7
collaborators
2020–2024
years active
Contributions
QIP QCrypt TQC talk poster presenter award · △program ◇steering ○organizing · filled = chair
2 Talks
| Title | Conference | Type | Co-authors |
|---|---|---|---|
| Models of quantum complexity growth | QIP 2020 | regular | Nicholas Hunter-Jones, Richard Kueng, Fernando G. S. L. Brandão, John Preskill |
| Models of quantum complexity growth | TQC 2020 | regular | ▸Nicholas Hunter-Jones, Richard Kueng, Fernando G. S. L. Brandão, John Preskill |
The concept of quantum complexity has far-reaching implications spanning theoretical computer science, quantum many-body physics, and high energy physics. The quantum complexity of a unitary transformation or quantum state is defined as the size of the shortest quantum computation that executes the unitary or prepares the state. It is reasonable to expect that the complexity of a quantum state governed by a chaotic many-body Hamiltonian grows linearly with time for a time that is exponential in the system size; however, because it is hard to rule out a short-cut that improves the efficiency of a computation, it is notoriously difficult to derive lower bounds on quantum complexity for particular unitaries or states without making additional assumptions. To go further, one may study more generic models of complexity growth. We provide a rigorous connection between complexity growth and unitary k-designs, ensembles which capture the randomness of the unitary group. This connection allows us to leverage existing results about design growth to draw conclusions about the growth of complexity. We prove that local random quantum circuits generate unitary transformations whose complexity grows linearly for a long time, mirroring the behavior one expects in chaotic quantum systems and verifying conjectures by Brown and Susskind. Moreover, our results apply under a strong definition of quantum complexity based on optimal distinguishing measurements. |
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1 Poster
| Title | Conference | Co-authors |
|---|---|---|
| Overlapping qubits from non-isometric maps and de Sitter tensor networks | QIP 2024 | ChunJun Cao, Alexander Jahn, Zoltan Zimboras |
Collaborators
| Co-author | Joint talks |
|---|---|
| Fernando G. S. L. Brandão | 2 |
| John Preskill | 2 |
| Nicholas Hunter-Jones | 2 |
| Richard Kueng | 2 |
| Alexander Jahn | 1 |
| ChunJun Cao | 1 |
| Zoltan Zimboras | 1 |