
Novo Group
Quantum information science has the potential to revolutionize information processing, in the form of dramatically faster quantum algorithms and novel protocols for cryptography, metrology, and sensing. The Novo Research Group explores the features of quantum theory that enable advantage in quantum information processing tasks, in particular, those present in photonic implementations of quantum computers. There is not a single way to harness these quantum effects, so studying different models of quantum computation enables us to pinpoint different ways to get quantum systems to work their magic.
Our group has 3 main research lines:
- Foundations of quantum computation
- Quantification of resources for quantum computational advantage: quantum contextuality, coherence, non-locality, adaptivity, etc.
- Optimizing different models of quantum computation, especially for the current regime of Noisy, Intermediate-scale Quantum (NISQ) devices: measurement-based quantum computation, variational quantum algorithms, Bayesian methods and machine learning for device characterization and metrology.
- Photonic quantum computation
- Requirements for scalable photonic quantum computation;
- Characterization of multiphoton indistinguishability;
- Computational uses for complex, reconfigurable multi-mode interferometers;
- Classical simulation algorithms.
- Quantum software engineering
- Semantic structures able to comply with different types of classical control (non-deterministic, probabilistic, continuous) and quantum data;
- Algorithmic calculi stemming from the semantics above for the systematic derivation of quantum programs in a compositional way;
- Dynamic logics for the quantum domain to support the formulation of contracts for quantum algorithms and their compositional verification;
- Compositional methods for coordination of distributed quantum computational systems — a main requirement for obtaining optimally responsive global quantum networks.


Projects
Publications
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Unitary-invariant method for witnessing nonstabilizerness in quantum processors
JOURNAL OF PHYSICS A-MATHEMATICAL AND THEORETICAL, 2025Modular quantum-to-quantum Bernoulli factory in an integrated photonic processor
NATURE PHOTONICS, 2025 -
Lifting noncontextuality inequalities
PHYSICAL REVIEW A, 2024Secure two-party computation via measurement-based quantum computing
QUANTUM INFORMATION PROCESSING, 2024Non-stabilizerness and entanglement from cat-state injection
NEW JOURNAL OF PHYSICS, 2024On Quantum Natural Policy Gradients
IEEE Transactions on Quantum Engineering, 2024Digital quantum simulation of non-perturbative dynamics of open systems with orthogonal polynomials
QUANTUM, 2024Quantum advantage in temporally flat measurement-based quantum computation
QUANTUM, 2024 -
Pauli-based model of quantum computation with higher-dimensional systems
PHYSICAL REVIEW A, 2023Quantum circuit compilation and hybrid computation using Pauli-based computation
QUANTUM, 2023Policy gradients using variational quantum circuits
Quantum Machine Intelligence volume 5, Article number: 18 (2023), 2023 -
Scheme for Universal High-Dimensional Quantum Computation with Linear Optics
PHYSICAL REVIEW LETTERS, 2021Learning models of quantum systems from experiments
NATURE PHYSICS, 2021