6
collaborators
2026–2026
years active
Contributions
QIP QCrypt TQC talk poster presenter award · △program ◇steering ○organizing · filled = chair
3 Posters
| Title | Conference | Co-authors |
|---|---|---|
| Hamiltonian learning via quantum Zeno effect | QIP 2026 | ▸Giacomo Franceschetto, Egle Pagliaro, Leonardo Zambrano, Antonio Acin |
| Hamiltonian learning via quantum Zeno effect | TQC 2026 | Egle Pagliaro, Giacomo Franceschetto, Leonardo Zambrano, Antonio Acin |
Determining the Hamiltonian of a quantum system is essential for understanding its dynamics and validating its behavior. Hamiltonian learning provides a data-driven approach to reconstruct the generator of the dynamics from measurements on the evolved system. Among its applications, it is particularly important for benchmarking and characterizing quantum hardware, such as quantum computers and simulators. However, as these devices grow in size and complexity, this task becomes increasingly challenging. To address this, we propose a scalable and experimentally friendly Hamiltonian learning protocol for Hamiltonian operators made of local interactions. It leverages the quantum Zeno effect as a reshaping tool to localize the system's dynamics and then applies quantum process tomography to learn the coefficients of a local subset of the Hamiltonian acting on selected qubits. Unlike existing approaches, our method does not require complex state preparations and uses experimentally accessible, coherence-preserving operations. We derive theoretical performance guarantees and demonstrate the feasibility of our protocol both with numerical simulations and through an experimental implementation on IBM’s superconducting quantum hardware, successfully learning the coefficients of a 109-qubit Hamiltonian. |
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| Rigorous quantum state tomography for distributed quantum computing | TQC 2026 | Hans Mättig-Vázquez, Aldo Delgado |
Distributed quantum computing offers a promising approach to scaling quantum devices by networking multiple quantum processors. We present a quantum state tomography protocol tailored for distributed quantum computers that avoids assuming remote entanglement as a primitive resource. The protocol extends projected least-squares (PLS) tomography based on projective 2-designs to systems composed of multiple quantum processors, using only local operations within each processor and classical communication between nodes. Assuming that each individual quantum processor operates as an early fault-tolerant device, the protocol can be executed using mutually unbiased bases. We derive rigorous, non-asymptotic trace-norm error bounds for the PLS estimator, with explicit exponential dependence on the number of nodes. In addition, we establish certified error bounds for estimating entanglement negativity from the PLS estimator. Numerical simulations for systems of up to six qubits distributed across two devices validate the theoretical error bounds. |
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Collaborators
| Co-author | Joint talks |
|---|---|
| Antonio Acin | 2 |
| Egle Pagliaro | 2 |
| Giacomo Franceschetto | 2 |
| Leonardo Zambrano | 2 |
| Aldo Delgado | 1 |
| Hans Mättig-Vázquez | 1 |