The Future of Quantum Computing

Breaking news, scored company profiles, and ecosystem intelligence across the global quantum sector — plus the deepest coverage of India's National Quantum Mission.

Measurement incompatibility in Bayesian multiparameter quantum estimation
Featured Story

Measurement incompatibility in Bayesian multiparameter quantum estimation

AbstractWe present a comprehensive and pedagogical formulation of Bayesian multiparameter quantum estimation. Within this framework, we analyse the role of measurement incompatibility and establish its quantitative effect on attainable precision. We achieve this by deriving upper bounds based on the pretty good measurement – a notion from hypothesis testing – combined with the evaluation of the Nagaoka-Hayashi lower bound. In general, we prove that, as in the many-copy regime of local estimation theory, incompatibility can at most double the minimum loss relative to the idealised scenario in which individually optimal measurements are assumed jointly implementable. Therefore, in practical situations, the latter may provide a sufficient and computationally efficient benchmark without solving the full optimisation problem. Our results, which we illustrate through applications of discrete phase imaging, phase and dephasing estimation, and qubit sensing, provide analytical and numerical tools for assessing ultimate precision limits and the role of measurement incompatibility in Bayesian multiparameter quantum metrology, including an open-source package for all the bounds discussed here.Popular summaryQuantum technologies can enhance the precision with which physical parameters are measured. However, when several parameters are estimated simultaneously, the measurements that are individually optimal for different parameters may be incompatible—impossible to implement simultaneously. Understanding the resulting loss of precision is a central problem in quantum metrology. Most previous results address this question in a local regime, where their validity is often contingent on the parameters already being approximately known. Here, we instead study measurement incompatibility within Bayesian quantum estimation, a global framework that explicitly incorporates prior knowledge and is particularly relevant when experimental data are limited. We show that the effect of measurem

Aug 13, 2026

Featured Stories

View All Stories
Alice & Bob Joins €4.6M MSCA-Backed QuBriC Doctoral Network for Quantum Error Correction
Featured
quantum-computing

Alice & Bob Joins €4.6M MSCA-Backed QuBriC Doctoral Network for Quantum Error Correction

Alice & Bob Joins €4.6M MSCA-Backed QuBriC Doctoral Network for Quantum Error Correction Cat-qubit hardware developer Alice & Bob has joined QuBriC (Bridging Quantum and Classical Error Correction for Scalable Fault-tolerant Quantum Computing), Europe’s first Marie Skłodowska-Curie Actions (MSCA) Doctoral Network dedicated entirely to Quantum Error Correction (QEC). Funded via a €4.6 million ($5.0 million) grant over 48 months under Horizon Europe, the consortium unites 16 academic institutions and seven quantum enterprises to train 15 PhD candidates across the complete QEC stack—combining classical coding theory, quantum information science, and hardware control engineering. [ QuBriC MSCA Doctoral Network Ecosystem ] │ ┌──────────────────────────────────┴──────────────────────────────────┐ ▼ ▼ Academic Research Partners (16 Institutions) Industry & Commercial Partners (7 Companies) • ETH Zürich, TU Delft, UCL, INRIA, Sorbonne. • Alice & Bob (Cat-Qubit Fault-Tolerance). • LMU Munich, KIT, Chalmers, Politecnico di Milano. • Riverlane, IQM, Quantinuum, Pasqal. • TU Eindhoven, University of Edinburgh, Gdańsk. • QuiX Quantum, Quandela. The initiative addresses a critical talent gap in fault-tolerant quantum computing (FTQC), where expertise remains bifurcated between theoretical physics and classical error-correcting codes (such as LDPC and surface codes). Alice & Bob will contribute its specialized architecture—using autonomous error-suppressing cat qubits designed to eliminate physical bit flips at the hardware level—to train researchers on co-designing physical QPUs with logical QEC layers. The consortium connects leading hardware and software scaleups, including Riverlane, IQM, Quantinuum, Pasqal, QuiX Quantum, and Quandela, alongside academic centers such as ETH Zürich, TU Delft, UCL, INRIA, and Sorbonne University. By embedding doctoral candidates across both university laboratories and industrial hardware foundries, QuBriC aims to accelerate t

Quantum Computing ReportLoading...0
Alice & Bob joins network to train quantum error correction experts
Featured
quantum-computing

