38
collaborators
2009–2026
years active
Contributions
QIP QCrypt TQC talk poster presenter award · △program ◇steering ○organizing · filled = chair
3 Talks
| Title | Conference | Type | Co-authors |
|---|---|---|---|
| Fast-forwardable Lindbladians imply quantum phase estimation | QIP 2026 | regular | ▸Zhong-Xia Shang, Naixu Guo, Patrick Rebentrost, Tongyang Li, Qi Zhao |
Quantum phase estimation (QPE) and Lindbladian dynamics are both foundational in quantum information science and central to quantum algorithm design. In this work, we bridge these two concepts: certain simple Lindbladian processes can be adapted to perform QPE-type tasks. However, unlike QPE, which achieves Heisenberg-limit scaling, these Lindbladian evolutions are restricted to standard quantum limit complexity. This indicates that, different from Hamiltonian dynamics, the natural dissipative evolution speed of such Lindbladians does not saturate the fundamental quantum limit, thereby suggesting the potential for quadratic fast-forwarding. We confirm this by presenting a quantum algorithm that simulates these Lindbladians for time $t$ within an error $\varepsilon$ using $\mathcal{O}\left(\sqrt{t\log(\varepsilon^{-1})}\right)$ cost. This, to our knowledge, is the first example of Lindbladian fast forwarding, which shares a fundamentally different mechanism from the fast-forwarding examples of Hamiltonian dynamics. As a bonus, this fast-forwarded simulation naturally serves as a new Heisenberg-limit QPE algorithm. Therefore, our work explicitly bridges the standard quantum limit-Heisenberg limit transition to the fast-forwarding of dissipative dynamics. We also adopt our fast-forwarding algorithm for efficient Gibbs state preparation and demonstrate the counter-intuitive implication: the allowance of a quadratically accelerated decoherence effect under arbitrary Pauli noise. |
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| Quantum Simulation of Electronic Structure with Linear Depth and Connectivity | TQC 2018 | regular | Ian Kivlichan, Jarrod McClean, Nathan Wiebe, Craig Gidney, Garnet Kin-Lic Chan, Ryan Babbush |
|
A quantum-quantum metropolis algorithm ↗
|
QIP 2011 | regular | Man Hong Yung |
11 Posters
| Title | Conference | Co-authors |
|---|---|---|
| Efficient Quantum Algorithm for Differential Equations under Constraints and Boundary Conditions | QIP 2025 | Philipp Schleich, Tyler Darius Kharazi, Xiang-Yu Li, Jin-Peng Liu, Nathan Wiebe |
| Quantum Algorithm for Initial and Boundary Value Problems | QIP 2024 | Philipp Schleich, Nathan Wiebe |
| Quantum wavelet transforms and fast quantum algorithm for differential equations | QIP 2024 | Mohsen Bagherimehrab, Kouhei Nakaji, Nathan Wiebe |
| Variational quantum iterative power algorithms for global optimization | TQC 2023 | Thi Ha Kyaw, Micheline Soley, Brandon Allen, Paul Bergold, Chong Sun, Victor Batista |
| Variational Quantum Factoring Cao | QIP 2019 | Eric Anschuetz, Jonathan Olson, Yudong |
| Bounding the costs of quantum simulation of many-body physics in real space | QIP 2017 | Ian Kivlichan, Nathan Wiebe, Ryan Babbush |
| Computational complexity of time-dependent density functional theory | QIP 2014 | James Whitfield, Man-hong Yung, David G. Tempel, Sergio Boixo |
| Adiabatic Quantum Simulation of Quantum Chemistry | QIP 2014 | Ryan Babbush, Peter Love |
| Adiabatic quantum simulators | QIP 2011 | James Whitfield, Ville Bergholm, Jacob Biamonte, J. Fitzsimons |
| Quantum Computers for Quantum Chemistry | QIP 2010 | Ivan Kassal |
| Quantum simulation of chemical dynamics. | QIP 2009 | Ivan Kassal, Stephen Jordan, Peter Love, Masoud Mosheni |
Collaborators
| Co-author | Joint talks |
|---|---|
| Nathan Wiebe | 5 |
| Ryan Babbush | 3 |
| Ian Kivlichan | 2 |
| Ivan Kassal | 2 |
| James Whitfield | 2 |
| Peter Love | 2 |
| Philipp Schleich | 2 |
| Brandon Allen | 1 |
| Chong Sun | 1 |
| Craig Gidney | 1 |
| David G. Tempel | 1 |
| Eric Anschuetz | 1 |
| Garnet Kin-Lic Chan | 1 |
| J. Fitzsimons | 1 |
| Jacob Biamonte | 1 |
| Jarrod McClean | 1 |
| Jin-Peng Liu | 1 |
| Jonathan Olson | 1 |
| Kouhei Nakaji | 1 |
| Man Hong Yung | 1 |