. On approximation by trigono- metric sums and polynomials.Transactions of the American Mathematical Society, 13(4):491-515, 1912. ISSN 1088-6850. doi:10.1090/s0002-9947- 1912-1500930-2. URLhttp://dx.doi.org/10.1090/ S0002-9947-1912-1500930-2. [60] Alexander Weiße, Gerhard Wellein, Andreas Alvermann, and Holger Fehske. The kernel polynomial method
Correction
Open
svPITE: A Python package for the state-vector-based probabilistic imaginary-time evolution algorithm
ref [18] ·
2605.07559
· notice #5534
· dispute
Raw extraction · bibliography line
Motta, Mario and Sun, Chong and Tan, Adrian T. K. and O’Rourke, Matthew J. and Ye, Erika and Minnich, Austin J. and Brandão, Fernando G. S. L. and Chan, Garnet Kin-Lic , year =. Determining eigenstates and thermal states on a quantum computer using quantum imaginary time evolution , volume =. Nat. Phys. , publisher =. doi:10.1038/s41567-019-0704-4 , number =
Parser render (TeX stripped for reading; raw above is the evidence)
Motta, Mario and Sun, Chong and Tan, Adrian T. K. and O’Rourke, Matthew J. and Ye, Erika and Minnich, Austin J. and Brandão, Fernando G. S. L. and Chan, Garnet Kin-Lic, year =. Determining eigenstates and thermal states on a quantum computer using quantum imaginary time evolution, volume =. Nat. Phys., publisher =. doi:10.1038/s41567-019-0704-4, number =
Correction
Open
Quantum simulation of massive Thirring and Gross--Neveu models for arbitrary number of flavors
ref [38] ·
2602.22313
· notice #5535
· dispute
Raw extraction · bibliography line
M. Motta, C. Sun, A. T. K. Tan, M. J. O’Rourke, E. Ye, A. J. Minnich, F. G. S. L. Brand˜ ao, and G. K.-L. Chan, “Determining eigenstates and thermal states on a quantum computer using quantum imaginary time evolution,”Nature Physics16no. 2, (Feb, 2020) 205–210. https://doi.org/10.1038/s41567-019-0704-4
Correction
Open
Quantum Simulation of Non-Hermitian Special Functions and Dynamics via Contour-based Matrix Decomposition
ref [37] ·
2511.10267
· notice #5536
· dispute
Raw extraction · bibliography line
Motta, M., Sun, C., Tan, A.T.K., O’Rourke, M.J., Ye, E., Minnich, A.J., Brand ˜ao, F.G.S.L., Chan, G.K.-L.: Determining eigenstates and thermal states on a quantum com- puter using quantum imaginary time evolution. Nature Physics16(2), 205–210 (2020) https://doi.org/10.1038/s41567-019-0704-4
Correction
Open
Fast mixing of all-to-all quantum systems at high temperatures
ref [285] ·
2606.26090
· notice #5537
· dispute
Raw extraction · bibliography line
Determining eigenstates and thermal states on a quantum computer using quantum imaginary time evolution , author =. Nature Physics , volume =. doi:10.1038/s41567-019-0704-4 , url =
Parser render (TeX stripped for reading; raw above is the evidence)
Determining eigenstates and thermal states on a quantum computer using quantum imaginary time evolution, author =. Nature Physics, volume =. doi:10.1038/s41567-019-0704-4, url =
Correction
Open
svPITE: A Python package for the state-vector-based probabilistic imaginary-time evolution algorithm
ref [18] ·
2605.07559
· notice #5538
· dispute
Raw extraction · bibliography line
Motta, Mario and Sun, Chong and Tan, Adrian T. K. and O’Rourke, Matthew J. and Ye, Erika and Minnich, Austin J. and Brandão, Fernando G. S. L. and Chan, Garnet Kin-Lic , year =. Determining eigenstates and thermal states on a quantum computer using quantum imaginary time evolution , volume =. Nat. Phys. , publisher =. doi:10.1038/s41567-019-0704-4 , number =
Parser render (TeX stripped for reading; raw above is the evidence)
Motta, Mario and Sun, Chong and Tan, Adrian T. K. and O’Rourke, Matthew J. and Ye, Erika and Minnich, Austin J. and Brandão, Fernando G. S. L. and Chan, Garnet Kin-Lic, year =. Determining eigenstates and thermal states on a quantum computer using quantum imaginary time evolution, volume =. Nat. Phys., publisher =. doi:10.1038/s41567-019-0704-4, number =
Correction
Open
Exceptional-Point-Anchored Variational Quantum Eigensolver for Non-Hermitian Many-Body Phase Diagrams: Bridging Skin-Effect Topology and Entanglement Criticality on NISQ Hardware
