12
collaborators
2017–2024
years active
Contributions
QIP QCrypt TQC talk poster presenter award · △program ◇steering ○organizing · filled = chair
8 Posters
| Title | Conference | Co-authors |
|---|---|---|
| Mitigating photon loss in linear optical quantum circuits' Merged with 'An error-mitigated photonic quantum circuit Born machine' | TQC 2024 | James Mills, Alexia Salavrakos |
| Encoding quantum circuits onto graphs: computation of probability amplitudes via permanents | TQC 2024 | Hugo Thomas, Pierre-Emmanuel Emeriau |
| On fault-tolerant constant depth computations: generalisations and applications | TQC 2024 | Grégoire Gliniasty, Damian Markham |
| Adaptivity as a key ingredient for fault-tolerant non-Clifford gates | TQC 2023 | Grégoire Gliniasty, Damian Markham |
| Efficient Construction of Quantum Physical Unclonable Functions with Unitary t-designs | QCRYPT 2021 | Niraj Kumar, Elham Kashefi |
Quantum physical unclonable functions, or QPUFs, are rapidly emerging as theoretical hardware solutions to provide secure cryptographic functionalities such as key exchange, message authentication, entity identification among others. Recent works have shown that in order to provide provable security of these solutions against any quantum polynomial time adversary, QPUFs are required to be a unitary sampled uniformly randomly from the Haar measure. This however is known to require an exponential amount of resources. In this work, we propose an efficient construction of these devices using unitary t-designs, called QPUF_t. Along the way, we modify the existing security definitions of QPUFs to include efficient constructions and showcase that QPUF_t still retains the provable security guarantees against a bounded quantum polynomial adversary with t-query access to the device. This also provides the first use case of unitary t-design construction for arbitrary t, as opposed to previous applications of t-designs where usually a few (relatively low) values of t are known to be useful for performing some task. We study the noise-resilience of QPUF_t against specific types of noise, unitary noise, and show that some resilience can be achieved particularly when the error rates affecting individual qubits become smaller as the system size increases. To make the noise resilience more realistic and meaningful, we conclude that some notion of error mitigation or correction should be introduced. |
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| Randomized Benchmarking: Stabilizer Verification and Gate Synthesis | QIP 2021 | Ellen Derbyshire, Theodoros Kapourniotis, Elham Kashefi |
| Efficient quantum pseudorandomness with simple graph states | QIP 2018 | Damian Markham, Joe Ghalbouni, Joseph Dgheim |
| Measurement based 2-qubit approximate t-designs via brickwork state quantum computation | TQC 2017 | Damian Markham |
Collaborators
| Co-author | Joint talks |
|---|---|
| Damian Markham | 4 |
| Elham Kashefi | 2 |
| Grégoire Gliniasty | 2 |
| Alexia Salavrakos | 1 |
| Ellen Derbyshire | 1 |
| Hugo Thomas | 1 |
| James Mills | 1 |
| Joe Ghalbouni | 1 |
| Joseph Dgheim | 1 |
| Niraj Kumar | 1 |
| Pierre-Emmanuel Emeriau | 1 |
| Theodoros Kapourniotis | 1 |