84
collaborators
2024–2026
years active
Contributions
QIP QCrypt TQC talk poster presenter award · △program ◇steering ○organizing · filled = chair
4 Posters
| Title | Conference | Co-authors |
|---|---|---|
| Certified randomness on NISQ devices with quantum computational advantage | TQC 2026 | Minzhao Liu, Pradeep Niroula, Matthew DeCross, Cameron Foreman, Wen Yu Kon, Ignatius William Primaatmaja, Michael Allman, John Campora III, Akhil Isanaka, Kartik Singhal, Omar Amer, Shouvanik Chakrabarti, Kaushik Chakraborty, Samuel Cooper, Robert Delaney, Joan Dreiling, Brian Estey, Caroline Figgatt, Cameron Foltz, John Gaebler, Alex Hall, Zichang He, Craig Holliman, Travis S. Humble, Shih-Han Hung, Ali Husain, Yuwei Jin, Fatih Kaleoglu, Colin Kennedy, Nikhil Kotibhaskar, Nathan Lysne, Ivaylo Madjarov, Michael Mills, Alistair Milne, Kevin Milner, Louis Narmour, Sivaprasad Omanakuttan, Annie Park, Michael Perlin, Adam Reed, Chris N. Self, Matthew Steinberg, David Stephen, Joseph Sullivan, Alex Chernoguzov, Florian John Curchod, Anthony Ransford, Justin Bohnet, Brian Neyenhuis, Michael Foss-Feig, Rob Otter, Ruslan Shaydulin, Enrique Cervero-Martin, Scott Aaronson, Atithi Acharya, K. Jordan Berg, Neal Erickson, Niraj Kumar, Jeffrey Larson, Danylo Lykov, Steven Moses, Shaltiel Eloul, Peter Siegfried, James Walker, Charles Ci Wen Lim, Marco Pistoia |
Achieving computational advantage using NISQ devices on practically useful problems is a long standing challenge. We report two papers that experimentally demonstrate a concrete application, namely certified randomness generation, which could be useful for multi-party cryptographic protocols and improving imperfect physical sources of randomness. Both papers involve substantial theoretical contributions to the protocol. We devise a realistic protocol that maximizes practical hardness. The verifier first asks the server to prepare a quantum state using a random circuit and then sends a random measurement basis right before the result must be received. This is repeated for many rounds. We show complexity theoretic evidence for entropy generation and provide improved entropy bounds against adversaries with oracle access to the random circuits. We also construct an end-to-end application of randomness amplification of imperfect sources into nearly perfect randomness, notably achieving everlasting security which uplifts computational security to information theoretic security. |
||
| Evidence of Scaling Advantage for the Quantum Approximate Optimization Algorithm on a Classically Intractable Problem | QIP 2024 | Ruslan Shaydulin, Changhao Li, Shouvanik Chakrabarti, Matthew DeCross, Dylan Herman, Niraj Kumar, Jeffrey Larson, Danylo Lykov, Pierre Minssen, Yue Sun, Joan Dreiling, John Gaebler, Thomas Gatterman, Justin Gerber, Kevin Gilmore, Daniel Gresh, Nathan Hewitt, Chandler Horst, Shaohan Hu, Jacob Johansen, Mitchell Matheny, Tanner Mengle, Michael Mills, Steven Moses, Brian Neyenhuis, Peter Siegfried, Romina Yalovetzky, Marco Pistoia |
| Classical algorithm for simulating experimental Gaussian boson sampling | QIP 2024 | Changhun Oh, Minzhao Liu, Bill Fefferman, Liang Jiang |
| Classical algorithm for simulating experimental Gaussian boson sampling | TQC 2024 | Changhun Oh, Minzhao Liu, Bill Fefferman, Liang Jiang |
Collaborators
| Co-author | Joint talks |
|---|---|
| Minzhao Liu | 3 |
| Bill Fefferman | 2 |
| Brian Neyenhuis | 2 |
| Changhun Oh | 2 |
| Danylo Lykov | 2 |
| Jeffrey Larson | 2 |
| Joan Dreiling | 2 |
| John Gaebler | 2 |
| Liang Jiang | 2 |
| Marco Pistoia | 2 |
| Matthew DeCross | 2 |
| Michael Mills | 2 |
| Niraj Kumar | 2 |
| Peter Siegfried | 2 |
| Ruslan Shaydulin | 2 |
| Shouvanik Chakrabarti | 2 |
| Steven Moses | 2 |
| Adam Reed | 1 |
| Akhil Isanaka | 1 |
| Alex Chernoguzov | 1 |