Network Centralities in Quantum Entanglement Distribution due to User Preferences
Dibakar Das, Shiva Kumar Malapaka, Jyotsna Bapat, Debabrata Das

TL;DR
This paper investigates how user connection patterns influence entanglement distribution in quantum networks, revealing that edge centralities follow power law distributions and informing resource management strategies.
Contribution
It introduces a model linking user connection distributions to entanglement centralities, providing insights into quantum network resource allocation.
Findings
Edge centralities follow power law distributions.
Node degrees are mostly monomolecularly distributed.
Results inform quantum resource management strategies.
Abstract
Quantum networks are of great interest of late which apply quantum mechanics to transfer information securely. One of the key properties which are exploited is entanglement to transfer information from one network node to another. Applications like quantum teleportation rely on the entanglement between the concerned nodes. Thus, efficient entanglement distribution among network nodes is of utmost importance. Several entanglement distribution methods have been proposed in the literature which primarily rely on attributes, such as, fidelities, link layer network topologies, proactive distribution, etc. This paper studies the centralities of the network when the link layer topology of entanglements (referred to as entangled graph) is driven by usage patterns of peer-to-peer connections between remote nodes (referred to as connection graph) with different characteristics. Three different…
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Taxonomy
TopicsQuantum Information and Cryptography · Quantum Computing Algorithms and Architecture · Quantum Mechanics and Applications