ref [27] ·
2606.18916
· notice #5540
· dispute
Raw extraction · bibliography line
ISSN 1745-2481. doi: 10.1038/s41567-019-0704-4. URLhttp://dx.doi.org/10.1038/ s41567-019-0704-4
Correction
Open
Quantum Dynamics in Krylov Space: Methods and Applications
ref [27] ·
2405.09628
· notice #219
· dispute
Raw extraction · bibliography line
M. Motta, C. Sun, A. T. K. Tan, M. J. O’Rourke, E. Ye, A. J. Minnich, F. G. S. L. Brandão, G. K.-L. Chan, Determining eigenstates and thermal states on a quantum computer using quantum imaginary time evolution, Nature Physics 16 (2) (2020) 205–210. doi:10.1038/s41567-019-0704-4 . URL https://doi.org/10.1038/s41567-019-0704-4
Correction
Open
Qubit-efficient and gate-efficient encodings of graph partitioning problems for quantum optimization
ref [13] ·
2604.21123
· notice #212
· dispute
Raw extraction · citation context
scheme is claimed to be classically intractable for sufficiently large|V|, the crossover point where quantum advantage emerges remains empirically unclear. B. Quantum Optimization Algorithms Quantum algorithms for combinatorial optimization that are compatible with our encoding include variational quantum computing (VQC) [31], quantum imaginary time evolution (QITE) [12], Grover-based adaptive search (GAS) [13], [32], and adiabatic quantum computation (AQC)/quantum annealing (QA) [33]. We summarize these methods, and briefly comment on their resource use when applied QUBO and HUBO models. a) Variational Quantum Computing:VQC minimizes ⟨ψ(θ)|H|ψ(θ)⟩ ≥E 0 by classically adjusting circuit parame- tersθ[31]. QUBOs require only2-qubit gates;k-local HUBO terms are realized via phase gadgets using2(k−1)CNOTs and
Correction
Open
Quantum Randomized Subspace Iteration
ref [59] ·
2604.09483
· notice #213
· dispute
Raw extraction · citation context
A multireference quantum krylov algorithm for strongly correlated electrons, 2019. URLhttps: //arxiv.org/abs/1911.05163. [58] Cristian L. Cortes and Stephen K. Gray. Quantum krylov subspace algorithms for ground- and excited-state energy estimation.Physical Review A, 105(2), February 2022. ISSN 2469-9934. doi:10.1103/physreva.105.022417. URL http://dx.doi.org/10.1103/PhysRevA.105.022417. [59] Dunham Jackson. On approximation by trigono- metric sums and polynomials.Transactions of the American Mathematical Society, 13(4):491-515, 1912. ISSN 1088-6850. doi:10.1090/s0002-9947- 1912-1500930-2. URLhttp://dx.doi.org/10.1090/ S0002-9947-1912-1500930-2. [60] Alexander Weiße, Gerhard Wellein, Andreas Alvermann, and Holger Fehske. The kernel polynomial method.
Parser render (TeX stripped for reading; raw above is the evidence)
A multireference quantum krylov algorithm for strongly correlated electrons, 2019. URLhttps: //arxiv.org/abs/1911.05163. [58] Cristian L. Cortes and Stephen K. Gray. Quantum krylov subspace algorithms for ground- and excited-state energy estimation.Physical Review A, 105(2), February 2022. ISSN 2469-9934. doi:10.1103/physreva.105.022417. URL http://dx.doi.org/10.1103/PhysRevA.105.022417. [59] Dunham Jackson. On approximation by trigono- metric sums and polynomials.Transactions of the American Mathematical Society, 13(4):491-515, 1912. ISSN 1088-6850. doi:10.1090/s0002-9947- 1912-1500930-2. URLhttp://dx.doi.org/10.1090/ S0002-9947-1912-1500930-2. [60] Alexander Weiße, Gerhard Wellein, Andreas Alvermann, and Holger Fehske. The kernel polynomial method
Correction
Open
svPITE: A Python package for the state-vector-based probabilistic imaginary-time evolution algorithm
ref [18] ·
2605.07559
· notice #214
· dispute
Raw extraction · bibliography line
Motta, Mario and Sun, Chong and Tan, Adrian T. K. and O’Rourke, Matthew J. and Ye, Erika and Minnich, Austin J. and Brandão, Fernando G. S. L. and Chan, Garnet Kin-Lic , year =. Determining eigenstates and thermal states on a quantum computer using quantum imaginary time evolution , volume =. Nat. Phys. , publisher =. doi:10.1038/s41567-019-0704-4 , number =
Parser render (TeX stripped for reading; raw above is the evidence)
