Physics-Informed Quantum Communication Networks: A Vision Towards the Quantum Internet
Mahdi Chehimi, Walid Saad

TL;DR
This paper advocates for a physics-informed approach to quantum communication networks, integrating quantum physics principles into network design to address practical challenges and bridge the gap between physics and classical communications.
Contribution
It introduces a novel physics-informed analysis framework for QCNs, highlighting the importance of quantum physics constraints and proposing new performance metrics and controls.
Findings
Physics-informed analysis improves QCN performance evaluation.
Identifies key quantum physics constraints affecting network design.
Proposes new metrics for practical quantum network assessment.
Abstract
Quantum communications is a promising technology that will play a fundamental role in the design of future networks. In fact, significant efforts are being dedicated by both the quantum physics and the classical communications communities on developing new architectures, solutions, and practical implementations of quantum communication networks (QCNs). Although these efforts led to various advances in today's technologies, there still exists a non-trivial gap between the research efforts of the two communities on designing and optimizing the performance of QCNs. For instance, most prior works by the classical communications community ignore important quantum physics-based constraints when designing QCNs. For example, many existing works on entanglement distribution do not account for the decoherence of qubits inside quantum memories and, thus, their designs become impractical since they…
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Taxonomy
TopicsQuantum Information and Cryptography · Molecular Communication and Nanonetworks · Quantum Computing Algorithms and Architecture
