Modular Quantum Computing
Quantum Computing Framework Workflow
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Quantum Computing Framework Workflow
A Modular Quantum Compilation Framework for Distributed Quantum Computing
A Modular Quantum Compilation Framework for Distributed Quantum Computing
Optimizing Quantum Circuit Mapping to Reduce Inter-Module Communications in Distributed Architectures
Optimizing Quantum Circuit Mapping to Reduce Inter-Module Communications in Distributed Architectures
How Quantum Computing Could Benefit the Public Sector - WSJ
How Quantum Computing Could Benefit the Public Sector - WSJ
Quantum information technology is beginning to show real promise not just for solving problems, but for improving people’s lives, too
Quantum computing: Expanding what's possible
Quantum computing: Expanding what's possible
Toward Quantum Secured Distributed Energy Resources: Adoption of Post-Quantum Cryptography (PQC) and Quantum Key Distribution (QKD)
Toward Quantum Secured Distributed Energy Resources: Adoption of Post-Quantum Cryptography (PQC) and Quantum Key Distribution (QKD)
Quantum computing is a game-changing technology that affects modern cryptography and security systems including distributed energy resources (DERs) systems. Since the new quantum era is coming soon in 5–10 years, it is crucial to prepare and develop quantum-safe DER systems. This paper provides a comprehensive review of vulnerabilities caused by quantum computing attacks, potential defense strategies, and remaining challenges for DER networks. First, new security vulnerabilities and attack models of the cyber-physical DER systems caused by quantum computing attacks are explored. Moreover, this paper introduces potential quantum attack defense strategies including Quantum Key Distribution (QKD) and Post-Quantum Cryptography (PQC), which can be applied to DER networks and evaluates defense strategies. Finally, remaining research opportunities and challenges for next-generation quantum-safe DER are discussed.
Bringing useful quantum computing to the world
Bringing useful quantum computing to the world
IBM Quantum is providing the most advanced quantum computing hardware and software – and partners with the largest ecosystem to bring useful quantum computing to the world.
Quantum for Good and the Societal Impact of Quantum Computing
Quantum for Good and the Societal Impact of Quantum Computing
Abstract page for arXiv paper 2403.02921: Quantum for Good and the Societal Impact of Quantum Computing
Energy use in quantum data centers: Scaling the impact of computer architecture, qubit performance, size, and thermal parameters
Energy use in quantum data centers: Scaling the impact of computer architecture, qubit performance, size, and thermal parameters
Distributed quantum computing: A survey
Distributed quantum computing: A survey
Nowadays, quantum computing has reached the engineering phase, with fully-functional quantum processors integrating hundreds of noisy qubits. Yet – to…
What are Bell States?
What are Bell States?
Bell states are at the core of quantum networks. The first step in quantum communication is generating entangled bell pairs. But what are Bell states?
Qubits are the basic informational units of quantum computers. [IMAGE] | EurekAlert! Science News Releases
Qubits are the basic informational units of quantum computers. [IMAGE] | EurekAlert! Science News Releases
They come with a unique variety of properties like entanglement. Entanglement is important for quantum computers because it allows them to do computations in a way that is impossible for non-quantum computers.
Introduction to Bell states in Qiskit with Code — Quantum Computing UK
Introduction to Bell states in Qiskit with Code — Quantum Computing UK
In this tutorial we will explore Bell states and how to implement them IBM Quantum Computers with Qiskit. Bell states are the four states that can be created when two qubits are maximally entangled.
Introduction to Bell states in Qiskit with Code — Quantum Computing UK
Introduction to Bell states in Qiskit with Code — Quantum Computing UK
In this tutorial we will explore Bell states and how to implement them IBM Quantum Computers with Qiskit. Bell states are the four states that can be created when two qubits are maximally entangled.
Uncertainty Principle and decision making. | by Ayush Sengupta | Medium
Uncertainty Principle and decision making. | by Ayush Sengupta | Medium
I would like to start this essay by first explaining the concept of uncertainty principle. In February 1927, an aspiring German physicist…
Time Delays as Attosecond Probe of Interelectronic Coherence and Entanglement | Phys. Rev. Lett.
Time Delays as Attosecond Probe of Interelectronic Coherence and Entanglement | Phys. Rev. Lett.
Deterministic entanglement-assisted quantum communication over 20 km fiber channel - PMC
Deterministic entanglement-assisted quantum communication over 20 km fiber channel - PMC
Entanglement-assisted quantum communication has substantial advantages in surpassing the power of classical communication by utilizing the entangled state. Up to now, most of entanglement-assisted quantum communications with dense coding are limited ...
[2111.15526] Entangling single atoms over 33 km telecom fibre
[2111.15526] Entangling single atoms over 33 km telecom fibre
Heralded entanglement between distant quantum memories is the key resource for quantum networks. Based on quantum repeater protocols, these networks will facilitate efficient large-scale quantum communication and distributed quantum computing. However, despite vast efforts, long-distance fibre based network links have not been realized yet. Here we present results demonstrating heralded entanglement between two independent, remote single-atom quantum memories generated over fibre links with a total length up to 33 km. To overcome the attenuation losses in the long optical fibres of photons initially emitted by the Rubidium quantum memories, we employ polarization-preserving quantum frequency conversion to the low loss telecom band. The presented work represents a milestone towards the realization of efficient quantum network links.
[1907.04864] Passively stable distribution of polarisation entanglement over 192 km of deployed optical fibre
[1907.04864] Passively stable distribution of polarisation entanglement over 192 km of deployed optical fibre
Quantum key distribution (QKD) based on entangled photon pairs holds the potential for repeater-based quantum networks connecting clients over long distance. We demonstrate long-distance entanglement distribution by means of polarisation-entangled photon pairs through two successive deployed 96 km-long telecommunications fibres in the same submarine cable. One photon of each pair was detected directly after the source, while the other travelled the fibre cable in both directions for a total distance of 192 km and attenuation of 48 dB. The observed two-photon Bell state exhibited a fidelity 85% $\pm$ 2% and was stable over several hours. We employed neither active stabilisation of the quantum state nor chromatic dispersion compensation for the fibre.
Traffic signal optimization on a square lattice with quantum annealing | Scientific Reports
Traffic signal optimization on a square lattice with quantum annealing | Scientific Reports
IBM Quantum Computing | Modeling realistic chemistry with quantum computing
IBM Quantum Computing | Modeling realistic chemistry with quantum computing
How IBM, Cleveland Clinic, and RIKEN could accelerate chemistry research with quantum.
Exploring quantum computing use cases for logistics | IBM
Exploring quantum computing use cases for logistics | IBM
Building a quantum workforce | MIT Sloan
Building a quantum workforce | MIT Sloan
Energy use in quantum data centers: Scaling the impact of computer architecture, qubit performance, size, and thermal parameters
Energy use in quantum data centers: Scaling the impact of computer architecture, qubit performance, size, and thermal parameters
What Is a QPU? | NVIDIA Blogs
What Is a QPU? | NVIDIA Blogs
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