5
talks
1
posters
3
committee roles
0
leadership roles
2007–2025
years active
Contributions
QIP QCrypt TQC presenter award · △program ◇steering ○organising □local · filled = chair
Talks
| Title | Conference | Type | Co-authors |
|---|---|---|---|
| Quantum algorithms for graph problems with cut queries | QIP 2021 | regular | Troy Lee, Miklos Santha |
Abstract Let $G$ be an $n$-vertex graph with $m$ edges. When asked a subset $S$ of vertices, a cut query on $G$ returns the number of edges of $G$ that have exactly one endpoint in $S$. We show that there is a bounded-error quantum algorithm that determines all connected components of $G$ after making $O(\log(n)^6)$ many cut queries. In contrast, it follows from results in communication complexity that any randomized algorithm even just to decide whether the graph is connected or not must make at least $\Omega(n/\log(n))$ many cut queries. We further show that with $O(\log(n)^8)$ many cut queries a quantum algorithm can with high probability output a spanning forest for $G$. En route to proving these results, we design quantum algorithms for learning a graph using cut queries. We show that a quantum algorithm can learn a graph with maximum degree $d$ after $O(d \log(n)^2)$ many cut queries, and can learn a general graph with $O(\sqrt{m} \log(n)^{3/2})$ many cut queries. These two upper bounds are tight up to the poly-logarithmic factors, and compare to $\Omega(dn)$ and $\Omega(m/\log(n))$ lower bounds on the number of cut queries needed by a randomized algorithm for the same problems, respectively. The key ingredients in our results are the Bernstein-Vazirani algorithm, approximate counting with ``OR queries'', and learning sparse vectors from inner products as in compressed sensing. |
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| Efficient quantum protocols for XOR functions | QIP 2014 | regular ▸ presenter | — |
|
Quantum strategic game theory ↗
|
QIP 2011 | regular | — |
|
On the power of a unique quantum witness ↗
|
QIP 2010 | regular | Rahul Jain, Iordanis Kerenidis, Greg Kuperberg, Miklos Santha, Or Sattath |
| Dishonesty and quantumness do not help a verifier in a classical honest-verifier zero-knowledge protocol | QIP 2007 | regular | — |
Posters
| Title | Conference | Co-authors |
|---|---|---|
| Quantum Approximate Optimization Algorithms for Maximum Cut on Low-Girth Graphs | QIP 2025 | Tongyang Li, Yuexin Su, Ziyi Yang |
Committee service
| Conference | Committee | Position | Title |
|---|---|---|---|
| QIP 2025 | PC | member | — |
| QIP 2013 | Local | member | — |
| TQC 2012 | PC | member | — |
Collaborators
| Co-author | Joint talks |
|---|---|
| Miklos Santha | 2 |
| Greg Kuperberg | 1 |
| Iordanis Kerenidis | 1 |
| Or Sattath | 1 |
| Rahul Jain | 1 |
| Tongyang Li | 1 |
| Troy Lee | 1 |
| Yuexin Su | 1 |
| Ziyi Yang | 1 |