18
collaborators
2012–2026
years active
Contributions
QIP QCrypt TQC talk poster presenter award · △program ◇steering ○organizing · filled = chair
1 Talk
| Title | Conference | Type | Co-authors |
|---|---|---|---|
|
Information-Theoretic Implications of Classical and Quantum Causal Structures ↗
|
QIP 2015 | regular | Rafael Chaves, Christian Majenz, Lukas Luft, Dominik Janzing, Bernhard Schölkopf, David Gross |
6 Posters
| Title | Conference | Co-authors |
|---|---|---|
| Compilation-informed probabilistic logical-error cancellation | QIP 2026 | ▸Giancarlo Camilo, Allan Tosta, Thais de Lima Silva, Abdulla Alhajri, Daniel Stilck-Franca, Leandro Aolita |
| Compilation-informed probabilistic logical error cancellation | TQC 2026 | Giancarlo Camilo, Allan Tosta, Abdulla Alhajri, Thais de Lima Silva, Daniel Stilck-Franca, Leandro Aolita |
The potential of quantum computers to outperform classical ones in practically useful tasks remains challenging in the near term due to scaling limitations and high error rates of current quantum hardware. While quantum error correction (QEC) offers a clear path towards fault tolerance, overcoming the scalability issues will take time. Early applications will likely rely on QEC combined with quantum error mitigation (QEM). We introduce a QEM scheme against both compilation errors and logical-gate noise that is circuit-, QEC code-, and compiler-agnostic. The scheme builds on quasi-probability methods and uses information about the circuit's gates' compilations to attain an unbiased estimation of noiseless expectation values incurring a constant sample-complexity overhead. Moreover, it features maximal circuit size and code distance both independent of the target precision, in contrast to strategies based on QEC alone. We formulate the mitigation procedure as a linear program, demonstrate its efficacy through numerical simulations, and illustrate it for estimating the Jones polynomials of knots. Our method significantly reduces quantum resource requirements for high-precision estimations, offering a practical route towards fault-tolerant quantum computation with precision-independent overheads for fixed circuit complexity and code distance. |
||
| Error regions in quantum state tomography: computational complexity caused by the geometry of quantum states | QIP 2017 | Daniel Suess, Łukasz Rudnicki, David Gross |
| Error regions in quantum state tomography: computational complexity caused by geometry of quantum states | TQC 2016 | Daniel Suess, Łukasz Rudnicki, David Gross |
| Analects on quantum tomographies and inference schemes. | QIP 2013 | Andre Cesario, Reinaldo Vianna, Carlile Lavor, Douglas Gonçalves |
| Variational quantum tomographies with incomplete information | QIP 2012 | Andre Cesario, Reinaldo Vianna |
Collaborators
| Co-author | Joint talks |
|---|---|
| David Gross | 3 |
| Abdulla Alhajri | 2 |
| Allan Tosta | 2 |
| Andre Cesario | 2 |
| Daniel Stilck-Franca | 2 |
| Daniel Suess | 2 |
| Giancarlo Camilo | 2 |
| Leandro Aolita | 2 |
| Reinaldo Vianna | 2 |
| Thais de Lima Silva | 2 |
| Łukasz Rudnicki | 2 |
| Bernhard Schölkopf | 1 |
| Carlile Lavor | 1 |
| Christian Majenz | 1 |
| Dominik Janzing | 1 |
| Douglas Gonçalves | 1 |
| Lukas Luft | 1 |
| Rafael Chaves | 1 |