17
collaborators
2015–2026
years active
Contributions
QIP QCrypt TQC talk poster presenter award · △program ◇steering ○organizing · filled = chair
1 Talk
| Title | Conference | Type | Co-authors |
|---|---|---|---|
| Realistic parameter regimes for a single sequential quantum repeater | QCRYPT 2017 | regular | Filip Rozpedek, Kenneth Goodenough, Norbert Kalb, Valentina Caprara Vivoli, Andreas Reiserer, Ronald Hanson, Stephanie Wehner, David Elkouss |
10 Posters
| Title | Conference | Co-authors |
|---|---|---|
| Measurement-Device-Independent Bit Commitment with Realistic Photon Sources | QCRYPT 2026 | Juliette van Mil, Timothé Bramas, Kaushik Senthoor, Stephanie Wehner |
Bit commitment is a fundamental primitive of secure two-party computation. While unconditional quantum security remains impossible without additional assumptions, the noisy-storage model offers a path forward by assuming limited adversarial quantum memory. Existing protocols in the noisy-storage model have addressed realistic photon sources. However, Measurement-Device-Independence (MDI), a powerful technique developed primarily for Quantum Key Distribution to eliminate vulnerabilities from untrusted measurement devices, has not yet been applied to bit commitment. In this work, we introduce MDI protocols for Randomised String Commitment (RSC) in the noisy-storage model and analyse their security with both ideal single-photon sources and practical photon sources. Our first protocol handles multiphoton emissions from weak coherent pulse sources using decoy-state techniques. We demonstrate that positive secure committed string rates are achievable in the asymptotic limit despite source imperfections. Our second protocol takes a fundamentally different approach, drawing inspiration from Twin-Field Quantum Key Distribution: both parties send phase-modulated coherent pulses to a central station performing single-photon interference. Showing that this protocol achieves positive committed string rates is part of ongoing work. Our work brings MDI bit commitment closer to experimental realisation and opens a new design direction by leveraging the toolbox developed for twin-field protocols. |
||
| Oblivious-Transfer is harder than Bit-Commitment in realistic Measurement-Device Independent settings | QCRYPT 2019 | Stephanie Wehner |
| Challenges for a DIQKD implementation | QIP 2018 | Glaucia Murta, Suzanne van Dam, Ronald Hanson, Stephanie Wehner |
| Fully device independent Conference Key Agreement | QIP 2018 | Glaucia Murta, Stephanie Wehner |
| Fully device independent protocols beyond QKD | QCRYPT 2017 | Glaucia Murta, Stephanie Wehner |
| Challenges for a DIQKD implementation | QCRYPT 2017 | Glaucia Murta, Suzanne van Dam, Ronald Hanson, Stephanie Wehner |
| Fully general device-independence for two- party cryptography and position verification | QIP 2017 | Glaucia Murta, Stephanie Wehner |
| Realistic Parameter Regimes for a Sequential Single-Node Quantum Repeater | QCRYPT 2016 | Filip Rozpedek, Kenneth Goodenough, Valentina Caprara Vivoli, Andreas Reiserer, David Elkouss, Stephanie Wehner |
| Device-Independence for Two-Party Cryptography and Position Verification | QCRYPT 2016 | Phuc Thinh Le, Jędrzej Kaniewski, Jonas Helsen, Stephanie Wehner |
| A Tight Lower Bound for the BB84-states Quantum-Position-Verification Protocols | QCRYPT 2015 | Frédéric Grosshans |
Collaborators
| Co-author | Joint talks |
|---|---|
| Stephanie Wehner | 10 |
| Glaucia Murta | 5 |
| Ronald Hanson | 3 |
| Andreas Reiserer | 2 |
| David Elkouss | 2 |
| Filip Rozpedek | 2 |
| Kenneth Goodenough | 2 |
| Suzanne van Dam | 2 |
| Valentina Caprara Vivoli | 2 |
| Frédéric Grosshans | 1 |
| Jonas Helsen | 1 |
| Juliette van Mil | 1 |
| Jędrzej Kaniewski | 1 |
| Kaushik Senthoor | 1 |
| Norbert Kalb | 1 |
| Phuc Thinh Le | 1 |
| Timothé Bramas | 1 |