Alice & Bob joins network to train quantum error correction experts

Europe’s first doctoral network dedicated to quantum error correction has launched, uniting 16 universities and seven quantum companies including ETH Zürich, TU Delft, and UCL. Backed by €4.6 million in funding over 48 months from the Horizon Europe MSCA programme, the QuBriC network will train 15 researchers to address a critical skills gap in the field. Alice & Bob is contributing its expertise in cat-qubit error correction to the collaboration, with Principal Research Scientist, QEC Christophe Vuillot stating that quantum error correction sits at the heart of any fault-tolerant quantum computer, interacting with all aspects of it. QuBriC Doctoral Network Addresses Quantum Error Correction Workforce Gap Backed by €4.6 million, this investment signifies a substantial commitment to building the workforce needed for practical, fault-tolerant quantum computers, an area where expertise is currently fragmented across disciplines. The network’s structure funds a collaborative effort between 16 universities and seven quantum companies across Europe to jointly recruit, train, and supervise doctoral researchers, differing from traditional research grants. The QuBriC network includes prominent institutions such as ETH Zürich, TU Delft, UCL, and INRIA, alongside industry partners including Riverlane and IQM, demonstrating the breadth of the collaboration. Vuillot, Principal Research Scientist, QEC at Alice & Bob, explained that this requires expertise spanning seemingly separate disciplines, highlighting the interdisciplinary nature of the challenge and the need to integrate classical coding theory with quantum physics. The program aims to train 15 doctoral researchers, equipping them with skills spanning the entire quantum error correction stack, from theoretical algorithm development to practical hardware implementation. According to Alice & Bob, QuBriC provides access to a pipeline of highly specialized talent and an academic network focused on fault-tolerant q

Quantum ZeitgeistLoading...0
New York State Launches $60M RFP for Regional Quantum Technology Commercialization Hubsquantum-computing

New York State Launches $60M RFP for Regional Quantum Technology Commercialization Hubs

New York State Launches $60M RFP for Regional Quantum Technology Commercialization Hubs New York Governor Kathy Hochul has announced the launch of a competitive Request for Proposals (RFP) to establish up to four Regional Quantum Technology Commercialization Hubs across the state. Funded with $60 million allocated in the FY 2027 state budget and administered by Empire State Development’s Division of Science, Technology and Innovation (NYSTAR), the program will grant up to $15 million to each selected regional anchor to accelerate the commercialization of quantum computing, sensing, and secure communications research. The initiative expands upon New York’s $300 million investment in the Quantum Research and Innovation Hub at SUNY Stony Brook, establishing an integrated statewide ecosystem connecting academic laboratories, early-stage startups, and corporate partners. [ NYSTAR Statewide Quantum Commercialization Network ] │ ┌─────────────────────────────────────┼─────────────────────────────────────┐ ▼ ▼ ▼ Physical Hub Infrastructure Startup Incubation & Support Industry Pilot Execution • Lab & Specialty Testing Space. • Dedicated Quantum Accelerators. • Corporate Co-Development. • Device & Materials Fabrication. • Investor & Mentor Matchmaking. • Field Demonstrations & Pilots. • HPC & Quantum Hardware Access. • Shared Instrumentation & Tools. • IP Management & Licensing. Program specifications and operational mandates outlined in the Empire State Development RFP include: Grant Funding Allocation: Up to four non-profit or academic-led regional hubs (one per Regional Economic Development Council region) will each receive approximately $15 million for facility construction, laboratory expansion, and specialized machinery acquisition. Core Technological Scope: Each hub will maintain a primary specialization in a core domain—such as quantum processing, quantum sensing, or quantum networking—while offering shared open access to non-affiliate

Quantum Computing ReportLoading...0
Robust topological quantum state transfer with long-range interactions in Rydberg arraysquantum-computing

Robust topological quantum state transfer with long-range interactions in Rydberg arrays

AbstractWe develop a theoretical framework for fast, robust and high-fidelity topological quantum state transfer in one-dimensional systems with long-range couplings, motivated by chains of Rydberg atoms with dipole–dipole interactions. Such long-range interactions naturally give rise to extended Su–Schrieffer–Heeger and Rice–Mele models supporting topologically protected edge states. We show that these edge states enable high-fidelity edge-to-edge excitation transfer using both time-independent protocols, based on coherent edge state dynamics, and time-dependent protocols, based on adiabatic modulation of system parameters. Long-range couplings play a central role by enhancing the relevant energy gaps, leading to a substantial improvement in transfer efficiency compared to nearest neighbour models. The resulting transfer is robust against positional disorder, reflecting its topological origin and highlighting the potential of long-range interacting platforms for reliable quantum state transfer.Featured image: Quantum state transfer in the extended Rice-Mele model. a)-e) Rydberg excitation probability distribution and lattice configuration at representative times during an edge-to-edge quantum state transfer protocol in the extended Rice–Mele model. Empty circles denote lattice sites with zero excitation probability, while filled circles indicate non-zero excitation probability, with color intensity proportional to the local population. f) Transfer fidelity $F$ as a function of the total transfer time $T$ for increasing chain lengths from $N=4$ to $N=16$. The inset shows the temporal variation of the geometrical parameters $b$ and $h$ and of the sublattice energy offset $\hbar\Delta$ during the transfer. The grey (white) background indicates parameter regions corresponding to the non-topological (topological) phase.► BibTeX data@article{Raupach2026robusttopological, doi = {10.22331/q-2026-08-13-2190}, url = {https://doi.org/10.22331/q-2026-08-13-2190}, title = {Robu

Quantum JournalLoading...0

From Quantum Authors

View Guest Articles

Trending Stories

View All Trending
Quantum News

Get the Quantum News Newsletter

Weekly insights • No spam • Unsubscribe anytime

India National Quantum Mission

Explore India's ₹6,003 Crore quantum initiative: 4 thematic hubs, leading startups, and the latest developments in India's quantum ecosystem

View All India NQM Content