Motta, Mario and Sun, Chong and Tan, Adrian T. K. and O’Rourke, Matthew J. and Ye, Erika and Minnich, Austin J. and Brandão, Fernando G. S. L. and Chan, Garnet Kin-Lic, year =. Determining eigenstates and thermal states on a quantum computer using quantum imaginary time evolution, volume =. Nat. Phys., publisher =. doi:10.1038/s41567-019-0704-4, number =
Correction
Open
Quantum simulation of massive Thirring and Gross--Neveu models for arbitrary number of flavors
ref [38] ·
2602.22313
· notice #215
· dispute
Raw extraction · bibliography line
M. Motta, C. Sun, A. T. K. Tan, M. J. O’Rourke, E. Ye, A. J. Minnich, F. G. S. L. Brand˜ ao, and G. K.-L. Chan, “Determining eigenstates and thermal states on a quantum computer using quantum imaginary time evolution,”Nature Physics16no. 2, (Feb, 2020) 205–210. https://doi.org/10.1038/s41567-019-0704-4
Correction
Open
Quantum Simulation of Non-Hermitian Special Functions and Dynamics via Contour-based Matrix Decomposition
ref [37] ·
2511.10267
· notice #216
· dispute
Raw extraction · bibliography line
Motta, M., Sun, C., Tan, A.T.K., O’Rourke, M.J., Ye, E., Minnich, A.J., Brand ˜ao, F.G.S.L., Chan, G.K.-L.: Determining eigenstates and thermal states on a quantum com- puter using quantum imaginary time evolution. Nature Physics16(2), 205–210 (2020) https://doi.org/10.1038/s41567-019-0704-4
Correction
Open
Fast mixing of all-to-all quantum systems at high temperatures
ref [285] ·
2606.26090
· notice #217
· dispute
Raw extraction · bibliography line
Determining eigenstates and thermal states on a quantum computer using quantum imaginary time evolution , author =. Nature Physics , volume =. doi:10.1038/s41567-019-0704-4 , url =
Parser render (TeX stripped for reading; raw above is the evidence)
Determining eigenstates and thermal states on a quantum computer using quantum imaginary time evolution, author =. Nature Physics, volume =. doi:10.1038/s41567-019-0704-4, url =
Correction
Open
svPITE: A Python package for the state-vector-based probabilistic imaginary-time evolution algorithm
ref [18] ·
2605.07559
· notice #218
· dispute
Raw extraction · bibliography line
Motta, Mario and Sun, Chong and Tan, Adrian T. K. and O’Rourke, Matthew J. and Ye, Erika and Minnich, Austin J. and Brandão, Fernando G. S. L. and Chan, Garnet Kin-Lic , year =. Determining eigenstates and thermal states on a quantum computer using quantum imaginary time evolution , volume =. Nat. Phys. , publisher =. doi:10.1038/s41567-019-0704-4 , number =
Parser render (TeX stripped for reading; raw above is the evidence)
Motta, Mario and Sun, Chong and Tan, Adrian T. K. and O’Rourke, Matthew J. and Ye, Erika and Minnich, Austin J. and Brandão, Fernando G. S. L. and Chan, Garnet Kin-Lic, year =. Determining eigenstates and thermal states on a quantum computer using quantum imaginary time evolution, volume =. Nat. Phys., publisher =. doi:10.1038/s41567-019-0704-4, number =
Correction
Open
Exceptional-Point-Anchored Variational Quantum Eigensolver for Non-Hermitian Many-Body Phase Diagrams: Bridging Skin-Effect Topology and Entanglement Criticality on NISQ Hardware
ref [27] ·
2606.18916
· notice #220
· dispute
Raw extraction · bibliography line
ISSN 1745-2481. doi: 10.1038/s41567-019-0704-4. URLhttp://dx.doi.org/10.1038/ s41567-019-0704-4
Correction
Open
Selecting optimal unrestricted Hartree-Fock trial wavefunctions for phaseless auxiliary-field quantum Monte Carlo: Accuracy and limitations in modeling three iron-sulfur clusters
ref [238] ·
2605.03981
· notice #211
· dispute
Raw extraction · bibliography line
Determining eigenstates and thermal states on a quantum computer using quantum imaginary time evolution , volume =. Nature Physics , author =. 2020 , pages =. doi:10.1038/s41567-019-0704-4 , language =
Parser render (TeX stripped for reading; raw above is the evidence)
Determining eigenstates and thermal states on a quantum computer using quantum imaginary time evolution, volume =. Nature Physics, author =. 2020, pages =. doi:10.1038/s41567-019-0704-4, language =