16
collaborators
2017–2021
years active
Contributions
QIP QCrypt TQC talk poster presenter award · △program ◇steering ○organizing · filled = chair
1 Talk
| Title | Conference | Type | Co-authors |
|---|---|---|---|
| Quantum Preparation Games | QIP 2021 | regular | Mirjam Weilenmann, Miguel Navascués |
Abstract A preparation game is a task whereby a player sequentially sends a number of quantum states to a referee, who probes each of them and announces the measurement result. The measurement setting in each round, as well as the final score of the game, are decided by the referee based on the past history of settings and measurement outcomes. Many experimental tasks in quantum information, such as entanglement quantification or magic state detection, can be cast as preparation games. In this paper, we introduce general methods to design n-round preparation games, with tight bounds on the average game scores achievable by players subject to constraints on their preparation devices. We illustrate our results by devising new adaptive measurement protocols for entanglement detection and quantification. Surprisingly, we find that the standard procedure in entanglement detection, namely, estimating n times the average value of a given entanglement witness, is in general sub-optimal for detecting the entanglement of a specific quantum state. On the contrary, there exist n-round experimental scenarios where detecting the entanglement of a known state optimally requires adaptive measurement schemes. |
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3 Posters
| Title | Conference | Co-authors |
|---|---|---|
| Semi-Device-Independent Random Number Generation with Flexible Assumptions | QCRYPT 2020 | Matej Pivoluska, Martin Plesch, Mate Farkas, Natália Ružičková, Clara Flegel, Natalia Herrera Valencia, Will McCutcheon, Mehul Malik |
Our ability to trust that a random number is truly random is essential for fields as diverse as cryptography and fundamental tests of quantum mechanics. Device-independent quantum random number generators (QRNGs) provide a means of completely trusted randomness, but are highly impractical due to their strict technological requirements, such as loophole-free quantum nonlocality. By making fixed assumptions on specific parts of the device, semi-device-independent QRNGs lower these requirements drastically. However, this {has usually been} done at the cost of limiting their flexibility and security to a specific physical implementation and level of trust. Here we propose and experimentally test a new framework for semi-device-independent randomness certification that employs a flexible set of assumptions, allowing it to be applied in a range of physical scenarios involving both quantum and classical entropy sources. At the heart of our method lies a source of trusted vacuum in the form of a signal shutter, which enables the honesty of partially trusted measurement devices to be tested and provides lower bounds on the guessing probability of their measurement outcomes. We experimentally verify our protocol with a photonic setup and generate secure random bits under three different source assumptions with varying degrees of security and resulting data rates. Our work demonstrates a simple and practical way for achieving semi-device-independent randomness generation with user-defined flexibility in terms of levels of trust and physical implementations. |
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| Connections Between Mutually Unbiased Bases and Quantum Random Access Codes | QIP 2018 | Jakub Jan Borkala, Piotr Mironowicz, Marcin Pawlowski |
| Do objective results typically appear in quantum measurements? | QIP 2017 | Piotr Cwiklinski, Jaroslaw Korbicz, Pawel Horodecki |
Collaborators
| Co-author | Joint talks |
|---|---|
| Clara Flegel | 1 |
| Jakub Jan Borkala | 1 |
| Jaroslaw Korbicz | 1 |
| Marcin Pawlowski | 1 |
| Martin Plesch | 1 |
| Mate Farkas | 1 |
| Matej Pivoluska | 1 |
| Mehul Malik | 1 |
| Miguel Navascués | 1 |
| Mirjam Weilenmann | 1 |
| Natalia Herrera Valencia | 1 |
| Natália Ružičková | 1 |
| Pawel Horodecki | 1 |
| Piotr Cwiklinski | 1 |
| Piotr Mironowicz | 1 |
| Will McCutcheon | 1 |